Introduction to the Study of Mechanical Properties of Terpolymer PP/EPDM Mixtures

S. Scagliusi, Elizabeth C.L. Carvalho, A. B. Lugão
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Abstract

: Thermoplastic elastomers (TPEs), based in PP (Polypropylene) / EPDM (Ethylene Propylene Diene Monomer) have as purpose improving PP resistance and impact, aiming to a more comprehensive use in automotive market, among edifications, construction and packaging sectors, due to their recyclability properties. PP is a commodity, with a high melting point, high mechanical resistance and low density, posing a balance between physical and mechanical properties; in addition, it shows an easy processing, at low cost. In order to minimize this deficiency, EPDM, an impact modifier, can be used. Nevertheless, most of polymeric blends are incompatible and immiscible, i.e., show a mutual and limited solubility and in most of cases, a high interfacial tension. However, there is a relatively low interfacial tension (force which acts on transformation of a continuous structure in a dispersion) between PP and EPDM (approximately 0.3 mN.m -1 ), reducing the rate of breakup and facilitating the build-up of a continuous structure. This work aims to the study of compatibility of PP and EPDM blends and variation of mechanical properties, emphasizing that many properties of thermoplastic elastomers can be processed according with conventional thermoplastics methods: herein, PP/EPDM blends, 90/10, 80/20, 70/30 and 50/50 were characterized according to: Mechanical essays, Differential Scanning Calorimetry, Thermogravimetric Analyses, Melt Flow Index, Izod Impact Strength and Dynamic mechanical Analyses.
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聚丙烯/三元乙丙橡胶共混物力学性能研究简介
:热塑性弹性体(TPEs),基于PP(聚丙烯)/ EPDM(乙丙二烯单体)的目的是提高PP的耐冲击性,旨在更全面地应用于汽车市场,在教育,建筑和包装领域,由于其可回收性。PP是一种商品,具有高熔点、高机械阻力和低密度,在物理性能和机械性能之间取得平衡;此外,它还表现出加工简单、成本低的特点。为了尽量减少这一缺陷,可以使用抗冲击改性剂EPDM。然而,大多数聚合物共混物是不相容和不混溶的,即表现出相互和有限的溶解度,在大多数情况下,具有很高的界面张力。然而,PP和EPDM之间的界面张力(作用于分散中连续结构转变的力)相对较低(约0.3 mN)。M -1),减少了破裂的速度,促进了连续结构的建立。本工作旨在研究PP和EPDM共混物的相容性和力学性能的变化,强调热塑性弹性体的许多性能可以按照传统的热塑性塑料方法加工:在这里,PP/EPDM共混物、90/10、80/20、70/30和50/50分别根据:力学论文、差示扫描量热法、热重分析、熔体流动指数、Izod冲击强度和动态力学分析进行表征。
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