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Research and Experiments on a Unipolar Capacitive Voltage Sensor

机译:单极电容电压传感器的研究与实验

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摘要

Voltage sensors are an important part of the electric system. In service, traditional voltage sensors need to directly contact a high-voltage charged body. Sensors involve a large volume, complex insulation structures, and high design costs. Typically an iron core structure is adopted. As a result, ferromagnetic resonance can occur easily during practical application. Moreover, owing to the multilevel capacitor divider, the sensor cannot reflect the changes of measured voltage in time. Based on the electric field coupling principle, this paper designs a new voltage sensor; the unipolar structure design solves many problems of traditional voltage sensors like the great insulation design difficulty and high costs caused by grounding electrodes. A differential signal input structure is adopted for the detection circuit, which effectively restrains the influence of the common-mode interference signal. Through sensor modeling, simulation and calculations, the structural design of the sensor electrode was optimized, miniaturization of the sensor was realized, the voltage division ratio of the sensor was enhanced, and the phase difference of sensor measurement was weakened. The voltage sensor is applied to a single-phase voltage class line of 10 kV for testing. According to the test results, the designed sensor is able to meet the requirements of accurate and real-time measurement for voltage of the charged conductor as well as to provide a new method for electricity larceny prevention and on-line monitoring of the power grid in an electric system. Therefore, it can satisfy the development demands of the smart power grid.
机译:电压传感器是电气系统的重要组成部分。在使用中,传统的电压传感器需要直接接触高压带电体。传感器涉及大体积,复杂的绝缘结构以及高昂的设计成本。通常采用铁芯结构。结果,在实际应用中容易发生铁磁共振。此外,由于采用了多级电容分压器,传感器无法及时反映所测电压的变化。基于电场耦合原理,设计了一种新型的电压传感器。单极结构设计解决了传统电压传感器的许多问题,例如绝缘设计难度大和接地电极造成的高成本。检测电路采用差分信号输入结构,有效抑制了共模干扰信号的影响。通过传感器建模,仿真和计算,优化了传感器电极的结构设计,实现了传感器的小型化,提高了传感器的分压比,减小了传感器测量的相位差。电压传感器应用于10 kV的单相电压等级线路以进行测试。根据测试结果,所设计的传感器既可以满足对充电导体电压进行实时准确测量的要求,又可以为防止电盗窃和电网在线监测提供新的方法。电气系统。因此,可以满足智能电网的发展需求。

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