US20130248142A1 - Geo-Thermal Air Coil - Google Patents

Geo-Thermal Air Coil Download PDF

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US20130248142A1
US20130248142A1 US13/784,784 US201313784784A US2013248142A1 US 20130248142 A1 US20130248142 A1 US 20130248142A1 US 201313784784 A US201313784784 A US 201313784784A US 2013248142 A1 US2013248142 A1 US 2013248142A1
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air
energy
soil
temperature
transfer
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US13/784,784
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Jeffrey Marc Mason
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    • F24J3/081
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24TGEOTHERMAL COLLECTORS; GEOTHERMAL SYSTEMS
    • F24T10/00Geothermal collectors
    • F24T10/10Geothermal collectors with circulation of working fluids through underground channels, the working fluids not coming into direct contact with the ground
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24DDOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
    • F24D5/00Hot-air central heating systems; Exhaust gas central heating systems
    • F24D5/12Hot-air central heating systems; Exhaust gas central heating systems using heat pumps
    • EFIXED CONSTRUCTIONS
    • E01CONSTRUCTION OF ROADS, RAILWAYS, OR BRIDGES
    • E01CCONSTRUCTION OF, OR SURFACES FOR, ROADS, SPORTS GROUNDS, OR THE LIKE; MACHINES OR AUXILIARY TOOLS FOR CONSTRUCTION OR REPAIR
    • E01C11/00Details of pavings
    • E01C11/24Methods or arrangements for preventing slipperiness or protecting against influences of the weather
    • E01C11/26Permanently installed heating or blowing devices ; Mounting thereof
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24DDOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
    • F24D5/00Hot-air central heating systems; Exhaust gas central heating systems
    • F24D5/02Hot-air central heating systems; Exhaust gas central heating systems operating with discharge of hot air into the space or area to be heated
    • F24D5/04Hot-air central heating systems; Exhaust gas central heating systems operating with discharge of hot air into the space or area to be heated with return of the air or the air-heater
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24TGEOTHERMAL COLLECTORS; GEOTHERMAL SYSTEMS
    • F24T10/00Geothermal collectors
    • F24T10/10Geothermal collectors with circulation of working fluids through underground channels, the working fluids not coming into direct contact with the ground
    • F24T10/13Geothermal collectors with circulation of working fluids through underground channels, the working fluids not coming into direct contact with the ground using tube assemblies suitable for insertion into boreholes in the ground, e.g. geothermal probes
    • F24T10/15Geothermal collectors with circulation of working fluids through underground channels, the working fluids not coming into direct contact with the ground using tube assemblies suitable for insertion into boreholes in the ground, e.g. geothermal probes using bent tubes; using tubes assembled with connectors or with return headers
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28DHEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
    • F28D15/00Heat-exchange apparatus with the intermediate heat-transfer medium in closed tubes passing into or through the conduit walls ; Heat-exchange apparatus employing intermediate heat-transfer medium or bodies
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24DDOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
    • F24D2200/00Heat sources or energy sources
    • F24D2200/11Geothermal energy
    • 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
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B10/00Integration of renewable energy sources in buildings
    • Y02B10/40Geothermal heat-pumps
    • 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
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B30/00Energy efficient heating, ventilation or air conditioning [HVAC]
    • Y02B30/13Hot air central heating systems using heat pumps
    • 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
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/10Geothermal energy

Definitions

  • thermodynamics The first law of thermodynamics teaches that energy can neither be created nor destroyed. Many conditions energy is something that cannot be observed by the human eye, therefore understanding the laws which govern it become very critical in identifying how it will behave in a given system.
  • thermodynamics Since the first law of thermodynamics teaches that the total energy in a system will remain constant in that system, it became essential that in the designing of a heat exchange system that all energy is accounted for and balanced, otherwise the energy being transferred will end up in an undesired location, and cause system the system to become unbalanced.
  • the first major limitation that geothermal systems face is the medium for the exchange.
  • liquid geothermal system adds additional length to the overall tube loop. This increases in length allows additional room for energy transfer to accomplish a specific system requirement, but does not correct the original obstacle of using a medium which transfers energy at a rate faster than the rate soil can absorb.
  • liquid geothermal system adds additional length to the overall tube loop. This increases in length allows additional room for energy transfer to accomplish a specific system requirement, but does not correct the original obstacle of using a medium which transfers energy at a rate faster than the rate soil can absorb.
  • liquid geo-thermal system which is tube size.
  • the size of the tube directly effects the surface area of soil around the tube for the energy transfer.
  • Liquid geo-thermal systems us a small diameter pipe of approximately one inch. ( FIG. 4 b )
  • the amount of soil area participating in the exchange is limited. The greater area of soil you have interacting in the energy transfer the more energy it will hold.
  • FIG. 4 An example of this relationship is shown in FIG. 4 .
  • These drawing use a measurement of 3 inches of soil immediately around the tube to show the example. If the majority of energy transfer in soil is accomplished in 3 inches of soil surrounding the surface of a pipe, that would be a total diameter of 7 inch circle (3 inches on one side, 1 inch pipe, 3 inches on the opposite side), minus the 1 inch in the center for the pipe which the liquid medium passes. The total surface area of the soil in the heat exchange would be 38.48 square inches minus the 0.76 square inches for the center pipe, for a total of 37.72 square inches around the tube.
  • FIG. 4 b However, if that tube had a 12 inch diameter, and you take that same distance of soil, 3 inches, around the pipe the total amount of soil becomes 141.3 square inches.
  • FIG. 4 a Most liquid geothermal system do not use a 12 inch tube or larger tubes in general because of the fundamental problem that liquids can hold large amounts of energy and will transfer more energy than the soil can hold.
  • Air When air or a gas is used as the medium in a geo-thermal system, you do not have these limitations. Air lacks the ability to carry large amounts of energy compared to solids or liquids. The soil is no longer the weakest link in the system, the air inside the tube is. This fundamentally changes certain characteristics in the system.
  • the goal of a geo-thermal system is harness the energy in the earth.
  • Energy in the earth is a combination of energy between the sun and the earth's core.
  • the location of energy transfer can be manipulated. By increasing or decreasing form drag, the system will transfer energy at different rates. A straight tube will have the lowest rate of energy transfer, and while coiling the tube will increase the transfer rate. A straight 90 degree turn would have the highest.
  • the system can be designed to transfer the greatest amounts of energy closer to the top of the soil, where it will gain the most benefit from season soil variation.
  • FIG. 1 displays the general shape of a geo-thermal air coil in relation to depth in the spoil and seasonal soil variation.
  • FIG. 2 displays the use of a system being used to control the ambient temperature of air moving thru the condensing coils on a heat pump/AC unit.
  • FIG. 3 displays the use of a system being blown across a road to keep the surface of the road above freezing.
  • FIG. 4 a displays a 3 inch area of soil surrounding the outside edge of a 10 inch pipe
  • FIG. 4 b displays a 3 inch area of soil surrounding the outside edge of a 1 inch pipe
  • FIG. 4 c displays a 3 inch area of soil surrounding the outside edge of a 10 inch pipe where the 10 inch pipe contains an internal 9 inch pipe, where liquid passes in the space between the 9 and 10 inch pipe.
  • FIG. 5 displays a graph showing the transfer of energy inside of a geo-thermal air coil at different ambient air temperatures.
  • the present invention is a system for created air at a constant temperature regardless of season or ambient air temperature.
  • a system To escape the temperature difference of seasonal soil variation, a system must reach a sufficient depth where energy from the sun in no longer influencing the energy produced by the earth's core.
  • this area is problematic for transferring large amounts of energy over time. Energy can become trapped and soils can become saturated at this deeper level. To balance this, as much energy as possible should be transferred as close to the surface as possible to benefit from the net gain or loss of season soil variation. Every 6 months this works as a reset button to help restore any imbalance by the energy transfer in the soil.
  • the soils at this level have the greatest variation as shown by the graph chart which is superimposed over the system [ 3 ].
  • the temperature variation [ 10 ] and the corresponding lines for soil depth [ 06 ] and [ 7 ] are help illustrate how seasonal soil variation will become diminished each foot as is travel farther below the surface of the soil [ 1 ].
  • a plenum is installed [ 8 ] to act as a drain for any moisture buildup or debris in the system. This allows for a sump pump or one way drain to be installed if required by the system.
  • the air at this point in the system will be at its most optimal temperature, and begin its journey back to the surface in the most direct path possible.
  • the use of insulated tubing could be used at this level but the benefits of laminar flow will help to reduce the energy exchange as the difference in temperature of the soil and temperature of the air begins to grow.
  • the air leaving the system [ 4 ] can be used for the application of the system.
  • FIG. 2 a system for a heat pump or AC unit is demonstrated. Outside ambient air temperature is pulled into an air circulating fan [ 20 ], and pushed down thru the unit [ 21 ].
  • the air once conditioned [ 22 ] can be configured around [ 23 ] the condensation coils of heat pump or AC unit [ 24 ]. Blowing thru a drain cover [ 26 ] towards the compressor, the air is pulled thru the condensation coil by the compressor fan [ 25 ] and out the exhaust of the unit. While the method of delivery using underground vents is not essential, the basic understanding of using the moderate air of the system [ 22 ] to pass thru the condensing coils of the unit [ 24 ] will help the efficiency of that unit.
  • FIG. 3 a system for road is demonstrated.
  • the fan is place in the ground below grade [ 32 ] with a ventilation cover [ 31 ] at ground level.
  • the fan [ 33 ] operates the same as other applications, and the air exists a vent within a curb [ 34 ].
  • the air is blown across the road [ 35 ] to prevent ice from forming during freezing temperatures, keeping the road safe for vehicles [ 36 ].

Abstract

A system designed to harness the natural energy of the sun and earth, by creating an energy exchange between the soil, using air as the medium. The medium, air, is also the desired product in its conditioned form. The energy exchanged in the system is in a harmonious relationship with season soil variation so as to produce constant air temperature regardless of season, or ambient air temperature.

Description

    CROSS-REFERENCE TO RELATED APPLICATIONS
  • This is a non-provisional application of provisional patent application No. 61/634,581, filed on Mar. 2, 2012, and priority is claimed thereto.
  • STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH OR DEVELOPMENT
  • Not applicable.
  • BACKGROUND
  • The interest in acquiring geothermal energy from the earth is great due to the tremendous potential benefit it offers. Failure to master the technology, however, results in limitations which are found in current geothermal systems. Balance with natural forces which this patent refers to as “seasonal soil variation” is a fundamental part in overcoming these limitations. This patent will address current shortcomings, by offering a specific design which offers a revolutionary new improvement, constant air temperature production.
  • The first law of thermodynamics teaches that energy can neither be created nor destroyed. Many conditions energy is something that cannot be observed by the human eye, therefore understanding the laws which govern it become very critical in identifying how it will behave in a given system. Today's geothermal systems lack a complete accounting of the influences that interact within a system, and therefore come short in their abilities to correctly harness this great energy source. Geothermal systems have the potential to be some of the cheapest energy produced, yet they account for one of the smallest producers of energy in today's market. Until now, this has been due to the limitations that our found in these systems.
  • Since the first law of thermodynamics teaches that the total energy in a system will remain constant in that system, it became essential that in the designing of a heat exchange system that all energy is accounted for and balanced, otherwise the energy being transferred will end up in an undesired location, and cause system the system to become unbalanced.
  • The first major limitation that geothermal systems face is the medium for the exchange. Most geo-thermal systems use water or a “liquid” as the medium of exchange for the heat transfer. Liquids have a major limitation in geothermal applications which is their natural capacity to hold and transfer energy. In a system where energy transfer is very slow like the earth's soil, a median which carries large amount of energy will quickly saturate of the surrounding area.
  • To compensate for this, the liquid geothermal system adds additional length to the overall tube loop. This increases in length allows additional room for energy transfer to accomplish a specific system requirement, but does not correct the original obstacle of using a medium which transfers energy at a rate faster than the rate soil can absorb.
  • To compensate for this, the liquid geothermal system adds additional length to the overall tube loop. This increases in length allows additional room for energy transfer to accomplish a specific system requirement, but does not correct the original obstacle of using a medium which transfers energy at a rate faster than the rate soil can absorb.
  • This brings up a secondary limitation in a liquid geo-thermal system which is tube size. The size of the tube directly effects the surface area of soil around the tube for the energy transfer. Liquid geo-thermal systems us a small diameter pipe of approximately one inch. (FIG. 4 b) The amount of soil area participating in the exchange is limited. The greater area of soil you have interacting in the energy transfer the more energy it will hold.
  • An example of this relationship is shown in FIG. 4. These drawing use a measurement of 3 inches of soil immediately around the tube to show the example. If the majority of energy transfer in soil is accomplished in 3 inches of soil surrounding the surface of a pipe, that would be a total diameter of 7 inch circle (3 inches on one side, 1 inch pipe, 3 inches on the opposite side), minus the 1 inch in the center for the pipe which the liquid medium passes. The total surface area of the soil in the heat exchange would be 38.48 square inches minus the 0.76 square inches for the center pipe, for a total of 37.72 square inches around the tube. (FIG. 4 b) However, if that tube had a 12 inch diameter, and you take that same distance of soil, 3 inches, around the pipe the total amount of soil becomes 141.3 square inches. (FIG. 4 a) Most liquid geothermal system do not use a 12 inch tube or larger tubes in general because of the fundamental problem that liquids can hold large amounts of energy and will transfer more energy than the soil can hold.
  • One way to help with this obstacle would be to increase the amount of soil for the transfer, without increasing the amount of liquid a pipe will carry. This could be done by placing a 9 inch pipe inside of a 10 inch pipe, and run the water between the in inch diameter gap between the two. (FIG. 4 c) While the area for the liquid to move thru may not be exactly equal to the one in pipe in FIG. 4 b, the point is still made, you can increase square inches of soil the energy has to transfer to while keeping the volume of the medium lower.
  • As more energy is transferred, the temperature of the soil and the temperature of the liquid medium will become closer and closer to each other until they no longer are able to exchange energy, which will occur once they become the same temperature. When this happens the energy will travel farther down the tube till there is a difference in temperature and an energy transfer can happen.
  • When air or a gas is used as the medium in a geo-thermal system, you do not have these limitations. Air lacks the ability to carry large amounts of energy compared to solids or liquids. The soil is no longer the weakest link in the system, the air inside the tube is. This fundamentally changes certain characteristics in the system.
  • The most important change is transfer rate of the energy relationship. Shape of the tube now becomes a critical factor in deterring what rate the energy is transferred. A strait tube will follow the principles of laminar flow. Air in the center moves with less resistance than air touching the edges of the tube. This produces a lower rate of energy transfer. This means the energy in air must travel farther down the tube before it will transfer to the soil.
  • SUMMARY OF PRESENT INVENTION
  • The goal of a geo-thermal system is harness the energy in the earth. Energy in the earth is a combination of energy between the sun and the earth's core.
  • Using air or gas as a medium to transfer energy, the location of energy transfer can be manipulated. By increasing or decreasing form drag, the system will transfer energy at different rates. A straight tube will have the lowest rate of energy transfer, and while coiling the tube will increase the transfer rate. A straight 90 degree turn would have the highest.
  • Increasing the rate of energy transfer in geothermal system that uses air or gas will decrease the amount of tube length necessary to transfer the energy.
  • With knowing how to control where energy will be transferred inside the system, the system can be designed to transfer the greatest amounts of energy closer to the top of the soil, where it will gain the most benefit from season soil variation.
  • Once the majority of energy transfer has been accomplished in the higher soil, air can continue deeper into the soil to gain addition temperature change without running the risk of having energy transferred in a location where seasonal soil temperatures cannot reach.
  • DESCRIPTION OF THE DRAWINGS
  • FIG. 1 displays the general shape of a geo-thermal air coil in relation to depth in the spoil and seasonal soil variation.
  • FIG. 2 displays the use of a system being used to control the ambient temperature of air moving thru the condensing coils on a heat pump/AC unit.
  • FIG. 3 displays the use of a system being blown across a road to keep the surface of the road above freezing.
  • FIG. 4 a displays a 3 inch area of soil surrounding the outside edge of a 10 inch pipe, FIG. 4 b displays a 3 inch area of soil surrounding the outside edge of a 1 inch pipe, FIG. 4 c displays a 3 inch area of soil surrounding the outside edge of a 10 inch pipe where the 10 inch pipe contains an internal 9 inch pipe, where liquid passes in the space between the 9 and 10 inch pipe.
  • FIG. 5 displays a graph showing the transfer of energy inside of a geo-thermal air coil at different ambient air temperatures.
  • DETAILED DESCRIPTION
  • The present invention is a system for created air at a constant temperature regardless of season or ambient air temperature. To escape the temperature difference of seasonal soil variation, a system must reach a sufficient depth where energy from the sun in no longer influencing the energy produced by the earth's core. However this area is problematic for transferring large amounts of energy over time. Energy can become trapped and soils can become saturated at this deeper level. To balance this, as much energy as possible should be transferred as close to the surface as possible to benefit from the net gain or loss of season soil variation. Every 6 months this works as a reset button to help restore any imbalance by the energy transfer in the soil.
  • Air enters the system [03] and moves down under the soil [02] where the energy exchange begins. This is usually where the greatest difference between the temperatures of air and soil are. The greater the temperature difference the more energy can be transferred. The soils at this level have the greatest variation as shown by the graph chart which is superimposed over the system [3]. The temperature variation [10] and the corresponding lines for soil depth [06] and [7] are help illustrate how seasonal soil variation will become diminished each foot as is travel farther below the surface of the soil [1]. As shown on the graph in FIG. 5, both share a common parabolic shape for the rate of energy transfer. Because both shapes are similar, the conclusion is simple; to gain the most benefit from season soil variation you want the greatest amount of energy transferred highest in the soil, before moving lower in the soil to gain the addition degrees of constant core temperatures [9] which are only obtained in lower depths.
  • By understanding this behavior of the system, you can control the location of energy in the soil, and thus its output. A system that does not produce a constant temperature year round, runs the risk of having energy built up in undesired locations, which is likely due to energy saturation in the soil.
  • Once air has reached the lowest point in the system, a plenum is installed [8] to act as a drain for any moisture buildup or debris in the system. This allows for a sump pump or one way drain to be installed if required by the system. The air at this point in the system will be at its most optimal temperature, and begin its journey back to the surface in the most direct path possible. The use of insulated tubing could be used at this level but the benefits of laminar flow will help to reduce the energy exchange as the difference in temperature of the soil and temperature of the air begins to grow. The air leaving the system [4] can be used for the application of the system.
  • In FIG. 2 a system for a heat pump or AC unit is demonstrated. Outside ambient air temperature is pulled into an air circulating fan [20], and pushed down thru the unit [21]. The air once conditioned [22], can be configured around [23] the condensation coils of heat pump or AC unit [24]. Blowing thru a drain cover [26] towards the compressor, the air is pulled thru the condensation coil by the compressor fan [25] and out the exhaust of the unit. While the method of delivery using underground vents is not essential, the basic understanding of using the moderate air of the system [22] to pass thru the condensing coils of the unit [24] will help the efficiency of that unit.
  • In FIG. 3 a system for road is demonstrated. To show a different application of the fan, the fan is place in the ground below grade [32] with a ventilation cover [31] at ground level. The fan [33] operates the same as other applications, and the air exists a vent within a curb [34]. The air is blown across the road [35] to prevent ice from forming during freezing temperatures, keeping the road safe for vehicles [36].

Claims (17)

1. A system, compromising: an air circulating fan; and a geothermal system, using outside air as the medium to transfer energy to the soil, which can produce a constant air temperature output year round, regardless of outside ambient temperature.
2. The system of claim 1, wherein the energy is not transferred at equal rates within the system
3. The system of claim 1, wherein the energy transfer in the first 40 feet of length in a vertical configuration system, starting below ground level, must occur higher than 20 feet of depth, and have less than 10 feet being strait.
4. The system of claim 2, wherein if additional tubing length is necessary outside of the vertical configuration area for the air intake, that length is not included in the measurements of claim 2
5. The system of claim 1, wherein the air circulating fan can be used to push the air from the beginning of the system, or pull the air from the end of the system.
6. The system of claim 4, wherein air can be moved in the system by other methods including a vacuum
7. The system of claim 1, that energy transferred in a higher location the soil will receive a greater benefit from seasonal soil variation over the course of a year.
8. The system of claim 1, the rate of energy transfer can be increase by disrupting laminar flow, found in strait piping, and that form drag can increase or decrease the rate of energy transfer of the air inside the system.
9. The system of claim 1, wherein the increase and decrease of air speed moving in the system will increase or decrease the rate of energy transfer.
10. The system of claim 1, wherein the system seeks to minimize the amount of energy is that is transferred deeper into the ground where benefits of seasonal soil variation are also decreased.
11. A system compromising of a geo-thermal air coil where is where air leaving the system is used to change the temperature of the air passing through the condensing coils of a heat pump or air conditioner.
12. The system of claim 11, wherein lowering the ambient air temperature moving thru the condensing coils on a hot day will increase the units efficiency, and in the same way raising the ambient air temperature moving thru the coils on a cold day will also raise the units efficiency.
13. A system compromising of a geo-thermal air coil where air leaving the system is used to prevent extreme temperature such as below freezing or triple digit temperatures.
14. The system of claim 13, wherein air is blown across a road or runway to keep the temperature above freezing.
15. The system of claim 13, wherein the air is blown along rows of agriculture to prevent crop damage from freezing temperature.
16. The system of claim 13 wherein the air is used to cool outdoor areas such as outdoor stadiums or walkways.
17. The system of claim 1, wherein the air is used for indoor areas such as homes, businesses, or greenhouses
US13/784,784 2012-03-02 2013-03-04 Geo-Thermal Air Coil Abandoned US20130248142A1 (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USD753281S1 (en) * 2014-03-28 2016-04-05 Roberto Baston Air circulator

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US2749724A (en) * 1953-04-20 1956-06-12 Whirlpool Seeger Corp Heat pump system
US3824793A (en) * 1972-10-24 1974-07-23 Sperry Rand Corp Geothermal energy system and method
US4449572A (en) * 1981-03-27 1984-05-22 Ladek Corporation Subterranean heating and cooling system
US5318101A (en) * 1991-06-13 1994-06-07 Kim Han Joong Thermal accumulation type heating and cooling device using heat transfer medium
US5461876A (en) * 1994-06-29 1995-10-31 Dressler; William E. Combined ambient-air and earth exchange heat pump system
US20020017107A1 (en) * 1997-12-02 2002-02-14 Louis J. Bailey Integrated system for heating, cooling and heat recovery ventilation
US20100025008A1 (en) * 2008-07-31 2010-02-04 Walford Technologies, Inc. Geothermal Heating, Ventilating and Cooling System

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2749724A (en) * 1953-04-20 1956-06-12 Whirlpool Seeger Corp Heat pump system
US3824793A (en) * 1972-10-24 1974-07-23 Sperry Rand Corp Geothermal energy system and method
US4449572A (en) * 1981-03-27 1984-05-22 Ladek Corporation Subterranean heating and cooling system
US5318101A (en) * 1991-06-13 1994-06-07 Kim Han Joong Thermal accumulation type heating and cooling device using heat transfer medium
US5461876A (en) * 1994-06-29 1995-10-31 Dressler; William E. Combined ambient-air and earth exchange heat pump system
US20020017107A1 (en) * 1997-12-02 2002-02-14 Louis J. Bailey Integrated system for heating, cooling and heat recovery ventilation
US20100025008A1 (en) * 2008-07-31 2010-02-04 Walford Technologies, Inc. Geothermal Heating, Ventilating and Cooling System

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USD753281S1 (en) * 2014-03-28 2016-04-05 Roberto Baston Air circulator

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