WO1994001910A1 - High impedance fault detector - Google Patents
High impedance fault detector Download PDFInfo
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- WO1994001910A1 WO1994001910A1 PCT/AU1993/000342 AU9300342W WO9401910A1 WO 1994001910 A1 WO1994001910 A1 WO 1994001910A1 AU 9300342 W AU9300342 W AU 9300342W WO 9401910 A1 WO9401910 A1 WO 9401910A1
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- data acquisition
- frequency components
- pattern
- electrical
- acquisition period
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H1/00—Details of emergency protective circuit arrangements
- H02H1/0007—Details of emergency protective circuit arrangements concerning the detecting means
- H02H1/0015—Using arc detectors
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02H—EMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
- H02H1/00—Details of emergency protective circuit arrangements
- H02H1/0092—Details of emergency protective circuit arrangements concerning the data processing means, e.g. expert systems, neural networks
Definitions
- This invention relates to a method and means for detecting a high impedance fault or arcing phenomenon in an alternating current electrical distribution system.
- protection systems For the purpose of supplying uninterrupted power to consumers, protection systems must isolate any type of electrical fault which may occur in the electrical distribution system under various conditions.
- protective relay means have been developed to cope with most circumstances, and these systems are able to respond rapidly to sudden and sometimes violent changes in current and voltage caused by short circuits.
- the problem of high impedance faults presents a major concern since many relay systems are unable to respond quickly and accurately under such conditions.
- a high impedance fault is a type of electrical fault which commonly occurs in a distribution feeder when the fault current flows through an equivalent high impedance which is caused by an electric arc. Because high impedance faults are often associated with electric arcs they are sometimes called an "arcing fault".
- a typical single phase high impedance fault occurs when a plant such as a tree branch contacts a high voltage distribution power line, which often results in an are between the plant and the power line. From the point of view of a protective relay situated at the distribution point for the power line the arc between the plant and the power line will present a high impedance. Further, if the protective relay is not able to detect the fault the result may be quite catastrophic, for example resulting in a bush fire.
- Protective relay systems are often not able to detect such high impedance faults because fault currents are often far too small to be recognized by conventional relay systems. There are often no rapid nor ample changes in voltage or current waveforms when high impedance faults occur because the impedance from the power line to ground is quite high. It is common for low current, high impedance faults to occur on distribution feeders and other relatively low voltage power lines.
- a high impedance fault usually occurs when a distribution line conductor is contacted by a high impedance grounded object, such as a tree, or when a conductor breaks and falls onto a poorly conducting earth surface.
- harmonic content during a high impedance fault is dependent upon many parameters.
- the harmonic content during a fault can be effected by many physical and environmental variables such as feeder configuration, shape of fault point, the manner in which a fault performs, load type and level and the prevailing weather.
- Using a single detection parameter such a high frequency signal, a low frequency signal, or a third harmonic frequency signal has been shown to have difficulties in detecting high impedance faults under certain conditions.
- the present invention in summary, provides a method for detecting a high impedance fault or arcing phenomenon in an AC electrical distribution system having a fundamental frequency, comprising:
- the step of comparing said scaled magnitudes may comprise comparing the sum of said scaled magnitudes during said first data acquisition period with the sum of the scaled magnitudes during said preceding data acquisition period.
- the step of scaling the magnitude of a given predetermined frequency component may comprise determining and summing the number of sub- periods of a data acquisition period during which the given frequency component is greater than a selected value, and multiplying the resulting sum by a scaling factor corresponding to said given frequency component.
- the detection of the possibility of a high impedance fault is determined by a comparison of the scaled magnitudes during first, second and third sequential data acquisition periods.
- Preferably one of said predetermined frequency components is twice said fundamental frequency.
- said plurality of predetermined frequency components comprises eight voltage and/or current signals.
- the plurality of predetermined frequency components may include zero sequence current and voltage signals, and these zero sequence current and voltage signals may be utilised to detect solid ground faults, particularly in the case that the electrical feeder line comprises a three phase, four wire line.
- the method may also include a step of issuing a trip signal when the possibility of a high impedance fault is detected, to cause said at least one electrical feeder line to be isolated from the source of said AC electricity.
- a method for detecting an arcing phenomenon in an electrical distribution system comprising the steps of: monitoring n selected frequency components C n of the voltage and current at a point on the distribution system;
- the present invention also provides a method for detecting the possible existence of a high impedance fault in an electrical distribution system conveying AC electricity of a fundamental frequency, comprising:
- sampling the frequency components during at least one data acquisition period ; forming and storing a first pattern corresponding to the samples during said at least one data acquisition period;
- the template pattern may comprise a calculated threshold pattern or may comprise a pattern formed and stored from samples of said frequency components during a sequentially preceding data acquisition period. Where the template pattern comprises a previously sampled and stored pattern, a step may be provided of forming a second pattern from sampling the frequency components during a further data acquisition period, and comparing said template pattern with both said first and second patterns to determine the possible existence of a high impedance fault.
- a step of confirming the existence of a high impedance fault may also be included, comprising analysing a sequence of chronologically sampled data from at least one of said plurality of frequency components to determine whether the magnitudes of the at least one frequency component is modulated at twice said fundamental frequency.
- the present invention also provides a high impedance fault or arcing phenomenon detector for use in an electrical distribution system including at least one electrical feeder line for conveying AC electricity of a fundamental frequency, said detector comprising:
- monitoring means for monitoring electrical signals on said at least one electrical feeder line
- filtering means for isolating a plurality of predetermined frequency components from the monitored electrical signals
- weighting means for scaling the magnitudes of said plurality of predetermined frequency components according to selected scaling factors
- comparison means for comparing said scaled magnitudes from a first data acquisition period with the scaled magnitudes from a preceding data acquisition period
- detecting means for detecting the occurrence of a high impedance fault or arcing phenomenon on said electrical feeder line on the basis of said comparison.
- An electrical isolation switch is also provided by the present invention for use in an electrical distribution system including at least one electrical feeder line for conveying AC electricity of a fundamental frequency, comprising:
- monitoring means for monitoring electrical signals on said at least one electrical feeder line
- filtering means for isolating a plurality of predetermined frequency components from the monitored electrical signals
- weighting means for scaling the magnitudes of said plurality of predetermined frequency components according to selected scaling factors
- comparison means for comparing said scaled magnitudes from a first data acquisition period with the scaled magnitudes from a preceding data acquisition period
- detecting means to detect the possibility of a high impedance fault on said electrical feeder line on the basis of said comparison and to generate a trip signal if the possibility of a high impedance fault is so detected;
- switching means to electrically isolate said at least one electrical feeder line from the source of said AC electricity upon generation of said trip signal.
- the present invention also encompasses an electrical distribution system comprising:
- At least one electrical feeder line coupled to said source by way of switching means capable of electrically isolating said at least one electrical feeder line from said source upon receipt of a trip signal;
- monitoring means for monitoring electrical signals on said at least one electrical feeder line
- filtering means for isolating a plurality of predetermined frequency components from the monitored electrical signals
- weighting means for scaling the magnitudes of said plurality of predetermined frequency components according to selected scaling factors
- comparison means for comparing said scaled magnitudes from a first data acquisition period with the scaled magnitudes from a preceding data acquisition period, and to issue a said trip signal to said switching means if said comparison indicates the possibility of a high impedance fault on said at least one electrical feeder line.
- the scaled magnitudes of the plurality of predetermined frequency components during each data acquisition period are preferably summed, and the sums of said scaled magnitudes are compared by said comparison means.
- the apparatus provided by the present invention preferably includes a sample and hold device, a threshold device, and a summing means, whereby the scaling of the magnitude of a given predetermined frequency component may be conveniently achieved by determining and summing the number of times during a data acquisition period in which the sampled magnitude of the given frequency component exceeds a selected threshold, and multiplying the resulting sum by a scaling factor corresponding to said given frequency component.
- the summing and scaling of the predetermined frequency components may be conveniently carried out according to the following formula: Where: X is the weighted sum of the frequency components,
- n is the number of frequency components
- W i is the scaling factor for the frequency components
- m is the total number of samples during a data acquisition period
- S ij is the sample magnitude for the frequency components
- T i is the individual threshold for each frequency component.
- Figure 1 shows a diagrammatic representation of a typical high impedance arcing fault
- Figure 2 illustrates a characteristic of high impedance arcing faults
- FIG. 3 illustrates sensing circuits of the preferred embodiment of the present invention
- Figure 4 shows a block diagram of the apparatus of the preferred embodiment
- Figure 5 shows a more detailed block diagram of the circuitry of the preferred embodiment
- Figure 6 illustrates an example of a filtering circuit of the preferred embodiment
- Figure 7 illustrates sampling and digital conversion circuits
- Figure 8 illustrates a digital numeric processing arrangement for use in the preferred embodiment
- Figure 9 is a block diagram of output circuits of the preferred embodiment.
- Figures 10 and 11 illustrate the use of pattern recognition in the preferred embodiment;
- Figure 12 shows an example of sampled waveforms during an arcing fault
- Figure 13 is a simplified flow chart illustrating the process utilised by the preferred embodiment
- FIG. 14 is a more detailed flow chart of the process flow chart illustrated in
- FIG. 15a to 15f illustrate an exemplarily diagrammatic pattern comparison process for the fault situation illustrated in Figure 12.
- Figure 1 is a schematic diagram of a typical electrical distribution system 1 which may be affected by high impedance arcing faults.
- a source of AC electricity 2 is coupled through a transformer 4 and protection circuitry 3 to an electrical feeder line 6 which terminates at an electrical load 9.
- the feeder line 6 may typically be a three phase, three or four wire distribution feeder, or may comprise a single phase two or one wire line
- the feeder line 6 is so close to a grounded high impedance object, such as a tree 10, that at least one wire of the feeder line 6 may to come into contact with the tree 10.
- the shape of objects at the fault point is an important factor which affects harmonic content. If the fault point is sharp, it may result in point to point arcing, however if the shape is flat then arcing may result over a large surface area.
- Capacitor banks (not shown) which may be connected at one end of a feeder line can also affect the frequency signals detectable at the point of protection circuitry
- High frequency signals for example, can be shunted easily by capacitor banks, which present very low impedance to such high frequency signals. On the other hand, low frequency signals can pass capacitor banks much more easily. It has also been found that the frequency components which appear as a result of an arc appear only intermittently, modulated at twice the fundamental AC frequency. The cause for the intermittent nature of frequency components resulting from an electrical arc can be conveniently described with reference to Figure 2.
- the waveform 12 illustrated in Figure 2 shows a sinusoidal source voltage waveform which may be found in an electrical distribution system under normal operating conditions.
- the curve 14 shows the voltage waveform which occurs as a result of an arcing fault.
- arcing begins at points A1 and A2 near the voltage peaks of the sinusoidal waveform, and cease at points B1 and B2 respectively, when the voltage becomes too low to sustain the arc.
- Arcing occurs twice for every single electrical cycle, resulting in a characteristic harmonic frequency which is twice the fundamental frequency.
- the preferred embodiment of the present invention presents a system for detecting the presence of an arcing fault by utilising the electrical characteristics of such high impedance faults, namely the presence of a range of frequency components other than the fundamental frequency, and the intermittent nature of the presence of such frequency components during a high impedance fault.
- a group of frequency components for use by the preferred embodiment has been found in which the combination of detected components can realise a high accuracy of fault detection, in spite of the fact that each component when considered alone has drawbacks for detecting faults.
- the preferred embodiment determines the possibility of a high impedance arcing fault on the basis of eight signals, namely:
- V 0 zero - sequence (50Hz) voltage
- V 2 second harmonic (100Hz) voltage
- V 8 eight harmonic (400Hz) voltage
- V h high frequency (2KHz - 10KHz) voltage
- I 1 low frequency (120Hz - 130Hz) current
- I 8 eight harmonic (400Hz) current
- the selected signals are based on frequency components which have been found to show a significant increase when arcing faults occur under a wide range of different system conditions.
- Four voltage signals and four current signals are uses as the detection criteria in the preferred embodiment.
- Zero sequence voltage and zero sequence current signals have traditionally been used as parameters to detect unbalanced faults. It has been found that these signals are not sufficient alone for detecting arcing faults, but can add valuable information to assist the final detection of an arcing fault in a four wire feeder. In a well balanced power system, zero sequence voltage and current may increase when arcing faults occur. Additionally, zero sequence voltage and current may be used to detect the direction or position of a fault by comparing the angle between two phases.
- Low frequency signals ranging from 120Hz to 130Hz have also been found to be of significant importance in detecting arcing faults.
- the relative increase in the magnitude of signal frequencies in this range is large enough to be easily detected under arcing fault conditions, since these signal frequencies should be zero under normal operating conditions.
- Another advantage is that signals at these low frequencies will exhibit little attenuation from capacitor banks present in the distribution system.
- a third harmonic current component is useful and a detection criteria, particularly if the distribution loads are connected in delta configuration and for three wire distribution circuits.
- the third harmonic current can exist in relatively high amplitudes even under normal system operating conditions, it has been found that the increase of the amplitude during an arcing fault is sufficient to assist detection.
- Eighth harmonic voltage and current signals have also been found to increase remarkably during arcing faults.
- odd harmonics third, fifth and so on
- the relative amplitude increase of even harmonics, especially the eighth harmonic can be larger than the relative amplitude increase of many odd harmonics. This results in the eighth harmonic being one of the best indicators of arcing faults under all system conditions.
- High frequency current components includes all signals in the range of approximately 2kHz to about 10kHz which exists in the protected power system. It has long been known that high frequency current signals, particularly above 2kHz increases significantly under arcing conditions. A disadvantage of such high frequency signals is that they cannot generally propagate long distances (greater than about 20 miles), particularly through feeders provided with filtering capacitor banks.
- the eight selected frequency components each perform differently during an arcing fault, although in general all of them exist and increase during an arcing fault. Furthermore, some frequency components may increase more in a first power system condition, whilst others increase more in a second system condition. For example, in a distribution power line provided with filtering capacitor banks, the amplitude of the second harmonic signal may be detected to increase relatively higher than the high harmonic signals which get easily shunted to ground through the capacitor banks.
- the preferred embodiment therefore, employs scaling or weight factors for each signal, which may be altered depending upon the system conditions prevalent at the particular distribution feeder.
- the weight or scaling value for the second harmonic signal should be set higher than the weight value of the high frequency signals, since the second harmonic signal will increase relatively greater during an arcing fault.
- the ability to change weights for the individual signals allows the high impedance fault detector to be adjusted according to the distribution system upon which it is to be employed.
- the adjustable weighting values in the preferred embodiment also enables the fault detector to be easily readjusted after installation, to adjust for alterations in the distribution system, or to provide an opportunity to improve the accuracy of detection by learning from the results of previous arcing faults.
- FIG 3 illustrates a typical three wire three phase distribution feeder 18, and the preferred arrangements for monitoring the voltage and current frequency components utilised by the preferred fault detector.
- a voltage monitoring circuit 20 comprising a three phase capacitor voltage transformer 21 senses voltage signals V a , V b and V c
- a current monitoring circuit 22 comprising a three phase current transformer 22 senses current signals in the three phase wires.
- Figure 4 shows a block diagram of the preferred high impedance fault detector 34, which comprises five main components: input circuits 24, active filter system 26, digital processing circuitry 28, a micro processor control unit 30 and output circuits 32. The function of the fault detector 34 is to detect the presence of high impedance faults based on processing of received voltage and current input signals.
- signals are derived from the distribution feeder 18 by way of the voltage monitoring circuit 20 and current monitoring circuit 22, and are reduced to a level which is suitable for measurements.
- Frequency components are selected from the derived signals by individual filters of the active filter system 26, and are passed to the microprocessor control unit 30 after being sampled and digitally converted by the digital processing circuitry 28. Analysis of the input signals takes place in the microprocessor control unit 30, following a detection scheme which is explained in detail hereinafter. The results of the analysis is then utilised to operate a control system such as isolating relays by way of the output circuits 32.
- the input circuits 24 of the detector 34 receive the voltage and current signals sensed by the voltage monitoring circuits 20, 22, and act to reduce the voltage and current signals to levels which can be comfortably handled by low voltage circuitry.
- the level of reduction may be accomplished by any convenient method, and in the preferred embodiment comprises step down transformers (not shown) and resistors (not shown) for the voltage signals, and for the current signals comprises a step down transformer (not shown) and an op-amp (not shown) coupled to convert current signals to more convenient voltage signals.
- Figure 5 shows a more detailed block diagram of the fault detector 34, illustrating the components of the active filter system 26. Each signal component, except the zero sequence components which are at the fundamental frequency, are selected by individual filters 36.
- Figure 6 shows an example of a band pass filter 36 which is utilised in the preferred embodiment.
- the filter illustrated in Figure 6 is a fourth-order band-pass Chebyshev cascaded biquad filter, which exhibits excellent tuning features, and is capable of obtaining Q factors of up to 100 or more.
- the individually filtered frequency components are then put through an amplitude adjustment stage 38, before passing to the digital processing stage 28.
- the analog filters utilised in the described embodiment perform well, digital filters may alternatively be used if required.
- Figure 7 illustrates a block diagram of the digital processor 28 selected for the preferred embodiment, which is based on products ADC0808 or ADC0809 of the National Semiconductor Corporation.
- the eight analog frequency component signals from the active filters are inputted to an eight-to-one analog multiplexer 50 which is clocked by signals from the microprocessor controller 30.
- the signal output of the multiplexer 50 is passed to a sample-and-hold circuit 52, which samples the analog input signal and passes the sampled magnitude to an analog-to-digital conversion stage 54.
- the sampled analog signal magnitude is there converted to a digital number, which is passed to the microprocessor controller 30 for further processing and analysis.
- the microprocessor controller 30 is based upon a Motorola M6802 microprocessor 56 and a block diagram of the main components of the controller 30 is illustrated in Figure 8. Briefly, the microprocessor 56 is coupled to non-volatile memory 58 and read/write RAM memory 60, and also to a programmable input output port device 62. The digital processing and analysis procedures which are carried out on the digitised frequency component signal data by the microprocessor are stored as instructions in the non-volatile memory 58, whilst the RAM memory 60 is used for storing patterns indicative of the operational history of the distribution system.
- the programmable input output port 62 is used both to receive the digitised frequency component signals from the digital processor 28, and also to issue instructions to the output circuitry 32.
- instructions may be issued to the output circuitry 32.
- the function of the output circuitry 32 is to link the microprocessor control system 30 with the control system in the electrical distribution sub-station, such as isolating relays for isolating faults on the relevant distribution feeders.
- a block diagram of the output circuitry 32 is illustrated in Figure 9, which comprises decoding circuits 64, relay driver circuitry 66, and message indication circuits 70.
- the instructions from the microprocessor controller 30 are translated by the decoding circuits, which may provide messages to the operators of the distribution system by way of the message indication circuits 70 which may include indicator lights indicating normal or abnormal operation of the feeder line.
- the fault detector 34 When analysis of the input data indicates a high impedance arcing fault, the fault detector 34 is also able to trip the circuitry breaker or relay of the feeder by way of the relay driver circuits 66, in order to isolate the fault.
- the types of message indicators 72 which may be available include indications of: disturbance on the feeder; arcing disturbance on the feeder; high impedance fault; solid ground fault; and relay tripped.
- the detection methodology of the preferred embodiment relies to a large extent upon the data processing which takes place in the microprocessor controller 30.
- the eight signals, V 0 , V 2 , V 8 , V h , I 1 , I 3 , I 8 , and I 0 are sequentially selected using the eight channel multiplexer 50, following isolation by the active filter portion 26.
- the overall speed of the analog-to-digital conversion in the preferred embodiment is 10kHz, which equates to 1.25 kHz for each of the eight signals.
- a data acquisition period of 20 milliseconds is selected, which is equivalent to one period of the fundamental frequency (50Hz) of the power system. Therefore, after the digital conversion, the microprocessor receives 200 samples (25 samples for each signal) during a given data acquisition period.
- the data processing carried out in the microprocessor controller 30 follows a process of pattern forming, pattern recognition, and pattern analysis to detect a high impedance fault.
- This is illustrated in Figure 10, which shows data inputs 76 resulting in pattern formations 78, which leads to pattern recognition 80 and pattern analysis 82 to enable a final decision at stage 84.
- the pattern formation stage 78 comprises scaling the individual samples according to the weighting factor corresponding to the frequency component signal from which the samples have been taken, and arranging the scaled samples of each signal in a respective chronologic formation.
- the arranged scaled samples comprise a pattern, and the formed pattern may then be stored in memory, and information about the distribution feeder can be updated by updating the patterns stored in memory.
- Each pattern contains information about the feeder during the corresponding data acquisition period.
- FIG. 11 illustrates a block diagram of a pattern storage memory, accessible by a CPU 98, and containing four pattern storage areas 86, 88, 90 and 92, labelled pattern No. 1 to pattern No. 4.
- the pattern recognition stage 80 involves the comparison of patterns stored in one or more of storage sections 86 to 92 containing sequential patterns, to determine the extent of change of the frequency component signals over a period of time.
- the pattern analysis stage 82 of the detection methodology involves the analysis of each pattern by examining whether signals represented exist intermittently, which is indicative of arcing.
- the process of detection can be divided into several sub-processes, and a simplified flow chart 108 of the detection process is illustrated in Figure 13.
- the detection system keeps updating the information about the protected feeder, by comparing newly acquired data with the preceding data, as illustrated schematically in Figure 11.
- the detection scheme of the preferred embodiment will detect a disturbance first, and then with further processing determine whether the disturbance is a fault.
- the preferred detection system can also accurately detect solid ground faults, such as line to ground faults and double line to ground faults, which are more serious in terms of the severity of the fault currents and should be disconnected immediately.
- the term disturbance is chosen to describe an abnormal situation on a distribution feeder before the situation is confirmed as a fault. That is to say that a ground fault can be detected first as a disturbance, and then can be confirmed as either a solid ground fault or a high impedance fault.
- a key process in the detection of a disturbance by the preferred embodiment is to compare two patterns formed before and during the occurrence of a high impedance fault. Data is sequentially sampled in groups of 25 samples per signal, and formed in patterns. During detection, first and second patterns are sampled and formed in a sequence, and comparison of the second pattern with the first takes place. The result of this comparison or pattern recognition determines whether the system has been disturbed.
- a pattern threshold is used for measuring the difference between patterns. If the difference between the two patterns is larger than the pattern threshold, a disturbance is indicated since the change of patterns is too large. If the difference is small, then this indicates acceptable fluctuations in the normal operating condition of the feeder.
- the first of the patterns is then erased and the second pattern will take the position of the first pattern. Then a new pattern will be sampled and placed at the position previously occupied by the second pattern.
- the oldest stored pattern is referred to as pattern No. 1, with sequentially newer patterns stored as patterns Nos. 2 to 4. The same routine of comparison of pattern No. 1 with pattern No. 2 then again takes place.
- a disturbance can happen at any time in a pattern forming process while the microprocessor is sampling. If a disturbance occurs in the middle of pattern No. 2 as shown in Figure 12, the differences between pattern No. 2 and pattern No. 1 or pattern
- FIGS 15a to 15f illustrate diagrammatically an example of a pattern comparison process for the situation illustrated in Figure 12 where an arcing fault occurs during the data acquisition period of pattern No. 2.
- each pattern is formed from 4 frequency components (C 1 , C 2 , C 3 , andC 4 ) with the height of each component representing a measure of the magnitude of the corresponding electrical signal frequency component in the distribution system during the data acquisition period for the pattern.
- Figures 15a, 15b and 15c illustrate respective patterns formed during the data acquisition periods 100, 102 and 104 of Figure 12.
- Figure 15d illustrates a threshold pattern for the particular distribution system. The threshold pattern is set to indicate a system disturbance in the event that two measured patterns differ by an amount greater than the threshold pattern.
- Figure 15e illustrates the difference between patterns 2 and 1 as compared with the threshold pattern, which illustrates that no disturbance would be found in this measurement.
- Figure 15f illustrates the difference between pattern 3 and 1 as compared with the threshold pattern which illustrates that in this case a system disturbance is indicated.
- a suitable measure of the magnitude of the electrical signal frequency components involves tallying the number of samples of a frequency component which exceeds an individually set threshold for that frequency component, as described in greater detail hereinafter.
- the weighting or scaling factors need not necessarily be applied to the measured pattern components, since this scaling can be accounted for in setting the threshold pattern.
- Figure 12 is also examined by the microprocessor controller 30. This group of samples helps the microprocessor to make sure whether or not a disturbance has occurred. Therefore two pattern thresholds, a Low Pattern Threshold and a High
- Pattern Threshold are required, and three groups of samples are used for finding a disturbance. With reference to Figure 12, the High Pattern Threshold is used in comparing the difference between pattern No. 3 and pattern No. 1, and the Low Pattern Threshold is used in comparing the difference between pattern No. 2 and pattern No. 1.
- the use of two pattern thresholds results in higher precision and reliability for the detection scheme.
- the value for the Low Pattern Threshold can be set low enough so as to not miss a small disturbance which may occur during a high impedance fault.
- the value for the High Pattern Threshold can be set high enough to make sure proper reliability is achieved in not detecting non-fault related fluctuations. Very small disturbances which are not caused by a power system fault will not pass this stage.
- the High Pattern Threshold is used to check a disturbance detected, by the Low Pattern Threshold.
- Pattern No.3 illustrated in Figure 12 is sampled totally during a disturbance situation, which occurs during the time when pattern No. 2 is still in processing.
- the High Pattern Threshold which is used to measure the difference of Pattern No. 3 and Pattern No. 1 can be set relatively high and this high value is able to stop detection of very low levels and small duration noise value (less than one cycle). Therefore, the combination of the two thresholds give both high precision and reliability for this first step of detecting a disturbance.
- the first step may be considered as two parts.
- a small noise which can overcome the Low Pattern Threshold and cannot overcome the High Pattern Threshold is named an event, and a large noise which can overcome both thresholds, is called a disturbance.
- Event detection and disturbance detection are the two parts of the first step of detection utilised in the preferred embodiment.
- the second step of detection is the pattern analysis.
- the use of the analysis of the intermittent nature of an arc can improve the detection of an arc.
- the existence of an arc can be confirmed after the pattern has been analysed.
- the reason for this can be stated as follows. If the noise has been found as disturbance using multiple parameter detection and the arcing nature has been found using pattern analysis, the noise must have come from an arc. There is nothing but an arc that can create frequency component noise with the periodic characteristic where multiple frequency parameters are detected to be on and off under a certain frequency rate (100Hz), as is discussed above.
- a further difficulty encountered in detecting high impedance arcing faults is that an arc which is detected by the system is not always related to an arcing fault.
- the two steps of detection explained above confirm the existence of an arc in the protected feeder.
- the arc does not always occur as a result of a high impedance fault, since other non-detrimental conditions exist which lead to arc generation in power systems.
- operations in power systems such as switching on or off of circuit breakers can also provide arcs which are detectable in the distribution system. This means that a detected arc needs to be confirmed as resulting from a fault, and this constitutes the third step of the detection scheme.
- An arc in the power system is called an arcing disturbance before it is confirmed by the detection system.
- the method used to tell the difference between an arcing fault and an arcing disturbance is based on introducing a time delay.
- an arc caused by normal system operations lasts only a short time because modern circuit breakers in particular work very fast.
- an arc between two points in a circuit breaker may last less than 0.1 second.
- an arc from an arcing fault will last much longer than that.
- an arc on a high impedance object may last more than several seconds, even minutes before it develops into a hazard such as bush fire. There is no need for protection action if an arcing fault is able to quickly self-clear without circuit breaking intervention.
- a short time delay in the detection scheme can also be tolerated by power systems because of the low magnitudes of arcing high impedance fault currents. Arcing faults cause low level current, which does not ordinarily affect power system stability. Finally, the fault can be detected by the ground fault detection relays if the arcing current is high.
- the primary idea of confirming a high impedance fault is simple. By processing more samples and forming a new pattern after a time delay, the microprocessor can compare the updated pattern with pattern No. 1 which is the only one sampled before the fault. The previously discussed method of pattern recognition is used for the comparison, and pattern analysis is used to analyse the new pattern. The result of these comparisons can answer whether the arcing fault still exists on the feeder after the introduced time delay.
- the trip instruction may be issued if the answer is confirmed.
- the unstable nature of an arcing fault makes the confirmation process difficult. A large arcing current may change to small or even stop for several cycles because of the wind or the movement of arcing points. If samples are introduced at this time, the confirmation of the fault will fail. Of course, for the situation where the arc can stop by itself and remain off permanently, no tripping is the right choice. For the situation where the arc persists with an unstable burning nature a failure of confirmation should be avoided.
- Confirmation of a high impedance fault becomes complete when two new patterns can be formed and used to confirm the existence of an arcing fault. They will not take more time for the confirmation because the microprocessor has to wait during the time delay. So the whole time delay can be divided into two, at the end of the first half of the delay the system performs one confirmation operation, and another confirmation operation is performed after the whole time delay.
- a suitable total time delay is 2 seconds.
- Solid ground faults such as line to ground and double line to ground faults have relatively large fault currents compared to high impedance fault currents. They can be detected easily since zero sequence current Io will increase high enough to be easily detected. Solid ground faults can be detected relatively quickly. In order to achieve this, checking the occurrence of a solid ground fault has the highest priority in the detection scheme. In other words, in the microprocessor procedures the detection of occurrence of a solid ground fault is designated just after each new pattern is formed. A solid ground fault therefore can be detected quickly. To produce each pattern, the microprocessor needs 0.02 second. In a normal detection routine, the microprocessor samples continuously without a time delay except a very little time for performing the instructions. The time for performing the instructions takes a few millisecond which can be neglected compared to 0.02 seconds. Therefore a solid ground fault can be noticed by the microprocessor in about 0.02 seconds. The time for the system to trip depends on the detection scheme used.
- Solid ground faults which develop from arcing faults can also be detected easily.
- a fault starts with an arc which initially presents a high impedance fault and then it develops into a solid ground fault. By continuously checking the most up to date patterns, this kind of fault can be detected. This is an additional feature incorporated in the preferred embodiment high impedance fault detection scheme.
- the time to respond to a developing ground fault varies from 0.02 second onwards. If the development of a fault Has finished before me program starts the arcing fault confirmation routine, the fault will be detected in about 0.02 second. If the development finishes after that, the fault will be detected quicker, because during the confirmation routine the microprocessor has more time to handle this.
- the number of samples of a particular frequency component signal which exceed the given threshold during a data acquisition period may be utilised by the microprocessor controller 30 as a measure of the magnitude of that frequency component. If the number of samples of each signal exceeding the individual thresholds is then scaled by a weighting factor and combined with the weighted samples of the other frequency components then a single quantity is obtained which is characteristic of the weighted magnitudes of the examined frequency component signals. This single quantity may be easily compared with quantities obtained during other data acquisition periods to perform the pattern recognition function described above.
- the summing and scaling of the predetermined frequency components may be conveniently carried out according to the following formula:
- X is the weighted sum of the frequency components
- n is the number of frequency components
- Wi is the scaling factor for the frequency components m is the total number of samples during a data acquisition period S ij is the sample magnitude for the frequency components T i is the individual threshold for each frequency component.
- the detection methodology carried out by the microprocessor controller 30 begins at step 110, and at step 112 the frequency component signals are sampled over a data acquisition period. The data obtained may then be stored in memory either as individual weighted frequency component signals, or as a weighted sum of components as described above.
- a system disturbance is detected at step 114, either by comparison of the pattern data obtained at step 112 with pre-stored standard pattern data, or by comparison with pattern data obtained in the immediately preceding data acquisition period. If the magnitude of the zero sequence signals indicates a solid ground fault at step 116, then the procedure continues to step 118 where the solid ground fault may be confirmed and action taken to isolate the fault.
- step 120 pattern analysis is carried out on the data obtained at step 112 to confirm whether the system disturbance detected at step 114 is in fact attributable to an electrical arc. If an arc is confirmed at step 120 then data samples are again taken during a further data acquisition period (step 122). A comparison of the pattern of data obtained at step 112 and that obtained at step 122 may then confirm an arcing fault (step 124) in which case appropriate message signals and trip signals are issued at step 126.
- Flowchart 128 illustrated in Figure 14 represents a slightly more complex detection procedure which utilises the Low Pattern and High Pattern thresholds.
- Steps 130 and 132 represent the initialisation steps of the procedure where parameters such as the individual signal thresholds are retrieved and weight or scaling factors for each signal are determined.
- step 134 it is determined whether an event has taken place in the distribution system by comparison of two sequential data acquisition period patterns with the low pattern threshold. If an event is determined (step 136) the procedure continues to step 138, or else the procedure continues to monitor for an event at step 134. Once an event has been detected (step 136) the occurrence of a solid ground fault is checked at step 138. In the event of a solid ground fault a time delay is introduced (step 158) and the ground fault is confirmed or denied at step 160.
- step 136 If the detected event (step 136) does not result from a solid ground fault then further samples are obtained (step 140) to enable detection of an arc disturbance in steps 142 to 146. Having confirmed that the disturbance is due to an electrical arc a fault condition is confirmed at step 150, which results in the generation of relevant trip signals to isolate the fault from the electrical distribution system (step 152).
- the detection scheme has the ability of learning.
- the weight values can be set for each protection relay initially according to the previous experience of the utility including data collected during previous arcing faults, and can be readjusted periodically. This ability of learning provides an opportunity to improve the accuracy of the detection.
- the weight can be adjusted to suit a given utility condition without the need for changing the hardware, since such changes can be implemented in software.
- the results of a field test of arcing fault detection apparatus utilising the simplified methodology of the preferred embodiment of the invention are the results of a field test of arcing fault detection apparatus utilising the simplified methodology of the preferred embodiment of the invention.
- the first step of the test involved monitoring and sampling the prescribed eight signal components on an electrical feeder line during normal operation. An electrical fault condition was then induced in the feeder line by severing a cable and laying the severed cable end on an asphalt surface, this taking place with the electrical supply disconnected. Monitoring and sampling was again commenced, and continued whilst the electrical supply was reconnected to induce an arcing fault condition. Monitoring, sampling and processing of the signal components continued during the arcing fault until an isolating relay was tripped following confirmation of an arcing fault by the detection apparatus.
- the pattern sums X for the above sample data may be easily calculated.
- the pattern sum X for sample data during a given data acquisition period may be determined by: i) summing the number of samples for each signal component in which the sample value is greater than the corresponding individual threshold; ii) multiplying each sum resulting from i) by its corresponding weight value; and iii) adding the weighted sums to determine the overall pattern sum X. This process is illustrated step-by-step below for the test data both before and during the arcing fault, with zero individual thresholds.
- Appendix B shows a listing of computer software program code in assembly language suitable for a Motorola MC6802 microprocessor, which has been developed to implement the functions of the described embodiment which are controllablt oy the microprocessor control unit 30.
- a single phase arcing fault such as a single phase line contacting a tree or the like
- the technique and apparatus described herein is in fact applicable to a number of applications.
- other arcing faults and phenomena can be detected, such as partial discharge through high impedance medium resulting from leakage currents in aging or failing insulation material.
- high energy faults such as two phase and three phase line to line faults can be detected where these result in arcing between the conductors.
- Certain types of equipment used on the electrical distribution system can also be detected, such as arc furnaces and arc welders, which can be useful for the recording purposes of the electrical supplier or for protecting sensitive electrical equipment on the distribution system from any adverse effects of the arcing equipment.
- DIGITAL VALUE 00 04 09 11 22 44 88 FF
- DIGITAL VALUE 00 04 09 11 22 44 88 FF I 0 (A)
- DIGITAL VALUE 00 04 09 11 22 44 88 FF
- DIGITAL VALUE 00 04 09 11 22 44 88 FF
- DIGITAL VALUE 00 04 09 11 22 44 88 FF
- DIGITAL VALUE 00 04 09 11 22 44 88 FF
- DIGITAL VALUE 00 04 09 11 22 44 88 FF
- DIGITAL VALUE 00 04 09 11 22 44 88 FF
Landscapes
- Engineering & Computer Science (AREA)
- Artificial Intelligence (AREA)
- Evolutionary Computation (AREA)
- Emergency Protection Circuit Devices (AREA)
- Testing Of Short-Circuits, Discontinuities, Leakage, Or Incorrect Line Connections (AREA)
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US08/367,158 US5602709A (en) | 1992-07-10 | 1993-07-09 | High impedance fault detector |
AU45475/93A AU678366B2 (en) | 1992-07-10 | 1993-07-09 | High impedance fault detector |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
AUPL3451 | 1992-07-10 | ||
AUPL345192 | 1992-07-10 |
Publications (1)
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WO1994001910A1 true WO1994001910A1 (en) | 1994-01-20 |
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ID=3776281
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
PCT/AU1993/000342 WO1994001910A1 (en) | 1992-07-10 | 1993-07-09 | High impedance fault detector |
Country Status (5)
Cited By (7)
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---|---|---|---|---|
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Families Citing this family (95)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6242993B1 (en) | 1995-03-13 | 2001-06-05 | Square D Company | Apparatus for use in arcing fault detection systems |
US6452767B1 (en) | 1995-03-13 | 2002-09-17 | Square D Company | Arcing fault detection system for a secondary line of a current transformer |
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US6246556B1 (en) | 1995-03-13 | 2001-06-12 | Square D Company | Electrical fault detection system |
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US6259996B1 (en) | 1998-02-19 | 2001-07-10 | Square D Company | Arc fault detection system |
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US6292340B1 (en) | 1999-04-09 | 2001-09-18 | Electrical Materials Company | Apparatus for isolation of high impedance faults |
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US6459998B1 (en) * | 1999-07-24 | 2002-10-01 | Gary R. Hoffman | Sensing downed power lines |
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US6522509B1 (en) * | 2000-07-21 | 2003-02-18 | Eaton Corporation | Arc fault detection in ac electric power systems |
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US6751528B1 (en) * | 2000-11-27 | 2004-06-15 | General Electric Company | Residential circuit arc detection |
DE10120751A1 (de) * | 2001-04-23 | 2002-11-21 | Siemens Ag | Überstromauslösevorrichtung mit Erfassung der Kurvenform eines zu überwachenden Stromes |
US6741943B2 (en) * | 2001-09-13 | 2004-05-25 | Abb Power Automation Ltd. | Crossover fault classification for power lines with parallel circuits |
US6721670B2 (en) | 2001-09-13 | 2004-04-13 | Abb Power Automation Ltd. | Crossover fault classification for power lines with parallel circuits |
US6760670B2 (en) * | 2001-09-13 | 2004-07-06 | Abb Power Automation Ltd. | Crossover fault classification for power lines with parallel circuits |
US6738719B2 (en) * | 2001-09-13 | 2004-05-18 | Abb Power Automation Ltd. | Crossover fault classification for power lines with parallel circuits |
US7136265B2 (en) * | 2001-10-17 | 2006-11-14 | Square D Company | Load recognition and series arc detection using bandpass filter signatures |
US6717786B2 (en) | 2001-10-30 | 2004-04-06 | The Boeing Company | Automatic voltage source selector for circuit breakers utilizing electronics |
US7038897B2 (en) * | 2003-02-12 | 2006-05-02 | Honeywell International Inc. | Arc fault detection system |
US7627029B2 (en) * | 2003-05-20 | 2009-12-01 | Rambus Inc. | Margin test methods and circuits |
US7069116B2 (en) * | 2004-02-02 | 2006-06-27 | Abb Inc. | High impedance fault detection |
US7272515B2 (en) * | 2004-03-16 | 2007-09-18 | Abb Technology Ag | Digital signal processor implementation of high impedance fault algorithms |
US7062388B2 (en) * | 2004-03-18 | 2006-06-13 | General Electric Company | Series arc detection |
US7460346B2 (en) * | 2005-03-24 | 2008-12-02 | Honeywell International Inc. | Arc fault detection and confirmation using voltage and current analysis |
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US7253634B1 (en) * | 2006-03-31 | 2007-08-07 | General Electric Company | Generator protection methods and systems self-tuning to a plurality of characteristics of a machine |
US7720619B2 (en) * | 2006-08-04 | 2010-05-18 | Schweitzer Engineering Laboratories, Inc. | Systems and methods for detecting high-impedance faults in a multi-grounded power distribution system |
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US8373363B2 (en) | 2009-08-14 | 2013-02-12 | Once Innovations, Inc. | Reduction of harmonic distortion for LED loads |
US8336352B2 (en) * | 2010-01-25 | 2012-12-25 | Aclara Power-Line Systems, Inc. | Transient detector and fault classifier for a power distribution system |
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US8346207B2 (en) | 2011-05-25 | 2013-01-01 | Ian Alexander Stewart | Fault location and control system for distribution lines |
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US9007731B2 (en) | 2012-03-26 | 2015-04-14 | Schweitzer Engineering Laboratories, Inc. | Leveraging inherent redundancy in a multifunction IED |
US9274149B2 (en) | 2012-04-16 | 2016-03-01 | Hamilton Sundstrand Corporation | Frequency phase detection three phase system |
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AU2013328964B2 (en) | 2012-10-12 | 2016-02-18 | Schweitzer Engineering Laboratories, Inc. | Coordinated high-impedance fault detection systems and methods |
US9210598B1 (en) | 2013-03-14 | 2015-12-08 | Anritsu Company | Systems and methods for measuring passive intermodulation (PIM) and return loss |
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US9136692B2 (en) | 2013-06-11 | 2015-09-15 | Electrical Materials Company | Low fault current isolator system |
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US10161986B2 (en) | 2016-10-17 | 2018-12-25 | Schweitzer Engineering Laboratories, Inc. | Electric power system monitoring using distributed conductor-mounted devices |
EP3577475A1 (en) * | 2017-03-02 | 2019-12-11 | Rosemount Inc. | Trending functions for partial discharge |
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JP6897603B2 (ja) * | 2018-02-28 | 2021-06-30 | オムロン株式会社 | ケーブル断線予兆検知装置 |
DK3757583T3 (da) * | 2019-06-25 | 2023-01-16 | Reactive Tech Limited | System til bestemmelse af elektriske parametre af et elektrisk forsyningsnet |
US11313895B2 (en) | 2019-09-24 | 2022-04-26 | Rosemount Inc. | Antenna connectivity with shielded twisted pair cable |
CN114646795B (zh) * | 2022-03-28 | 2023-08-25 | 广东电网有限责任公司江门供电局 | 基于频域分析的配电终端热插拔模块监测装置 |
Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO1988005543A1 (en) * | 1987-01-15 | 1988-07-28 | Jerrings Donald I | High impedance fault analyzer in electric power distribution |
AU1286392A (en) * | 1992-03-12 | 1992-09-10 | Togami Electric Mfg. Co., Ltd. | Downed conductor automatic detecting device |
US5185684A (en) * | 1991-03-28 | 1993-02-09 | Eaton Corporation | Frequency selective arc detection |
WO1993003530A1 (de) * | 1991-08-01 | 1993-02-18 | Siemens Aktiengesellschaft | Verfahren und anordnung zur fehlerefkennung in stromrichteranlagen |
Family Cites Families (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4466071A (en) * | 1981-09-28 | 1984-08-14 | Texas A&M University System | High impedance fault detection apparatus and method |
-
1993
- 1993-07-09 WO PCT/AU1993/000342 patent/WO1994001910A1/en active Application Filing
- 1993-07-09 US US08/367,158 patent/US5602709A/en not_active Expired - Fee Related
- 1993-07-09 NZ NZ253977A patent/NZ253977A/en unknown
- 1993-07-09 CA CA002139755A patent/CA2139755A1/en not_active Abandoned
- 1993-07-19 TW TW082105722A patent/TW242663B/zh active
Patent Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO1988005543A1 (en) * | 1987-01-15 | 1988-07-28 | Jerrings Donald I | High impedance fault analyzer in electric power distribution |
US5185684A (en) * | 1991-03-28 | 1993-02-09 | Eaton Corporation | Frequency selective arc detection |
WO1993003530A1 (de) * | 1991-08-01 | 1993-02-18 | Siemens Aktiengesellschaft | Verfahren und anordnung zur fehlerefkennung in stromrichteranlagen |
AU1286392A (en) * | 1992-03-12 | 1992-09-10 | Togami Electric Mfg. Co., Ltd. | Downed conductor automatic detecting device |
Non-Patent Citations (2)
Title |
---|
IEEE TRANSACTIONS ON POWER DELIVERY, Volume 6, No. 2, issued April 1991, D.I. JEERINGS et al., "A Practical Protective Relay for Down-Conductor Faults", pages 565-571. * |
IEEE TRANSACTIONS ON POWER DELIVERY, Volume 6, No. 2, issued April 1991, W.H. KWON et al., "High Impedance Fault Detection Utilising Incremental Variance of Normalised Even Order Harmonic Power", pages 557-563. * |
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RU201026U1 (ru) * | 2020-06-05 | 2020-11-24 | Федеральное государственное бюджетное образовательное учреждение высшего образования Иркутский государственный университет путей сообщения (ФГБОУ ВО ИрГУПС) | Устройство третьей ступени дистанционной защиты фидеров контактной сети |
Also Published As
Publication number | Publication date |
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CA2139755A1 (en) | 1994-01-20 |
NZ253977A (en) | 1997-02-24 |
US5602709A (en) | 1997-02-11 |
TW242663B (US06534493-20030318-C00130.png) | 1995-03-11 |
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