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Design of wide-range current transformer based on improved zero magnetic flux and turns compensation

机译:基于改进的零磁通量的宽范围电流互感器设计与转弯补偿

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In order to realize a wide-range measurement current transformer that can meet the requirements of measurement accuracy under a wide range of currents, this article analyzes the influencing factors of commonly used turns compensation. And based on influencing factors, the error of current transformer under different parameters is simulated. The study found that simply using turns compensation cannot meet the error requirements of a wide-range current transformer. This paper then uses a fixed compensation resistor based on the principle of zero magnetic flux to reduce the error under a wide range of primary current. However, this kind of improvement measures adopted for economy and large-scale promotion cannot achieve true zero magnetic flux. Coupled with the low initial permeability of the silicon steel core material, the accuracy under 1% of the rated current still cannot meet the requirements of wide-range transformer errors. In order to meet the measurement error of not more than 0.2% under the rated current of 1%~200%, it is necessary to combine the two methods of zero magnetic flux technology and turns compensation. And it is necessary to further optimize the parameters of the compensation resistance and the number of turns compensation. The research results of this article provide a certain reference for the design and implementation of wide-range current transformers.
机译:为了实现宽范围的测量电流互感器,可以在广泛的电流下满足测量精度的要求,本文分析了常用转型补偿的影响因素。基于影响因素,模拟了不同参数下电流变压器的误差。研究发现,即时使用转弯补偿不能满足宽范围电流互感器的错误要求。然后,本文使用固定补偿电阻基于零磁通量的原理,以减小频率范围内的误差。然而,这种经济和大规模促销采用这种改进措施无法实现真正​​的零磁通量。再加上硅钢芯材料的较低透磁性,额定电流的1%以下的精度仍然无法满足宽范围变压器误差的要求。为了满足1%〜200%的额定电流下不超过0.2%的测量误差,必须将两种零磁通技术方法结合起来并转动补偿。并且有必要进一步优化补偿电阻的参数和转弯补偿的数量。本文的研究结果为广泛电流变压器的设计和实施提供了一定的参考。

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