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An experimental study on on-line optimizing control of free radical bulk polymerization in a rheometer-reactor assembly under conditions of power failure

机译:停电条件下流变仪-反应器组件中自由基本体聚合在线优化控制的实验研究

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An experimental study on the on-line optimizing control of a sample free radical bulk polymerization system, namely, methyl methacrylate (MMA), is carried out in a rheometer-reactor assembly. Two initiator loadings and three cases involving external disturbances (power failure) are studied. The disturbances are assumed to be of two kinds: one that leads to a sudden increase in the temperature of the reaction mass (cooling water pump failure) over the planned temperature history, T(t), and one leading to a sudden drop in the temperature (heater failure). The temperature and the viscosity, eta, histories are used to describe the 'state' (conversion, x(m), and weight-average molecular weight, M-w) of the polymerizing mass. The polymerization is first carried out under an off-line computed optimal temperature history, T-op(t), obtained using the adapted jumping gene version of the elitist genetic algorithm (GA-II-AJG). A planned disturbance is introduced after the start of polymerization and continues for a pre-specified duration. A new optimal temperature history, T-reop(t), is calculated on-line (in about 3 min of real time) using GA-II-aJG. This is implemented as soon as the disturbance is rectified. Experimental values of x(m)(t), M-w(t) and eta(t) are also measured. These are observed to be in good agreement with model predictions for all the cases. It is found that the information on the viscosity of the reaction mass can be used effectively for on-line optimizing control. This can help 'save' the batch (give a product having the desired values of the average molecular weights) optimally, in as short a reaction time as possible. The effect of re-tuning of the model parameters using experimental data on the temperature, T-exp(t), and the viscosity, eta(t), is also demonstrated. (c) 2007 Elsevier Ltd. All rights reserved.
机译:在流变仪-反应器组件中进行了对样品自由基本体聚合系统即甲基丙烯酸甲酯(MMA)的在线优化控制的实验研究。研究了两个启动器负载和三个涉及外部干扰(电源故障)的情况。假定干扰有两种:一种是在计划的温度历史记录T(t)内导致反应物料温度突然升高(冷却水泵故障),另一种是导致反应温度突然下降。温度(加热器故障)。温度和粘度η的历史记录用来描述聚合物料的“状态”(转化率x(m)和重均分子量M-w)。聚合首先在离线计算的最佳温度历史T-op(t)下进行,该历史温度是使用改良的精英遗传算法(GA-II-AJG)的跳跃基因版本获得的。计划的干扰在聚合反应开始后引入,并持续预定时间。使用GA-II-aJG在线(大约实时3分钟)计算出一个新的最佳温度历史记录T-reop(t)。干扰消除后立即执行。还测量了x(m)(t),M-w(t)和eta(t)的实验值。在所有情况下,这些都与模型预测非常吻合。发现关于反应物料的粘度的信息可以有效地用于在线优化控制。这可以在尽可能短的反应时间内帮助最佳地“节省”批料(使产品具有所需的平均分子量值)。还展示了使用实验数据重新调整模型参数对温度T-exp(t)和粘度eta(t)的影响。 (c)2007 Elsevier Ltd.保留所有权利。

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