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Nonlinear model predictive control of end-use properties in batch reactors under uncertainty.

机译:不确定性下间歇反应器最终用途特性的非线性模型预测控制。

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A reliable batch control strategy should be able to address the objectives of meeting the product quality specifications while operating in an optimal manner. The use of Nonlinear Model Predictive Control (NLMPC) with dynamic process model and static property model for the control of end-use properties is studied. The effect of uncertainty on the state estimation and control and the methodology to incorporate it is the main focus of this work. Two approaches to systematically estimate the process noise covariance matrix for Extended Kalman Filter using the information about model uncertainty are proposed. The proposed two methods calculate time-varying values of the process noise covariance on-line, which are used by the filter. The NLMPC of end-use properties is formulated to control them at a target region, which represents the desired product specifications. A technique using successive linear approximation of the target region is used to find the control moves. The approach to handle uncertainty in NLMPC is based on moving away from the boundaries of the end-use property target region to an appropriate point. This utilizes the joint confidence regions for the end-use properties that are determined online. The Nonlinear Model Predictive Controller problem under uncertainty is formulated as a semi-infinite programming problem. This problem is solved using outer-approximation algorithm and the features of the problem formulation are utilized to reduce the computational demands for the solution. The emulsion polymerization process for styrene is chosen as an example to study the effectiveness of the developed methodologies. The end-use product properties like tensile strength and melt index are controlled in the desired target regions using the manipulated variables, the addition of monomer and the addition of chain transfer agent as well as the flow rate of the coolant.
机译:可靠的批次控制策略应能够以最佳方式实现满足产品质量规格的目标。研究了具有动态过程模型和静态属性模型的非线性模型预测控制(NLMPC)在最终用途属性控制中的应用。不确定性对状态估计和控制的影响以及将不确定性纳入其中的方法是这项工作的主要重点。提出了两种利用模型不确定性信息系统地估计扩展卡尔曼滤波器过程噪声协方差矩阵的方法。所提出的两种方法可在线计算过程噪声协方差的时变值,供滤波器使用。制定了最终用途特性的NLMPC,以将其控制在目标区域内,该区域代表所需的产品规格。使用目标区域的连续线性逼近的技术来查找控制移动。在NLMPC中处理不确定性的方法是基于从最终用途属性目标区域的边界移到适当的点。这将联合置信区域用于在线确定的最终用途属性。将不确定性下的非线性模型预测控制器问题表述为半无限规划问题。使用外部逼近算法解决了该问题,并利用问题表述的特征来减少求解的计算需求。以苯乙烯乳液聚合工艺为例,研究了所开发方法的有效性。使用操纵变量,单体的添加和链转移剂的添加以及冷却剂的流量,可以在所需的目标区域中控制最终用途的产品性能(如拉伸强度和熔体指数)。

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