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Multiparameter probability distributions for at-site frequency analysis of annual maximum wind speed with L-Moments for parameter estimation

机译:用于参数估计的L-MOCENTS对年度最大风速频率分析的多路径仪概率分布

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摘要

Estimation of quantiles of Annual Maximum Wind Speed (AWNS) is needed in different environmental fields, engineering risk analysis, design of structures, renewable energy sources, agricultural operations, and climatology. Therefore, wind speed frequency analysis (WSFA) was carried out at nine stations from Pakistan. Multiparameter Probability Distributions (PDs), such as Generalized logistic (GLO), Generalized Extreme Value (GEV), Generalized Normal (GNO), Generalized Pareto (GPA), Weibull (WEI), Pearson type 3 (P3), Log Pearson type 3 (LP3); and two parameter PDs, such as Logistic (LOG), Normal (NOR), Gumbel (GUM), Exponential (EXP), and Uniform (UNI) were used to determine the most suitable distributions for the nine stations. The method of L-moments was used for estimating parameters of the distributions. The Kolmogorov-Smirnov (KS) test, Anderson-Darling (AD) test, Minimum L-Kurtosis (ML-K) Difference Criterion, and L-moment ratio diagram (L-ratio diagram) showed that four distributions, namely GEV, GNO, GPA, and GLO were the most suitable distributions for different stations and were superior to the two-parameter distributions. The quantile estimates (design estimates) from multiparameter PDs provide information on how fast the maximum wind will pass through a certain place and hence are important for policy makers and planners in the design and construction of different structures. The Multivariate Diebold Mariano (DM) test was applied to check the accuracy of design estimates from the best fitted PDs and results indicated that they were significantly different. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在不同的环境领域,工程风险分析,结构,可再生能源,农业运营和气候学中需要估计年度最大风速(AWNS)的量级估计。因此,风速频率分析(WSFA)在巴基斯坦的九个站进行。多游ameter概率分布(PDS),例如广义逻辑(GLO),广义极值(GEV),广义正常(GNO),广义帕匹o(GPA),WEIBULL(WEI),Pearson型3(P3),日志Pearson类型3 (LP3);和两个参数PD,例如Logistic(Log),正常(NOR),GUMMEL(GUM),指数(EXP)和均匀(UNI)用于确定九个站的最合适的分布。 L-矩的方法用于估计分布的参数。 Kolmogorov-Smirnov(KS)测试,Anderson-Darling(AD)测试,最小L-Kurtosis(ML-K)差分标准和L-Lond比例图(L-Liguity图)显示了四个分布,即GEV,GNO ,GPA和GLO是不同站最合适的分布,并且优于两个参数分布。来自MultiParameter PD的分位数估计(设计估计数)提供了有关最大风如何通过某个地方的信息,因此对于设计和构建不同结构的决策者和规划者来说是重要的。应用多变量模具Mariano(DM)测试来检查最佳合适PD的设计估计的准确性,结果表明它们显着不同。 (c)2019 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Energy》 |2019年第15期|724-737|共14页
  • 作者单位

    Cent China Normal Univ Sch Math & Stat Wuhan 430072 Hubei Peoples R China;

    Cent China Normal Univ Sch Math & Stat Wuhan 430072 Hubei Peoples R China;

    Huazhong Univ Sci & Technol Coll Hydropower & Informat Engn Wuhan 430079 Hubei Peoples R China;

    Huazhong Univ Sci & Technol Coll Hydropower & Informat Engn Wuhan 430079 Hubei Peoples R China;

    Texas A&M Univ Dept Biol & Agr Engn College Stn TX 77843 USA|Texas A&M Univ Zachry Dept Civil Engn College Stn TX 77843 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Frequency analysis; Annual maximum wind speed; Probability distribution; L-moments;

    机译:频率分析;年度最大风速;概率分布;L-时刻;

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