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Sustainable and Resilient Production–Distribution Planning Under Stochastic Demand: A Carbon-Aware MILP Framework with Lost Sales and Rolling Horizon Replanning

Author

Listed:
  • Mohammed Machkour

    (Laboratory of Research in Science and Engineering (LaRSI), Faculty of Sciences and Techniques, Sidi Mohamed Ben Abdellah University, Fez P.O. Box 2202, Morocco)

  • Abdellah El Barkany

    (Laboratory of Research in Science and Engineering (LaRSI), Faculty of Sciences and Techniques, Sidi Mohamed Ben Abdellah University, Fez P.O. Box 2202, Morocco)

  • Bilal Harras

    (Laboratory of Research in Science and Engineering (LaRSI), Faculty of Sciences and Techniques, Sidi Mohamed Ben Abdellah University, Fez P.O. Box 2202, Morocco)

Abstract

Background : Manufacturing supply chains must increasingly coordinate cost, environmental impact, and service continuity under demand uncertainty and limited capacity. Methods : This study develops a stochastic mixed-integer linear programming framework for carbon-aware production–distribution planning in an automotive supply chain. The model jointly optimizes production quantities, inventory levels, shipments, truck usage, and lost sales over a multi-period horizon. Demand uncertainty is represented through scenarios, while production- and transportation-related emissions are monetized using an internal carbon price. Lost-sales penalties capture service degradation when demand cannot be fulfilled by the focal plant, and a rolling-horizon analysis evaluates planning responsiveness as demand information is updated. The framework is applied to an industrially inspired, capacity-constrained automotive case with multiple products, production lines, destinations, and demand scenarios. Computational experiments assess carbon pricing, lost-sales penalties, demand volatility, deterministic versus stochastic planning, and rolling-horizon replanning. Results : Results show that carbon pricing mainly acts as an economic valuation mechanism under the studied fixed-structure configuration, whereas lost-sales penalties strongly influence service performance. Demand volatility increases unmet demand, and lower emissions may reflect lower fulfilled demand rather than improved efficiency. Conclusions : The study provides a decision-support framework for evaluating cost–carbon–service trade-offs under stochastic demand while acknowledging single-plant and fixed-routing limitations.

Suggested Citation

  • Mohammed Machkour & Abdellah El Barkany & Bilal Harras, 2026. "Sustainable and Resilient Production–Distribution Planning Under Stochastic Demand: A Carbon-Aware MILP Framework with Lost Sales and Rolling Horizon Replanning," Logistics, MDPI, vol. 10(8), pages 1-26, August.
  • Handle: RePEc:gam:jlogis:v:10:y:2026:i:8:p:175-:d:2006426
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