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New Strategies for Predicting Parison Dimensions in Extrusion Blow Molding

机译:在挤出吹塑中预测Parison尺寸的新策略

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摘要

In this work, two new strategies were proposed for predicting the parison thickness and diameter distributions in extrusion blow molding. The first one was a finite-element-based numerical simulation for the parison extruded from a varying die gap. The comparison of simulated and experimental parison thickness distributions indicates that the new method has certain accuracy in predicting the parison thickness from a varying die gap. The second one was an artificial neural network (ANN) approach, the characteristics of which are in sufficient patterns that can be obtained without doing too many experiments. The diameter and thickness swells of the parisons extruded under different flow rates were obtained by a well-designed experiment. The obtained data were then used to train and test the ANN model. The dimension of one location on the parison can provide one pattern to train the ANN model. Trained and tested ANN model can be used to predict the dimensions at any location on the parison within a given range. The proposed two strategies can help search the processing conditions to obtain optimal parison thickness distributions.
机译:在这项工作中,提出了两种用于预测挤压吹塑中型坯厚度和直径分布的新策略。第一个是基于有限元的数值模拟,用于从变化的模具间隙中挤出的型坯。模拟和实验型坯厚度分布的比较表明,该新方法在根据变化的模具间隙预测型坯厚度方面具有一定的准确性。第二种是人工神经网络(ANN)方法,其特征在于无需进行过多实验即可获得的足够模式。通过精心设计的实验获得了在不同流速下挤出的型坯的直径和厚度膨胀。然后,将获得的数据用于训练和测试ANN模型。型坯上一个位置的尺寸可以提供一种模式来训练ANN模型。经过训练和测试的ANN模型可用于预测给定范围内型坯上任何位置的尺寸。所提出的两种策略可以帮助搜索加工条件以获得最佳的型坯厚度分布。

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  • 来源
    《Polymer-Plastics Technology and Engineering》 |2011年第13期|p.1329-1337|共9页
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  • 作者单位

    Lab for Micro Molding and Polymer Rheology, South China University of Technology, Guangzhou, P.R. China;

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