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Analysis and Mitigation of Interaction Dynamics in Active DC Distribution Systems With Positive Feedback Islanding Detection Schemes

机译:带有正反馈孤岛检测方案的有源DC配电系统中相互作用动力学的分析和缓解

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The direct current (DC) technology has gained significant momentum in modern distribution systems due to the high penetration levels of dc loads and dc-based distributed generators (DGs). Unlike conventional ac distribution systems, dc distribution systems have the following distinct features that challenge the system stability. 1) The high penetration level of tightly regulated converters used to interface both DGs and loads yields a destabilizing constant power load (CPL) effect in a considerable range of frequencies. 2) The filtering inductors and capacitors form poorly damped LC networks that interact negatively with the CPLs leading to further deterioration of the system stability. 3) Because islanding in a dc system can be hardly detected with passive methods due the absence of the frequency and reactive power terms, DGs are usually equipped with active islanding detection methods to detect the grid disconnection state; however, the islanding detection schemes could negatively impact the distribution system stability. The analysis and mitigation of undesirable interaction dynamics in a dc distribution system considering the aforementioned practical characteristics are not reported in the current literature. In this paper, the interaction dynamics of a dc distribution system characterized by a high penetration level of CPLs, and DGs equipped with positive feedback islanding detection scheme are investigated. The factors affecting the system stability with a single and multiple DGs are thoroughly addressed. Further, a stabilizing compensation loop is proposed to mitigate the stability problems and poor damping capability. Detailed time-domain nonlinear simulations and experimental results validate the analytical results.
机译:由于直流负载和基于直流的分布式发电机(DG)的高普及率,直流(DC)技术在现代配电系统中获得了巨大的发展势头。与传统的交流配电系统不同,直流配电系统具有以下明显的特征,这些特征挑战了系统的稳定性。 1)用于连接DG和负载的紧密调节转换器的高渗透水平会在相当大的频率范围内产生不稳定的恒定功率负载(CPL)效应。 2)滤波电感器和电容器形成了阻尼较差的LC网络,这些网络与CPL产生负面影响,导致系统稳定性进一步降低。 3)由于没有频率和无功功率项,因此采用被动方法几乎无法检测到直流系统中的孤岛,因此DG通常配备有源孤岛检测方法来检测电网断开状态;但是,孤岛检测方案可能会对配电系统的稳定性产生负面影响。在当前文献中没有报告考虑到上述实际特征的直流配电系统中不期望的相互作用动力学的分析和缓解。本文研究了具有高渗透水平的CPL和具有正反馈孤岛检测方案的DG的直流配电系统的相互作用动力学。彻底解决了使用单个或多个DG影响系统稳定性的因素。此外,提出了一种稳定的补偿回路以减轻稳定性问题和差的阻尼能力。详细的时域非线性仿真和实验结果验证了分析结果。

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