IP Library Granted Patent US 8,816,527
Granted Patent B1
US 8,816,527 · App. 14/227,995 · Granted Aug 26, 2014

Phase balancing of power transmission system

Inventors: Stewart Ramsay (Walnut Creek, CA); Julie A. Couillard (San Francisco, CA); Andrija Sadikovic (San Mateo, CA)
Assignee: Smart Wire Grid, Inc.
H02J3/26
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Quick Facts
Patent No.
US 8,816,527
App. No.
14/227,995
Granted
Aug 26, 2014
Kind
B1
Abstract

Phase balancing techniques for power transmission systems are disclosed. In one embodiment, a phase balancing protocol ( 240 ) includes executing a first phase balancing protocol ( 350 ) in relation to a first power transmission section ( 400 a ). A second phase balancing protocol ( 370 ) may be executed if the first phase balancing protocol ( 350 ) is unable to provide a phase balanced condition. The first phase balancing protocol ( 350 ) may utilize a first ordering sequence ( 364 ) to rank the current flow on the power lines ( 16 ) of the first power transmission section ( 400 a ), while the second phase balancing protocol ( 370 ) may utilize a second ordering sequence ( 384 ) to rank the current flow on the power lines ( 16 ) of the first power transmission section ( 400 a ). The order sequences ( 364, 384 ) are opposite of each other—one ranks the current flows from high-to-low, and the other ranks the current flow from low-to-high.

Claims (48)

1. A method of phase balancing a power transmission system, comprising:

measuring a current flow on each power line of a plurality of power lines of a first power transmission section of a power transmission system, wherein each said power line is of a different phase, wherein each said power line has at least one first device mounted thereon, wherein each said first device is disposable in each of first and second modes, and wherein changing a given said first device between said first and second modes changes said current flow on its corresponding said power line;

executing a first phase balancing protocol, comprising:

generating a first ranking of said plurality of power lines using a first ordering sequence of said current flows on said power lines, wherein the first said power line in said first ranking is an initial comparative power line for said first ranking;

executing a first comparing step comprising comparing said current flow of said comparative power line in said first ranking to said current flow of the next said power line in said first ranking;

executing a first switching step comprising switching at least one said first device, on each said power line in said first ranking that precedes said next said power line from said first comparing step, into a first modal configuration if a first phase imbalance condition exists between said power lines from said first comparing step;

resetting said next said power line in said first ranking as said comparative power line, and then repeating said first comparing and first switching steps; and

executing a second phase balancing protocol upon an occurrence of a first condition, comprising:

generating a second ranking of said plurality of power lines using a second ordering sequence of said current flows on said power lines, wherein the first said power line in said second ranking is an initial comparative power line for said second ranking, and wherein said second ordering sequence is opposite of said first ordering sequence;

executing a second comparing step comprising comparing said current flow of said comparative power line in said second ranking to said current flow of the next said power line in said second ranking;

executing a second switching step comprising switching at least one said first device, on each said power line in said second ranking that precedes said next said power line from said second comparing step, into a second modal configuration if a second phase imbalance condition exists between said power lines from said second comparing step, wherein said second modal configuration comprises said first device being in the other of said first and second modes; and

resetting said next said power line in said second ranking as said comparative power line, and then repeating said second comparing and second switching steps.

2. The method of claim 1 , wherein said first phase imbalance condition comprises a difference between said current flow of said comparative power line in said first ranking and said current flow of said next said power line in said first ranking satisfying a first predetermined threshold.

3. The method of claim 1 , wherein said first phase imbalance condition comprises said current flow of said comparative power line in said first ranking and said current flow of said next said power line in said first ranking failing to be within a first predetermined amperage of each other.

4. The method of claim 1 , wherein said second phase imbalance condition comprises a difference between said current flow of said comparative power line in said second ranking and said current flow of said next said power line in said second ranking satisfying a second predetermined threshold.

5. The method of claim 1 , wherein said second phase imbalance condition comprises said current flow of said comparative power line in said second ranking and said current flow of said next said power line in said second ranking failing to be within a second predetermined amperage of each other.

6. The method of claim 1 , wherein said first ordering sequence is a sequence from a lowest said current flow to a highest said current flow for said plurality of power lines.

7. The method of claim 6 , wherein said first switching step for each said first device comprises increasing said current flow on its corresponding said power line.

8. The method of claim 6 , wherein said first modal configuration comprises switching said at least one first device from said second mode to said first mode where said first mode is a bypass mode and where said second mode is an injection mode where said first device injects inductance into the corresponding said power line to decrease said current flow on said power line, and wherein said second modal configuration comprises switching said at least one first device from said first mode to said second mode.

9. The method of claim 6 , wherein said first modal configuration comprises switching said at least one first device from said first mode to said second mode where said first mode is a bypass mode and where said second mode is an injection mode where said first device injects capacitance into the corresponding said power line to increase said current flow on said power line, and wherein said second modal configuration comprises switching said at least one first device from said second mode to said first mode.

10. The method of claim 1 , wherein said second ordering sequence is a sequence from a highest said current flow to a lowest said current flow for said plurality of power lines.

11. The method of claim 10 , wherein said second switching step for each said first device comprises decreasing said current flow on its corresponding said power line.

12. The method of claim 1 , wherein said first ordering sequence is a sequence from a highest said current flow to a lowest said current flow for said plurality of power lines.

13. The method of claim 12 , wherein said first switching step for each said first device comprises decreasing said current flow on its corresponding said power line.

14. The method of claim 12 , wherein said first modal configuration comprises switching said at least one first device from said first mode to said second mode where said first mode is a bypass mode and where said second mode is an injection mode where said first device injects inductance into the corresponding said power line to decrease said current flow on said power line, and wherein said second modal configuration comprises switching said at least one first device from said second mode to said first mode.

15. The method of claim 12 , wherein said first modal configuration comprises switching said at least one first device from said second mode to said first mode where said first mode is a bypass mode and where said second mode is an injection mode where said first device injects capacitance into the corresponding said power line to increase said current flow on said power line, and wherein said second modal configuration comprises switching said at least one first device from said first mode to said second mode.

16. The method of claim 12 , wherein said second ordering sequence is a sequence from a lowest said current flow to a highest said current flow for said plurality of power lines.

17. The method of claim 16 , wherein said second switching step for each said first device comprises increasing said current flow on its corresponding said power line.

18. The method of claim 1 , wherein said first phase balancing protocol further comprises incrementing through said first ranking one said power line at a time.

19. The method of claim 1 , wherein said second phase balancing protocol further comprises incrementing through said second ranking one said power line at a time.

20. The method of claim 1 , wherein said first condition comprises an adjacent pair of said plurality of power lines in said first ranking not achieving a phase balanced condition after executing said first switching step.

21. The method of claim 1 , wherein said first condition comprises said first phase balancing protocol being unable to achieve a phase balanced condition within a predetermined amount of time.

22. The method of claim 1 , wherein said resetting step for said first ranking is executable until said next said power line in said first ranking is the last said power line in said first ranking, and wherein said resetting step for said second ranking is executable until said next said power line in said second ranking is the last said power line in said second ranking.

23. A method of phase balancing a power transmission system, comprising:

measuring a current flow on each power line of a plurality of power lines of a first power transmission section of a power transmission system, wherein each said power line is of a different phase, wherein each said power line has at least one first device mounted thereon, wherein each said first device is disposable in each of first and second modes, and wherein changing a given said first device between said first and second modes changes said current flow on its corresponding said power line;

executing a first phase balancing protocol, comprising:

generating a first ranking of said plurality of power lines using a first ordering sequence of said current flows on said power lines; and

executing a first switching step comprising switching at least one said first device, on at least one of said power lines, into a first modal configuration in an attempt to achieve a phase balanced condition between each adjacent pair of said power lines in said first ranking; and

executing a second phase balancing protocol upon an occurrence of a first condition, comprising;

generating a second ranking of said plurality of power lines using a second ordering sequence of said current flows on said power lines, wherein said second ordering sequence is opposite of said first ordering sequence; and

executing a second switching step comprising switching at least one said first device, on at least one of said power lines, into a second modal configuration in an attempt to achieve said phase balanced condition between each adjacent pair of said power lines in said second ranking, wherein said first modal configuration comprises said first device being in one of said first and second modes, and wherein said second modal configuration comprises said first device being in the other of said first and second modes.

24. The method of claim 23 , wherein said first ordering sequence is a sequence from a lowest said current flow to a highest said current flow for said plurality of power lines, wherein said first switching step for each said first device comprises increasing said current flow on its corresponding said power line, wherein said second ordering sequence is a sequence from a highest said current flow to a lowest said current flow for said plurality of power lines, and wherein said second switching step for each said first device comprises decreasing said current flow on its corresponding said power line.

25. The method of claim 23 , wherein said first ordering sequence is a sequence from a highest said current flow to a lowest said current flow for said plurality of power lines, wherein said first switching step for each said first device comprises decreasing said current flow on its corresponding said power line, wherein said second ordering sequence is a sequence from a lowest said current flow to a highest said current flow for said plurality of said power lines, and wherein said second switching step for each said first device comprises increasing said current flow on its corresponding said power line.

26. The method of claim 23 , wherein said first phase balancing protocol further comprises incrementing through said first ranking one said power line at a time, wherein for each said incrementing step for said first ranking, said first phase balancing protocol further comprises comparing said current flow of said one said power line in said first ranking with said current flow of the next said power line in said first ranking, and wherein said first switching step is executable in relation to each said incrementing step for said first ranking.

27. The method of claim 26 , wherein said second phase balancing protocol further comprises incrementing through said second ranking one said power line at a time, wherein for each said incrementing step for said second ranking, said second phase balancing protocol further comprises comparing said current flow of said one said power line in said second ranking with said current flow of the next said power line in said second ranking, and wherein said second switching step is executable in relation to each said incrementing step for said second ranking.

28. The method of claim 23 , wherein said second phase balancing protocol further comprises incrementing through said second ranking one said power line at a time, wherein for each said incrementing step for said second ranking, said second phase balancing protocol further comprises comparing said current flow of said one said power line in said second ranking with said current flow of the next said power line in said second ranking, and wherein said second switching step is executable in relation to each said incrementing step for said second ranking.

29. The method of claim 23 , wherein said first condition comprises an adjacent pair of said power lines in said first ranking not achieving said phase balanced condition after executing said first switching step.

30. The method of claim 23 , wherein said first condition comprises said first phase balancing protocol being unable to achieve said phase balanced condition within a predetermined amount of time.

Assignments (7)
INTELLECTUAL PROPERTY SECURITYAGREEMENT Recorded Jan 10, 2022
From: SMART WIRES INC.
To: INNOVATUS LIFE SCIENCES LENDING FUND I, LP
Reel/Frame 058653/0190 →
RELEASE AND TERMINATION OF SECURITY INTEREST IN PATENT COLLATERAL Recorded May 28, 2021
From: BLUE TORCH FINANCE LLC
To: SMART WIRES INC.
Reel/Frame 056423/0448 →
RELEASE OF SECURITY INTEREST Recorded Jun 23, 2020
From: SMART WIRES CREDIT FACILITY, LLC
To: SMART WIRES INC.
Reel/Frame 053017/0985 →
SECURITY INTEREST Recorded Jun 22, 2020
From: SMART WIRES INC.
To: BLUE TORCH FINANCE LLC, AS COLLATERAL AGENT
Reel/Frame 053000/0025 →
SECURITY AGREEMENT Recorded Feb 20, 2019
From: SMART WIRES INC.
To: SMART WIRES CREDIT FACILITY, LLC
Reel/Frame 049951/0548 →
CHANGE OF NAME Recorded Apr 3, 2015
From: SMART WIRE GRID, INC.
To: SMART WIRES INC.
Reel/Frame 035383/0311 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2014
From: SADIKOVIC, ANDRIJA; RAMSAY, STEWART; COUILLARD, JULIE A.
To: SMART WIRE GRID, INC.
Reel/Frame 033005/0029 →
Continuity (2)
Continuation 14206274 · Mar 12, 2014
Provisional Application 61805737 · Mar 27, 2013