JP2009038912A - Method and apparatus for ground fault detection - Google Patents

Method and apparatus for ground fault detection Download PDF

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JP2009038912A
JP2009038912A JP2007201847A JP2007201847A JP2009038912A JP 2009038912 A JP2009038912 A JP 2009038912A JP 2007201847 A JP2007201847 A JP 2007201847A JP 2007201847 A JP2007201847 A JP 2007201847A JP 2009038912 A JP2009038912 A JP 2009038912A
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ground fault
ground
zero
resistance
line
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Satoru Fukiage
哲 吹上
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Toshiba Mitsubishi Electric Industrial Systems Corp
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Abstract

<P>PROBLEM TO BE SOLVED: To provide a method and an apparatus for ground fault detection wherein in three-phase, three-wire non-grounded or resistance-grounding power distribution equipment, the level of a ground fault that has occurred is known without the advance measurement of cable charging current and the relevant circuit is separated with high sensitivity before a complete ground fault results. <P>SOLUTION: The method and the apparatus are for detecting ground faults in three-phase, three-wire power distribution equipment whose ground system is of non-grounding or resistance grounding. A zero-phase voltage detection relay 8 for detecting the ground-fault voltage of an entire power distribution system and ground-fault direction relays 6, 6a, ..., 6n for detecting ground faults in individual circuits 3, 3a, ..., 3n are connected together by transmitting means 7, 7a, ..., 7n. A ground-fault resistance that will occur at a ground fault point and is to be detected is set. When the ground-fault resistance of the point of a ground fault that occurs in the power distribution system is smaller than the above set value, the circuit in which the fault has occurred is separated from the system. <P>COPYRIGHT: (C)2009,JPO&INPIT

Description

この発明は、接地系統が非接地または抵抗接地の三相3線式配電設備における地絡事故を検出する地絡事故検出方法及びその装置に関するものである。   The present invention relates to a ground fault detection method and apparatus for detecting a ground fault in a three-phase three-wire power distribution facility whose grounding system is ungrounded or resistance grounded.

従来の非接地または抵抗接地系統の地絡事故検出装置においては、地絡事故時に発生する零相電圧および零相電流を地絡方向リレーに取り込み、零相電圧と零相電流の両方の値が設定値以上であれば地絡方向リレーが動作し、地絡事故が発生している回線の遮断器をトリップさせて地絡事故点を系統から切り離している(例えば、特許文献1参照)。   In the conventional ground fault detection device of ungrounded or resistance grounding system, zero phase voltage and zero phase current generated at the time of ground fault are taken into the ground fault direction relay, and both the zero phase voltage and zero phase current values are If it is equal to or greater than the set value, the ground fault direction relay operates and trips the circuit breaker of the line where the ground fault has occurred, thereby disconnecting the ground fault point from the system (see, for example, Patent Document 1).

特開2002−118954号公報(要約の欄、図1)JP 2002-118954 A (summary column, FIG. 1)

上記のように、従来の地絡事故検出装置は地絡事故が発生した時の零相電圧と零相電流を地絡方向リレーに入力して、零相電圧と零相電流の両方の値が設定値以上となったときに動作するようになっているので、非接地または抵抗接地の三相3線式配電設備で一線完全接地時の地絡電流が大きい配電系統では、零相電圧が低く抑えられて高感度に地絡事故を検出できない問題点があった。   As described above, the conventional ground fault detection device inputs the zero phase voltage and the zero phase current when the ground fault occurs to the ground fault direction relay, and the values of both the zero phase voltage and the zero phase current are Since it is designed to operate when it exceeds the set value, the zero-phase voltage is low in a distribution system with a large ground fault current when one line is completely grounded in a three-phase three-wire distribution facility that is ungrounded or resistively grounded. There was a problem that ground faults could not be detected with high sensitivity.

また、地絡事故検出装置が地絡抵抗を検出できれば、どの程度絶縁耐力が落ちて地絡が進行しているかを判断して地絡事故検出装置を動作させることが可能となるが、上記従来の地絡事故検出装置は事故により発生する零相電圧や零相電流を検出するため、地絡事故の進行度合いを間接的にしか把握できない問題点があった。   Further, if the ground fault detection device can detect the ground fault resistance, it is possible to determine how much the dielectric strength has dropped and the ground fault has progressed, and to operate the ground fault detection device. Since the ground fault detection device of No. 1 detects the zero-phase voltage and the zero-phase current generated by the accident, there is a problem that the progress degree of the ground fault can be grasped only indirectly.

更に、地絡事故を高精度に検出しようとする場合には、事前に全てのケーブル充電電流を計測して地絡事故検出装置の整定を行なっていた。   Furthermore, in the case of detecting a ground fault with high accuracy, all cable charging currents are measured in advance to set the ground fault detection device.

この発明は上記のような課題を解決するためになされたものであり、非接地または抵抗接地の三相3線式配電設備において、事前のケーブル充電電流の計測無しに、発生している地絡事故のレベルを把握して完全地絡に至る前に高感度に該当回線を切り離す地絡事故検出方法及びその装置を提供するものである。   The present invention has been made to solve the above-described problems. In a three-phase three-wire power distribution facility of non-grounding or resistance grounding, a ground fault that has occurred without measuring the cable charging current in advance. It is an object of the present invention to provide a ground fault detection method and apparatus for grasping the level of an accident and disconnecting the corresponding line with high sensitivity before reaching a complete ground fault.

この発明にかかる地絡事故検出方法は、接地系統が非接地または抵抗接地の三相3線式配電設備における地絡事故を検出する地絡事故検出方法において、配電系統全体の地絡電圧を検出する零相電圧検出リレーと各回線毎の地絡事故を検出する地絡方向リレーとを伝送手段で接続し、地絡事故点に発生する検出したい地絡抵抗を設定し、配電系統で発生する地絡事故点の地絡抵抗が上記設定値より小さいときに事故が発生している回線を系統から切り離すことを特徴とするものである。   The ground fault detection method according to the present invention is a ground fault detection method for detecting a ground fault in a three-phase three-wire power distribution facility whose grounding system is ungrounded or resistance grounded. A zero-phase voltage detection relay that connects to a ground fault direction relay that detects a ground fault for each line by transmission means, sets the ground fault resistance to be detected at the point of the ground fault, and occurs in the power distribution system When the ground fault resistance at the ground fault point is smaller than the set value, the line in which the fault has occurred is disconnected from the system.

また、この発明にかかる地絡事故検出装置は、接地系統が非接地または抵抗接地の三相3線式配電設備における地絡事故を検出する地絡事故検出装置において、配電系統全体の地絡電圧を検出する零相電圧検出リレーと、各回線毎の地絡事故を検出する地絡方向リレーと、上記零相電圧検出リレーと上記地絡方向リレーとを接続する伝送手段と、を備え、 上記零相電圧検出リレーは、地絡事故時に発生する零相電圧と上記各地絡方向リレーからの零相電流から地絡抵抗を算出する演算部と、上記演算部により算出される地絡抵抗が設定値より小さくになった場合に信号を出力する地絡抵抗検出部と、上記地絡抵抗検出部の出力信号により地絡回線の遮断指令を出力する回線遮断指令部と、を有するものである。   The ground fault detection device according to the present invention is a ground fault detection device for detecting a ground fault in a three-phase three-wire distribution facility in which the ground system is ungrounded or resistance grounded. A zero-phase voltage detection relay for detecting a ground fault, a ground fault direction relay for detecting a ground fault for each line, and a transmission means for connecting the zero phase voltage detection relay and the ground fault direction relay, The zero-phase voltage detection relay has a calculation unit that calculates the ground fault resistance from the zero-phase voltage generated in the event of a ground fault and the zero-phase current from the above-mentioned local fault direction relay, and the ground fault resistance calculated by the calculation unit is set A ground fault resistance detection unit that outputs a signal when the value is smaller than the value; and a line cutoff command unit that outputs a ground fault line cutoff command by an output signal of the ground fault resistance detection unit.

この発明によれば、地絡事故時の地絡電流が大きい配電設備の地絡事故点で発生している地絡抵抗を算出して地絡事故を検出し、地絡抵抗が所望の値に達すると動作することにより、事前のケーブル充電電流の計測無しに、発生している地絡事故のレベルを把握して完全地絡に至る前に高感度に該当回線を切り離すことができる。   According to the present invention, the ground fault is detected by calculating the ground fault occurring at the ground fault point of the distribution facility having a large ground fault current at the time of the ground fault, and the ground fault resistance is set to a desired value. By operating when it reaches, it is possible to grasp the level of the ground fault that has occurred without measuring the cable charging current in advance and to disconnect the corresponding line with high sensitivity before reaching the complete ground fault.

以下に添付図面を参照して、この発明にかかる地絡事故検出方法及びその装置の好適な実施の形態を詳細に説明する。   Exemplary embodiments of a ground fault detection method and apparatus according to the present invention will be described below in detail with reference to the accompanying drawings.

実施の形態1.
図1はこの発明にかかる地絡事故検出方法を実施する地絡事故検出装置の実施の形態1を示す系統構成図で、三相の主変圧器1の二次側に第1の遮断器2を介してケーブルで構成される第1回線3、第2回線3a、・・・第n回線3nが接続されている。第1回線3、第2回線3a、・・・第n回線3nのそれぞれには、第2の遮断器4、4a、・・・4nが接続されている。また、第1回線3、第2回線3a、・・・第n回線3nのそれぞれには、第2の遮断器4、4a、・・・4nと直列に零相変流器5、5a、・・・5nが設けられている。そして、零相変流器5、5a、・・・5nには、地絡方向リレー6、6a、・・・6nが接続されており、この地絡方向リレー6、6a、・・・6nは、光ファバーなどの伝送手段7、7a、・・・7nにより零相電圧検出リレー8と接続されている。なお、地絡方向リレー6、6a、・・・6nは、事故時に発生する零相電流とその位相を検出するが、その検出方法については、例えば、前述の特許文献1として挙げた特開2002−118954号公報にも開示されており、詳細説明は省略する。
Embodiment 1 FIG.
FIG. 1 is a system configuration diagram showing a first embodiment of a ground fault detection apparatus for carrying out a ground fault detection method according to the present invention, and a first circuit breaker 2 on the secondary side of a three-phase main transformer 1. A first line 3, a second line 3 a,... N-th line 3 n configured by cables are connected to each other. A second circuit breaker 4, 4a,... 4n is connected to each of the first line 3, the second line 3a,. In addition, each of the first line 3, the second line 3a,..., The n-th line 3n includes a zero-phase current transformer 5, 5a, in series with the second circuit breakers 4, 4a,. .. 5n is provided. The ground fault direction relays 6, 6a, ... 6n are connected to the zero-phase current transformers 5, 5a, ... 5n, and the ground fault direction relays 6, 6a, ... 6n are , 7n are connected to the zero-phase voltage detection relay 8 by transmission means 7, 7a,. The ground fault direction relays 6, 6 a,... 6 n detect the zero-phase current generated at the time of the accident and the phase thereof. -118954, which is also disclosed in detail, and detailed description thereof is omitted.

零相電圧検出リレー8は、後述するように、内部に演算機能を有しており、伝送手段7、7a、・・・7nにより、地絡方向リレー6、6a、・・・6nと接続され、地絡事故発生時に第1回線3、第2回線3a、・・・第n回線3nのそれぞれの零相変流器5、5a、・・・5nを通過する零相電流の値、及び向きのデータを伝送手段7、7a、・・・7nを通じて零相電圧検出リレー8へ送信する。   As will be described later, the zero-phase voltage detection relay 8 has an internal calculation function and is connected to the ground fault direction relays 6, 6a,... 6n by the transmission means 7, 7a,. , The value of the zero-phase current passing through the zero-phase current transformers 5, 5a,..., 5n of the first line 3, the second line 3a,. Are transmitted to the zero-phase voltage detection relay 8 through the transmission means 7, 7a,.

接地形計器用変圧器(以下、EVTと略す。)9の3つの1次巻線9aはY結線され、その中性接続点は接地されるとともに、他端はそれぞれ第1の遮断器2を介して主変圧器1の二次側に接続されている。また、EVT9の3つの3次巻線9bはブロークンΔ結線され、その開放された巻線間には制限抵抗器10が接続されている。そして、制限抵抗器10の両端は、零相電圧検出リレー8に接続されるとともに、地絡方向リレー6、6a、・・・6nに接続されている。なお、符号11、11a、・・・11nは、第1回線3、第2回線3a、・・・第n回線3nのそれぞれの対地静電容量を示している。   Three primary windings 9a of a grounded instrument transformer (hereinafter abbreviated as EVT) 9 are Y-connected, their neutral connection points are grounded, and the other ends are connected to the first circuit breaker 2 respectively. To the secondary side of the main transformer 1. Further, the three tertiary windings 9b of the EVT 9 are broken Δ-connected, and a limiting resistor 10 is connected between the opened windings. The both ends of the limiting resistor 10 are connected to the zero-phase voltage detection relay 8 and to the ground fault direction relays 6, 6a,. In addition, the code | symbol 11, 11a, ... 11n has shown each earth | ground electrostatic capacitance of the 1st circuit | line 3, the 2nd circuit | line 3a, ... nth circuit | line 3n.

この発明にかかる地絡事故検出方法を実施する地絡事故検出装置の実施の形態1は上記のように構成されており、次に、その動作について図2を用いて説明する。図2は地絡事故発生時の零相電流の状況を示しており、先ず、その原理について説明する。   The first embodiment of the ground fault detection apparatus for executing the ground fault detection method according to the present invention is configured as described above. Next, the operation thereof will be described with reference to FIG. FIG. 2 shows the state of the zero-phase current when a ground fault occurs. First, the principle will be described.

事故回線に流れ込む電流は、EVT9の3次側に接続された制限抵抗器10や中性点接地抵抗器(図示せず)を流れた有効分と他の健全回線のケーブルからの無効分のベクトル和となる。また、他の健全回線のケーブルからの無効分は、第1回線3、第2回線3a、・・・第n回線3nのそれぞれの回線に接続された零相変流器5、5a、・・・5nを通過し、地絡方向リレー6、6a、・・・6nで検出した後、伝送手段7、7a、・・・7nにより零相電圧検出リレー8へ送られるデータの総和により求められる。そして、事故回線に流れ込む零相電流と健全回線に流れる零相電流は向きが逆であるため、各零相電流の位相と零相電圧の位相を比較することから向きを判別し、どの回線で事故が発生しているか判別することが可能である。   The current flowing into the accident line is a vector of the effective part flowing through the limiting resistor 10 and the neutral grounding resistor (not shown) connected to the tertiary side of the EVT 9 and the ineffective part from the cable of the other healthy line Become sum. In addition, the invalid portion from the cable of the other healthy line is the zero-phase current transformer 5, 5a connected to each of the first line 3, the second line 3a,. After passing through 5n and detected by the ground fault direction relays 6, 6a,... 6n, it is obtained by the sum of data sent to the zero-phase voltage detection relay 8 by the transmission means 7, 7a,. Since the direction of the zero-phase current flowing into the fault line and the zero-phase current flowing through the healthy line are opposite to each other, the direction is determined by comparing the phase of each zero-phase current and the phase of the zero-phase voltage. It is possible to determine whether an accident has occurred.

一線地絡事故時に発生する地絡抵抗Rg、及び地絡事故が発生している回線の零相変流器を流れる電流は次の(1)式で求められる。   The ground fault resistance Rg generated at the time of the one-line ground fault and the current flowing through the zero-phase current transformer of the line where the ground fault has occurred can be obtained by the following equation (1).

Figure 2009038912
Figure 2009038912

ただし、Rg;地絡抵抗[Ω]
E ;系統対地電位(健全時)[V](1次)
Ic ;三相一括系統充電電流[A](Ic=2×π×f×C×E×3)
Ron;1次換算等価接地抵抗値[Ω]
n ;EVTの巻線比
である。
However, Rg: Ground fault resistance [Ω]
E: System ground potential (when healthy) [V] (primary)
Ic: Three-phase batch system charging current [A] (Ic = 2 × π × f × C × E × 3)
Ron: Primary equivalent equivalent grounding resistance [Ω]
n: EVT turns ratio.

この中で系統対地電位(健全時)E、1次換算等価接地抵抗値Ron、及びEVTの巻線比nは事前に分かっている値であるが、三相一括系統充電電流Icは事前の計測を行なわないため不明である。しかし、地絡事故が発生した場合、各健全回線から事故点へ流れるケーブル充電電流は各回線に設置された零相変流器で検出できる。EVTの1次側を流れる電流は、EVTの接地線に接続した変流器により検出でき、また、事故回線に流れ込む事故電流は事故回線の零相変流器で検出できる。三相一括系統充電電流Icは各回線のケーブル充電電流の和であり、次の(2)式により算出される。
Ic=Ic1+Ic2+・・・+Icn ・・・(2)
Among these, grid ground potential (when healthy) E, primary equivalent equivalent ground resistance value Ron, and EVT winding ratio n are values known in advance, but three-phase batch system charging current Ic is measured in advance. It is unknown because it is not performed. However, when a ground fault occurs, the cable charging current flowing from each sound line to the point of failure can be detected by a zero-phase current transformer installed in each line. The current flowing through the primary side of the EVT can be detected by a current transformer connected to the ground line of the EVT, and the fault current flowing into the fault line can be detected by a zero-phase current transformer of the fault line. The three-phase collective system charging current Ic is the sum of the cable charging current of each line, and is calculated by the following equation (2).
Ic = Ic1 + Ic2 + ... + Icn (2)

例えば、第1回線で地絡事故が発生した場合、第1回線のケーブル充電電流Ic1は事故回線の零相変流器で検出できない。しかしながら、零相電圧が発生し難い設備では回線数が多く、全体の充電電流に占める1回線分の充電電流の割合は低くなり、実際に発生している地絡抵抗と計算で求められる地絡抵抗の差は小さくなり、特に問題はない。   For example, when a ground fault occurs on the first line, the cable charging current Ic1 on the first line cannot be detected by the zero-phase current transformer on the accident line. However, there are many lines in equipment where zero-phase voltage is unlikely to be generated, and the ratio of the charging current for one line to the total charging current is low. The difference in resistance is reduced and there is no particular problem.

次に、図2の第1回線3にて地絡事故が発生した場合の具体的動作について説明する。第1回線3のケーブル充電電流Ic1は事故点に流れ込み、対地を通って第1回線3のケーブルに帰還する。他の回線3a・・・3nのケーブル充電電流Ic2・・・Icnは、地絡事故が発生した第1回線3の事故点に向かって流れ、事故点から対地を通って各回線3a・・・3nへ帰還する。   Next, a specific operation when a ground fault occurs in the first line 3 of FIG. 2 will be described. The cable charging current Ic1 of the first line 3 flows into the accident point and returns to the cable of the first line 3 through the ground. Cable charging currents Ic2... Icn of the other lines 3a... 3n flow toward the accident point of the first line 3 where the ground fault occurred, and each line 3a. Return to 3n.

制限抵抗器10を流れる電流INは、第1回線3の事故点に向かって流れ、事故点から対地を通ってEVT9の1次側巻線9aの接地に帰還する。この時、第1回線3の零相変流器5は、第2回線3a、・・・第n回線3nからの充電電流の総和Ic’と制限抵抗器10を流れる電流INを検出する。   The current IN flowing through the limiting resistor 10 flows toward the fault point of the first line 3, and returns from the fault point to the ground of the primary winding 9a of the EVT 9 through the ground. At this time, the zero-phase current transformer 5 of the first line 3 detects the sum Ic ′ of the charging currents from the second line 3a,..., The nth line 3n and the current IN flowing through the limiting resistor 10.

次に、図3を用いて零相電圧検出リレー8の構成並びに動作について説明する。図3において、零相電圧検出リレー8は、制限抵抗器10の両端に接続され、零相電圧の基本波成分を取り出すフィルタ80、演算装置81、及び入力装置82を備えている。入力装置82により、制限抵抗器10、あるいは図示しない中性点接地抵抗器の抵抗値、EVT9の3次電圧、線間電圧、ケーブル充電電流、の各設定値が演算装置81に入力される。   Next, the configuration and operation of the zero-phase voltage detection relay 8 will be described with reference to FIG. In FIG. 3, the zero-phase voltage detection relay 8 includes a filter 80 that is connected to both ends of the limiting resistor 10 and extracts a fundamental wave component of the zero-phase voltage, an arithmetic device 81, and an input device 82. The input device 82 inputs the set values of the resistance value of the limiting resistor 10 or a neutral grounding resistor (not shown), the tertiary voltage of the EVT 9, the line voltage, and the cable charging current to the arithmetic device 81.

また、零相電圧検出リレー8には、演算装置81により演算されて出力される地絡抵抗Rgが、入力装置82により設定された地絡抵抗検出レベルの設定値より小さくなった場合に信号を出力する地絡抵抗検出部83と、地絡抵抗検出部83からの出力信号により該当回線の遮断指令を出力する回線遮断指令部84が設けられている。   The zero-phase voltage detection relay 8 receives a signal when the ground fault resistance Rg calculated and output by the calculation device 81 is smaller than the set value of the ground fault resistance detection level set by the input device 82. A ground fault resistance detection unit 83 for outputting and a line cutoff command unit 84 for outputting a cutoff command for the corresponding line by an output signal from the ground fault resistance detection unit 83 are provided.

零相電圧検出リレー8は上記のように構成されており、次のように動作する。第1回線3、第2回線3a、・・・第n回線3nのそれぞれに設けられた零相変流器5、5a、・・・5nが検出した零相電流のデータが、地絡方向リレー6、6a、・・・6nから光ファバーなどの伝送手段7、7a、・・・7nを介して零相電圧検出リレー8送られる。零相電圧検出リレー8の内部では各回線3、3a・・・3nの零相電流位相から地絡事故が発生している回線を特定し、更に零相電圧と零相電流から地絡抵抗を算出する。算出された抵抗値が検出目標設定値より低い場合、回線遮断指令部84が地絡事故が発生している回線の遮断器をトリップする指令を該当遮断器へ送出し、地絡事故点を系統から切り離す。   The zero-phase voltage detection relay 8 is configured as described above and operates as follows. The zero-phase current data detected by the zero-phase current transformers 5, 5a,... 5n provided in the first line 3, the second line 3a,. 6, 6a,... 6n are sent to zero phase voltage detection relay 8 via transmission means 7, 7a,. Within the zero-phase voltage detection relay 8, the line where the ground fault has occurred is identified from the zero-phase current phase of each line 3, 3a... 3n, and the ground fault resistance is further determined from the zero-phase voltage and the zero-phase current. calculate. When the calculated resistance value is lower than the detection target set value, the line break command unit 84 sends a command to trip the circuit breaker of the line where the ground fault has occurred to the corresponding circuit breaker, and the ground fault point is Disconnect from.

以上のように、実施の形態1にかかる地絡事故検出方法及びその装置によれば、零相電圧を検出するリレーが、各地絡方向リレーが検出する零相電流の値と位相を収集できるように構成し、健全な回線の零相電流の総和と事故回線に流れ込む零相電流の値を送られてくるデータおよび演算により求めることができるので、検出した零相電圧、事前に分かっている線間電圧、あるいは制限抵抗値から、発生している地絡抵抗を演算で求めることができる。さらに零相電流と零相電圧の位相から事故回線を判別し、地絡抵抗が所定の値を下回った場合該当回線へ遮断指令を送出することができる。従って、的確に地絡事故を検出し、地絡抵抗が所望の値に達すると動作することにより、事前のケーブル充電電流の計測無しに、発生している地絡事故のレベルを把握して完全地絡に至る前に高感度に該当回線を設備から切り離す地絡事故検出方法及びその装置が提供できる。   As described above, according to the ground fault detection method and apparatus according to the first embodiment, the relay that detects the zero-phase voltage can collect the value and phase of the zero-phase current that is detected by the local fault direction relay. It is possible to determine the sum of the zero-phase current of the sound line and the value of the zero-phase current flowing into the fault line by the sent data and calculation. The generated ground fault resistance can be obtained by calculation from the inter-voltage or the limiting resistance value. Further, the fault line is determined from the phase of the zero-phase current and the zero-phase voltage, and when the ground fault resistance falls below a predetermined value, a cutoff command can be sent to the corresponding line. Therefore, by detecting the ground fault accurately and operating when the ground fault resistance reaches the desired value, it is possible to grasp the level of the ground fault accident that has occurred without measuring the cable charging current in advance. It is possible to provide a ground fault detection method and apparatus for disconnecting a corresponding line from equipment with high sensitivity before a ground fault is reached.

この発明にかかる地絡事故検出方法及びその装置は、接地系統が非接地または抵抗接地の三相3線式配電設備における地絡事故を検出する地絡事故検出装置としての利用可能性が大きい。   The ground fault detection method and apparatus according to the present invention are highly applicable as a ground fault detection device for detecting a ground fault in a three-phase three-wire power distribution facility whose grounding system is ungrounded or resistance grounded.

この発明にかかる地絡事故検出方法を実施する地絡事故検出装置の実施の形態1を示す系統構成図である。BRIEF DESCRIPTION OF THE DRAWINGS It is a system | strain block diagram which shows Embodiment 1 of the ground fault detection apparatus which enforces the ground fault detection method concerning this invention. 地絡事故発生時の零相電流の状況を示す図である。It is a figure which shows the condition of the zero phase current at the time of a ground fault accident occurring. 零相電圧検出リレーの詳細を説明する構成図である。It is a block diagram explaining the detail of a zero phase voltage detection relay.

符号の説明Explanation of symbols

1 三相の主変圧器
2 第1の遮断器
3 回線
4 第2の遮断器
5 零相変流器
6 地絡方向リレー
7 光ファバーなどの伝送手段
8 零相電圧検出リレー
9 接地形計器用変圧器(EVT)
10 制限抵抗器
11 対地静電容量
80 フィルタ
81 演算装置
82 入力装置
83 地絡抵抗検出部
84 回線遮断指令部
IN 地絡事故時に制限抵抗によって流れる電流[A]
Io 地絡電流[A]
IZCT 地絡事故が発生した回線の零相変流器が検出する電流[A]
Ic 地絡事故点に流れ込むケーブル充電電流の総和[A]
Ic’ 地絡事故が発生した回線以外のケーブル充電電流[A]
DESCRIPTION OF SYMBOLS 1 Three-phase main transformer 2 1st circuit breaker 3 Line 4 2nd circuit breaker 5 Zero phase current transformer 6 Ground fault direction relay 7 Transmission means, such as optical fiber 8, Zero phase voltage detection relay 9 For grounding type instruments Transformer (EVT)
DESCRIPTION OF SYMBOLS 10 Limit resistor 11 Ground capacitance 80 Filter 81 Calculation apparatus 82 Input apparatus 83 Ground fault resistance detection part 84 Line interruption | blocking command part IN Current [A] which flows by a limit resistance at the time of a ground fault
Io Ground fault current [A]
IZCT Current detected by the zero-phase current transformer on the line where the ground fault occurred [A]
Ic Total cable charging current flowing into the ground fault point [A]
Ic 'Cable charging current other than the line where the ground fault occurred [A]

Claims (2)

接地系統が非接地または抵抗接地の三相3線式配電設備における地絡事故を検出する地絡事故検出方法において、
配電系統全体の地絡電圧を検出する零相電圧検出リレーと各回線毎の地絡事故を検出する地絡方向リレーとを伝送手段で接続し、地絡事故点に発生する検出したい地絡抵抗を設定し、配電系統で発生する地絡事故点の地絡抵抗が上記設定値より小さいときに事故が発生している回線を系統から切り離すことを特徴とする地絡事故検出方法。
In a ground fault detection method for detecting a ground fault in a three-phase three-wire power distribution facility whose grounding system is ungrounded or resistance grounded,
A zero-phase voltage detection relay that detects the ground fault voltage of the entire distribution system and a ground fault direction relay that detects a ground fault accident for each line are connected by transmission means, and the ground fault resistance that is detected at the point of the ground fault is detected. A ground fault detection method characterized in that when a ground fault resistance at a ground fault point occurring in a power distribution system is smaller than the set value, the line in which the fault has occurred is disconnected from the system.
接地系統が非接地または抵抗接地の三相3線式配電設備における地絡事故を検出する地絡事故検出装置において、
配電系統全体の地絡電圧を検出する零相電圧検出リレーと、
各回線毎の地絡事故を検出する地絡方向リレーと、
上記零相電圧検出リレーと上記地絡方向リレーとを接続する伝送手段と、
を備え、
上記零相電圧検出リレーは、地絡事故時に発生する零相電圧と上記各地絡方向リレーからの零相電流から地絡抵抗を算出する演算部と、
上記演算部により算出される地絡抵抗が設定値より小さくになった場合に信号を出力する地絡抵抗検出部と、
上記地絡抵抗検出部の出力信号により地絡回線の遮断指令を出力する回線遮断指令部と、を有することを特徴とする地絡事故検出装置。
In the ground fault detection device that detects a ground fault in a three-phase three-wire power distribution facility whose grounding system is ungrounded or resistance grounded,
A zero-phase voltage detection relay that detects the ground fault voltage of the entire distribution system;
A ground fault direction relay that detects ground faults for each line;
Transmission means for connecting the zero-phase voltage detection relay and the ground fault direction relay;
With
The zero-phase voltage detection relay is configured to calculate a ground fault resistance from a zero-phase voltage generated at the time of a ground fault and a zero-phase current from the local fault direction relay,
A ground fault resistance detection unit that outputs a signal when the ground fault resistance calculated by the calculation unit is smaller than a set value;
A ground fault detection device, comprising: a line cutoff command unit that outputs a ground fault line cutoff command according to an output signal of the ground fault resistance detection unit.
JP2007201847A 2007-08-02 2007-08-02 Method and apparatus for ground fault detection Pending JP2009038912A (en)

Priority Applications (1)

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Country Link
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2733498A2 (en) 2012-11-15 2014-05-21 Schneider Electric Industries SAS Method and device for detecting directional grounding fault based on three phase current variation
CN107966657A (en) * 2017-12-20 2018-04-27 云南电网有限责任公司昆明供电局 Relay checking instrument free of demolition and method of calibration based on arm chips

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2733498A2 (en) 2012-11-15 2014-05-21 Schneider Electric Industries SAS Method and device for detecting directional grounding fault based on three phase current variation
CN107966657A (en) * 2017-12-20 2018-04-27 云南电网有限责任公司昆明供电局 Relay checking instrument free of demolition and method of calibration based on arm chips
CN107966657B (en) * 2017-12-20 2023-11-24 云南电网有限责任公司昆明供电局 Non-dismantling relay calibrator based on arm chip and calibration method

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