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Extrusion processing for manufacture of low-density, fine-celled polypropylene foams.

机译:用于生产低密度细孔聚丙烯泡沫的挤出加工。

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A continuous extrusion process for the manufacture of low-density, fine-celled polypropylene foams is presented. Due to its outstanding functional characteristics and low material cost, polypropylene foams have been considered as a substitute for other thermoplastic foams in industrial applications. However, only limited research has been conducted on the production of polypropylene foams because of the weak melt strength, and no research has been conducted to investigate the mechanisms that govern the expandability of polypropylene foams. This thesis presents the effective strategies for increasing the volume expansion ratio as well as the mechanisms governing the foam density of polypropylene foams. The basic strategies taken in this study for the promotion of a large volume expansion ratio of polypropylene foams are: (a) to use a branched material for preventing cell coalescence; (b) to use a long-chain blowing agent with low diffusivity; (c) to lower the melt temperature for decreasing gas loss during expansion; and (d) to optimize the processing conditions in the die for avoiding premature crystallization. The effects of processing and materials parameters on the foam morphologies of polypropylene materials were thoroughly studied using a single-screw tandem foam extrusion system. A careful analysis of extended experimental results obtained at various processing conditions indicates that the final volume expansion ratio of the extruded polypropylene foams blown with butane is governed either by loss of blowing agent or by crystallization of the polymer matrix. By tailoring the processing conditions in the die, ultra low-density, fine-celled polypropylene foams with very high expansion ratio up to 90-fold were successfully produced from the branched polypropylene resins. Fundamental studies have also been conducted to investigate the effect of various processing and materials parameters on the thermodynamic, thermal and melt fracture behaviors of polypropylene melts with foaming additives that influence the cell morphology of polypropylene foams.
机译:提出了用于制造低密度细孔聚丙烯泡沫的连续挤出方法。由于其出色的功能特性和较低的材料成本,聚丙烯泡沫在工业应用中已被认为可以替代其他热塑性泡沫。然而,由于熔体强度弱,仅对聚丙烯泡沫的生产进行了有限的研究,并且还没有进行研究控制聚丙烯泡沫的膨胀性的机理的研究。本文提出了提高体积膨胀比的有效策略以及控制聚丙烯泡沫泡沫密度的机理。这项研究中为提高聚丙烯泡沫的大体积膨胀率而采取的基本策略是:(a)使用支化材料防止孔道聚结; (b)使用扩散率低的长链发泡剂; (c)降低熔融温度以减少膨胀过程中的气体损失; (d)优化模具中的加工条件,以避免过早结晶。使用单螺杆串联泡沫挤出系统,彻底研究了工艺和材料参数对聚丙烯材料泡沫形态的影响。对在各种加工条件下获得的扩展实验结果的仔细分析表明,用丁烷吹塑的挤出聚丙烯泡沫的最终体积膨胀比取决于发泡剂的损失或聚合物基质的结晶。通过调整模具中的加工条件,成功地从支化聚丙烯树脂生产了超低密度细孔聚丙烯泡沫,其发泡率高达90倍。还已经进行了基础研究,以研究各种加工和材料参数对具有影响聚丙烯泡沫的泡孔形态的发泡添加剂的聚丙烯熔体的热力学,热和熔体断裂行为的影响。

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