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Uncertainty Analysis Using Fuzzy Transformation Method: An Application in Power-Flow Studies

机译:采用模糊变换方法的不确定性分析:流量研究的应用

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This paper is concerned with a fuzzy analysis of power-flow (PF) involving uncertainties of load demands and network parameters. The crux of this paper is to propose an advanced fuzzy arithmetic. Fuzzy transformation method merges with backward-forward sweep in order to evaluate the contribution and propagation of uncertainty in IEEE 33-bus and 69-bus distribution systems. Results are validated by true intervals and random ranges. To determine true intervals, Global Optimization Problems (GOPs) are defined and solved through derivative-based and free techniques. To estimate random ranges, Monte-Carlo Simulations (MCSs) are employed. Our findings confirm that the sharpness of fuzzy intervals, tractability of computations, and applicability of possibility distributions. Following scenario-based evaluations, this paper discusses new implications of power losses, voltage profiles, optimal re-configuration, feeder extension, and reactive power compensation so that results would be beneficial to system planners and operators. Altogether, this paper provides a blueprint for a new way to handle uncertainties in a wide variety of power system problems without global optimization, linearization, and randomized simulations.
机译:本文涉及涉及负载需求和网络参数的不确定性的电流(PF)的模糊分析。本文的关键是提出先进的模糊算术。模糊变换方法与向后扫描合并,以评估IEEE 33总线和69母线分配系统不确定性的贡献和传播。结果通过真正的间隔和随机范围验证。为了确定真实的间隔,通过基于衍生和自由技术来定义和解决全局优化问题(GOP)。为了估计随机范围,采用Monte-Carlo模拟(MCS)。我们的研究结果证实,模糊间隔,计算的易易用性以及可能性分布的适用性。在基于情景的评估之后,本文讨论了电力损耗,电压型材,最佳重新配置,馈线扩展和无功功率补偿的新影响,因此对系统规划者和运营商有益。完全是,本文提供了一种新方法,用于处理在没有全球优化,线性化和随机模拟的各种电力系统问题中处理不确定性的新方法。

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