考虑非理想电网条件的并联变流器交流微电网调节

Kripa Tiwari, Bhim Singh
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引用次数: 0

摘要

本研究提出了一种集成可再生能源的交流微电网,以提高能源的可持续性。在这个系统中,风能和太阳能最初通过DC - DC转换器转换成直流电;随后,它们通过并联电压源转换器集成到共同的交流总线中。目标是为本地负载提供不间断的电力,同时解决电力质量问题并有效管理系统内的潮流。这项研究的主要贡献是开发了统一的潮流策略,通过考虑峰值和非峰值电价,以及优化电网和存储利用率的电池充电状态,确保可靠的电力输送。此外,当电力电子电路与可再生能源集成时,电网在公共耦合点会遇到电能质量问题。因此,为了缓解公共耦合点的电能质量问题,特别是电力电子集成,基于幅度积分器的锁频环路与谐波解耦网络相结合,用于提取电网电压的基本分量并减少谐波失真。通过硬件样机的实验室测试,验证了所提出的拓扑和控制策略的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Regulation of parallel converters based AC microgrid considering non-ideal grid conditions

Regulation of parallel converters based AC microgrid considering non-ideal grid conditions

This study proposes an alternating current microgrid that integrates renewable energy sources to enhance energy sustainability. In this system, wind and solar power are initially converted to DC using DC–DC converters; subsequently, they are integrated into a common AC bus through parallel voltage source converters. The goal is to provide uninterrupted power to local loads while addressing power quality issues and efficiently managing power flow within the system. The main contribution of this study is the development of a unified power flow strategy that ensures reliable power delivery by considering peak and off-peak electricity pricing, as well as the battery state of charge for optimised grid and storage utilisation. Moreover, when the power electronics circuitry is integrated with renewable energy sources, the grid encounters power quality issues at the point of common coupling. Therefore, to mitigate power quality issues at the point of common coupling, particularly with power electronics integration, a frequency-locked loop based on an amplitude integrator, coupled with a harmonic decoupling network, is used to extract the fundamental components of the grid voltage and reduce harmonic distortion. The proposed topology and control strategies are validated through laboratory testing using a hardware prototype, with the test results demonstrating their effectiveness.

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