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Control vector optimization and genetic algorithms for mixed-integer dynamic optimization in the synthesis of rice drying processes

机译:稻米合成过程中混合整数动态优化的控制向量优化和遗传算法

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摘要

Rice drying synthesis is an essential operation that has to be done carefully and cost-effectively. Rice is harvested at high moisture content and hence must be dried within 24 h for safe storage. However, improper drying can cause fissuring in the rice grain, and thus greatly reduce its market value. Multi-pass drying systems are therefore used to gradually bring moisture content to desired level. The problem of rice synthesis, considered in this study, seeks the configuration of units and their corresponding operating conditions that maximize rice quality. This problem is formulated as a mixed-integer dynamic optimization problem. The integer part of the problem reflects process alternatives while the dynamic part originates from nonlinear differential-algebraic equations describing the drying behavior of a rice grain. Clearly such a formidable problem is not easy to solve. Hence, we propose an approach that makes use of two algorithms: a genetic algorithm to search for the best configuration of units and a control vector parameterization approach that optimizes the operating conditions for each configuration. We demonstrate the effectiveness of the approach on a case study. Combinatorial problems; Control vector parameterization; Genetic algorithms; Mixed integer dynamic optimization; Process optimization; Rice drying processes
机译:稻米干燥合成是一项必不可少的操作,必须仔细且具有成本效益。大米收获时水分含量很高,因此必须在24小时内干燥以安全保存。但是,干燥不当会导致米粒裂开,从而大大降低其市场价值。因此,使用了多遍干燥系统来逐渐将水分含量提高到所需水平。在这项研究中考虑的大米合成问题,是寻求使大米品质最大化的单元配置及其相应的操作条件。该问题被公式化为混合整数动态优化问题。问题的整数部分反映了工艺的选择,而动态部分则来自描述米粒干燥行为的非线性微分-代数方程。显然,这样一个可怕的问题不容易解决。因此,我们提出了一种使用两种算法的方法:一种用于搜索单元最佳配置的遗传算法,另一种是针对每种配置优化操作条件的控制矢量参数化方法。我们在案例研究中证明了该方法的有效性。组合问题;控制向量参数化;遗传算法;混合整数动态优化;工艺优化;大米干燥过程

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  • 来源
    《Journal of the Franklin Institute》 |2011年第7期|p.1318-1338|共21页
  • 作者单位

    University of Waterloo, Department of Chemical Engineering, Waterloo, ON, Canada N2L 3GI;

    University of Waterloo, Department of Chemical Engineering, Waterloo, ON, Canada N2L 3GI;

    University of Waterloo, Department of Chemical Engineering, Waterloo, ON, Canada N2L 3GI;

    University of Waterloo, Department of Chemical Engineering, Waterloo, ON, Canada N2L 3GI;

    University of Waterloo, Department of Chemical Engineering, Waterloo, ON, Canada N2L 3GI;

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