MODULAR SUSTAINABLE POWER PLANT FOR HARVESTING NON-VOLCANIC GEOTHERMAL HEAT
20230111831 · 2023-04-13
Inventors
Cpc classification
F03G7/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24T10/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H10N10/00
ELECTRICITY
F24V50/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G4/031
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G7/0616
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03G7/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24T10/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A modular power plant system may include a plurality of thermal energy conversion elements installed in multiple cavities in the bottom of the well or along the well. The thermal energy conversion elements may convert geothermal heat directly to electricity. A surface infrastructure may consist of electricity distribution racks and pumps that drive cooling liquid in closed or open loops to cool the thermal energy conversion elements. AC or DC voltage may be communicated from each of the thermal energy conversion elements to the surface infrastructure for the distribution of electricity in a decentralized power grid.
Claims
1. A modular power plant system comprising: an electricity distribution system; a surface infrastructure in operable communication with the electricity distribution system; at least one thermal energy conversion module disposed within a borehole within the earth crust and being in operable communication with the surface infrastructure, wherein the at least one thermal conversion module is constructed and arranged to convert geothermal heat to DC or AC voltage and communicate voltage to the surface infrastructure; and at least one of a closed or open loop cooling system constructed and arranged to draw heat away from the at least one thermal energy conversion module and dissipate said heat via at least one of ambient cooling near surface level portions of the borehole or on the surface via a dedicated cooling system.
2. The modular power plant system as in claim 1, wherein the at least one thermal energy conversion module is a plurality of thermal energy conversion modules.
3. The modular power plant system as in claim 2, wherein the plurality of thermal energy conversion modules are disposed in in parallel within the borehole.
4. The modular power plant system as in claim 2, wherein the plurality of thermal energy conversion modules are disposed in series within the borehole.
5. The modular power plant system as in claim 2, wherein the plurality of thermal energy conversion modules are disposed partially in parallel and partially in series within the borehole.
6. The modular power plant system as in claim 1, further comprising at least one additional cooling system constructed and arranged to draw heat away from the at least one thermal energy conversion module.
7. The modular power plant system as in claim 1, wherein the borehole is part of a at least one of a pre-existing well, drilled hole, or structure with constant heat flow.
8. The modular power plant system as in claim 1, wherein the at least one thermal energy conversion module comprises a thermoelectric generator comprising a hot side opposite a cool side.
9. The modular power plant system as in claim 8, wherein the at least one of a closed or open loop cooling system is constructed and arranged to draw heat from the cool side of the thermoelectric generator and dissipate heat via at least one of ambient cooling near surface level portions of the borehole or a dedicated cooling system.
10. The modular power plant system as in claim 1, wherein the at least one thermal energy conversion module further comprises at least one DC collector in operable communication with at least DC to AC converter.
11. The modular power plant system as in claim 1, wherein the at least one of a closed or open loop cooling system comprises a coolant delivery system and a coolant receiving system in operable communication with surface infrastructure.
12. A thermal energy conversion module comprising: a thermoelectric generator comprising an outer surface and an inner surface and defining a cavity therein, the thermal electric generator being constructed and arranged to convert temperature difference between the outer surface and the inner surface into electrical energy; at least one of a closed or open loop cooling system disposed approximately withing the cavity of the thermal electric converter; at least one DC collector constructed and arranged to collect electrical energy from the thermoelectric generator; and at least one DC to AC converter constructed and arranged to receive DC voltage from the DC collector.
13. A thermal energy conversion module as in claim 12 wherein the at least one of a closed or open loop cooling system at least partially encapsulates the at least one DC collector and the at least one DC to AC converter.
14. A thermal energy conversion module as in claim 12, wherein the at least one of a closed or open loop cooling system comprises a coolant delivery system and a coolant receiving system in operable communication with surface infrastructure.
15. A thermal energy conversion module as in claim 12, further comprising at least one additional cooling system constructed and arranged to draw heat away from the at least one of a closed or open loop cooling system.
16. A thermal energy conversion module as in claim 12, wherein the borehole is part of a pre-existing well or drilled hole.
17. A thermal energy conversion module as in claim 12, wherein the at least one thermal energy conversion module comprises a thermoelectric generator comprising a hot side opposite a cool side.
18. A modular power plant system comprising: a plurality of thermal energy conversion modules, each comprising a thermoelectric generator comprising an outer surface and an inner surface and defining a cavity therein, the thermal electric generator being constructed and arranged to convert temperature difference between the outer surface and the inner surface into electrical energy; a plurality of DC collectors in series constructed and arranged to collect electrical energy from the thermoelectric generator; and at least one DC to AC converter constructed and arranged to receive DC voltage from the DC collector; and
at least one at least one of a closed or open loop cooling system disposed approximately within the cavity of each of the thermal energy conversion modules within the plurality of thermal energy conversion modules thermal electric converter.
19. The modular power plant system as in claim 18, wherein the at least one at least one of a closed or open loop cooling system comprises a coolant delivery system and a coolant receiving system in operable communication with a surface infrastructure.
20. The modular power plant system as in claim 18, further comprising electrical subsystems in operable communication with the at least one DC to AC converter to operably communicate electrical energy from each of the plurality of thermal energy conversion modules to a surface infrastructure in operable communication with an electricity distribution system constructed and arranged to distribute electricity.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] A complete understanding of the present embodiments and features thereof will be more readily understood by reference to the following detailed description when considered in conjunction with the accompanying drawings, wherein:
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[0020] The drawings are not necessarily to scale, and certain features and certain views of the drawings may be shown exaggerated in scale or in schematic in the interest of clarity and conciseness and should not be considered limiting.
DETAILED DESCRIPTION
[0021] The specific details of the single embodiment or variety of embodiments described herein are to the described system and methods of use. Any specific details of the embodiments are used for demonstration purposes only and no unnecessary limitations or inferences are to be understood from there.
[0022] It is noted that the embodiments reside primarily in combinations of components and procedures related to the system. Accordingly, the system components have been represented where appropriate by conventional symbols in the drawings, showing only those specific details that are pertinent to understanding the embodiments of the present disclosure so as not to obscure the disclosure with details that will be readily apparent to those of ordinary skill in the art having the benefit of the description herein.
[0023] In general, the system may provide for a method of conversion of geothermal heat to electricity occurring in thermal energy conversion modules installed in the bottom of a well or along the length of a well and connected in series to create desired voltage output and in parallel for required power. Each module may include thermoelectric elements such as TEGs with a hot-side facing outwards towards a well-wall or borehole wall and a cold-side exposed to cooling lines or a cooling system. The cooling lines may encapsulate DC electronics and DC/AC converters used to transfer electricity to the surface. The temperature of the coolant is maintained at shallow depth temperatures via ambient cooling or additional cooling systems.
[0024] Referring to
[0025] Referring to
[0026] Referring to
[0027] Referring to
[0028] The following description of variants is only illustrative of components, elements, acts, products, and methods considered to be within the scope of the invention and are not in any way intended to limit such scope by what is specifically disclosed or not expressly set forth. The components, elements, acts, products, and methods as described herein may be combined and rearranged other than as expressly described herein and are still considered to be within the scope of the invention.
[0029] According to variation 1, a modular power plant system may include an electricity distribution system; a surface infrastructure in operable communication with the electricity distribution system; at least one thermal energy conversion module disposed within a borehole within the earth crust and being in operable communication with the surface infrastructure, wherein the at least one thermal conversion module is constructed and arranged to convert geothermal heat to DC or AC voltage and communicate voltage to the surface infrastructure; and at least one of a closed or open loop cooling system constructed and arranged to draw heat away from the at least one thermal energy conversion module and dissipate said heat via at least one of ambient cooling near surface level portions of the borehole or on the surface via a dedicated cooling system.
[0030] Variation 2 may include a modular power plant system as in variation 1, wherein the at least one thermal energy conversion module is a plurality of thermal energy conversion modules.
[0031] Variation 3 may include a modular power plant system as in variations 1 or 2, wherein the plurality of thermal energy conversion modules are disposed in in parallel within the borehole.
[0032] Variation 4 may include a modular power plant system as in any of variations 1 through 3, wherein the plurality of thermal energy conversion modules are disposed in series within the borehole.
[0033] Variation 5 may include a modular power plant system as in any of variations 1 through 4, wherein the plurality of thermal energy conversion modules are disposed partially in parallel and partially in series within the borehole.
[0034] Variation 6 may include a modular power plant system as in any of variations 1 through 5, and may further include at least one additional cooling system constructed and arranged to draw heat away from the at least one thermal energy conversion module.
[0035] Variation 7 may include a modular power plant system as in any of variations 1 through 6, wherein the borehole is part of a at least one of a pre-existing well, drilled hole, or structure with constant heat flow.
[0036] Variation 8 may include a modular power plant system as in any of variations 1 through 7, wherein the at least one thermal energy conversion module includes a thermoelectric generator may include a hot side opposite a cool side.
[0037] Variation 9 may include a modular power plant system as in any of variations 1 through 8, wherein the at least one of a closed or open loop cooling system is constructed and arranged to draw heat from the cool side of the thermoelectric generator and dissipate heat via at least one of ambient cooling near surface level portions of the borehole or a dedicated cooling system.
[0038] Variation 10 may include a modular power plant system as in any of variations 1 through 9, wherein the at least one thermal energy conversion module further includes at least one DC collector in operable communication with at least DC to AC converter.
[0039] Variation 11 may include a modular power plant system as in any of variations 1 through 10, wherein the at least one of a closed or open loop cooling system includes a coolant delivery system and a coolant receiving system in operable communication with surface infrastructure.
[0040] According to variation 12, a thermal energy conversion module may include a thermoelectric generator may include an outer surface and an inner surface and defining a cavity therein, the thermal electric generator being constructed and arranged to convert temperature difference between the outer surface and the inner surface into electrical energy; at least one of a closed or open loop cooling system disposed approximately withing the cavity of the thermal electric converter; at least one DC collector constructed and arranged to collect electrical energy from the thermoelectric generator; and at least one DC to AC converter constructed and arranged to receive DC voltage from the DC collector.
[0041] Variation 13 may include thermal energy conversion module as in variation 12 wherein the at least one of a closed or open loop cooling system at least partially encapsulates the at least one DC collector and the at least one DC to AC converter.
[0042] Variation 14 may include thermal energy conversion module as in variations 12 or 13, wherein the at least one of a closed or open loop cooling system includes a coolant delivery system and a coolant receiving system in operable communication with surface infrastructure.
[0043] Variation 15 may include thermal energy conversion module as in any of variations 12 through 14 and may further include at least one additional cooling system constructed and arranged to draw heat away from the at least one of a closed or open loop cooling system.
[0044] Variation 16 may include thermal energy conversion module as in any of variations 12 through 15 wherein the borehole is part of a pre-existing well or drilled hole.
[0045] Variation 17 may include thermal energy conversion module as in any of variations 12 through 16 wherein the at least one thermal energy conversion module includes a thermoelectric generator may include a hot side opposite a cool side.
[0046] Variation 18 may include a modular power plant system that may include a plurality of thermal energy conversion modules, each may include a thermoelectric generator may include an outer surface and an inner surface and defining a cavity therein, the thermal electric generator being constructed and arranged to convert temperature difference between the outer surface and the inner surface into electrical energy; a plurality of DC collectors in series constructed and arranged to collect electrical energy from the thermoelectric generator; and at least one DC to AC converter constructed and arranged to receive DC voltage from the DC collector; and at least one at least one of a closed or open loop cooling system disposed approximately within the cavity of each of the thermal energy conversion modules within the plurality of thermal energy conversion modules thermal electric converter.
[0047] Variation 19 may include a modular power plant system as in variation 18, wherein the at least one at least one of a closed or open loop cooling system includes a coolant delivery system and a coolant receiving system in operable communication with a surface infrastructure.
[0048] Variation 20 may include a modular power plant system as in variation 18 or 19 and may further include electrical subsystems in operable communication with the at least one DC to AC converter to operably communicate electrical energy from each of the plurality of thermal energy conversion modules to a surface infrastructure in operable communication with an electricity distribution system constructed and arranged to distribute electricity.
[0049] Many different embodiments have been disclosed herein, in connection with the above description and the drawings. It will be understood that it would be unduly repetitious and obfuscating to describe and illustrate every combination and subcombination of these embodiments. Accordingly, all embodiments can be combined in any way and/or combination, and the present specification, including the drawings, shall be construed to constitute a complete written description of all combinations and subcombinations of the embodiments described herein, and of the manner and process of making and using them, and shall support claims to any such combination or subcombination.
[0050] An equivalent substitution of two or more elements can be made for anyone of the elements in the claims below or that a single element can be substituted for two or more elements in a claim. Although elements can be described above as acting in certain combinations, and even initially claimed as such, it is to be expressly understood that one or more elements from a claimed combination can, in some cases, be excised from the combination and that the claimed combination can be directed to a subcombination or variation of a subcombination.
[0051] It will be appreciated by persons skilled in the art that the present embodiment is not limited to what has been particularly shown and described hereinabove. A variety of modifications and variations are possible considering the above teachings without departing from the following claims.