IP Library › Granted Patent US 11,029,367
Granted Patent B2
US 11,029,367 · App. 16/314,260 · Granted Jun 8, 2021

Method for identifying fault types of high voltage direct current transmission line

Inventors: Bin Li (Tianjin, CN); Hong Qiu (Tianjin, CN)
Assignee: TIANJIN UNIVERSITY
G01R31/52G01R31/58
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,029,367
App. No.
16/314,260
Granted
Jun 8, 2021
Kind
B2
Abstract

There is provided a method for identifying fault types of HVDC physical transmission line, including: measuring positive and negative voltage values and current values at a j-terminal and k-terminal of the HVDC physical transmission line, and converting them to voltage and current values under mode components; calculating differential current values of travelling wave at the j-terminal and k-terminal under zero-mode and one-mode components of the HVDC physical transmission line, respectively; comparing with the calculated differential current value at the one-mode components under the current time t and the same at time t−t 0 to determine whether the HVDC physical transmission line is faulty; converting differential current values of the travelling wave at the j-terminal and k-terminal under the mode components to differential current values under the maximum amount, respectively; calculating fault type coefficients of both terminals; and identifying the fault types based on the fault type coefficients.

Claims (100)

1. A method for identifying fault types of an HVDC physical transmission line, including the following steps:

(1) measuring positive and negative voltage values u jp , u jn , u kp , u kn and positive and negative current values i jp , i jn , i kp , i kn at j-terminal and a k-terminal of the HVDC physical transmission line with a physical voltage meter and a physical current meter, and converting the measured voltage and current values under the maximum amount to voltage and current values u j0 , u j1 , u k0 , u k1 , i j0 , i j1 , i k0 , i k1 under mode components by employing decoupling matrix with a first convertor embedded in a first circuitry;

(2)calculating, by a processing system, the differential current values dI j0 (t), dI j1 (t), dI k0 (t), dI k1 (t) of travelling wave at the j-terminal and k-terminal under zero-mode and one-mode components of the HVDC physical transmission line, respectively;

(3)comparing with the calculated differential current value of the travelling wave at the one-mode components under the current time t and the same at time t-t 0 based on the following criteria:

dI j1 ( t )> K·dI j1 ( t−t 0 ) or dI k1 ( t )> K·dI k1 ( t−t 0 )

Where k is a reliability coefficient, the value of which is between 1.5 and 2; t 0 represents the length of time to select data from current time; and it is determined that the HVDC physical transmission line is faulty if the criteria are satisfied at three consecutive sampling points, and then the method proceeds to the next step;

(4)converting the differential current values of the travelling wave at the j-terminal and k-terminal under the mode components to differential current values dI jp (t), dI jn (t), dI kp (t), dI kn (t)under the maximum amount, respectively with a second convertor embedded in a second circuitry;

(5)calculating, by the processing system, fault type coefficients of both terminals of the HVDC physical transmission line, respectively:

j

⁢

-

⁢

terminal

⁢

:

⁢

⁢

B

j

⁡

(

t

)

=

dI

jp

⁡

(

t

)

+

dI

jn

⁡

(

t

)

dI

jp

⁡

(

t

)

-

dI

jn

⁡

(

t

)

;

k

⁢

-

⁢

terminal

⁢

:

⁢

⁢

B

k

⁡

(

t

)

=

dI

kp

⁡

(

t

)

+

dI

kn

⁡

(

t

)

dI

kp

⁡

(

t

)

-

dI

kn

⁡

(

t

)

;

and

(6)setting a small positive number a, and identifying, by the processing system, the fault types based on the fault type coefficients:

{circle around (1)} if the absolute value of the fault type coefficient at the j-terminal or k-terminal is less than a, identifying, by the processing system, a fault type is pole-to-pole fault;

{circle around (2)} if the absolute value of the fault type coefficient at the j-terminal or k-terminal is greater than a, identifying, by the processing system, the fault type is positive-pole-to-ground fault;

{circle around (3)} if the absolute value of the fault type coefficient at the j-terminal or k-terminal is less than −a, identifying, by the processing system, the fault type is negative-pole-to-ground fault.

2. The method for identifying fault types of the HVDC physical transmission lines according to claim 1 , wherein the value of a is 0.01.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 28, 2018
From: LI, BIN; QIU, HONG
To: TIANJIN UNIVERSITY
Reel/Frame 047870/0350 →
Priority Claims (1)
CN 201710467219.6 · Jun 19, 2017 · national
Continuity (1)
Related Publication 20200158787A1 · May 21, 2020
Cited By (1)
US 12,216,182