Considering the peak power consumption problem with learning and deterioration effect in flow shop scheduling

IF 6.7 1区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Computers & Industrial Engineering Pub Date : 2024-09-29 DOI:10.1016/j.cie.2024.110599
Dan-Yang Lv, Ji-Bo Wang
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Abstract

This paper investigates the permutation flow shop scheduling problem with peak power constraints under sequence-dependent setup time, learning, and deterioration effects to minimize the makespan, where the peak power consumption satisfies a given upper bound at any time. We establish relevant mathematical models based on the characteristics of the scheduling environment and set up five setup time-based heuristics, including the earliest start time, the latest setup time based on balance job–machine, latest setup time based on balance machine–job, latest setup time insert based on balance job–machine, and latest setup time insert based on balance machine–job. Similarly, a hybrid genetic algorithm combined with simulated annealing is proposed to prevent premature trapping in local optima. The algorithms are evaluated through a large number of data experiments, and the results show that it can effectively solve this scheduling problem.
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在流程车间调度中考虑具有学习和劣化效应的峰值功耗问题
本文研究了具有峰值功耗约束的置换流程车间调度问题,该问题在序列依赖的设置时间、学习和劣化效应下,最大限度地减少了工期,其中峰值功耗在任何时候都满足给定的上界。我们根据调度环境的特点建立了相关数学模型,并建立了五种基于设置时间的启发式算法,包括最早开始时间、基于平衡作业-机器的最迟设置时间、基于平衡机器-作业的最迟设置时间、基于平衡作业-机器的最迟设置时间插入法和基于平衡机器-作业的最迟设置时间插入法。同样,还提出了一种与模拟退火相结合的混合遗传算法,以防止过早陷入局部最优状态。通过大量数据实验对算法进行了评估,结果表明它能有效地解决该调度问题。
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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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