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Transient Simulation of Voltage and Current Distributions within Transmission Lines

机译:传输线内电压和电流分布的瞬态仿真

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The problem of analyzing transient in transmission line circuits is studied with emphasis on obtaining the transient voltage and current distributions. A new method for solving Telegrapher equation that characterizes the uniform transmission lines is presented. It not only gives the time domain solution of the line terminal voltage and current, but also their distributions within the lines. The method achieves its goal by treating the voltage and current distributions as distributed state variables and transforms the Telegrapher equation into an ordinary differential equation. This allows the coupled transmission lines to be treated as a single component that behaves like other lumped dynamic components, such as capacitors and inductors. Using Backward Differentiation Formulae for time discretization, the transmission line component is converted to its time domain companion model, from which its local truncation error for time step control can be derived. As the shapes of the voltage and current distributions get more complicated with time, they can be approximated by piecewise exponential functions with controllable accuracy. A segmentation algorithm is thus devised so that the line is dynamically bisected to guarantee that the total piecewise exponential approximation error is only a small fraction of the local truncation error. Using this approach, the user can see the line voltage and current at any point and time freely without explicitly segment the line before starting the simulation.
机译:研究传输线电路中的瞬态问题,重点是获得瞬态电压和电流分布。提出了一种解决Telegrapher方程的新方法,该方程表征了均匀的传输线。它不仅给出了线路端子电压和电流的时域解,而且给出了它们在线路中的分布。该方法通过将电压和电流分布视为分布状态变量来实现其目标,并将Telegrapher方程转换为一个常微分方程。这使得耦合的传输线可以被视为单个组件,其行为类似于其他集总动态组件,例如电容器和电感器。使用向后微分公式进行时间离散,将传输线组件转换为其时域伴侣模型,从中可以导出其用于时间步长控制的局部截断误差。随着时间的推移,电压和电流分布的形状变得越来越复杂,可以通过分段指数函数以可控制的精度近似它们。因此,设计了一种分割算法,以便将线动态平分以保证总的分段指数近似误差仅是局部截断误差的一小部分。使用这种方法,用户可以在任意点和时间自由地查看线路电压和电流,而无需在开始仿真之前明确划分线路。

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