A 3-D numerical simulation of partial discharge acoustic wave propagation in a model transformer

A. Akumu, F. Adachi, N. Kawaguchi, R. Ozaki, H. Ihori, M. Fujii, K. Arii
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引用次数: 13

Abstract

In this paper, the authors present a three-dimensional numerical simulation of partial discharge (PD) acoustic wave propagation that has been developed to provide time-domain signal representation in a model transformer. The numerical modeling of acoustic PD data is used to support interpretations of laboratory experimental data and to enhance the understanding of acoustic wave propagation in a structure like the power transformer, and hence PD source location in the same. It is intended that an extension of the work presented here, to account for real transformer geometry and also to visualize the propagation of acoustic wave fronts, will later be compared with field results. The three-dimensional wave equation, given by c/sup 2//spl nabla//sup 2/P=/spl part//sup 2/P//spl part/t/sup 2/, where c is the acoustic velocity and P the pressure wave field, defines an initial value problem and describes time evolution. The goal of the numerical code is to track that time evolution with some desired accuracy taking into consideration the boundary conditions that govern the evolution in time of points on the boundary of the spatial region of interest. This is particularly important for the satisfactory modeling of a complex structure like power transformer. In solving the above equation using the finite-difference method, of particular interest are the conditions of numerical stability. In this paper, the authors apply the stability analysis method originally developed by Von Neumann. The simulation results are in agreement with the results obtained from the laboratory experiments.
局部放电声波在模型变压器中传播的三维数值模拟
在本文中,作者提出了局部放电(PD)声波传播的三维数值模拟,该模拟已发展为在模型变压器中提供时域信号表示。声学PD数据的数值模拟用于支持实验室实验数据的解释,并增强对声波在电力变压器等结构中的传播的理解,从而确定相同结构中的PD源位置。这里提出的工作的延伸,考虑到真实的变压器几何形状,也可视化声波前的传播,将在稍后与现场结果进行比较。三维波动方程为c/sup 2//spl nabla//sup 2/P=/spl part//sup 2/P//spl part/t/sup 2/,其中c为声速,P为压力波场,定义了一个初值问题,描述了时间演化。数值代码的目标是在考虑控制感兴趣空间区域边界上点的时间演化的边界条件的情况下,以期望的精度跟踪时间演化。这对于电力变压器等复杂结构的满意建模尤为重要。在用有限差分法求解上述方程时,数值稳定性的条件特别值得注意。本文采用冯·诺伊曼最初提出的稳定性分析方法。仿真结果与室内实验结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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