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Multi-objective operation optimization of an electrical distribution network with soft open point

机译:具有软开放点的配电网络的多目标运行优化

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摘要

With the increasing amount of distributed generation (DG) integrated into electrical distribution networks, various operational problems, such as excessive power losses, over-voltage and thermal overloading issues become gradually remarkable. Innovative approaches for power flow and voltage controls are required to ensure the power quality, as well as to accommodate large DG penetrations. Using power electronic devices is one of the approaches. In this paper, a multi-objective optimization framework was proposed to improve the operation of a distribution network with distributed generation and a soft open point (SOP). An SOP is a distribution-level power electronic device with the capability of real-time and accurate active and reactive power flow control. A novel optimization method that integrates a Multi-Objective Particle Swarm Optimization (MOPSO) algorithm and a local search technique – the Taxi-cab method, was proposed to determine the optimal set-points of the SOP, where power loss reduction, feeder load balancing and voltage profile improvement were taken as objectives. The local search technique is integrated to fine tune the non-dominated solutions obtained by the global search technique, overcoming the drawback of MOPSO in local optima trapping. Therefore, the search capability of the integrated method is enhanced compared to the conventional MOPSO algorithm. The proposed methodology was applied to a 69-bus distribution network. Results demonstrated that the integrated method effectively solves the multi-objective optimization problem, and obtains better and more diverse solutions than the conventional MOPSO method. With the DG penetration increasing from 0 to 200%, on average, an SOP reduces power losses by 58.4%, reduces the load balance index by 68.3% and reduces the voltage profile index by 62.1%, all compared to the case without an SOP. Comparisons between SOP and network reconfiguration showed the outperformance of SOP in operation optimization.
机译:随着集成到配电网络中的分布式发电(DG)数量的增加,各种操作问题,例如过大的功率损耗,过电压和热过载问题变得越来越明显。需要用于功率流和电压控制的创新方法,以确保功率质量并适应较大的DG穿透。使用电力电子设备是方法之一。本文提出了一种多目标优化框架,以改进具有分布式生成和软开放点(SOP)的配电网络的运行。 SOP是一种配电级电力电子设备,具有实时,准确的有功和无功潮流控制能力。提出了一种新的优化方法,该方法结合了多目标粒子群优化(MOPSO)算法和局部搜索技术– Taxi-cab方法,来确定SOP的最佳设定点,其中可以降低功率损耗,降低馈线负载平衡并以改善电压曲线为目标。集成了局部搜索技术以微调通过全局搜索技术获得的非支配解,从而克服了MOPSO在局部最优陷阱中的缺点。因此,与常规的MOPSO算法相比,集成方法的搜索能力得到了增强。所提出的方法已应用于69总线的配电网络。结果表明,与常规的MOPSO方法相比,该集成方法有效地解决了多目标优化问题,并获得了更好,更多样化的解决方案。与没有SOP的情况相比,平均而言,随着DG渗透率从0%增加到200%,SOP可以将功率损耗降低58.4%,将负载平衡指数降低68.3%,并将电压曲线指数降低62.1%。 SOP与网络重新配置之间的比较表明,SOP在操作优化方面的性能优于其他。

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