IP Library Granted Patent US 8,081,002
Granted Patent B2
US 8,081,002 · App. 12/421,171 · Granted Dec 20, 2011

Apparatus and method for determining location of phase-to-phase fault or three-phase fault

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Quick Facts
Patent No.
US 8,081,002
App. No.
12/421,171
Granted
Dec 20, 2011
Kind
B2
Abstract

A method and apparatus for determining a distance of a phase-to-phase fault or a three-phase fault on a three-phase electric line, the apparatus ( 40 ) being configured to determine a first estimate value for a distance between the measuring point ( 40 ) and a point (F) of fault on the basis of a first equation based on a fault loop model in which the point of fault is located between the measuring point and load of the electric line, and a second estimate value for the distance on the basis of a second equation based on a fault loop model in which the load of the electric line is located between the measuring point and the point of fault, and to select according to predetermined criteria one of the determined two estimate values as the distance between the measuring point ( 40 ) and the point of fault (F).

Claims (170)

1. A method for determining a distance of a phase-to-phase fault or a three-phase fault on a three-phase electric line of an electric network, the method comprising:

monitoring current and voltage quantities of the three-phase electric line at a measuring point;

detecting a phase-to-phase fault or a three-phase fault on the three-phase electric line;

determining a first estimate value for a distance between the measuring point and a point of the detected phase-to-phase fault or three-phase fault on the basis of values of the monitored current and voltage quantities and a first equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the point of fault is located between the measuring point and an equivalent load point, which equivalent load point equals to a total load of the electric line modeled to be concentrated in a single point of the electric line;

determining a second estimate value for the distance between the measuring point and the point of the detected phase-to-phase fault or three-phase fault on the basis of values of the monitored current and voltage quantities and a second equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the equivalent load point is located between the measuring point and the point of fault; and

selecting according to predetermined criteria one of the determined two estimate values as the distance between the measuring point and the point of fault.

2. The method of claim 1 , wherein, when the fault is a phase-to-phase fault, the first equation is:

Ū 1 −Ū 2 =d* Z 1Fd *Ī 1 + Z F /2* Ī 1F −d* Z 2Fd *Ī 2 − Z F /2* Ī 2F ,

and the second equation is:

Ū 1 −Ū 2 =v* Z 1Fd *Ī 1 +( d−v )* Z 1Fd *Ī 1F + Z F /2* Ī 1F

− v* Z 2Fd *Ī 2 −( d−v )* Z 2Fd *Ī 2F − Z F /2* Ī 2F ,

where

d=per unit fault distance from the measuring point to the fault point

Ū 1 =Positive sequence component voltage measured at the measuring point

Ū 2 =Negative sequence component voltage measured at the measuring point

Z 1Fd =Positive sequence impedance of the electric line per phase

Z 2Fd =Negative sequence impedance of the electric line per phase

Z F =Fault impedance between the phases

Ī 1 =Positive sequence component current measured at the measuring point

Ī 2 =Negative sequence component current measured at the measuring point

Ī 1F =Positive sequence fault component current at the fault point

Ī 2F =Negative sequence fault component current at the fault point

v=per unit distance of an equivalent load indicating a distance of the equivalent load point from the measuring point.

3. The method of claim 1 , wherein, when the fault is a three-phase fault, the first equation is:

Ū 1 =d* Z 1Fd *Ī 1 + Z F *Ī 1F ,

and the second equation is:

Ū 1 =v* Z 1Fd *Ī 1 +( d−v )* Z 1Fd *Ī 1F + Z F *Ī 1F

where

d=per unit fault distance from the measuring point to the fault point

Ū 1 =Positive sequence component voltage measured at the measuring point

Z 1Fd =Positive sequence impedance of the electric line per phase

Z F =Fault impedance per phase

Ī 1 =Positive sequence component current measured at the measuring point

Ī 1F =Positive sequence fault component current at the fault point

v=per unit distance of an equivalent load indicating a distance of the equivalent load point from the measuring point.

4. The method of claim 1 , wherein the selection of one of the determined two estimate values as the distance d between the measuring point and the point of fault is performed according to the following criteria:

If 0<de1<v, then d=de1, else d=de2

where

de1=the first estimate value for the distance between the measuring point and the point of fault determined on the basis of the first equation

de2=the second estimate value for the distance between the measuring point and the point of fault determined on the basis of the second equation

v=per unit distance of an equivalent load indicating a distance of the equivalent load point from the measuring point.

5. The method of claim 2 , wherein Ī 1F and/or Ī 2F are determined as follows:

Ī 1F =Ī 1 −kĪ 1prefault

Ī 2F =Ī 2 −kĪ 2prefault

where

Ī 1prefault =pre-fault positive sequence current component

Ī 2prefault =pre-fault negative sequence current component

k=load current reduction factor.

6. The method of claim 5 , wherein the load current reduction factor k is determined as follows:

where

k

=

iload

n

(

fault

)

iload

n

(

pre

-

fault

)

iload n (fault)=load current component of load tap n during fault

iload n (pre-fault)=pre-fault load current component of load tap n.

7. The method of claim 2 , wherein the distance of the equivalent load is determined on the basis of a load current during the fault on the three-phase electric line.

8. The method of claim 2 , wherein the distance of the equivalent load is determined on the basis of a load current during a healthy state of the three-phase electric line.

9. A computer program product comprising computer program code embodied on a non-transitory computer readable medium, wherein the execution of the program code in a computer causes the computer to carry out a method for determining a distance of a phase-to-phase fault or a three-phase fault on a three-phase electric line of an electric network, the method comprising:

monitoring current and voltage quantities of the three-phase electric line at a measuring point;

detecting a phase-to-phase fault or a three-phase fault on the three-phase electric line;

determining a first estimate value for a distance between the measuring point and a point of the detected phase-to-phase fault or three-phase fault on the basis of values of the monitored current and voltage quantities and a first equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the point of fault is located between the measuring point and an equivalent load point, which equivalent load point equals to a total load of the electric line modeled to be concentrated in a single point of the electric line;

determining a second estimate value for the distance between the measuring point and the point of the detected phase-to-phase fault or three-phase fault on the basis of values of the monitored current and voltage quantities and a second equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the equivalent load point is located between the measuring point and the point of fault; and

selecting according to predetermined criteria one of the determined two estimate values as the distance between the measuring point and the point of fault.

10. A fault distance determination apparatus, the apparatus comprising:

means for monitoring current and voltage quantities of a three-phase electric line at a measuring point;

means for determining, in response to a phase-to-phase fault or a three-phase fault occurring on the three-phase electric line:

a first estimate value for a distance between the measuring point and a point of the phase-to-phase fault or the three-phase fault on the basis of values of the monitored current and voltage quantities and a first equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the point of fault is located between the measuring point and an equivalent load point, which equivalent load point equals to a total load of the electric line modeled to be concentrated in a single point of the electric line; and

a second estimate value for the distance between the measuring point and the point of the phase-to-phase fault or the three-phase fault on the basis of values of the monitored current and voltage quantities and a second equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the equivalent load point is located between the measuring point and the point of fault; and

means for selecting according to predetermined criteria one of the determined two estimate values as the distance between the measuring point and the point of fault.

11. The apparatus of claim 10 , wherein, when the fault is a phase-to-phase fault, the first equation is:

Ū 1 −Ū 2 =d* Z 1Fd *Ī 1 + Z F /2* Ī 1F −d* Z 2Fd *Ī 2 −

Z F /2* Ī 2F ,

and the second equation is:

Ū 1 −Ū 2 =v* Z 1Fd *Ī 1 +( d−v )* Z 1Fd *Ī 1F + Z F /2* Ī 1F

− v* Z 2Fd * I 2 −( d−v )* Z 2Fd *Ī 2F − Z F /2* Ī 2F ,

where

d=per unit fault distance from the measuring point to the fault point

Ū 1 =Positive sequence component voltage measured at the measuring point

Ū 2 =Negative sequence component voltage measured at the measuring point

Z 1Fd =Positive sequence impedance of the electric line per phase

Z 2Fd =Negative sequence impedance of the electric line per phase

Z F =Fault impedance between the phases

Ī 1 =Positive sequence component current measured at the measuring point

Ī 2 =Negative sequence component current measured at the measuring point

Ī 1F =Positive sequence fault component current at the fault point

Ī 2F =Negative sequence fault component current at the fault point

v=per unit distance of an equivalent load indicating a distance of the equivalent load point from the measuring point.

12. The apparatus of claim 10 , wherein, when the fault is a three-phase fault, the first equation is:

Ū 1 =d* Z 1Fd *Ī 1 + Z F *Ī 1F ,

and the second equation is:

Ū 1 =v* Z 1Fd *Ī 1 +( d−v )* Z 1Fd *Ī 1F + Z F *Ī 1F

where

d=per unit fault distance from the measuring point to the fault point

Ū 1 =Positive sequence component voltage measured at the measuring point

Z 1Fd =Positive sequence impedance of the electric line per phase

Z F =Fault impedance per phase

Ī 1 =Positive sequence component current measured at the measuring point

Ī 1F =Positive sequence fault component current at the fault point

v=per unit distance of an equivalent load indicating a distance of the equivalent load point from the measuring point.

13. The apparatus of claim 10 , wherein the means for selecting are to select one of the determined two estimate values as the distance d between the measuring point and the point of fault according to the following criteria:

If 0<de1<v, then d=de1, else d=de2

where

de1=the first estimate value for the distance between the measuring point and the point of fault determined on the basis of the first equation

de2=the second estimate value for the distance between the measuring point and the point of fault determined on the basis of the second equation

v=per unit distance of an equivalent load indicating a distance of the equivalent load point from the measuring point.

14. The apparatus of claim 11 , wherein the means for determining are to determine Ī 1F and/or Ī 2F as follows:

Ī 1F =Ī 1 −kĪ 1prefault

Ī 2F =Ī 2 −kĪ 2prefault

where

Ī 1prefault =pre-fault positive sequence current component

Ī 2prefault =pre-fault negative sequence current component

k=load current reduction factor.

15. The apparatus of claim 14 , wherein the means for determining are to determine the load current reduction factor k as follows:

where

k

=

iload

n

(

fault

)

iload

n

(

pre

-

fault

)

iload n (fault)=load current component of load tap n during fault

iload n (pre-fault)=pre-fault load current component of load tap n.

16. The apparatus of claim 11 , wherein the means for determining are to determine the distance of the equivalent load on the basis of a load current during the fault on the three-phase electric line.

17. The apparatus of claim 11 , wherein the means for determining are to determine the distance of the equivalent load on the basis of a load current during a healthy state of the three-phase electric line.

18. The apparatus of claim 11 , wherein the apparatus comprises a protective relay.

19. A fault distance determination apparatus, the apparatus comprising:

a monitoring unit to monitor current and voltage quantities of a three-phase electric line at a measuring point;

a determining unit to determine, in response to a phase-to-phase fault or a three-phase fault occurring on the three-phase electric line:

a first estimate value for a distance between the measuring point and a point of the phase-to-phase fault or the three-phase fault on the basis of values of the monitored current and voltage quantities and a first equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the point of fault is located between the measuring point and an equivalent load point, which equivalent load point equals to a total load of the electric line modeled to be concentrated in a single point of the electric line; and

a second estimate value for the distance between the measuring point and the point phase-to-phase fault on the basis of values of the monitored current and voltage quantities and a second equation which relates the current and voltage quantities to the distance and is based on a fault loop model of the electric line, in which model the equivalent load point is located between the measuring point and the point of fault; and

a selecting unit to select according to predetermined criteria one of the determined two estimate values as the distance between the measuring point and the point of fault.

Assignments (2)
MERGER Recorded Nov 15, 2016
From: ABB TECHNOLOGY LTD.
To: ABB SCHWEIZ AG
Reel/Frame 040620/0939 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2009
From: WAHLROOS, ARI; ALTONEN, JANNE
To: ABB TECHNOLOGY AG
Reel/Frame 022873/0553 →