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首页> 外文期刊>Power Systems, IEEE Transactions on >Latin Hypercube Sampling Techniques for Power Systems Reliability Analysis With Renewable Energy Sources
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Latin Hypercube Sampling Techniques for Power Systems Reliability Analysis With Renewable Energy Sources

机译:用于可再生能源的电力系统可靠性分析的拉丁超立方采样技术

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摘要

This paper proposes Latin hypercube sampling (LHS) methods for reliability analysis of power systems including renewable energy sources, with an emphasis on the fluctuation of bus loads and intermittent behavior of renewable generations such as wind and solar power. The LHS methods that are applicable for systems with correlated random variables—system load and renewable generation—are proposed. Reliability indices such as loss of load expectation and loss of load probability are estimated. Results from Monte Carlo (MC) sequential sampling, MC nonsequential sampling, and that from the proposed LHS methods are compared. It is shown that the proposed methods are as accurate as the other sampling methods while requiring much less CPU time. Two case studies modified from the Electric Reliability Council of Texas (ERCOT) and IEEE Reliability Test System (IEEE RTS) are presented to demonstrate the performances of the proposed sampling methods.
机译:本文提出了拉丁超立方体抽样(LHS)方法,用于对包括可再生能源在内的电力系统进行可靠性分析,重点是公交负荷的波动以及可再生能源(如风能和太阳能)的间歇性行为。提出了适用于具有相关随机变量(系统负荷和可再生发电量)的系统的LHS方法。估计可靠性指标,如预期的损失负荷和损失的负荷概率。比较了蒙特卡洛(MC)顺序采样,MC非顺序采样和提议的LHS方法的结果。结果表明,所提出的方法与其他采样方法一样准确,而所需的CPU时间却少得多。德克萨斯州电力可靠性委员会(ERCOT)和IEEE可靠性测试系统(IEEE RTS)修改了两个案例研究,以证明所提出的采样方法的性能。

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