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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Conductivity Characterization of Insulation and Its Effects on the Calculation of the Electric Field Distribution in HVDC Cables
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Conductivity Characterization of Insulation and Its Effects on the Calculation of the Electric Field Distribution in HVDC Cables

机译:绝缘的电导性表征及其对HVDC电缆电场分布计算的影响

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The calculation of an electric field distribution provides the basis for the structural design of the insulation, and an accurate characterization of conductivity as a function of temperature and electric field forms an important basis for the simulation of the electric field distribution in HVDC (high-voltage direct current) cables. However, the conductivity functions that describe the insulating materials used for HVDC cables in different studies are different, and very little has been reported regarding how to choose the most accurate function. In this work, the conductivity of insulating materials used for HVDC cables is characterized, and the effects of the conductivity characterization on the simulation of the electric field in HVDC cables are studied. First, eight common conductivity functions are compared qualitatively. Then, the conductivities of XLPE for different temperatures and electric fields are measured, and a data fitting technique is used to analyze the coincidence degree between different functions and the test results. Finally, the steady-state electric field distributions of HVDC cables for different temperature gradients are simulated in COMSOL Multiphysics. The results show that the sum of the square of the relative errors of the fitting when using the original functions is larger than that achieved when using the logarithmic form of the functions. The deviations in the electric field caused by taking the logarithm of different functions are smaller.
机译:电场分布的计算为绝缘的结构设计提供了基础,以及作为温度和电场的功能的电导率的精确表征为HVDC中的电场分布模拟的重要依据(高压直流电)电缆。然而,描述了用于不同的研究HVDC电缆绝缘材料的导电性的功能是不同的,而且一直很少关于如何选择最准确的功能的报道。在这项工作中,研究了用于HVDC电缆的绝缘材料的导电性,并研究了电导率表征对HVDC电缆中电场模拟的影响。首先,定性比较八个常见电导率函数。然后,测量不同温度和电场的XLPE的电导率,数据拟合技术用于分析不同功能与测试结果之间的巧合程度。最后,在COMSOL Multiphysics中模拟了不同温度梯度的HVDC电缆的稳态电场分布。结果表明,使用原来的功能时,接头的相对误差的平方的总和比使用的功能的对数形式时实现的大。通过采用不同功能的对数引起的电场中的偏差较小。

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