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Collaborative optimization of production and energy performance in the coal blending management

机译:配煤管理中生产和能源绩效的协同优化

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A collaborative optimization solution is put up to integrate energy performance into the coal blending process for coking. Firstly, the collaborative optimization problem in coal blending management is described, and then the association model between the blending coal indicators vector and energy performance, production performance is provided by neural network ensemble technique to model their physical and chemical relation; the objective function and constraints of collaborative optimization model are derived from the association model. Secondly, the optimization model is figured out by genetic algorithm with the constraints expressed by non-fixed multi-stage mapping penalty function. Thirdly, the single factor sensitivity analysis procedure of energy performance is presented. The solution is verified through an iron and steel enterprises. The founded association model demonstrated the association relationships; Energy performance was optimized when the production performance is met, and more sensitive and less sensitive factors in the quality indicators of blending coal are achieved by the sensitivity analysis procedure.
机译:提出了一种协作优化解决方案,以将能源性能集成到炼焦煤掺混过程中。首先描述了配煤管理中的协同优化问题,然后通过神经网络集成技术提供了配煤指标向量与能源绩效,生产绩效之间的关联模型,对二者的理化关系进行建模。协同优化模型的目标函数和约束条件是从关联模型中推导出来的。其次,利用遗传算法,以非固定多阶段映射惩罚函数表示的约束条件,建立了优化模型。第三,提出了能量性能的单因素敏感性分析程序。该解决方案已通过钢铁企业的验证。建立的关联模型证明了关联关系。当满足生产性能时,将优化能源性能,并通过敏感性分析程序获得混合煤质量指标中较敏感和较不敏感的因素。

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