IP Library Granted Patent US 12665413
Granted Patent B2
US 12665413 · App. 18/910,292 · Granted Jun 23, 2026

Lateral fault isolation

Inventors: Michael John Meisinger, Sr. (Chicago, IL); Richard Thomas Gray (Orthbrook, IL); Michael J. Higginson (Mount Prospect, IL); Martin T. Bishop (Oak Creek, WI)
Assignee: S&C Electric Company
H02H7/26H02H1/0007H02H3/083
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Quick Facts
Patent No.
US 12665413
App. No.
18/910,292
Granted
Jun 23, 2026
Kind
B2
Abstract

A system and method for providing fault isolation in a power distribution network. The network includes a power line, a recloser coupled to the power line and a plurality of switching devices coupled to the power line downstream of the recloser, where each switching device is capable of detecting fault current in response to the fault and detecting presence of voltage. In one non-limiting embodiment, the method includes detecting overcurrent, loss of voltage and return of voltage by the switching devices and includes sequentially opening and closing switching devices from the recloser to a switching device immediately upstream of the fault in response to detecting overcurrent, loss of voltage and return of voltage.

Claims (53)

1 . A method for isolating a fault in a power distribution network, the network including a power line, a recloser coupled to the power line and a plurality of switching devices coupled to the power line downstream of the recloser, each switching device being capable of detecting fault current in response to the fault and detecting presence of voltage, the method comprising:

detecting overcurrent in the network from the fault by the recloser and all of the switching devices positioned along a fault path between the recloser and the fault;

interrupting the overcurrent by opening the recloser based on an initial trip profile time-current characteristic (TCC) curve;

detecting loss of voltage and/or absence of current when the recloser opens by the switching devices along the fault path;

recording a fault count by each switching device that detected overcurrent and then the loss of voltage and/or the absence of current;

opening each switching device that recorded a predetermined number of fault counts;

changing the initial trip profile TCC curve of the recloser to an operational trip profile TCC curve that is slower than the initial trip profile TCC curve and is coordinated with fault interrupting trip profile TCC curves of the switching devices along the fault path when the recloser opens and the predetermined number of fault counts has been reached;

closing the recloser;

closing a first switching device downstream of the recloser after a predetermined closing time period when the recloser closes;

activating a fault interrupting trip profile TCC curve of the first switching device during a wait time before the predetermined closing time period has ended;

closing a next switching device downstream of the first switching device after the predetermined closing time period when the first switching device closes;

activating a fault interrupting trip profile TCC curve of the next switching device during a wait time before the predetermined closing time period has ended;

deactivating the fault interrupting trip profile TCC curve of the first switching device before the next switching device closes; and

sequentially closing switching devices along the fault path until a switching device immediately upstream of the fault closes and detects overcurrent from the fault, where that switching device remains open.

2 . The method according to claim 1 wherein closing a first switching device downstream of the recloser, closing a next switching device downstream of the first switching device and sequentially closing next switching devices also include detecting return of voltage.

3 . The method according to claim 1 wherein the switching device immediately upstream of the fault closes and opens a plurality of times before the switching device immediately upstream of the fault remains open.

4 . The method according to claim 3 wherein the switching device immediately upstream of the fault drops out of a cut-out mounting when the switching device immediately upstream of the fault remains open.

5 . The method according to claim 1 wherein the switching devices include vacuum interrupters.

6 . The method according to claim 1 wherein the power line is a single-phase lateral line coupled to a three-phase feeder.

7 . The method according to claim 1 wherein the fault interrupting trip profile TCC curve of all of the switching devices is the same.

8 . The method according to claim 1 further comprising returning the recloser to the initial trip profile TCC curve after a certain time period that the recloser does not detect overcurrent.

9 . A method for isolating a fault in a power distribution network, the network including a power line, a recloser coupled to the power line and a plurality of switching devices coupled to the power line downstream of the recloser, each switching device being capable of detecting fault current in response to the fault and detecting presence of voltage, the method comprising:

detecting overcurrent in the network from the fault by the recloser and all of the switching devices positioned along a fault path between the recloser and the fault;

interrupting the overcurrent by opening the recloser;

detecting loss of voltage and/or absence of current when the recloser opens by the switching devices along the fault path;

recording a fault count by each switching device that detected overcurrent and then the loss of voltage and/or the absence of current;

opening each switching device that recorded a predetermined number of fault counts;

closing the recloser;

closing a first switching device downstream of the recloser after a predetermined closing time period when the recloser closes;

closing a next switching device downstream of the first switching device after the predetermined closing time period when the first switching device closes; and

sequentially closing next switching devices along the fault path until a switching device immediately upstream of the fault closes and detects overcurrent from the fault, where that switching device remains open.

10 . The method according to claim 9 wherein closing a first switching device downstream of the recloser, closing a next switching device downstream of the first switching device and sequentially closing next switching devices also include detecting return of voltage.

11 . The method according to claim 9 wherein interrupting the overcurrent by opening the recloser includes using an initial trip profile time-current characteristic (TCC) curve.

12 . The method according to claim 11 further comprising changing the initial trip profile TCC curve of the recloser to an operational trip profile TCC curve that is slower than the initial trip profile TCC curve and is coordinated with fault interrupting trip profile TCC curves of the switching devices along the fault path when the recloser opens and the predetermined number of fault counts has been reached.

13 . The method according to claim 12 further comprising activating a fault interrupting trip profile TCC curve of the first switching device that detected return of voltage during a wait time before the predetermined closing time period has ended.

14 . The method according to claim 13 further comprising activating a fault interrupting trip profile TCC curve of the next switching device that detected return of voltage during a wait time before the predetermined closing time period has ended.

15 . The method according to claim 14 further comprising deactivating the fault interrupting trip profile TCC curve of the first switching device that detected return of voltage before the next switching device closes.

16 . The method according to claim 11 further comprising returning the recloser to the initial trip profile TCC curve after a certain time period that the recloser does not detect overcurrent.

17 . A method for isolating a fault in a power distribution network, the network including a power line, a recloser coupled to the power line and a plurality of switching devices coupled to the power line downstream of the recloser, each switching device being capable of detecting fault current in response to the fault and detecting presence of voltage, the method comprising:

detecting overcurrent in the network from the fault by the recloser and all of the switching devices positioned along a fault path between the recloser and the fault;

interrupting the overcurrent by opening the recloser;

detecting loss of voltage and/or absence of current when the recloser opens by the switching devices along the fault path;

recording a fault count by each switching device that detected overcurrent and then the loss of voltage and/or the absence of current;

opening each switching device that recorded a predetermined number of fault counts;

closing the recloser;

closing a first switching device downstream of the recloser after a predetermined closing time period when the recloser closes;

closing a next switching device downstream of the first switching device after the predetermined closing time period when the first switching device closes;

sequentially closing next switching devices along the fault path until a switching device immediately upstream of the fault closes and causes overcurrent on the fault path;

interrupting the overcurrent again by opening the recloser;

opening the switching device immediately upstream of the fault; and

again closing the recloser.

18 . The method according to claim 17 wherein closing a first switching device downstream of the recloser, closing a next switching device downstream of the first switching device and sequentially closing next switching devices also include detecting return of voltage.

19 . The method according to claim 17 wherein the switching device immediately upstream of the fault drops out of a cut-out mounting when the switching device immediately upstream of the fault remains open.