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Circularity triage: A multi-stage adaptive model for end-of-life products

  • Youxi Hu
  • , Lve Sun
  • , Richard Fox
  • , Rui Li
  • , Chao Liu
  • , Liqiao Xia
  • , Yongjing Wang

Research output: Contribution to journalArticlepeer-review

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Abstract

Determining appropriate recovery pathways for end-of-life (EoL) products is challenging due to limited information on their highly variable physical conditions and residual values. Existing recovery systems are highly dependent on static procedures, which hinder adaptive pathway selection and limit profitability. To address this limitation, this study proposes a multi-stage triage model inspired by medical triage protocols. This model formulates EoL recovery as a sequential decision process in three hierarchical stages: preliminary, product-level, and component-level triage. To drive this adaptive decision-making, the model uses a digital twin (DT) during the preliminary and product-level stages for structured state mapping and dynamic information updating. At the component-level stage, a knowledge graph (KG) is used to represent structural relationships and precedence constraints, supporting structurally feasible disassembly planning. The model incorporates progressively acquired evidence across all stages using fuzzy Bayesian updating. To evaluate the profitability of continued disassembly, the model embeds a partially observable Markov decision process (POMDP) with Bellman recursion, enabling sequential decision-making and optimal stopping under uncertainty. A gearbox case study involving four condition–uncertainty scenarios demonstrates that this dynamic, evidence-driven model adaptively updates recovery pathways and improves the resulting net recovery benefit.
Original languageEnglish
Pages (from-to)1177-1203
Number of pages27
JournalJournal of Manufacturing Systems
Volume88
Early online date12 Aug 2026
DOIs
Publication statusE-pub ahead of print - 12 Aug 2026

Bibliographical note

Copyright © 2026 The Authors. Published by Elsevier Ltd on behalf of The Society of Manufacturing Engineers. This is an open access article under the CC BY license ( https://creativecommons.org/licenses/by/4.0/ ).

Funding

The authors acknowledge the financial support of EPSRC Grants (EP/Y02270X/1, EP/Z534080/1 and EP/Z532873/1) and the China Scholarship Council (CSC) under Grant No. 202508420143.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 8 - Decent Work and Economic Growth
    SDG 8 Decent Work and Economic Growth
  2. SDG 12 - Responsible Consumption and Production
    SDG 12 Responsible Consumption and Production

Keywords

  • Circular economy
  • Digital twin
  • Knowledge graph
  • POMDP
  • Recovery decision-making
  • Triage

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