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Multi-model based real-time final product quality control strategy for batch processes

机译:基于多模型的批处理实时最终产品质量控制策略

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摘要

A novel real-time final product quality control strategy for batch operations is presented. Quality control is achieved by periodically predicting the final product quality and adjusting process variables at pre-specified decision points. This data-driven methodology employs multiple models, one for each decision point, to capture the time-varying relationships. These models combine real-time batch information from process variables and initial conditions with information from prior batches. Design of experiments is performed to generate informative data that reveal the relationship between process conditions and the final product quality at various times. Control action is also taken at pre-specified decision points; at these times, the manipulated variable values are calculated by solving an optimal control problem similar to model predictive control. A key benefit of this strategy is that missing data imputation is obviated. The proposed modeling and quality control strategy is illustrated using a batch reaction case study.
机译:提出了一种用于批生产的新型实时最终产品质量控制策略。通过定期预测最终产品质量并在预先指定的决策点调整过程变量来实现质量控制。这种数据驱动的方法采用多个模型(每个决策点一个模型)来捕获时变关系。这些模型将来自过程变量和初始条件的实时批次信息与先前批次的信息结合在一起。进行实验设计以生成信息丰富的数据,这些数据揭示了工艺条件与最终产品质量在不同时间之间的关系。还可以在预先指定的决策点采取控制措施;此时,通过解决类似于模型预测控制的最优控制问题来计算操纵变量值。此策略的主要好处是可以避免丢失数据插补。拟议的建模和质量控制策略使用批处理反应案例研究进行了说明。

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