Experimental comparison of operational amplifier and voltage sensor-based zero-crossing detector circuits for power electronic converters

Osamah Al-Dori, A. Vural
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Abstract

Abstract Zero-crossing detection (ZCD) circuits are widely utilized to synchronize power electronics converters with the grid and measure frequency and phase angle. They are usually designed using an operational amplifier (op-amp) or a voltage sensor accompanied by a processing device. The performance profile of these circuits alters depending on many factors, including the input voltage level. An experimental comparison between the two ZCD circuits across various input voltage levels does not appear to be presented in the literature. This work experimentally compares the performance of an op-amp and an isolated voltage sensor-based ZCD circuits, considering their rise/fall latency and precision in detecting the zero-crossing points (ZCPs). The design process and the experimental results demonstrated that the op-amp-based ZCD circuit is susceptible to false and multiple detections of ZCPs and is best suited for relatively low-voltage applications. On the other hand, the voltage sensor-based ZCD circuit allows signal conditioning and is best suited for relatively high voltage applications.
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基于运算放大器和电压传感器的电力电子转换器过零检测器电路的实验比较
摘要 零交叉检测(ZCD)电路广泛应用于电力电子转换器与电网的同步以及频率和相位角的测量。它们通常使用运算放大器(运算放大器)或电压传感器以及处理装置进行设计。这些电路的性能取决于许多因素,包括输入电压电平。文献中似乎没有对两种 ZCD 电路在不同输入电压电平下的性能进行实验比较。本研究通过实验比较了基于运算放大器和隔离电压传感器的 ZCD 电路的性能,同时考虑了它们的上升/下降延迟和检测零交叉点 (ZCP) 的精度。设计过程和实验结果表明,基于运算放大器的 ZCD 电路容易出现误检测和多次检测 ZCP 的情况,最适合相对低压的应用。另一方面,基于电压传感器的 ZCD 电路允许信号调节,最适合相对较高的电压应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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