Multi-objective optimization of job shops with automated guided vehicles: A non-dominated sorting cuckoo search algorithm

Author:

Karimi Behzad1ORCID,Niaki Seyed Taghi Akhavan2ORCID,Niknamfar Amir Hossein1ORCID,Hassanlu Mahsa Gareh1

Affiliation:

1. Young Researchers and Elite Club, Qazvin Branch, Islamic Azad University, Qazvin, Iran

2. Industrial Engineering Department, Sharif University of Technology, Tehran, Iran

Abstract

The reliability of machinery and automated guided vehicle has been one of the most important challenges to enhance production efficiency in several manufacturing systems. Reliability improvement would result in a simultaneous reduction of both production times and transportation costs of the materials, especially in automated guided vehicles. This article aims to conduct a practical multi-objective reliability optimization model for both automated guided vehicles and the machinery involved in a job-shop manufacturing system, where different machines and the storage area through some parallel automated guided vehicles handle materials, parts, and other production needs. While similar machines in each shop are limited to failures based on either an Exponential or a Weibull distribution via a constant rate, the machines in different shops fail based on different failure rates. Meanwhile, as the model does not contain any closed-form equation to measure the machine reliability in the case of Weibull failure, a simulation approach is employed to estimate the shop reliability to be further maximized using the proposed model. Besides, the automated guided vehicles are restricted to failures according to an Exponential distribution. Furthermore, choosing the best locations of the shops is proposed among some potential places. The proposed NP-Hard problem is then solved by designing a novel non-dominated sorting cuckoo search algorithm. Furthermore, a multi-objective teaching-learning-based optimization, as well as a multi-objective invasive weed optimization are designed to validate the results obtained. Ultimately, a novel AHP-TOPSIS method is carried out to rank the algorithms in terms of six performance metrics.

Publisher

SAGE Publications

Subject

Safety, Risk, Reliability and Quality

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Increasing the Efficiency of the Assembly Process Using the FMEA Method and Dynamic Simulation;Advances in Science and Technology Research Journal;2023-06-01

2. The assessment and selection of suppliers using AHP and MABAC with type-2 fuzzy numbers in automotive industry;Proceedings of the Institution of Mechanical Engineers, Part O: Journal of Risk and Reliability;2022-05-06

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