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首页> 外文期刊>Journal of Materials Science >Formulation optimization for thermoplastic sizing polyetherimide dispersion by quantitative structure-property relationship: experiments and artificial neural networks
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Formulation optimization for thermoplastic sizing polyetherimide dispersion by quantitative structure-property relationship: experiments and artificial neural networks

机译:通过定量结构-性质关系优化热塑性上浆聚醚酰亚胺分散体的配方:实验和人工神经网络

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The main function of a sizing in a composite is to fill interface between fibre and polymer matrix. This coating process contributes to increase adhesion between fibre and matrix, and therefore improve mechanical properties of the composites. The aim of this study was to optimize sizing formulations by identifying the experimental parameters influencing the particle size, distribution size and stability of various aqueous emulsions, used in the coating process of carbon fibres with polyetherimide as thermoplastic sizing polymer. A quantitative structure-property relationship (QSPR) method with artificial neural networks was used to determine the main parameters involved in the different formulation steps. The results indicated three recurrent parameters: stirring speed, surfactant concentration and type of reactor which control the particle size, stability and distribution size of the dispersions. With a reduced dataset constituted of 36 entries, this QSPR method was able to predict the stability of the aqueous dispersion of polymer and the particle size with an accuracy of 200 nm for an average diameter ranging from 330 to 2700 nm. The distribution size could be predicted with an accuracy of 0.047 for an experimental size distribution of 0.2.
机译:在复合材料中上浆的主要功能是填充纤维和聚合物基质之间的界面。这种涂覆过程有助于增加纤维与基体之间的粘合力,因此改善了复合材料的机械性能。这项研究的目的是通过确定影响各种水性乳液的粒径,分布尺寸和稳定性的实验参数来优化上浆配方,这些参数用于以聚醚酰亚胺作为热塑性上浆聚合物的碳纤维涂层工艺中。使用带有人工神经网络的定量结构-性质关系(QSPR)方法来确定不同配方步骤中涉及的主要参数。结果表明了三个循环参数:搅拌速度,表面活性剂浓度和反应器类型,它们控制分散体的粒径,稳定性和分布尺寸。通过减少的数据集(包含36个条目),该QSPR方法能够预测聚合物水分散体的稳定性和粒径,其平均直径范围为330至2700 nm,准确度为200 nm。对于0.2的实验尺寸分布,可以以0.047的精度预测分布尺寸。

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