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半结晶聚乙烯变形过程中的微屈曲不稳定性与二次屈服

Microbuckling Instability and the Second Yield during the Deformation of Semicrystalline Polyethylene.

作者信息

Bartczak Zbigniew, Vozniak Alina

机构信息

Centre of Molecular and Macromolecular Studies, Polish Academy of Sciences, Sienkiewicza 112, 90-363 Łódź, Poland.

出版信息

Polymers (Basel). 2020 Sep 26;12(10):2208. doi: 10.3390/polym12102208.

Abstract

Deformation instabilities, such as microbuckling or lamellar fragmentation due to slip localization, play a very important role in the deformation of semicrystalline polymers, although it still not well explored. Such instabilities often appear necessary to modify the deformation path and facilitate strain accommodation in an energy-minimizing manner. In this work, microbuckling instability was investigated using partially oriented, injection-molded (IM) samples of high-density polyethylene, deformed by a plane-strain compression. Deformed samples were probed by SEM, X-ray (small- and wide-angle X-ray scattering: SAXS, WAXS), and differential scanning calorimetry (DSC). It was found that microbuckling instability, followed quickly by the formation of lamellar kinks, occurred in high-density polyethylene (HDPE) at a true strain of about e = 0.3-0.4, mainly in those lamellar stacks which were initially oriented parallel to the compression direction. This phenomenon was observed with scanning electron microscopy, especially in the oriented skin layers of IM specimens, where a chevron morphology resulting from lamellae microbuckling/kinking was evidenced. Macroscopically, this instability manifested as the so-called "second macroscopic yield" in the form of a hump in the true stress-true strain curve. Microbuckling instability can have a profound effect on the subsequent stages of the deformation process, as well as the resulting structure. This is particularly important in deforming well-oriented lamellar structures-e.g., in drawing pre-oriented films of a semicrystalline polymer, a process commonly used in many technologies.

摘要

变形不稳定性,如由于滑移局部化导致的微屈曲或片层破碎,在半结晶聚合物的变形过程中起着非常重要的作用,尽管目前对此仍未得到充分研究。这种不稳定性似乎常常是改变变形路径并以能量最小化方式促进应变适应所必需的。在这项工作中,使用部分取向的注塑(IM)高密度聚乙烯样品,通过平面应变压缩使其变形,对微屈曲不稳定性进行了研究。通过扫描电子显微镜(SEM)、X射线(小角和广角X射线散射:SAXS、WAXS)以及差示扫描量热法(DSC)对变形后的样品进行了探测。研究发现,在高密度聚乙烯(HDPE)中,当真实应变约为ε = 0.3 - 0.4时会发生微屈曲不稳定性,并迅速伴随片层扭结的形成,主要发生在那些最初与压缩方向平行取向的片层堆叠中。通过扫描电子显微镜观察到了这种现象,特别是在IM试样的取向皮层中,证实了由片层微屈曲/扭结产生的人字形形态。从宏观上看,这种不稳定性表现为真实应力 - 真实应变曲线上出现驼峰形式的所谓“第二次宏观屈服”。微屈曲不稳定性会对变形过程的后续阶段以及最终结构产生深远影响。这在使取向良好的片层结构变形时尤为重要,例如在拉伸半结晶聚合物预取向薄膜时,这是许多技术中常用的一种工艺。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e287/7599652/fad4ebff77ef/polymers-12-02208-g001.jpg

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