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Application of constrained linear MPC to a spray dryer

机译:约束线性MPC在喷雾干燥机中的应用

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摘要

In this paper we develop a linear model predictive control (MPC) algorithm for control of a two stage spray dryer. The states are estimated by a stationary Kalman filter. A non-linear first-principle engineering model is developed to simulate the spray drying process. The model is validated against experimental data and able to precisely predict the temperatures, the air humidity and the residual moisture in the dryer. The MPC controls these variables to the target and reject disturbances. Spray drying is a cost-effective method to evaporate water from liquid foods and produces a free flowing powder. The main challenge of spray drying is to meet the residual moisture specification and prevent powder from sticking to the chamber walls. By simulation we compare the performance of the MPC against the conventional PID control strategy. During an industrially recorded disturbance scenario, the MPC increases the production rate by 7.9%, profit of production by 8.2% and the energy efficiency by 4.1% on average.
机译:在本文中,我们开发了用于控制两级喷雾干燥器的线性模型预测控制(MPC)算法。通过固定的卡尔曼滤波器估计状态。建立了非线性第一原理工程模型来模拟喷雾干燥过程。该模型已根据实验数据进行了验证,并能够精确预测干燥机中的温度,空气湿度和残留水分。 MPC将这些变量控制到目标并拒绝干扰。喷雾干燥是从液态食品中蒸发水分并产生自由流动粉末的一种经济有效的方法。喷雾干燥的主要挑战是要满足残留水分规范并防止粉末粘在腔室壁上。通过仿真,我们将MPC的性能与常规PID控制策略进行了比较。在工业记录的干扰情况下,MPC的平均生产率提高了7.9%,生产利润提高了8.2%,能源效率提高了4.1%。

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