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508, Building 4, Lane 680, Shuishe West Road, Baoshan District, Shanghai
Shanghai Xuji Electric Co., Ltd
508, Building 4, Lane 680, Shuishe West Road, Baoshan District, Shanghai
QDB-101DC Grounding Intelligent Quick Finder
DC system insulation fault, DC crossover fault, and AC crossover fault are types of faults that are prone to occur and pose a significant threat to the normal operation of the power system.
In order to better assist on-site maintenance personnel in quickly and accurately identifying DC faults, our company has worked hard for many years, summarized a large amount of on-site experience, and developedDC grounding fault locator.
DC grounding fault locatorBy using a high-precision current clamp meter and utilizing the difference in DC current in the fault circuit for fault detection and localization, the system can quickly identify and locate faultsFFTThe introduction of transformation technology into DC fault finding equipment can detectEach voltage level(24V,48V,110V,220V)Various insulation faults, DC crossover faults, and AC crossover faults in DC systems.
With the increasing demand for safe operation in the power system, the requirements for various types of DC fault detection in the power system will also become higher. Therefore, high-precision and insulation trend analysis will become the new generation of requirements for the power systemDC grounding fault locatorThe basic requirements.
A new type of DC fault based on frequency modulation and amplitude modulation technology baseYuPrinciple of DC current difference detectionnew-typeDC grounding fault locatorIntroducing FastFFTTransformation technology,By analyzingdetection volumeDetailed analysis of amplitude frequency characteristics balances DCgroundingRegarding the safety and sensitivity of fault diagnosisofContradiction, direct currentgroundingFault technology has reached a new heightIt has a wide range of application prospects.
DC grounding fault locatorIt consists of three parts: system analyzer, branch detector, and collector, as shown in the following diagram:

The system analyzer is connected to the tested DC bus and uses the ping-pong principle to calculate the balance bridge resistance and ground insulation resistance of the tested DC system. If there is an insulation fault in the tested DC system, the system analyzer inputs a detection bridge with a set frequency and amplitude to the DC system. The detector locates the ground fault point by detecting the current signal in each branch. The detection principle is shown in the following diagram:

The feeder line 1 in the figure is a normal feeder linenFor feeders with negative to ground insulation faults,
For insulation fault resistance,RBalance the bridge for the system.
After the analyzer detects an insulation fault, it applies a detection bridge to the DC system, which is represented by E and F in the diagram. The application of this detection bridge causes a periodic change in the DC system's ground voltage at a known frequency. Let the frequency of this change be
The amplitude of the change in ground voltage generated by the DC system is
, then flow through
The amplitude of the current change on top is
Change frequency and detection bridge input frequency
Same.
The detector is used to detect at locations A, B, and C. If the changing current signal cannot be detected at A, it indicates that there is no insulation fault in feeder 1. If the changing current signal can be detected at B, it indicates that there is an insulation fault in feeder n. However, if the changing current signal cannot be detected at C, it can be determined that the insulation fault point is between B and C.
The system analyzer is connected to the two DC busbars being tested, and a detection bridge is switched to one of the busbars. The voltage change waveforms of the two busbars are compared to determine whether there is a ring network fault or insulation fault in the system based on the voltage change relationship. If there is a ring network fault or insulation fault, the detection bridge is continuously started for the branch detector to locate the ring network fault point.
When there is a ring network fault in two branches, a detector and collector can be used to detect each branch that may have a ring network fault one by one. Based on the waveform and direction displayed by the detector, the final search for the ring network fault point can be achieved.
The schematic diagram of DC crosstalk detection is as follows:

The system analyzer is connected to the tested DC bus and detects the AC voltage component in the DC system in real time. If the AC voltage component in the DC system exceeds the set value, it is determined that there is an AC surge fault in the DC system.
The process of finding the fault point of AC surge is the same as the process of finding the insulation fault point.
QDB-101DC Grounding Intelligent Quick Finder
(1)The system has the function of measuring ground voltage, and the instrument can measure the system's positive ground voltage, negative ground voltage, and system voltage, which can be achieved0—300VThe voltage monitoring range;
(2)System insulation impedance measurement function, the instrument can measure the system's positive to ground insulation impedance, negative to ground insulation impedance, and balance bridge size detection,measurement range0—999.9KΩ;
(3)The AC surge detection function allows the instrument to detect AC surge faults in the DC system and measure the AC voltage value entering the DC system. The AC voltage measurement range is0—280V;
(4)System distributed capacitance measurement function, the instrument can measure the distributed capacitance of the system and display it in real time;
(5)Ring network detection and positioning function, the instrument can detect various ring network faults in two sections of the busbar, including positive pole ring, negative pole ring, two pole ring, and opposite pole ring, and can locate the ring network fault point through waveform display and direction display;
(6)The device has functions of amplitude modulation, reset, current waveform selection, and working mode selection, which can achieve the search and location of high resistance ring network faults.
(7)Branch insulation impedance measurement and insulation fault location function, the instrument measures the insulation impedance of each branch to ground, and can locate the insulation fault point through waveform display and direction display;
(8)Fault current spectrum analysis function, the device can quickly analyze the fault current spectrumFFTTransform the frequency spectrum analysis function to achieve current changes, effectively extract the signal amplitude of the measured current frequency point, and improve detection accuracy;
(9)The ammeter function allows the device to be used as a high-precision ammeter, with a current measurement resolution of up to0.01mA;
(10)The waveform curve display and direction display function, when using the detector to detect the measured branch, the display screen will display the current change of the measured branch in the form of waveform curve, which is convenient for users to quickly and accurately find the fault point,Display the direction of the fault point when there are ring network faults and grounding faults.
(1)High reliability design
The device is imported32The microcontroller serves as the main system, and the hardware design strictly follows the relevant standards of power and electromagnetic compatibility. Multiple redundant methods are used internally to ensure the reliability of the device and the tested equipment.
(2)Precision material selection
The device uses a high-precision collector as the signal acquisition unit, and the voltage sampling adopts a high-precision imported analog-to-digital conversion chip, ensuring accurate measurement of voltage and impedance;
(3)Humanized human-computer interaction interface
Both the "analyzer" and "detector" useTFTLCD display screen for users to view information;
The operation is simple and fast, and when detecting different branches, only one press of the start button is needed to complete it;
The test results are displayed intuitively and clearly, and can be presented to users in various display forms, including grounding status, waveform curve, insulation level, insulation impedance, leakage current size, direction information, etc.
(4)Intelligent detection and recognition system
The analyzer can automatically identify the system voltage level;
The analyzer can determine the category of ring network faults;
After synchronizing the information of the "detector" and "analyzer" once, it is not affected by the detection distance;
When the "detector" is used for detection, the collector can clamp a single power cord or multiple power cords to improve detection efficiency;
After the "detector" completes the detection, if there is a ring network or insulation fault in the tested branch, it will determine the direction information of the fault point relative to the test point.
(5)Complete testing functions and fault handling capabilities
The "analyzer" and "detector" are equipped with wireless data transmission modules for communication, with complete testing functions and display information, and can handle various ring network and insulation fault situations in DC systems.
“analyzer”possessMultiple combination working mode selection functions of "amplitude modulation", "waveform", and "mode" can adapt to various complex application environments.
(6)高安全性
The device uses microampere level detection signals combined with high-resolution DC detection collectors to achieve fault detection and localization, without any impact on the DC system.
Usage environment
l Working power supply:DC22V-300V,
l Ambient temperature-20℃—55℃
l relative humidity0—90%
DC voltage measurement
l DC voltage measurement range:22-300V
l Resolution of DC voltage measurement:0.1V
l Accuracy of DC voltage measurement:220V DC power supply system (180V~286V) 110V DC power supply system (90V~143V)±0.5%
AC voltage measurement
l Measure AC and DC surge voltage:10-280v
l AC voltage measurement resolution:0.1V
l Accuracy of AC voltage measurement:±5%
Insulation resistance measurement
l Measurement range of insulation resistance:0-999.9KΩ;Resolution of insulation resistance measurement:0.1KΩ
l Measurement accuracy of insulation resistance:Ri < 10KΩ Display specific numerical values
10KΩ≤Ri≤500KΩ ±5%
Detection bridge amplitude adjustment range:0mA,0.25mA,0.5mA,1mA,2mA
l Range of resistance values for the detection ring network:50KWithin Ω
System distributed capacitance measurement
Measurement range of system distributed capacitance:0-999.9uF Accuracy C<10uF or C>200uF: Display specific values; 10uF≤C≤200uF:±10%or±3uF;
Selection of waveform types for detection: sine wave, square wave;
l beUnified ground capacitance measurement:0-1000kΩ
Selection of waveform types for detection: sine wave, square wave
Working mode: forced signal start, automatic signal start
Display medium and resolution:TFT,320x240
Insulation resistance measurement
l Measurement range of insulation resistance: 0-500KΩ
l Resolution of insulation resistance measurement:0.1KΩ
l Measurement accuracy of insulation resistance:Ri <10KΩ Display specific numerical values
10KΩ≤Ri≤500KΩ:±10%
Spectrum analysis scope
l Number of channels for spectrum analysis:1
l Spectrum analysis frequency range:0.125-12.5Hz
l frequency resolution: 0.125Hz
Current waveform display period:8s;
Detectable feeder current range:0—2A;
Current measurement range:-100—+100mA;
Current measurement resolution: 0.01 mA
Display medium and resolution:TFT,320x240
l Speed:2Mbps, Due to the short transmission time in the air, the collision phenomenon in wireless transmission is greatly reduced
l Multi frequency points:125 frequency points, meeting the needs of multi-point communication and frequency hopping communication
l Ultra small: Built in2.4GHz antenna, compact size, 15x29mm
l Low power consumption: When operating in response mode communication, fast air transmission and startup time greatly reduce current consumption.
The analyzer is equipped with two connecting plugs, of whichIThe segment includes a red connecting line, a black connecting line, and a yellow connecting line;IIThe segment includes a red connecting line and a black connecting line.
Insert one end of the red, yellow, and black connector sockets into the analyzer according to the color markings providedISegment plugLocation;
Disconnect the power switch and connect the other end of the red, yellow, and black wires as follows:
Connect the red clip of the red connecting wire to theIAt the positive pole of the section busbar;
Connect the yellow clip of the yellow connecting wire to theIGround of section busbar;
Connect the black clip of the black connecting wire to theIAt the negative pole of the section busbar;
If you want to detect DC crosstalk, you need to connect the equipped red and black wires to the device and system as follows:
Insert one end of the red and black connecting wires into the analyzer socket according to the color markingsIIAt the section plug;
Connect the red clip of the red connecting wire to theIIAt the positive pole of the section busbar;
Connect the black clip of the black connecting wire to theIIAt the negative pole of the section busbar;
As shown in the following diagram:

Fully charged4 sectionsInstall the 5th rechargeable battery into the battery compartment of the detector;
Connect one end of the collector aviation plug to the detector socket.
After checking the wiring of each part, turn on the power switch of the analyzer. The power indicator light and LCD screen are both illuminated, and the device enters the working state. If there is no grounding in the system, the analyzer's normal indicator light is on. If there is a positive grounding, the positive grounding indicator light is on. If there is a negative grounding, the negative grounding indicator light is on.
There are four buttons on the analyzer panel that can adjust the operating parameters of the analyzer. The button arrangement diagram is as follows:

amplitude modulationThis button can be used to adjust the amplitude of the current signal, which can be within the range ofCycle settings between 0mA, 0.25mA, 0.5mA, 1mA, and 2mA, with default startup settings1mA(Default 24V DC system)2mA).
resetThis button can be used to reinitialize and rerun the program.
waveformThis button allows you to select the current waveform, which can be either a square wave or a sine wave. When set to a square wave, the analyzer status bar displays the waveform as“
”When set to sine wave, the analyzer status bar displays as“
”The default startup is“
”.
patternThis button can be used to select the working mode of the analyzer. The analyzer can be set to automatic mode or forced mode. When set to automatic mode, the analyzer status bar displays the mode as“Auto”, When set to forced mode, the analyzer status bar displays the modeThe default startup setting for 'Force' is“Auto”.
Explanation on Forced Mode and Automatic ModeWhen the analysis ceremony is working in automatic mode, only theAfter a certain deviation in ground voltage occurs in the I-section busbar system, the detection bridge is activated for fault diagnosis. When the system returns to normal, the operation of the detection bridge will be automatically stopped; When the analyzer operates in forced mode, it will actively start the detection bridge for fault detection. After the detection is completed, regardless of whether there is a grounding or ring network fault, the detection bridge will be put into the system ground.
The detector panel has three buttons, namely "Power", "Function", and "Test". All detection functions of the detector can be achieved through these three buttons, and the detector is compatibleD-type collector andType A collector, please pay attention to the type of collector connected and the corresponding analyzer for different collector types when using it“
”And“
”Waveform state.

power supplyPower switch button;
Function:Press the function key to select the desired test function item;
testAfter selecting the desired function, press this key to start testing.