IP Library Granted Patent US 9,035,617
Granted Patent B2
US 9,035,617 · App. 14/083,266 · Granted May 19, 2015

Control system for a flow cell battery

Inventors: Gopalakrishnan R. Parakulam (Cupertino, CA); Saroj Kumar Sahu (Mountain House, CA); Ali Firouzi (Los Altos, CA); Rick Winter (Orinda, CA); Jagat Banerjee (Campbell, CA); Binod Kumar Agrawal (Gurgaon, IN); PandariNath Siddineni (Bangalore, IN)
Assignee: Imergy Power Systems, Inc.
H02J7/0068H01M8/0432H01M8/0438H01M8/04537H01M8/04858H01M8/04955H01M8/04992H01M8/188H01M8/20H01M8/22H02J3/32H02J3/383H02J3/386H02J3/387H02J2001/004Y02E60/528Y02E10/563Y02E10/566Y02E10/763H02J3/382
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Quick Facts
Patent No.
US 9,035,617
App. No.
14/083,266
Granted
May 19, 2015
Kind
B2
Abstract

A controller for controlling a flow cell battery system is provided. The controller operates the flow cell battery system in a plurality of states including a plating state, a charging state and a discharge state.

Claims (32)

1. A controller for controlling a flow cell battery system, comprising:

one or more processors operating the flow cell battery system in multiple states, the multiple states comprising:

a plating state, wherein in the plating state, at least a portion of electrodes in the flow cell battery system are plated with a plating metal;

a charging state, wherein in the charging state, at least a portion of the electrolytes in the flow cell battery system are brought to a charged chemical state;

a discharge state, wherein power is supplied to a load coupled to the flow cell battery system in the discharge state; and

a hibernation state;

wherein the controller switches the flow cell battery system from the discharge state to the hibernation state when a state of charge of a flow cell battery in the flow cell battery system is less than a predetermined discharged set point and no power is being supplied to the flow cell battery system.

2. The controller of claim 1 , wherein the controller switches the flow cell battery system to the charging state when plating of the electrodes is complete.

3. The controller of claim 1 , wherein the controller switches the flow cell battery system from the charging state to the discharge state when power to the flow cell battery system is disconnected and the load is coupled to the flow cell battery system.

4. The controller of claim 1 , wherein the flow cell battery system further comprises a float state, wherein in the float state power supplied to the electrodes is reduced with respect to power supplied to the electrodes during the charging state, and wherein the controller switches the flow cell battery system from the charging state to the float state when a state of charge of the flow cell battery is greater than a predetermined charged set point and power is supplied to the flow cell battery system.

5. The controller of claim 4 , wherein the controller switches the flow cell battery system from the float state to the discharge state when the supplied power to the flow cell battery system is disconnected and the load is coupled to the flow cell battery system.

6. The controller of claim 1 , wherein the controller switches the flow cell battery system from the hibernation state to the charging state when power is supplied to the flow cell battery system.

7. The controller of claim 1 , wherein the controller switches the flow cell battery system from the discharge state to the charging state when power is supplied to the flow cell battery system during the discharge state and a state of charge of the flow cell battery system is less than a predetermined charged set point.

8. The controller of claim 1 , wherein the flow cell battery system further comprises a shutdown state, and wherein the controller switches the flow cell battery system from any state to the shutdown state when a fault is detected.

9. The controller of claim 8 , wherein the flow cell battery system further comprises an initialization state, wherein the controller switches the flow cell battery system to the initialization state when power is supplied to the flow cell battery system operating in the shutdown state and switches the flow cell battery system to the plating state when the initialization state is complete.

10. The controller of claim 1 , wherein the processors are configured to control pump flow based on levels of electrolyte tanks and a state of charge of the electrolytes.

11. The controller of claim 1 , further comprising one or more processors operating a rebalance cell and wherein the one or more processors operating the flow cell battery system in multiple states are in communication with the one or more processors operating the rebalance cell.

12. A method of operating a flow cell battery system, comprising:

operating the flow cell battery system using a controller capable of transitioning the flow cell battery system into a plurality of operating states, the plurality of operating states comprising:

a plating state, wherein in the plating state, at least a portion of electrodes in the flow cell battery system are plated with a plating metal;

a charging state, wherein in the charging state, at least a portion of the electrolytes in the flow cell battery system are brought to a charged chemical state;

a discharge state, wherein power is supplied to a load coupled to the flow cell battery system in the discharge state; and

a hibernation state;

wherein transitioning the flow cell battery system comprises switching the flow cell battery system from the discharge state to the hibernation state when a state of charge of the flow cell battery system is less than a predetermined discharged set point and no power is being supplied to the flow cell battery system.

13. The method of claim 12 , further comprising switching the flow cell battery system to the charging state when plating of electrodes of a flow cell battery of the flow cell battery system is complete.

14. The method of claim 12 , further comprising switching the flow cell battery system from the charging state to the discharge state when power to the flow cell battery system is disconnected and the load is coupled to the flow cell battery system.

15. The method of claim 12 , wherein the operating states further comprise a float state, wherein in the float state power supplied to the electrodes is reduced with respect to power supplied to the electrodes during the charging state, and wherein the method further comprises switching the flow cell battery system from the charging state to the float state when a state of charge of the flow cell battery is greater than a predetermined charged set point and power is supplied to the flow cell battery system.

16. The method of claim 15 , further comprising switching the flow cell battery system from the float state to the discharge state when the supplied power to the flow cell battery system is disconnected and the load is coupled to the flow cell battery system.

17. The method of claim 12 , further comprising switching the flow cell battery system from the hibernation state to the charging state when power is supplied to the flow cell battery system.

18. The method of claim 12 , further comprising switching the flow cell battery system from the discharge state to the charging state when power is supplied to the flow cell battery system during the discharge state and a state of charge of a flow cell battery of the flow cell battery system is less than a predetermined charged set point.

19. The method of claim 12 , wherein the operating states further comprise a shutdown state, and wherein the method further comprises switching the flow cell battery system from any state to the shutdown state when a fault is detected.

20. The method of claim 19 , wherein the operating states further comprise an initialization state, and wherein the method further comprises switching the flow cell battery system to the initialization state when power is supplied to the flow cell battery system operating in the shutdown state and switching the flow cell battery system to the plating state when the initialization state is complete.

Assignments (1)
CHANGE OF NAME Recorded Oct 3, 2014
From: DEEYA ENERGY, INC.
To: IMERGY POWER SYSTEMS, INC.
Reel/Frame 033890/0469 →
Continuity (4)
Continuation 12790793 · May 28, 2010
Provisional Application 61182660 · May 29, 2009
Provisional Application 61182079 · May 28, 2009
Related Publication 20140139190A1 · May 22, 2014