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Process-induced phase and crystal morphologies in water-assisted injection molded polypropylene/polymeric beta-nucleating agent blend parts

机译:水助注塑聚丙烯/聚合物β成核剂共混物零件中的过程诱导相和晶体形态

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By adding a polymeric -nucleating agent (acrylonitrile-styrene copolymer, SAN), in situ microfibril reinforced isotactic polypropylene (iPP)/SAN blend parts with high contents of -form crystals and transcrystals were molded via water-assisted injection molding (WAIM). Thanks to the unique stress and temperature fields occurring during the WAIM, SAN microfibers formed across the whole residual wall of iPP/SAN blend parts with relatively large thickness. Numerical simulations on high-pressure water penetration and cooling stages of the WAIM were carried out to reveal the stress and temperature fields. Comprehensive analysis of both experimental and simulated results showed that not only the shear flow field but also elongational flow field occurring during the WAIM was responsible for the formation of SAN microfibers and unique crystal morphology distribution in the WAIM iPP/SAN blend part. Moreover, during the WAIM, the high cooling rate also played an important role in the formation of both phase and crystal morphologies. The preferential formation of transcrystals in the inner layer of WAIM iPP/SAN blend part could be ascribed to the strong elongation, rather than the strong shear. It was believed that the quantification of stress and temperature fields of the WAIM via numerical simulation could provide a guidence for molding high-performance products. POLYM. ENG. SCI., 55:1698-1705, 2015. (c) 2014 Society of Plastics Engineers
机译:通过添加聚合物成核剂(丙烯腈-苯乙烯共聚物,SAN),通过水辅助注射成型(WAIM)来成型原位微纤维增强的全同立构聚丙烯(iPP)/ SAN共混物,其中含有高含量的晶型和反晶。由于在WAIM过程中出现了独特的应力和温度场,SAN超细纤维形成在iPP / SAN混合零件的整个残留壁上,具有相对较大的厚度。对WAIM的高压水渗透和冷却阶段进行了数值模拟,以揭示应力和温度场。对实验和模拟结果的综合分析表明,不仅WAIM过程中发生的剪切流场,而且还涉及伸长流场,这是造成SAN细纤维形成和WAIM iPP / SAN共混部分独特的晶体形态分布的原因。而且,在WAIM期间,高冷却速率在相和晶体形态的形成中也起着重要作用。 WAIM iPP / SAN共混物内层中反晶的优先形成可以归因于强的伸长率,而不是强的剪切力。人们认为,通过数值模拟对WAIM的应力和温度场进行量化可以为模塑高性能产品提供指导。 POLYM。 ENG。 SCI。,55:1698-1705,2015.(c)2014年塑料工程师学会

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