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A novel pseudonoise tester for transmission line fault location and identification using pseudorandom binary sequences

机译:新型伪噪声测试仪,用于利用伪随机二进制序列进行传输线故障定位和识别

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摘要

A novel pulse echo test methodology, using PRBS excitation, is presented in this paper as an alternative to Time Domain Reflectometry (TDR) for transmission line fault location and identification. The essence of this scheme is the cross correlation (CCR) of the fault echo response with the input PRBS test perturbation which results in a unique signature for fault type identification, if any, or load termination present as well as its distance from the point of test stimulus injection. This fault location technique can used in a number of key industrial applications incorporating printed circuit boards, overhead transmission lines and underground cables in inaccessible locations which rely on a metallic conductor pathway for power transfer or signal propagation. As an improved method pseudonoise (PN) fault identification can be performed over several cycles at low amplitude levels online to reject normal signal traffic and extraneous noise pickup for the purpose of fault coverage location and identification. In this paper a high frequency co-axial transmission line model is presented for transmission line behavioural simulation with pseudorandom binary sequence (PRBS) stimulus injection under known load terminations to mimic fault conditions encountered in practice for proof of concept. Simulation results, for known resistive fault terminations, with measured CCR response demonstrate the effectiveness of the PRBS test method in fault type identification and location. Key experimental test results are also presented for a co-axial cable, under laboratory controlled conditions, which substantiates the accuracy of PRBS-CCR diagnostic method of fault recognition and location using a range of resistive fault terminations. Results demonstrating the effectiveness of multiple PN cycle correlation with inherent transmission link noise rejection, which accentuates the peak fault CCR-to-noise ratio, for improved echo response resolution along with a theoretical analysis for sa- e are also presented. The accuracy of the method is further validated through theoretical calculations via known co-axial cable parameters, fault resistance terminations and link distances in transmission line experimental testing. Derived quantities from experimental testing such as estimated reflection coefficients, fault termination resistances and VSWR, which are in close agreement with theoretical considerations, demonstrate the accuracy of and further enhance confidence in the PN test method.
机译:本文提出了一种使用PRBS激励的新型脉冲回波测试方法,以替代时域反射法(TDR)进行传输线故障定位和识别。该方案的本质是故障回波响应与输入PRBS测试扰动的互相关(CCR),这将为故障类型识别(如果有)或负载终止以及距故障点的距离提供唯一的签名。测试刺激注射。这种故障定位技术可用于许多关键工业应用中,这些印刷电路板,架空传输线和地下电缆位于难以接近的位置,这些位置依靠金属导体路径进行功率传输或信号传播。作为一种改进的方法,伪噪声(PN)故障识别可以在线以低幅度级别在几个周期内执行,以拒绝正常信号流量和外部噪声拾取,以进行故障覆盖范围定位和识别。在本文中,提出了一种高频同轴传输线模型,用于在已知负载终止条件下通过伪随机二进制序列(PRBS)激励注入进行传输线行为仿真,以模拟实践中遇到的故障条件,以进行概念验证。针对已知电阻性故障终端的仿真结果,以及测得的CCR响应,证明了PRBS测试方法在故障类型识别和定位中的有效性。还提供了在实验室控制条件下同轴电缆的关键实验测试结果,该结果证实了PRBS-CCR诊断方法使用一系列电阻性故障终端进行故障识别和定位的准确性。还提出了一些结果,这些结果证明了多个PN周期相关性与固有传输链路噪声抑制的有效性,这种噪声增强了峰值故障CCR噪声比,从而改善了回波响应分辨率,并提供了sae的理论分析。通过已知的同轴电缆参数,故障电阻终端和传输线实验测试中的链路距离,通过理论计算进一步验证了该方法的准确性。来自实验测试的推导量,例如估计的反射系数,故障端接电阻和VSWR,与理论上的考虑非常吻合,证明了PN测试方法的准确性并进一步增强了人们的信心。

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