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Probabilistic power flow analysis of microgrid with renewable energy

机译:可再生能源微电网的概率潮流分析

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With the development of renewable-based distributed generation (RDG), there are increasing uncertainties in the operation of microgrids (MGs), and stochastic evaluation methods are attracting more attention nowadays. In this paper, a probabilistic power flow (PPF) analysis method is proposed to evaluate the influence of uncertainties on the power flow of MGs. First, the MG PPF model is established considering different operation modes of MGs and uncertainties of RDG and load demands. Then, the Borgonovo method, which is a density-based global sensitivity analysis (GSA) method, is used to evaluate the importance of input variables in PPF calculation. To improve the computational efficiency of GSA, the sparse polynomial chaos expansion (SPCE) is used to establish the surrogate model of MG PPF, and the Borgonovo index is calculated based on the surrogate model. Finally, the procedure of applying GSA to MG power flow is established. The proposed method is tested using 33-node and 123-node MGs, and is compared with other methods to validate its effectiveness. Simulation results indicate that the proposed method identifies critical uncertainties that affect MG power flow. Based on the rankings of input variables, the influences of critical uncertainties are diminished with energy storage systems.
机译:随着基于可再生能源的分布式发电(RDG)的发展,微电网(MGs)运行中的不确定性越来越大,随机评估方法如今已引起越来越多的关注。本文提出了一种概率潮流分析方法,以评估不确定性对MGs潮流的影响。首先,建立了MG PPF模型,考虑了MG的不同运行模式以及RDG和负载需求的不确定性。然后,使用基于密度的全局灵敏度分析(GSA)方法的Borgonovo方法来评估PPF计算中输入变量的重要性。为了提高GSA的计算效率,使用稀疏多项式混沌扩展(SPCE)建立MG PPF的替代模型,并基于替代模型计算Borgonovo指数。最后,建立了将GSA应用于MG潮流的过程。使用33节点和123节点的MG对所提出的方法进行了测试,并将其与其他方法进行比较以验证其有效性。仿真结果表明,该方法可以识别影响MG功率流的关键不确定性。基于输入变量的排名,关键不确定性的影响可以通过储能系统来降低。

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