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Crude Selection Integrated with Optimal Refinery Operation by Combining Optimal Learning and Mathematical Programming

机译:通过结合最优学习和数学规划,粗糙选择与最佳炼油厂操作集成

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Crude oil procurement is an important step in refinery management as a large number of crude oil types of varying price and quality are considered. The crude quality is a dominant factor determining the quantity and quality of final products, and the overall operating costs. Thus the selection should be done carefully by considering its impact on the overall refinery operation. The main complication is that significant uncertainties exist on the crude properties before they are actually purchased and processed. Hence, the overall operating cost for each crude type is a random variable. In this study, a decision-making strategy for the crude selection and refinery operation is introduced by combining optimal learning and mathematical programming. A decision policy for crude valuation and selection is obtained by optimal learning based on the knowledge gradient algorithm with correlated beliefs. In the overall decision model, the operational variables are assumed to be determined by solving a LP problem. The uncertainty about the crude quality is propagated through the operation model, and the evaluative information on the operating cost is continuously fed back for improving the crude selection policy. The performance of the proposed approach is verified through some case studies reflecting the real refinery situation.
机译:原油采购是炼油厂管理的重要一步,作为大量原油类型的不同价格和质量。原油质量是确定最终产品数量和质量的主要因素,以及整体运营成本。因此,应通过考虑其对整体炼油厂操作的影响来仔细完成选择。主要并发症是,在实际购买和处理之前,原油属性存在显着的不确定性。因此,每个原油类型的整体运营成本是随机变量。在这项研究中,通过结合最佳学习和数学规划来引入粗制选择和炼油厂操作的决策策略。基于相关信念的知识梯度算法,通过最优学习获得粗估值和选择的决策政策。在整个决策模型中,假设通过解决LP问题来确定操作变量。关于原油质量的不确定性通过操作模型传播,并且对运营成本的评价信息被连续反馈,以改善粗制选择策略。通过反映真正的炼油状况的某种案例研究,通过了拟议方法的表现。

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