Radial distribution systems performance enhancement through RE (Renewable Energy) integration and comprehensive contingency ranking analysis

Muthukumaran Thulasingam, Ajay D Vimal Raj Periyanayagam
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Abstract

This research focuses on restructuring medium-level voltage (MLV) distribution systems by integrating distributed renewable energy resources (DER) at multiple feed points. It examines the impact of incorporating renewable energy and evaluates system performance metrics such as robustness, static voltage stability, line carrying capacity, utility grid effectiveness, and losses within the conventional radial distribution framework commonly used in educational institutions. The contingency ranking of the real-time radial distribution system (RTRDS) for a typical educational institution consisting of N buses was conducted. Parameters such as the Voltage Performance Index (PIV) and Flow Performance Index (PIF) were evaluated. The results support the integration of distributed renewable energy sources within the existing radial distribution grid infrastructure. This research proposes enhanced contingency analyses through a straightforward reconfiguration process involving an additional tie line (N + 1) for the existing N bus radial distribution system (RDS). Load flow analysis of the RDS with distributed renewable energy resources (DER) for both N bus and N + 1 bus systems was conducted using the Gauss-Seidel and Newton–Raphson methods. Simulation results indicate that baseline loading is consistently maintained by grid sources and DER sources connected at multiple feed points. The proposed configuration of the N + 1 bus system for the existing RTRDS was evaluated for voltage performance and compared with the Grey Wolf Optimization (GWO) algorithm. The results indicate that the N + 1 bus configuration modeled using the MiPower tool performed comparably to the GWO results. Additionally, the contingency ranking for the proposed N + 1 configuration was validated using the IEEE 10 and 30 bus system.

Abstract Image

基于可再生能源集成和综合应急排序分析的径向配电系统性能提升
本研究的重点是通过在多个馈电点整合分布式可再生能源(DER)来重构中电压(MLV)配电系统。它考察了纳入可再生能源的影响,并评估了系统性能指标,如鲁棒性、静态电压稳定性、线路承载能力、公用事业电网有效性和教育机构常用的传统径向分布框架内的损耗。以某典型教育机构为研究对象,对N辆客车组成的实时径向配电系统进行了应急排序。对电压性能指数(PIV)和流量性能指数(PIF)等参数进行了评估。研究结果支持在现有的径向配电网基础设施中整合分布式可再生能源。本研究建议通过一个简单的重新配置过程,包括为现有的N总线径向配电系统(RDS)增加一条额外的连接线(N + 1),从而增强应急分析。采用Gauss-Seidel和Newton-Raphson方法对N母线和N + 1母线分布式可再生能源RDS的潮流进行了分析。仿真结果表明,在多个馈电点连接的网格源和DER源能够一致地维持基线负荷。对现有RTRDS的N + 1母线系统配置进行了电压性能评估,并与灰狼优化(GWO)算法进行了比较。结果表明,使用MiPower工具建模的N + 1总线配置的性能与GWO结果相当。此外,使用IEEE 10和30总线系统验证了所建议的N + 1配置的应急排序。
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CiteScore
6.40
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