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MULTIPLE MODEL PREDICTIVE CONTROL OF THE FED-BATCH REACTOR

机译:FED批量反应器的多模型预测控制

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In this work the use of multiple model predictive control (MMPC) for the control of batch processes is studied. The main idea is based on development of the local linear models for the whole operating range of the controlled process. The local models are identified from measured data using clustering and quadratic programming. The nonlinear plant is then approximated by a set of locally valid submodels, which are smoothly connected using the validity function. The approach is illustrated by a simulation study of a fed-batch process for the synthesis of hexyl monoester maleic acid.
机译:在这项工作中,研究了用于控制批处理的多种模型预测控制(MMPC)。主要思想基于对受控过程的整个操作范围的局部线性模型的开发。使用聚类和二次编程从测量数据中识别本地模型。然后,非线性工厂通过一组局部有效的子模型近似,使用有效功能平稳地连接。该方法是通过对合成己基单烯烃酸合成的补料分批方法的模拟研究来说明。

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