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Analysis of the Light Propagation Model of the Optical Voltage Sensor for Suppressing Unreciprocal Errors

机译:抑制不可逆误差的光电压传感器的光传播模型分析

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An improved temperature-insensitive optical voltage sensor (OVS) with a reciprocal dual-crystal sensing method is proposed. The inducing principle of OVS reciprocity degradation is expounded by taking the different temperature fields of two crystals and the axis-errors of optical components into consideration. The key parameters pertaining to the system reciprocity degeneration in the dual-crystal sensing unit are investigated in order to optimize the optical sensing model based on the Maxwell's electromagnetic theory. The influencing principle of axis-angle errors on the system nonlinearity in the Pockels phase transfer unit is analyzed. Moreover, a novel axis-angle compensation method is proposed to improve the OVS measurement precision according to the simulation results. The experiment results show that the measurement precision of OVS is superior to ±0.2% in the temperature range from ?40 °C to +60 °C, which demonstrates the excellent temperature stability of the designed voltage sensing system.
机译:提出了一种具有双向双晶感测方法的改进型温度不敏感光学电压传感器。通过考虑两种晶体的不同温度场和光学元件的轴误差,阐述了OVS互易性下降的诱发原理。为了优化基于麦克斯韦电磁理论的光学传感模型,研究了双晶传感单元中与系统互易性退化有关的关键参数。分析了轴角误差对Pockels相转移单元系统非线性的影响原理。此外,根据仿真结果,提出了一种新颖的轴角补偿方法,以提高OVS的测量精度。实验结果表明,在40°C至+60°C的温度范围内,OVS的测量精度优于±0.2%,这表明所设计的电压传感系统具有出色的温度稳定性。

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