CN1858954A - Method for realizing line differential protection based on long line equation - Google Patents

Method for realizing line differential protection based on long line equation Download PDF

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CN1858954A
CN1858954A CNA2006100838194A CN200610083819A CN1858954A CN 1858954 A CN1858954 A CN 1858954A CN A2006100838194 A CNA2006100838194 A CN A2006100838194A CN 200610083819 A CN200610083819 A CN 200610083819A CN 1858954 A CN1858954 A CN 1858954A
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centerdot
reference point
electric current
current
voltage
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CN100588066C (en
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徐振宇
贺家李
杜兆强
秦应力
刘建飞
孟岩
魏会利
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Beijing Sifang Automation Co Ltd
Tianjin University
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Beijing Sifang Automation Co Ltd
Tianjin University
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Abstract

This invention relates to a relay protection method in a power system and discloses a method for realizing circuit differential protection based on the long-line equation computation in a high voltage transmission circuit, which converts the voltage and current tested at the protection mounted place to those of a reference point K in the protection sphere by a method of vector computing long-line equation, in which, the voltage Um and the current Im of end m are voltage UKm and current IKm converted to point K, the current In is converted to point k as voltage Ukn and cutrrent Ikn, if there are parallel reactors, it's needed to deduct the current on it to get I'km and I'kn, then Ikm, Ikn or I'km applied at the reference point and the I'kn is computed in terms of multiple differential formula to judge if there is fault in the region.

Description

The method of the line differential protection of realizing based on long-line equation
Technical field
The present invention relates to field of power, relate more specifically to the method for relaying protection, relate to the algorithm of circuit differential current protection.
Background technology
Transmission line is the basic equipment of electric power system generating, conveying electricity etc., occupies important status in electric power system.During transmission line malfunction, then bigger if can not in time excise or mistake excision to the main system influence, cause grid disconnection easily, and major accident such as transformer overstep tripping.High-voltage line protection is undertaken the vital task of carrying electricity, is the important pivot of electric power system.Their costs are very expensive, damaged in case hinder for some reason, and the maintenance difficulty is big, the time is long, and the direct and consequential damage that national economy is caused is very huge.So just selectivity, rapidity, reliability, the sensitivity of high-voltage line protection device are had higher requirement.Based on the current differential protection of Kirchhoff's law,, be a kind of desirable protection philosophy for transmission line.Along with the development of Microcomputer Protection and mechanics of communication, current differential protection is widely used.
At present; the electric pressure of China's electrical network just develops to 1000kV from 750kV; traditional Principles of Relay Protection is to be based upon on the power frequency fault component basis; utilize lumped parameter to set up that model realizes; and in fact its distributed constant of ultra high voltage long distance transmission line is clearly; in failure process, can produce the influence of can not ignore to current differential protection by the capacitance current that distributed constant produced.Electric pressure is high more, circuit is long more, and this influence is big more.Extra high voltage line reduces the electric field strength and the corona loss of conductive line surfaces in order to improve the natural power that can transmit, and need to reduce the wave impedance of circuit, promptly reduces the inductance of circuit and increases electric capacity, therefore, makes that the capacitance current of ultra high voltage long transmission line is very big.Theoretical research shows; for 600km; the 1150kV UHV transmission line, its capacitance current reaches 76.35% of circuit natural power, so big capacitance current; must produce very big influence to the operating characteristics of ultra high voltage relaying protection; theory analysis as can be known, the various schemes of differential current protection at present comprise that condenser current compensation etc. all will be subjected to the influence of line distribution capacitance in the ultra high voltage long transmission line, can't meet the demands; therefore, can not indiscriminately imitate use.
At present, traditional differential current protection criterion algorithm is to adopt terminal voltage, end electric current directly to calculate.Computing formula is as follows:
To meet meaning described with the front for formula in the formula, increase to meet  and represent a, and b, c, promptly three-phase is done differential calculating respectively.
On superhigh pressure, ultra high voltage long transmission line, capacitance current is very big, has influenced the externally reliability the when fail safe during fault and internal fault of current differential protection greatly.With the lumped parameter is foundation, can not fundamentally solve the problem of capacitance current influence by the method for the braking criterion of lumped parameter compensation to capacitance current in the protection installation place.And,, might increase shunt reactor in the line for the compensated line capacitance current along with the increase of line length, this situation influences more serious to traditional differential protection based on the end electric current.The present invention is directed to present ultra high voltage, long transmission line and be badly in need of solving the influence of capacitance current to the differential protection criterion, proposed a kind of new algorithm, this algorithm can solve the influence of capacitance current to differential protection preferably.The result of the test surface, this algorithm can be eliminated the influence of capacitance current to differential protection preferably.New principle that this paper carries is good and bad insensitive to filtering algorithm.
Summary of the invention
For the ultra high voltage long transmission line; because the influence of line distribution capacitance electric current can not be ignored; therefore; traditional is foundation with the lumped parameter; do the algorithm of differential criterion considers can not meet the demands from sensitivity in the protection installation place; and be foundation with the lumped parameter, the algorithm at the circuit two ends based on the stable state condenser current compensation can unavoidably can prolong the operate time of protection in some cases under some failure condition.The present invention at first utilizes long-line equation that both end voltage, end electric current are converted reference point in the mode of phasor calculation; doing the differential current protection in reference point calculates; if reference point has shunt reactor; need cut the electric current on the shunt reactor earlier; be noted that two ends respectively deduct the electric current of half shunt reactor, do differential calculating again.As shown in Figure 1; if fault occurs in outside the protection range district, then owing to hold to hold to k from m and satisfy long-line equation, as can be known according to Kirchhoff's current law (KCL) to k with from n; in the differential amount of k point is zero, and the braking amount is 2 times of line currents (senses of current all be point to reference point with the protection installation place be forward).Protection can malfunction; during troubles inside the sample space; if fault occurs in n and holds between the k point; hold to the k point from m and to satisfy long-line equation; but hold to of the existence of k point from n owing to the fault point, discontented foot length line equation, but by theory analysis as can be known; at this moment, convert the operating criterion that actuating quantity that reference point k orders and braking amount satisfy differential protection by two ends protections installation place by long-line equation.
According to the present invention, a kind of method of calculating the line differential protection of realizing in the ultra-high-tension power transmission line of electric power system based on long-line equation is provided, this method comprises the steps:
In the at first selected route protection scope certain is reference point k a bit, if shunt reactor or serial compensation capacitance are arranged, the installation place of then selecting shunt reactor or serial compensation capacitance is reference point k;
Line protective devices obtain the electric current and voltage instantaneous value to the voltage current waveform sampling of instrument transformer:
Obtain the phasor form of each electric parameters by fourier algorithm:
To protect installation place survey voltage, electric current to convert reference point k by long-line equation, and, then remove shunt reactor earlier and get electric current if on the circuit shunt reactor is arranged in the mode of phasor calculation
Figure A20061008381900051
Figure A20061008381900052
Adopt electric current at reference point k
Figure A20061008381900053
Or
Figure A20061008381900054
Carry out differential calculating by multiple traditional differential equations, judge whether the generating region internal fault, formula is as follows for example:
I d > I h I d > k 1 I b 0 < I d < 3 I h I d > k 2 I b - I h I d &GreaterEqual; 3 I h
In the formula: I dRepresent differential amount: I d = | I &CenterDot; km + I &CenterDot; kn | Or I d = | I &CenterDot; km &prime; + I &CenterDot; kn &prime; | , I kBe the definite value of differential protection action, I bBe the braking amount, I b = | I &CenterDot; km - I &CenterDot; kn | Or I b = | I &CenterDot; km &prime; - I &CenterDot; kn &prime; | , , k 1, k 2Be restraint coefficient, three-phase current needs to calculate respectively.
Description of drawings
Fig. 1 is the line fault schematic diagram that is provided with reference point k.
Specific embodiments
At first utilize long-line equation will protect installation place (is example with the m end) voltage
Figure A200610083819000510
Electric current Convert reference point k in the mode of phasor calculation, with
Figure A200610083819000512
Expression, n end commutation reference point with Expression, if shunt reactor is arranged, need remove earlier behind the electric current of shunt reactor
Figure A200610083819000514
Do the required calculating of differential protection by routine formula (1) again.
I d > I h I d > k 1 I b 0 < I d < 3 I h I d > k 2 I b - I h I d &GreaterEqual; 3 I h - - - ( 1 )
In the formula: I dRepresent differential amount: I d = | I &CenterDot; km + I &CenterDot; kn | Or I d = | I &CenterDot; km &prime; + I &CenterDot; kn &prime; | , I hBe the definite value of differential protection action, I bBe the braking amount, I b = | I &CenterDot; km - I &CenterDot; kn | Or I b = | I &CenterDot; km &prime; - I &CenterDot; kn &prime; | , , k 1, k 2Be restraint coefficient, three-phase current needs to calculate respectively.
Be illustrated in figure 1 as the ultra-high-tension power transmission line that is provided with reference point k, for the circuit of shunt reactor is arranged between in the line, then reference point is chosen as the mounting points (k represents with symbol) of shunt reactor among the figure; If no shunt reactor, any k of the selection of reference point then, but protection installation place to the length of reference point can not surpass 400km, for differential protection, the selected reference point in two ends should be a point, and promptly to protect the installation place be line length to reference point apart from sum at two ends.Described method is as follows:
By long-line equation will protect install the place survey voltage (the m end with
Figure A20061008381900061
Representative, n end with Representative), electric current (m end with Representative, n end with
Figure A20061008381900064
Representative) convert reference point k (m end with
Figure A20061008381900065
Representative, n end with Representative) if shunt reactor is arranged, then removes shunt reactor earlier and get electric current Doing differential protection by formula (1) again calculates.
Because long-line equation itself considered distributed constant, therefore, do not need specially capacitance current to be compensated again, theory analysis and simulation result show that all the principle of carrying eliminated the influence that the line distribution capacitance electric current is protected differential current fully.
Symbol in below discussing uses as follows: current transformer (being called for short TA, as follows) and voltage transformer (being called for short TV, as follows).
At first protect according to the TA of protection installation place and the instantaneous value that TV records electric current and voltage.Secondly obtain the phasor form of each electric parameters by fourier algorithm, utilize following formula that the two ends electric current is converted reference point (is example with the m end), the n end is done same treatment by following formula.
U &CenterDot; km I &CenterDot; km = ch ( &gamma;l ) - Z c sh ( &gamma;l ) - sh ( &gamma;l ) / Z c ch ( &gamma;l ) U &CenterDot; m I &CenterDot; m
In the formula:
Figure A200610083819000610
By protection installation place (m end) the vector of survey voltage, electric current, Be voltage, the electric current of reference point k, if shunt reactor is arranged, then need deduct the electric current of shunt reactor again, two ends respectively deduct the electric current of half shunt reactor, and γ is the propagation constant of circuit, Z cBe the wave impedance of circuit, l is that m holds to the distance of reference point k, ch (), and sh () is respectively hyperbolic cosine and SIN function; The n end is done same processing.
Because this formula is set up on modulus, therefore, needing is the mould vector with the two ends protection three-phase voltage of surveying, current conversion at first, is changing by this formula.If reference point has shunt reactor, need deduct the shunt reactor electric current earlier Do differential differentiation again.
The consideration of choosing of ordering about k; the long-line equation current differential protection goes for the superhigh pressure of random length; UHV transmission line; if series compensation capacitance is arranged in the middle of the transmission line; shunt reactor is perhaps arranged; this moment, long-line equation was false at serial compensation capacitance or shunt reactor installation place; need reference point k is selected in serial compensation capacitance or shunt reactor place; under other situations; choosing that k is ordered is not subjected to any restriction; behind the selected k point, hold the point to k for m respectively, n holds to the k point and utilizes long-line equation calculating electric current; just can realize differential relaying algorithm easily; this algorithm is for the sampling interval of Microcomputer Protection, and the transmission time of optical-fibre channel does not all have very harsh requirement, and existing Microcomputer Protection all is easy to accomplish.

Claims (3)

1. the method for a line differential protection of calculate realizing based on long-line equation in the ultra-high-tension power transmission line of electric power system, this method comprises the steps:
In the at first selected route protection scope certain is reference point k a bit, and the selection of reference point is not more than 400km from the protection installation place, if on the circuit shunt reactor or serial compensation capacitance are arranged, the installation place of then selecting shunt reactor or serial compensation capacitance is reference point k;
Line protective devices obtain the electric current and voltage instantaneous value to the voltage current waveform sampling of instrument transformer;
Obtain the phasor form of each electric parameters by fourier algorithm;
To protect installation place survey voltage, electric current to convert reference point k by long-line equation, and, then remove shunt reactor earlier and get electric current if shunt reactor is arranged in the mode of phasor calculation
Adopt electric current at reference point k
Figure A2006100838190002C5
Or
Figure A2006100838190002C6
Figure A2006100838190002C7
Carry out differential calculating by multiple differential equations, judge whether the generating region internal fault, wherein:
I d > I h I d > k 1 I b 0 < I d < 3 I h I d > k 2 I b I d &GreaterEqual; 3 I h
In the formula: I dRepresent differential amount: I d = | I &CenterDot; km + I &CenterDot; kn | Or I d = | I &CenterDot; km &prime; + I &CenterDot; kn &prime; | , I hBe the definite value of differential protection action, I bBe the braking amount, I b = | I &CenterDot; km - I &CenterDot; kn | Or I b = | I &CenterDot; km &prime; - I &CenterDot; kn &prime; | , k 1, k 2Be restraint coefficient, three-phase current needs to calculate respectively.
2. method as claimed in claim 1 at first needs the two ends electric current is converted reference point, and deducts the electric current of shunt reactor, and wherein when reference point need subtract the shunt reactor electric current, two ends respectively subtracted half
3. method as claimed in claim 1 is wherein converted reference point with voltage that head end is surveyed, electric current, and formula is as follows:
U &CenterDot; km I &CenterDot; km = ch ( &gamma;l ) - Z c sh ( &gamma;l ) - sh ( &gamma;l ) / Z c ch ( &gamma;l ) U &CenterDot; m I &CenterDot; m
In the formula:
Figure A2006100838190002C16
By protection installation place (m end) the vector of survey voltage, electric current,
Figure A2006100838190002C17
Voltage, electric current for reference point k, if on the circuit shunt reactor is arranged, then need deduct the electric current of shunt reactor again, two ends respectively deduct the electric current of half shunt reactor, γ is the propagation constant of circuit, and Zc is the wave impedance of circuit, and l is that m holds to the distance of reference point k, ch (), sh () is respectively hyperbolic cosine and SIN function; The n end is done same processing.
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Cited By (11)

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WO2009152841A1 (en) * 2008-06-18 2009-12-23 Siemens Aktiengesellschaft Method and arrangement for generating an error signal
CN101847863B (en) * 2009-03-27 2012-07-04 湖北省电力试验研究院 Relay protection method for double-circuit transmission lines on same tower
CN103201923A (en) * 2010-11-09 2013-07-10 Abb研究有限公司 Synchronization method for current differential protection
CN103746335A (en) * 2013-12-23 2014-04-23 北京四方继保自动化股份有限公司 Amplitude comparison principle-based relay protection method
WO2014139382A1 (en) * 2013-03-13 2014-09-18 国家电网公司 Fault relay protection method for power transmission line based on double-end positive sequence fundamental frequency component
CN104965154A (en) * 2015-06-18 2015-10-07 广东电网有限责任公司电力调度控制中心 Wire fault positioning method and system
CN105514954A (en) * 2015-12-28 2016-04-20 中国电力科学研究院 Differential protection method suitable for half-wavelength power transmission line based on long line equation
CN105576623A (en) * 2016-01-29 2016-05-11 中国电力科学研究院 Time difference method based adaptive half wavelength line differential protection method
CN105655993A (en) * 2016-02-03 2016-06-08 中国电力科学研究院 Current differential protection method adopting Apollonius theorem
CN113794181A (en) * 2020-05-25 2021-12-14 西门子股份公司 Method and protective device for line protection
CN114400633A (en) * 2022-01-06 2022-04-26 北京四方继保工程技术有限公司 Method for realizing capacitance current compensation by current differential protection of T-connection circuit

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JP3532182B2 (en) * 2001-11-27 2004-05-31 財団法人 関西電気保安協会 Ground fault detection device for ungrounded electric circuit, ground fault protection relay using the same, and ground fault detection method
CN1297050C (en) * 2003-06-11 2007-01-24 贺家李 Power transmission line longitudinal linkage protective method
CN100499305C (en) * 2003-12-30 2009-06-10 许继电气股份有限公司 Quick speed varible-data window phasor solving method

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CN102067403A (en) * 2008-06-18 2011-05-18 西门子公司 Method and arrangement for generating an error signal
WO2009152841A1 (en) * 2008-06-18 2009-12-23 Siemens Aktiengesellschaft Method and arrangement for generating an error signal
CN102067403B (en) * 2008-06-18 2014-09-10 西门子公司 Method and arrangement for generating an error signal
CN101847863B (en) * 2009-03-27 2012-07-04 湖北省电力试验研究院 Relay protection method for double-circuit transmission lines on same tower
CN103201923B (en) * 2010-11-09 2015-08-19 Abb研究有限公司 Synchronization method for current differential protection
CN103201923A (en) * 2010-11-09 2013-07-10 Abb研究有限公司 Synchronization method for current differential protection
WO2014139382A1 (en) * 2013-03-13 2014-09-18 国家电网公司 Fault relay protection method for power transmission line based on double-end positive sequence fundamental frequency component
CN103746335B (en) * 2013-12-23 2017-03-29 北京四方继保自动化股份有限公司 Relay protecting method based on amplitude com parison principle
CN103746335A (en) * 2013-12-23 2014-04-23 北京四方继保自动化股份有限公司 Amplitude comparison principle-based relay protection method
CN104965154A (en) * 2015-06-18 2015-10-07 广东电网有限责任公司电力调度控制中心 Wire fault positioning method and system
CN105514954A (en) * 2015-12-28 2016-04-20 中国电力科学研究院 Differential protection method suitable for half-wavelength power transmission line based on long line equation
CN105514954B (en) * 2015-12-28 2019-03-22 中国电力科学研究院 The differential protecting method suitable for half-wave power transmission route based on long-line equation
CN105576623A (en) * 2016-01-29 2016-05-11 中国电力科学研究院 Time difference method based adaptive half wavelength line differential protection method
WO2017128631A1 (en) * 2016-01-29 2017-08-03 中国电力科学研究院 Current differential protection method for self-adaptive half-wavelength line based on time-difference method
CN105576623B (en) * 2016-01-29 2020-01-17 中国电力科学研究院 Self-adaptive half-wavelength line differential protection method based on time difference method
US10985547B2 (en) 2016-01-29 2021-04-20 China Electric Power Research Institute Company Limited Current differential protection method for self-adaptive half-wavelength line based on time-difference method
CN105655993A (en) * 2016-02-03 2016-06-08 中国电力科学研究院 Current differential protection method adopting Apollonius theorem
CN113794181A (en) * 2020-05-25 2021-12-14 西门子股份公司 Method and protective device for line protection
CN114400633A (en) * 2022-01-06 2022-04-26 北京四方继保工程技术有限公司 Method for realizing capacitance current compensation by current differential protection of T-connection circuit

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