IP Library Granted Patent US 12,429,513
Granted Patent B2
US 12,429,513 · App. 16/308,488 · Granted Sep 30, 2025

Method and system for dynamic fault detection in an electric grid

Inventor: Eyal Miron (Hod-Hasharon, IL)
Assignee: ELECTRICAL GRID MONITORING LTD.
G01R31/086G01R15/142G01R19/2513
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Quick Facts
Patent No.
US 12,429,513
App. No.
16/308,488
Granted
Sep 30, 2025
Kind
B2
Abstract

A system for detecting a fault in an electric grid, including a plurality of grid measuring devices distributed in the electric grid, being operative to measure current and/or voltage with their respective time of occurrence, enabling a user to define at least one fault type, and at least one rule for detecting the fault type, the rule associating the fault type with at least one of the measurements, executing the measurements, and analyzing the measurements according to the rule to detect a fault.

Claims (55)

1. A computer-implemented method for detecting a fault in an electric grid, the method comprising the steps of:

distributing in said electric grid a plurality of grid measuring devices comprising at least one of current measurement sensor and voltage measurement sensor, said grid measuring devices being operative to measure at least one of current measurement and voltage measurement to form a plurality of measurements with their respective time of occurrence;

obtaining any of said measurements measured by a first measuring device of said grid measuring devices;

requesting, by at least one of: said first measuring device, and a network server communicatively coupled to said plurality of grid measuring devices, a second grid measuring device to execute at least one of:

execute at least one measurement,

store said at least one requested measurement,

analyze said at least one requested measurement to form requested analysis result, and

communicate at least one of: said at least one requested measurement, and said requested analysis result,

wherein said request results from analysis of at least one measurement executed by said first grid measuring device, wherein said analysis being performed by at least one of: one of said measuring devices, and said network server,

wherein said request comprises time of measurement and said time of measurement is associated with time of at least one measurement executed by said first grid measuring device,

wherein said fault is identified from a plurality of faults, wherein each fault of the plurality of faults is associated with at least one rule for detecting said at least one fault, said rule associating said fault with the measurement by the first measuring device and the requested measurement; and

automatically alerting a user about a particular event associated with the identified fault.

2. The method according to claim 1 wherein said requested measurement is associated with a period of time around said time of at least one measurement executed by said first grid measuring device.

3. The method according to claim 2 wherein said period of time is not larger than time of travel of a transient between said first measuring device detecting said transient and said second measuring device, according to speed of electric signal in a cable of said grid.

4. The method according to claim 1 wherein said communicating at least one of said measurement comprises a plurality of low-resolution measurements, and

wherein said request comprises request for a plurality of high-resolution measurements.

5. The method according to claim 4 wherein said resolution comprises at least one of time-resolution and repetition rate of said plurality of measurements.

6. A computer-implemented method for detecting a fault in an electric grid, the method comprising the steps of:

distributing in said electric grid a plurality of grid measuring devices comprising at least one of current measurement sensor and voltage measurement sensor, said grid measuring devices being operative to measure at least one of current measurement and voltage measurement to form a plurality of measurements with their respective time of occurrence;

executing any of said measurements from at least a first measuring device of said grid measuring devices, and a second measuring device placed downstream of said first measuring device;

detecting a plurality of transients detected by a first measuring device and a corresponding time of measurement of said transients, the transient originating by the electric grid at least one of upstream and downstream of the first measuring device;

reporting said transients, by said first measuring device to at least one of: at least one of said plurality of grid measuring devices, and a network server communicatively coupled to said plurality of grid measuring devices, upon at least one of:

said second measuring device not having detected a transient within a predetermined period around said time of measurement of said transients detected by said first measuring device, and

said second measuring device detected repeated opposite transients within a predetermined period around said time of measurement of said transients detected by said first measuring device; and

automatically alerting a user about a particular event associated with the identified fault,

wherein said fault is identified from a plurality of faults, wherein each fault of the plurality of faults is associated with at least one rule for detecting said at least one fault, said rule associating said fault with the measurement by the first measuring device and the measurement by the second measuring device.

7. The method according to claim 6 wherein said predetermined period is not larger than time of travel of said transient between said first measuring device and said second measuring device according to speed of electric signal in a cable of said grid.

8. A computer program product embodied on a non-transitory computer readable medium, including instructions that, when executed by at least one processor, cause the processor to perform operations comprising:

obtaining any of said measurements measured by a first measuring device of said grid measuring devices;

requesting a second grid measuring device to execute at least one of:

execute at least one measurement,

store said at least one requested measurement,

analyze said at least one requested measurement to form requested analysis result, and

communicate at least one of: said at least one requested measurement, and said requested analysis result,

wherein said request results from analysis of at least one measurement executed by said first grid measuring device, and

wherein said request comprises time of measurement and said time of measurement is associated with time of at least one measurement executed by said first grid measuring device.

9. The computer program product according to claim 8 , wherein said requested measurement is associated with a period of time around said time of at least one measurement executed by said second grid measuring device.

10. The computer program product according to claim 9 , wherein said period of time is not larger than time of travel of said transient between said measuring device detecting said transient and said proximal measuring device, according to speed of electric signal in a cable of said grid.

11. The computer program product according to claim 8 , wherein said communicating at least one of said measurement comprises a plurality of low-resolution measurements; and wherein said request comprises request for a plurality of high-resolution measurements.

12. The computer program product according to claim 11 , wherein said resolution comprises at least one of time-resolution and repetition rate of said plurality of measurements.

13. A system for detecting a fault in an electric grid, the system comprising:

a plurality of grid measuring devices distributed in said electric grid, said grid measuring devices comprising at least one of current measurement sensor and voltage measurement sensor, said grid measuring devices being operative to

measure at least one of current measurement and voltage measurement to form a plurality of measurements with their respective time of occurrence,

analyze at least one measurement executed by a first grid measuring device, and

communicate to a second grid measuring device a request to execute at least one of:

execute at least one measurement,

store said at least one requested measurement,

analyze said at least one measurement to form requested analysis result, and

communicate to said at least one of said computing device and a first grid measuring device at least one of said requested measurement, and said requested analysis result,

wherein said request results from analysis of at least one measurement executed by said first grid measuring device, and

wherein said request comprises time of measurement and said time of measurement is associated with time of at least one measurement executed by said first grid measuring device.

14. The system according to claim 13 , wherein said requested measurement is associated with a period of time around said time of at least one measurement executed by said second grid measuring device.

15. The system according to claim 14 , wherein said period of time is not larger than time of travel of said transient between said measuring device detecting said transient and said proximal measuring device, according to speed of electric signal in a cable of said grid.

16. The system according to claim 13 , wherein at least one of said computing device and a first grid measuring device is operative to communicate a request for a plurality of high-resolution measurements.

17. The system according to claim 16 , wherein said resolution comprises at least one of time-resolution and repetition rate of said plurality of measurements.

Assignments (4)
RELEASE OF SECURITY INTEREST Recorded Nov 9, 2021
From: YEHUDA KAHANE LTD.; KT SQUARED ODEF, LLC; NEWGEN TRUST; DENVER INVESTMENTS & HOLDINGS LTD; SHIELD CAPITAL LTD; COHEN, AMIR; EDELSTEIN-WEIS, DEBORAH; TRANSOLAM LLC
To: ELECTRICAL GRID MONITORING LTD.
Reel/Frame 058917/0224 →
RELEASE OF SECURITY INTEREST Recorded Oct 13, 2021
From: YEHUDA KAHANE LTD; KT SQUARED ODEF, LLC; NEWGEN TRUST; DENVER INVESTMENTS & HOLDINGS LTD; SHIELD CAPITAL LTD; TRANSOLAM LLC; COHEN, AMIR; EDELSTEIN-WEIS, DEBORAH
To: ELECTRICAL GRID MONITORING LTD
Reel/Frame 057779/0802 →
SECURITY INTEREST Recorded Jul 25, 2019
From: ELECTRICAL GRID MONITORING LTD.
To: KT SQUARED ODEF, LLC; YEHUDA KAHANE LTD.; NEWGEN TRUST; DENVER INVESTMENTS & HOLDINGS LTD.; SHIELD CAPITAL LTD.; TRANSOLAM LLC; COHEN, AMIR; EDELSTEIN-WEISS, DEBORAH
Reel/Frame 049874/0714 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 18, 2019
From: MIRON, EYAL
To: ELECTRICAL GRID MONITORING LTD.
Reel/Frame 048619/0936 →
Continuity (2)
Provisional Application 62349161 · Jun 13, 2016
Related Publication 20190271731A1 · Sep 5, 2019
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