Constrained Nonlinear Model Predictive Control of an MMA Polymerization Process via Evolutionary Optimization
Constrained Nonlinear Model Predictive Control of an MMA Polymerization Process via Evolutionary Optimization
In this work, a nonlinear model predictive controller is developed for a batch polymerization process. The physical model of the process is parameterized along a desired trajectory resulting in a trajectory linearized piecewise model (a multiple linear model bank) and the parameters are identified for an experimental polymerization reactor. Then, a multiple model adaptive predictive controller is designed for thermal trajectory tracking of the MMA polymerization. The input control signal to the process is constrained by the maximum thermal power provided by the heaters. The constrained optimization in the model predictive controller is solved via genetic algorithms to minimize a DMC cost function in each sampling interval.
Reza Solgi、Masoud Abbaszadeh
高分子化合物工业自动化技术、自动化技术设备计算技术、计算机技术
Reza Solgi,Masoud Abbaszadeh.Constrained Nonlinear Model Predictive Control of an MMA Polymerization Process via Evolutionary Optimization[EB/OL].(2015-02-14)[2025-08-07].https://arxiv.org/abs/1502.04266.点此复制
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