Optimal reactive operation of general topology supply chain and manufacturing networks under disruptions

Supply and manufacturing networks in the chemical industry involve diverse processing steps across different locations, rendering their operation vulnerable to disruptions from unplanned events. Optimal responses should consider factors such as product allocation, delayed shipments, and price renego...

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Veröffentlicht in:AIChE journal Jg. 71; H. 7
Hauptverfasser: Ovalle, Daniel, Pulsipher, Joshua L., Ye, Yixin, Harshbarger, Kyle, Bury, Scott, Laird, Carl D., Grossmann, Ignacio E.
Format: Journal Article
Sprache:Englisch
Veröffentlicht: Hoboken, USA John Wiley & Sons, Inc 01.07.2025
American Institute of Chemical Engineers
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ISSN:0001-1541, 1547-5905
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Abstract Supply and manufacturing networks in the chemical industry involve diverse processing steps across different locations, rendering their operation vulnerable to disruptions from unplanned events. Optimal responses should consider factors such as product allocation, delayed shipments, and price renegotiation, among other factors. In such context, we propose a multiperiod mixed‐integer linear programming model that integrates production, scheduling, shipping, and order management to minimize the financial impact of such disruptions. The model accommodates arbitrary supply chain topologies and incorporates various disruption scenarios, offering adaptability to real‐world complexities. A case study from the chemical industry demonstrates the scalability of the model under finer time discretization and explores the influence of disruption types and order management costs on optimal schedules. This approach provides a tractable, adaptable framework for developing responsive operational plans in supply chain and manufacturing networks under uncertainty.
AbstractList Supply and manufacturing networks in the chemical industry involve diverse processing steps across different locations, rendering their operation vulnerable to disruptions from unplanned events. Optimal responses should consider factors such as product allocation, delayed shipments, and price renegotiation, among other factors. In such context, we propose a multiperiod mixed‐integer linear programming model that integrates production, scheduling, shipping, and order management to minimize the financial impact of such disruptions. The model accommodates arbitrary supply chain topologies and incorporates various disruption scenarios, offering adaptability to real‐world complexities. A case study from the chemical industry demonstrates the scalability of the model under finer time discretization and explores the influence of disruption types and order management costs on optimal schedules. This approach provides a tractable, adaptable framework for developing responsive operational plans in supply chain and manufacturing networks under uncertainty.
Author Laird, Carl D.
Grossmann, Ignacio E.
Ovalle, Daniel
Harshbarger, Kyle
Pulsipher, Joshua L.
Bury, Scott
Ye, Yixin
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  orcidid: 0000-0002-9337-521X
  surname: Ovalle
  fullname: Ovalle, Daniel
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  givenname: Joshua L.
  surname: Pulsipher
  fullname: Pulsipher, Joshua L.
  organization: University of Waterloo
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  givenname: Yixin
  surname: Ye
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  givenname: Carl D.
  surname: Laird
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  givenname: Ignacio E.
  surname: Grossmann
  fullname: Grossmann, Ignacio E.
  email: grossmann@cmu.edu
  organization: Carnegie Mellon University
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Snippet Supply and manufacturing networks in the chemical industry involve diverse processing steps across different locations, rendering their operation vulnerable to...
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SubjectTerms Chemical industry
Disruption
disruptions
Integer programming
Linear programming
Manufacturing
mixed‐integer linear programming
Networks
operation scheduling
Production scheduling
Shipments
supply chain optimization
Supply chains
Topology
Title Optimal reactive operation of general topology supply chain and manufacturing networks under disruptions
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Volume 71
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