IP Library › Granted Patent US 10,218,178
Granted Patent B2
US 10,218,178 · App. 15/644,262 · Granted Feb 26, 2019

Dynamic reactive compensation

Inventors: Leon Roy Roose (Kaneohe, HI); Staci T. C. L. Sadoyama (Honolulu, HI); Hsun Jou (Honolulu, HI); Marc Minoru Matsuura (Honolulu, HI)
Assignee: University of Hawai'i
H02J3/1828G05B19/042G05B2219/2639
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Quick Facts
Patent No.
US 10,218,178
App. No.
15/644,262
Granted
Feb 26, 2019
Kind
B2
Abstract

In one embodiment, a computing device determines real and reactive power flows at a transformer at a given time, and computes, based on the real power and reactive power flow at the transformer, an amount of reactive power adjustment to produce a desired voltage differential across the transformer. The computing device may then adjust the reactive power flow from a secondary side of the transformer at substantially the given time based on the computed amount.

Claims (72)

1. A method, comprising:

determining, by a computing device, a real power flow at a transformer at a given time;

determining, by the computing device, a reactive power flow at the transformer at the given time;

computing, by the computing device based on the real power and reactive power flow at the transformer, an amount of reactive power adjustment to produce a desired voltage differential across the transformer; and

adjusting, by the computing device, the reactive power flow from a secondary side of the transformer at substantially the given time based on the computed amount;

wherein the transformer is one of a plurality of transformers along a feeder line, and wherein the desired voltage differential across each particular transformer of the plurality of transformers is specifically based on accounting for feeder line impedance between the plurality of transformers along the feeder line, in order to produce substantially the same voltage output on corresponding secondary sides of the plurality of transformers.

2. The method as in claim 1 , wherein adjusting comprises:

producing reactive power.

3. The method as in claim 1 , wherein adjusting comprises:

absorbing reactive power.

4. The method as in claim 1 , wherein the desired voltage differential corresponds to approximately zero.

5. The method as in claim 1 , wherein computing the amount of reactive power adjustment to produce a desired voltage differential across the transformer is further based on adding a fixed reactive power adjustment to bias the voltage differential across the transformer.

6. The method as in claim 1 , wherein the computed amount of reactive power adjustment to produce the desired voltage differential across the transformer is substantially equal to:

a negative of: the real power flow at the transformer times a multiplier, plus the reactive power flow at the transformer.

7. The method as in claim 6 , wherein the multiplier is computed as a ratio of a resistance of the transformer to a reactance of the transformer.

8. The method as in claim 7 , further comprising:

determining at least one or both of the resistance of the transformer and the reactance of the transformer based on actual measurements performed by the computing device on the transformer.

9. The method as in claim 6 , wherein the multiplier is based on an assumed ratio of a resistance of the transformer to a reactance of the transformer.

10. The method as in claim 6 , further comprising:

adjusting the multiplier to account for additional service wires from the transformer.

11. The method as in claim 1 , further comprising:

sensing, computing, and adjusting over time to reduce fluctuations in voltage at the secondary side of the transformer over time.

12. The method as in claim 11 , further comprising:

maintaining the adjustment over time in response to the fluctuations in voltage remaining within a specified band of acceptable voltage change; and

sensing, computing, and adjusting in response to the fluctuations in voltage falling outside the specified band of acceptable voltage change at any particular time.

13. The method as in claim 1 , wherein adjusting comprises:

controlling circuitry local to the computing device.

14. The method as in claim 1 , wherein adjusting comprises:

directing circuitry on a remote device.

15. The method as in claim 1 , wherein adjusting comprises:

controlling circuitry local to the computing device; and

directing circuitry on a remote device to adjust reactive power;

wherein the reactive power adjustment by both the circuitry local to the computing device and the circuitry on the remote device combine to produce the desired voltage differential across the transformer.

16. The method as in claim 15 , wherein controlling circuitry local to the computing device occurs at substantially the given time, and wherein directing circuitry on the remote device to adjust reactive power occurs at a slower response rate than the circuitry local to the computing device.

17. The method as in claim 1 , wherein adjusting comprises:

controlling inverter circuitry.

18. The method as in claim 1 , wherein sensing the real power flow through the transformer comprises:

sensing voltage and current at the secondary side of the transformer; and

computing the real power as a real component of the product of the voltage and a complex conjugate of the current.

19. The method as in claim 1 , wherein sensing the reactive power flow through the transformer comprises:

sensing voltage and current at the secondary side of the transformer; and

computing the reactive power as an imaginary component of the product of the voltage and a complex conjugate of the current.

20. The method as in claim 1 , wherein the transformer is a power grid distribution service transformer.

21. An apparatus, comprising:

a processor configured to execute one or more processes; and

a memory configured to store a process, the process, when executed by the processor, operable to:

determine a real power flow at a transformer at a given time;

determine a reactive power flow at the transformer at the given time;

compute, based on the real power and reactive power flow at the transformer, an amount of reactive power adjustment to produce a desired voltage differential across the transformer; and

adjust the reactive power flow from a secondary side of the transformer at substantially the given time based on the computed amount;

wherein the transformer is one of a plurality of transformers along a feeder line, and wherein the desired voltage differential across each particular transformer of the plurality of transformers is specifically based on accounting for feeder line impedance between the plurality of transformers along the feeder line, in order to produce substantially the same voltage output on corresponding secondary sides of the plurality of transformers.

22. The apparatus as in claim 21 , wherein the process, when executed to adjust, is further operable to at least one of either:

produce reactive power; and

absorb reactive power.

23. The apparatus as in claim 21 , wherein the computed amount of reactive power adjustment to produce the desired voltage differential across the transformer is substantially equal to:

a negative of: the real power flow at the transformer times a multiplier, plus the reactive power flow at the transformer.

24. The apparatus as in claim 23 , wherein the multiplier is computed as a ratio of a resistance of the transformer to a reactance of the transformer.

25. The apparatus as in claim 21 , further comprising:

circuitry configured to adjust the reactive power flow from the secondary side of the transformer; and

wherein the process, when executed to adjust, is further operable to control the circuitry.

26. The apparatus as in claim 21 , wherein the process, when executed to adjust, is further operable to:

direct circuitry on a remote device.

27. The apparatus as in claim 21 , wherein the process, when executed to sense the real and reactive power flows through the transformer, is further operable to:

sense voltage and current at the secondary side of the transformer;

compute the real power as a real component of the product of the voltage and a complex conjugate of the current; and

compute the reactive power as an imaginary component of the product of the voltage and the complex conjugate of the current.

28. A tangible, non-transitory, computer-readable medium storing program instructions that cause a computer to execute a process, the process, when executed by a processor, operable to:

determine a real power flow at a transformer at a given time;

determine a reactive power flow at the transformer at the given time;

compute, based on the real power and reactive power flow at the transformer, an amount of reactive power adjustment to produce a desired voltage differential across the transformer; and

adjust the reactive power flow from a secondary side of the transformer at substantially the given time based on the computed amount;

wherein the transformer is one of a plurality of transformers along a feeder line, and wherein the desired voltage differential across each particular transformer of the plurality of transformers is specifically based on accounting for feeder line impedance between the plurality of transformers along the feeder line, in order to produce substantially the same voltage output on corresponding secondary sides of the plurality of transformers.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2018
From: HAWAII, UNIVERSITY OF
To: NAVY, SECRETARY OF THE UNITED STATES OF AMERICA
Reel/Frame 045075/0970 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 21, 2017
From: ROOSE, LEON ROY; SADOYAMA, STACI T.C.L.; JOU, HSUN; MATSUURA, MARC MINORU
To: UNIVERSITY OF HAWAI'I
Reel/Frame 043060/0836 →
Continuity (3)
Provisional Application 62359393 · Jul 7, 2016
Provisional Application 62445203 · Jan 11, 2017
Related Publication 20180013287A1 · Jan 11, 2018