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PSICE Model for a Coaxial Cable in High Frequency Domain Submitted to a Longitudinal Temperature Gradient Using Kelvin-Bessel Asymptotic Functions

机译:使用开尔文-贝塞尔渐近函数的同轴电缆在高频域中经受纵向温度梯度的PSICE模型

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This paper investigates on the propagation in a coaxial cable with the assumption that the distributed parameters are variable with the longitudinal distance from the source due to a linear temperature variation. This work addresses the problem of propagation in borehole conditions where the temperature varies by approximately 3°C/100m. In addition to the temperature variation along the coax we have considered the high frequency domain where the skin effect is severe and leading to very high losses. Unlike the uniform temperature distribution study this case is very complex and that is the reason why we have provided a model for PSPICE simulator to represent the cascaded cells because the analytic solution is extremely tedious to solve. The idea is thus to replace the coax cable by cascaded elements whose resistance and impedance are calculated via Kelvin-Bessel functions. Because the number of cells is huge we have written a C language program to generate automatically the PSPICE .CIR file. Each cell has its own resistance and inductance according to its temperature. The capacity is assumed to be constant along the coax for each cell. Besides the PSPICE program, and for comparison, we have developed a recursive method for computing the attenuation due to the whole cascaded cells. The comparison between PSPICE and the recursive method has shown results in very good agreement
机译:本文研究同轴电缆中的传播,并假设由于线性温度变化,分布参数随距源的纵向距离而变化。这项工作解决了温度变化约3°C / 100m的井眼条件下的传播问题。除了沿同轴电缆的温度变化外,我们还考虑了高频域,在该频带中趋肤效应很严重,并导致非常高的损耗。与均匀温度分布研究不同,这种情况非常复杂,这就是我们提供PSPICE仿真器模型来表示级联细胞的原因,因为解析解决方案非常繁琐。因此,该想法是用级联元件代替同轴电缆,该级联元件的电阻和阻抗通过开尔文-贝塞尔函数进行计算。因为单元数很大,所以我们编写了一个C语言程序来自动生成PSPICE .CIR文件。每个电池根据其温度都有自己的电阻和电感。对于每个小区,假定容量沿同轴电缆是恒定的。除了PSPICE程序外,为了进行比较,我们还开发了一种递归方法来计算由于整个级联单元引起的衰减。 PSPICE与递归方法的比较显示出非常好的一致性

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