Temperature and Deformation-Induced Changes in the Mechanical Properties of the Amorphous Regions of Semicrystalline Polypropylene.

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL
Małgorzata Polinska, Marcin Kozanecki, Artur Rozanski
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Abstract

This work is focused on the impact of temperature and deformation on the mechanical properties, specifically the elastic modulus (Ea) of the amorphous regions in semicrystalline polymers, using polypropylene as a case study. It has been shown that increasing temperature results in an Ea decrease due to the enhanced mobility of polymer chains, triggered by the activation of α relaxation processes within the crystalline component. Consequently, rising temperature reduces the "stiffening" effect of the crystalline regions on the interlamellar layers. Temperature decrease close to the glass transition causes a significant increase in the Ea value, reaching nearly 70 MPa. Next, the effects of crystalline/amorphous component orientation and undisturbed crystallite length on Ea were examined in materials deformed using a channel die at various compression ratios. At low compression ratios, Ea decreases nearly 4-fold, primarily due to the fragmentation of lamellar crystals in the absence of, or with relatively low, orientation of the crystalline and amorphous components. Conversely, at higher compression ratios, with minimal crystal fragmentation, increased orientation of both crystalline and amorphous regions along the deformation direction (Ea measurement direction) leads to a substantial increase in Ea. Ultimately, the material with the highest used compression ratio exhibited an Ea value approximately 20% higher than that of the undeformed material.

温度和变形对半晶聚丙烯非晶区力学性能的影响。
本文以聚丙烯为例,研究了温度和变形对半晶聚合物力学性能的影响,特别是对非晶区弹性模量(Ea)的影响。研究表明,温度升高导致Ea降低,这是由于聚合物链的迁移性增强,这是由晶体组分内α弛豫过程的激活引起的。因此,升高的温度降低了层间晶体区域的“硬化”效应。靠近玻璃化转变的温度降低导致Ea值显著增加,达到近70 MPa。接下来,研究了在不同压缩比下使用通道模变形的材料中,晶体/非晶组分取向和未受干扰的晶体长度对Ea的影响。在较低的压缩比下,Ea降低了近4倍,这主要是由于在没有晶体和非晶组分取向或取向相对较低的情况下片层晶体的破碎。相反,在较高的压缩比下,晶体破碎最小,晶态和非晶态区域沿变形方向(Ea测量方向)的取向都增加,导致Ea大幅增加。最终,使用最高压缩比的材料的Ea值比未变形的材料高约20%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
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