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Advanced Forward Methods for Complex Wire Fault Modeling

机译:复杂导线故障建模的高级转发方法

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This paper presents a novel implementation of forward modeling methods for simulating the reflectometry responses of faults in the shields of coaxial cable or other shielded lines. First, a cross-sectional modeling was used to determine the characteristic impedance of various wire sections. These values were then incorporated into longitudinal models to simulate the overall reflectometry response. The finite-difference method is a cross-sectional modeling method that was used to simulate cross-sectional characteristic impedance. Results obtained using this method are accurate within 1% of analytical solutions, and can be simulated very quickly using in-house codes. The finite-integral technique (FIT) is also used to model chafes on wires with TEM and higher order modes. Because FIT is computationally slow, a curve-fitting technique is used to predict the chafe profile within 0.01% of the simulated values. Modified transmission matrix and S-parameter methods are used to provide responses with accuracies within 0.3% of the measured profiles.
机译:本文介绍了一种正向建模方法的新实现,该方法可以模拟同轴电缆或其他屏蔽线的屏蔽层中故障的反射测量响应。首先,使用横截面建模来确定各种导线截面的特征阻抗。然后将这些值合并到纵向模型中,以模拟总体反射法响应。有限差分法是用于模拟横截面特征阻抗的横截面建模方法。使用此方法获得的结果在分析溶液的1%之内是准确的,并且可以使用内部代码非常快速地模拟。有限积分技术(FIT)也用于通过TEM和高阶模式对导线上的摩擦粉进行建模。由于FIT计算速度较慢,因此使用曲线拟合技术来预测摩擦轮廓,该摩擦轮廓在模拟值的0.01%之内。修改后的传输矩阵和S参数方法用于提供响应,其精度在所测曲线的0.3%之内。

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