An investigation of mixed-model assembly line balancing problem with uncertain assembly time in remanufacturing

IF 6.7 1区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Computers & Industrial Engineering Pub Date : 2024-10-22 DOI:10.1016/j.cie.2024.110676
Qingtao Liu , Xinji Wei , Qi Wang , Jiayao Song , Jingxiang Lv , Ying Liu , Ou Tang
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Abstract

In recent decades, remanufacturing has emerged as an effective way to address resource crises and environmental pollution issues. Unlike traditional manufacturing, remanufacturing production is filled with various variable factors, especially in the assembly phase. Due to changes in part types, quality conditions, and assembly methods, the assembly time becomes highly uncertain. Assembly line balancing is a key challenge to achieve the stable operation of remanufacturing system. This study proposes an evaluation method for remanufacturing assembly time and establishes a multi-objective mathematical model for balancing remanufacturing mixed-model assembly (RMMA) line. The evaluation method utilizes the Fuzzy Graphical Evaluation Review Technique (FGERT) network to predict expected assembly time for each operation. The balancing model aims to optimize remanufacturing takt time and comprehensive balance rate (CBR). To effectively solve this model, an adaptive double-layer genetic algorithm (ADGA) is designed, where layer I ensures production efficiency and layer II optimizes assembly line balance. Finally, an assemble example of high-pressure common rail fuel pumps (HCRFP) is used to validate the effectiveness of the proposed method. The results demonstrate notable improvements compared to traditional single-product assembly (TSPA) line in scenarios with workstation numbers 4, 5, 6, and 7. Specifically, the production takt time is reduced by 4.19% to 9.56%, and CBR is enhanced by approximately 50%. Further comparison with three other classic algorithms confirms the superiority of ADGA. Additionally, it is observed that remanufacturability (proportion of remanufactured parts) has a significant impact on assembly performance. As remanufacturability increases, both takt time and CBR increase, reaching their maximum values when remanufacturability is around 0.5.
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再制造中装配时间不确定的混合模型装配线平衡问题研究
近几十年来,再制造已成为解决资源危机和环境污染问题的有效途径。与传统制造不同,再制造生产充满了各种可变因素,尤其是在装配阶段。由于零件类型、质量条件和装配方法的变化,装配时间变得非常不确定。装配线平衡是实现再制造系统稳定运行的关键挑战。本研究提出了一种再制造装配时间的评估方法,并建立了平衡再制造混合模式装配线(RMMA)的多目标数学模型。该评估方法利用模糊图形评估审查技术(FGERT)网络来预测每个操作的预期装配时间。平衡模型旨在优化再制造作业时间和综合平衡率(CBR)。为有效解决该模型,设计了一种自适应双层遗传算法(ADGA),其中第一层确保生产效率,第二层优化装配线平衡。最后,以高压共轨燃油泵(HCRFP)的装配为例,验证了所提方法的有效性。结果表明,在工作站数量为 4、5、6 和 7 的情况下,与传统的单产品装配线(TSPA)相比,装配线有明显改善。具体来说,生产间隔时间缩短了 4.19% 至 9.56%,CBR 提高了约 50%。与其他三种经典算法的进一步比较证实了 ADGA 的优越性。此外,我们还发现,再制造能力(再制造部件的比例)对装配性能有显著影响。随着可再制造性的增加,运行时间和 CBR 都会增加,当可再制造性达到 0.5 左右时,运行时间和 CBR 都会达到最大值。
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来源期刊
Computers & Industrial Engineering
Computers & Industrial Engineering 工程技术-工程:工业
CiteScore
12.70
自引率
12.70%
发文量
794
审稿时长
10.6 months
期刊介绍: Computers & Industrial Engineering (CAIE) is dedicated to researchers, educators, and practitioners in industrial engineering and related fields. Pioneering the integration of computers in research, education, and practice, industrial engineering has evolved to make computers and electronic communication integral to its domain. CAIE publishes original contributions focusing on the development of novel computerized methodologies to address industrial engineering problems. It also highlights the applications of these methodologies to issues within the broader industrial engineering and associated communities. The journal actively encourages submissions that push the boundaries of fundamental theories and concepts in industrial engineering techniques.
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