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Modeling of uncertainty in distribution network reconfiguration using Gaussian Quadrature based approximation method

机译:基于高斯正交的近似方法在配电网重构中的不确定性建模

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Distribution feeder reconfiguration is a cost-effective scheme to improve the system operating condition. Making decisions on the status of switches along the feeder with high penetration of renewable resources requires a tractable and accurate input data analysis. This paper presents a method using Gaussian quadrature to approximate probability distribution function of input variables with a probability mass function. The method is applied to Weibull wind speed and Beta solar irradiance probability distribution functions. These approximated input variables are fed into an energy loss minimization problem to find the best configuration of 33-bus Baran test system in a typical summer day. Group search optimizer, a swarm intelligence optimization method, is applied to solve the problem. In order to analyze the accuracy and efficiency of the proposed method, Monte Carlo simulation and two other approximation methods- bracket midpoint and bracket mean- are used for comparison. Results show the superiority of the method in computational time and its adequate precision.
机译:配电馈线重新配置是一种经济高效的方案,可以改善系统的运行状况。要决定沿馈线的开关状态以及可再生资源的高度渗透,就需要进行易于处理且准确的输入数据分析。本文提出了一种使用高斯正交函数近似输入变量的概率分布函数的方法,该函数具有概率质量函数。该方法适用于威布尔风速和β太阳辐照度概率分布函数。这些近似的输入变量被输入到能量损失最小化问题中,以在典型的夏日中找到33总线Baran测试系统的最佳配置。群体搜索优化器是一种群体智能优化方法,用于解决该问题。为了分析所提方法的准确性和效率,将蒙特卡罗模拟和另外两种近似方法(括号中点和括号均值)进行比较。结果表明,该方法在计算时间上具有优越性,并且具有足够的精度。

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