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Studies of microcellular nanocomposites with supercritical fluid assisted injection moulding process

机译:超临界流体辅助注射成型工艺研究微孔纳米复合材料

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In this study, the microstructure, thermal behaviour and mechanical properties of microcellular nanocomposites were studied. Microcell wall structure and smoothness were determined by the size of the crystalline structure, which, in turn, was based on the material system and moulding conditions. Nanoclay in the microcellular, supercrtitical fluid assisted injection moulding process promoted the y form and suppressed the α form crystalline structure of polyamide 6 (PA6). In the crystallisation kinetics studies, the Avrami equation and the modified Ozawa equation with the Mo method were used to model and analyse isothermal and non-isothermal crystallisation processes respectively. The existence of nanoclay increased the magnitude of the activation energy for both isothermal and non-isothermal crystallisation processes. This suggests the fast crystallisation process and the small crystalline size for microcellular nanocomposite processing. Interestingly, the dissolved gas lowered the crystallinity of the cores of moulded microcellular parts, but the addition of nanoclay reduced the crystallinity of both the cores and the skins of parts. The collective effect of the dissolved gas and nanoclay acted to shorten the moulding cycle time greatly with a reduction in the overall crystallinity of microcellular nanocomposite parts.
机译:在这项研究中,研究了微孔纳米复合材料的微观结构,热行为和力学性能。微孔壁的结构和光滑度取决于晶体结构的大小,而晶体结构的大小又取决于材料系统和成型​​条件。微孔,超临界流体辅助注射成型过程中的纳米粘土促进了y形式并抑制了聚酰胺6(PA6)的α形式晶体结构。在结晶动力学研究中,采用Avrami方程和采用Mo方法的改进的Ozawa方程分别模拟和分析了等温和非等温结晶过程。纳米粘土的存在增加了等温和非等温结晶过程的活化能大小。这表明用于微孔纳米复合材料加工的快速结晶过程和较小的晶体尺寸。有趣的是,溶解的气体降低了成型的微孔部件的芯的结晶度,但是纳米粘土的添加降低了部件的芯和表皮的结晶度。溶解气体和纳米粘土的共同作用大大缩短了成型周期,同时降低了微孔纳米复合材料零件的总体结晶度。

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