IP Library › Granted Patent US 12,270,368
Granted Patent B2
US 12,270,368 · App. 18/161,686 · Granted Apr 8, 2025

Systems and methods for subterranean energy storage

Inventor: John Dane Rasmussen (Wembley, AU)
F03B13/06E21B43/12E21F15/10
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Quick Facts
Patent No.
US 12,270,368
App. No.
18/161,686
Granted
Apr 8, 2025
Kind
B2
Abstract

The present invention relates to systems and methods for subterranean energy storage. The systems and methods involve a higher-pressured subterranean rock formation in fluid communication with a lower-pressured subterranean rock formation via a controllable fluid channel intersecting both formations. Potential energy is converted to electrical energy by allowing fluid to flow from the higher-pressured formation to the lower-pressured formation through a turbine in fluid communication with the fluid channel. The system is recharged by pumping fluid from the lower-pressured subterranean rock formation to the higher-pressured subterranean rock formation using a pump in fluid communication with the fluid channel.

Claims (77)

1. A subterranean energy storage system, comprising:

a bore hole including an interior, the bore hole extending between a higher-pressured subterranean rock formation and a lower-pressured subterranean rock formation;

a first opening allowing fluid communication between the interior and the higher-pressured subterranean rock formation;

a second opening allowing fluid communication between the interior and the lower-pressured subterranean rock formation;

a fluid channel extending substantially parallel to the bore hole within the interior;

a packer positioned in the interior, the packer radially surrounding the fluid channel and blocking fluid transfer along the bore hole except through the fluid channel, wherein the packer is positioned at a depth between the first opening and the second opening, dividing the interior into a first cavity in fluid communication with the higher-pressured formation and a second cavity in fluid communication with the lower-pressured formation;

a first controllable access configured to transition between an open configuration in which fluid may pass through the first controllable access between the first cavity and the fluid channel and a closed configuration in which fluid is substantially prevented from passing through the first controllable access;

a turbine within the fluid channel;

wherein the higher-pressured subterranean rock formation and the lower-pressured subterranean rock formation are substantially hydraulically isolated from each other except via the fluid channel, and

wherein the higher-pressured subterranean rock formation has a higher pressure than the lower-pressured subterranean rock formation when corrected to a common depth.

2. The subterranean energy storage system of claim 1 , further comprising a second controllable access configured to transition between an open configuration in which fluid may pass through the second controllable access between the second cavity and the fluid channel and a closed configuration in which fluid is substantially prevented from passing through the second controllable access.

3. The subterranean energy storage system of claim 1 , wherein the turbine is a pump as turbine (PAT).

4. The subterranean energy storage system of claim 1 , wherein the packer is a second packer and wherein the subterranean energy storage system further comprises a first packer, the first packer positioned in the interior, the first packer radially surrounding the fluid channel and blocking fluid transfer along the bore hole except through the fluid channel, wherein the first packer is positioned at a depth shallower than the first opening, shallower than the second opening, and shallower than the second packer.

5. The subterranean energy storage system of claim 1 , wherein the fluid channel includes a top end attached to a wellhead and a bottom end opposite the top end.

6. The subterranean energy storage system of claim 5 , further comprising a one-directional valve attached to the fluid channel deeper than the first controllable access, the one-directional valve configured to allow fluid to flow deeper but not shallower within the fluid channel.

7. The subterranean energy storage system of claim 6 , further comprising a second controllable access configured to transition between an open configuration in which fluid may pass through the second controllable access between the second cavity and the fluid channel and a closed configuration in which fluid is substantially prevented from passing through the second controllable access;

wherein the first controllable access is located within the fluid channel shallower than the one-directional valve;

wherein the turbine is located within the fluid channel shallower than the first controllable access; and

wherein the second controllable access is located within the fluid channel shallower than the turbine.

8. The subterranean energy storage system of claim 7 , further comprising a pump located within the fluid channel between the one-directional valve and the first controllable access, the pump configured to pump fluid in the direction of the one-directional valve.

9. The subterranean energy storage system of claim 7 ,

wherein the second controllable access includes an upper second controllable access and a lower second controllable access;

wherein the first controllable access includes an upper first controllable access and a lower first controllable access;

wherein the turbine is a pump-as turbine (PAT) and includes an upper PAT and a lower PAT;

wherein the lower first controllable access is located within the fluid channel shallower than the one-directional valve;

wherein the lower PAT is located within the fluid channel shallower than the lower first controllable access;

wherein the upper first controllable access is located within the fluid channel shallower than the lower PAT;

wherein the lower second controllable access is located within the fluid channel shallower than the upper first controllable access;

wherein the upper PAT is located within the fluid channel shallower than the lower second controllable access; and

wherein the upper second controllable access is located within the fluid channel shallower than the upper PAT.

10. The subterranean energy storage system of claim 5 ,

wherein the first controllable access includes an upper first controllable access and a lower first controllable access; and

wherein the system further comprises a one-directional valve within the fluid channel deeper than the upper first controllable access and shallower than the lower first controllable access, the one-directional valve configured to allow fluid to flow shallower but not deeper within the fluid channel; and

wherein the lower first controllable access is located within the fluid channel shallower than the turbine.

11. The subterranean energy storage system of claim 10 , further comprising a pump located within the fluid channel between the one-directional valve and the lower first controllable access, the pump configured to pump fluid in the direction of the one-directional valve.

12. The subterranean energy storage system of claim 10 ,

further comprising a second controllable access configured to transition between an open configuration in which fluid may pass through the second controllable access between the second cavity and the fluid channel and a closed configuration in which fluid is substantially prevented from passing through the second controllable access;

wherein the first controllable access further includes a middle first controllable access;

wherein the turbine is a pump-as turbine (PAT) and includes an upper PAT and a lower PAT;

wherein the lower PAT is located within the fluid channel shallower than the bottom end of the fluid channel;

wherein the second controllable access is located within the fluid channel shallower than the lower PAT;

wherein the lower first controllable access is located within the fluid channel shallower than the second controllable access;

wherein the upper PAT is located within the fluid channel shallower than the lower first controllable access;

wherein the middle controllable access is located within the fluid channel shallower than the upper PAT;

wherein the one-directional valve is located within the fluid channel shallower than the middle controllable access;

and wherein the upper first controllable access is located within the fluid channel shallower than the one-directional valve.

13. A method for subterranean energy storage comprising:

enabling fluid to flow substantially under the influence of a pressure differential from a higher-pressured subterranean rock formation, through a fluid channel including a turbine, into a lower-pressured subterranean rock formation;

converting, in the turbine, kinetic energy of the flowing fluid into electrical energy; and

pumping fluid from the lower-pressured subterranean rock formation, through the fluid channel, into the higher-pressured subterranean rock formation;

wherein the higher-pressured subterranean rock formation and the lower-pressured subterranean rock formation are substantially hydraulically isolated from each other except via the fluid channel; and

wherein the higher-pressured subterranean rock formation has a higher pressure than the lower-pressured subterranean rock formation when corrected to a common depth.

14. The method for subterranean energy storage of claim 13 , wherein the turbine is a pump as turbine (PAT), and wherein the pumping step is accomplished using the PAT.

15. The method for subterranean energy storage of claim 13 , wherein fluid transfer between the higher-pressured subterranean rock formation and the lower-pressured subterranean rock formation is substantially blocked, except through the fluid channel.

16. The method for subterranean energy storage of claim 13 ,

wherein the enabling step includes transitioning a first controllable access from a closed configuration in which fluid is substantially prevented from passing through the first controllable access to an open configuration in which fluid may pass through the first controllable access between the higher-pressured subterranean rock formation and the fluid channel; and

wherein the pumping step includes transitioning the first controllable access from the open configuration to the closed configuration.

17. The method for subterranean energy storage of claim 16 ,

wherein the enabling step includes flowing fluid substantially under the influence of the pressure differential from the higher-pressured subterranean rock formation, into the fluid channel through the first controllable access in the open configuration, through the turbine within the fluid channel, exiting the fluid channel through a second controllable access in an open configuration in which fluid may pass through the second controllable access between the fluid channel and the lower-pressured subterranean rock formation, and into the lower-pressured subterranean rock formation; and

wherein the pumping step includes pumping fluid from the lower-pressured subterranean rock formation into the fluid channel through the second controllable access in the open configuration, past the first controllable access in the closed configuration, exiting the fluid channel through a one-directional valve, and into the higher-pressured subterranean rock formation.

18. The method for subterranean energy storage of claim 17 , wherein the turbine is a pump as turbine (PAT), and wherein the pumping step is accomplished using the PAT and using a pump located within the fluid channel between first controllable access and the one-directional valve.

19. The method for subterranean energy storage of claim 17 ,

wherein the second controllable access includes an upper second controllable access and a lower second controllable access;

wherein the first controllable access includes an upper first controllable access and a lower first controllable access;

wherein the turbine is a pump-as turbine (PAT) and includes an upper PAT and a lower PAT;

wherein the enabling step includes flowing fluid substantially under the influence of a pressure differential from the higher-pressured subterranean rock formation, into the fluid channel through one of the upper first controllable access in the open configuration and the lower first controllable access in the open configuration, the other of the upper first controllable access and the lower first controllable access being in the closed configuration, through at least one of the upper PAT and lower PAT within the fluid channel, exiting the fluid channel through the upper second controllable access in the open configuration or the lower second controllable access in the open configuration, and into the lower-pressured subterranean rock formation; and

wherein the pumping step includes pumping fluid from the lower-pressured subterranean rock formation into the fluid channel through at least one of the upper second controllable access in the open configuration and the lower second controllable access in the open configuration, past the upper first controllable access in the closed configuration, past the lower first controllable access in the closed configuration, exiting the fluid channel through the one-directional valve, and into the higher-pressured subterranean rock formation.

20. The method for subterranean energy storage of claim 16 ,

wherein the first controllable access includes an upper first controllable access and a lower first controllable access;

wherein the enabling step includes flowing fluid substantially under the influence of the pressure differential from the higher-pressured subterranean rock formation, into the fluid channel through the lower first controllable access in the open configuration, through the turbine within the fluid channel, exiting the fluid channel through an open bottom end of the fluid channel, and into the lower-pressured subterranean rock formation; and

wherein the pumping step includes pumping fluid from the lower-pressured subterranean rock formation into the fluid channel through the open bottom end, past the lower first controllable access in the closed configuration, through a one-directional valve, exiting the fluid channel through the upper first controllable access in the open configuration, and into the higher-pressured subterranean rock formation.

21. The method for subterranean energy storage of claim 20 , wherein the turbine is a pump as turbine (PAT), and wherein the pumping step is accomplished using the PAT and using a pump located within the fluid channel between lower first controllable access and the one-directional valve.

22. The method for subterranean energy storage of claim 20 ,

wherein the turbine is a pump-as turbine (PAT) and includes an upper PAT and a lower PAT;

wherein the first controllable access further includes a middle first controllable access and a lower first controllable access;

wherein the enabling step includes flowing fluid substantially under the influence of the pressure differential from the higher-pressured subterranean rock formation, into the fluid channel through one of the middle first controllable access in the open configuration and the lower first controllable access in the open configuration, the other of the middle first controllable access and the lower first controllable access being in the closed configuration, through at least one upper PAT and the lower PAT within the fluid channel, exiting the fluid channel through the open bottom end of the fluid channel or a second controllable access in an open configuration in which fluid may pass through the second controllable access between the fluid channel and the lower-pressured subterranean rock formation, and into the lower-pressured subterranean rock formation; and

wherein the pumping step includes pumping fluid from the lower-pressured subterranean rock formation into the fluid channel through at least one of the open bottom end and the second controllable access in the open configuration, past the lower first controllable access in the closed configuration, past the middle controllable first access in the closed configuration, through the one-directional valve, exiting the fluid channel through the upper first controllable access in the open configuration, and into the higher-pressured subterranean rock formation.

Continuity (2)
Provisional Application 63305708 · Feb 2, 2022
Related Publication 20230243330A1 · Aug 3, 2023
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