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Design and implementation of a series voltage sag compensator under practical utility conditions

机译:实际使用条件下串联电压暂降补偿器的设计与实现

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摘要

Voltage sags have become one of the most important power quality concerns in recent years. According to survey results across the US, voltage sags and short-duration power outages account for 92% of power quality problems encountered by industrial customers. Voltage sags often cause undervoltage faults in various sensitive loads and subsequently interrupt the manufacturing processes. Such interruptions often inflict severe losses for industries. In Taiwan, ROC, most high-tech manufacturers use uninterruptible power supplies to avoid interruptions, but the cost effectiveness of such an approach remains unclear. As the utility grid continues to improve the reliability of electric power, the inverter-based voltage sag compensator has become a viable solution to prevent production interruptions resulting from voltage sags. The existing sag compensation systems accomplish a fast response within a small fraction of a fundamental cycle by tracking the line voltages closely, and switch on the compensator whenever the voltage waveforms deviate from the normal values. However, the utility voltages often contain transient spikes with amplitudes up to 200% resulting from switching of power-factor-correction capacitors, circuit breakers switchings, lightning strikes, and so on. Such transient disturbances may trigger the sag compensator into operation if its controller is very sensitive. The switching frequency of the sag compensator inverter is inadequate to compensate the narrow pulses of voltage spikes. Furthermore, the power semiconductor devices (like insulated gate bipolar transistors) of the inverter may also be damaged due to overvoltage by the surges. In this paper, a brief overview of power quality issues of a high-tech industry park in Taiwan is provided to validate the need for ride-through technologies. A synchronous-reference-frame-based controller for the inverter-based voltage sag compensator is also presented. A sag detection mechanism is included in the controller for correct and prompt identification of voltage sags. Disturbances like voltage spikes are attenuated to avoid any false triggering of the compensator. The overall system responds to voltage sags and restores the voltage back to balanced 1.0 pu for critical loads within one-eighth to one-fourth of a cycle, which meet the requirement of industry standards like the SEMI-F47 standard. Simulation and laboratory test results are presented to verify the functionality of the proposed system.
机译:近年来,电压骤降已成为最重要的电能质量问题之一。根据全美的调查结果,电压骤降和短时断电占工业客户遇到的电能质量问题的92%。电压骤降​​通常会在各种敏感负载中引起欠压故障,并随后中断制造过程。这种中断通常给行业造成严重损失。在台湾中华民国,大多数高科技制造商都使用不间断电源来避免中断,但是这种方法的成本效益仍不清楚。随着公用电网不断提高电力的可靠性,基于逆变器的电压暂降补偿器已成为一种可行的解决方案,可以防止电压暂降引起的生产中断。现有的骤降补偿系统通过紧密跟踪线路电压在基本周期的一小部分内实现快速响应,并且每当电压波形偏离正常值时就接通补偿器。但是,公用电源电压通常包含功率因数校正电容器的切换,断路器的切换,雷击等导致的幅度高达200%的瞬态尖峰。如果其控制器非常敏感,则此类瞬态干扰可能会导致下垂补偿器工作。突降补偿器逆变器的开关频率不足以补偿电压尖峰的窄脉冲。此外,逆变器的功率半导体器件(如绝缘栅双极晶体管)也可能由于电涌引起的过电压而损坏。在本文中,对台湾高科技产业园区的电能质量问题进行了简要概述,以验证对穿越技术的需求。还提出了基于逆变器的电压暂降补偿器的基于同步参考帧的控制器。控制器中包含一个下垂检测机制,用于正确,迅速地识别电压下垂。诸如电压尖峰之类的干扰会被消除,以避免补偿器的任何错误触发。整个系统对电压骤降作出响应,并在八分之一到四分之一的周期内将关键负载的电压恢复到平衡的1.0 pu,从而满足SEMI-F47标准等行业标准的要求。给出了仿真和实验室测试结果,以验证所提出系统的功能。

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