Geothermal adapter for use with a heat pump and associated methods
10837678 ยท 2020-11-17
Assignee
Inventors
Cpc classification
Y02E60/14
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
F24F2005/0057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24T10/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B39/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B30/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24T50/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24T10/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2313/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F5/0046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02B10/40
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
F25B13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D20/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E70/30
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
F25B47/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/10
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
International classification
F24T10/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A geothermal adapter for use with a heat pump includes an outer chamber being sealed under vacuum and having a plurality of heat sinks extending outward, and an inner chamber positioned concentrically and within the outer chamber. The inner chamber has an outlet configured to be coupled to a first portion of a refrigerant conduit of the heat pump. The geothermal adapter also includes a central chamber positioned concentrically and within the inner chamber, where the central chamber has an inlet configured to be coupled to a second portion of the refrigerant conduit of the heat pump. The center chamber extends through the inner chamber to a bottom end that is open and in fluid communication with the inner chamber.
Claims
1. A geothermal adapter for use with a heat pump, the geothermal adapter comprising: an outer chamber being sealed under vacuum and having a plurality of heat sinks extending outward; an inner chamber positioned concentrically and within the outer chamber, the inner chamber having an outlet configured to be coupled to a first portion of a refrigerant conduit of the heat pump; and a central chamber positioned concentrically and within the inner chamber, the central chamber having an inlet configured to be coupled to a second portion of the refrigerant conduit of the heat pump; wherein the center chamber extends through the inner chamber to a bottom end that is open and in fluid communication with the inner chamber.
2. The geothermal adapter of claim 1, wherein the outer chamber comprises copper.
3. The geothermal adapter of claim 2, wherein the inner and central chambers comprise copper.
4. The geothermal adapter of claim 3, wherein the plurality of heat sinks comprise aluminum.
5. The geothermal adapter of claim 1, wherein a length of the geothermal adapter is approximately twelve feet.
6. The geothermal adapter of claim 5, wherein a width of the geothermal adapter is approximately five inches.
7. The geothermal adapter of claim 1, further comprising zeolite surrounding the plurality of heat sinks.
8. The geothermal adapter of claim 1, wherein the geothermal adapter is configured to receive refrigerant at a first temperature at the inlet of the central chamber during a heating cycle, and to discharge the refrigerant at a second temperature higher than the first temperature at the outlet of the inner chamber.
9. The geothermal adapter of claim 1, wherein the geothermal adapter is configured to receive refrigerant at a first temperature at an inlet of the inner chamber during a cooling cycle, and to discharge the refrigerant at a second temperature lower than the first temperature at an outlet of the central chamber.
10. The geothermal adapter of claim 1, wherein the outer, inner, and central chambers comprise ACR or L type copper.
11. A heating and cooling system, the system comprising: a heat pump; an air handler; a geothermal adapter coupled between the heat pump and the air handler and positioned below ground, the geothermal adapter comprising, an outer chamber being sealed under vacuum and having a plurality of heat sinks extending outward; an inner chamber positioned concentrically and within the outer chamber, the inner chamber having an outlet configured to be coupled to a first portion of a refrigerant conduit of the heat pump; and a central chamber positioned concentrically and within the inner chamber, the central chamber having an inlet configured to be coupled to a second portion of the refrigerant conduit of the heat pump; wherein the center chamber extends through the inner chamber to a bottom end that is open and in fluid communication with the inner chamber.
12. The system of claim 11, wherein the outer chamber comprises copper.
13. The system of claim 12, wherein the inner and central chambers comprise copper.
14. The system of claim 13, wherein the plurality of heat sinks comprise aluminum.
15. The system of claim 11, wherein a length of the geothermal adapter is approximately twelve feet.
16. The system of claim 15, wherein a width of the geothermal adapter is approximately five inches.
17. The system of claim 11, further comprising zeolite surrounding the plurality of heat sinks.
18. A method of operating a heating and cooling system comprising a heat pump, an air handler, and a geothermal adapter coupled between the heat pump and the air handler and positioned below ground, the geothermal adapter comprising an outer chamber being sealed under vacuum and having a plurality of heat sinks extending outward, an inner chamber positioned concentrically and within the outer chamber, and a central chamber positioned concentrically and within the inner chamber, wherein the center chamber extends through the inner chamber to a bottom end that is open and in fluid communication with the inner chamber, the method comprising: circulating refrigerant between the heat pump, the air handler, and the geothermal adapter.
19. The method of claim 18, wherein a flow direction of the refrigerant during a heating cycle is from the heat pump to the air handler, to the geothermal adapter, and back to the heat pump.
20. The method of claim 18, wherein a flow direction of the refrigerant during a cooling cycle is from the heat pump to the geothermal adapter, to the air handler, and back to the heat pump.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(8) In the summary of the invention, provided above, and in the descriptions of certain preferred embodiments of the invention, reference is made to particular features of the invention, for example, method steps. It is to be understood that the disclosure of the invention in this specification includes all possible combinations of such particular features, regardless of whether a combination is explicitly described. For instance, where a particular feature is disclosed in the context of a particular aspect or embodiment of the invention, that feature can also be used, to the extent possible, in combination with and/or in the context of other particular aspects and embodiments of the invention, and in the invention generally.
(9) It is an objective of the invention to provide an apparatus, method and system in which to further increase the efficiency and operations of a heat pump system even further such as the already highly efficient thermal cell heat pump system described in U.S. patent application Ser. No. 16/423,887 and owned by the same Applicant herein.
(10) Now referring to
(11) The geothermal adapter 102 includes an outer chamber 104, which comprises a plurality of heat sinks 106 extending outward from the outer chamber 104. An inner chamber 114 is generally concentrically and within to the outer chamber 104. A central chamber 108 is similarly concentrically and within to the inner chamber 114. The central chamber 108 comprises an inlet 110 at its top end 110 that is configured to be coupled to a refrigerant conduit of the heat pump 100. The center chamber 108 extends through the inner chamber 114 to a bottom end 112 that is open. The open end 112 of the center chamber 108 is in fluid communication with the inner chamber 114. Those of ordinary skill in the art can appreciate that the inlet 116 of the central chamber would be an outlet during a cooling cycle when the direction of flow of refrigerant from the heat pump 100 is reversed.
(12) A cross sectional view of the geothermal adapter 102 is illustrated in
(13) As explained above, the geothermal adapter 102 comprises three chambers in which the outer chamber 104 is constructed of thick wall copper and lined with a plurality of heat sinks 106 for efficient thermal transfer. This outer chamber 104 is also free of air and placed into a vacuum state to eliminate any insulated properties. The plurality of heat sinks 106 may be comprised of aluminum in a particular aspect of the invention.
(14) The inner chamber 114 of the geothermal adapter 102 is configured to discharge the refrigerant through an outlet 116 proximate a top end during a heating cycle. The center chamber 108 is positioned within the inner chamber 114 and includes the inlet 110 positioned at the top of the geothermal adapter 102. Those of ordinary skill in the art can appreciate that the outlet 116 would be an inlet during a cooling cycle when the direction of flow of refrigerant from the heat pump 100 is reversed.
(15) The inner chamber 114 is configured to be a conduit for liquid flowing refrigerant from the heating cycle of the heat pump 100. During the heating cycle, a diameter of the inner chamber 114 allows the refrigerant to flow slower and absorb more geothermal energy from the outer chamber 104. The outer chamber 104 also acts as a protective barrier for the center and inner chambers 108, 114. Accordingly, the outer chamber 104 prevents the refrigerant from escaping the geothermal adapter 102 since the geothermal adapter 102 is hermetically sealed.
(16) The geothermal adapter 102 is configured to utilize natural properties of minerals in order to more efficiently absorb, tap and transfer geothermal energy. For example, the balance of the bore or vacant area surrounding the geothermal adapter 102 within a hole may be filled with zeolite 120. Zeolite 120 is a sponge like mineral that is able to hold four times more heat than water. The zeolite 120 will continue to assist the geothermal adapter 102 to tap, absorb and transfer geothermal energy to the heat pump 100.
(17) The zeolite 120 is configured to adapt to the fifty-five degree ground temperature that is typically found about twenty four inches below the surface 118 and below the freezing depth. Once the geothermal adapter 102 begins to cool as a result of refrigerant flowing through its chambers, the plurality of heat sinks 106 and outer chamber 104 that is comprised of copper will cause condensation on the outside of the geothermal adapter 102. This in turn will cause the zeolite 120 to release thermal heat energy which will then be absorbed by a natural thermal transfer process into the refrigerant flowing through the geothermal adapter 120.
(18) The construction of the geothermal adapter 120 results in efficient thermal transfer properties. For example, the outer, inner, and center chambers 104, 114, 108 are comprised of copper and the plurality of heat sinks 106 are comprised of a different metal, in this example aluminum. In addition, the outer chamber 104 of the geothermal adapter 102 is under a vacuum so that no air is present and therefore no insulating properties or restrictions in the thermal transfer. When the heat pump 100 is in its heating cycle, cold liquid refrigerant will flow from the heat pump 100 into the center chamber 108 and be in its coldest state. The refrigerant then will flow down to the bottom of the center chamber 108 and exit the center chamber 108 at its bottom end 112 and then begin its trip back up into the inner 114 chamber in which it will flow at a slower rate and realize a larger surface interaction. The refrigerant will begin to absorb geothermal heat energy from the ground 122 as heat energy will flow from warmer ground towards the colder geothermal adapter 102. The refrigerant flow circulating through the geothermal adapter 102 and the heat pump may be controlled by a variable speed compressor.
(19) Referring now to
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(21) The directional flow of the refrigerant in the cooling cycle of a heat pump 100 is shown in
(22) Referring now to
(23) The geothermal adapter 102 is suitable to be used in locations once thought impossible to tap the benefits of geothermal heat energy because of the large amount of area required by typical geothermal systems. The geothermal adapter 102 in accordance with the invention needs about one-foot square area for installation so that practically any home or building can implement the geothermal adapter 102. In particular, even structures in urban areas, condos, townhouse, small lots, even city dwellings, can implement the geothermal adapter for use with the heat pump.
(24) Additional features and advantages to the geothermal adapter 102 include, but are not limited to, once below the surface even the upper portions of the geothermal adapter 102 will be absorbing heat from the ground. The moisture and soil acts as an insulator similar to snow against the severe cold conditions of the air temperature. Moisture released below the surface 118 works with the properties of the zeolite 120 to enhance performance of the geothermal adapter 120. This is in contrast to a conventional heat pump system where the heat pump uses only the ambient air temperature to operate, and the efficiency of the heat pump is impacted significantly when the ambient air is at or below freezing.
(25) As explained above, the preferred installation is to insert the geothermal adapter 102 into a bored hole about twelve feet deep and six inches in diameter with the hole filled to the ground surface level with zeolite 120. The dimensions of the installation are sufficient to accommodate approximately nine percent expansion and movement of the ground during natural freeze and defrost cycles in which the ground will expand and move.
(26) Referring now to
(27) When refrigerant is flowing through the copper inner chamber 114 and center chamber 108 and the plurality of aluminum heat sinks 106 are in contact with the zeolite 120 which is at approximately fifty-five degrees due to the geothermal heat of the earth, the plurality of heat sinks 106 and copper will begin to form condensation deep below the surface, even on the coldest days. This condensation will flow as water into and react with the zeolite 120. This reaction in return releases heat to be absorbed by the liquid refrigerant further increasing the efficiency of the refrigerant and ability to perform thermal transfer in even the most challenging conditions.
(28) The refrigerant returns rich in thermal energy from the geothermal adapter 102 instead of attempting to absorb heat from the coldest outdoor conditions by utilizing and absorbing heat from the earth. Accordingly, regardless to how cold the outdoor air may be, the temperature below ground will remain around fifty-five degrees Fahrenheit. The heat pump 100 can operate at maximum efficiency regardless of the outdoor temperatures or conditions when using the geothermal adapter 102. Thus, heat pump systems with the geothermal adapter 102 can be installed in some of the coldest locations on earth and will remain at maximum efficiency because the geothermal adapter 102 has no moving parts and is reliable.
(29) A method of operating a heating and cooling system that utilizes the geothermal adapter described above includes circulating refrigerant between the heat pump 100, the air handler 130, and the geothermal adapter 102. The flow direction of the refrigerant during a heating cycle is from the heat pump 100 to the air handler 130, to the geothermal adapter 102, and back to the heat pump 100. During a cooling cycle, the flow direction of the refrigerant is from the heat pump 100 to the geothermal adapter 102, to the air handler 130, and back to the heat pump 100.
(30) The geothermal adapter 102 reduces the defrost cycles required by the heat pump 100 and accentuates the positive aspects of the operation of a heat pump 100 while reducing the negative aspects. In addition, since the installation of the geothermal adapter 102 requires a relatively small shallow hole, it is cost effective to install and can be utilized in residential, commercial and industrial settings, regardless of location or soil.
(31) In general, the foregoing description is provided for exemplary and illustrative purposes; the present invention is not necessarily limited thereto. Rather, those skilled in the art will appreciate that additional modifications, as well as adaptations for particular circumstances, will fall within the scope of the invention as herein shown and described and of the claims appended hereto.