Loop Resistance Tester

Loop Resistance Tester adopts 100A constant current output. The maximum output voltage reaches 10V (2-3 times that of conventional instruments), allowing the use of thin test leads, greatly reducing the labor intensity of field test personnel. The entire testing process is automatically controlled by a single-chip microcomputer, offering high precision, good repeatability, and simple one-button operation. Test data is displayed on an LCD. It is suitable for various working environments. This instrument has a built-in 100A/200A switching power supply, enabling constant current 100A with two sets of circuits for real-time tracking testing, ensuring accurate test results. It is designed by combining digital circuit technology with switching power supply technology. It is applicable for measuring contact resistance and loop resistance of switch control equipment. The test current adopts the DC above 100A recommended by national standards.



The resistance of the conductive loop of high-voltage circuit breakers mainly depends on the contact resistance between the moving and static contacts. The presence of contact resistance increases the loss when the conductor is energized, raising the temperature at the contact point. Its value directly affects the current-carrying capacity during normal operation and, to some extent, the ability to interrupt short-circuit currents. Therefore, the loop resistance test value of each phase of the circuit breaker's conductive loop is an important data for installation, maintenance, and quality acceptance.



The Loop Resistance Tester is designed by combining digital circuit technology with switching power supply technology. It is applicable for measuring contact resistance and loop resistance of switch control equipment. The test current adopts the DC 100A/200A recommended by national standards. It can directly measure loop resistance and contact resistance at currents of 100A/200A and display the results digitally. The switch loop resistance tester offers accurate measurement and stable performance, suitable for on-site high-voltage switch maintenance in power and supply departments and loop resistance testing in high-voltage switch factories. Alternative names for the Loop Resistance Tester include: Switch Loop Resistance Tester, Contact Resistance Tester, and Contact Loop Resistance Tester. This instrument features small size, light weight, strong anti-interference capability, high accuracy, easy operation, and comprehensive protection functions.

Working Principle

Loop Resistance Tester Album

Loop Resistance Tester Album (3)

In power systems, many high-current electrical equipment require accurate measurement of loop resistance during preventive tests and acceptance tests. Circuit breakers are important electrical equipment in power systems. According to the latest standard "JJG1052-2009 Loop Resistance Verification Regulation", national standards GB763, GB50150, and power industry standard DL/T596, the measurement of conductive loop resistance of circuit breakers is specified: it should be measured using the DC voltage drop method with a current not less than 100A.



The resistance of the conductive loop of circuit breakers mainly depends on the contact resistance between the moving and static contacts. The presence of contact resistance increases the loss when the conductor is energized, raising the temperature at the contact point. Its value directly affects the current-carrying capacity during normal operation and, to some extent, the ability to interrupt short-circuit currents. Therefore, the loop resistance value of each phase of the circuit breaker's conductive loop is an important data for installation, maintenance, and quality acceptance.



There are many methods for measuring contact resistance. Japanese scholar Isao Minowa proposed using superconducting quantum devices to measure contact resistance, H.Archi proposed using the electrolytic cell method, and Polish scholar Jerzy Kaczarek proposed using the third harmonic method. These methods are generally used in laboratory conditions for electrical contact research. In engineering, the four-terminal method is commonly used to measure the contact resistance of actual contacts.



Previously, the DC double-arm bridge was commonly used to measure the contact resistance of circuit breakers. However, when using the double-arm bridge to measure the conductive loop resistance of circuit breakers, since the measuring circuit of the double-arm bridge passes a weak current, it is difficult to eliminate the oxide film with high resistance, resulting in a larger indicated resistance value. However, the oxide film is easily broken down under large currents and does not hinder the normal current flow. Therefore, when testing using the DC voltage drop method, the current should not be too small.



The resistance of the conductive loop of high-voltage circuit breakers mainly depends on the contact resistance between the moving and static contacts. The presence of contact resistance increases the loss when the conductor is energized, raising the temperature at the contact point. Its value directly affects the current-carrying capacity during normal operation and, to some extent, the ability to interrupt short-circuit currents. Therefore, the loop resistance value of each phase of the circuit breaker's conductive loop is an important data for installation, maintenance, and quality acceptance.



Due to the oxide film between switch contacts, if a small current is used for testing, the test results are generally much larger due to the influence of the oxide film. However, the oxide film can be broken down under large currents. Theoretically, as long as the test current does not exceed the rated current, the larger the better. However, when formulating the regulations, considering the production level of relevant domestic instruments at that time, a provision was made that the current should not be less than 100A. Power Equipment and Ground Grid Continuity Resistance Tester



The reliable and effective connection between the grounding down conductor of power equipment and the ground grid is the fundamental guarantee for the safe operation of power equipment and the personal safety of operators. Although necessary anti-corrosion treatment has been applied to the connection points of grounding down conductors during the construction of grounding devices, the connection points in the soil are still affected by moisture and other factors for a long time, leading to corrosion, disconnection, loosening, and other phenomena, resulting in increased resistance at the contact points between the grounding down conductor and the ground grid, failing to meet the requirements of power regulations, posing safety hazards during equipment operation, and in severe cases, causing equipment to operate disconnected from the ground grid. It can be used for precise measurement of the continuity resistance between the grounding down conductor of power equipment and the grounding grid or adjacent equipment.



The Ground Grid Continuity Resistance Tester is used to measure the continuity resistance value of grounding down conductors, and to determine fault points by comparing historical test values and adjacent point test values. The working power of the Ground Grid Continuity Resistance Tester is provided by an internal lithium battery, requiring no external AC power supply. The testing process is controlled by a microcontroller, featuring simple operation, fast testing speed, stable test data, and portability.



Since the contact resistance of circuit breakers is very small, only a high test current can ensure certain accuracy and stronger anti-interference capability.



It is used for high-precision measurement of circuit breaker contact resistance and current-carrying conductor resistance, capable of continuously and stably outputting large currents, and complies with the relevant provisions of DLT845.4-2004 "General Technical Conditions for Resistance Measuring Devices Part 4: Loop Resistance Testers".