US20040138785A1 - Power control unit - Google Patents

Power control unit Download PDF

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Publication number
US20040138785A1
US20040138785A1 US10/751,905 US75190504A US2004138785A1 US 20040138785 A1 US20040138785 A1 US 20040138785A1 US 75190504 A US75190504 A US 75190504A US 2004138785 A1 US2004138785 A1 US 2004138785A1
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US
United States
Prior art keywords
storage means
charging
current
discharging
power
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Abandoned
Application number
US10/751,905
Inventor
Akihiko Emori
Eiichi Toyota
Masato Suzuki
Motomi Shimada
Tsutomu Miyauchi
Takuya Kinoshita
Hideki Miyazaki
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Hitachi Ltd
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Hitachi Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Hitachi Ltd filed Critical Hitachi Ltd
Assigned to HITACHI, LTD. reassignment HITACHI, LTD. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: KINOSHITA, TAKUYA, SHIMADA, MOTOMI, MIYAUCHI, TSUTOMU, MIYAZAKI, HIDEKI, SUZUKI, MASATO, TOYOTA, EIICHI, EMORI, AKIHKO
Publication of US20040138785A1 publication Critical patent/US20040138785A1/en
Priority to US11/228,195 priority Critical patent/US7075306B2/en
Priority to US11/327,338 priority patent/US7319333B2/en
Priority to US11/947,318 priority patent/US7692430B2/en
Priority to US12/710,462 priority patent/US8120365B2/en
Abandoned legal-status Critical Current

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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0013Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries acting upon several batteries simultaneously or sequentially
    • H02J7/0014Circuits for equalisation of charge between batteries
    • H02J7/0016Circuits for equalisation of charge between batteries using shunting, discharge or bypass circuits
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0013Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries acting upon several batteries simultaneously or sequentially
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/0047Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with monitoring or indicating devices or circuits
    • H02J7/0048Detection of remaining charge capacity or state of charge [SOC]
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/36Arrangements for testing, measuring or monitoring the electrical condition of accumulators or electric batteries, e.g. capacity or state of charge [SoC]
    • G01R31/389Measuring internal impedance, internal conductance or related variables
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T10/00Road transport of goods or passengers
    • Y02T10/60Other road transportation technologies with climate change mitigation effect
    • Y02T10/70Energy storage systems for electromobility, e.g. batteries
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02TCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO TRANSPORTATION
    • Y02T30/00Transportation of goods or passengers via railways, e.g. energy recovery or reducing air resistance

Definitions

  • This invention relates to power control apparatus which controls charging and discharging of a power-generating or rechargeable power supply such as a fuel cell, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor.
  • a power-generating or rechargeable power supply such as a fuel cell, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor.
  • Japanese Application Patent Laid-Open Publication No. 2002-142353 discloses a method of disconnecting a faulty storage means when its current or voltage goes above a permissible value.
  • FIG. 9 shows a conventional method of controlling charging and discharging storage means.
  • two or more sets 7 of series-connected batteries 1 are connected in parallel.
  • Each set 7 of series-connected batteries 1 further comprises a means 9 for detecting a fault such as a micro short-circuit of each battery 1 , a current bypass circuit 3 which comprises a current control means (switch) 4 and a resistor 5 and is connected to the battery set 7 in parallel with the set 7 , and a fuse 6 which is connected in series to the bypass circuit 3 and the battery set 1 to electrically shut off the circuit when an overcurrent takes place.
  • a current bypass circuit 3 which comprises a current control means (switch) 4 and a resistor 5 and is connected to the battery set 7 in parallel with the set 7
  • a fuse 6 which is connected in series to the bypass circuit 3 and the battery set 1 to electrically shut off the circuit when an overcurrent takes place.
  • the fault detecting means 9 receives a signal from the voltmeter 2 and closes the switch 4 to flow a large current through the current bypass circuit 3 which is connected in parallel to the faulty battery 1 . This large current blows off the fuse 6 . With this, the faulty battery is disconnected from the other non-faulty battery sets.
  • Japanese Application Patent Laid-Open Publication No. 2001-185228 discloses a system comprising two or more parallel-connected battery modules each of which has two or more secondary batteries connected in series. A current detecting circuit and a switch are connected in series to each battery module.
  • a control unit opens a switch of the battery module containing a faulty battery to disconnect the faulty battery module from the other non-faulty battery modules.
  • Japanese Application Patent Laid-Open Publication No. 08-88944 discloses a system which connects a plurality of cells each of which is a secondary battery or a plurality of battery modules each of which comprises two or more secondary batteries in series, parallel, or both. This system detects the voltage and the current of each cell or module and calculates the quantity of charge.
  • the system selectively charges cells or modules according to the result of calculation.
  • Patent Documents 1 and 2 cannot charge or discharge currents for “n” batteries in a system having “n” sets of parallel-connected storage means each of which contains a plurality of series-connected batteries and cannot increase the input/output (current) further.
  • a time period required to charge or discharge “n” sets of parallel-connected storage means by a single battery is longer by “n” times than that required to charge or discharge one battery by a single battery.
  • Patent Documents 1 and 2 are designed to disconnect the storage means from the power control circuit only after the storage means has a trouble instead of controlling charging and discharging of the storage means to prevent troubles from occurring in the storage means. It is possible to make the service life of the storage means longer by controlling charging and discharging of the storage means to suppress occurrence of troubles.
  • Patent Document 3 controls to charge storage means according to the charging quantity of respective batteries to suppress the occurrence of a trouble in the storage means.
  • Patent Document 3 considers neither quick charging nor reduction of the capacity relative to the discharging current and cannot accomplish these. Further, this technology employs a configuration in which each battery is equipped with a current control circuit and a current control element. This makes the configuration of the power control apparatus complicated and heavy. This technology is far from weight reduction.
  • an object of the present invention is to provide a power control apparatus that can control charging and discharging of storage means to suppress the occurrence of a trouble in the storage means while accomplishing quick charging and reduction of battery capacities relative to discharging currents.
  • a power control apparatus for controlling charging and discharging of a plurality of storage means comprising
  • a status detecting means for detecting the operating status of each storage means from values measured by said voltage measuring means and said current measuring means
  • a charging/discharging controlling means for controlling currents, voltages, or power according to the operating status of each storage means detected by said status detecting means to charge or discharge said storage means.
  • the status detecting means preferably calculates the internal impedance or open circuit voltage of each storage means and the charging/discharging controlling means controls charging/discharging currents, voltages, or power of said storage means according to impedances or open circuit voltages thereof.
  • said status detecting means calculates the internal impedance or open circuit voltage of each storage means and
  • said charging/discharging controlling means calculates the permissible charging or discharging current value of each storage means from its internal impedance, open circuit voltage, preset maximum permissible voltage and minimum permissible voltage, calculates the sum of all currents flowing through said storage means to suppress a current over the calculated permissible charging or discharging current from flowing into or out of each of said storage means and controls the charging or discharging current to make the total current below the calculated total current value.
  • said status detecting means calculates the charging status of each storage means and determines the maximum or minimum of the calculated charging states, and said charging/discharging controlling means controls the charging current, voltage, or power by the maximum charging status value and controls the discharging current, voltage, or power by the minimum charging status value.
  • said power control apparatus further comprises a switch means which selectively breaks or makes a connection between said charging/discharging controlling means and any storage means and said charging/discharging controlling means checks the on/off status of said switch means and controls the current, voltage or power according to the detected on/off status of said switch means and the running status of each storage means to discharge or charge the storage means.
  • said status detecting means calculates the internal impedance or open circuit voltage of each storage means and said charging/discharging controlling means controls charging/discharging currents, voltages, or power of said storage means according to the impedances or open circuit voltages thereof.
  • said status detecting means calculates the charging status of each storage means and determines the maximum or minimum of the calculated charging states, and said charging/discharging controlling means controls the charging current, voltage, or power by the maximum charging status value and controls the discharging current, voltage, or power by the minimum charging status value.
  • said power control apparatus further comprises a load and a means selected from a group of a commercial power supply, a solar energy generator, a micro gas turbine generator and a fuel cell to supply power to said load, wherein said power control apparatus supplies power to said load or said commercial power supply and uses power from said commercial power supply, a solar energy generator, a micro gas turbine generator or a fuel cell as a charging power.
  • said storage means supply power to an electric motor which drives vehicle wheels and are charged by power from the outside of a vehicle or power from said electric motor when said motor is used as a power generator.
  • said storage means supply power to an electric motor which drives vehicle wheels and are charged by power generated by a dynamo-electric generator which is driven by an internal combustion engine on a vehicle or power from said electric motor when said motor is used as a power generator.
  • a power-control apparatus for controlling charging of a plurality of storage means comprising voltage measuring means for measuring voltages of said storage means respectively, current measuring means for measuring currents flowing through said storage means respectively, a status detecting means for respectively calculating the internal impedances and open circuit voltages of said storage means from values measured by said voltage and current measuring means, and a charging current controlling means calculates a permissible charging current value of each storage means from its internal impedance or open circuit voltage and a preset maximum permissible charging voltage which are detected by said status detecting means calculates the sum of all currents flowing through said storage means to suppress a current over the calculated current from flowing into said storage means, and controls the charging current to make the current below the calculated total current value.
  • a power control apparatus for controlling discharging of a plurality of storage means comprising voltage measuring means for measuring voltages of said storage means respectively, current measuring means for measuring currents flowing through said storage means respectively, a status detecting means for respectively calculating the internal impedances and open circuit voltages of said storage means from values measured by said voltage and current measuring means, and a discharging current controlling means calculates a permissible discharging current value of each storage means from its internal impedance or open circuit voltage and a preset maximum permissible discharging voltage which are detected by said status detecting means calculates the sum of all currents flowing through said storage means to suppress a current over the calculated current from flowing from said storage means, and controls the discharging current to make the current below the calculated total discharging current value.
  • the present invention can provide a power control apparatus that can control charging and discharging of storage means to suppress the occurrence of a trouble in the storage means while accomplishing quick charging and reduction of battery capacities relative to discharging currents.
  • This invention is applied to an energy management system of various storage means such as power generating elements such as fuel cells, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor and systems using thereof such as power supply equipment, distributed power storage equipment, electric cars and vehicles, and tracked vehicles.
  • power generating elements such as fuel cells, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor and systems using thereof such as power supply equipment, distributed power storage equipment, electric cars and vehicles, and tracked vehicles.
  • FIG. 1 is a schematic diagram of a power control apparatus which is the first embodiment of the invention.
  • FIG. 2 is a functional block diagram of the inside of a charging/discharging controlling means in accordance with the embodiment of FIG. 1.
  • FIG. 3 is a graph for explaining an example of process that the status detecting means executes.
  • FIG. 4 is a schematic diagram of a power control apparatus which is the second embodiment of the invention.
  • FIG. 5 is a schematic diagram of a power control apparatus which is the third embodiment of the invention.
  • FIG. 6 is a schematic diagram of a power control apparatus which is the fourth embodiment of the invention.
  • FIG. 7 is a schematic diagram of a power control apparatus which is the fifth embodiment of the invention.
  • FIG. 8 is a schematic diagram of a power control apparatus which is the sixth embodiment of the invention.
  • FIG. 9 shows a schematic diagram of a conventional power storage control apparatus.
  • FIG. 1 is a schematic diagram of a power control apparatus which is the first embodiment of the invention. This embodiment is an example of applying the present invention to a power supply charging/discharging controlling means.
  • means 101 a and 101 b are power storage means.
  • a means 101 b is a voltage measuring means.
  • Means 103 a and 103 b are current measuring means.
  • a means 104 is a status detecting means and a means 105 is a charging/discharging controlling means.
  • a current measuring means 103 a is connected in series to a storage means 101 a and a current measuring means 103 b is connected in series to a storage means 101 b.
  • the series set of the current measuring means 103 a and the storage means 101 a is connected in parallel with the other series set of the current measuring means 103 b and the storage means 101 b.
  • a voltage measuring means 102 is connected in parallel with these parallel sets of the current measuring means 103 and the storage means 101 . Further, a charging/discharging controlling means 105 is also connected in parallel with the storage means 101 and current measuring means 103 . This charging/discharging controlling means 105 is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • a power supply such as a commercial power supply, a power generator and a fuel cell
  • the status detecting means 104 receives a measured voltage value from the voltage measuring means 102 and measured current values from the current measuring means 103 a and 103 b, calculates the resistance and the voltage of each storage means, and sends the result to the charging/discharging controlling means 105 .
  • the charging/discharging controlling means 105 performs operations (to be described below) on the status values (resistances, voltages, and so on) sent from the status detecting means 104 and controls the charging and discharging currents of the storage means 101 a and 101 b by the result.
  • the power storage means 101 a and 101 b are power-generating or rechargeable power storage means such as a fuel cell, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor. These storage means are used singly or plurally in series or in parallel.
  • the voltage measuring means 102 comprises some electronic parts such as voltage-dividing resistors, operational amplifiers, and A/D converters and measure the voltage of each storage means. Although this embodiment has the voltage measuring means 102 and the status detecting means 104 separately, part or the whole of the voltage measuring means 102 can be built in the status detecting means 104 .
  • Each of the current measuring means 103 a and 103 b consists of a Hall CT or shunt type current sensor and measures a current flowing through each storage means 101 .
  • the first embodiment of the present invention has the current measuring means 103 a and 103 b and the status detecting means 104 separately, part or the whole of current measuring means 103 a and 103 b can be built in the status detecting means 104 .
  • the status detecting means 104 mainly consists of a microcomputer and a peripheral IC and detects the status (resistances and voltages) of respective storage means 101 a and 101 b from the values sent from the voltage measuring means 102 and current measuring means 103 a and 103 b.
  • the first embodiment of the present invention has the status detecting means 104 and the charging/discharging controlling means 105 separately, part or the whole of the status detecting means 104 can be built in the charging/discharging controlling means 105 .
  • the charging/discharging controlling means 105 mainly consists of a power converter such as a converter or an inverter and controls a current, power, or voltage to be supplied or output to the storage means 101 a and 101 b.
  • the currents passing through the storage means 101 a and 101 b are dependent upon their impedances Ra and Rb, their open circuit voltages (or electromotive forces) Ea and Eb, and the I/O currents, voltages, and power of the charging/discharging controlling means 105 .
  • the status detecting means 104 detects the status quantities of the storage means 101 a and 101 b such as the impedances Ra and Rb, their open circuit voltages Ea and Eb, etc. and sends them to the charging/discharging controlling means 105 .
  • the charging/discharging controlling means 105 controls the I/O currents, voltages, and power by the status quantities.
  • a storage means has an impedance (internal impedance) of R, an open circuit voltage (excluding a voltage drop due to the internal impedance) of E, a maximum permissible voltage of Vmax, and a minimum permissible voltage of Vmin. Further, let's assume a storage means can use a permissible charging current Icmax and a permissible discharging current Idmax safely and maximally in the maximum permissible voltage range.
  • the charging and discharging currents Icmax and Idmax are calculated by equations (1) and (2) below.
  • Vmax is a maximum rated voltage of the storage means or a maximum voltage that is defined by the system such as a load connected thereto.
  • Vmin is a minimum rated voltage of the storage means or a minimum voltage that is defined by the system such as a load connected thereto.
  • FIG. 1 assumes that the open circuit voltages Ea and Eb of the storage means 101 a and 101 b are equal to each other as the storage means 101 a and 101 b are connected in parallel to each other and that the charging/discharging controlling means 105 flows a current Iall to charge and discharge the storage means 101 a and 101 b.
  • the currents Ia and Ib which respectively flow through the storage means 101 a and 101 b can be expressed by equations (3) and (4) where Ra and Rb are internal resistances of the storage means 101 a and 101 b.
  • the charging/discharging controlling means 105 controls the current to satisfy Expressions (5) and (6) during charging and satisfy Expressions (7) and (8) during discharging.
  • the charging/discharging controlling means 105 controls the current to be below the less of ⁇ (Vmax ⁇ Ea)(Ra+Rb)/RaRb ⁇ and ⁇ (Vmax ⁇ Eb)(Ra+Rb)/RaRb ⁇ .
  • the charging current should be a current as high as possible below the less of ⁇ (Vmax ⁇ Ea)(Ra+Rb)/RaRb ⁇ and ⁇ (Vmax ⁇ Eb)(Ra+Rb)/RaRb ⁇ .
  • a current controlling means should provide a current control range considering the current controlling accuracy of the means and the target charging controlling value should be the difference between the current control range and the less of ⁇ (Vmax ⁇ Ea)(Ra+Rb)/RaRb ⁇ and ⁇ (Vmax ⁇ Eb)(Ra+Rb)/RaRb ⁇ .
  • control means controls the discharging current to be below the less of ⁇ (Ea ⁇ Vmin)(Ra+Rb)/RaRb ⁇ and ⁇ (Eb ⁇ Vmin)(Ra+Rb)/RaRb ⁇ .
  • the charging/discharging controlling means 105 should control the total current Iall by selecting the less of the maximum current and the minimum current (maximum and minimum currents allowed in ratings or in the system) that can flow each of the storage means 101 a and 101 b and causing the selected current to flow respectively through the storage means 101 a and 101 b.
  • the charging/discharging controlling means 105 should preferably control the discharging current efficiently to be almost equal to the maximum capacity of each storage means.
  • a current controlling means should provide a current control range considering the current controlling accuracy of the means and the target discharging controlling value should be the difference between the current control range and the less of ⁇ (Ea ⁇ Vmin)(Ra+Rb)/RaRb ⁇ and ⁇ (Eb ⁇ Vmin)(Ra+Rb)/RaRb ⁇ .
  • FIG. 2 is a functional block diagram of the inside of a charging/disc harging controlling means 105 .
  • the resistances Ra and Rb and the voltages Ea and Eb that are detected by the status detecting means 104 are sent to the operation sections 105 - 1 to 105 - 3 of the charging/discharging controlling means 105 .
  • the operation section 105 - 1 calculates the maximum charging currents (Vmax ⁇ Ea)/Ra and (Vmax ⁇ Eb)/Rb of the storage means 101 a and 101 b.
  • the operation section 105 - 3 calculates the maximum discharging currents (Ea ⁇ Vmin)/Ra and (Eb ⁇ Vmin)/Rb of the storage means 101 a and 101 b.
  • the operation section 105 - 2 calculates the ratio of respective currents flowing through the storage means 101 a and 101 b to the total current.
  • the operation section 105 - 4 calculates the maximum permissible total charging current Icall from Expressions (5) and (6). Similarly the operation section 105 - 5 calculates the maximum permissible total discharging current Idall from Expressions (7) and (8).
  • the current control section 105 - 6 controls the current Iall that flows through the storage means 101 a and 101 b.
  • the current control section 105 - 6 comprises current control elements and means to switch on and off these elements to control the current Iall.
  • the first embodiment of this invention can safely charge and discharge a plurality of parallel-connected storage means without causing any problem. Simultaneously, this embodiment enables quick charging, sets discharging currents effective to the capacities of storage means, and reduces capacities relative to the discharging currents.
  • the charging/discharging controlling means 105 controls currents in the above example, the same effects can also be obtained by controlling voltages or power.
  • the voltage detecting means detects a value including a voltage of the impedance section, but cannot directly measure the open circuit voltage E.
  • FIG. 3 is a graph for explaining an example of process that the status detecting means executes.
  • the vertical axis (Y axis) represents voltage values and the horizontal axis (X axis) represents current values.
  • This graph is for explanation only and not actually plotted in the status detecting means (microcomputer) 104 .
  • the status detecting means 104 receives voltage date measured by the voltage measuring means 102 and current data measured by the current measuring means 103 for a preset time period and linearly approximates these kinds of data by a least-squares method.
  • the Y intercept of the line is equivalent to the open circuit voltage E of the storage means 101 a or 101 b as its X value is 0.
  • FIG. 4 is a schematic diagram of a power control apparatus which is the second embodiment of the invention. This embodiment is an example of applying the invention to a power charging/discharging controlling means.
  • a storage means 101 a and a current measuring means 103 a are connected in series to each other.
  • a storage means 101 b and a current measuring means 103 b are connected in series to each other.
  • a voltage measuring means 102 a is connected in parallel to these series sets of a storage means and a current measuring means.
  • a storage means 101 c and a current measuring means 103 c are connected in series to each other.
  • a storage means 101 d and a current measuring means 103 d are connected in series to each other.
  • a voltage measuring means 102 b is connected in parallel to these series sets of a storage means and a current measuring means.
  • these two parallel sets of a storage means and a current measuring means are connected in series to another two parallel sets of a storage means and a current measuring means. Both ends of the resulting parallel-series circuit are connected to the charging/discharging controlling means 105 .
  • This charging/discharging controlling means 105 is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • the outputs of the voltage measuring means 102 a and 102 b and the current measuring means 103 a, 103 b, 103 c, and 103 d are fed to the status detecting means 104 .
  • the outputs of the status detecting means 104 are fed to the charging/discharging controlling means 105 .
  • the status detecting means 104 is housed in the charging/discharging controlling means 105 .
  • the status detecting means 104 calculates the charging status (quantity of electric charge) of respective storage means 101 a to 101 d from the detected current and voltage values and determines the maximum and minimum ones among the charging state values.
  • the charging/discharging controlling means 105 controls charging of the storage means by the maximum charging state value and discharging of the storage means by the minimum charging state value. In charging/discharging controlling, the charging/discharging controlling means 105 controls currents, voltages, or power.
  • the charging/discharging controlling means 105 controls charging according to the storage means having the greatest charging status.
  • the charging/discharging controlling means 105 controls discharging according to the storage means having the smallest charging status.
  • the charging status (or state of charge (SOC)) indicates how much a storage means is charged and the discharging status (or depth of discharge (DOD)) indicates how much charge a storage means has to discharge.
  • SOC state of charge
  • DOD depth of discharge
  • the charging and discharging states of the storage means 101 a to 101 d can be known from their impedances and voltage values. Further this embodiment causes the status detecting means 104 to detect the status (such as open circuit voltage) of respective storage means 101 a to 101 d and controls the charging or discharging currents according to the quantities of states in the method similar to the example of FIG. 1. Further, this embodiment controls the charging/discharging time and so on by the above charging state, that is, the greatest or smallest charging state value.
  • the second embodiment of this invention can accomplish the effects similar to those of the first embodiment and control charging and discharging of respective storage means according to their charging or discharging status.
  • FIG. 5 is a schematic diagram of a power control apparatus which is the third embodiment of the invention. This embodiment is an example of applying the invention to a power charging/discharging controlling means.
  • switches 106 a and 106 b are of the mechanical relay type or semiconductor element type.
  • the switch 106 a is connected in series to storage means 101 a and 101 c and a current measuring means 103 c.
  • the switch 106 b is connected in series to storage means 101 b and 101 d and a current measuring means 103 d.
  • These series sets of switch 106 , storage means 101 and current measuring means 103 are connected in parallel to a charging/discharging controlling means 105 .
  • a voltage measuring means 102 is connected in parallel to each storage means 101 (e.g. voltage measuring means 102 a to storage means 101 a, voltage measuring means 102 b to storage means 101 b, voltage measuring means 102 b to storage means 101 b, and voltage measuring means 102 d to storage means 101 d ).
  • the charging/discharging controlling means 105 is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • the voltage measuring means 102 a to 102 d, the current measuring means 103 c, 103 d, and switches 106 a, 106 b are connected to the status detecting means 104 which is connected to the charging/discharging controlling means 105 .
  • the status detecting means 104 works to control and detect on/off status of the switches 106 a and 106 b. It also detects the status values of respective storage means 101 a to 101 d such as internal impedances, open-circuit voltages, and charging status (remaining charges and charge quantities).
  • the charging/discharging controlling means 105 controls charging/discharging currents, voltages, or powers according to the on/off status of the switches 106 a, 106 b, and the status quantities of the storage means 101 a to 101 d.
  • Switches 106 a and 106 b are used to select or replace storage means without stopping the power supply. For example, you can replace either or both of the storage means 102 b and 102 d by new storage means by making the switch 106 a and opening the switch 106 b. These switches can be used also to disconnect the storage means from a load or from the charging/discharging controlling means 105 .
  • the voltage measuring means 102 a to 102 d can send the detected values normally to the status detecting means 104 .
  • the charging/discharging controlling means 105 charges or discharges a storage means without knowing that a switch 106 a or 106 b is open, the storage means connected to the charging/discharging controlling means 105 may be disturbed.
  • the third embodiment of this invention detects the on/off status of the switches 106 a to 106 b.
  • the third embodiment of this invention can accomplish the effects similar to those of the first embodiment even when switches are connected in series to the storage means.
  • FIG. 6 is a schematic diagram of a power control apparatus which is the fourth embodiment of the invention. This embodiment is an example of applying the invention to a power charging/discharging controlling means.
  • a load 107 is a generic part such as an electronic apparatus to which a power supply apparatus supplies power.
  • Voltage measuring means 102 a and 102 b are respectively connected in parallel to the storage means 101 a and 101 b as shown in FIG. 6. Further, current measuring means 103 a and 103 b are respectively connected in series to the storage means 101 a and 101 b.
  • Charging/discharging controlling means 105 a and 105 b are connected in parallel to the storage means 101 b.
  • This charging/discharging controlling means 105 b is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • a status detecting means 104 a is connected to the voltage measuring means 102 a and a current measuring means 103 a.
  • a status detecting means 104 b is connected to the voltage measuring means 102 b and a current measuring means 103 b.
  • the status detecting means 104 a is housed in the charging/discharging controlling means 105 a and the status detecting means 104 b is housed in the charging/discharging controlling means 105 b.
  • the charging/discharging controlling means 105 a and 105 b are so configured to transfer their current control signals and storage-means status values to and from each other.
  • the purpose of this configuration is to enable the charging/discharging means 101 a and 101 b to cooperate or separately work to supply power to the load 107 or the other electronic apparatus.
  • the fourth embodiment of this invention can accomplish the effects similar to those of the first embodiment. Additionally this embodiment enables connection of multiple storage means and multiple charging/discharging means and enables the charging/discharging means to share state quantity data of the storage means and information of respective charging/discharging means. With this, the power control apparatus can control charging and discharging current, voltages, or powers of the charging/discharging means according to the status quantities of storage means and thus utilize the storage means.
  • FIG. 7 is a schematic diagram of a power control apparatus which is the fifth embodiment of the invention. This embodiment is an example of applying the invention to a storage-means energy management system.
  • the storage-means energy management system contains a commercial power supply 108 , a solar energy generator 109 , power supply switches 110 a to 110 e, and a fuel cell apparatus 114 .
  • a charging/discharging controlling means 105 is connected to the commercial power supply 108 , the solar energy generator 109 , the fuel cell apparatus 114 , and the load apparatus 107 through the power supply switches 110 a to 110 e.
  • the fuel cell apparatus 114 , the solar energy generator 109 , the load apparatus 107 , the power supply switches 110 a to 110 e, and the MCU of the charging/discharging controlling means 105 are interconnected with two-way communication systems.
  • the output signals of the status detecting means 104 are fed to the MCU of the charging/discharging controlling means 105 .
  • the fuel cell apparatus 114 produces electric energy by oxidative reaction of oxygen (in air) and hydrogen gas stored in container or hydrogen gas obtained by modifying gasoline or methanol and outputs a.c. power through a converter or the like.
  • the solar energy generator 109 photo-electrically converts solar light into d.c. power by solar cells and outputs a.c. power through a converter or the like.
  • the load apparatus 107 generically represents home electric appliances (e.g. an electric/electronic apparatus such as air conditioner, refrigerator, microwave oven, and lamps) and electric equipment (e.g. motor, elevator, personal computer, and medical apparatus).
  • home electric appliances e.g. an electric/electronic apparatus such as air conditioner, refrigerator, microwave oven, and lamps
  • electric equipment e.g. motor, elevator, personal computer, and medical apparatus.
  • the load apparatus 107 may contain a switch 110 in it.
  • the storage means 101 a to 101 d, the voltage measuring means 102 a to 102 d, and the current measuring means 103 c and 103 d are connected in a configuration similar to that of the embodiment of FIG. 5 (excluding switches 106 a and 106 b ).
  • the MCU controls charging and discharging of the storage means 101 a to 101 d by controlling a current control circuit comprising of transistors (TR 1 to TR 6 ), diodes (D 1 to D 6 ), resistors (R 1 and R 2 ), a capacitor (C), and coils (L 1 and L 2 ) according to status detection signals sent from the status detecting means 104 which has a function similar to that of the embodiment of FIG. 5.
  • the embodiment of FIG. 7 normally supplies required power to the load apparatus 107 from the commercial power supply 108 , the solar energy generator 109 , and the fuel cell apparatus 114 .
  • the MCU When detecting that power from the commercial power supply 108 , the solar energy generator 109 , and the fuel cell apparatus 114 is not enough, the MCU supplies power to the load apparatus 107 from the storage means 101 a to 101 d through the charging/discharging controlling means 105 .
  • the MCU When detecting that power from the commercial power supply 108 , the solar energy generator 109 , and the fuel cell apparatus 114 is excessive, the MCU charges the storage means 101 a to 101 d through the charging/discharging controlling means 105 .
  • the status detecting means 104 detects the status of respective storage means 101 a to 101 d. Judging from these status values, the MCU determines currents, voltages, and power required by the commercial power supply 108 , the solar energy generator 109 , the fuel cell apparatus 114 , and the load apparatus 107 .
  • the charging/discharging controlling means 105 controls the charging or discharging currents, voltages, and power required by them.
  • the fifth embodiment of this invention can accomplish the effects similar to those of the first embodiment.
  • the fifth embodiment can quickly charge storage means and obtain great discharging currents relative to the storage capacity without causing any problem, it can reduce the contract demand and power consumption of the commercial power supply 108 and the rated power generation of the solar energy generator 109 and the fuel cell apparatus 114 . This can reduce charging means costs, equipment expenses, and running costs.
  • This embodiment can ease concentration of power consumption and even out the power consumption by supplying power to the commercial power supply 108 from the storage means when a power consumption concentrates on a certain period and charging the storage means when a power consumption is less.
  • the energy management system for storage means stated in the fifth embodiment of this invention can take a configuration other than the illustrated one.
  • the fifth embodiment is applicable to production plants, building systems, general households, and so on.
  • FIG. 8 is a schematic diagram of a power control apparatus which is the sixth embodiment of the invention. This embodiment is an example of applying the invention to a storage-means energy management system, particularly to railway vehicles, automobiles, and so on.
  • the storage-means energy management system contains a low-potential load apparatus 111 , a high-potential load apparatus 112 , and a motor generator 113 .
  • the motor generator 113 is connected to a charging/discharging controlling means 105 b which is functionally similar to that in the storage-means energy management system of FIG. 7.
  • the storage means ( 101 a and 101 b ), the voltage measuring means ( 102 a and 102 b ), the current measuring means ( 103 a and 103 b ), the status detecting means ( 104 a and 104 b ), and the charging/discharging controlling means 105 are configured similarly to that of FIG. 6, but the status detecting means 104 b is not housed in the charging/discharging controlling means 105 b.
  • the high-potential load apparatus 112 is connected to the charging/discharging controlling means 105 b (configuration similar to that of FIG. 8) on the storage means 101 b side through the charging/discharging controlling means 105 c (configuration similar to the charging/discharging controlling means 105 b ).
  • the low-potential load apparatus 111 connected to the storage means 101 a.
  • the motor generator 113 works to start the engine (internal combustion engine), assist the driving force of the engine (powering), and generate power (regeneration). During powering, the motor generator 113 receives power from the storage means 101 a and 101 b. During regeneration, the motor generator 113 supplies power to the storage means 101 a and 101 b.
  • the low-potential load apparatus 111 are electric loads and other power supply units of rated voltages from some volts to 42 volts such as solenoid valves of the engine and audio sets.
  • the high-potential load apparatus 112 are electric loads having rated voltages of some hundred volts such as lamps and an air conditioner.
  • the status detecting means 104 a and 104 b detect the status of respective storage means 101 a and 101 b.
  • the charging/discharging controlling means 105 b controls charging or discharging currents, voltages, and powers according to the detected status quantities considering the I/O requests of the motor generator 113 , the low-potential load apparatus 111 , and the high-potential load apparatus 112 .
  • This embodiment enables the charging/discharging means ( 105 a to 105 c ) to share state quantity data of the storage means ( 101 a, 101 b and 101 c ) and information of respective charging/discharging means ( 105 a, 105 b, and 105 c ) and thus utilizes the storage means.
  • the sixth embodiment of this invention can accomplish the effects similar to those of the first embodiment.
  • the power storage energy management system which is the sixth embodiment of this invention can reduce the charging time and the weight of the storage means. Therefore, this system can assist engine torques at the startup of the engine, convert kinetic energy of braking into electric power, and store the regenerated power, which leads to reduction of shipping cost of the system and maintenance frequency.
  • the power control apparatus calculates the internal impedance of each storage means from the detected current and voltage and controls the charging current to satisfy Expressions (5) and (6).
  • the power control apparatus calculates the internal impedance of each storage means from the detected current and voltage and controls the discharging current to satisfy Expressions (7) and (8).
  • the embodiments of this invention can calculate the internal impedance of respective storage means, it is possible to estimate the service life of each storage means from its impedance value. This estimation is carried out by the current controlling section 105 f in FIG. 2.
  • This invention can provide a power control apparatus that can control charging and discharging of a plurality of storage means without causing any problem while reducing the charging periods and capacities relative to the discharging current values.

Abstract

A power control apparatus for controlling charging and discharging of a plurality of storage means (101 a, . . . ) has voltage measuring means (102 a, . . . ) for measuring voltages of said storage means respectively, current measuring means (103 a, . . . ) for measuring currents flowing through said storage means respectively, a status detecting means (104) for detecting the operating status of each storage means from values measured by said voltage measuring means and said current measuring means, and a charging/discharging controlling means (105) for controlling currents, voltages, or power according to the operating status of each storage means detected by said status detecting means to charge or discharge said storage means.

Description

    BACKGROUND OF THE INVENTION
  • This invention relates to power control apparatus which controls charging and discharging of a power-generating or rechargeable power supply such as a fuel cell, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor. [0001]
  • When a plurality of storage means such as batteries are connected in parallel series, or both or when a plurality of storage means of different types are connected in parallel, series, or both, currents flowing through the storage means are dependent upon voltages and impedances of the storage means. [0002]
  • Therefore, when the storage means which are connected in parallel, series, or both are charged or discharged at a time, the current or voltage value of a certain storage means may exceed a permissible value. [0003]
  • To solve such a fault, prior arts have employed a method of controlling charging or discharging of the storage means with the minimum of currents that can flow through the storage means instead of charging or discharging with a total of currents that flow through all parallel-connected storage means (n pieces). [0004]
  • Japanese Application Patent Laid-Open Publication No. 2002-142353 discloses a method of disconnecting a faulty storage means when its current or voltage goes above a permissible value. [0005]
  • FIG. 9 shows a conventional method of controlling charging and discharging storage means. In FIG. 9, two or [0006] more sets 7 of series-connected batteries 1 are connected in parallel. Each set 7 of series-connected batteries 1 further comprises a means 9 for detecting a fault such as a micro short-circuit of each battery 1, a current bypass circuit 3 which comprises a current control means (switch) 4 and a resistor 5 and is connected to the battery set 7 in parallel with the set 7, and a fuse 6 which is connected in series to the bypass circuit 3 and the battery set 1 to electrically shut off the circuit when an overcurrent takes place.
  • When faults such as a micro short-circuit occur in a [0007] battery 1, it is detected by its voltmeter 2. The fault detecting means 9 receives a signal from the voltmeter 2 and closes the switch 4 to flow a large current through the current bypass circuit 3 which is connected in parallel to the faulty battery 1. This large current blows off the fuse 6. With this, the faulty battery is disconnected from the other non-faulty battery sets.
  • Japanese Application Patent Laid-Open Publication No. 2001-185228 discloses a system comprising two or more parallel-connected battery modules each of which has two or more secondary batteries connected in series. A current detecting circuit and a switch are connected in series to each battery module. [0008]
  • When one of the current detecting circuits detects an abnormal current value or direction, a control unit opens a switch of the battery module containing a faulty battery to disconnect the faulty battery module from the other non-faulty battery modules. [0009]
  • Japanese Application Patent Laid-Open Publication No. 08-88944 discloses a system which connects a plurality of cells each of which is a secondary battery or a plurality of battery modules each of which comprises two or more secondary batteries in series, parallel, or both. This system detects the voltage and the current of each cell or module and calculates the quantity of charge. [0010]
  • The system selectively charges cells or modules according to the result of calculation. [0011]
  • SUMMARY OF THE INVENTION
  • However, the prior arts disclosed by [0012] Patent Documents 1 and 2 cannot charge or discharge currents for “n” batteries in a system having “n” sets of parallel-connected storage means each of which contains a plurality of series-connected batteries and cannot increase the input/output (current) further.
  • This is because a current by a single battery is charged to or discharged from “n” sets of parallel-connected storage means in order to avoid charging or discharging by an over-current assuming that the performances of the batteries are different. [0013]
  • A time period required to charge or discharge “n” sets of parallel-connected storage means by a single battery is longer by “n” times than that required to charge or discharge one battery by a single battery. [0014]
  • Therefore, the conventional methods will be available to apparatus that do not require quick charging and apparatus that have a smaller discharging current than the capacity of the storage means and do not mind the charging/discharging time. [0015]
  • However, power equipment for vehicles, emergency power equipment, or new rechargeable power supply apparatus for home use require quick charging and less weight. In other words, it is very important for such equipment to reduce the capacity relative to the discharging current. However, it is beyond the ability of the conventional technologies. [0016]
  • The technologies of [0017] Patent Documents 1 and 2 are designed to disconnect the storage means from the power control circuit only after the storage means has a trouble instead of controlling charging and discharging of the storage means to prevent troubles from occurring in the storage means. It is possible to make the service life of the storage means longer by controlling charging and discharging of the storage means to suppress occurrence of troubles.
  • Therefore, it has been hoped that a power control apparatus be actualized that can control charging and discharging of storage means to suppress occurrence of troubles while enabling quick charging and reduction of the capacity relative to the discharging current. [0018]
  • On the other hand, the technology in Patent Document 3 controls to charge storage means according to the charging quantity of respective batteries to suppress the occurrence of a trouble in the storage means. [0019]
  • However, the technology in Patent Document 3 considers neither quick charging nor reduction of the capacity relative to the discharging current and cannot accomplish these. Further, this technology employs a configuration in which each battery is equipped with a current control circuit and a current control element. This makes the configuration of the power control apparatus complicated and heavy. This technology is far from weight reduction. [0020]
  • Accordingly, an object of the present invention is to provide a power control apparatus that can control charging and discharging of storage means to suppress the occurrence of a trouble in the storage means while accomplishing quick charging and reduction of battery capacities relative to discharging currents. [0021]
  • To accomplish the above purpose, this invention is configured as follows: [0022]
  • (1) A power control apparatus for controlling charging and discharging of a plurality of storage means, comprising [0023]
  • voltage measuring means for measuring voltages of said storage means respectively, [0024]
  • current measuring means for measuring currents flowing through said storage means respectively, [0025]
  • a status detecting means for detecting the operating status of each storage means from values measured by said voltage measuring means and said current measuring means, and [0026]
  • a charging/discharging controlling means for controlling currents, voltages, or power according to the operating status of each storage means detected by said status detecting means to charge or discharge said storage means. [0027]
  • (2) In (1) preferably, the status detecting means preferably calculates the internal impedance or open circuit voltage of each storage means and the charging/discharging controlling means controls charging/discharging currents, voltages, or power of said storage means according to impedances or open circuit voltages thereof. [0028]
  • (3) In (1) preferably, said status detecting means calculates the internal impedance or open circuit voltage of each storage means and [0029]
  • said charging/discharging controlling means calculates the permissible charging or discharging current value of each storage means from its internal impedance, open circuit voltage, preset maximum permissible voltage and minimum permissible voltage, calculates the sum of all currents flowing through said storage means to suppress a current over the calculated permissible charging or discharging current from flowing into or out of each of said storage means and controls the charging or discharging current to make the total current below the calculated total current value. [0030]
  • (4) In (1) preferably, said status detecting means calculates the charging status of each storage means and determines the maximum or minimum of the calculated charging states, and said charging/discharging controlling means controls the charging current, voltage, or power by the maximum charging status value and controls the discharging current, voltage, or power by the minimum charging status value. [0031]
  • (5) In (1) preferably, said power control apparatus further comprises a switch means which selectively breaks or makes a connection between said charging/discharging controlling means and any storage means and said charging/discharging controlling means checks the on/off status of said switch means and controls the current, voltage or power according to the detected on/off status of said switch means and the running status of each storage means to discharge or charge the storage means. [0032]
  • (6) In (5) preferably, said status detecting means calculates the internal impedance or open circuit voltage of each storage means and said charging/discharging controlling means controls charging/discharging currents, voltages, or power of said storage means according to the impedances or open circuit voltages thereof. [0033]
  • (7) In (5) preferably, said status detecting means calculates the charging status of each storage means and determines the maximum or minimum of the calculated charging states, and said charging/discharging controlling means controls the charging current, voltage, or power by the maximum charging status value and controls the discharging current, voltage, or power by the minimum charging status value. [0034]
  • (8) In (1) to (7) preferably, said power control apparatus further comprises a load and a means selected from a group of a commercial power supply, a solar energy generator, a micro gas turbine generator and a fuel cell to supply power to said load, wherein said power control apparatus supplies power to said load or said commercial power supply and uses power from said commercial power supply, a solar energy generator, a micro gas turbine generator or a fuel cell as a charging power. [0035]
  • (9) In (1) to (7) preferably, said storage means supply power to an electric motor which drives vehicle wheels and are charged by power from the outside of a vehicle or power from said electric motor when said motor is used as a power generator. [0036]
  • (10) In (1) to (7) preferably, said storage means supply power to an electric motor which drives vehicle wheels and are charged by power generated by a dynamo-electric generator which is driven by an internal combustion engine on a vehicle or power from said electric motor when said motor is used as a power generator. [0037]
  • (11) A power-control apparatus for controlling charging of a plurality of storage means comprising voltage measuring means for measuring voltages of said storage means respectively, current measuring means for measuring currents flowing through said storage means respectively, a status detecting means for respectively calculating the internal impedances and open circuit voltages of said storage means from values measured by said voltage and current measuring means, and a charging current controlling means calculates a permissible charging current value of each storage means from its internal impedance or open circuit voltage and a preset maximum permissible charging voltage which are detected by said status detecting means calculates the sum of all currents flowing through said storage means to suppress a current over the calculated current from flowing into said storage means, and controls the charging current to make the current below the calculated total current value. [0038]
  • (12) A power control apparatus for controlling discharging of a plurality of storage means comprising voltage measuring means for measuring voltages of said storage means respectively, current measuring means for measuring currents flowing through said storage means respectively, a status detecting means for respectively calculating the internal impedances and open circuit voltages of said storage means from values measured by said voltage and current measuring means, and a discharging current controlling means calculates a permissible discharging current value of each storage means from its internal impedance or open circuit voltage and a preset maximum permissible discharging voltage which are detected by said status detecting means calculates the sum of all currents flowing through said storage means to suppress a current over the calculated current from flowing from said storage means, and controls the discharging current to make the current below the calculated total discharging current value. [0039]
  • In summary, the present invention can provide a power control apparatus that can control charging and discharging of storage means to suppress the occurrence of a trouble in the storage means while accomplishing quick charging and reduction of battery capacities relative to discharging currents. [0040]
  • This invention is applied to an energy management system of various storage means such as power generating elements such as fuel cells, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor and systems using thereof such as power supply equipment, distributed power storage equipment, electric cars and vehicles, and tracked vehicles.[0041]
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The present invention will be understood more fully from the detailed description given hereinafter and from the accompanying drawings of the preferred embodiment of the present invention, which, however, should not be taken to be limitative to the invention, but are for explanation and understanding only. [0042]
  • In the drawings: [0043]
  • FIG. 1 is a schematic diagram of a power control apparatus which is the first embodiment of the invention. [0044]
  • FIG. 2 is a functional block diagram of the inside of a charging/discharging controlling means in accordance with the embodiment of FIG. 1. [0045]
  • FIG. 3 is a graph for explaining an example of process that the status detecting means executes. [0046]
  • FIG. 4 is a schematic diagram of a power control apparatus which is the second embodiment of the invention. [0047]
  • FIG. 5 is a schematic diagram of a power control apparatus which is the third embodiment of the invention. [0048]
  • FIG. 6 is a schematic diagram of a power control apparatus which is the fourth embodiment of the invention. [0049]
  • FIG. 7 is a schematic diagram of a power control apparatus which is the fifth embodiment of the invention. [0050]
  • FIG. 8 is a schematic diagram of a power control apparatus which is the sixth embodiment of the invention. [0051]
  • FIG. 9 shows a schematic diagram of a conventional power storage control apparatus.[0052]
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • Preferred embodiments of the present invention are described below with reference to the accompanying drawings, in which like reference numerals represent the same or similar elements. [0053]
  • FIG. 1 is a schematic diagram of a power control apparatus which is the first embodiment of the invention. This embodiment is an example of applying the present invention to a power supply charging/discharging controlling means. [0054]
  • In FIG. 1, means [0055] 101 a and 101 b are power storage means. A means 101 b is a voltage measuring means. Means 103 a and 103 b are current measuring means. A means 104 is a status detecting means and a means 105 is a charging/discharging controlling means.
  • A current measuring means [0056] 103 a is connected in series to a storage means 101 a and a current measuring means 103 b is connected in series to a storage means 101 b. The series set of the current measuring means 103 a and the storage means 101 a is connected in parallel with the other series set of the current measuring means 103 b and the storage means 101 b.
  • A voltage measuring means [0057] 102 is connected in parallel with these parallel sets of the current measuring means 103 and the storage means 101. Further, a charging/discharging controlling means 105 is also connected in parallel with the storage means 101 and current measuring means 103. This charging/discharging controlling means 105 is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • The status detecting means [0058] 104 receives a measured voltage value from the voltage measuring means 102 and measured current values from the current measuring means 103 a and 103 b, calculates the resistance and the voltage of each storage means, and sends the result to the charging/discharging controlling means 105.
  • The charging/discharging controlling means [0059] 105 performs operations (to be described below) on the status values (resistances, voltages, and so on) sent from the status detecting means 104 and controls the charging and discharging currents of the storage means 101 a and 101 b by the result.
  • In this case, it is possible to provide a temperature measuring means, a pressure measuring means, or both (not shown in the drawing) to measure the status of each storage means [0060] 101.
  • The power storage means [0061] 101 a and 101 b are power-generating or rechargeable power storage means such as a fuel cell, lithium secondary cell, nickel metal-hydride battery, lead-acid battery, and electric double layer capacitor. These storage means are used singly or plurally in series or in parallel.
  • The voltage measuring means [0062] 102 comprises some electronic parts such as voltage-dividing resistors, operational amplifiers, and A/D converters and measure the voltage of each storage means. Although this embodiment has the voltage measuring means 102 and the status detecting means 104 separately, part or the whole of the voltage measuring means 102 can be built in the status detecting means 104.
  • Each of the current measuring means [0063] 103 a and 103 b consists of a Hall CT or shunt type current sensor and measures a current flowing through each storage means 101. Although the first embodiment of the present invention has the current measuring means 103 a and 103 b and the status detecting means 104 separately, part or the whole of current measuring means 103 a and 103 b can be built in the status detecting means 104.
  • The status detecting means [0064] 104 mainly consists of a microcomputer and a peripheral IC and detects the status (resistances and voltages) of respective storage means 101 a and 101 b from the values sent from the voltage measuring means 102 and current measuring means 103 a and 103 b.
  • Although the first embodiment of the present invention has the status detecting means [0065] 104 and the charging/discharging controlling means 105 separately, part or the whole of the status detecting means 104 can be built in the charging/discharging controlling means 105.
  • The charging/discharging controlling means [0066] 105 mainly consists of a power converter such as a converter or an inverter and controls a current, power, or voltage to be supplied or output to the storage means 101 a and 101 b.
  • The currents passing through the storage means [0067] 101 a and 101 b are dependent upon their impedances Ra and Rb, their open circuit voltages (or electromotive forces) Ea and Eb, and the I/O currents, voltages, and power of the charging/discharging controlling means 105.
  • Therefore, the status detecting means [0068] 104 detects the status quantities of the storage means 101 a and 101 b such as the impedances Ra and Rb, their open circuit voltages Ea and Eb, etc. and sends them to the charging/discharging controlling means 105. The charging/discharging controlling means 105 controls the I/O currents, voltages, and power by the status quantities.
  • For example, let's assume a storage means has an impedance (internal impedance) of R, an open circuit voltage (excluding a voltage drop due to the internal impedance) of E, a maximum permissible voltage of Vmax, and a minimum permissible voltage of Vmin. Further, let's assume a storage means can use a permissible charging current Icmax and a permissible discharging current Idmax safely and maximally in the maximum permissible voltage range. The charging and discharging currents Icmax and Idmax are calculated by equations (1) and (2) below. [0069]
  • Icmax=(Vmax−E)/R   (1)
  • Idmax=(E−Vmin)/R   (2)
  • where Vmax is a maximum rated voltage of the storage means or a maximum voltage that is defined by the system such as a load connected thereto. Vmin is a minimum rated voltage of the storage means or a minimum voltage that is defined by the system such as a load connected thereto. [0070]
  • FIG. 1 assumes that the open circuit voltages Ea and Eb of the storage means [0071] 101 a and 101 b are equal to each other as the storage means 101 a and 101 b are connected in parallel to each other and that the charging/discharging controlling means 105 flows a current Iall to charge and discharge the storage means 101 a and 101 b. The currents Ia and Ib which respectively flow through the storage means 101 a and 101 b can be expressed by equations (3) and (4) where Ra and Rb are internal resistances of the storage means 101 a and 101 b.
  • Ia=Iall×Rb/(Ra+Rb)   (3)
  • Ib=Iall×Ra/(Ra+Rb)   (4)
  • Equations (3) and (4) [0072]
  • The charging/discharging controlling means [0073] 105 controls the current to satisfy Expressions (5) and (6) during charging and satisfy Expressions (7) and (8) during discharging.
  • Iall×Rb/(Ra+Rb)<(Vmax−Ea)/Ra   (5)
  • Iall×Ra/(Ra+Rb)<(Vmax−Eb)/Rb   (6)
  • Iall×Rb/(Ra+Rb)<(Ea−Vmin)/Ra   (7)
  • Iall×Ra/(Ra+Rb)<(Eb−Vmin)/Rb   (8)
  • In other words, for charging, the charging/discharging controlling means [0074] 105 controls the current to be below the less of {(Vmax−Ea)(Ra+Rb)/RaRb} and {(Vmax−Eb)(Ra+Rb)/RaRb}.
  • For quick charging, the charging current should be a current as high as possible below the less of {(Vmax−Ea)(Ra+Rb)/RaRb} and {(Vmax−Eb)(Ra+Rb)/RaRb}. [0075]
  • Therefore, in actual current controlling, a current controlling means should provide a current control range considering the current controlling accuracy of the means and the target charging controlling value should be the difference between the current control range and the less of {(Vmax−Ea)(Ra+Rb)/RaRb} and {(Vmax−Eb)(Ra+Rb)/RaRb}. [0076]
  • Further, the control means controls the discharging current to be below the less of {(Ea−Vmin)(Ra+Rb)/RaRb} and {(Eb−Vmin)(Ra+Rb)/RaRb}. [0077]
  • In other words, the charging/discharging controlling means [0078] 105 should control the total current Iall by selecting the less of the maximum current and the minimum current (maximum and minimum currents allowed in ratings or in the system) that can flow each of the storage means 101 a and 101 b and causing the selected current to flow respectively through the storage means 101 a and 101 b.
  • Similarly, the charging/discharging controlling means [0079] 105 should preferably control the discharging current efficiently to be almost equal to the maximum capacity of each storage means.
  • Therefore, similarly to the charging current, in actual current controlling, a current controlling means should provide a current control range considering the current controlling accuracy of the means and the target discharging controlling value should be the difference between the current control range and the less of {(Ea−Vmin)(Ra+Rb)/RaRb} and {(Eb−Vmin)(Ra+Rb)/RaRb}. [0080]
  • FIG. 2 is a functional block diagram of the inside of a charging/disc harging controlling means [0081] 105.
  • In FIG. 2[0082] b, the resistances Ra and Rb and the voltages Ea and Eb that are detected by the status detecting means 104 are sent to the operation sections 105-1 to 105-3 of the charging/discharging controlling means 105.
  • The operation section [0083] 105-1 calculates the maximum charging currents (Vmax−Ea)/Ra and (Vmax−Eb)/Rb of the storage means 101 a and 101 b. The operation section 105-3 calculates the maximum discharging currents (Ea−Vmin)/Ra and (Eb−Vmin)/Rb of the storage means 101 a and 101 b. The operation section 105-2 calculates the ratio of respective currents flowing through the storage means 101 a and 101 b to the total current.
  • The operation section [0084] 105-4 calculates the maximum permissible total charging current Icall from Expressions (5) and (6). Similarly the operation section 105-5 calculates the maximum permissible total discharging current Idall from Expressions (7) and (8).
  • Receiving the maximum permissible total charging current Icall and the maximum permissible total discharging current Idall from the operation sections [0085] 105-4 and 105-5, the current control section 105-6 controls the current Iall that flows through the storage means 101 a and 101 b.
  • The current control section [0086] 105-6 comprises current control elements and means to switch on and off these elements to control the current Iall.
  • As described above, the first embodiment of this invention can safely charge and discharge a plurality of parallel-connected storage means without causing any problem. Simultaneously, this embodiment enables quick charging, sets discharging currents effective to the capacities of storage means, and reduces capacities relative to the discharging currents. [0087]
  • Although the charging/discharging controlling means [0088] 105 controls currents in the above example, the same effects can also be obtained by controlling voltages or power.
  • Further, although two storage means [0089] 101 a and 101 b are connected in parallel in FIG. 2, it is also possible to control the charging or discharging currents of the storage means even when a plurality of storage means are connected in series and in parallel by calculating quantities of status of each storage means such as impedances and open-circuit voltages and expanding the above Expressions. This method can charge and discharge storage means safely and effectively without causing any problem in the storage means instead of using a current for a single storage means as a total charging or discharging current.
  • When a storage means is charging or discharging, however, the voltage detecting means detects a value including a voltage of the impedance section, but cannot directly measure the open circuit voltage E. [0090]
  • It is possible to measure the open circuit voltage E and the impedance R separately by the following: [0091]
  • FIG. 3 is a graph for explaining an example of process that the status detecting means executes. In FIG. 3, the vertical axis (Y axis) represents voltage values and the horizontal axis (X axis) represents current values. This graph is for explanation only and not actually plotted in the status detecting means (microcomputer) [0092] 104.
  • The status detecting means [0093] 104 receives voltage date measured by the voltage measuring means 102 and current data measured by the current measuring means 103 for a preset time period and linearly approximates these kinds of data by a least-squares method.
  • The Y intercept of the line is equivalent to the open circuit voltage E of the storage means [0094] 101 a or 101 b as its X value is 0. The gradient of the line is equivalent to the impedance R of the storage means 101 a or 101 b. This approximate line is expressed by an equation Y=RI+E.
  • It is also possible to measure the current I and the voltage V between the terminals of the storage means [0095] 101 a or 101 b, obtain their increments (variations) dV and dI in a very short time period, and directly calculates the impedance from the increments as follows:
  • R=dV/dI   (9)
  • FIG. 4 is a schematic diagram of a power control apparatus which is the second embodiment of the invention. This embodiment is an example of applying the invention to a power charging/discharging controlling means. [0096]
  • In FIG. 4, a storage means [0097] 101 a and a current measuring means 103 a are connected in series to each other. A storage means 101 b and a current measuring means 103 b are connected in series to each other. A voltage measuring means 102 a is connected in parallel to these series sets of a storage means and a current measuring means.
  • Similarly, a storage means [0098] 101 c and a current measuring means 103 c are connected in series to each other. A storage means 101 d and a current measuring means 103 d are connected in series to each other. A voltage measuring means 102 b is connected in parallel to these series sets of a storage means and a current measuring means.
  • Further, these two parallel sets of a storage means and a current measuring means are connected in series to another two parallel sets of a storage means and a current measuring means. Both ends of the resulting parallel-series circuit are connected to the charging/discharging controlling means [0099] 105. This charging/discharging controlling means 105 is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • The outputs of the voltage measuring means [0100] 102 a and 102 b and the current measuring means 103 a, 103 b, 103 c, and 103 d are fed to the status detecting means 104. The outputs of the status detecting means 104 are fed to the charging/discharging controlling means 105.
  • In this embodiment, the status detecting means [0101] 104 is housed in the charging/discharging controlling means 105.
  • The status detecting means [0102] 104 calculates the charging status (quantity of electric charge) of respective storage means 101 a to 101 d from the detected current and voltage values and determines the maximum and minimum ones among the charging state values. The charging/discharging controlling means 105 controls charging of the storage means by the maximum charging state value and discharging of the storage means by the minimum charging state value. In charging/discharging controlling, the charging/discharging controlling means 105 controls currents, voltages, or power.
  • By the way, when a plurality of parallel-series connected storage means are charged, a storage means having the greatest charging status (quantity of electric charge) completes charging first. Therefore, the charging/discharging controlling means [0103] 105 controls charging according to the storage means having the greatest charging status.
  • Similarly, when a plurality of parallel-series connected storage means are discharged, a storage means having the smallest charging status completes discharging first. Therefore, the charging/discharging controlling means [0104] 105 controls discharging according to the storage means having the smallest charging status.
  • Here, the charging status (or state of charge (SOC)) indicates how much a storage means is charged and the discharging status (or depth of discharge (DOD)) indicates how much charge a storage means has to discharge. [0105]
  • The charging and discharging states of the storage means [0106] 101 a to 101 d can be known from their impedances and voltage values. Further this embodiment causes the status detecting means 104 to detect the status (such as open circuit voltage) of respective storage means 101 a to 101 d and controls the charging or discharging currents according to the quantities of states in the method similar to the example of FIG. 1. Further, this embodiment controls the charging/discharging time and so on by the above charging state, that is, the greatest or smallest charging state value.
  • This can provide a power storage energy management system that can charge or discharge series-parallel connected power storage means safely without causing any problem. [0107]
  • As described above, the second embodiment of this invention can accomplish the effects similar to those of the first embodiment and control charging and discharging of respective storage means according to their charging or discharging status. [0108]
  • FIG. 5 is a schematic diagram of a power control apparatus which is the third embodiment of the invention. This embodiment is an example of applying the invention to a power charging/discharging controlling means. [0109]
  • In FIG. 5, switches [0110] 106 a and 106 b are of the mechanical relay type or semiconductor element type.
  • The [0111] switch 106 a is connected in series to storage means 101 a and 101 c and a current measuring means 103 c. The switch 106 b is connected in series to storage means 101 b and 101 d and a current measuring means 103 d.
  • These series sets of switch [0112] 106, storage means 101 and current measuring means 103 are connected in parallel to a charging/discharging controlling means 105. A voltage measuring means 102 is connected in parallel to each storage means 101 (e.g. voltage measuring means 102 a to storage means 101 a, voltage measuring means 102 b to storage means 101 b, voltage measuring means 102 b to storage means 101 b, and voltage measuring means 102 d to storage means 101 d).
  • The charging/discharging controlling means [0113] 105 is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • The voltage measuring means [0114] 102 a to 102 d, the current measuring means 103 c, 103 d, and switches 106 a, 106 b are connected to the status detecting means 104 which is connected to the charging/discharging controlling means 105.
  • The status detecting means [0115] 104 works to control and detect on/off status of the switches 106 a and 106 b. It also detects the status values of respective storage means 101 a to 101 d such as internal impedances, open-circuit voltages, and charging status (remaining charges and charge quantities).
  • The charging/discharging controlling means [0116] 105 controls charging/discharging currents, voltages, or powers according to the on/off status of the switches 106 a, 106 b, and the status quantities of the storage means 101 a to 101 d.
  • Switches [0117] 106 a and 106 b are used to select or replace storage means without stopping the power supply. For example, you can replace either or both of the storage means 102 b and 102 d by new storage means by making the switch 106 a and opening the switch 106 b. These switches can be used also to disconnect the storage means from a load or from the charging/discharging controlling means 105.
  • Also when the storage means [0118] 101 a to 101 d are disconnected from the switch 106 a or 106 b, the voltage measuring means 102 a to 102 d can send the detected values normally to the status detecting means 104.
  • Therefore if the charging/discharging controlling means [0119] 105 charges or discharges a storage means without knowing that a switch 106 a or 106 b is open, the storage means connected to the charging/discharging controlling means 105 may be disturbed. To prevent this, the third embodiment of this invention detects the on/off status of the switches 106 a to 106 b.
  • The other actions and functions of the third embodiment are similar to those of the first embodiment. [0120]
  • As described above, the third embodiment of this invention can accomplish the effects similar to those of the first embodiment even when switches are connected in series to the storage means. [0121]
  • FIG. 6 is a schematic diagram of a power control apparatus which is the fourth embodiment of the invention. This embodiment is an example of applying the invention to a power charging/discharging controlling means. [0122]
  • In FIG. 6, a [0123] load 107 is a generic part such as an electronic apparatus to which a power supply apparatus supplies power.
  • Voltage measuring means [0124] 102 a and 102 b are respectively connected in parallel to the storage means 101 a and 101 b as shown in FIG. 6. Further, current measuring means 103 a and 103 b are respectively connected in series to the storage means 101 a and 101 b.
  • A [0125] load 107 and a charging/discharging controlling means 105 a connected in parallel to the storage means 101 a. Charging/discharging controlling means 105 a and 105 b are connected in parallel to the storage means 101 b. This charging/discharging controlling means 105 b is connected to a power supply such as a commercial power supply, a power generator and a fuel cell and to a load such as an electronic apparatus (which are not shown in the drawing).
  • Further, a status detecting means [0126] 104 a is connected to the voltage measuring means 102 a and a current measuring means 103 a. A status detecting means 104 b is connected to the voltage measuring means 102 b and a current measuring means 103 b.
  • The status detecting means [0127] 104 a is housed in the charging/discharging controlling means 105 a and the status detecting means 104 b is housed in the charging/discharging controlling means 105 b. The charging/discharging controlling means 105 a and 105 b are so configured to transfer their current control signals and storage-means status values to and from each other.
  • The purpose of this configuration is to enable the charging/discharging [0128] means 101 a and 101 b to cooperate or separately work to supply power to the load 107 or the other electronic apparatus.
  • The other operations and functions of the status detecting means [0129] 104 a and 104 b and the charging/discharging controlling means 105 a and 105 b are similar to those of the first embodiment of FIG. 1.
  • As described above, the fourth embodiment of this invention can accomplish the effects similar to those of the first embodiment. Additionally this embodiment enables connection of multiple storage means and multiple charging/discharging means and enables the charging/discharging means to share state quantity data of the storage means and information of respective charging/discharging means. With this, the power control apparatus can control charging and discharging current, voltages, or powers of the charging/discharging means according to the status quantities of storage means and thus utilize the storage means. [0130]
  • FIG. 7 is a schematic diagram of a power control apparatus which is the fifth embodiment of the invention. This embodiment is an example of applying the invention to a storage-means energy management system. [0131]
  • In FIG. 7, the storage-means energy management system contains a [0132] commercial power supply 108, a solar energy generator 109, power supply switches 110 a to 110 e, and a fuel cell apparatus 114.
  • A charging/discharging controlling means [0133] 105 is connected to the commercial power supply 108, the solar energy generator 109, the fuel cell apparatus 114, and the load apparatus 107 through the power supply switches 110 a to 110 e.
  • The [0134] fuel cell apparatus 114, the solar energy generator 109, the load apparatus 107, the power supply switches 110 a to 110 e, and the MCU of the charging/discharging controlling means 105 are interconnected with two-way communication systems. The output signals of the status detecting means 104 are fed to the MCU of the charging/discharging controlling means 105.
  • The [0135] fuel cell apparatus 114 produces electric energy by oxidative reaction of oxygen (in air) and hydrogen gas stored in container or hydrogen gas obtained by modifying gasoline or methanol and outputs a.c. power through a converter or the like.
  • The [0136] solar energy generator 109 photo-electrically converts solar light into d.c. power by solar cells and outputs a.c. power through a converter or the like.
  • The [0137] load apparatus 107 generically represents home electric appliances (e.g. an electric/electronic apparatus such as air conditioner, refrigerator, microwave oven, and lamps) and electric equipment (e.g. motor, elevator, personal computer, and medical apparatus).
  • The [0138] load apparatus 107 may contain a switch 110 in it.
  • The storage means [0139] 101 a to 101 d, the voltage measuring means 102 a to 102 d, and the current measuring means 103 c and 103 d are connected in a configuration similar to that of the embodiment of FIG. 5 (excluding switches 106 a and 106 b).
  • The MCU controls charging and discharging of the storage means [0140] 101 a to 101 d by controlling a current control circuit comprising of transistors (TR1 to TR6), diodes (D1 to D6), resistors (R1 and R2), a capacitor (C), and coils (L1 and L2) according to status detection signals sent from the status detecting means 104 which has a function similar to that of the embodiment of FIG. 5.
  • The embodiment of FIG. 7 normally supplies required power to the [0141] load apparatus 107 from the commercial power supply 108, the solar energy generator 109, and the fuel cell apparatus 114.
  • When detecting that power from the [0142] commercial power supply 108, the solar energy generator 109, and the fuel cell apparatus 114 is not enough, the MCU supplies power to the load apparatus 107 from the storage means 101 a to 101 d through the charging/discharging controlling means 105.
  • When detecting that power from the [0143] commercial power supply 108, the solar energy generator 109, and the fuel cell apparatus 114 is excessive, the MCU charges the storage means 101 a to 101 d through the charging/discharging controlling means 105.
  • In the above operation, the status detecting means [0144] 104 detects the status of respective storage means 101 a to 101 d. Judging from these status values, the MCU determines currents, voltages, and power required by the commercial power supply 108, the solar energy generator 109, the fuel cell apparatus 114, and the load apparatus 107. The charging/discharging controlling means 105 controls the charging or discharging currents, voltages, and power required by them.
  • As described above, the fifth embodiment of this invention can accomplish the effects similar to those of the first embodiment. [0145]
  • As the fifth embodiment can quickly charge storage means and obtain great discharging currents relative to the storage capacity without causing any problem, it can reduce the contract demand and power consumption of the [0146] commercial power supply 108 and the rated power generation of the solar energy generator 109 and the fuel cell apparatus 114. This can reduce charging means costs, equipment expenses, and running costs.
  • This embodiment can ease concentration of power consumption and even out the power consumption by supplying power to the [0147] commercial power supply 108 from the storage means when a power consumption concentrates on a certain period and charging the storage means when a power consumption is less.
  • The energy management system for storage means stated in the fifth embodiment of this invention can take a configuration other than the illustrated one. [0148]
  • The fifth embodiment is applicable to production plants, building systems, general households, and so on. [0149]
  • FIG. 8 is a schematic diagram of a power control apparatus which is the sixth embodiment of the invention. This embodiment is an example of applying the invention to a storage-means energy management system, particularly to railway vehicles, automobiles, and so on. [0150]
  • In FIG. 8, the storage-means energy management system contains a low-[0151] potential load apparatus 111, a high-potential load apparatus 112, and a motor generator 113.
  • The [0152] motor generator 113 is connected to a charging/discharging controlling means 105 b which is functionally similar to that in the storage-means energy management system of FIG. 7.
  • The storage means ([0153] 101 a and 101 b), the voltage measuring means (102 a and 102 b), the current measuring means (103 a and 103 b), the status detecting means (104 a and 104 b), and the charging/discharging controlling means 105 are configured similarly to that of FIG. 6, but the status detecting means 104 b is not housed in the charging/discharging controlling means 105 b.
  • In the embodiment of FIG. 8, the high-potential load apparatus [0154] 112 is connected to the charging/discharging controlling means 105 b (configuration similar to that of FIG. 8) on the storage means 101 b side through the charging/discharging controlling means 105 c (configuration similar to the charging/discharging controlling means 105 b). The low-potential load apparatus 111 connected to the storage means 101 a.
  • The [0155] motor generator 113 works to start the engine (internal combustion engine), assist the driving force of the engine (powering), and generate power (regeneration). During powering, the motor generator 113 receives power from the storage means 101 a and 101 b. During regeneration, the motor generator 113 supplies power to the storage means 101 a and 101 b.
  • The low-[0156] potential load apparatus 111 are electric loads and other power supply units of rated voltages from some volts to 42 volts such as solenoid valves of the engine and audio sets.
  • The high-potential load apparatus [0157] 112 are electric loads having rated voltages of some hundred volts such as lamps and an air conditioner.
  • Also in this embodiment, the status detecting means [0158] 104 a and 104 b detect the status of respective storage means 101 a and 101 b. The charging/discharging controlling means 105 b controls charging or discharging currents, voltages, and powers according to the detected status quantities considering the I/O requests of the motor generator 113, the low-potential load apparatus 111, and the high-potential load apparatus 112.
  • This embodiment enables the charging/discharging means ([0159] 105 a to 105 c) to share state quantity data of the storage means (101 a, 101 b and 101 c) and information of respective charging/discharging means (105 a, 105 b, and 105 c) and thus utilizes the storage means.
  • As described above, the sixth embodiment of this invention can accomplish the effects similar to those of the first embodiment. [0160]
  • When applied to a tracked vehicle such as electric car, hybrid electric car, railway car, and mono-rail car, the power storage energy management system which is the sixth embodiment of this invention can reduce the charging time and the weight of the storage means. Therefore, this system can assist engine torques at the startup of the engine, convert kinetic energy of braking into electric power, and store the regenerated power, which leads to reduction of shipping cost of the system and maintenance frequency. [0161]
  • Although the above embodiment is an example of applying a power control apparatus of this invention to a charging/discharging controlling means, this invention can also be applied to a charging controlling apparatus and a discharging controlling apparatus. [0162]
  • In other words, when applied to a charging controlling apparatus, the power control apparatus calculates the internal impedance of each storage means from the detected current and voltage and controls the charging current to satisfy Expressions (5) and (6). [0163]
  • When applied to a discharging controlling apparatus, the power control apparatus calculates the internal impedance of each storage means from the detected current and voltage and controls the discharging current to satisfy Expressions (7) and (8). [0164]
  • Further, as the embodiments of this invention can calculate the internal impedance of respective storage means, it is possible to estimate the service life of each storage means from its impedance value. This estimation is carried out by the current controlling section [0165] 105 f in FIG. 2.
  • Therefore, it is possible to show the service life and the expected replacement time of each storage means. [0166]
  • This invention can provide a power control apparatus that can control charging and discharging of a plurality of storage means without causing any problem while reducing the charging periods and capacities relative to the discharging current values. [0167]
  • Although the present invention has been illustrated and described with respect to exemplary embodiment thereof, it should be understood by those skilled in the art that the foregoing and various other changes, omission and additions may be made therein and thereto, without departing from the spirit and scope of the present invention. Therefore, the present invention should not be understood as limited to the specific embodiment set out above but to include all possible embodiments which can be embodied within a scope encompassed and equivalent thereof with respect to the feature set out in the appended claims. [0168]

Claims (12)

What is claimed is:
1. A power control apparatus for controlling charging and discharging of a plurality of storage means, comprising
voltage measuring means for measuring voltages of said storage means respectively,
current measuring means for measuring currents flowing through said storage means respectively,
a status detecting means for detecting the operating status of each storage means from values measured by said voltage measuring means and said current measuring means, and
a charging/discharging controlling means for controlling currents, voltages, or power according to the operating status of each storage means detected by said status detecting means to charge or discharge said storage means.
2. The power control apparatus of claim 1, wherein said status detecting means calculates the internal impedance or open circuit voltage of each storage means and the charging/discharging controlling means controls charging/discharging currents, voltages, or power of said storage means according to impedances or open circuit voltages thereof.
3. The power control apparatus of claim 1, wherein
said status detecting means calculates the internal impedance or open circuit voltage of each storage means, and
said charging/discharging controlling means calculates the permissible charging or discharging current value of each storage means from its int ernal impedance, open circuit voltage, preset maximum permissible voltage and minimum permissible voltage, calculates the sum of all currents flowing through said storage means to suppress a current over the calculated permissible charging or discharging current from flowing into or out of each of said storage means and controls the charging or discharging current to make the total current below the calculated total current value.
4. The power control apparatus of claim 1, wherein
said status detecting means calculates the charging status of each storage means and determines the maximum or minimum of the calculated charging states, and
said charging/discharging controlling means controls the charging current, voltage, or power by the maximum charging status value and controls the discharging current, voltage, or power by the minimum charging status value.
5. The power control apparatus of claim 1, wherein said power control apparatus further comprises a switch means which selectively breaks or makes a connection between said charging/discharging controlling means and any storage means and said charging/discharging controlling means checks the on/off status of said switch means and controls the current, voltage or power according to the detected on/off status of said switch means and the running status of each storage means to discharge or charge the storage means.
6. The power control apparatus of claim 5, wherein
said status detecting means calculates the internal impedance or open circuit voltage of each storage means and said charging/discharging controlling means controls charging/discharging currents, voltages, or power of said storage means according to the impedances or open circuit voltages thereof.
7. The power control apparatus of claim 5, wherein
said status detecting means calculates the charging status of each storage means and determines the maximum or minimum of the calculated charging states, and
said charging/discharging controlling means controls the charging current, voltage, or power by the maximum charging status value and controls the discharging current, voltage, or power by the minimum charging status value.
8. The power control apparatus of claim 1, further comprising a load and a means selected from a group of a commercial power supply, a solar energy generator, a micro gas turbine generator and a fuel cell to supply power to said load, wherein said power control apparatus supplies power to said load or said commercial power supply and uses power from said commercial power supply, a solar energy generator, a micro gas turbine generator or a fuel cell as a charging power.
9. The power control apparatus of claim 1, wherein said storage means supply power to an electric motor which drives vehicle wheels and are charged by power from the outside of a vehicle or power from said electric motor when said motor is used as a power generator.
10. The power control apparatus of claim 1, wherein said storage means supply power to an electric motor which drives vehicle wheels and are charged by power generated by a dynamo-electric generator which is driven by a internal combustion engine on a vehicle or power from said electric motor when said motor is used as a power generator.
11. A power control apparatus for controlling charging of a plurality of storage means comprising
voltage measuring means for measuring voltages of said storage means respectively,
current measuring means for measuring currents flowing through said storage means respectively,
a status detecting means for respectively calculating the internal impedances and open circuit voltages of said storage means from values measured by said voltage and current measuring means, and
a charging current controlling means calculates a permissible charging current value of each storage means from its internal impedance or open circuit voltage and a preset maximum permissible charging voltage which are detected by said status detecting means calculates the sum of all currents flowing through said storage means to suppress a current over t he calculated current from flowing into said storage means, and controls the charging current to make the current below the calculated total current value.
12. A power control apparatus for controlling discharging of a plurality of storage means comprising
voltage measuring means for measuring voltages of said storage means respectively,
current measuring means for measuring currents flowing through said storage means respectively,
a status detecting means for respectively calculating the internal impedances and open circuit voltages of said storage means from values measured by said voltage and current measuring means, and
a discharging current controlling means calculates a permissible discharging current value of each storage means from its internal impedance or open circuit voltage and a preset maximum permissible discharging voltage which are detected by said status detecting means calculates the sum of all currents flowing through said storage means to suppress a current over the calculated current from flowing from said storage means, and controls the discharging current to make the current below the calculated total discharging current value.
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Cited By (45)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050052161A1 (en) * 2003-09-08 2005-03-10 Scamard David Franklin Instant charge battery
US20060087291A1 (en) * 2004-10-24 2006-04-27 Yutaka Yamauchi Method of controlling rechargeable battery power and a power source apparatus
US20070052424A1 (en) * 2005-09-06 2007-03-08 Fujitsu Limited Anomaly detection method of battery pack, battery pack and electronic apparatus
EP1837944A2 (en) 2006-03-24 2007-09-26 Hitachi Industrial Equipment Systems Co. Ltd. Electric power supply control apparatus
US7466103B2 (en) 2004-12-17 2008-12-16 Hitachi, Ltd. Battery module
US20090266631A1 (en) * 2006-05-15 2009-10-29 Toyota Jidosha Kabushiki Kaisha Charge/Discharge Control Device and Charge/Discharge Control Method for Power Storage Device, and Electric-Powered Vehicle
US20090280400A1 (en) * 2008-02-27 2009-11-12 Hisashi Tsukamoto Battery pack having batteries in a porous medium
EP2211416A1 (en) * 2007-09-25 2010-07-28 Panasonic Corporation Power supply system and cell assembly control method
CN101872972A (en) * 2009-04-21 2010-10-27 陈金恩 Power supply device for automobile fuse testing bench
US20110208383A1 (en) * 2008-10-31 2011-08-25 Masaya Yamamoto Electric powered vehicle and control method for the same
US8076022B1 (en) 2007-04-09 2011-12-13 Quallion Llc Battery cover having one or more quenching media
US20120004875A1 (en) * 2010-06-30 2012-01-05 Reizo Maeda Method of detecting battery internal resistance
CN102725936A (en) * 2010-11-25 2012-10-10 松下电器产业株式会社 Charging control circuit, battery driven apparatus, charging apparatus, and charging method
US20130038296A1 (en) * 2010-03-18 2013-02-14 Conrad Roessel System For Storing Electric Energy
US20130063090A1 (en) * 2011-09-08 2013-03-14 Junji Takeshita Battery protection circuit and battery protection device, and battery pack
CN103078389A (en) * 2011-10-25 2013-05-01 通用电气公司 Integrated power system control method and related apparatus with energy storage element
US20130162052A1 (en) * 2011-12-22 2013-06-27 Andreas Stihl Ag & Co., Kg Protective circuit for a rechargeable battery pack
US20130252035A1 (en) * 2010-11-29 2013-09-26 Bayerische Motoren Werke Aktiengesellschaft Energy Storage Device for a Motor Vehicle
CN103339852A (en) * 2011-02-07 2013-10-02 新明和工业株式会社 Electric-powered system using power storage apparatus, and work vehicle comprising same
GB2507955A (en) * 2012-09-24 2014-05-21 Siemens Elema Ab Parallel charging & discharging of multiple lead acid batteries
EP2587607A3 (en) * 2011-10-25 2014-08-27 General Electric Company Integrated power system control method and related apparatus with energy storage element
US8879225B2 (en) 2011-12-22 2014-11-04 Andreas Stihl Ag & Co. Kg Protective circuit for a rechargeable battery pack
WO2014202102A1 (en) * 2013-06-20 2014-12-24 Volvo Truck Corporation Method for controlling an energy storage system
EP2822127A3 (en) * 2013-07-01 2015-01-21 Bender GmbH & Co. KG Method and device for adjusting a load current depending on the internal resistance
US8968913B2 (en) 2011-12-22 2015-03-03 Andreas Stihl Ag & Co. Kg Rechargeable battery pack for an electrical load
US9035493B2 (en) 2010-08-10 2015-05-19 Kabushiki Kaisha Toshiba Power-fluctuation reducing apparatus for power generation system
US9054533B2 (en) 2011-12-22 2015-06-09 Andreas Stihl Ag & Co. Kg Protective circuit for a rechargeable battery pack
US20160020618A1 (en) * 2014-07-21 2016-01-21 Ford Global Technologies, Llc Fast Charge Algorithms for Lithium-Ion Batteries
US9289893B2 (en) 2011-12-22 2016-03-22 Andreas Stihl Ag & Co. Kg Electric work apparatus with an electric load and a rechargeable battery pack
US20170179739A1 (en) * 2015-12-21 2017-06-22 General Electric Company System and Method for Protecting Energy Storage Systems from Overcurrent Conditions
EP3089315A4 (en) * 2013-12-27 2017-10-04 Fujikura Ltd. Electricity storage system and electricity storage method
EP3272575A1 (en) * 2016-06-29 2018-01-24 MAN Truck & Bus AG Method for operating a traction energy storage system
JP2018050400A (en) * 2016-09-21 2018-03-29 オートモーティブエナジーサプライ株式会社 Charging stop method for electrical power system
WO2018087094A1 (en) * 2016-11-10 2018-05-17 Tanktwo Oy Detection of false reporting in a smart battery system
CN110892606A (en) * 2017-09-11 2020-03-17 松下知识产权经营株式会社 Power storage system and management device
US20200259354A1 (en) * 2019-02-07 2020-08-13 Toyota Jidosha Kabushiki Kaisha Charging and discharging control device for battery pack and charging and discharging control method for battery pack
WO2021121813A1 (en) * 2019-12-20 2021-06-24 Robert Bosch Gmbh Electric processing tool having an energy supply device
US11190036B2 (en) * 2017-07-07 2021-11-30 Mirai-Labo Kabushiki Kaisha Power supply device with replaceable batteries and power supply control method
US20210391731A1 (en) * 2019-02-22 2021-12-16 Aurora Flight Sciences Corporation Battery management system
CN114080331A (en) * 2019-07-18 2022-02-22 松下知识产权经营株式会社 Management device and power supply system
US11277013B2 (en) 2017-06-08 2022-03-15 Panasonic Intellectual Property Management Co., Ltd. Power storage system having a plurality of power storage blocks interconnected in parallel and control device
EP3876387A4 (en) * 2018-10-29 2022-08-10 Kyocera Corporation Power storage system, control device for power storage device, and control method
US11594895B2 (en) 2018-09-13 2023-02-28 Honda Motor Co., Ltd. Power supply system
US11862978B2 (en) * 2016-03-30 2024-01-02 Panasonic Energy Co., Ltd. Power supply system, control system and power control method for power supply system
US11870292B2 (en) 2019-10-30 2024-01-09 Lg Energy Solution, Ltd. Apparatus and method for controlling power of parallel multi pack system

Families Citing this family (70)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP4605952B2 (en) 2001-08-29 2011-01-05 株式会社日立製作所 Power storage device and control method thereof
WO2006121005A1 (en) * 2005-05-13 2006-11-16 Matsushita Electric Industrial Co., Ltd. Engine starting device and automobile using the same
US20120146572A1 (en) * 2005-08-24 2012-06-14 Ward Thomas A Solar panel charging system for electric vehicle that charges individual battery cells with direct parallel connections to solar panels and interconnected charge controllers
JP4745879B2 (en) 2006-04-06 2011-08-10 日立ビークルエナジー株式会社 Hybrid vehicle control system, hybrid vehicle control method, and vehicle storage battery control system
US7605492B2 (en) * 2006-04-21 2009-10-20 Ford Global Technologies, Llc Power supply system and method for supplying power to a vehicle
US7671578B2 (en) * 2006-07-11 2010-03-02 System General Corp. Detection circuit for sensing the input voltage of transformer
JP4921878B2 (en) * 2006-07-24 2012-04-25 株式会社東芝 Railway vehicle power storage device control method
JP4542536B2 (en) * 2006-11-06 2010-09-15 株式会社日立製作所 Power control device
JP2010518804A (en) * 2007-02-09 2010-05-27 エイ 123 システムズ,インク. Control system and hybrid vehicle having reconfigurable multi-function power converter
JP4179383B2 (en) * 2007-02-13 2008-11-12 トヨタ自動車株式会社 Driving force generation system, vehicle including the same, and control method thereof
US7847436B2 (en) * 2007-10-17 2010-12-07 Edwin Arthur Blackmond Modular power supply
JP4959511B2 (en) * 2007-11-07 2012-06-27 富士重工業株式会社 Charge control device for storage battery
DE602008004309D1 (en) * 2008-03-10 2011-02-17 Roche Diagnostics Gmbh Medical device and charging station for it
JP4469000B2 (en) 2008-04-18 2010-05-26 トヨタ自動車株式会社 Power supply system, vehicle equipped with the same, and control method of power supply system
US8120200B2 (en) * 2008-11-05 2012-02-21 Delphi Technologies, Inc. Fast response failure mode control methodology for a hybrid vehicle having an electric machine
JP5357526B2 (en) * 2008-12-10 2013-12-04 ジャパンマリンユナイテッド株式会社 Ship power equipment and operation method thereof
JP4576465B2 (en) * 2009-03-06 2010-11-10 三菱重工業株式会社 Charging method and charging system for overhead line-less traffic vehicle
CN102195333A (en) * 2010-03-17 2011-09-21 新神户电机株式会社 Direct-current power source apparatus
US9007025B2 (en) * 2010-04-07 2015-04-14 Dell Products, L.P. Systems and methods for configuring and charging hybrid battery systems
JP5413504B2 (en) 2010-04-09 2014-02-12 トヨタ自動車株式会社 COMMUNICATION DEVICE, COMMUNICATION SYSTEM, AND VEHICLE
EP2557745B1 (en) * 2010-04-09 2016-02-10 Toyota Jidosha Kabushiki Kaisha Vehicle, communication system, and communication device
US8725330B2 (en) 2010-06-02 2014-05-13 Bryan Marc Failing Increasing vehicle security
JP5585308B2 (en) * 2010-08-26 2014-09-10 日産自動車株式会社 Battery control device
JP2012152050A (en) * 2011-01-20 2012-08-09 Yokogawa Electric Corp Cell power supply device
US9751418B2 (en) * 2011-08-12 2017-09-05 Nec Corporation Charge managing system, charger, and program
JP5803446B2 (en) * 2011-09-02 2015-11-04 ミツミ電機株式会社 Semiconductor integrated circuit, protection circuit and battery pack
JP5479429B2 (en) * 2011-10-14 2014-04-23 株式会社東芝 Railway vehicle
US8576525B2 (en) * 2011-11-18 2013-11-05 Anmax Lightning Technology Corp Serial surge suppression and overload protection optimization device
DE102011088112A1 (en) * 2011-12-09 2013-06-13 Bayerische Motoren Werke Aktiengesellschaft motor vehicle
CN102593917A (en) * 2012-03-12 2012-07-18 无锡新纬电池有限公司 Voltage balancing method of high-precision lithium battery module
JP5971626B2 (en) * 2012-03-15 2016-08-17 株式会社日立製作所 Battery system
DE102012007906A1 (en) * 2012-04-23 2013-10-24 Audi Ag Method for preparing a power supply of a vehicle
JP5783129B2 (en) * 2012-04-27 2015-09-24 トヨタ自動車株式会社 Electric vehicle
KR20130142409A (en) * 2012-06-19 2013-12-30 삼성에스디아이 주식회사 Battery pack and controlling method of the same
US8720626B2 (en) * 2012-08-28 2014-05-13 Caterpillar Global Mining Llc Motor drive system
US9472338B2 (en) 2012-09-11 2016-10-18 Qualcomm Incorporated Wireless power transfer system coil arrangements and method of operation
EP2712045B1 (en) * 2012-09-24 2017-05-17 Siemens AB Parallel charging and discharging of multiple lead acid batteries
US8941348B2 (en) 2012-12-18 2015-01-27 Caterpillar Global Mining Llc Motor protection system
KR101743855B1 (en) * 2012-12-21 2017-06-05 도요타지도샤가부시키가이샤 Charging control device using in-vehicle solar cell
JP2014190749A (en) * 2013-03-26 2014-10-06 Panasonic Corp Service life determination device, service life determination system and service life determination method
KR101574969B1 (en) * 2013-09-24 2015-12-21 주식회사 엘지화학 Precise Detector of Charge Current for Charge-Discharge Device
JP5862639B2 (en) * 2013-10-22 2016-02-16 トヨタ自動車株式会社 Solar cell control device
CN103648220A (en) * 2013-12-23 2014-03-19 东莞市奥普特自动化科技有限公司 Controller for automatically detecting maximum working current of light source and detection method thereof
EP3128601B1 (en) * 2014-03-31 2020-03-25 Kabushiki Kaisha Toshiba Backup power source system and method thereof
JP2015191878A (en) * 2014-03-31 2015-11-02 株式会社日立製作所 Lithium ion secondary battery system and method for diagnosing state of lithium ion secondary battery
JP6373662B2 (en) * 2014-07-04 2018-08-15 株式会社マキタ Battery pack
US9889752B2 (en) * 2014-08-19 2018-02-13 General Electric Company Vehicle propulsion system having an energy storage system and optimized method of controlling operation thereof
US9878632B2 (en) 2014-08-19 2018-01-30 General Electric Company Vehicle propulsion system having an energy storage system and optimized method of controlling operation thereof
US9783185B2 (en) 2014-08-19 2017-10-10 General Electric Company Vehicle propulsion system having an energy storage system and optimized method of controlling operation thereof
JP6365222B2 (en) * 2014-10-20 2018-08-01 株式会社豊田自動織機 Control apparatus and control method
CN105137221B (en) * 2015-07-17 2018-08-17 国家电网公司 A kind of anti-isolated island guard time measuring device
CN105186505A (en) * 2015-09-28 2015-12-23 西南交通大学 Method for determining resonant frequency of traction network of AT single-line power supply system
CN105223449A (en) * 2015-10-28 2016-01-06 中国南方电网有限责任公司电网技术研究中心 A kind of asymmetric power transmission line parameter online measurement method
US9783078B2 (en) * 2015-10-30 2017-10-10 Faraday & Future Inc. Systems and methods for disengaging a battery
JP6662694B2 (en) * 2016-04-15 2020-03-11 日野自動車株式会社 Power control device
US11131716B2 (en) 2016-06-23 2021-09-28 Intel Corporation Systems, methods and devices for battery charge state detection
WO2018156647A1 (en) 2017-02-21 2018-08-30 Dynamo Micropower Corporation Control of fuel flow for power generation based on dc link level
JP6834757B2 (en) * 2017-04-28 2021-02-24 トヨタ自動車株式会社 Battery system
JP6794960B2 (en) * 2017-08-22 2020-12-02 トヨタ自動車株式会社 Power system
TWI643424B (en) * 2017-10-24 2018-12-01 圓展科技股份有限公司 Charging control system and power charging management method thereof
US10446883B2 (en) * 2018-03-09 2019-10-15 GM Global Technology Operations LLC Methods for fast-charging batteries
JP7317801B2 (en) * 2018-03-28 2023-07-31 古河電気工業株式会社 Energy storage system and measurement method
JP7135965B2 (en) * 2019-03-26 2022-09-13 株式会社デンソー Secondary battery device
JP2020198723A (en) * 2019-06-04 2020-12-10 日立建機株式会社 Power storage system and work machine
JP7291085B2 (en) * 2020-01-23 2023-06-14 株式会社豊田自動織機 fuel cell system
JP7388277B2 (en) 2020-04-07 2023-11-29 株式会社デンソー Power system control device
JP2021191095A (en) * 2020-05-29 2021-12-13 株式会社日立製作所 Power storage system control device, power storage system, and program
EP4145667A4 (en) 2020-07-21 2024-01-17 Lg Energy Solution Ltd Device and method for controlling output of parallel multi-pack module
JP7323506B2 (en) * 2020-12-25 2023-08-08 プライムプラネットエナジー&ソリューションズ株式会社 Power storage system and control device for power storage system
JP7317247B1 (en) 2022-06-10 2023-07-28 三菱電機株式会社 Parallel battery management device and parallel battery control system

Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6158537A (en) * 1995-07-22 2000-12-12 Toyota Jidosha Kabushiki Kaisha Power supply system, electric vehicle with power supply system mounted thereon, and method of charging storage battery included in power supply system
US6297618B2 (en) * 2000-02-07 2001-10-02 Hitachi Ltd. Power storage device and method of measuring voltage of storage battery
US6435313B2 (en) * 2000-02-28 2002-08-20 Mitsubishi Denki Kabushiki Kaisha Controller for dynamically allocating regenerative power to a rechargeable power supply of an elevator
US6460658B2 (en) * 2000-02-28 2002-10-08 Mitsubishi Denki Kabushiki Kaisha Elevator control apparatus
US6471013B2 (en) * 2000-11-09 2002-10-29 Mitsubishi Denki Kabushiki Kaisha Apparatus for controlling charging and discharging of supplemental power supply of an elevator system
US20030025481A1 (en) * 1997-11-03 2003-02-06 Bertness Kevin I. Energy management system for automotive vehicle
US6559621B2 (en) * 2001-05-21 2003-05-06 Cellex Power Products, Inc. Hybrid energy storage device charge equalization system and method
US6563318B2 (en) * 2000-05-23 2003-05-13 Canon Kabushiki Kaisha Detecting method for detecting internal state of a rechargeable battery, detecting device for practicing said detecting method, and instrument provided with said detecting device
US20030195719A1 (en) * 2002-04-10 2003-10-16 Hitachi, Ltd. State detecting system and device employing the same
US6856866B2 (en) * 2000-12-04 2005-02-15 Matsushita Electric Industrial Co., Ltd. Apparatus for controlling hybrid electric vehicle
US20050040789A1 (en) * 2003-08-18 2005-02-24 General Electric Company Vehicle energy storage system control methods and method for determining battery cycle life projection for heavy duty hybrid vehicle applications

Family Cites Families (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5853523A (en) * 1981-09-25 1983-03-30 Mitsubishi Electric Corp Electric power regenerative mechanism for electric car
US4599523A (en) * 1984-02-16 1986-07-08 Intermedics, Inc. Power priority system
US5289778A (en) * 1992-07-06 1994-03-01 Romine Richard A Automated electric transportation system
JP3409458B2 (en) 1994-09-16 2003-05-26 日産自動車株式会社 Battery pack charging device
US5571058A (en) * 1995-08-08 1996-11-05 General Motors Corporation Four-mode, input-split, paralell, hybrid transmission
US6167309A (en) * 1997-09-15 2000-12-26 Cardiac Pacemakers, Inc. Method for monitoring end of life for battery
US6631293B2 (en) * 1997-09-15 2003-10-07 Cardiac Pacemakers, Inc. Method for monitoring end of life for battery
JP2001185228A (en) 1999-12-24 2001-07-06 Sanyo Electric Co Ltd Electric power supply equipped with battery
US6744164B2 (en) * 2000-05-24 2004-06-01 Matsushita Electric Industrial Co., Ltd. Motor, electric vehicle and hybrid electric vehicle
JP4560825B2 (en) 2000-10-31 2010-10-13 日産自動車株式会社 Assembled battery
JP2003180038A (en) * 2001-12-11 2003-06-27 Rohm Co Ltd Charge controller
US6958591B1 (en) * 2002-05-22 2005-10-25 National Semiconductor Corporation Battery charging safety circuit for simultaneous startup and rapid surge current clamping
JP4078880B2 (en) * 2002-05-24 2008-04-23 日産自動車株式会社 Power storage system
JP3771526B2 (en) * 2002-10-21 2006-04-26 株式会社日立製作所 Secondary battery evaluation method and power storage device
US7436644B2 (en) * 2002-12-20 2008-10-14 Sony Corporation Switching circuit, switching method, protective device and battery pack
US6946818B2 (en) * 2003-10-14 2005-09-20 General Motors Corporation Method of determining battery power limits for an energy storage system of a hybrid electric vehicle
US7626365B2 (en) * 2003-11-26 2009-12-01 Motorola Inc. Charging system and method

Patent Citations (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6158537A (en) * 1995-07-22 2000-12-12 Toyota Jidosha Kabushiki Kaisha Power supply system, electric vehicle with power supply system mounted thereon, and method of charging storage battery included in power supply system
US20030025481A1 (en) * 1997-11-03 2003-02-06 Bertness Kevin I. Energy management system for automotive vehicle
US6297618B2 (en) * 2000-02-07 2001-10-02 Hitachi Ltd. Power storage device and method of measuring voltage of storage battery
US6435313B2 (en) * 2000-02-28 2002-08-20 Mitsubishi Denki Kabushiki Kaisha Controller for dynamically allocating regenerative power to a rechargeable power supply of an elevator
US6460658B2 (en) * 2000-02-28 2002-10-08 Mitsubishi Denki Kabushiki Kaisha Elevator control apparatus
US6563318B2 (en) * 2000-05-23 2003-05-13 Canon Kabushiki Kaisha Detecting method for detecting internal state of a rechargeable battery, detecting device for practicing said detecting method, and instrument provided with said detecting device
US6471013B2 (en) * 2000-11-09 2002-10-29 Mitsubishi Denki Kabushiki Kaisha Apparatus for controlling charging and discharging of supplemental power supply of an elevator system
US6856866B2 (en) * 2000-12-04 2005-02-15 Matsushita Electric Industrial Co., Ltd. Apparatus for controlling hybrid electric vehicle
US6559621B2 (en) * 2001-05-21 2003-05-06 Cellex Power Products, Inc. Hybrid energy storage device charge equalization system and method
US20030195719A1 (en) * 2002-04-10 2003-10-16 Hitachi, Ltd. State detecting system and device employing the same
US20050040789A1 (en) * 2003-08-18 2005-02-24 General Electric Company Vehicle energy storage system control methods and method for determining battery cycle life projection for heavy duty hybrid vehicle applications

Cited By (68)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20050052161A1 (en) * 2003-09-08 2005-03-10 Scamard David Franklin Instant charge battery
WO2006006949A1 (en) * 2003-09-08 2006-01-19 Scamard David F A capacitor used as a power supply for a battery charging
US20060087291A1 (en) * 2004-10-24 2006-04-27 Yutaka Yamauchi Method of controlling rechargeable battery power and a power source apparatus
US7466103B2 (en) 2004-12-17 2008-12-16 Hitachi, Ltd. Battery module
US20070052424A1 (en) * 2005-09-06 2007-03-08 Fujitsu Limited Anomaly detection method of battery pack, battery pack and electronic apparatus
EP1837944A2 (en) 2006-03-24 2007-09-26 Hitachi Industrial Equipment Systems Co. Ltd. Electric power supply control apparatus
US20090266631A1 (en) * 2006-05-15 2009-10-29 Toyota Jidosha Kabushiki Kaisha Charge/Discharge Control Device and Charge/Discharge Control Method for Power Storage Device, and Electric-Powered Vehicle
US8820445B2 (en) * 2006-05-15 2014-09-02 Toyota Jidosha Kabushiki Kaisha Charge/discharge control device and charge/discharge control method for power storage device, and electric-powered vehicle
EP2019468A4 (en) * 2006-05-15 2015-12-16 Toyota Motor Co Ltd Storage battery charging/discharging controller, charging/discharging control method, and electrically driven vehicle
US8076022B1 (en) 2007-04-09 2011-12-13 Quallion Llc Battery cover having one or more quenching media
EP2211416A4 (en) * 2007-09-25 2012-01-18 Panasonic Corp Power supply system and cell assembly control method
EP2211416A1 (en) * 2007-09-25 2010-07-28 Panasonic Corporation Power supply system and cell assembly control method
US20100194342A1 (en) * 2007-09-25 2010-08-05 Shigeyuki Sugiyama Power supply system and cell assembly control method
US20090280400A1 (en) * 2008-02-27 2009-11-12 Hisashi Tsukamoto Battery pack having batteries in a porous medium
US8227103B2 (en) 2008-02-27 2012-07-24 Quallion Llc Battery pack having batteries in a porous medium
US20110208383A1 (en) * 2008-10-31 2011-08-25 Masaya Yamamoto Electric powered vehicle and control method for the same
US8793041B2 (en) 2008-10-31 2014-07-29 Toyota Jidosha Kabushiki Kaisha Electric powered vehicle and control method for the same
CN101872972A (en) * 2009-04-21 2010-10-27 陈金恩 Power supply device for automobile fuse testing bench
US20130038296A1 (en) * 2010-03-18 2013-02-14 Conrad Roessel System For Storing Electric Energy
US20120004875A1 (en) * 2010-06-30 2012-01-05 Reizo Maeda Method of detecting battery internal resistance
US9035493B2 (en) 2010-08-10 2015-05-19 Kabushiki Kaisha Toshiba Power-fluctuation reducing apparatus for power generation system
CN102725936A (en) * 2010-11-25 2012-10-10 松下电器产业株式会社 Charging control circuit, battery driven apparatus, charging apparatus, and charging method
US9764701B2 (en) * 2010-11-29 2017-09-19 Bayerische Motoren Werke Aktiengesellschaft Energy storage device for a motor vehicle
US20130252035A1 (en) * 2010-11-29 2013-09-26 Bayerische Motoren Werke Aktiengesellschaft Energy Storage Device for a Motor Vehicle
CN103339852A (en) * 2011-02-07 2013-10-02 新明和工业株式会社 Electric-powered system using power storage apparatus, and work vehicle comprising same
US20130063090A1 (en) * 2011-09-08 2013-03-14 Junji Takeshita Battery protection circuit and battery protection device, and battery pack
US9257868B2 (en) 2011-10-25 2016-02-09 General Electric Company Integrated power system control method and related apparatus with energy storage element
US9496748B2 (en) 2011-10-25 2016-11-15 General Electric Company Integrated power system control method and related apparatus with energy storage element
EP2587607A3 (en) * 2011-10-25 2014-08-27 General Electric Company Integrated power system control method and related apparatus with energy storage element
JP2013094050A (en) * 2011-10-25 2013-05-16 General Electric Co <Ge> Integrated power system control method and related apparatus with energy storage element
CN103078389A (en) * 2011-10-25 2013-05-01 通用电气公司 Integrated power system control method and related apparatus with energy storage element
US8968913B2 (en) 2011-12-22 2015-03-03 Andreas Stihl Ag & Co. Kg Rechargeable battery pack for an electrical load
EP2618439A3 (en) * 2011-12-22 2014-01-15 Andreas Stihl AG & Co. KG Protective circuit for a battery pack
US20130162052A1 (en) * 2011-12-22 2013-06-27 Andreas Stihl Ag & Co., Kg Protective circuit for a rechargeable battery pack
CN103187714A (en) * 2011-12-22 2013-07-03 安德烈亚斯.斯蒂尔两合公司 Protective circuit for battery pack
US8879225B2 (en) 2011-12-22 2014-11-04 Andreas Stihl Ag & Co. Kg Protective circuit for a rechargeable battery pack
US9054533B2 (en) 2011-12-22 2015-06-09 Andreas Stihl Ag & Co. Kg Protective circuit for a rechargeable battery pack
US9289893B2 (en) 2011-12-22 2016-03-22 Andreas Stihl Ag & Co. Kg Electric work apparatus with an electric load and a rechargeable battery pack
US9267998B2 (en) * 2011-12-22 2016-02-23 Andreas Stihl Ag & Co. Kg Protective circuit for a rechargeable battery pack
GB2507955A (en) * 2012-09-24 2014-05-21 Siemens Elema Ab Parallel charging & discharging of multiple lead acid batteries
GB2507955B (en) * 2012-09-24 2015-03-18 Siemens Elema Ab Parallel charging & discharging of multiple lead acid batteries
WO2014202102A1 (en) * 2013-06-20 2014-12-24 Volvo Truck Corporation Method for controlling an energy storage system
US20160181838A1 (en) * 2013-06-20 2016-06-23 Volvo Truck Corporation Method for controlling an energy storage system
CN105324907A (en) * 2013-06-20 2016-02-10 沃尔沃卡车集团 Method for controlling an energy storage system
US10505375B2 (en) * 2013-06-20 2019-12-10 Volvo Truck Corporation Method for controlling an energy storage system
EP2822127A3 (en) * 2013-07-01 2015-01-21 Bender GmbH & Co. KG Method and device for adjusting a load current depending on the internal resistance
EP3089315A4 (en) * 2013-12-27 2017-10-04 Fujikura Ltd. Electricity storage system and electricity storage method
US9997954B2 (en) 2013-12-27 2018-06-12 Fujikura Ltd. Power storage system and power storage method
US20160020618A1 (en) * 2014-07-21 2016-01-21 Ford Global Technologies, Llc Fast Charge Algorithms for Lithium-Ion Batteries
US20170179739A1 (en) * 2015-12-21 2017-06-22 General Electric Company System and Method for Protecting Energy Storage Systems from Overcurrent Conditions
US10199841B2 (en) * 2015-12-21 2019-02-05 General Electric Company System and method for protecting energy storage systems from overcurrent conditions
US11862978B2 (en) * 2016-03-30 2024-01-02 Panasonic Energy Co., Ltd. Power supply system, control system and power control method for power supply system
EP3272575A1 (en) * 2016-06-29 2018-01-24 MAN Truck & Bus AG Method for operating a traction energy storage system
JP2018050400A (en) * 2016-09-21 2018-03-29 オートモーティブエナジーサプライ株式会社 Charging stop method for electrical power system
WO2018087094A1 (en) * 2016-11-10 2018-05-17 Tanktwo Oy Detection of false reporting in a smart battery system
US11489354B2 (en) 2016-11-10 2022-11-01 Tanktwo Oy Detection of false reporting in a smart battery system
US11277013B2 (en) 2017-06-08 2022-03-15 Panasonic Intellectual Property Management Co., Ltd. Power storage system having a plurality of power storage blocks interconnected in parallel and control device
US11190036B2 (en) * 2017-07-07 2021-11-30 Mirai-Labo Kabushiki Kaisha Power supply device with replaceable batteries and power supply control method
CN110892606A (en) * 2017-09-11 2020-03-17 松下知识产权经营株式会社 Power storage system and management device
US11329327B2 (en) 2017-09-11 2022-05-10 Panasonic Intellectual Property Management Co., Ltd. Electricity storage system and management device
US11594895B2 (en) 2018-09-13 2023-02-28 Honda Motor Co., Ltd. Power supply system
EP3876387A4 (en) * 2018-10-29 2022-08-10 Kyocera Corporation Power storage system, control device for power storage device, and control method
US20200259354A1 (en) * 2019-02-07 2020-08-13 Toyota Jidosha Kabushiki Kaisha Charging and discharging control device for battery pack and charging and discharging control method for battery pack
US20210391731A1 (en) * 2019-02-22 2021-12-16 Aurora Flight Sciences Corporation Battery management system
US11728661B2 (en) * 2019-02-22 2023-08-15 Aurora Flight Sciences Corporation Battery management system
CN114080331A (en) * 2019-07-18 2022-02-22 松下知识产权经营株式会社 Management device and power supply system
US11870292B2 (en) 2019-10-30 2024-01-09 Lg Energy Solution, Ltd. Apparatus and method for controlling power of parallel multi pack system
WO2021121813A1 (en) * 2019-12-20 2021-06-24 Robert Bosch Gmbh Electric processing tool having an energy supply device

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