IP Library › Granted Patent US 12,188,442
Granted Patent B2
US 12,188,442 · App. 18/061,658 · Granted Jan 7, 2025

Systems and methods of power generation with aquifer storage and recovery system

Inventors: Kent R. Madison (Echo, OR); Matthew F. Johnson (Hayden, ID)
Assignee: 3R Valve, LLC
F03B13/06
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Quick Facts
Patent No.
US 12,188,442
App. No.
18/061,658
Granted
Jan 7, 2025
Kind
B2
Abstract

An aquifer storage and recovery system can include a pump, an electric motor coupled to the pump, a drive unit configured to control operation of the electric motor, and a controller. The controller can be configured to flow water into a well bore from a source reservoir through the pump such that the pump rotates in a reverse direction and drives the electric motor coupled to the pump in the reverse direction to operate as a generator, determine a power output of the electric motor, determine a difference between the power output of the electric motor and a power output set point, and operate the drive unit to control a rotational speed of the electric motor based at least in part on the difference between the power output of the electric motor and the power output set point.

Claims (40)

1. A down well flow control valve assembly, comprising:

a down well flow control valve couplable to a well column pipe, the down well flow control valve comprising a plurality of outflow apertures;

the down well flow control valve being positioned at least partially within a sleeve and coupled to the sleeve; and

a one-way valve coupled to the down well flow control valve within the sleeve;

wherein the sleeve and the one-way valve are arranged such that downward water flow through the well column pipe flows out of the down well flow control valve through the outflow apertures, through the sleeve, and bypasses the one-way valve, and upward water flow flows into the sleeve, through the one-way valve into the down well flow control valve, and into the well column pipe.

2. The down well flow control valve assembly of claim 1 , further comprising a pump in fluid communication with the sleeve.

3. The down well flow control valve assembly of claim 1 , wherein the down well flow control valve and the sleeve are coupled together by a coupling.

4. The down well flow control valve assembly of claim 3 , wherein the coupling comprises:

a first flange affixed to the down well flow control valve; and

a second flange affixed to the sleeve;

wherein the first flange is secured to the second flange.

5. The down well flow control valve assembly of claim 4 , wherein the first flange is positioned on top of the second flange such that the second flange supports the down well flow control valve within the sleeve.

6. The down well flow control valve assembly of claim 3 , wherein the plurality of outflow apertures is located below the coupling.

7. The down well flow control valve assembly of claim 6 , wherein the plurality of outflow apertures is a first plurality of outflow apertures, and the down well flow control valve further comprises a second plurality of outflow apertures above the coupling outside the sleeve.

8. The down well flow control valve assembly of claim 4 , further comprising a sealing member disposed around a radially outward surface of the first flange.

9. The down well flow control valve assembly of claim 1 , wherein the outflow apertures of the down well flow control valve are openable and closeable.

10. The down well flow control valve assembly of claim 9 , further comprising a drive mechanism operable to open and close the outflow apertures of the down well flow control valve.

11. An aquifer storage and recovery system comprising the down well flow control valve assembly of claim 1 .

12. A down well flow control valve assembly, comprising:

a down well flow control valve couplable to a well column pipe, the down well flow control valve comprising an upper end, a lower end, and a casing, wherein the casing defines a plurality of openings;

a sleeve comprising an inlet portion and an outlet portion, the upper end of the down well flow control valve being coupled to the inlet portion of the sleeve; and

a one-way valve, the one-way valve being coupled to the lower end of the down well flow control valve and disposed within the sleeve;

wherein the sleeve and the down well flow control valve are arranged such that downward water flow through the well column pipe flows through the down well flow control valve, through the plurality of openings in the casing, through the sleeve, and bypasses the one-way valve, and upward water flow flows into the sleeve, through the one-way valve into the well flow control valve, and into the well column pipe.

13. The down well flow control valve assembly of claim 12 , further comprising a pump disposed below the down well flow control valve and in fluid communication with the sleeve.

14. The down well flow control valve assembly of claim 12 , further comprising:

a first flange affixed to the upper end of the down well flow control valve; and

a second flange affixed to the inlet portion of the sleeve;

wherein the first flange is coupled to the second flange.

15. The down well flow control valve assembly of claim 14 , further comprising a sealing member disposed around the first flange.

16. The down well flow control valve assembly of claim 12 , wherein all of the plurality of openings defined by the valve casing are positioned within the sleeve.

17. The down well flow control valve assembly of claim 12 , wherein at least some of the plurality of openings defined by the valve casing are positioned within the sleeve and at least some of the plurality of openings in the valve casing are positioned outside of the sleeve.

18. An aquifer storage and recovery system, comprising:

a well column pipe disposed in a well bore in fluid communication with a subterranean aquifer formation;

the down well flow control valve of claim 1 coupled to the well column pipe; and

a controller;

wherein the sleeve and the down well flow control valve are arranged such that downward water flow through the well column pipe flows out of the down well flow control valve through the outflow apertures, through the sleeve into the aquifer and bypasses the one-way valve, and upward water flow out of the aquifer flows into the sleeve, through the one-way valve into the down well flow control valve, and into the well column pipe;

wherein the controller is configured to control a flow rate into the aquifer through the well by moving the down well flow control valve between an open position and a closed position.

19. The aquifer storage and recovery system of claim 18 , further comprising a pump and an electric motor coupled to the pump, wherein the controller is configured to operate the electric motor as a generator when water flows through the well column pipe into the aquifer formation.

20. The aquifer storage and recovery system of claim 19 , wherein

the controller is configured to open the plurality of outflow apertures during power generation and close the plurality of outflow apertures during water withdrawal.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 9, 2022
From: MADISON, KENT R.; JOHNSON, MATTHEW F.
To: 3R VALVE, LLC
Reel/Frame 062040/0302 →
Continuity (3)
Continuation 17124243 · Dec 16, 2020
Provisional Application 62971874 · Feb 7, 2020
Related Publication 20230101657A1 · Mar 30, 2023
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