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Sugar Precipitation Control of Chinese Medicine Solution Based on Nonlinear Model Predictive

机译:基于非线性模型预测性的中药溶液糖沉淀控制

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This paper illustrates the benefits of a nonlinear model-based predictive control approach applied to a sugar precipitation process for Chinese medicine solution. This relevant approach proposes set point tracking for the crystal mass/concentration couple. In this purpose, a model dedicated to the stage crystallization is designed, without consideration of crystal size distribution (CSD). A neural network model is used as an internal model to predict process outputs. An optimization problem is solved to compute future control actions taking into account real-time control objectives. The performance of the proposed control strategy, which apply to sucrose and glucose precipitation constitutes a real novelty, is tested via simulation in cases of set point tracking. The results reveal a significant improvement in terms of precipitation efficiency.
机译:本文说明了基于非线性模型的预测性控制方法的益处,其应用于中药溶液的糖沉淀过程。这种相关方法提出了用于晶体质量/浓度耦合的设定点跟踪。为此目的,设计了一种专用于阶段结晶的模型,而不考虑晶体尺寸分布(CSD)。神经网络模型用作内部模型以预测过程输出。解决了优化问题,以考虑到实时控制目标来计算未来的控制操作。拟议的控制策略的性能适用于蔗糖和葡萄糖沉淀构成真正的新奇,通过模拟来测试设定点跟踪的情况。结果揭示了降水效率的显着改善。

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