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A mixed-integer dynamic optimization approach for the optimal planning of distributed biorefineries

机译:混合整数动态优化方法用于分布式生物炼油厂的优化规划

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摘要

The implementation of supply chains based on biomass conversion requires the exploration of various aspects, including the selection of processing technologies, configuration of the supply chain, portfolio of products as well as the feedstock selection. One important feature of this system is that the composition of the available biomass changes drastically through the year because this depends significantly on the climatic conditions; this way, the dynamic behavior of this process is an important issue that must be considered. This study presents a dynamic optimization model for the optimal planning of a distributed biorefinery system taking into account the time dependence of the involved variables and parameters. In addition, this paper incorporates a model predictive control methodology to obtain the behavior of the storages and orders of the supply chain; where the objective function is the difference between the required and satisfied demands in the markets. Therefore, this study considers relevant issues, which include the multiple available biomass feedstocks at various harvesting sites, the availability and seasonality of biomass resources, potential geographical locations for processing plants that produce multiple products using diverse production technologies, economies of scale for the production technologies, demands and prices of multiple products in each consumer, locations of storage facilities and a number of transportation modes between the supply chain components. The model was applied to a case study for a distributed biorefinery system in Mexico. Results show that is possible to get the configuration and the behavior of the supply chain considering its dynamic behavior in a rigorous way; furthermore, the solutions obtained by the model illustrate that the supply chains based on biomass conversion are seriously affected by the availability of bioresources over the time.
机译:基于生物量转化的供应链的实施需要探索各个方面,包括加工技术的选择,供应链的配置,产品组合以及原料的选择。该系统的一个重要特征是,一年中可用生物量的组成急剧变化,因为这很大程度上取决于气候条件。这样,此过程的动态行为是必须考虑的重要问题。这项研究提出了一种动态优化模型,用于考虑到相关变量和参数对时间的依赖性,从而可以对分布式生物炼制系统进行最佳规划。此外,本文还采用了模型预测控制方法来获得供应链的库存和订单行为。目标函数是市场需求与满足需求之间的差异。因此,本研究考虑了相关问题,包括各种收获地点的多种可用生物质原料,生物质资源的可用性和季节性,使用多种生产技术生产多种产品的加工厂的潜在地理位置,生产技术的规模经济性。 ,每个消费者中多种产品的需求和价格,存储设施的位置以及供应链组件之间的多种运输方式。该模型已应用于墨西哥分布式生物精炼系统的案例研究。结果表明,严格考虑其动态行为,可以获得供应链的配置和行为。此外,该模型获得的解表明,随着时间的流逝,基于生物量转化的供应链受到生物资源可用性的严重影响。

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