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A Multilayer Model Predictive Control Methodology Applied to a Biomass Supply Chain Operational Level

机译:一种应用于生物质供应链运作水平的多层模型预测控制方法

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Forest biomass has gained increasing interest in the recent years as a renewable source of energy in the context of climate changes and continuous rising of fossil fuels prices. However, due to its characteristics such as seasonality, low density, and high cost, the biomass supply chain needs further optimization to become more competitive in the current energetic market. In this sense and taking into consideration the fact that the transportation is the process that accounts for the higher parcel in the biomass supply chain costs, this work proposes a multilayer model predictive control based strategy to improve the performance of this process at the operational level. The proposed strategy aims to improve the overall supply chain performance by forecasting the system evolution using behavioural dynamic models. In this way, it is possible to react beforehand and avoid expensive impacts in the tasks execution. The methodology is composed of two interconnected levels that closely monitor the system state update, in the operational level, and delineate a new routing and scheduling plan in case of an expected deviation from the original one. By applying this approach to an experimental case study, the concept of the proposed methodology was proven. This novel strategy enables the online scheduling of the supply chain transport operation using a predictive approach.
机译:近年来,在气候变化和化石燃料价格持续上涨的背景下,森林生物质作为可再生能源越来越受到关注。但是,由于其季节性,低密度和高成本等特点,生物质供应链需要进一步优化,以在当前的充满活力的市场中更具竞争力。从这个意义上讲,考虑到运输是造成生物质供应链成本较高的过程的这一事实,这项工作提出了一种基于多层模型预测控制的策略,以提高该过程在操作水平上的性能。提出的策略旨在通过使用行为动态模型预测系统的发展来改善整体供应链绩效。这样,可以事先做出反应并避免在任务执行中产生昂贵的影响。该方法由两个相互关联的级别组成,这些级别在操作级别上密切监视系统状态更新,并在预计与原始级别有偏差的情况下描绘新的路由和计划计划。通过将该方法应用于实验案例研究,证明了所提出方法的概念。这种新颖的策略可以使用预测方法对供应链运输操作进行在线调度。

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