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首页> 外文期刊>Malaysian Journal of Computer Science >Computational-Based Framework for Optimizing Dynamic Processes with Plant-Model Mismatch
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Computational-Based Framework for Optimizing Dynamic Processes with Plant-Model Mismatch

机译:基于模型的工厂模型不匹配优化动态过程的框架

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摘要

A general computational sequence in optimizing the operation of a dynamic process is firstly highlighted in this paper. However, in most cases these dynamic processes include process-model mismatch, which shifts the optimal operation of the process. To overcome this, a model-mismatch estimator such as the neural network technique has been implemented in the optimization strategy. A modified general computational framework to incorporate these mismatches is developed for this purpose. The framework also allows the use of discrete process data in a continuous model to predict discrete and/or continuous mismatch profiles. The strategy is applied on a batch distillation system and the optimal operation using model mismatches is found to be comparable to that using the actual process model.
机译:本文首先着重介绍了优化动态过程操作的一般计算顺序。但是,在大多数情况下,这些动态过程包括过程模型不匹配,这会改变过程的最佳操作。为了克服这个问题,在优化策略中实现了模型失配估计器(例如神经网络技术)。为此目的,开发了一种修改后的通用计算框架来合并这些不匹配项。该框架还允许在连续模型中使用离散过程数据来预测离散和/或连续失配曲线。该策略应用于间歇蒸馏系统,发现使用模型不匹配的最佳操作与使用实际过程模型的最佳操作相当。

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