An Integrated System Dynamics and Discrete Event Supply Chain Simulation Framework for Supply Chain Resilience with Non-Stationary Pandemic Demand

2023 Winter Simulation Conference (WSC)(2023)

引用 0|浏览2
暂无评分
摘要
COVID-19 resulted in some of the largest supply chain disruptions in recent history. To mitigate the impact of future disruptions, we propose an integrated hybrid simulation framework to couple nonstationary demand signals from an event like COVID-19 with a model of an end-to-end supply chain. We first create a system dynamics susceptible-infected-recovered (SIR) model, augmenting a classic epidemiological model to create a realistic portrayal of demand patterns for oxygen concentrators (OC). Informed by this granular demand signal, we then create a supply chain discrete event simulation model of OC sourcing, manufacturing, and distribution to test production augmentation policies to satisfy this increased demand. This model utilizes publicly available data, engineering teardowns of OCs, and a supply chain illumination to identify suppliers. Our findings indicate that this coupled approach can use realistic demand during a disruptive event to enable rapid recommendations of policies for increased supply chain resilience with controlled cost.
更多
查看译文
关键词
Pandemic,System Dynamics,Supply Chain,Supply Chain Resilience,Supply Chain Simulation,Integrated System Dynamics,Simulation Model,Oxygen Concentration,Disruptive Effects,Epidemiological Models,Impact Of Disruption,Supply Chain Disruptions,Discrete Event Simulation,Infection Rate,Lead Time,Supply Chain Management,Contact Rate,Baseline Scenario,Mitigation Policies,Inventory Level,Inventory Policy,Susceptible-Infected-Recovered Model,Supply Chain Network,Supply Chain Model,Demand Scenarios,Lead Time Reduction,COVID Cases,System Dynamics Approach,Supply Chain Operations,Manufacturing Facilities
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要