Strategic Sizing and Placement of Distributed Generation in Radial Distributed Networks Using Multiobjective PSO

Tom Wanjekeche, Andreas A. Ndapuka, Lupembe Nicksen Mukena
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Abstract

Distributed generators (DGs) offer significant advantages to electric power systems, including improved system losses, stability, and reduced losses. However, realizing these benefits necessitates optimal DG site selection and sizing. This study proposes a traditional multiobjective particle swarm optimization (PSO) approach to determine the optimal location and size of renewable energy-based DGs (wind and solar) on the Namibian distribution system. The aim is to enhance voltage profiles and minimize power losses and total DG cost. Probabilistic models are employed to account for the random nature of wind speeds and solar irradiances. This is used in an algorithm which eventually optimizes the siting and sizing of DGs using the nearest main substation as reference. The proposed method is tested on the Vhungu-Vhungu 11 kV distribution network in Namibia. Four cases were considered: base case with no DG, solar power, wind power, and a hybrid of both wind and solar. Optimal values for each case are determined and analyzed: 0.69.93 kW at 26 km for solar PV-based DG and 100 kW at 42 km for wind-based DG. These findings will serve as a valuable blueprint for future DG connections on the Namibian distribution network, providing guidance for optimizing system performance.
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基于多目标粒子群算法的径向分布式网络分布式发电的策略规划与布局
分布式发电机(dg)为电力系统提供了显著的优势,包括改善系统损耗、稳定性和降低损耗。然而,实现这些好处需要优化DG的选址和规模。本研究提出了一种传统的多目标粒子群优化(PSO)方法来确定纳米比亚配电系统中基于可再生能源的dg(风能和太阳能)的最佳位置和规模。其目的是提高电压分布,最大限度地减少功率损耗和总DG成本。采用概率模型来解释风速和太阳辐照度的随机性。这被用于一种算法,该算法最终以最近的主变电站为参考,优化dg的选址和规模。该方法在纳米比亚Vhungu-Vhungu 11kv配电网上进行了试验。考虑了四种情况:无DG的基本情况、太阳能、风能以及风能和太阳能的混合。确定并分析了每种情况的最优值:太阳能光伏发电DG在26公里时为0.69.93千瓦,风能发电DG在42公里时为100千瓦。这些发现将成为纳米比亚配电网未来DG连接的宝贵蓝图,为优化系统性能提供指导。
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13
审稿时长
28 weeks
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