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Interference-rejecting current measurement method with tunnel magnetoresistive magnetic sensor array

机译:隧道磁阻磁传感器阵列的干扰电流测量方法

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摘要

Innovative methods for wide range measurement of electric current remains an active research problem in modern power systems. Conventional methods based on magnetic field readouts have realized non-contact current measurement by interpreting magnetic flux density into electric current, such as Hall effect and Rogowski Coil arrangement. TMR magnetic sensor has spread its application for current measurement due to its miniaturization, low cost, high response frequency and high sensitivity. However, due to the superposition of unwanted magnetic field, the magnetic fieldunder measurement is strongly affected. In this paper, a four-sensor array design is proposed to solve this problem. Transcendental equations, which can not only calculate the current under measurement but also the interference current at random places, are constructed. Numerical simulations, finite element analysis (FEA) of the field and laboratory experiments were performed to verify the proposed method. It is shown that when targeted current is 100 A and interference is 820 A, the largest simulated error is 3.92 × 10n-10n; when targeted current is 100 A and interference is 1000 A, error with FEA is 2.3796%, when targeted current and interference are both 500 A, experimental error is 4.14%. This verifies the effectiveness of the proposed method.
机译:大范围测量电流的创新方法仍然是现代电力系统中的一个活跃的研究问题。基于磁场读数的常规方法通过将磁通密度解释为电流来实现非接触电流测量,例如霍尔效应和Rogowski线圈布置。 TMR磁传感器因​​其小型化,低成本,高响应频率和高灵敏度而在电流测量中得到了广泛应用。但是,由于不需要的磁场的叠加,被测磁场受到很大影响。为了解决这个问题,本文提出了一种四传感器阵列设计。建立了超越方程,该方程不仅可以计算被测电流,还可以计算随机位置的干扰电流。进行了数值模拟,现场有限元分析(FEA)和实验室实验,以验证所提出的方法。结果表明,当目标电流为100 A且干扰为820 A时,最大仿真误差为3.92×10n -10 n;当目标电流为100 A且干扰为1000 A时,FEA的误差为2.3796%,当目标电流和干扰均为500 A时,实验误差为4.14%。这验证了所提出方法的有效性。

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