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Xi'an Xu&Hui Electromechanical Technology Co., Ltd.

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China Murray Bridge Cable Sheath Fault Locator 5600V Auto Fault Point Cable Locator |
China Murray Bridge Cable Sheath Fault Locator 5600V Auto Fault Point Cable Locator |

  1. China Murray Bridge Cable Sheath Fault Locator 5600V Auto Fault Point Cable Locator |
  2. China Murray Bridge Cable Sheath Fault Locator 5600V Auto Fault Point Cable Locator |
  3. China Murray Bridge Cable Sheath Fault Locator 5600V Auto Fault Point Cable Locator |
  4. China Murray Bridge Cable Sheath Fault Locator 5600V Auto Fault Point Cable Locator |

Murray Bridge Cable Sheath Fault Locator 5600V Auto Fault Point Cable Locator |

  1. MOQ: 1unit
  2. Price: Negotiable
  3. Get Latest Price
Payment Terms T/T
Supply Ability 3000unit/year
Delivery Time 5-8 work days
Packaging Details wooden packaging
Brand Name XZH TEST
Model Number XHHG521B
Certification ISO/CE
Place of Origin Xi'an ShanXi China

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  1. Product Details
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Product Specification

Payment Terms T/T Supply Ability 3000unit/year
Delivery Time 5-8 work days Packaging Details wooden packaging
Brand Name XZH TEST Model Number XHHG521B
Certification ISO/CE Place of Origin Xi'an ShanXi China
High Light murray bridge cable sheath fault locator ,5600V cable sheath tester ,auto fault distance cable locator
XHHG521B Cable Outer Sheath Fault Tester Overview

The cable sheath fault tester is designed based on the Murray bridge principle and can be used to locate breakdown points in various wires and cables, as well as defects that do not break down but have a low insulation resistance. The device uses an electric voltage regulator and an R-type transformer to form a high-voltage constant-current source, with push-button operation for voltage increase and decrease. It has a no-load voltage of 5600V and a short-circuit current of 100mA. It uses a high-sensitivity amplifier and a galvanometer to indicate balance, forming a balanced bridge with a proportional potentiometer, all at high potential. The measurement cable is a specially designed two-core high-voltage rubber cable, and a four-terminal resistance measurement method is used to eliminate errors introduced by lead resistance. The panel is maintained at low potential. The device also features a 12806 display and one-button operation: inputting the cable length automatically calculates the fault distance. The high-voltage source and the bridge are integrated into a portable protective case, so the device offers high voltage, is lightweight, easy to operate and safe to use.

Who It Is For (Target Audience)

The XHHG521B is positioned for technicians who want an instrument that automatically detects the fault point while keeping manual testing available for cross-checking. It is engineered for cable test and maintenance engineers who confirm the fault distance with the classic two-direction reverse-connection calibration (P1 + P2 = 100); for power supply bureau and industrial plant cable crews that need to measure the two-phase short-circuit fault of a cable line conveniently; and for teams that value a bridge with higher precision and stability and zero-position protection, where the cable length is entered and the distance is computed automatically on the display. It covers high-resistance linear breakdown points after installation (such as at cable intermediate joints), flashover breakdown points, and low-resistance defects that have not yet broken down. Unlike the other instruments in the same category, which pinpoint sheath faults on site or trace cable routes, this device is a MURRAY bridge that measures the cable fault distance itself, arranged at high potential and operated safely from the low-potential panel.

Product Features
Output voltage is adjustable.
Higher precision and stability.
Uses a high-sensitivity amplifier and a galvanometer to indicate balance.
Zero-position protection.
Automatically detects the fault point, but retains manual testing functionality.
Compared with the wave-reflection method, the bridge balancing method has no blind spots and is suitable for determining the breakdown point in short cables or near the end.

The cable sheath fault tester is particularly suitable for:

High-resistance breakdown points in cables after installation, especially linear high-resistance breakdown points that are difficult to burn down to low resistance, such as those at intermediate cable joints.
Flashover breakdown points, where the constant-current source can maintain the arc after breakdown, a stable current flows through the bridge, and the bridge has sufficient sensitivity.
Low-resistance defects that have not yet broken down, such as insulation defects detected by a megohmmeter at a low cable resistance but not breaking down under the operating voltage.
Technical Parameters
Item Specification
No-load voltage ≥5600V
Short-circuit current ≥100mA (5-40mA recommended for balancing)
Positioning accuracy ±(0.2%·L±1) meter
Weight 25kg
Power supply AC 220V (±10%), 50Hz±1Hz; 8.4V internal battery
Working Principle

The cable fault location bridge method works as follows: the faulty phase and the non-faulty phase of the cable under test are short-circuited, the two arms of the bridge are connected to the faulty phase and the non-faulty phase respectively, and an adjustable resistor on one arm is adjusted so that the bridge is balanced; using the proportional relationship and the known cable length, the fault distance is obtained. The bridge method is relatively simple and its accuracy meets the requirements of on-site engineering testing, and it is very convenient for measuring a two-phase short-circuit fault of a cable line. Using the Murray bridge to locate a breakdown point is a classic approach, convenient and accurate, and its basis is that the conductor (or shielding-layer) resistance is uniform and proportional to the length. Let the distances from the two ends of the cable to the breakdown point be L1 and L2 and the total length of the cable be L, with corresponding conductor resistances R1 and R2; after balancing, L1 = P%·L, where P is the balance adjustment reading.

Instrument LayoutGrounding post: ground the instrument for safety protection.Wiring and Measurement Steps

Wiring notes: HV is the high-voltage constant-current source; the faulty cable is CD and the auxiliary cable is AB, with the same conductor cross-section and the same length L, and the distance from the fault point to the measuring end is X; the measuring clamps are connected to the two ends A and C of the cable conductors, with the two sides of each clamp being the current and potential terminals, both reliably connected to the cable; R is the balance potentiometer, whose reading is a percentage; G is the galvanometer, with an adjustable electrical balance zero point; at the far end, the two ends B and D must be short-circuited and the short circuit must be reliable.

Preparation (judging the faulty phase and connecting correctly):

1.Use a multimeter, megger or other withstand equipment to confirm the cable breakdown state and record the insulation resistance to ground or the breakdown residual voltage of each core.
2.Record the length, model and cross-section of the cable under test, patrol along the cable route, short-circuit the faulty cable and the outgoing terminals of the auxiliary cable at the far end, and leave a person to watch at the far end to avoid high-voltage injury.
3.Connect the wiring: connect the grounding terminal of the instrument reliably to the grounding body at the site; the measuring head end (red clip) connects to the core of the faulty cable and the measuring end (black clip) connects to the core of the auxiliary cable.

Measurement (raising the voltage to obtain the fault ratio):

1.Connect the power to AC 220V, switch on the sensitivity switch and turn it to maximum, and the battery indicator comes on.
2.Zero the bridge (when the galvanometer pointer is not at zero): rotate the zeroing knob so the galvanometer indicates zero.
3.Raise the voltage: switch on the power switch and the zero-position indicator comes on — if it does not, press the voltage-reduction button until it does; then press the start button and the high-voltage indicator comes on.
4.Press the voltage-boost button and watch the voltmeter and ammeter until the ammeter exceeds 20mA; if the current is unstable, continue raising the voltage and hold it for a while to form a stable arc or conductive region so that the current remains stable during testing.
5.Balance adjustment: adjust the balance knob so the galvanometer deflects noticeably and indicates zero (turn counter-clockwise if the pointer deflects left, clockwise if it deflects right), and observe and record the dial reading P1; stop raising the voltage after the fault ratio is obtained.

Calculation (the fault distance is calculated automatically):

1.After switching on, the welcome page appears and automatically advances to the next page after 2 seconds. Encoder “select” switch convention: rotate to move the cursor or change a digit; press to execute or confirm.
2.Input cable length page (initial value shown; turn clockwise to increase and counter-clockwise to decrease): rotate the select encoder to move the cursor to the digit to be changed, press it to confirm the position, rotate to change the digit from 0 to 9, press to confirm the entered number and the cursor moves automatically to the next digit, and repeat to complete all digits (the cable length L). When the cursor is on Next, press the select encoder to enter the test page.
3.Test page: when the cursor is on Test, press the select encoder and the system automatically collects one bridge ratio coefficient P (the balance dial reading) and calculates the fault distance X — one collection per press. When the cursor is on Last, press to return to the previous page; when it is on Next, press to enter the result page.
4.Result page: it displays the measurement result. When the cursor is on Last, press to return to the test page; when it is on Rest, press to reset and restart, returning to the welcome page.

Reverse-connection calibration: lower the voltage and discharge, swap the measuring clamps, and repeat the steps to obtain another reading P2, which should give P1 + P2 = 100. The fault point position is X = 2 × L × P1%, and particular attention should be paid to the “2” in the formula, because the auxiliary cable doubles the cable involved in the calculation.

Other notes: sometimes interference affects the galvanometer zero point, in which case re-zero at the final sensitivity position (with the test voltage reduced to zero and everything else unchanged, zero it, then raise the voltage again and adjust the balance for a more accurate value); when conductors of different cross-sections are used as the auxiliary cable, convert to the length of the faulty cable, so if the faulty cross-section is Sx and the auxiliary cable is S, the formula becomes X = P1% × (1 + Sx/S) × L; if all three cores of a three-core cable have broken down or are short-circuited with each other, a core with the best insulation resistance can be selected as the auxiliary cable. Understanding the factors affecting sensitivity helps: the larger the current through the bridge, the higher the sensitivity; the larger the cable conductor resistance, the higher the sensitivity, meaning thin and long cables have higher sensitivity while thick and short cables have lower sensitivity, so for cables of large cross-section and short length the current should be increased as far as possible and a higher amplifier sensitivity used.

Notes and Common Issues
Do not touch the high-voltage connecting line and the cable under test during testing, to avoid high-voltage injury.
Never switch on the unit while connecting cables, and switch off the power promptly after the test.
The instrument cannot be started when the voltage adjustment is not at the zero position.
Use it only with at least two people present: one person connects the wiring and another checks it, and the test starts only after there is no mistake.
The grounding terminal of the instrument must be reliably grounded, using a dedicated ground wire — preferably clamped to a test-site grounding column, an electrical cabinet grounding bar, or the foot of mechanical equipment.
During and after the test, before touching high-voltage parts a person must discharge first and finally hang up the ground wire.
The automatic fault-distance calculation must be carried out in the non-boosted state.
Packing List
Name Quantity
Main unit 1
High-power jumper cables 1
Power cord 1
Ground wire 1
Charger 1
Fuse (3A) 5

Warranty: within one year from the date of purchase, free repair is provided for product quality problems, with lifetime maintenance and technical service.

FAQ Q1: What is the XHHG521B used for?

It is a cable sheath fault tester designed on the Murray bridge principle, used to locate breakdown points in various wires and cables as well as defects that do not break down but have a low insulation resistance.

Q2: What are the main technical parameters?

The no-load voltage is ≥5600V, the short-circuit current is ≥100mA (5-40mA recommended for balancing), the positioning accuracy is ±(0.2%·L±1) meter, the weight is 25kg, and the power supply is AC 220V (±10%), 50Hz±1Hz with an 8.4V internal battery.

Q3: Does it work automatically or manually?

It automatically detects the fault point but retains manual testing functionality. The cable length is entered on the 12806 display and the fault distance is calculated automatically, and the result can be cross-checked with the classic two-direction reverse-connection calibration where P1 + P2 = 100.

Q4: What should be noted during use?

The instrument cannot be started when the voltage adjustment is not at the zero position; at least two people must be present; the grounding terminal must be reliably grounded; before touching high-voltage parts a person must discharge first and hang up the ground wire; and the automatic fault-distance calculation must be carried out in the non-boosted state.

Q5: What is included with the instrument?

The packing list includes the main unit (1), high-power jumper cables (1), power cord (1), ground wire (1), charger (1) and fuse 3A (5). The product is warranted for one year from the date of purchase with lifetime maintenance.

Company Details

Bronze Gleitlager

,

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 and 

Graphite Plugged Bushings

 from Quality China Factory
  • Business Type:

    Manufacturer

  • Year Established:

    2013

  • Total Annual:

    1000000-5000000

  • Employee Number:

    50~100

  • Ecer Certification:

    Verified Supplier

                        Xi'an Xu&Hui Electromechanical Technology Co., Ltd. /Xian XZH Electric Power Technology Co., Ltd. Has found in 2013, located in Xi'an, China. which is a highly experienced team dedicated to developing electrical...                         Xi'an Xu&Hui Electromechanical Technology Co., Ltd. /Xian XZH Electric Power Technology Co., Ltd. Has found in 2013, located in Xi'an, China. which is a highly experienced team dedicated to developing electrical...

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  • Xi'an Xu&Hui Electromechanical Technology Co., Ltd.
  • Building B8-01, Phase I, Ronghao Industrial City, No. 2098, Weiyang 9th Road, Gaoling District, Xi'an, China
  • https://www.xzhtest.com/

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