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LNG接收终端前期设计管线喘振分析及评价
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作者 黄志刚 张金石 +2 位作者 彭琦淏 党博 王光明 《珠江水运》 2023年第13期25-28,共4页
液态输送管道经常会出现喘振的现象,阀门的启闭为最常见的一种诱因。本文旨在通过引入一种筛选评估方法,在LNG接收终端前期设计阶段,可以使用现成工艺或阀门信息对阀门关闭导致喘振的情况进行评估,识别潜在高风险系统,为后续阶段设计提... 液态输送管道经常会出现喘振的现象,阀门的启闭为最常见的一种诱因。本文旨在通过引入一种筛选评估方法,在LNG接收终端前期设计阶段,可以使用现成工艺或阀门信息对阀门关闭导致喘振的情况进行评估,识别潜在高风险系统,为后续阶段设计提供指导性建议。 展开更多
关键词 LNG接收终端 喘振 LOF(lkelihood of failure) 评估
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On the MLE of the Waring distribution
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作者 Yanlin Tang Jinglong Wang Zhongyi Zhu 《Statistical Theory and Related Fields》 CSCD 2023年第2期144-158,共15页
The two-parameter Waring is an important heavy-tailed discrete distribution,which extends the famous Yule Simon distribution and provides more flexibility when modelling the data.The commonly used EFF(Expectation-Firs... The two-parameter Waring is an important heavy-tailed discrete distribution,which extends the famous Yule Simon distribution and provides more flexibility when modelling the data.The commonly used EFF(Expectation-First Frequency)for parameter estimation can only be applied when the first moment exists,and it only uses the information of the expectation and the first frequency,which is not as efficient as the maximum likelihood estimator(MLE).However,the MLE may not exist for some sample data.We apply the profle method to the log-likelihood function and derive the necessary and sufficient Conditions for the existence of the MLE of the Waring parameters.We use extensive simulation studies to compare the MLE and EFF methods,and the goodness-of-fit comparison with the Yule Simon distribution.We also apply the Waring distribution to fit an insurance data. 展开更多
关键词 Maximum lkelihood estimator heay-tailed discrete distribution Waring distribution
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