Rated Capacitance Determination of a New 1000 kV Equipotential Shielding Capacitor Voltage Transformer Under the Interference of Stray Capacitance

2018 ◽  
Vol 33 (5) ◽  
pp. 2078-2086
Author(s):  
Wei Dong ◽  
Kunpeng Zha ◽  
Chong Gao ◽  
Feng Ji ◽  
Zhiyuan He
2017 ◽  
Vol 40 (13) ◽  
pp. 3824-3833
Author(s):  
Zhen-hua Li ◽  
Shuang Zhao

The voltage transformer based on capacitor divider is susceptible to stray capacitance and Bi4Ge3O12 crystal is sensitive to temperature, which leads to the decrease of measurement precision. To solve these questions, a kind of temperature self-healing optical voltage transformer based on the coaxial capacitor is proposed in this paper. By using coaxial capacitor divider structure instead of the traditional capacitor divider structure, and using a reference light path to achieve the function of temperature self-healing, the measurement accuracy of the optical voltage transformer can be improved. The theoretical analysis, modeling and simulation of several key technologies of coaxial capacitance are presented. Simulation and experimental results show that the temperature self-healing optical voltage transformer based on coaxial capacitor structure meets the requirements of the 0.2 class accuracies.


2021 ◽  
Vol 2066 (1) ◽  
pp. 012108
Author(s):  
Jie Huang ◽  
Xiaochen Niu ◽  
Zihan Zhou

Abstract Based on the working principle of capacitor voltage transformer, this paper analyzes the influence of the installation mode of induced voltage board in the switchgear on the spatial stray capacitance by taking the switchgear, which is widely used as the carrier. Ansys finite element analysis software is used to establish the models of the voltage sensing board under different installation modes, and the influence of environmental factors such as the position, structure and temperature of the voltage sensing board on the stray capacitance between the bus bar and the sensing board is analyzed; The three-dimensional model of electric field shield plate structure is established for simulation. The installation mode of the voltage sensing board and the influence of the shielding board on the stray capacitance are revealed.


2004 ◽  
Vol 87 (5) ◽  
pp. 237-244 ◽  
Author(s):  
W. Zang ◽  
G. Shu ◽  
Z. Feng ◽  
R. Unbehauen

1949 ◽  
Vol 1949 (11) ◽  
pp. 282-282
Author(s):  
E. Billig

Complexity ◽  
2021 ◽  
Vol 2021 ◽  
pp. 1-11
Author(s):  
Chuan Xiang ◽  
Xinwei Chen ◽  
Hongge Zhao ◽  
Zejun Ren ◽  
Guoqing Zhao

The capacitive voltage transformer (CVT) is a special measuring and protecting device, which is commonly applied in high-voltage power systems. Its measurement accuracy is affected seriously by the stray capacitances of the capacitance voltage divider (CVD) to ground and other charged parts. In this study, based on the boundary element method, a mathematical model was established firstly to calculate the stray capacitance. Then, the voltage distribution of the CVD was obtained by the CVD’s equivalent circuit model. Next, the effect of stray capacitance on the voltage distribution and the voltage difference ratio (VDR) of CVD was analysed in detail. We finally designed three types of shield and optimized their structure parameters to reduce VDR. The results indicated that the average deviation rate between calculated and experimental measured voltages is only 0.015%; that is to say, the method has high calculation precision. The stray capacitance of the CVD to ground is far larger than that of the CVD to the high-voltage terminal. It results in the inhomogeneous distribution of voltage and the increase of VDR. For the test CVT, its VDR exceeds the requirement of class 0.2. Among all of the three types of shield, the C type reduced the VDR of the test CVT the most. After optimizing the structure parameters of C-type shield, the VDR is further reduced to 0.08%. It is not only in accord with the requirement of class 0.2 but also has an adequate margin.


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