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Solving optimal power flow problems subject to distributed generator failures via particle swarm intelligence

机译:通过粒子群智能解决分布式发电机故障下的最优潮流问题

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Distributed generation (DG) of power has played an ever-increasing role in a smart power system, often termed as a smart grid. Their use can, however, cause more risk to the entire system since their power outputs are often affected by uncontrollable environments, e.g., weather. Power flow problems as a nonlinear optimization one become much more challenging when one or more distributed generators fail to achieve their desired performance levels. This work formulates a particle swarm optimization method to solve them by considering controllable and uncontrollable distributed generators in a smart grid. Such a method is often sensitive to the initialization conditions and weighting factors. This work presents several typical different initialization strategies and decides the most suitable weighting factors. They are comprehensively investigated via an IEEE 14-bus system subject to the failure of uncontrollable distributed generators.
机译:分布式电源(DG)在智能电源系统(通常称为智能电网)中扮演着越来越重要的角色。然而,由于它们的功率输出经常受到不可控制的环境例如天气的影响,因此它们的使用会给整个系统带来更大的风险。当一台或多台分布式发电机无法达到其期望的性能水平时,作为非线性优化的潮流问题变得更具挑战性。这项工作提出了一种粒子群优化方法,通过考虑智能电网中可控和不可控的分布式发电机来解决这些问题。这种方法通常对初始化条件和加权因子敏感。这项工作提出了几种典型的不同初始化策略,并确定了最合适的加权因子。通过IEEE 14总线系统对它们进行了全面研究,以防分布式发电机失灵。

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