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Optimal Siting and Sizing of Distributed Generators in Distribution Systems Considering Uncertainties

机译:考虑不确定性的配电系统中分布式发电机的最优选址和选型

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Some uncertainties, such as the uncertain output power of a plug-in electric vehicle (PEV) due to its stochastic charging and discharging schedule, that of a wind generation unit due to the stochastic wind speed, and that of a solar generating source due to the stochastic illumination intensity, volatile fuel prices, and future uncertain load growth could lead to some risks in determining the optimal siting and sizing of distributed generators (DGs) in distribution system planning. Given this background, under the chance constrained programming (CCP) framework, a new method is presented to handle these uncertainties in the optimal siting and sizing of DGs. First, a mathematical model of CCP is developed with the minimization of the DGs' investment cost, operating cost, maintenance cost, network loss cost, as well as the capacity adequacy cost as the objective, security limitations as constraints, and the siting and sizing of DGs as optimization variables. Then, a Monte Carlo simulation-embedded genetic-algorithm-based approach is employed to solve the developed CCP model. Finally, the IEEE 37-node test feeder is used to verify the feasibility and effectiveness of the developed model and method, and the test results have demonstrated that the voltage profile and power-supply reliability for customers can be significantly improved and the network loss substantially reduced.
机译:一些不确定性,例如,插电式电动汽车(PEV)的随机充电和放电时间表导致其不确定的输出功率,由于随机风速导致的风力发电机组的不确定性,以及由于随机风速导致的太阳能发电源的不确定性随机照明强度,易变的燃料价格以及未来不确定的负荷增长可能会导致在配电系统规划中确定分布式发电机(DG)的最佳选址和选型问题。在这种背景下,在机会受限编程(CCP)框架下,提出了一种新方法来处理DG的最佳选址和选型中的这些不确定性。首先,建立了CCP的数学模型,以最小化总投资方的投资成本,运营成本,维护成本,网络损失成本以及以容量充足成本为目标,安全限制为约束以及选址和规模调整为最小DG作为优化变量。然后,采用基于蒙特卡罗仿真的遗传算法进行求解。最后,使用IEEE 37节点测试馈线验证了所开发模型和方法的可行性和有效性,测试结果表明,可以显着改善客户的电压曲线和电源可靠性,并显着降低网络损耗减少。

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