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Plastic deformation and cavitation in semicrystalline polymers studied by X-ray methods

机译:X射线方法研究半结晶聚合物的塑性变形和空化

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摘要

This paper is a literature review presenting the relation between the cavitation phenomenon and plastic deformation of polymers. The cavitation phenomenon, meaning the formation of numerous micro and nano size voids (cavities), is observed in many semicrystalline polymers deformed at temperatures above the glass transition. Cavitation occurs when crystals in the polymer are stronger than the amorphous phase. This means that the phenomenon may be controlled by applying an appropriate crystallization procedure. Thicker and less defected crystals usually grow when the time for crystallization is longer and it is easier to deform the amorphous phase with voiding. The cavitation process also depends on the deformation conditions. Faster stretching at lower temperatures is favorable for deformation with voiding. The cavities are observed only during tensile deformation as local triaxial straining is necessary for cavitation. Usually, cavities are formed when the strain is close to the yield point and voids have a nanometer size. Larger, micrometer cavities dominate at higher strains, near the end of the deformation process.
机译:本文是一篇文献综述,介绍了空化现象与聚合物塑性变形之间的关系。在许多在高于玻璃化转变温度的温度下变形的半结晶聚合物中观察到了空化现象,这意味着形成了许多微米和纳米尺寸的空洞(空洞)。当聚合物中的晶体比非晶相强时,就会发生气穴现象。这意味着可以通过应用适当的结晶程序来控制该现象。当结晶时间较长时,通常会长出更厚,缺陷更少的晶体,并且更容易因空洞而使非晶相变形。空化过程还取决于变形条件。在较低温度下更快的拉伸有利于带空隙的变形。仅在拉伸变形时才能观察到空腔,因为局部三轴应变对于空腔化是必需的。通常,当应变接近屈服点时会形成空腔,而空隙具有纳米尺寸。在变形过程即将结束时,较大的,微米级的空腔在较高的应变下占主导地位。

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