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首页> 外文期刊>Electromagnetic Compatibility, IEEE Transactions on >FDTD Computation of Lightning-Induced Voltages on Multiconductor Lines With Surge Arresters and Pole Transformers
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FDTD Computation of Lightning-Induced Voltages on Multiconductor Lines With Surge Arresters and Pole Transformers

机译:带有避雷器和磁极变压器的多导线线路上雷电感应电压的FDTD计算

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摘要

In this paper, lightning-induced voltages on multiconductor lines with surge arresters and pole transformers have been computed using the 3-D finite-difference time-domain method. This method uses a subgrid model, in which spatial discretization is fine (cell side length is 0.5 m) in the vicinity of overhead wires and coarse (cell side length is 5 m) in the rest of the computational domain. In the simulations, four-conductor lines with surge arresters and pole transformers are considered. The 1-cm-radius overhead conductors are represented by placing a wire having an equivalent radius of about 0.12 m (≈ 0.23 × 0.5 m) in the center of an artificial rectangular prism having a cross-sectional area of 1 m × 1 m (2 cells × 2 cells) and the modified (relative to air) constitutive parameters: lower electric permittivity and higher magnetic permeability. The computed lightning-induced voltage waveforms agree reasonably well with the corresponding ones measured in the small-scale experiment of Piantini (2007).
机译:在本文中,已使用3-D有限差分时域方法计算了带有避雷器和极变压器的多导线线路上的雷电感应电压。该方法使用子网格模型,其中在架空导线附近空间离散很好(单元边长度为0.5m),而在其余计算域中空间离散化为粗糙(单元边长度为5m)。在仿真中,考虑了带有避雷器和极变压器的四芯线。半径为1厘米的架空导体的表示方法是,将一根等效半径约为0.12 m(≈0.23×0.5 m)的导线放在横截面积为1 m×1 m( 2个单元×2个单元)和修改后的(相对于空气)本构参数:较低的介电常数和较高的磁导率。计算得出的雷电感应电压波形与Piantini(2007)的小规模实验中测得的相应波形相当吻合。

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