移动供应链多生产站点路径协调分配方法

    Coordinated Allocation Method of Multi-production Paths in Mobile Supply Chain

    • 摘要: 移动供应链依托分布式制造理念与移动工厂(mobile factory, MF)的灵活部署特性,在多生产站点、多客户场景下实现了资源共享与快速响应,但订单分配、生产调度与 MF 路由的耦合优化难题显著提升了调度复杂度,现有方法难以高效平衡解的质量与求解效率。本文针对考虑多生产站点多客户场景下的移动供应链调度问题(mobile supply chain schedule,MSCS),建立以最大完工时间和总成本为优化目标的数学模型,并提出一种改进的NSGA-II算法进行求解。所提算法在4方面进行改进:第一,针对所提问题的耦合4种决策,设计一种基于订单、生产站点、移动工厂的4层向量编码结构;第二,为提高种群质量、加快算法收敛,提出一种基于目标导向的启发式种群初始策略;第三,为提升算法的全局探索能力,设计针对两类向量的交叉算子;第四,为提高算法局部利用能力,设计4种基于关键路径的邻域搜索算子。实验部分以某化工企业实际案例为基础,构建包括大中小3种规模的30个测试算例,执行参数校验、改进验证、算法对比3组实验,验证了所提算法在求解移动供应链协调分配生产路径问题上的有效性和优越性。

       

      Abstract: Relying on the distributed manufacturing concept and the flexible deployment characteristics of Mobile Factories (MF), the mobile supply chain enables resource sharing and rapid response in scenarios with multiple production sites and multiple customers. However, the coupled optimization challenges of order assignment, production scheduling, and MF routing significantly increase the scheduling complexity, and existing methods struggle to efficiently balance solution quality and solution efficiency. Aiming at the Mobile Supply Chain Scheduling (MSCS) problem considering multi-production-site and multi-customer scenarios, this paper establishes a mathematical model with the optimization objectives of minimizing makespan and total cost, and proposes an improved NSGA-II algorithm for solving it. The algorithm incorporates four key improvements: First, a four-layer vector encoding structure based on orders, production sites, and mobile factories is designed to accommodate the four coupled decision-making processes of the problem. Second, an objective-oriented heuristic population initialization strategy is proposed to enhance population quality and accelerate algorithm convergence. Third, crossover operators targeting two types of vectors are designed to improve the algorithm's global exploration capability, and four critical path-based neighborhood search operators are developed to strengthen its local exploitation capability. In the experimental section, based on a practical case of a chemical enterprise, 30 test instances covering three scales (small, medium, and large) are constructed. Three groups of experiments, including parameter calibration, improvement verification, and algorithm comparison, are conducted, which verify the effectiveness and superiority of the proposed algorithm in solving the coordinated assignment and production routing problem of the mobile supply chain.

       

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