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REAL TIME MODEL-PREDICTIVE CONTROL OF PREFORM PERMEATION IN LIQUID COMPOSITE MOLDING PROCESSES

机译:液体复合成型工艺预成型渗透的实时模型预测控制

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Manufacturing of quality products via liquid molding processes such as Resin Transfer Molding (RTM), calls for a precise control of resin progression through fibrous preforms during mold fill. Lack of an effective process control leads to for-marion of dry spots and voids that are detrimental to product quality. This study presents the use of physics-based process simulations in real time, towards a generalized process control. The implementation of process simulations for on-line model-predictive control requires that the simulation time scales be less than the time scales of the process. An artificial neural network trained using data from numerical process models is used to provide rapid, real-time process simulations for the model-predictive control. A simulated annealing algorithm, working interactively with the neural network process model, is used to derive optimal control decisions rapidly and on-the-fly. The controller performance is systematically demonstrated for several processing scenarios.
机译:通过液体成型方法如树脂转移模塑(RTM),通过纤维预成型件进行精确控制树脂填充物的树脂进展的优质产品的制造。缺乏有效的过程控制导致干斑和空隙的面膜,这对产品质量有害。本研究介绍了实时使用基于物理的过程模拟,迈向广义过程控制。用于在线模型预测控制的过程仿真的实现要求模拟时间尺度小于过程的时间尺度。使用来自数值过程模型的数据训练的人工神经网络用于为模型预测控制提供快速,实时过程模拟。一种模拟的退火算法,与神经网络过程模型交互式,用于迅速且在飞行中获得最佳控制决策。用于多个处理场景系统地对控制器性能进行系统展示。

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