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High-speed analogue sampled-data signal processing for real-time fault location in electrical power networks

机译:高速模拟采样数据信号处理,用于电力网络中的实时故障定位

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摘要

The emulation of low-loss or lossless one-dimensional (1D) or 2D transmission mediums using analogue sampled-data signal processing is presented. Based on discrete-time wave propagation simulation, transmission lines are emulated with many elementary identical delay elements, implemented by simple equivalent switched-capacitor (SC) circuits. The accuracy and limitations of this discrete time model are studied in the frame of power network fault location using electromagnetic time-reversal principle. The sensitivities to non-ideal effects usually plaguing analogue CMOS SC circuits, such as amplifier finite open-loop gain, offset, and parasitic charge injection due to clock feedthrough, are evaluated in the same context. It is shown that the SC line emulation is well suited to the presented fault location technique and considerably reduces the fault location time (by a factor up to 100) in comparison to standard digital solutions, allowing fault location resolutions of typically 1% within a few hundred milliseconds. These expectations are confirmed by measurements realised on the presented line model integrated-circuit, implemented in an AMS 0.35 μm CMOS process. The speed improvement obtained through the presented method is essential, potentially allowing real-time fault management in power grids.
机译:提出了使用模拟采样数据信号处理对低损耗或无损一维(1D)或2D传输介质的仿真。基于离散时间波传播仿真,传输线可以通过许多简单的等效开关电容器(SC)电路实现,具有许多基本相同的延迟元件。利用电磁时间反转原理,在电网故障定位的框架下研究了该离散时间模型的准确性和局限性。通常在相同的情况下评估对通常使模拟CMOS SC电路困扰的非理想效应的敏感性,例如放大器有限的开环增益,失调和由于时钟馈通而引起的寄生电荷注入。结果表明,与标准数字解决方案相比,SC线路仿真非常适合提出的故障定位技术,并且大大减少了故障定位时间(最多减少了100倍),从而使故障定位的分辨率通常在少数情况下为1%一百毫秒。这些期望可以通过在AMS0.35μmCMOS工艺中实现的,在线模型集成电路上实现的测量结果得到证实。通过提出的方法获得的速度提高至关重要,有可能实现电网的实时故障管理。

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