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An integrated approach to active model adaptation and on-line dynamic optimisation of batch processes

机译:批处理过程的主动模型自适应和在线动态优化的集成方法

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摘要

In the application of on-line, dynamic process optimisation, adaptive estimation of the system states and parameters is usually needed to minimise the unavoidable model-process mismatch. This work presents an integrated approach to optimal model adaptation and dynamic optimisation, with specific focus on batch processes. An active approach is proposed whereby the input variables are designed so as to maximise the information content of the data for optimal model adaptation. Then, this active adaptation method is combined with the objective of process performance to form a multi-objective optimisation problem. This integrative approach is in contrast to the traditional adaptation method, where only the process performance is considered and adaptation is passively carried out by using the data as is. Two strategies for solving the multi-objective problem are investigated: weighted average and constrained optimisation, and the latter is recommended for the ease in determining the balance between these two objectives. The proposed methodology is demonstrated on a simulated semi-batch fermentation process.
机译:在在线,动态过程优化的应用中,通常需要对系统状态和参数进行自适应估计,以将不可避免的模型过程失配降至最低。这项工作提出了一种用于优化模型适应性和动态优化的集成方法,特别关注批处理过程。提出了一种主动方法,通过该主动方法,设计输入变量,以使数据的信息内容最大化,以实现最佳模型适应。然后,将该主动自适应方法与过程性能的目标结合起来,形成一个多目标优化问题。这种集成方法与传统的自适应方法相反,传统的自适应方法仅考虑过程性能,而自适应则通过使用数据直接进行自适应。研究了解决多目标问题的两种策略:加权平均和约束优化,建议使用后者来轻松确定这两个目标之间的平衡。在模拟的半分批发酵过程中证明了所提出的方法。

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