Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under Uncertainty

Increasing global warming, climate change and stringent governmental legislations are driving industry practitioners and decision makers to implement various strategies to reduce carbon emissions. One of the effective approaches to mitigate carbon emissions is the implementation of closed-loop suppl...

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Main Authors: Fareeduddin Mohammed, Adnan Hassan, Shokri Z. Selim
Format: Article
Language:English
Published: IEEE 2021-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9303423/
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spelling doaj-58b50087b55e4ad6b000aa097d73ad7b2021-03-30T14:52:02ZengIEEEIEEE Access2169-35362021-01-0191167118910.1109/ACCESS.2020.30466849303423Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under UncertaintyFareeduddin Mohammed0https://orcid.org/0000-0003-2422-6664Adnan Hassan1https://orcid.org/0000-0002-3980-8942Shokri Z. Selim2https://orcid.org/0000-0002-1239-5471Department of Materials, Manufacturing and Industrial Engineering, School of Mechanical Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Johor Bahru, MalaysiaDepartment of Materials, Manufacturing and Industrial Engineering, School of Mechanical Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, Johor Bahru, MalaysiaDepartment of Systems Engineering, College of Computer Science and Engineering, King Fahd University of Petroleum and Minerals, Dhahran, Saudi ArabiaIncreasing global warming, climate change and stringent governmental legislations are driving industry practitioners and decision makers to implement various strategies to reduce carbon emissions. One of the effective approaches to mitigate carbon emissions is the implementation of closed-loop supply chain (CLSC). The key motivation for considering multiple recovery options in the CLSC is to capture the remaining economic value and to reduce carbon emissions in the collection and recovery operations. Customer's willingness to return used product depends on the acquisition price and nearness to the collection center. This research proposes a deterministic mixed-integer linear programming (MILP) model for a multi-period and multi-product CLSC network under carbon pricing and carbon trading policies consideration. The model includes different acquisition price for returned products and multiple recovery options. Further, the study takes into consideration uncertainty in procurement cost, demand, and quantity of returned products. A robust optimization approach is adopted to address uncertainty in network parameters. Numerical results show that the proposed model captures trade-offs between total cost and carbon emission. Overall, the study reveals that the carbon trading policy incurs relatively lower total cost compared to the carbon pricing policy. Repair and recycling activities in the reverse supply chain contribute significantly to the total cost and carbon emission. This study provide evidence that it is possible to achieve an optimal CLSC network with reduced carbon emission at a moderate total supply chain cost. The proposed model could be used to guide firms to choose an appropriate budget of uncertainty toward achieving a robust supply chain network.https://ieeexplore.ieee.org/document/9303423/Sustainable manufacturingclosed-loop supply chainmixed-integer linear programmingcarbon policiesmulti recovery optionsrobust optimization
collection DOAJ
language English
format Article
sources DOAJ
author Fareeduddin Mohammed
Adnan Hassan
Shokri Z. Selim
spellingShingle Fareeduddin Mohammed
Adnan Hassan
Shokri Z. Selim
Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under Uncertainty
IEEE Access
Sustainable manufacturing
closed-loop supply chain
mixed-integer linear programming
carbon policies
multi recovery options
robust optimization
author_facet Fareeduddin Mohammed
Adnan Hassan
Shokri Z. Selim
author_sort Fareeduddin Mohammed
title Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under Uncertainty
title_short Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under Uncertainty
title_full Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under Uncertainty
title_fullStr Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under Uncertainty
title_full_unstemmed Robust Design of a Closed-Loop Supply Chain Considering Multiple Recovery Options and Carbon Policies Under Uncertainty
title_sort robust design of a closed-loop supply chain considering multiple recovery options and carbon policies under uncertainty
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2021-01-01
description Increasing global warming, climate change and stringent governmental legislations are driving industry practitioners and decision makers to implement various strategies to reduce carbon emissions. One of the effective approaches to mitigate carbon emissions is the implementation of closed-loop supply chain (CLSC). The key motivation for considering multiple recovery options in the CLSC is to capture the remaining economic value and to reduce carbon emissions in the collection and recovery operations. Customer's willingness to return used product depends on the acquisition price and nearness to the collection center. This research proposes a deterministic mixed-integer linear programming (MILP) model for a multi-period and multi-product CLSC network under carbon pricing and carbon trading policies consideration. The model includes different acquisition price for returned products and multiple recovery options. Further, the study takes into consideration uncertainty in procurement cost, demand, and quantity of returned products. A robust optimization approach is adopted to address uncertainty in network parameters. Numerical results show that the proposed model captures trade-offs between total cost and carbon emission. Overall, the study reveals that the carbon trading policy incurs relatively lower total cost compared to the carbon pricing policy. Repair and recycling activities in the reverse supply chain contribute significantly to the total cost and carbon emission. This study provide evidence that it is possible to achieve an optimal CLSC network with reduced carbon emission at a moderate total supply chain cost. The proposed model could be used to guide firms to choose an appropriate budget of uncertainty toward achieving a robust supply chain network.
topic Sustainable manufacturing
closed-loop supply chain
mixed-integer linear programming
carbon policies
multi recovery options
robust optimization
url https://ieeexplore.ieee.org/document/9303423/
work_keys_str_mv AT fareeduddinmohammed robustdesignofaclosedloopsupplychainconsideringmultiplerecoveryoptionsandcarbonpoliciesunderuncertainty
AT adnanhassan robustdesignofaclosedloopsupplychainconsideringmultiplerecoveryoptionsandcarbonpoliciesunderuncertainty
AT shokrizselim robustdesignofaclosedloopsupplychainconsideringmultiplerecoveryoptionsandcarbonpoliciesunderuncertainty
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