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An Improved Aggregation Method for Performance Analysis of Bernoulli Serial Production Lines

机译:伯努利串行生产线性能分析的改进聚集方法

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摘要

Aggregation method has been widely utilized to evaluate the performance measures of production lines. However, traditional aggregation method (TAM) has low prediction accuracy in production lines with multiple bottlenecks, such as "inverted bowl" lines and "oscillatory" lines. Therefore, the root causes of the low prediction accuracy are first investigated. Extensive numerical studies indicate that Lambda-units are one of the major causes, where a Lambda-unit is defined as the subsystem between two consecutive bottlenecks. Then, an improved aggregation method (IAM) is proposed to improve the prediction accuracy of TAM. IAM is established by extending the traditional twomachine aggregation building blocks to general multimachine aggregation building blocks in Lambda-units. Specifically, for a smallscale Lambda-unit, an aggregation building block is established for all the machines and buffers in the Lambda-unit. For a large-scale Lambda-unit, a heuristic rule is proposed to divide the Lambda-unit into several smallscale production line segments, where an aggregation building block is established for each segment. Numerical studies indicate that IAM can effectively improve the estimation accuracy of the aggregation method while maintaining a reasonable computational efficiency.Note to Practitioners-Bottleneck machines refer to the machines whose performance impedes the production systems in the strongest manner. They have been widely utilized to improve productivity, energy efficiency, and so on. However, there are few efforts devoted to the impacts of bottlenecks on the aggregation method. The numerical studies indicate that the traditional aggregation method (TAM) has lower estimation accuracy in production lines with multiple bottlenecks. Therefore, in this article, improved aggregation method (IAM) is established to improve the performance of the aggregation method in the production lines. The research contributes to the literature with a generalized aggregation method that is very effective in production lines with and without bottlenecks. It can be utilized by production managers to evaluate production performance, predict the impacts of system changes, and accelerate control and investment decision-making.
机译:聚集方法已被广泛利用来评估生产线的性能测量。然而,传统的聚集方法(TAM)在生产线中具有低预测精度,具有多个瓶颈,例如“倒碗”线和“振荡”线。因此,首先研究了低预测精度的根本原因。广泛的数值研究表明,Lambda单元是主要原因之一,其中Lambda单元被定义为两个连续瓶颈之间的子系统。然后,提出了一种改进的聚合方法(IAM)以提高TAM的预测准确性。通过将传统的双相聚合构建块扩展到Lambda-obs中的通用多相聚合构建块来建立IAM。具体地,对于SmallScale Lambda单元,为所有机器和Lambda单元中的缓冲器建立聚合构建块。对于大规模的Lambda单元,提出了一种启发式规则,将Lambda-in分为几个小型生产线段,其中为每个段建立了聚合构建块。数值研究表明,IAM可以有效地提高聚集方法的估计准确性,同时保持合理的计算效率。对于从业者来说,瓶颈机器是指以最强的方式将生产系统阻碍生产系统的机器。它们已被广泛利用,以提高生产率,能源效率等。但是,很少有努力致力于瓶颈对聚集方法的影响。数值研究表明,传统的聚集方法(TAM)具有较低的生产线中的估计精度,具有多个瓶颈。因此,在本文中,建立了改进的聚集方法(IAM)以改善生产线中聚集方法的性能。该研究有助于具有广义聚集方法的文献,其在具有和没有瓶颈的生产线中非常有效。它可以通过生产经理来评估生产性能,预测系统变化的影响,加快控制和投资决策。

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    Northwestern Polytech Univ Performance Anal Ctr Prod & Operat Syst PacPos Xian 710072 Peoples R China|Northwestern Polytech Univ Sch Mech Engn Dept Ind Engn Xian 710072 Peoples R China;

    Northwestern Polytech Univ Performance Anal Ctr Prod & Operat Syst PacPos Xian 710072 Peoples R China|Northwestern Polytech Univ Sch Mech Engn Dept Ind Engn Xian 710072 Peoples R China;

    Northwestern Polytech Univ Performance Anal Ctr Prod & Operat Syst PacPos Xian 710072 Peoples R China|Northwestern Polytech Univ Sch Mech Engn Dept Ind Engn Xian 710072 Peoples R China;

    Northwestern Polytech Univ Performance Anal Ctr Prod & Operat Syst PacPos Xian 710072 Peoples R China|Northwestern Polytech Univ Sch Mech Engn Dept Ind Engn Xian 710072 Peoples R China;

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  • 正文语种 eng
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  • 关键词

    Bernoulli serial production line; bottleneck; improved aggregation method (IAM); performance analysis;

    机译:伯努利串行生产线;瓶颈;改进的聚集方法(IAM);性能分析;

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