IP Library Granted Patent US 9,739,509
Granted Patent B2
US 9,739,509 · App. 14/310,070 · Granted Aug 22, 2017

Multi-fluid renewable geo-energy systems and methods

Inventor: Thomas A. Buscheck (Pleasanton, CA)
Assignee: Lawrence Livermore National Laboratory
F24J3/085F02C1/00F03D9/17F03G7/04F28D20/0052F24J2003/089Y02E10/14Y02E10/72Y02E60/142Y02E60/15Y02E70/30
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,739,509
App. No.
14/310,070
Granted
Aug 22, 2017
Kind
B2
Abstract

A geo-energy production method for extracting thermal energy from a reservoir formation. A production well extracts brine from the reservoir formation. A plurality of working fluid injection (“WFI”) wells may be arranged proximate to the production well to at least partially circumscribe the production well. A plurality of brine production (“BP”) wells may be arranged in a vicinity of the WFI wells to at least partially circumscribe the WFI wells. A working fluid is injected into the WFI wells to help drive a flow of the brine up through the production and BP wells, together with at least a portion of the injected working fluid. Parasitic-load time-shifting and to storing of excess solar thermal energy may also be performed.

Claims (120)

1. A geo-energy production method for extracting thermal energy from a reservoir formation, the method comprising:

using an at least one production well to extract native brine from the reservoir formation, the at least one production well being disposed at a first elevation within a native brine reservoir of the reservoir formation, and below a gas cap layer of the native brine reservoir formation;

using at least one first supplemental working fluid production well at a second elevation above the at least one production well, and within the gas cap layer of the native brine reservoir formation;

arranging a plurality of supplemental working fluid injection wells in a vicinity of the at least one production well to at least partially circumscribe the at least one production well;

arranging a plurality of brine re-injection wells around the plurality of supplemental working fluid injection wells, to generally circumscribe the plurality of supplemental working fluid injection wells, and further such that a first one of the plurality of brine re-injection wells is located at a different depth from a second one of the plurality of brine re-injection wells;

injecting a working fluid into the supplemental working fluid injection wells to augment a pressure in the native brine reservoir formation, to thus drive a flow of the native brine up from the native brine reservoir formation through the at least one production well and up through the at least one first supplemental working fluid production well, together with at least a portion of the injected working fluid;

re-injecting the native brine into the reservoir formation to create a region circumscribing the supplemental working fluid injection wells that forms a hydraulic divide, the hydraulic divide creating a region of overpressure around the native brine reservoir formation; and

managing a parasitic load associated with the injection of the working fluid, which enables extraction of native brine from the native brine reservoir formation, in a manner to influence a net power output of an electrical power plant associated with an electrical power grid, in a manner which responds to power needs on the electrical power grid.

2. The method of claim 1 , wherein the power needs represent real-time power needs or projected power needs.

3. The method of claim 1 , wherein controlling the net power output of the electrical plant comprises using bulk energy storage, and wherein the bulk energy storage includes at least one of:

time-shifting a parasitic load associated with operation of the supplemental working fluid injection wells;

modulating a parasitic load associated with operation of the supplemental working fluid injection wells; or

modulating working fluid production.

4. The method of claim 1 , further comprising using the working fluid to achieve thermal energy storage, the thermal energy storage including at least one of:

heated thermal energy storage; or

chilled thermal energy storage; and

wherein a thermal energy source used to achieve the thermal energy storage includes at least one of solar thermal energy, waste heat, or chilled thermal energy.

5. The method of claim 1 , wherein the plurality of supplemental working fluid injection wells form a generally concentric ring around the at least one production well; and

further including a plurality of brine production wells arranged to form a generally concentric ring around the supplemental working fluid injection wells.

6. The method of claim 1 ,

wherein the brine re-injection wells form a ring that circumscribes the supplemental working fluid injection wells.

7. The method of claim 6 , wherein the working fluid injected into the supplemental working fluid injection wells comprises at least one of:

nitrogen, N 2 ;

carbon dioxide, CO 2 ;

water supplied from an external source;

water comprising effluent from a waste-water treatment facility;

brine supplied from a separate reservoir formation; or

brine comprising effluent from a reverse osmosis (RO) desalination plant.

8. The method of claim 1 , wherein the working fluid comprises at least one of:

native brine;

water supplied from an external source;

water comprising effluent from a waste-water treatment facility;

brine supplied from a separate reservoir formation; or

brine comprising effluent from a reverse osmosis (RO) desalination plant.

9. The method of claim 1 , further comprising:

using the geo-energy production method to supplement power being provided to the electrical power grid;

controlling a parasitic load associated with accessing, pressurizing, and injecting the working fluid so that acquisition, pressurization, and injection of the working fluid can be scheduled to occur during a period of at least one of:

when the supply of electrical power exceeds a demand for electrical power on the electrical power grid and there is a need to store bulk energy

when the supply of electrical power exceeds a demand for electrical power on the electrical power grid and there is a need to store, in a modulated manner, bulk energy and

when a demand for electrical power on the electrical power grid exceeds the supply of the electrical power available from the electrical power grid and there is a need to modulate the net power supplied to the electrical power grid.

10. The method of claim 9 , further comprising controlling the parasitic load in relation to an availability of at least one of:

solar thermal energy (STE);

chilled thermal energy (CTE); or

wind power; and

wherein at least one of the STE or the wind power is being used to generate electrical power being supplied to the electrical power grid.

11. The method of claim 1 , wherein the working fluid is thermally-augmented using at least one of:

waste heat;

solar thermal energy (STE);

solar thermal energy in connection with waste heat; or

chilled thermal energy (CTE); and

wherein the working fluid comprises at least one of:

native brine;

water supplied from an external source;

water comprising effluent from a waste-water treatment facility;

brine supplied from a separate reservoir formation;

brine comprising effluent from a reverse osmosis (RO) desalination plant;

nitrogen (N 2 ); or

carbon dioxide (CO 2 ).

12. The method of claim 1 , further comprising thermally augmenting the native brine and/or water that has been temporarily stored at a surface-located reservoir by using at least one of:

waste heat;

solar thermal energy (STE);

solar thermal energy in connection with waste heat; or

chilled thermal energy; and

wherein the surface-located reservoir allows the parasitic load associated with the pressurization and injection of the thermally augmented brine to be scheduled in a manner that responds to at least one of:

the power needs of the electrical power grid;

the availability of waste heat;

the availability of solar thermal energy (STE); or

the availability of chilled thermal energy (CTE).

13. The method of claim 1 , wherein the working fluid is pre-heated native brine, using a series looping arrangement involving at least two subsurface reservoirs comprising:

initially injecting the native brine into a first subsurface reservoir to produce a preheated brine; and

subsequently removing the preheated brine from the first subsurface reservoir and injecting the preheated brine into at least one of the supplemental working fluid injection wells in the a second subsurface reservoir, to slow down the rate of thermal depletion of the second subsurface reservoir; and

wherein the option exists for parasitic load associated with the pressurization and injection of the pre-heated brine into the second subsurface reservoir to be scheduled in a manner that responds to the power needs of the electrical power grid.

14. The method of claim 1 , further comprising:

transferring heat from the brine after the brine is recovered from the at least one production well, to at least one of carbon dioxide (CO 2 ) or nitrogen (N 2 ) that has been recovered from production wells, the at least one of CO 2 and N 2 being used to drive an external electrical generating implement.

15. The method of claim 14 , wherein the operation of transferring heat comprises using a surface-located heat exchanger to transfer the heat from the brine to the CO 2 and/or N 2 .

16. The method of claim 14 , further comprising performing the brine-to-CO 2 /N 2 heat transfer using produced brine wherein the brine comprises brine that has been pre-heated by one of at least

solar thermal energy; or

waste heat; and

performing the pre-heating of the brine during a period of at least one of:

prior to being injected into the supplemental working fluid injection wells in a subsurface reservoir; or

subsequent to being produced up one of at least:

the supplemental working fluid production wells; or

a plurality of brine production wells arranged in a vicinity of the supplemental working fluid injection wells to at least partially circumscribe the supplemental working fluid injection wells.

17. The method of claim 16 , wherein the brine is pre-heated using a series looping arrangement involving at least two subsurface reservoirs comprising:

initially injecting brine into a first subsurface reservoir to produce a preheated brine; and

subsequently removing the preheated brine from the first subsurface reservoir and injecting the preheated brine into at least one of the supplemental working fluid injection wells in the at least second subsurface reservoir, to slow down the rate of thermal depletion of the at least second subsurface reservoir.

18. The method of claim 16 , wherein the operations of injecting, storing, and producing the pre-heated brine are done in conjunction with a solar thermal energy (STE) power system; and

wherein the solar thermal energy (STE) power system is used to pre-heat the brine during times when a production of solar thermal energy is above a predetermined threshold.

19. A geo-energy production method for use in connection with an electrical power plant supplying electrical power to an electrical power grid, and for extracting thermal energy from a reservoir formation to be used to assist in supplying electrical power to the electrical power grid, the method comprising:

using an at least one production well to extract native brine from the reservoir formation, the at least one production well being disposed at a first elevation within a native brine reservoir of the reservoir formation, and below a gas cap layer of the reservoir formation;

using at least one first supplemental working fluid production well disposed at a second elevation above the at least one production well and within the gas cap layer of the reservoir formation;

arranging a plurality of supplemental working fluid injection wells in a ring around the at least one production well to at least partially circumscribe the at least one production well;

arranging a plurality of brine production wells in a ring around the ring of supplemental working fluid injection wells to at least partially circumscribe the supplemental working fluid injection wells;

arranging a plurality of brine re-injection wells around the plurality of supplemental working fluid injection wells, to generally circumscribe the plurality of supplemental working fluid injection wells, and further such that the plurality of brine production wells at least partially circumscribe the plurality of brine re-injection wells, and further such that a first one of the plurality of brine re-injection wells is located at a different depth from a second one of the plurality of brine re-injection wells;

injecting a working fluid into the supplemental working fluid injection wells to augment a pressure in the reservoir formation, to thus drive a flow of the native brine up through the at least one production well and the at least one supplemental working fluid production well, and up through the brine production wells, together with at least a portion of the injected working fluid;

re-injecting the native brine into the reservoir formation to create a region circumscribing the supplemental working fluid injection wells that forms a hydraulic divide, the hydraulic divide creating a region of overpressure around the native brine in the reservoir formation; and

wherein the working fluid comprises at least one of:

native brine;

water supplied from an external source;

water comprising effluent from a waste-water treatment facility;

brine supplied from a separate reservoir formation; or

brine comprising effluent from a reverse osmosis (RO) desalination plant;

nitrogen (N 2 ); or

carbon dioxide (CO 2 ); and

using bulk energy storage to also store thermal energy to modify a net power output of the power plant, the bulk energy storage being implemented by

modulating a parasitic load associated with operation of the supplemental working fluid injection wells, in relation to electrical power available on the electrical power grid.

20. The method of claim 19 , further comprising using the geo-energy production method to supplement power being provided to the electrical power grid wherein at least one of a solar energy source or a wind energy source are supplying power to the electrical power grid; and

performing the modulating of the parasitic load so that injection of the working fluid occurs during a period of at least one of:

when power supply exceeds power demand on the electrical power grid; or

when a surplus supply of at least one of a solar energy source or a wind energy source is being provided to the electrical power grid.

21. The method of claim 19 , further comprising pre-heating the at least brine or water prior to injecting the brine and/or water in the brine re-injection wells, wherein the brine and/or water is pre-heated with at least one of solar thermal energy or waste heat.

22. A geo-energy production system for use in connection with a power plant supplying electrical power to an electrical power grid, and for extracting thermal energy from a reservoir formation, the system comprising:

at least one production well to extract native brine from the reservoir formation, the at least one production well being disposed at a first elevation within a native brine reservoir of the reservoir formation, and below a gas cap layer of the reservoir formation;

using at least one first supplemental working fluid production well disposed at a second elevation above the at least one production well and within the gas cap layer of the reservoir formation;

a plurality of supplemental working fluid injection wells arranged in a vicinity of the at least one production well to at least partially circumscribe the at least one production well;

a plurality of brine production wells arranged in a vicinity of the supplemental working fluid injection wells to at least partially circumscribe the supplemental working fluid injection wells;

a plurality of brine re-injection wells arranged around the plurality of supplemental working fluid injection wells, to generally circumscribe the plurality of supplemental working fluid injection wells, and further such that the plurality of brine production wells at least partially circumscribe the plurality of brine re-injection wells, and further such that a first one of the brine re-injection wells is located at a different depth from a second one of the brine re-injection wells;

a working fluid injected into the supplemental working fluid injection wells to augment a pressure in the reservoir formation, to thus drive a flow of the native brine up through the at least one production well and the at least one supplemental working fluid production well, and up through the plurality of brine production wells, together with at least a portion of the working fluid;

wherein the injection, into the brine re-injection wells, of the native brine produced from the plurality of brine production wells that at least partially circumscribes the plurality of supplemental working fluid injection wells, creates a region circumscribing the supplemental working fluid injection wells that forms a hydraulic divide, the hydraulic divide creating a region of overpressure around the native brine within the reservoir formation; and

the system being configured to control a net power output of the power plant in a manner that responds to real-time and projected power needs of the electrical power grid.

Assignments (2)
CONFIRMATORY LICENSE Recorded Oct 9, 2014
From: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 033920/0811 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2014
From: BUSCHECK, THOMAS A.
To: LAWRENCE LIVERMORE NATIONAL SECURITY, LLC
Reel/Frame 033147/0538 →
Continuity (1)
Related Publication 20150369521A1 · Dec 24, 2015