IP Library Granted Patent US 9,853,306
Granted Patent B2
US 9,853,306 · App. 13/605,771 · Granted Dec 26, 2017

System and method for optimizing efficiency and power output from a vanadium redox battery energy storage system

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Quick Facts
Patent No.
US 9,853,306
App. No.
13/605,771
Granted
Dec 26, 2017
Kind
B2
Abstract

An energy storage system includes a vanadium redox battery that interfaces with a control system to optimize performance and efficiency. The control system calculates optimal pump speeds, electrolyte temperature ranges, and charge and discharge rates. The control system instructs the vanadium redox battery to operate in accordance with the prescribed parameters. The control system further calculates optimal temperature ranges and charge and discharge rates for the vanadium redox battery.

Claims (54)

1. A computer implemented method for controlling a vanadium redox battery energy storage system configured to couple to an electrical grid and operate responsive to the conditions of the electrical grid, comprising:

receiving signals indicative of an open-circuit voltage of a vanadium redox battery cell of the vanadium redox battery energy storage system;

receiving anolyte and catholyte solution temperature signals from the vanadium redox battery energy storage system;

calculating a state-of-charge for the vanadium redox battery cell based on the open-circuit voltage and anolyte and catholyte solution temperature signals;

calculating charge and discharge rates of the vanadium redox battery energy storage system;

calculating anolyte and catholyte pump speeds based on the state-of-charge, the charge and discharge rates, and grid conditions; and

generating anolyte and catholyte pump speed signals to transmit to the vanadium redox battery energy storage system to control anolyte and catholyte pump speeds.

2. The method of claim 1 , further comprising:

receiving anolyte and catholyte pressure signals from the vanadium redox battery energy storage system, and

wherein calculating anolyte and catholyte pump speeds is further determined by the anolyte and catholyte pressure signals.

3. The method of claim 1 , further comprising:

calculating an anolyte temperature range and a catholyte temperature range based on the state-of-charge and the anolyte and catholyte pump speeds; and

generating anolyte and catholyte temperature ranges to transmit to the vanadium redox battery energy storage system.

4. The method of claim 1 , further comprising:

receiving an ambient temperature signal, and

wherein calculating the state-of-charge is further determined by the ambient temperature signal.

5. The method of claim 1 , further comprising:

receiving a hydrogen emission signal indicative of a quantity of hydrogen emissions generated by the vanadium redox battery energy storage system, and

wherein calculating anolyte and catholyte pump speeds is further determined by the quantity of hydrogen emissions.

6. The method of claim 1 , further comprising calculating optimal charge and discharge rates derived from the charge and discharge rates.

7. The method of claim 1 , further comprising:

calculating a system efficiency for the vanadium redox battery energy storage system, and

wherein calculating anolyte and catholyte pump speeds is further determined by the system efficiency.

8. The method of claim 1 , further comprising:

receiving anolyte and catholyte reservoir level signals; and

determining if equalization of the anolyte reservoir and catholyte reservoir is required.

9. The method of claim 1 , further comprising calculating a power factor derived from input voltage and input current to the vanadium redox battery energy storage system and output voltage and output current from the vanadium redox battery energy storage system.

10. A non-transitory computer readable storage medium having stored thereon computer executable instructions for performing a method for controlling a vanadium redox battery energy storage system configured to couple to an electrical grid and operate responsive to the conditions of the electrical grid, the method comprising:

receiving signals indicative of an open-circuit voltage of a vanadium redox battery cell of the vanadium redox battery energy storage system;

receiving anolyte and catholyte solution temperature signals from the vanadium redox battery energy storage system;

calculating a state-of-charge for the vanadium redox battery cell based on the open-circuit voltage and anolyte and catholyte solution temperature signals;

calculating charge and discharge rates of the vanadium redox battery energy storage system;

calculating anolyte and catholyte pump speeds based on the state-of-charge, the charge and discharge rates, and grid conditions; and

generating anolyte and catholyte pump speed signals to transmit to the vanadium redox battery energy storage system to control anolyte and catholyte pump speeds.

11. The computer readable medium of claim 10 , wherein the method further comprises:

receiving anolyte and catholyte pressure signals from the vanadium redox battery energy storage system, and

wherein calculating anolyte and catholyte pump speeds is further determined by the anolyte and catholyte pressure signals.

12. The computer readable medium of claim 10 , wherein the method further comprises:

calculating an anolyte temperature range and a catholyte temperature range based on the state-of-charge and the anolyte and catholyte pump speeds; and

transmitting the anolyte and catholyte temperature ranges to the vanadium redox battery energy storage system

13. The computer readable medium of claim 10 , wherein the method further comprises:

receiving an ambient temperature signal; and

wherein calculating the state-of-charge is further determined by the ambient temperature signal.

14. The computer readable medium of claim 10 , wherein the method further comprises:

receiving a hydrogen emission signal indicative of a quantity of hydrogen emissions generated by the vanadium redox battery energy storage system; and

wherein calculating anolyte and catholyte pump speeds is further determined by the quantity of hydrogen emissions.

15. The computer readable medium of claim 10 , wherein the method further comprises calculating optimal charge and discharge rates derived from the charge and discharge rates.

16. The computer readable medium of claim 10 , wherein the method further comprises:

calculating a system efficiency for the vanadium redox battery energy storage system; and

wherein calculating anolyte and catholyte pump speeds is further determined by the system efficiency.

17. The computer readable medium of claim 10 , wherein the method further comprises:

receiving anolyte and catholyte reservoir level signals; and

determining if equalization of the anolyte reservoir and catholyte reservoir is required.

18. The computer readable medium of claim 10 , wherein the method further comprises calculating a power factor derived from an input voltage and an input current to the vanadium redox battery energy storage system and an output voltage and an output current from the vanadium redox battery energy storage system.

Assignments (5)
CORRECTIVE ASSIGNMENT TO CORRECT THE NATURE OF CONVEYANCE PREVIOUSLY RECORDED AT REEL: 048175 FRAME: 0806. ASSIGNOR(S) HEREBY CONFIRMS THE CHANGE OF NAME. Recorded Jan 31, 2019
From: JD HOLING INC.
To: VRB ENERY INC.
Reel/Frame 048203/0459 →
CORRECTIVE ASSIGNMENT TO CORRECT APPLICATION NUMBERS 12/810,950 AND 13/934,046 PREVIOUSLY RECORD ON REEL 048175 FRAME 0806 HEREBY CONFIRMS CHANGE OF NAME Recorded Jan 7, 2019
From: JD HOLDING INC.
To: VRB ENERGY INC.
Reel/Frame 048175/0806 →
CHANGE OF NAME Recorded Aug 22, 2018
From: JD HOLDING INC.
To: VRB ENERGY INC.
Reel/Frame 046913/0407 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 6, 2012
From: HENNESSY, TIMOTHY DAVID JOHN
To: VRB POWER SYSTEMS INC.
Reel/Frame 028911/0066 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 6, 2012
From: VRB POWER SYSTEMS INC.
To: JD HOLDING INC.
Reel/Frame 028911/0074 →