CN112054498B - Current-limiting protection method and device of ground fault full-compensation system - Google Patents

Current-limiting protection method and device of ground fault full-compensation system Download PDF

Info

Publication number
CN112054498B
CN112054498B CN202011017379.9A CN202011017379A CN112054498B CN 112054498 B CN112054498 B CN 112054498B CN 202011017379 A CN202011017379 A CN 202011017379A CN 112054498 B CN112054498 B CN 112054498B
Authority
CN
China
Prior art keywords
current
rated
phase
limiting protection
reactor
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202011017379.9A
Other languages
Chinese (zh)
Other versions
CN112054498A (en
Inventor
刘红文
蔡晓斌
曾祥君
赵现平
王科
李文云
张恭源
聂鼎
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Electric Power Research Institute of Yunnan Power Grid Co Ltd
Original Assignee
Electric Power Research Institute of Yunnan Power Grid Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Electric Power Research Institute of Yunnan Power Grid Co Ltd filed Critical Electric Power Research Institute of Yunnan Power Grid Co Ltd
Priority to CN202011017379.9A priority Critical patent/CN112054498B/en
Publication of CN112054498A publication Critical patent/CN112054498A/en
Application granted granted Critical
Publication of CN112054498B publication Critical patent/CN112054498B/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H9/00Emergency protective circuit arrangements for limiting excess current or voltage without disconnection
    • H02H9/02Emergency protective circuit arrangements for limiting excess current or voltage without disconnection responsive to excess current
    • H02H9/021Current limitation using saturable reactors
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J3/00Circuit arrangements for ac mains or ac distribution networks
    • H02J3/12Circuit arrangements for ac mains or ac distribution networks for adjusting voltage in ac networks by changing a characteristic of the network load
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J3/00Circuit arrangements for ac mains or ac distribution networks
    • H02J3/38Arrangements for parallely feeding a single network by two or more generators, converters or transformers
    • H02J3/46Controlling of the sharing of output between the generators, converters, or transformers

Abstract

The application provides a current-limiting protection method and a current-limiting protection device of a ground fault full-compensation system, wherein the method comprises the following steps: obtaining capacitance current I of power grid system c (ii) a According to the capacitive current I of the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base (ii) a According to rated thermal short-circuit current I base Calculating the rated continuous current I of the current-limiting protection reactor E (ii) a According to rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L (ii) a According to rated reactance value X of current-limiting protection reactor L And rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L When the power grid system has ground fault and the ground fault current full compensation system judges the ground fault phase incorrectly, the current limiting reactor limits the ground fault current in the ground fault phase to be below a preset threshold value, so that the safety of the power grid system is protected.

Description

Current-limiting protection method and device of ground fault full-compensation system
Technical Field
The present disclosure relates to the field of power systems, and in particular, to a current limiting protection method and device for a ground fault full compensation system.
Background
The single-phase earth fault of the power distribution network at home and abroad accounts for more than 80 percent, the safe operation of the power grid and equipment is seriously influenced, and the safe processing of the earth fault plays an important role in social and economic development. When the capacitance current of the system is more than 10A, an arc suppression coil grounding mode is adopted. The arc suppression coil can reduce the fault current to a certain extent, and the system can take the trouble to operate for 2 hours, but the arc suppression coil can not realize full compensation, and the fault point still has the residual current that is less than 10A, and the existence of residual current can cause the person to electrocute, the conflagration accident to and threaten the safe and stable operation of electric wire netting and equipment seriously. When the capacitance current of the system is large, a small-resistance grounding mode is mostly adopted, when a single-phase grounding fault occurs, the zero sequence current of a fault line is amplified, and the relay protection device quickly removes the fault line.
In order to thoroughly eliminate the damage of the single-phase earth fault and ensure the power supply reliability, various methods for completely compensating the current of the single-phase earth fault point are provided at home and abroad. For example: the GFN (ground fault neutralizer) manufactured by Swedishneutral in Sweden is a representative one, and the GFN utilizes an active power supply of power electronics to realize the full compensation of the ground fault, and a method (CN102074950A) for extinguishing and protecting the ground fault of a power distribution network belongs to the active full compensation in technical principle. On the other hand, there are also patents (CN201910992110.3, CN201910992109.0, etc.) for a system and a method for compensating for a ground fault current of a self-generated phase power supply, which have certain advantages in terms of cost and stability because of using a phase power supply converter and no power electronic power supply.
However, regardless of the full compensation technique, the ground fault current compensation system needs to determine the ground fault phase and then perform ground compensation. Once a phase-judging error occurs, the earth fault current compensation system will mistakenly switch into a non-fault phase, resulting in a larger fault current occurring at an earth fault point. The fault current may exceed the current carrying capacity of the lines of the grid system, compromising the safety of the grid system. Therefore, how to suppress the phase fault of the ground fault and the short-circuit current caused by the full compensation device becomes an industry technical problem which needs to be solved urgently at present. However, the prior art does not have a method of suppressing the short-circuit current.
Disclosure of Invention
The application provides a current-limiting protection method and device of a ground fault full compensation system, which aim to solve the problem that once a ground fault phase judgment error occurs in the prior art, a ground fault current compensation system can mistakenly input a non-fault phase, so that a ground fault point generates larger fault current. The fault current may exceed the current carrying capacity of the lines of the power grid system, and endanger the safety of the power grid system.
In a first aspect, the present invention provides a current limiting protection method for a ground fault full compensation system, including:
acquiring a capacitance current Ic of a power grid system;
calculating rated thermal short-circuit current Ibase of the current-limiting reactor according to the capacitance current Ic of the power grid system;
according to the rated thermal short-circuit current I base Calculating rated continuous current I of the current-limiting protection reactor E
According to the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L
According to the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L When the power grid system has a ground fault and the ground fault current full compensation system judges the ground fault phase incorrectly, limiting the ground fault current in the ground fault phase to be below a preset threshold value, wherein the preset threshold value is the maximum current value which can be borne by the power grid system;
wherein the capacitance current I is determined according to the power grid system c Said is calculated according to the following formulaRated thermal short-circuit current I of current-limiting reactor base
Figure BDA0002699511420000021
Figure BDA0002699511420000022
k is a current limiting coefficient, the value range of k is 2-6 T And the rated transformation ratio of the voltage regulating transformer in the earth fault current full compensation system is obtained.
Further, the method is based on the rated thermal short-circuit current I base Calculating the rated continuous current I of the current-limiting protection reactor E The method comprises the following steps:
according to the rated thermal short-circuit current I base Calculating the rated continuous current I of the current-limiting protection reactor by the following formula E
Figure BDA0002699511420000023
Wherein k is d The value range is 5-10 for capacity reduction coefficient.
Further, the current I is according to the rated thermal short circuit base Calculating the rated reactance value X of the current-limiting protection reactor L The method comprises the following steps:
according to the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor by the following formula L
Figure BDA0002699511420000024
Wherein, the first and the second end of the pipe are connected with each other,
Figure BDA0002699511420000025
for rated line voltage, X, of the grid system T And the leakage reactance of the earth fault current full compensation system on one side of the neutral point of the power grid system is reduced.
Further, the rated reactance value X according to the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L The method comprises the following steps:
according to the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor by the following formula L
S L =X L I E 2
Further, the earth fault current full compensation system comprises a line phase converter 1, a current-limiting protection reactor 2, a split-phase switch group 3, a regulating transformer 4 and a controller 5;
the line phase converter 1 comprises a phase power supply generator 11 and a phase power supply phase compensator 12 which are connected with each other, wherein the phase power supply generator 11 is connected with each phase transmission line in three-phase transmission lines of the power grid system, the phase power supply phase compensator 12 is connected with each phase-splitting switch in three phase-splitting switches contained in the phase-splitting switch group 3, the controller 5 is connected with the regulating transformer 4, the controller 5 is connected with the phase-splitting switch group 3, and the load side of the regulating transformer 4 is connected with a neutral point of the power grid system;
the first end of the current-limiting protection reactor 2 is connected with the power supply side of the regulating transformer 4, the second end of the current-limiting protection reactor 2 is connected with each split-phase switch of three split-phase switches included in the split-phase switch group 3, and the phase power supply phase compensator 12 is grounded; or, the first end of the current-limiting protection reactor 2 is grounded, the second end of the current-limiting protection reactor 2 is connected to the phase power supply phase compensator 12, and the power supply side of the regulating transformer 4 is connected to each of the three split-phase switches included in the split-phase switch group 3.
Further, under the condition that the first end of the current-limiting protection reactor 2 is connected to the power supply side of the regulating transformer 4, and the second end of the current-limiting protection reactor 2 is connected to each of three split-phase switches included in the split-phase switch group 3, the insulation level of the first end of the current-limiting protection reactor 2 and the insulation level of the second end of the current-limiting protection reactor 2 are consistent with the insulation level of the power supply side of the regulating transformer 4.
Further, in a case where the first end of the current-limiting protection reactor 2 is grounded and the second end of the current-limiting protection reactor 2 is connected to the phase compensator 12, the insulation level range of the first end of the current-limiting protection reactor 2 is the insulation level of the power supply side of the voltage-regulating transformer 4
Figure BDA0002699511420000031
And the insulation level of the second end of the current-limiting protection reactor 2 is consistent with the insulation level of the power supply side of the regulating transformer 4.
In a second aspect, the present invention provides a current limiting protection device of a ground fault full compensation system, including:
an acquisition module for acquiring the capacitance current I of the power grid system c
A first calculation module for calculating the capacitance current I according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base
A second calculation module for calculating the rated thermal short-circuit current I base Calculating the rated continuous current I of the current-limiting protection reactor E
A third calculation module for calculating the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L
A fourth calculation module for calculating the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L When the power grid system has a ground fault and the ground fault current full compensation system judges the ground fault phase incorrectly, limiting the ground fault current in the ground fault phase to be below a preset threshold, wherein the preset threshold is the maximum current value which can be borne by the power grid system;
wherein the capacitance current I is determined according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure BDA0002699511420000041
Figure BDA0002699511420000042
k is a current limiting coefficient and ranges from 2 to 6, k T And the rated transformation ratio of the voltage regulating transformer in the earth fault current full compensation system is obtained.
It can be known from the above technical solutions that the current-limiting protection method and device of the ground fault full compensation system provided in the embodiments of the present invention obtain the capacitance current I of the power grid system c (ii) a According to the capacitance current I of the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base (ii) a According to the rated thermal short-circuit current I base Calculating the rated continuous current I of the current-limiting protection reactor E (ii) a According to the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L (ii) a According to the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L The current limiting reactor has a ground fault in the power grid system, and the ground fault current fully-compensates systemLimiting the ground fault current in the ground fault phase below a preset threshold value under the condition of wrong ground fault phase judgment, wherein the preset threshold value is the maximum current value which can be borne by the power grid system; wherein, according to the capacitance current I of the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure BDA0002699511420000043
k is a current limiting coefficient and ranges from 2 to 6, k T And the rated transformation ratio of the voltage regulating transformer in the earth fault current full compensation system is obtained. Therefore, under the condition that the power grid system has the ground fault and the ground fault current full compensation system judges the ground fault phase wrongly, the ground fault current in the ground fault phase can be limited below a preset threshold value, and the safety of the power grid system is protected.
Drawings
In order to more clearly explain the technical solution of the present application, the drawings needed to be used in the embodiments will be briefly described below, and it is obvious to those skilled in the art that other drawings can be obtained according to the drawings without creative efforts.
Fig. 1 is a flow chart of a current limiting protection method of a ground fault full compensation system according to the present invention;
FIG. 2 is a schematic diagram of a ground fault current full compensation system according to the present invention;
FIG. 3 is a second schematic diagram of a ground fault current full compensation system provided by the present invention;
FIG. 4 is a schematic diagram of the present invention providing a method of limiting ground fault current in a ground fault phase;
fig. 5 is a structural diagram of a current limiting protection device of a ground fault full compensation system according to the present invention.
Detailed Description
Reference will now be made in detail to embodiments, examples of which are illustrated in the accompanying drawings. When the following description refers to the accompanying drawings, like numbers in different drawings represent the same or similar elements unless otherwise indicated. The embodiments described in the following examples do not represent all embodiments consistent with the present application. But merely as exemplifications of systems and methods consistent with certain aspects of the application, as recited in the claims.
Referring to fig. 1, fig. 1 is a flowchart of a current limiting protection method of a ground fault full compensation system according to the present invention. As shown in fig. 1, the method comprises the following steps:
step 101, obtaining a capacitance current I of a power grid system c
In step 101, a capacitance current I of the grid system may be obtained c
102, according to the capacitance current I of the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base
In step 102, the capacitance current I of the grid system may be determined c Calculating the rated thermal short-circuit current I of the current-limiting reactor base
103, according to the rated thermal short-circuit current I base Calculating rated continuous current I of the current-limiting protection reactor E
In step 103, the thermal short-circuit current I may be determined according to the rated thermal short-circuit current I base Calculating the rated continuous current I of the current-limiting protection reactor E
Optionally, said current is dependent on said rated thermal short-circuit current I base Calculating rated continuous current I of the current-limiting protection reactor E The method comprises the following steps:
according to the rated thermal short-circuit current I base Calculating rated continuous current I of the current-limiting protection reactor by the following formula E
Figure BDA0002699511420000051
Wherein k is d The value range is 5-10 for the capacity reduction coefficient.
It should be noted that the following formula can be usedCalculating rated continuous current I of current-limiting protection reactor E
Figure BDA0002699511420000052
Wherein k is d In order to reduce the capacity coefficient, the value range can be 5-10.
104, according to the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L
In step 104, the thermal short circuit current I may be rated according to base Calculating the rated reactance value X of the current-limiting protection reactor L
Optionally, said current is dependent on said rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L The method comprises the following steps:
according to the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor by the following formula L
Figure BDA0002699511420000061
Wherein the content of the first and second substances,
Figure BDA0002699511420000062
for rated line voltage, X, of said grid system T And the leakage reactance of the earth fault current full compensation system on one side of the neutral point of the power grid system is reduced.
It should be noted that the rated reactance value X of the current-limiting protection reactor can be calculated by the following formula L
Figure BDA0002699511420000063
Wherein the content of the first and second substances,
Figure BDA0002699511420000067
rated line voltage, X, for the grid system T And the leakage reactance of the earth fault current full compensation system on the neutral point side of the power grid system is reduced.
105, according to the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L When the power grid system has a ground fault and the ground fault current full compensation system judges the ground fault phase incorrectly, limiting the ground fault current in the ground fault phase to be below a preset threshold value, wherein the preset threshold value is the maximum current value which can be borne by the power grid system; wherein the capacitance current I is determined according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure BDA0002699511420000064
Figure BDA0002699511420000065
k is a current limiting coefficient and ranges from 2 to 6, k T And the rated transformation ratio of the voltage regulating transformer in the earth fault current full compensation system is obtained.
In step 105, the reactance value X may be determined according to the rated reactance value of the current-limiting protection reactor L And rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L When the power grid system has ground fault and the ground fault current full compensation system judges the ground fault phase wrongly, the current limiting reactor limits the ground fault current in the ground fault phase to a preset threshold valueBelow the value. The preset threshold value is the maximum current value which can be borne by the power grid system.
Wherein, the capacitance current I can be determined according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure BDA0002699511420000066
Figure BDA0002699511420000071
k is a current limiting coefficient, the value range of k is 2-6 T The rated transformation ratio of the regulating transformer in the system is fully compensated for the earth fault current.
It should be noted that, in the prior art, once a ground fault phase determination error occurs, the ground fault current compensation system may mistakenly switch into a non-fault phase, resulting in a larger fault current occurring at a ground fault point. The fault current may exceed the current carrying capacity of the lines of the grid system, compromising the safety of the grid system.
In the invention, when the power grid system has ground fault and the ground fault current full compensation system judges the ground fault phase wrongly, the ground fault current in the ground fault phase can be limited below a preset threshold value, so that the safety of the power grid system is protected.
Optionally, the current-limiting protection reactor is based on a rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L The method comprises the following steps:
according to the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor by the following formula L
S L =X L I E 2
It should be noted that the limit can be calculated by the following formulaRated capacity S of current protection reactor L
S L =X L I E 2
For example, the rated line voltage of the grid system
Figure BDA0002699511420000072
10kV, the capacitance current of the power grid system is 100A, the current limiting coefficient k is 4, and the rated transformation ratio k of the regulating transformer T To 1/15, the rated thermal short-circuit current I of the current-limiting protection reactor is calculated base Is 6 kA;
taking a volume reduction coefficient k d To 5, calculating rated continuous current I of the current-limiting protection reactor E Is 1.2 kA;
leakage reactance X reduced to neutral point side of power grid system by earth fault current full compensation system T The rated reactance value X of the current-limiting protection reactor is calculated to be 14.4 ohms L 0.047 ohm;
finally, calculating the rated capacity S of the current-limiting protection reactor L Is 68 kVA.
Optionally, the ground fault current full compensation system includes a line-to-phase converter 1, a current-limiting protection reactor 2, a split-phase switch group 3, a regulating transformer 4 and a controller 5;
the line phase converter 1 comprises a phase power supply generator 11 and a phase power supply phase compensator 12 which are connected with each other, wherein the phase power supply generator 11 is connected with each phase transmission line in three-phase transmission lines of the power grid system, the phase power supply phase compensator 12 is connected with each phase-splitting switch in three phase-splitting switches contained in the phase-splitting switch group 3, the controller 5 is connected with the regulating transformer 4, the controller 5 is connected with the phase-splitting switch group 3, and the load side of the regulating transformer 4 is connected with a neutral point of the power grid system;
the first end of the current-limiting protection reactor 2 is connected with the power supply side of the regulating transformer 4, the second end of the current-limiting protection reactor 2 is connected with each split-phase switch in three split-phase switches included in the split-phase switch group 3, and the phase power supply phase compensator 12 is grounded; or, the first end of the current-limiting protection reactor 2 is grounded, the second end of the current-limiting protection reactor 2 is connected to the phase power supply phase compensator 12, and the power supply side of the regulating transformer 4 is connected to each of the three split-phase switches included in the split-phase switch group 3.
Fig. 2 is a schematic diagram of a ground fault current full compensation system according to the present invention; fig. 3 is a second schematic diagram of the ground fault current full compensation system provided by the present invention.
The earth fault current full compensation system can comprise a line phase converter 1, a current limiting protection reactor 2, a split-phase switch group 3, a regulating transformer 4 and a controller 5.
The line-phase converter 1 may include a phase power generator 11 and a phase power phase compensator 12 connected to each other. A phase supply generator 11 is connected to each of the three phase transmission lines of the grid system, and a phase supply phase compensator 12 is connected to each of the three phase splitting switches included in the phase splitting switch group 3. The controller 5 can be connected with the regulating transformer 4, and the controller 5 can also be connected with the split-phase switch group 3. The load side of the regulating transformer 4 can be connected to the neutral point N of the grid system.
As shown in fig. 2, a first end of the current-limiting protection reactor 2 may be connected to the power supply side of the regulating transformer 4, and a second end of the current-limiting protection reactor 2 may be connected to each of the three split phase switches included in the split phase switch bank 3, and the phase power supply phase compensator 12 may be grounded.
Alternatively, as shown in fig. 3, the first end of the current-limiting protection reactor 2 is grounded, the second end of the current-limiting protection reactor 2 is connected to the phase compensator 12 of the phase power supply, and the power supply side of the regulating transformer 4 may be connected to each of the three split phase switches included in the split phase switch group 3.
The grid system may comprise an ac power source 6, a transformer 7, a coil 8 and a three-phase power line A, B, C.
Optionally, under the condition that the first end of the current-limiting protection reactor 2 is connected to the power supply side of the voltage regulating transformer 4, and the second end of the current-limiting protection reactor 2 is connected to each split-phase switch of three split-phase switches included in the split-phase switch group 3, the insulation level of the first end of the current-limiting protection reactor 2 and the insulation level of the second end of the current-limiting protection reactor 2 are consistent with the insulation level of the power supply side of the voltage regulating transformer 4.
Further, in the case where the first end of the current-limiting protection reactor 2 is connected to the power supply side of the regulating transformer 4, and the second end of the current-limiting protection reactor 2 is connected to each of the three split-phase switches included in the split-phase switch group 3, the insulation level of the first end of the current-limiting protection reactor 2 and the insulation level of the second end of the current-limiting protection reactor 2 may be made to coincide with the insulation level of the power supply side of the regulating transformer 4.
Optionally, under the condition that the first end of the current-limiting protection reactor 2 is grounded, and the second end of the current-limiting protection reactor 2 is connected to the phase compensator 12 of the phase power supply, the insulation level range of the first end of the current-limiting protection reactor 2 is the insulation level of the power side of the voltage regulating transformer 4
Figure BDA0002699511420000081
And the insulation level of the second end of the current-limiting protection reactor 2 is consistent with the insulation level of the power supply side of the regulating transformer 4.
Further, in the case where the first end of the current-limiting protection reactor 2 is grounded and the second end of the current-limiting protection reactor 2 is connected to the phase compensator 12 of the phase power supply source, the range of the insulation level of the first end of the current-limiting protection reactor 2 may be the insulation level of the power source side of the voltage-regulating transformer 4
Figure BDA0002699511420000091
The insulation level of the second end of the current limiting protection reactor 2 may coincide with the insulation level of the power supply side of the regulating transformer 4.
Fig. 4 is a schematic diagram illustrating a method for limiting a ground fault current in a ground fault phase according to the present invention. As shown in FIG. 4, the grid system may include at leastTwo lines, which are a first line, a second line, an Nth line, and so on. Zero sequence current of the first line is I 01 (ii) a Zero sequence current of the second line is I 02 (ii) a Zero sequence current of Nth line is I 0n . The zero sequence current of each line comprises three-phase currents, namely an A-phase current, a B-phase current and a C-phase current. Under the condition that the C phase of the Nth line of the at least two lines has single-phase earth fault, the current can be limited by the current-limiting protection reactor to avoid harming the safety of a power grid system.
Furthermore, each line protection device of the power grid system can be provided with zero-sequence current protection, and the zero-sequence current protection fixed value can be calculated according to the following formula:
I th =k th I c
wherein, I th Setting a zero sequence current protection constant value; k is a radical of th The value range is 1-2 for the sensitivity coefficient; i is c Is the capacitance current of the power grid system.
When the earth fault current exceeds the zero sequence current protection constant value of the line protection device, the fault line can be tripped through the line protection device to realize fault isolation.
It can be known from the above technical solutions that the current-limiting protection method of the ground fault full compensation system provided in the embodiments of the present invention obtains the capacitance current I of the power grid system c (ii) a According to the capacitance current I of the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base (ii) a According to the rated thermal short-circuit current I base Calculating rated continuous current I of the current-limiting protection reactor E (ii) a According to the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L (ii) a According to the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L The current limiting reactor has earth fault in the power grid system, and the earth fault current is fully compensatedUnder the condition that the system judges the ground fault phase wrongly, limiting the ground fault current in the ground fault phase below a preset threshold value, wherein the preset threshold value is the maximum current value which can be borne by the power grid system; wherein, according to the capacitance current I of the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure BDA0002699511420000092
k is a current limiting coefficient and ranges from 2 to 6, k T And the rated transformation ratio of the regulating transformer in the earth fault current full compensation system is obtained. Therefore, under the condition that the power grid system has the ground fault and the ground fault current full compensation system judges the ground fault phase wrongly, the ground fault current in the ground fault phase can be limited below a preset threshold value, and the safety of the power grid system is protected.
Referring to fig. 5, fig. 5 is a structural diagram of a current limiting protection device of a ground fault full compensation system according to the present invention. As shown in fig. 5, the current limiting protection device 500 of the ground fault full compensation system includes an obtaining module 501, a first calculating module 502, a second calculating module 503, a third calculating module 504, and a fourth calculating module 505, wherein:
an obtaining module 501, configured to obtain a capacitance current I of a power grid system c
A first calculation module 502, configured to calculate a capacitance current I according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base
A second calculation module 503 for calculating the rated thermal short-circuit current I base Calculating the rated continuous current I of the current-limiting protection reactor E
A third calculation module 504 for calculating the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L
A fourth calculating module 505, configured to calculate a rated reactance value X according to the current-limiting protection reactor L And the rated continuous current I E Computing stationRated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L When the power grid system has a ground fault and the ground fault current full compensation system judges the ground fault phase incorrectly, limiting the ground fault current in the ground fault phase to be below a preset threshold value, wherein the preset threshold value is the maximum current value which can be borne by the power grid system;
wherein the capacitance current I is determined according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure BDA0002699511420000101
Figure BDA0002699511420000102
k is a current limiting coefficient and ranges from 2 to 6, k T And the rated transformation ratio of the voltage regulating transformer in the earth fault current full compensation system is obtained.
The current limiting protection device 500 of the ground fault full compensation system can implement each process implemented by the current limiting protection device of the ground fault full compensation system in the method embodiment of fig. 1, and is not described herein again to avoid repetition. And the current-limiting protection device 500 of the ground fault full compensation system can limit the ground fault current in the ground fault phase to be below a preset threshold value and protect the safety of the power grid system under the condition that the power grid system has a ground fault and the ground fault current full compensation system has a wrong judgment on the ground fault phase.
The embodiments provided in the present application are only a few examples of the general concept of the present application, and do not limit the scope of the present application. Any other embodiments that can be extended by the solution according to the present application without inventive efforts will be within the scope of protection of the present application for a person skilled in the art.

Claims (5)

1. A current limiting protection method of a ground fault full compensation system is characterized by comprising the following steps:
obtaining capacitance current I of power grid system c
According to the capacitance current I of the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base
According to the rated thermal short-circuit current I base Calculating rated continuous current I of the current-limiting protection reactor E The method comprises the following steps:
calculating rated continuous current I of the current-limiting protection reactor by the following formula E
Figure FDA0003794521330000011
Wherein k is d The value range is 5-10 for the capacity reduction coefficient;
according to the rated thermal short-circuit current I base Calculating the rated reactance value X of the current-limiting protection reactor L The method comprises the following steps:
calculating the rated reactance value X of the current-limiting protection reactor by the following formula L
Figure FDA0003794521330000012
Wherein, the first and the second end of the pipe are connected with each other,
Figure FDA0003794521330000013
for rated line voltage, X, of the grid system T The leakage reactance of the earth fault current full compensation system is reduced to one side of a neutral point of the power grid system;
according to the rated reactance value X of the current-limiting protection reactor L And the rated durationCurrent I E Calculating the rated capacity S of the current-limiting protection reactor L The method comprises the following steps:
calculating rated capacity S of the current-limiting protection reactor by the following formula L
S L =X L I E 2
So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L When the power grid system has a ground fault and the ground fault current full compensation system judges the ground fault phase incorrectly, limiting the ground fault current in the ground fault phase to be below a preset threshold value, wherein the preset threshold value is the maximum current value which can be borne by the power grid system;
wherein the capacitance current I is determined according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure FDA0003794521330000014
Figure FDA0003794521330000015
k is a current limiting coefficient and ranges from 2 to 6, k T And the rated transformation ratio of the voltage regulating transformer in the earth fault current full compensation system is obtained.
2. The method of claim 1, wherein the earth fault current full compensation system comprises a line-to-phase converter 1, a current limiting protection reactor 2, a split phase switch bank 3, a regulating transformer 4 and a controller 5;
the line phase converter 1 comprises a phase power supply generator 11 and a phase power supply phase compensator 12 which are connected with each other, wherein the phase power supply generator 11 is connected with each phase transmission line in three-phase transmission lines of the power grid system, the phase power supply phase compensator 12 is connected with each phase-splitting switch in three phase-splitting switches contained in the phase-splitting switch group 3, the controller 5 is connected with the regulating transformer 4, the controller 5 is connected with the phase-splitting switch group 3, and the load side of the regulating transformer 4 is connected with a neutral point of the power grid system;
the first end of the current-limiting protection reactor 2 is connected with the power supply side of the regulating transformer 4, the second end of the current-limiting protection reactor 2 is connected with each split-phase switch in three split-phase switches included in the split-phase switch group 3, and the phase power supply phase compensator 12 is grounded; or, the first end of the current-limiting protection reactor 2 is grounded, the second end of the current-limiting protection reactor 2 is connected to the phase power supply phase compensator 12, and the power supply side of the regulating transformer 4 is connected to each of the three split-phase switches included in the split-phase switch group 3.
3. The method according to claim 2, characterized in that in a case where a first end of the current-limiting protection reactor 2 is connected to the power supply side of the regulating transformer 4 and a second end of the current-limiting protection reactor 2 is connected to each of three split phase switches included in the split phase switch group 3, the insulation level of the first end of the current-limiting protection reactor 2 and the insulation level of the second end of the current-limiting protection reactor 2 coincide with the insulation level of the power supply side of the regulating transformer 4.
4. The method according to claim 3, characterized in that in the case where the first end of the current-limiting protection reactor 2 is grounded and the second end of the current-limiting protection reactor 2 is connected to the phase power supply phase compensator 12, the range of the insulation level of the first end of the current-limiting protection reactor 2 is the range of the insulation level of the power supply side of the regulating transformer 4
Figure FDA0003794521330000021
The insulation level of the second end of the current-limiting protection reactor 2 and the regulating transformer4, the insulation levels on the power supply side are uniform.
5. A current limiting protection device for a ground fault full compensation system, comprising:
an acquisition module for acquiring the capacitance current I of the power grid system c
A first calculation module for calculating the capacitance current I according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor base
A second calculation module for calculating the rated thermal short-circuit current I base By the formula
Figure FDA0003794521330000022
Calculating rated continuous current I of the current-limiting protection reactor E Wherein k is d The value range is 5-10 for the capacity reduction coefficient;
a third calculation module for calculating the rated thermal short-circuit current I base By the formula
Figure FDA0003794521330000023
Calculating the rated reactance value X of the current-limiting protection reactor L Wherein, in the step (A),
Figure FDA0003794521330000024
for rated line voltage, X, of the grid system T The leakage reactance of the earth fault current full compensation system on one side of the neutral point of the power grid system is reduced;
a fourth calculation module for calculating the rated reactance value X of the current-limiting protection reactor L And the rated continuous current I E By the formula S L =X L I E 2 Calculating the rated capacity S of the current-limiting protection reactor L So that the rated reactance value contained in the earth fault current full compensation system is X L Rated capacity of S L The current limiting reactor is used for ensuring that the power grid system has earth fault and the earth fault current is fully compensatedLimiting the earth fault current in the earth fault phase below a preset threshold value under the condition that the earth fault phase is judged incorrectly by a compensation system, wherein the preset threshold value is the maximum current value which can be borne by the power grid system;
wherein the capacitance current I is determined according to the power grid system c Calculating the rated thermal short-circuit current I of the current-limiting reactor according to the following formula base
Figure FDA0003794521330000025
Figure FDA0003794521330000026
k is a current limiting coefficient and ranges from 2 to 6, k T And the rated transformation ratio of the voltage regulating transformer in the earth fault current full compensation system is obtained.
CN202011017379.9A 2020-09-24 2020-09-24 Current-limiting protection method and device of ground fault full-compensation system Active CN112054498B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202011017379.9A CN112054498B (en) 2020-09-24 2020-09-24 Current-limiting protection method and device of ground fault full-compensation system

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202011017379.9A CN112054498B (en) 2020-09-24 2020-09-24 Current-limiting protection method and device of ground fault full-compensation system

Publications (2)

Publication Number Publication Date
CN112054498A CN112054498A (en) 2020-12-08
CN112054498B true CN112054498B (en) 2022-09-27

Family

ID=73603988

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202011017379.9A Active CN112054498B (en) 2020-09-24 2020-09-24 Current-limiting protection method and device of ground fault full-compensation system

Country Status (1)

Country Link
CN (1) CN112054498B (en)

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN202076788U (en) * 2011-05-23 2011-12-14 上海理工大学 Parallel-type multi-target short-circuit fault current limiter
CN105449660A (en) * 2015-10-12 2016-03-30 国家电网公司 Parallel type automatic compensation apparatus for arc-suppression coil
CN111293700A (en) * 2020-02-06 2020-06-16 云南电网有限责任公司电力科学研究院 Compensation adjustment method for self-generated power supply ground fault compensation system

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
UA102476C2 (en) * 2012-05-03 2013-07-10 Борис Юрьевич Иванилов Device for full compensation of first single-phase short-circuit current harmonic
CN106208106B (en) * 2016-08-31 2018-10-16 丹东德元电力电器有限公司 A kind of paralleling compensating device based on compensation/current-limiting reactor
SE541989C2 (en) * 2017-05-24 2020-01-14 Swedish Neutral Holding Ab Device and method for earth fault compensation in power grids
CN107147096B (en) * 2017-07-06 2018-07-03 长沙理工大学 Non-effectively earthed system earth fault is mutually actively depressured security processing
CN110729737B (en) * 2019-10-18 2023-09-15 云南电网有限责任公司电力科学研究院 Self-generating power supply ground fault compensation system and fault disappearance judging method
CN111082409B (en) * 2020-01-22 2021-04-27 福州大学 Master-slave arc extinction system for single-phase earth fault of power distribution network
CN111509691B (en) * 2020-05-11 2022-09-02 云南电网有限责任公司电力科学研究院 Ground fault full-compensation topology for multiplexing reactive compensation and design method thereof

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN202076788U (en) * 2011-05-23 2011-12-14 上海理工大学 Parallel-type multi-target short-circuit fault current limiter
CN105449660A (en) * 2015-10-12 2016-03-30 国家电网公司 Parallel type automatic compensation apparatus for arc-suppression coil
CN111293700A (en) * 2020-02-06 2020-06-16 云南电网有限责任公司电力科学研究院 Compensation adjustment method for self-generated power supply ground fault compensation system

Also Published As

Publication number Publication date
CN112054498A (en) 2020-12-08

Similar Documents

Publication Publication Date Title
US10892616B2 (en) Safe processing method for active voltage reduction of ground fault phase of non-effective ground system
EP2483982A1 (en) Method of high impedance groundfault detection for differential protection of overhead transmission lines
CN111262251B (en) Analysis method for voltage drop of full compensation system
CN111969575B (en) Arc extinction method, device and equipment for single-phase earth fault of power distribution network and storage medium
CN111193251B (en) Analysis method for voltage sag of full-compensation system
CN111509691B (en) Ground fault full-compensation topology for multiplexing reactive compensation and design method thereof
CN113270860A (en) Single-phase earth fault arc extinction device of power distribution network
Bahari et al. A new stabilizing method of differential protection against current transformer saturation using current derivatives
CN112968423B (en) Overcurrent protection method for protecting turn-to-turn short circuit fault of low-voltage winding of grounding transformer
CN112054498B (en) Current-limiting protection method and device of ground fault full-compensation system
CN112165079B (en) Method and device for designing current-limiting reactor of ground fault full-compensation system
CN109813997B (en) Controllable current source grounding current full-compensation output current calculation method and system
CN111106609B (en) Self-generated power supply phase voltage drop calculation method
CN110556800B (en) Control method, device, equipment and medium for safe operation of power grid
CN111934302A (en) System and method for restraining single-phase fault short-circuit current applied to flexible direct-current power transmission system
CN105186465A (en) Line negative-sequence current phase-splitting differential protection method resisting transition resistance influence
Varetsky et al. Study of transient overvoltages on CSI adjustable speed drives under arcing SLGF in the industrial cable grid
CN112054494B (en) Protection and setting method for earth fault current full-compensation system
Du et al. Power Based Open Phase Condition Detection Scheme
Han et al. Study on the application of neutral point reactor on UHV transformer to suppress short-circuit current
Liu et al. Open-circuit fault in EHV/UHV transmission system and new zero sequence over-current protection scheme
Zhao et al. Research and Application on the Neutral Grounding Mode in Tianjin Distribution Network
Mashar et al. Design of Generator Stator Protection 100% Using Overvoltage and Undervoltage Schemes
CN112054532A (en) Design method and device of grounding compensation transformer of full compensation system
Meng et al. Design of Improving Bus Short Circuit Residual Voltage Based on Reactive Power Regulation of Synchronous Motor

Legal Events

Date Code Title Description
PB01 Publication
PB01 Publication
SE01 Entry into force of request for substantive examination
SE01 Entry into force of request for substantive examination
GR01 Patent grant
GR01 Patent grant