US20100294456A1 - Geothermal heat pump system - Google Patents
Geothermal heat pump system Download PDFInfo
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- US20100294456A1 US20100294456A1 US12/783,084 US78308410A US2010294456A1 US 20100294456 A1 US20100294456 A1 US 20100294456A1 US 78308410 A US78308410 A US 78308410A US 2010294456 A1 US2010294456 A1 US 2010294456A1
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- heat exchange
- pump system
- heat pump
- ground loop
- foundation
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F28—HEAT EXCHANGE IN GENERAL
- F28D—HEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
- F28D20/00—Heat storage plants or apparatus in general; Regenerative heat-exchange apparatus not covered by groups F28D17/00 or F28D19/00
- F28D20/0052—Heat storage plants or apparatus in general; Regenerative heat-exchange apparatus not covered by groups F28D17/00 or F28D19/00 using the ground body or aquifers as heat storage medium
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24D—DOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
- F24D3/00—Hot-water central heating systems
- F24D3/18—Hot-water central heating systems using heat pumps
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24T—GEOTHERMAL COLLECTORS; GEOTHERMAL SYSTEMS
- F24T10/00—Geothermal collectors
- F24T10/10—Geothermal collectors with circulation of working fluids through underground channels, the working fluids not coming into direct contact with the ground
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F24—HEATING; RANGES; VENTILATING
- F24D—DOMESTIC- OR SPACE-HEATING SYSTEMS, e.g. CENTRAL HEATING SYSTEMS; DOMESTIC HOT-WATER SUPPLY SYSTEMS; ELEMENTS OR COMPONENTS THEREFOR
- F24D2200/00—Heat sources or energy sources
- F24D2200/11—Geothermal energy
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- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B10/00—Integration of renewable energy sources in buildings
- Y02B10/40—Geothermal heat-pumps
-
- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B30/00—Energy efficient heating, ventilation or air conditioning [HVAC]
- Y02B30/12—Hot water central heating systems using heat pumps
-
- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E10/00—Energy generation through renewable energy sources
- Y02E10/10—Geothermal energy
-
- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/14—Thermal energy storage
-
- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E70/00—Other energy conversion or management systems reducing GHG emissions
- Y02E70/30—Systems combining energy storage with energy generation of non-fossil origin
Definitions
- the present invention relates generally to geothermal heating and in particular, to a geothermal heat pump system, to a building structure incorporating the same and to a method of installing a geothermal heat pump system ground loop.
- Geothermal heat pump systems utilize the natural difference between the temperature of the earth below the ground surface and the temperature of the air above the ground surface to create a thermal driving force for the operation of a heat exchange unit, which in turn is operated to control the internal climate of a building structure or the like.
- Geothermal heat pump systems are generally considered to be an environmentally-friendly alternative or supplement to conventional heating and cooling systems, such as furnaces and air conditioners, due to the fact that geothermal heat pump systems rely partially on a natural energy source.
- Conventional geothermal heat pump systems comprise a heat exchange unit that is in fluid communication with a loop of tubing buried in the ground, commonly referred to as a ground loop.
- a heat-exchange fluid such as a water/ethylene glycol mixture, is circulated through the ground loop, during which heat is exchanged between the earth proximate the ground loop and the heat exchange fluid.
- the heat exchange fluid returns to the heat exchange unit after having circulated through the ground loop, the temperature difference between the heat exchange fluid being fed to the ground loop and the heat exchange fluid returning from the ground loop is used by the heat exchange unit to generate either heated or cooled air. This heated or cooled air is then pumped into the interior of a building structure to control its internal climate.
- ground loop configurations can be used with geothermal heat pump systems.
- closed-loop configurations in which the ground loop provides a closed circuit for the circulating heat exchange fluid
- two known configurations are commonly employed, namely horizontal closed-loop and vertical closed-loop configurations.
- horizontal closed-loop configuration the ground loop is typically laid horizontally in a shallow trench dug into the ground adjacent the building structure to be serviced by the geothermal heat pump system.
- vertical closed-loop configuration the ground loop is typically placed in a 100 foot to 400 foot deep well formed in ground adjacent the building structure to be serviced by the geothermal heat pump system.
- U.S. Pat. No. 5,533,356 to DeMasters discloses an in-ground conduit system for a ground source heat pump.
- the in-ground conduit system comprises a conduit loop buried in the earth to one side of a building.
- At least one wing member is mounted on the conduit loop to contact the ground and resist upward movement of the conduit loop.
- U.S. Pat. No. 5,339,890 to Rawlings discloses a ground source heat pump system comprising a subterranean piping installation constructed of a plurality of modular heat exchange units.
- the subterranean piping installation is buried to one side of a building structure.
- a geothermal heat pump system comprising at least one heat exchange unit; and a ground loop in fluid communication with said at least one heat exchange unit, said ground loop having a feed into which heat exchange fluid is delivered by said at least one heat exchange unit and having a discharge via which circulated heat exchange fluid is returned to said at least one heat exchange unit, said ground loop comprising at least one fluid circuit formed of tubing arranged to define a plurality of laterally spaced vertical coils buried in earth beneath a foundation slab of a building structure.
- the vertical coils are connected in series and are arranged in at least one row.
- the vertical coils may also be generally evenly spaced.
- the ground loop comprises a plurality of fluid circuits with each fluid circuit comprising a plurality of laterally spaced, vertical coils connected in series.
- the vertical coils of each fluid circuit are arranged in at least one row and are generally evenly spaced.
- the ground loop further comprises helical tubing wound about the foundation walls of the building structure.
- a method of installing a ground loop of a geothermal heat pump system comprising excavating earth to create a foundation excavation; excavating a plurality of laterally spaced, generally vertical boreholes within the foundation excavation; inserting a coil of tubing into each borehole, the coils being connected in series; applying backfill over the coils; and laying a foundation slab over the backfill.
- a portion of the ground loop is wound about foundation walls.
- the winding may be performed prior to construction of the foundation walls or after construction of the foundation walls.
- a ground loop for a geothermal heat pump system comprising a feed into which heat exchange fluid is delivered by at least one heat exchange unit; a discharge to return circulated heat exchange fluid to said at least one heat exchange unit; and at least one fluid circuit formed of tubing arranged to define a plurality of laterally spaced, vertical coils buried in earth beneath a foundation slab of a building structure.
- FIG. 1 is a cross-sectional view of a building structure serviced by a geothermal heat pump system
- FIG. 2 is another cross-sectional view of the building structure of FIG. 1 , partially cut away, showing the geothermal heat pump system in top plan;
- FIG. 3 is a cross-sectional view, similar to FIG. 2 , showing another embodiment of a geothermal heat pump system
- FIG. 4 is a cross-sectional view, similar to FIG. 2 , showing yet another embodiment of a geothermal heat pump system
- FIG. 5 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system
- FIG. 6 is another cross-sectional view of the building structure of FIG. 5 , partially cut away, showing the geothermal heat pump system in top plan;
- FIG. 7 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system
- FIG. 8 is another cross-sectional view of the building structure of FIG. 7 , partially cut away, showing the geothermal heat pump system in top plan;
- FIG. 9 is a cross-sectional view, similar to FIG. 8 , showing yet another embodiment of a geothermal heat pump system
- FIG. 10 is a cross-sectional view, similar to FIG. 8 , showing yet another embodiment of a geothermal heat pump system
- FIG. 11 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system
- FIG. 12 is another cross-sectional view of the building structure of FIG. 11 , partially cut away, showing the geothermal heat pump system in top plan;
- FIG. 13 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system
- FIG. 14 is another cross-sectional view of the building structure of FIG. 13 , partially cut away, showing the geothermal heat pump system in top plan;
- FIG. 15 is a cross-sectional view of a building structure serviced by still yet another embodiment of a geothermal heat pump system.
- FIG. 16 is another cross-sectional view of the building structure of FIG. 15 , partially cut away, showing the geothermal heat pump system in top plan.
- the following description is directed to a geothermal heat pump system that comprises a ground loop inserted into the earth directly beneath the foundation slab of a building structure or the like.
- the ground loop is inserted into the earth after the foundation excavation has been completed, but before the foundation has been constructed, and more specifically before the foundation slab has been laid.
- This construction sequence takes advantage of the excavation carried out for the foundation, and therefore obviates the need for significant further excavation for the ground loop, which reduces the cost of installation of the geothermal heat pump system.
- the ground loop comprises a plurality of laterally spaced, generally vertical coils, the boreholes for which can be easily excavated and arranged during the installation stage.
- geothermal heat pump system 20 services a building structure 50 in the form of a house.
- the building structure 50 need not be residential and in fact can be virtually any building structure whose internal climate needs to be controlled.
- Geothermal heat pump system 20 comprises a heat exchange unit 24 and a ground loop 26 in fluid communication with the heat exchange unit 24 .
- the heat exchange unit 24 is located in the basement 52 of the building structure 50 and rests on the foundation slab 54 of the building structure 50 .
- the ground loop 26 is buried in the earth 28 directly beneath the foundation slab 54 .
- Heat exchange fluid circulates through the heat exchange unit 24 and the ground loop 26 .
- the heat exchange fluid can be any suitable heat exchange medium and in this embodiment is a water/ethylene glycol mixture.
- the ground loop 26 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 26 by the heat exchange unit 24 follows a serial path through the tubing before returning to the heat exchange unit.
- the ground loop 26 comprises a feed conduit 30 receiving the heat exchange fluid discharged by the heat exchange unit 24 , a discharge conduit 32 returning the heat exchange fluid that has circulated through the ground loop 26 back to the heat exchange unit 24 and a plurality of generally equally spaced, vertical coils 34 , in this embodiment five (5) coils, connected in series and arranged in a row that is intermediate the feed conduit 30 and the discharge conduit 32 .
- Each vertical coil 34 in this embodiment has generally the same diameter and the same number of windings. Making use of vertical coils 34 enables the total length of the ground loop 26 to be increased while reducing the amount of excavation required to install the ground loop 26 .
- the heat exchange unit 24 delivers heat exchange fluid to the feed conduit 30 of the ground loop 26 .
- Heat exchange fluid entering the feed conduit 30 flows through the tubing passing through each of the vertical coils 34 in succession before being returned to the heat exchange unit 24 via the discharge conduit 32 .
- heat is transferred between the earth 28 surrounding the ground loop 26 and the heat exchange fluid.
- the difference in temperature between the heat exchange fluid being fed into the ground loop 26 by the heat exchange unit 24 and the heat exchange fluid being returned to the heat exchange unit 24 from the ground loop 26 creates a thermal driving force that is used by the heat exchange unit 24 .
- the heat exchange unit 24 comprises a second internal loop containing a refrigerant (not shown).
- the thermal driving force is utilized by the heat exchange unit 24 to drive the refrigerant through a vapor-compression refrigeration cycle, which in turn is used to generate heated or cooled air, as is well known to those of skill in the art.
- This heated or cooled air is then pumped by heat exchange unit 24 into the interior of building structure 50 to control the internal climate within the building structure 50 .
- each vertical coil 34 has generally the same diameter, the boreholes can be readily formed using a single auger or other suitable excavation tool. Once the boreholes have been formed, each vertical coil 34 is positioned in a respective borehole. The vertical coils 34 are then backfilled thereby covering the vertical coils with earth 28 . Once the appropriate amount of backfilling has been achieved, the foundation slab 54 is laid on the earth 28 and the remainder of the foundation constructed.
- the feed and discharge conduits 30 and 32 respectively, of the ground loop 26 are then fed through one of the foundation walls 56 and backfill is placed around the foundation walls 56 .
- this construction sequence takes advantage of the excavation that is required for constructing the foundation of the building structure 50 eliminating the requirement for separate excavation for the ground loop 26 .
- the geothermal heat pump system 20 is compatible for use with building structures associated with limited or no yard space.
- the quantity of heat transferred between the earth 28 surrounding the ground loop 26 and the heat exchange fluid circulating through ground loop 26 , the efficiency of the heat exchange unit 24 , and the size and energy efficiency of the building structure 50 all contribute to the effectiveness and efficiency of the geothermal heat pump system 20 .
- the quantity of heat transferred between the earth 28 surrounding the ground loop 26 and the heat exchange fluid flowing through the ground loop 26 is itself determined by a number of different factors, including but not limited to the average seasonal temperature of the earth 28 , the average temperature difference between the earth 28 and the air above the ground surface 28 a , the soil characteristics and groundwater content of the earth, and the configuration of the ground loop 26 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- the configuration of the ground loop 26 impacts the efficiency of the geothermal heat pump system 20 .
- FIG. 3 shows an alternative embodiment of a geothermal heat pump system 120 servicing the building structure 50 .
- the ground loop 126 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 126 by the heat exchange unit 124 follows a serial path through the tubing before returning to the heat exchange unit.
- the ground loop 126 comprises a feed conduit 130 receiving the heat exchange fluid discharged by the heat exchange unit 124 , a discharge conduit 132 returning the heat exchange fluid that has circulated through the ground loop 126 back to the heat exchange unit 124 and a plurality of generally equally spaced, vertical coils 134 connected in series and arranged in two generally parallel rows. Each row of vertical coils 134 comprises five (5) coils. Similar to the previous embodiment, each vertical coil 134 has generally the same diameter and the same number of windings.
- FIG. 4 Yet another embodiment of a geothermal heat pump system 220 servicing the building structure 50 is shown in FIG. 4 .
- the ground loop 226 is formed of high-density polyethylene tubing.
- the tubing is arranged to form a pair of parallel fluid circuits 229 a and 229 b with each fluid circuit being in communication with the heat exchange unit 224 .
- Each fluid circuit comprises a feed conduit 230 receiving heat exchange fluid discharged by the heat exchange unit 224 , a discharge conduit 232 returning the heat exchange fluid that has circulated through the tubing of the fluid circuit back to the heat exchange unit 224 and a plurality of generally equally spaced, vertical coils 234 , in this embodiment five (5) coils, connected in series and arranged in a row.
- Each vertical coil 234 in this embodiment has generally the same diameter and the same number of windings.
- the two rows of vertical coils 234 of the fluid circuits 229 a and 229 b are generally parallel.
- the use of two separate parallel fluid circuits provides the ground loop 226 with an increased total length and allows each fluid circuit to be operated individually. Thus, when only a small quantity of heat transfer is required to control the climate of the building structure 50 , for example, such as in mild weather, only one of the fluid circuits needs to be used to circulate heat exchange fluid.
- FIGS. 5 and 6 show still yet another embodiment of a geothermal heat pump system 320 servicing a building structure 350 in the form of a house.
- Geothermal heat pump system 320 comprises a heat exchange unit 324 and a ground loop 326 in fluid communication with the heat exchange unit 324 .
- the heat exchange unit 324 is located in the basement 352 of the building structure 350 and rests on the foundation slab 354 of the building structure 350 .
- the ground loop 326 receives heat exchange fluid discharged by the heat exchange unit 324 and returns the heat exchange fluid to the heat exchange unit 324 after the heat exchange fluid has circulated through the ground loop 326 .
- the ground loop 326 is formed of high-density polyethylene tubing.
- the ground loop 326 is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 326 by the heat exchange unit 324 follows a serial path through the tubing before returning to the heat exchange unit 324 .
- the ground loop 326 comprises a feed conduit 330 receiving the heat exchange fluid discharged by the heat exchange unit 324 , a discharge conduit 332 returning the heat exchange fluid that has circulated through the ground loop 326 back to the heat exchange unit 324 , a helical winding 340 coupled to the feed conduit 320 that is buried in the earth 328 below the frost line 342 and is wound about the foundation walls 356 of the building structure 350 , a helical winding 344 coupled to the discharge conduit 332 that is buried in the earth 328 below the frost line 342 and is wound about the foundation walls 356 and a plurality of generally equally spaced, vertical coils 334 connected in series and arranged in a row that interconnects the helical windings 340 and 344 .
- Each vertical coil 334 has generally the same diameter and the same number of windings.
- the helical windings 340 and 344 enable the length of the ground loop 326 to be extended, and enable any heat transferred between earth 328 surrounding the foundation walls 356 and the heat exchange fluid being circulated through ground loop 226 to contribute to the total heat transfer.
- the length of the ground loop 326 as compared to the previous embodiments could be kept constant, and as a result use of the helical windings 340 and 344 allows the number of vertical coils 334 to be reduced, thus reducing the amount of excavation required to install the vertical coils 334 .
- ground loop 326 can be carried out in one or more stages.
- ground loop 326 is installed following the foundation excavation but prior to both the laying of the foundation slab 354 and the construction of the foundation walls 356 .
- both the vertical coils 334 and the helical windings 340 and 344 are installed in the earth 328 before the foundation slab 354 is laid and before the foundation walls 356 are built.
- the vertical coils 334 are initially inserted into boreholes formed in the earth 328 and the construction of the foundation proceeds so that the foundation slab 354 is laid and the foundation walls 356 built. Once the foundation walls are built, the helical windings 340 and 344 are installed.
- the helical windings 340 and 344 may form an individual fluid circuit that is in parallel with the vertical coils 334 rather than being connected in series with the vertical coils.
- FIGS. 7 and 8 show yet another embodiment of a geothermal heat pump system, which is generally indicated by reference numeral 420 .
- geothermal heat pump system 420 services a building structure 450 in the form of a commercial building.
- the building structure 450 need not be commercial and in fact can be virtually any building structure whose internal climate needs to be controlled.
- Geothermal heat pump system 420 comprises a heat exchange unit 424 and a ground loop 426 in fluid communication with the heat exchange unit 424 .
- the heat exchange unit 424 is located in the building structure 450 and rests on a foundation slab 454 , which in this case is a slab on grade.
- the foundation walls 456 extend downwardly beneath the foundation slab 454 , and are supported by footings 458 .
- the ground loop 426 is buried in the earth 428 directly beneath the foundation slab 454 .
- Heat exchange fluid circulates through the heat exchange unit 424 and the ground loop 426 .
- the heat exchange fluid can be any suitable heat exchange medium and in this embodiment is a water/ethylene glycol mixture.
- the ground loop 426 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 426 by the heat exchange unit 424 follows a serial path through the tubing before returning to the heat exchange unit.
- the ground loop 426 comprises a feed conduit 430 receiving the heat exchange fluid discharged by the heat exchange unit 424 , a discharge conduit 432 returning the heat exchange fluid that has circulated through the ground loop 426 back to the heat exchange unit 424 and a plurality of generally equally spaced, vertical coils 434 , in this embodiment five (5) coils, connected in series and arranged in a row that is intermediate the feed conduit 430 and the discharge conduit 432 .
- Each vertical coil 434 in this embodiment has generally the same diameter and the same number of windings.
- each vertical coil 434 has generally the same diameter, the bores can be readily formed using a single auger or other suitable excavation tool.
- the boreholes extend below the bottoms of foundation walls 456 and associated footings.
- the foundation slab 454 is laid on the earth 428 at ground surface level 428 a , and the remainder of the building structure 450 is constructed.
- the feed and discharge conduits 430 and 432 respectively, of the ground loop 426 which extend through the foundation slab 454 are then connected to the heat exchange unit 424 .
- this construction sequence takes advantage of the excavation that is required for constructing the foundation of the building structure 450 eliminating the requirement for separate excavation for the ground loop 426 .
- the geothermal heat pump system 420 is compatible for use with building structures associated with limited or no yard space.
- FIG. 9 shows an alternative embodiment of a geothermal heat pump system 520 servicing the building structure 450 .
- the ground loop 526 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 526 by the heat exchange unit 524 follows a serial path through the tubing before returning to the heat exchange unit.
- the ground loop 526 comprises a feed conduit 530 receiving the heat exchange fluid discharged by the heat exchange unit 524 , a discharge conduit 532 returning the heat exchange fluid that has circulated through the ground loop 526 back to the heat exchange unit 524 and a plurality of generally equally spaced, vertical coils 534 connected in series and arranged in two generally parallel rows. Each row of vertical coils 534 comprises five (5) coils. Similar to the previous embodiment, each vertical coil 534 has generally the same diameter and the same number of windings.
- FIG. 10 Yet another embodiment of a geothermal heat pump system 620 servicing the building structure 450 is shown in FIG. 10 .
- the ground loop 626 is formed of high-density polyethylene tubing.
- the tubing is arranged to form a pair of parallel fluid circuits 629 a and 629 b with each fluid circuit being in communication with the heat exchange unit 624 .
- Each fluid circuit comprises a feed conduit 630 receiving heat exchange fluid discharged by the heat exchange unit 624 , a discharge conduit 632 returning the heat exchange fluid that has circulated through the tubing of the fluid circuit back to the heat exchange unit 624 and a plurality of generally equally spaced, vertical coils 634 , in this embodiment five (5) coils, connected in series and arranged in a row.
- Each vertical coil 634 in this embodiment has generally the same diameter and the same number of windings.
- the two rows of vertical coils 634 of the fluid circuits 629 a and 629 b are generally parallel.
- the use of two separate parallel fluid circuits provides the ground loop 626 with an increased total length and allows each fluid circuit to be operated individually.
- only a small quantity of heat transfer is required to control the climate of the building structure 450 , for example, such as in mild weather, only one of the fluid circuits needs to be used to circulate heat exchange fluid.
- FIGS. 11 and 12 show yet another embodiment of a geothermal heat pump system 720 servicing a building structure 750 .
- Geothermal heat pump system 720 comprises a heat exchange unit 724 and a ground loop 726 in fluid communication with the heat exchange unit 724 .
- the heat exchange unit 724 is located in the building structure 750 and rests on a foundation slab 754 of the building structure 750 , which is a slab on grade.
- the ground loop 726 receives heat exchange fluid discharged by the heat exchange unit 724 and returns the heat exchange fluid to the heat exchange unit 724 after the heat exchange fluid has circulated through the ground loop 726 .
- the ground loop 726 is formed of high-density polyethylene tubing.
- the ground loop 726 is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 726 by the heat exchange unit 724 follows a serial path through the tubing before returning to the heat exchange unit 724 .
- the helical winding 740 enables the length of the ground loop 726 to be extended, and enables any heat transferred between earth 728 surrounding the foundation walls 756 and the heat exchange fluid being circulated through ground loop 726 to contribute to the total heat transfer.
- the length of the ground loop 726 as compared to the embodiments of FIGS. 7 to 10 could be kept constant, and as a result use of the helical winding 740 allows the number of vertical coils 734 to be reduced, thus reducing the amount of excavation required to install the vertical coils 734 .
- ground loop 726 can be carried out in one or more stages.
- ground loop 726 is installed following the foundation excavation but prior to the construction of the foundation walls 756 .
- both the vertical coils 734 and the helical winding 740 are installed in the earth 728 before the foundation walls 756 are built.
- the vertical coils 734 are initially inserted into boreholes formed in the earth 728 and the construction of the foundation proceeds so that the foundation walls are constructed, the volume between foundation walls is backfilled, and the foundation slab 754 is laid. Once the foundation has been constructed, the helical winding 740 is installed.
- Those of skill in the art will appreciate that still other alternative installation sequences are possible.
- the helical winding 740 may form an individual fluid circuit that is in parallel with the vertical coils 734 rather than being connected in series with the vertical coils.
- the ground loop 826 is formed of high-density polyethylene tubing.
- the ground loop 826 is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 826 by the heat exchange unit 824 follows a serial path through the tubing before returning to the heat exchange unit 824 .
- the ground loop 826 comprises a feed conduit 830 receiving the heat exchange fluid discharged by the heat exchange unit 824 , a discharge conduit 832 returning the heat exchange fluid that has circulated through the ground loop 826 back to the heat exchange unit 824 , a helical winding 844 coupled to the feed conduit 830 that is buried in the earth 828 and is wound within the interior of foundation walls 856 of the building structure 850 , and a plurality of generally equally spaced, vertical coils 834 connected in series and arranged in a row.
- ground loop 826 can be carried out in one or more stages.
- ground loop 826 is installed following the foundation excavation and the construction of the foundation walls 856 .
- both the vertical coils 834 and the helical winding 844 are installed in the earth 828 prior to backfilling and therefore prior to the laying of the foundation slab 854 .
- the vertical coils 834 are initially inserted into boreholes formed in the earth 828 and the foundation walls 856 are then constructed. Once the foundation walls are built, the helical winding 844 is installed and the volume between foundation walls 856 is backfilled.
- FIGS. 15 and 16 show still yet another embodiment of a geothermal heat pump system 920 servicing a building structure 950 .
- Geothermal heat pump system 920 comprises a heat exchange unit 924 and a ground loop 926 in fluid communication with the heat exchange unit 924 .
- the heat exchange unit 924 is located in the building structure 950 and rests on the foundation slab 954 , which is a slab on grade.
- the ground loop 926 receives heat exchange fluid discharged by the heat exchange unit 924 and returns the heat exchange fluid to the heat exchange unit 924 after the heat exchange fluid has circulated through the ground loop 926 .
- the ground loop 926 is formed of high-density polyethylene tubing.
- the ground loop 926 is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 926 by the heat exchange unit 924 follows a serial path through the tubing before returning to the heat exchange unit 924 .
- the ground loop 926 comprises a feed conduit 930 receiving the heat exchange fluid discharged by the heat exchange unit 924 , a discharge conduit 932 returning the heat exchange fluid that has circulated through the ground loop 926 back to the heat exchange unit 924 , a helical winding 940 coupled to the feed conduit 930 that is buried in the earth 928 below the frost line 942 and is wound about the exterior of foundation walls 956 of the building structure 950 , a helical winding 944 coupled to the feed conduit 930 that is buried in the earth 928 and is wound within the interior of foundation walls 956 of the building structure 950 , and a plurality of generally equally spaced, vertical coils 934 connected in series and arranged in a row.
- ground loop 926 can be carried out in one or more stages.
- ground loop 926 is installed following the foundation excavation and the construction of the foundation walls 956 .
- the vertical coils 934 and the helical windings 940 and 944 are installed in the earth 928 prior to backfilling and therefore prior to the laying of the foundation slab 954 .
- the vertical coils 934 are initially inserted into boreholes formed in the earth 928 and the helical winding 940 is installed, and the foundation walls 956 are then constructed. Once the foundation walls are built, the interior helical winding 944 is installed.
- each fluid circuit may comprise a single, integral length of tubing or alternatively may comprise two or more lengths of interconnected tubing segments.
- the vertical coils of each fluid circuit are described and shown as being of generally the same diameter and having the same number of windings.
- the fluid circuits may comprise vertical coils of differing dimensions.
- the spacing between adjacent vertical coils as well as the number of vertical coils in each fluid circuit may vary.
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Abstract
A geothermal heat pump system comprises at least one heat exchange unit and a ground loop in fluid communication with the at least one heat exchange unit. The ground loop has a feed into which heat exchange fluid is delivered by the at least one heat exchange unit and has a discharge via which circulated heat exchange fluid is returned to the at least one heat exchange unit. The ground loop comprises at least one fluid circuit formed of tubing arranged to define a plurality of laterally spaced, vertical coils buried in earth beneath a foundation slab of a building structure.
Description
- This application claims the benefit of U.S. Provisional Application No. 61/179,497 to Taraba et al. filed on May 19, 2009 and U.S. Provisional Application No. 61/304,988 to Taraba et al. filed on Feb. 16, 2010, the contents of which are incorporated herein by reference in their entirety.
- The present invention relates generally to geothermal heating and in particular, to a geothermal heat pump system, to a building structure incorporating the same and to a method of installing a geothermal heat pump system ground loop.
- Geothermal heat pump systems utilize the natural difference between the temperature of the earth below the ground surface and the temperature of the air above the ground surface to create a thermal driving force for the operation of a heat exchange unit, which in turn is operated to control the internal climate of a building structure or the like. Geothermal heat pump systems are generally considered to be an environmentally-friendly alternative or supplement to conventional heating and cooling systems, such as furnaces and air conditioners, due to the fact that geothermal heat pump systems rely partially on a natural energy source.
- Conventional geothermal heat pump systems comprise a heat exchange unit that is in fluid communication with a loop of tubing buried in the ground, commonly referred to as a ground loop. A heat-exchange fluid, such as a water/ethylene glycol mixture, is circulated through the ground loop, during which heat is exchanged between the earth proximate the ground loop and the heat exchange fluid. When the heat exchange fluid returns to the heat exchange unit after having circulated through the ground loop, the temperature difference between the heat exchange fluid being fed to the ground loop and the heat exchange fluid returning from the ground loop is used by the heat exchange unit to generate either heated or cooled air. This heated or cooled air is then pumped into the interior of a building structure to control its internal climate.
- A variety of ground loop configurations can be used with geothermal heat pump systems. For “closed-loop” configurations, in which the ground loop provides a closed circuit for the circulating heat exchange fluid, two known configurations are commonly employed, namely horizontal closed-loop and vertical closed-loop configurations. In the horizontal closed-loop configuration, the ground loop is typically laid horizontally in a shallow trench dug into the ground adjacent the building structure to be serviced by the geothermal heat pump system. In the vertical closed-loop configuration, the ground loop is typically placed in a 100 foot to 400 foot deep well formed in ground adjacent the building structure to be serviced by the geothermal heat pump system.
- Various geothermal heat pump systems have been considered. For example, U.S. Pat. No. 5,533,356 to DeMasters discloses an in-ground conduit system for a ground source heat pump. The in-ground conduit system comprises a conduit loop buried in the earth to one side of a building. At least one wing member is mounted on the conduit loop to contact the ground and resist upward movement of the conduit loop.
- U.S. Pat. No. 5,339,890 to Rawlings discloses a ground source heat pump system comprising a subterranean piping installation constructed of a plurality of modular heat exchange units. The subterranean piping installation is buried to one side of a building structure.
- As will be appreciated, it can be costly to install a geothermal heat pump system for servicing a building structure once the building structure has been constructed, owing to the effort required to excavate the yard surrounding building structure to install the ground loop. In cases where sufficient land or yard space is not available to accommodate the ground loop, other non-conventional provisions need to be made to install the ground loop, which can require complex and costly excavation adding to the cost of the geothermal heat pump system. As a result, there exists a need for a geothermal heat pump system that has a low installation cost and that is compatible with building structures associated with limited yard space.
- It is therefore an object of the present invention to provide a novel geothermal heat pump system, a novel building structure incorporating the geothermal heat pump system and a novel method of installing a geothermal heat pump system ground loop.
- Accordingly, in one aspect there is provided a geothermal heat pump system comprising at least one heat exchange unit; and a ground loop in fluid communication with said at least one heat exchange unit, said ground loop having a feed into which heat exchange fluid is delivered by said at least one heat exchange unit and having a discharge via which circulated heat exchange fluid is returned to said at least one heat exchange unit, said ground loop comprising at least one fluid circuit formed of tubing arranged to define a plurality of laterally spaced vertical coils buried in earth beneath a foundation slab of a building structure.
- In one embodiment, the vertical coils are connected in series and are arranged in at least one row. The vertical coils may also be generally evenly spaced.
- In another embodiment, the ground loop comprises a plurality of fluid circuits with each fluid circuit comprising a plurality of laterally spaced, vertical coils connected in series. The vertical coils of each fluid circuit are arranged in at least one row and are generally evenly spaced.
- In yet another embodiment, the ground loop further comprises helical tubing wound about the foundation walls of the building structure.
- According to another aspect, there is provided a method of installing a ground loop of a geothermal heat pump system comprising excavating earth to create a foundation excavation; excavating a plurality of laterally spaced, generally vertical boreholes within the foundation excavation; inserting a coil of tubing into each borehole, the coils being connected in series; applying backfill over the coils; and laying a foundation slab over the backfill.
- In one embodiment, a portion of the ground loop is wound about foundation walls. The winding may be performed prior to construction of the foundation walls or after construction of the foundation walls.
- According to yet another aspect, there is provided a ground loop for a geothermal heat pump system comprising a feed into which heat exchange fluid is delivered by at least one heat exchange unit; a discharge to return circulated heat exchange fluid to said at least one heat exchange unit; and at least one fluid circuit formed of tubing arranged to define a plurality of laterally spaced, vertical coils buried in earth beneath a foundation slab of a building structure.
- Embodiments will now be described more fully with reference to the accompanying drawings in which:
-
FIG. 1 is a cross-sectional view of a building structure serviced by a geothermal heat pump system; -
FIG. 2 is another cross-sectional view of the building structure ofFIG. 1 , partially cut away, showing the geothermal heat pump system in top plan; -
FIG. 3 is a cross-sectional view, similar toFIG. 2 , showing another embodiment of a geothermal heat pump system; -
FIG. 4 is a cross-sectional view, similar toFIG. 2 , showing yet another embodiment of a geothermal heat pump system; -
FIG. 5 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system; -
FIG. 6 is another cross-sectional view of the building structure ofFIG. 5 , partially cut away, showing the geothermal heat pump system in top plan; -
FIG. 7 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system; -
FIG. 8 is another cross-sectional view of the building structure ofFIG. 7 , partially cut away, showing the geothermal heat pump system in top plan; -
FIG. 9 is a cross-sectional view, similar toFIG. 8 , showing yet another embodiment of a geothermal heat pump system; -
FIG. 10 is a cross-sectional view, similar toFIG. 8 , showing yet another embodiment of a geothermal heat pump system; -
FIG. 11 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system; -
FIG. 12 is another cross-sectional view of the building structure ofFIG. 11 , partially cut away, showing the geothermal heat pump system in top plan; -
FIG. 13 is a cross-sectional view of a building structure serviced by yet another embodiment of a geothermal heat pump system; -
FIG. 14 is another cross-sectional view of the building structure ofFIG. 13 , partially cut away, showing the geothermal heat pump system in top plan; -
FIG. 15 is a cross-sectional view of a building structure serviced by still yet another embodiment of a geothermal heat pump system; and -
FIG. 16 is another cross-sectional view of the building structure ofFIG. 15 , partially cut away, showing the geothermal heat pump system in top plan. - The following description is directed to a geothermal heat pump system that comprises a ground loop inserted into the earth directly beneath the foundation slab of a building structure or the like. The ground loop is inserted into the earth after the foundation excavation has been completed, but before the foundation has been constructed, and more specifically before the foundation slab has been laid. This construction sequence takes advantage of the excavation carried out for the foundation, and therefore obviates the need for significant further excavation for the ground loop, which reduces the cost of installation of the geothermal heat pump system. The ground loop comprises a plurality of laterally spaced, generally vertical coils, the boreholes for which can be easily excavated and arranged during the installation stage. As the characteristics of the vertical coils, such as their number, density of windings, and spacing, are related to the quantity of heat transferred between the earth and the heat exchange fluid circulating within the ground loop, the use of coils in this arrangement provides a simple way to control the quantity of heat transfer, allowing the design requirements of different individual geothermal heat pump systems to be met. Various embodiments of geothermal heat pump systems will now be described with particular reference to
FIGS. 1 to 16 . - Turning now to
FIGS. 1 and 2 , a geothermal heat pump system is shown and is generally indicated byreference numeral 20. In this example, geothermalheat pump system 20 services abuilding structure 50 in the form of a house. Those of skill in the art will appreciate that thebuilding structure 50 need not be residential and in fact can be virtually any building structure whose internal climate needs to be controlled. Geothermalheat pump system 20 comprises aheat exchange unit 24 and aground loop 26 in fluid communication with theheat exchange unit 24. Theheat exchange unit 24 is located in thebasement 52 of thebuilding structure 50 and rests on thefoundation slab 54 of thebuilding structure 50. Theground loop 26 is buried in theearth 28 directly beneath thefoundation slab 54. Heat exchange fluid circulates through theheat exchange unit 24 and theground loop 26. The heat exchange fluid can be any suitable heat exchange medium and in this embodiment is a water/ethylene glycol mixture. - In this embodiment, the
ground loop 26 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into theground loop 26 by theheat exchange unit 24 follows a serial path through the tubing before returning to the heat exchange unit. To that end, theground loop 26 comprises afeed conduit 30 receiving the heat exchange fluid discharged by theheat exchange unit 24, adischarge conduit 32 returning the heat exchange fluid that has circulated through theground loop 26 back to theheat exchange unit 24 and a plurality of generally equally spaced,vertical coils 34, in this embodiment five (5) coils, connected in series and arranged in a row that is intermediate thefeed conduit 30 and thedischarge conduit 32. Eachvertical coil 34 in this embodiment has generally the same diameter and the same number of windings. Making use ofvertical coils 34 enables the total length of theground loop 26 to be increased while reducing the amount of excavation required to install theground loop 26. - In operation, the
heat exchange unit 24 delivers heat exchange fluid to thefeed conduit 30 of theground loop 26. Heat exchange fluid entering thefeed conduit 30 flows through the tubing passing through each of thevertical coils 34 in succession before being returned to theheat exchange unit 24 via thedischarge conduit 32. During flow of the heat exchange fluid through theground loop 26, heat is transferred between theearth 28 surrounding theground loop 26 and the heat exchange fluid. The difference in temperature between the heat exchange fluid being fed into theground loop 26 by theheat exchange unit 24 and the heat exchange fluid being returned to theheat exchange unit 24 from theground loop 26 creates a thermal driving force that is used by theheat exchange unit 24. In particular, theheat exchange unit 24 comprises a second internal loop containing a refrigerant (not shown). The thermal driving force is utilized by theheat exchange unit 24 to drive the refrigerant through a vapor-compression refrigeration cycle, which in turn is used to generate heated or cooled air, as is well known to those of skill in the art. This heated or cooled air is then pumped byheat exchange unit 24 into the interior of buildingstructure 50 to control the internal climate within thebuilding structure 50. - During installation of the geothermal
heat pump system 20, after the ground for the foundation of thebuilding structure 50 has been excavated, vertical boreholes sized to accommodate thevertical coils 34 are formed in the earth. As eachvertical coil 34 has generally the same diameter, the boreholes can be readily formed using a single auger or other suitable excavation tool. Once the boreholes have been formed, eachvertical coil 34 is positioned in a respective borehole. The vertical coils 34 are then backfilled thereby covering the vertical coils withearth 28. Once the appropriate amount of backfilling has been achieved, thefoundation slab 54 is laid on theearth 28 and the remainder of the foundation constructed. The feed and dischargeconduits ground loop 26 are then fed through one of thefoundation walls 56 and backfill is placed around thefoundation walls 56. As will be appreciated, this construction sequence takes advantage of the excavation that is required for constructing the foundation of thebuilding structure 50 eliminating the requirement for separate excavation for theground loop 26. As theground loop 26 is positioned directly below thefoundation slab 54 of thebuilding structure 50, the geothermalheat pump system 20 is compatible for use with building structures associated with limited or no yard space. - As will be appreciated, many factors determine the effectiveness and efficiency of the geothermal
heat pump system 20. For example, the quantity of heat transferred between theearth 28 surrounding theground loop 26 and the heat exchange fluid circulating throughground loop 26, the efficiency of theheat exchange unit 24, and the size and energy efficiency of thebuilding structure 50 all contribute to the effectiveness and efficiency of the geothermalheat pump system 20. With regard to the first factor, the quantity of heat transferred between theearth 28 surrounding theground loop 26 and the heat exchange fluid flowing through theground loop 26 is itself determined by a number of different factors, including but not limited to the average seasonal temperature of theearth 28, the average temperature difference between theearth 28 and the air above the ground surface 28 a, the soil characteristics and groundwater content of the earth, and the configuration of theground loop 26. Consequently, and as will be appreciated, the configuration of theground loop 26, such as the total length of theground loop 26, the depth of thevertical coils 34, the density of the vertical coil windings, the lateral spacing of thevertical coils 34, and the number ofvertical coils 34, impacts the efficiency of the geothermalheat pump system 20. Depending on the environment, for a given geothermal heat pump system installation one or more of these configuration parameters may be varied to suit particular needs. -
FIG. 3 shows an alternative embodiment of a geothermal heat pump system 120 servicing thebuilding structure 50. In this embodiment, similar to the previous embodiment, theground loop 126 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into theground loop 126 by theheat exchange unit 124 follows a serial path through the tubing before returning to the heat exchange unit. Theground loop 126 comprises afeed conduit 130 receiving the heat exchange fluid discharged by theheat exchange unit 124, adischarge conduit 132 returning the heat exchange fluid that has circulated through theground loop 126 back to theheat exchange unit 124 and a plurality of generally equally spaced,vertical coils 134 connected in series and arranged in two generally parallel rows. Each row ofvertical coils 134 comprises five (5) coils. Similar to the previous embodiment, eachvertical coil 134 has generally the same diameter and the same number of windings. - Yet another embodiment of a geothermal heat pump system 220 servicing the
building structure 50 is shown inFIG. 4 . In this embodiment similar to the previous embodiments, theground loop 226 is formed of high-density polyethylene tubing. Unlike the previous embodiments however, the tubing is arranged to form a pair of parallelfluid circuits 229 a and 229 b with each fluid circuit being in communication with theheat exchange unit 224. Each fluid circuit comprises afeed conduit 230 receiving heat exchange fluid discharged by theheat exchange unit 224, adischarge conduit 232 returning the heat exchange fluid that has circulated through the tubing of the fluid circuit back to theheat exchange unit 224 and a plurality of generally equally spaced,vertical coils 234, in this embodiment five (5) coils, connected in series and arranged in a row. Eachvertical coil 234 in this embodiment has generally the same diameter and the same number of windings. The two rows ofvertical coils 234 of thefluid circuits 229 a and 229 b are generally parallel. The use of two separate parallel fluid circuits provides theground loop 226 with an increased total length and allows each fluid circuit to be operated individually. Thus, when only a small quantity of heat transfer is required to control the climate of thebuilding structure 50, for example, such as in mild weather, only one of the fluid circuits needs to be used to circulate heat exchange fluid. -
FIGS. 5 and 6 show still yet another embodiment of a geothermalheat pump system 320 servicing abuilding structure 350 in the form of a house. Geothermalheat pump system 320 comprises aheat exchange unit 324 and aground loop 326 in fluid communication with theheat exchange unit 324. Theheat exchange unit 324 is located in thebasement 352 of thebuilding structure 350 and rests on thefoundation slab 354 of thebuilding structure 350. Theground loop 326 receives heat exchange fluid discharged by theheat exchange unit 324 and returns the heat exchange fluid to theheat exchange unit 324 after the heat exchange fluid has circulated through theground loop 326. - Similar to the previous embodiments, the
ground loop 326 is formed of high-density polyethylene tubing. Theground loop 326 is arranged to form a single fluid circuit so that heat exchange fluid fed into theground loop 326 by theheat exchange unit 324 follows a serial path through the tubing before returning to theheat exchange unit 324. In this embodiment, theground loop 326 comprises a feed conduit 330 receiving the heat exchange fluid discharged by theheat exchange unit 324, adischarge conduit 332 returning the heat exchange fluid that has circulated through theground loop 326 back to theheat exchange unit 324, a helical winding 340 coupled to thefeed conduit 320 that is buried in theearth 328 below thefrost line 342 and is wound about thefoundation walls 356 of thebuilding structure 350, a helical winding 344 coupled to thedischarge conduit 332 that is buried in theearth 328 below thefrost line 342 and is wound about thefoundation walls 356 and a plurality of generally equally spaced,vertical coils 334 connected in series and arranged in a row that interconnects thehelical windings vertical coil 334 has generally the same diameter and the same number of windings. Thehelical windings ground loop 326 to be extended, and enable any heat transferred betweenearth 328 surrounding thefoundation walls 356 and the heat exchange fluid being circulated throughground loop 226 to contribute to the total heat transfer. In one scenario, the length of theground loop 326 as compared to the previous embodiments could be kept constant, and as a result use of thehelical windings vertical coils 334 to be reduced, thus reducing the amount of excavation required to install thevertical coils 334. - The installation of the
ground loop 326 can be carried out in one or more stages. For single stage installation,ground loop 326 is installed following the foundation excavation but prior to both the laying of thefoundation slab 354 and the construction of thefoundation walls 356. In other words, both thevertical coils 334 and thehelical windings earth 328 before thefoundation slab 354 is laid and before thefoundation walls 356 are built. Alternatively, for multiple stage installation, thevertical coils 334 are initially inserted into boreholes formed in theearth 328 and the construction of the foundation proceeds so that thefoundation slab 354 is laid and thefoundation walls 356 built. Once the foundation walls are built, thehelical windings - If desired, the
helical windings vertical coils 334 rather than being connected in series with the vertical coils. -
FIGS. 7 and 8 show yet another embodiment of a geothermal heat pump system, which is generally indicated by reference numeral 420. In this example, geothermal heat pump system 420 services abuilding structure 450 in the form of a commercial building. Those of skill in the art will appreciate that thebuilding structure 450 need not be commercial and in fact can be virtually any building structure whose internal climate needs to be controlled. Geothermal heat pump system 420 comprises aheat exchange unit 424 and aground loop 426 in fluid communication with theheat exchange unit 424. Theheat exchange unit 424 is located in thebuilding structure 450 and rests on afoundation slab 454, which in this case is a slab on grade. Thefoundation walls 456 extend downwardly beneath thefoundation slab 454, and are supported by footings 458. Theground loop 426 is buried in theearth 428 directly beneath thefoundation slab 454. Heat exchange fluid circulates through theheat exchange unit 424 and theground loop 426. The heat exchange fluid can be any suitable heat exchange medium and in this embodiment is a water/ethylene glycol mixture. - Similar to the previous embodiments, the
ground loop 426 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into theground loop 426 by theheat exchange unit 424 follows a serial path through the tubing before returning to the heat exchange unit. To that end, theground loop 426 comprises afeed conduit 430 receiving the heat exchange fluid discharged by theheat exchange unit 424, adischarge conduit 432 returning the heat exchange fluid that has circulated through theground loop 426 back to theheat exchange unit 424 and a plurality of generally equally spaced,vertical coils 434, in this embodiment five (5) coils, connected in series and arranged in a row that is intermediate thefeed conduit 430 and thedischarge conduit 432. Eachvertical coil 434 in this embodiment has generally the same diameter and the same number of windings. - During installation of the geothermal heat pump system 420, after the ground for the foundation of the
building structure 450 has been excavated andfoundation walls 456 have been constructed, vertical boreholes sized to accommodate thevertical coils 434 are formed in the earth. As eachvertical coil 434 has generally the same diameter, the bores can be readily formed using a single auger or other suitable excavation tool. The boreholes extend below the bottoms offoundation walls 456 and associated footings. Once the boreholes have been formed, eachvertical coil 434 is positioned in a respective borehole and the feed and dischargeconduits foundation walls 456 is then backfilled, thereby covering thevertical coils 434 withearth 428. Once the appropriate amount of backfilling has been achieved, thefoundation slab 454 is laid on theearth 428 at ground surface level 428 a, and the remainder of thebuilding structure 450 is constructed. The feed and dischargeconduits ground loop 426 which extend through thefoundation slab 454 are then connected to theheat exchange unit 424. As will be appreciated, this construction sequence takes advantage of the excavation that is required for constructing the foundation of thebuilding structure 450 eliminating the requirement for separate excavation for theground loop 426. As theground loop 426 is positioned directly below thefoundation slab 454 of thebuilding structure 450, the geothermal heat pump system 420 is compatible for use with building structures associated with limited or no yard space. -
FIG. 9 shows an alternative embodiment of a geothermal heat pump system 520 servicing thebuilding structure 450. In this embodiment, similar to the previous embodiment, the ground loop 526 is formed of high-density polyethylene tubing that is arranged to form a single fluid circuit so that heat exchange fluid fed into the ground loop 526 by the heat exchange unit 524 follows a serial path through the tubing before returning to the heat exchange unit. The ground loop 526 comprises afeed conduit 530 receiving the heat exchange fluid discharged by the heat exchange unit 524, adischarge conduit 532 returning the heat exchange fluid that has circulated through the ground loop 526 back to the heat exchange unit 524 and a plurality of generally equally spaced, vertical coils 534 connected in series and arranged in two generally parallel rows. Each row of vertical coils 534 comprises five (5) coils. Similar to the previous embodiment, each vertical coil 534 has generally the same diameter and the same number of windings. - Yet another embodiment of a geothermal
heat pump system 620 servicing thebuilding structure 450 is shown inFIG. 10 . In this embodiment similar to the previous embodiments, the ground loop 626 is formed of high-density polyethylene tubing. The tubing is arranged to form a pair of parallel fluid circuits 629 a and 629 b with each fluid circuit being in communication with theheat exchange unit 624. Each fluid circuit comprises afeed conduit 630 receiving heat exchange fluid discharged by theheat exchange unit 624, adischarge conduit 632 returning the heat exchange fluid that has circulated through the tubing of the fluid circuit back to theheat exchange unit 624 and a plurality of generally equally spaced,vertical coils 634, in this embodiment five (5) coils, connected in series and arranged in a row. Eachvertical coil 634 in this embodiment has generally the same diameter and the same number of windings. The two rows ofvertical coils 634 of the fluid circuits 629 a and 629 b are generally parallel. The use of two separate parallel fluid circuits provides the ground loop 626 with an increased total length and allows each fluid circuit to be operated individually. Thus, when only a small quantity of heat transfer is required to control the climate of thebuilding structure 450, for example, such as in mild weather, only one of the fluid circuits needs to be used to circulate heat exchange fluid. -
FIGS. 11 and 12 show yet another embodiment of a geothermal heat pump system 720 servicing abuilding structure 750. Geothermal heat pump system 720 comprises aheat exchange unit 724 and aground loop 726 in fluid communication with theheat exchange unit 724. Theheat exchange unit 724 is located in thebuilding structure 750 and rests on afoundation slab 754 of thebuilding structure 750, which is a slab on grade. Theground loop 726 receives heat exchange fluid discharged by theheat exchange unit 724 and returns the heat exchange fluid to theheat exchange unit 724 after the heat exchange fluid has circulated through theground loop 726. - Similar to the previous embodiments, the
ground loop 726 is formed of high-density polyethylene tubing. Theground loop 726 is arranged to form a single fluid circuit so that heat exchange fluid fed into theground loop 726 by theheat exchange unit 724 follows a serial path through the tubing before returning to theheat exchange unit 724. In this embodiment, theground loop 726 comprises a feed conduit 730 receiving the heat exchange fluid discharged by theheat exchange unit 724, adischarge conduit 732 returning the heat exchange fluid that has circulated through theground loop 726 back to theheat exchange unit 724, a helical winding 740 coupled to the feed conduit 730 that is buried in theearth 728 below thefrost line 742 and is wound about the exterior of thefoundation walls 756 of thebuilding structure 750, and a plurality of generally equally spaced,vertical coils 734 connected in series and arranged in a row. Eachvertical coil 734 has generally the same diameter and the same number of windings. The helical winding 740 enables the length of theground loop 726 to be extended, and enables any heat transferred betweenearth 728 surrounding thefoundation walls 756 and the heat exchange fluid being circulated throughground loop 726 to contribute to the total heat transfer. In one scenario, the length of theground loop 726 as compared to the embodiments ofFIGS. 7 to 10 could be kept constant, and as a result use of the helical winding 740 allows the number ofvertical coils 734 to be reduced, thus reducing the amount of excavation required to install thevertical coils 734. - The installation of the
ground loop 726 can be carried out in one or more stages. For single stage installation,ground loop 726 is installed following the foundation excavation but prior to the construction of thefoundation walls 756. In other words, both thevertical coils 734 and the helical winding 740 are installed in theearth 728 before thefoundation walls 756 are built. Alternatively, for multiple stage installation, thevertical coils 734 are initially inserted into boreholes formed in theearth 728 and the construction of the foundation proceeds so that the foundation walls are constructed, the volume between foundation walls is backfilled, and thefoundation slab 754 is laid. Once the foundation has been constructed, the helical winding 740 is installed. Those of skill in the art will appreciate that still other alternative installation sequences are possible. - If desired, the helical winding 740 may form an individual fluid circuit that is in parallel with the
vertical coils 734 rather than being connected in series with the vertical coils. - In the embodiment of
FIGS. 11 and 12 , the helical winding is wound about the exterior of the foundation walls. Alternatively, the helical winding may be wound within the interior of the foundation walls. For example,FIGS. 13 and 14 show yet another embodiment of a geothermal heat pump system 820 servicing abuilding structure 850. Geothermal heat pump system 820 comprises aheat exchange unit 824 and aground loop 826 in fluid communication with theheat exchange unit 824. Theheat exchange unit 824 is located in thebuilding structure 850 and rests on thefoundation slab 854, which is a slab on grade. Theground loop 826 receives heat exchange fluid discharged by theheat exchange unit 824 and returns the heat exchange fluid to theheat exchange unit 824 after the heat exchange fluid has circulated through theground loop 826. - Similar to the previous embodiments, the
ground loop 826 is formed of high-density polyethylene tubing. Theground loop 826 is arranged to form a single fluid circuit so that heat exchange fluid fed into theground loop 826 by theheat exchange unit 824 follows a serial path through the tubing before returning to theheat exchange unit 824. In this embodiment, theground loop 826 comprises afeed conduit 830 receiving the heat exchange fluid discharged by theheat exchange unit 824, adischarge conduit 832 returning the heat exchange fluid that has circulated through theground loop 826 back to theheat exchange unit 824, a helical winding 844 coupled to thefeed conduit 830 that is buried in the earth 828 and is wound within the interior offoundation walls 856 of thebuilding structure 850, and a plurality of generally equally spaced,vertical coils 834 connected in series and arranged in a row. - The installation of the
ground loop 826 can be carried out in one or more stages. For single stage installation,ground loop 826 is installed following the foundation excavation and the construction of thefoundation walls 856. In other words, both thevertical coils 834 and the helical winding 844 are installed in the earth 828 prior to backfilling and therefore prior to the laying of thefoundation slab 854. Alternatively, for multiple stage installation, thevertical coils 834 are initially inserted into boreholes formed in the earth 828 and thefoundation walls 856 are then constructed. Once the foundation walls are built, the helical winding 844 is installed and the volume betweenfoundation walls 856 is backfilled. Those of skill in the art will appreciate that still other alternative installation sequences are possible. -
FIGS. 15 and 16 show still yet another embodiment of a geothermalheat pump system 920 servicing abuilding structure 950. Geothermalheat pump system 920 comprises aheat exchange unit 924 and aground loop 926 in fluid communication with theheat exchange unit 924. Theheat exchange unit 924 is located in thebuilding structure 950 and rests on thefoundation slab 954, which is a slab on grade. Theground loop 926 receives heat exchange fluid discharged by theheat exchange unit 924 and returns the heat exchange fluid to theheat exchange unit 924 after the heat exchange fluid has circulated through theground loop 926. - Similar to the previous embodiments, the
ground loop 926 is formed of high-density polyethylene tubing. Theground loop 926 is arranged to form a single fluid circuit so that heat exchange fluid fed into theground loop 926 by theheat exchange unit 924 follows a serial path through the tubing before returning to theheat exchange unit 924. In this embodiment, theground loop 926 comprises afeed conduit 930 receiving the heat exchange fluid discharged by theheat exchange unit 924, adischarge conduit 932 returning the heat exchange fluid that has circulated through theground loop 926 back to theheat exchange unit 924, a helical winding 940 coupled to thefeed conduit 930 that is buried in theearth 928 below the frost line 942 and is wound about the exterior offoundation walls 956 of thebuilding structure 950, a helical winding 944 coupled to thefeed conduit 930 that is buried in theearth 928 and is wound within the interior offoundation walls 956 of thebuilding structure 950, and a plurality of generally equally spaced,vertical coils 934 connected in series and arranged in a row. - The installation of the
ground loop 926 can be carried out in one or more stages. For single stage installation,ground loop 926 is installed following the foundation excavation and the construction of thefoundation walls 956. In other words, thevertical coils 934 and thehelical windings earth 928 prior to backfilling and therefore prior to the laying of thefoundation slab 954. Alternatively, for multiple stage installation, thevertical coils 934 are initially inserted into boreholes formed in theearth 928 and the helical winding 940 is installed, and thefoundation walls 956 are then constructed. Once the foundation walls are built, the interior helical winding 944 is installed. Those of skill in the art will appreciate that still other alternative installation sequences are possible. - The tubing of each fluid circuit may comprise a single, integral length of tubing or alternatively may comprise two or more lengths of interconnected tubing segments.
- Although the heat exchange fluid is described above as being a water/ethylene glycol mixture, the heat exchange fluid may be any suitable material or substance. Alternatively, the system may be a direct exchange (DX) heat pump system, in which the ground loop is configured to have refrigerant circulated therethrough.
- In the embodiments described above, the vertical coils of each fluid circuit are described and shown as being of generally the same diameter and having the same number of windings. Those of skill in the art will appreciate that the fluid circuits may comprise vertical coils of differing dimensions. Also, the spacing between adjacent vertical coils as well as the number of vertical coils in each fluid circuit may vary.
- Although embodiments have been described above with reference to the accompanying drawings, those of skill in the art will appreciate that variations and modifications may be made without departing from the spirit and scope thereof as defined by the appended claims.
Claims (22)
1. A geothermal heat pump system comprising:
at least one heat exchange unit; and
a ground loop in fluid communication with said at least one heat exchange unit, said ground loop having a feed into which heat exchange fluid is delivered by said at least one heat exchange unit and having a discharge via which circulated heat exchange fluid is returned to said at least one heat exchange unit, said ground loop comprising at least one fluid circuit formed of tubing arranged to define a plurality of laterally spaced, vertical coils buried in earth beneath a foundation slab of a building structure.
2. A heat pump system according to claim 1 wherein said vertical coils are connected in series.
3. A heat pump system according to claim 2 wherein said vertical coils are arranged in at least one row.
4. A heat pump system according to claim 3 wherein said vertical coils are generally evenly spaced.
5. A heat pump system according to claim 1 wherein said ground loop comprises a plurality of fluid circuits, each fluid circuit comprising a plurality of laterally spaced, vertical coils connected in series.
6. A heat pump system according to claim 5 wherein the vertical coils of each fluid circuit are arranged in at least one row.
7. A heat pump system according to claim 6 wherein the vertical coils of each fluid circuit are generally evenly spaced.
8. A heat pump system according to claim 1 wherein each of said vertical coils generally has the same diameter.
9. A heat pump system according to claim 1 wherein each of said vertical coils generally has the same number of windings.
10. A heat pump system according to claim 1 wherein the ground loop further comprises helical tubing wound about foundation walls of said building structure.
11. A heat pump system according to claim 10 wherein said helical tubing is in series with said vertical coils.
12. A heat pump system according to claim 11 wherein said helical tubing is intermediate at least one of said feed and said vertical coils and said vertical coils and discharge.
13. A heat pump system according to claim 1 wherein the heat exchange unit comprises a heat pump.
14. A heat pump system according to claim 1 wherein the foundation slab is a slab on grade.
15. A building structure comprising a foundation having foundation walls about a foundation slab and a heat pump system according to claim 1 to control the climate therein.
16. A method of installing a ground loop of a geothermal heat pump system comprising:
excavating earth to create a foundation excavation;
excavating a plurality of laterally spaced, generally vertical boreholes within the foundation excavation;
inserting a coil of tubing into each borehole, the coils being connected in series;
applying backfill over the coils; and
laying a foundation slab over the backfill.
17. The method of claim 16 further comprising winding a portion of the ground loop about foundation walls.
18. A method according to claim 17 wherein the winding is performed prior to construction of the foundation walls.
19. A method according to claim 17 wherein the winding is performed following construction of the foundation walls.
20. A method according to claim 16 wherein the slab is a slab on grade.
21. A ground loop for a geothermal heat pump system comprising:
a feed into which heat exchange fluid is delivered by at least one heat exchange unit;
a discharge to return circulated heat exchange fluid to said at least one heat exchange unit; and
at least one fluid circuit formed of tubing arranged to define a plurality of laterally spaced, vertical coils buried in earth beneath a foundation slab of a building structure.
22. A ground loop according to claim 21 , wherein the foundation slab is a slab on grade.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US12/783,084 US20100294456A1 (en) | 2009-05-19 | 2010-05-19 | Geothermal heat pump system |
Applications Claiming Priority (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US17949709P | 2009-05-19 | 2009-05-19 | |
US30498810P | 2010-02-16 | 2010-02-16 | |
US12/783,084 US20100294456A1 (en) | 2009-05-19 | 2010-05-19 | Geothermal heat pump system |
Publications (1)
Publication Number | Publication Date |
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US20100294456A1 true US20100294456A1 (en) | 2010-11-25 |
Family
ID=42506115
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US12/783,084 Abandoned US20100294456A1 (en) | 2009-05-19 | 2010-05-19 | Geothermal heat pump system |
Country Status (3)
Country | Link |
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US (1) | US20100294456A1 (en) |
EP (1) | EP2253920A3 (en) |
CA (1) | CA2704820A1 (en) |
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US20120132393A1 (en) * | 2009-08-03 | 2012-05-31 | Skanska Sverige Ab | Arrangement and method for storing thermal energy |
US20120261091A1 (en) * | 2009-10-09 | 2012-10-18 | Krecke Edmond D | Low-energy building, especially self-sufficient zero-energy house |
US20150276325A1 (en) * | 2012-11-01 | 2015-10-01 | Skanska Sverige Ab | Energy storage |
US9443043B1 (en) | 2014-03-28 | 2016-09-13 | Dennis J. Koop | Geothermal heat pump design simulation and analysis |
US9518787B2 (en) | 2012-11-01 | 2016-12-13 | Skanska Svergie Ab | Thermal energy storage system comprising a combined heating and cooling machine and a method for using the thermal energy storage system |
US9702574B2 (en) | 2013-05-09 | 2017-07-11 | Steven B. Haupt | Ground water air conditioning systems and associated methods |
US9823026B2 (en) | 2012-11-01 | 2017-11-21 | Skanska Sverige Ab | Thermal energy storage with an expansion space |
US9852243B1 (en) | 2014-03-28 | 2017-12-26 | Dennis J. Koop | Hybrid geothermal heat pump design simulation and analysis |
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US10204189B1 (en) | 2014-03-28 | 2019-02-12 | Dennis J. Koop | Geothermal heat pump design simulation and analysis |
CN109339707A (en) * | 2018-11-15 | 2019-02-15 | 中铁建工集团有限公司 | Deep basal pit ground-source heat pump system earth's surface drilling well is without pressure down pipe method and vertical underground pipe |
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US20220400625A1 (en) * | 2020-09-16 | 2022-12-22 | Ceres Greenhouse Solutions Llc | Multi-source heat exchange system employing a ground-energy storage system for controlled environment enclosures |
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US9791217B2 (en) * | 2012-11-01 | 2017-10-17 | Skanska Sverige Ab | Energy storage arrangement having tunnels configured as an inner helix and as an outer helix |
US9823026B2 (en) | 2012-11-01 | 2017-11-21 | Skanska Sverige Ab | Thermal energy storage with an expansion space |
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US9518787B2 (en) | 2012-11-01 | 2016-12-13 | Skanska Svergie Ab | Thermal energy storage system comprising a combined heating and cooling machine and a method for using the thermal energy storage system |
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US9702574B2 (en) | 2013-05-09 | 2017-07-11 | Steven B. Haupt | Ground water air conditioning systems and associated methods |
US9852243B1 (en) | 2014-03-28 | 2017-12-26 | Dennis J. Koop | Hybrid geothermal heat pump design simulation and analysis |
US9443043B1 (en) | 2014-03-28 | 2016-09-13 | Dennis J. Koop | Geothermal heat pump design simulation and analysis |
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CN109339707A (en) * | 2018-11-15 | 2019-02-15 | 中铁建工集团有限公司 | Deep basal pit ground-source heat pump system earth's surface drilling well is without pressure down pipe method and vertical underground pipe |
US20220400625A1 (en) * | 2020-09-16 | 2022-12-22 | Ceres Greenhouse Solutions Llc | Multi-source heat exchange system employing a ground-energy storage system for controlled environment enclosures |
US11778958B2 (en) * | 2020-09-16 | 2023-10-10 | Ceres Greenhouse Solutions Llc | Multi-source heat exchange system employing a ground-energy storage system for controlled environment enclosures |
US20240099202A1 (en) * | 2020-09-16 | 2024-03-28 | Ceres Greenhouse Solutions Llc | Multi-source heat exchange system employing a ground-energy storage system for controlled environment enclosures |
Also Published As
Publication number | Publication date |
---|---|
EP2253920A2 (en) | 2010-11-24 |
CA2704820A1 (en) | 2010-11-19 |
EP2253920A3 (en) | 2012-05-09 |
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