Measurement of Voltage Transformer Errors using a Self-calibrating Multi-ratio Capacitive Divider System

F. Emms
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Abstract

A new portable voltage transformer (VT) calibration system has been developed, based on an existing fixed laboratory system. The existing system is based on a high voltage compressed gas capacitor in the upper arm of a voltage divider, and a range of precision air capacitors in the lower arm, with the errors being balanced via the use of inductive voltage dividers. The new system utilises the same high voltage compressed gas capacitor in the upper arm but in the lower arm uses small, class 1, multi-layer ceramic capacitors. Instead of balancing the system with inductive voltage dividers, a direct measurement of the VT errors is made with the use of an integrating amplifier and two digital multimeters (DMMs). One DMM measures the secondary voltage and the other measures the relative phase and amplitude of the error voltage from an integrating amplifier. Using a VT with the nominal ratio of 10:1, and the ability of switching several of the lower arm ceramic capacitors into the upper arm, and then following a sequence of measurements, all the relative capacitance values can be calculated using a mathematical build-up process. The new portable VT calibration system has achieved a typical measurement uncertainty for voltage error and phase displacement of better than 0.003% and 0.003 crad respectively. It can test VTs with applied primary voltages from 30 V to 220 kV, and secondary voltages from 10 V to 300 V, with the ratio settings of the capacitive divider in the range of 0.1 to 2200. The system has been optimised for operating at 50 Hz and 60 Hz, but theoretically it could be used for higher frequencies.
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用自校准多比电容分压器系统测量电压互感器误差
在现有固定实验室系统的基础上,研制了一种新型便携式电压互感器校准系统。现有系统基于分压器上臂的高压压缩气体电容器,以及下臂的一系列精密空气电容器,通过使用电感分压器来平衡误差。新系统在上臂使用相同的高压压缩气体电容器,但在下臂使用小型的1类多层陶瓷电容器。不使用电感分压器平衡系统,而是使用一个积分放大器和两个数字万用表(dmm)直接测量VT误差。一个DMM测量次级电压,另一个测量来自积分放大器的误差电压的相对相位和幅度。使用标称比例为10:1的VT,以及将几个下臂陶瓷电容器切换到上臂的能力,然后按照一系列测量,所有相对电容值都可以使用数学累积过程计算出来。新型便携式VT标定系统的电压误差和相移测量不确定度分别小于0.003%和0.003克拉。它可以测试一次电压为30v至220kv,二次电压为10v至300v的电压,电容分压器的比值设置范围为0.1至2200。该系统已被优化为工作在50赫兹和60赫兹,但理论上它可以用于更高的频率。
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