首页> 外文会议>European symposium on computer aided process engineering;ESCAPE 21 >Iterative learning control of a reactive polymer composite moulding process using batch-wise updated linearised models
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Iterative learning control of a reactive polymer composite moulding process using batch-wise updated linearised models

机译:使用分批更新的线性化模型的反应性聚合物复合材料成型过程的迭代学习控制

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摘要

This paper presents an iterative learning control strategy for a reactive polymer composite moulding process using linearised models identified from process operational data. The control actions for the next batch are modified using the information obtained from the current and previous batches. The control policy updating is calculated using a model linearised around a reference batch. In order to cope with process nonlinearities, process variations, and disturbances, the reference batch can be taken as the immediate previous batch. In such a way, the model is-a batch-wise linearised model and is updated after each batch. The newly obtained process operation data after each batch is added to the historical data base and an updated linearised model is re-identified. Simulation results show that the iterative learning control strategy can improve the final degree of cure from batch to batch despite the presence of model plant mismatches and unknown disturbances.
机译:本文提出了一种反应性学习控制策略,该策略使用从过程操作数据中识别出的线性化模型对反应性聚合物复合材料成型过程进行了迭代。使用从当前批次和先前批次获得的信息来修改下一个批次的控制动作。使用围绕参考批次线性化的模型来计算控制策略更新。为了应对过程非线性,过程变化和干扰,可以将参考批次视为前一个批次。以这种方式,该模型是批处理线性化模型,并且在每次批处理之后进行更新。将每批之后新获得的过程操作数据添加到历史数据库中,并重新标识更新的线性化模型。仿真结果表明,尽管存在模型工厂不匹配和未知干扰,但迭代学习控制策略仍可以提高批次之间的最终治愈程度。

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