Dynamic Simulation of Low-voltage Distribution Grid with Integration of Power Electronics coupled Loads and Generators

Shangdan Yang, Stephan Ruhe, Falk Schaller, S. Nicolai, P. Bretschneider
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引用次数: 4

Abstract

More and more active components, i.e. renewable generators, controllable loads, and storages, were integrated to low-voltage distribution grids. They were often interfaced with power electronics and their active participation in the power system may lead to voltage instabilities and power quality problems. Therefore, one research topic was to analyse the dynamic interactions between these active components, and to develop appropriate control architecture and techniques, which are able to avoid the corresponding instabilities and improve the power quality in the low voltage grids. One challenge of such dynamic simulation was to simulate the interacted system with time resolution of millisecond and to ensure the synchronization between them. In this paper, the suitable dynamic models of single-phase power electronic load and three-phase power electronic generator were conducted. These dynamic models were simulated and validated by the voltage-step-response, respectively. The voltage unbalance was used to quantify the interactions between the dynamic models and grid. In the steady state, the power electronic load induced less voltage unbalance comparing to the conventional passive load, because the power electronic load had better power factor. In certain dynamic processes, with the higher penetration of PE components in the LV grid, we observed the significant increase of voltage unbalance, which was induced by the interactions between the controllers of the active components. Such effects should be considered in the design of low-voltage gird system and its components.
电力电子耦合负荷与发电机集成的低压配电网动态仿真
越来越多的有功组件,如可再生能源发电机、可控负荷和储能系统,被集成到低压配电网中。它们经常与电力电子设备相连接,它们在电力系统中的积极参与可能导致电压不稳定和电能质量问题。因此,分析这些有源元件之间的动态相互作用,并开发适当的控制体系结构和技术,以避免相应的不稳定,提高低压电网的电能质量是一个研究课题。这种动态仿真的一个挑战是如何以毫秒级的时间分辨率模拟交互系统,并保证它们之间的同步。本文建立了单相电力电子负载和三相电力电子发电机的合适动态模型。通过电压阶跃响应分别对这些动态模型进行了仿真和验证。电压不平衡被用来量化动态模型与电网之间的相互作用。在稳态下,由于电力电子负载具有较好的功率因数,因此与传统无源负载相比,电力电子负载产生的电压不平衡较小。在某些动态过程中,随着低压电网中PE组件的渗透程度的增加,我们观察到电压不平衡的显著增加,这是由有源组件控制器之间的相互作用引起的。在低压电网系统及其组成部分的设计中应考虑这些影响。
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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