A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device Industry

In this study, an optimization model is proposed to design a Global Supply Chain (GSC) for a medical device manufacturer under disruption in the presence of pre-existing competitors and price inelasticity of demand. Therefore, static competition between the distributors’ facilities to more efficient...

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Main Authors: Aliakbar Hasani, Seyed Hessameddin Zegordi
Format: Article
Language:English
Published: Iran University of Science & Technology 2015-03-01
Series:International Journal of Industrial Engineering and Production Research
Subjects:
Online Access:http://ijiepr.iust.ac.ir/browse.php?a_code=A-10-70-125&slc_lang=en&sid=1
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spelling doaj-1c6cfa054a344b07a4ecca0fb84a20572020-11-24T21:18:46ZengIran University of Science & TechnologyInternational Journal of Industrial Engineering and Production Research2008-48892345-363X2015-03-012616384A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device IndustryAliakbar Hasani0Seyed Hessameddin Zegordi1 Tarbiat Modares University In this study, an optimization model is proposed to design a Global Supply Chain (GSC) for a medical device manufacturer under disruption in the presence of pre-existing competitors and price inelasticity of demand. Therefore, static competition between the distributors’ facilities to more efficiently gain a further share in market of Economic Cooperation Organization trade agreement (ECOTA) is considered. This competition condition is affected by disruption occurrence. The aim of the proposed model is to maximize the expected net after-tax profit of GSC under disruption and normal situation at the same time. To effectively deal with disruption, some practical strategies are adopted in the design of GSC network. The uncertainty of the business environment is modeled using the robust optimization technique based on the concept of uncertainty budget. To tackle the proposed Mixed-Integer Nonlinear Programming (MINLP) model, a hybrid Taguchi-based Memetic Algorithm (MA) with an adaptive population size is developed that incorporates a customized Adaptive Large Neighborhood Search (ALNS) as its local search heuristic. A fitness landscape analysis is used to improve the systematic procedure of neighborhood selection in the proposed ALNS. A numerical example and computational results illustrate the efficiency of the proposed model and algorithm in dealing with global disruptions under uncertainty and competition pressure.http://ijiepr.iust.ac.ir/browse.php?a_code=A-10-70-125&slc_lang=en&sid=1Global supply chain network design Competition Disruptions Robust optimization Memetic algorithm Adaptive large neighborhood search landscape analysis
collection DOAJ
language English
format Article
sources DOAJ
author Aliakbar Hasani
Seyed Hessameddin Zegordi
spellingShingle Aliakbar Hasani
Seyed Hessameddin Zegordi
A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device Industry
International Journal of Industrial Engineering and Production Research
Global supply chain network design
Competition
Disruptions
Robust optimization
Memetic algorithm
Adaptive large neighborhood search
landscape analysis
author_facet Aliakbar Hasani
Seyed Hessameddin Zegordi
author_sort Aliakbar Hasani
title A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device Industry
title_short A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device Industry
title_full A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device Industry
title_fullStr A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device Industry
title_full_unstemmed A Robust Competitive Global Supply Chain Network Design under Disruption: The Case of Medical Device Industry
title_sort robust competitive global supply chain network design under disruption: the case of medical device industry
publisher Iran University of Science & Technology
series International Journal of Industrial Engineering and Production Research
issn 2008-4889
2345-363X
publishDate 2015-03-01
description In this study, an optimization model is proposed to design a Global Supply Chain (GSC) for a medical device manufacturer under disruption in the presence of pre-existing competitors and price inelasticity of demand. Therefore, static competition between the distributors’ facilities to more efficiently gain a further share in market of Economic Cooperation Organization trade agreement (ECOTA) is considered. This competition condition is affected by disruption occurrence. The aim of the proposed model is to maximize the expected net after-tax profit of GSC under disruption and normal situation at the same time. To effectively deal with disruption, some practical strategies are adopted in the design of GSC network. The uncertainty of the business environment is modeled using the robust optimization technique based on the concept of uncertainty budget. To tackle the proposed Mixed-Integer Nonlinear Programming (MINLP) model, a hybrid Taguchi-based Memetic Algorithm (MA) with an adaptive population size is developed that incorporates a customized Adaptive Large Neighborhood Search (ALNS) as its local search heuristic. A fitness landscape analysis is used to improve the systematic procedure of neighborhood selection in the proposed ALNS. A numerical example and computational results illustrate the efficiency of the proposed model and algorithm in dealing with global disruptions under uncertainty and competition pressure.
topic Global supply chain network design
Competition
Disruptions
Robust optimization
Memetic algorithm
Adaptive large neighborhood search
landscape analysis
url http://ijiepr.iust.ac.ir/browse.php?a_code=A-10-70-125&slc_lang=en&sid=1
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