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首页> 外文期刊>Polymer: The International Journal for the Science and Technology of Polymers >Strain gradient plasticity for amorphous and crystalline polymers with application to micro- and nano-scale deformation analysis
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Strain gradient plasticity for amorphous and crystalline polymers with application to micro- and nano-scale deformation analysis

机译:非晶态和结晶态聚合物的应变梯度可塑性及其在微观和纳米尺度变形分析中的应用

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摘要

Microscale mechanical responses of semicrystalline glassy polymers are of utmost importance when these materials are deployed in microstructural applications, e.g. MEMS and NEMS. The classical continuum plasticity theories become ill-posed in the case of highly localized deformations and they result in mesh dependent Finite Element (FE) solutions. Then the continuum theories may not directly be applicable to study stressestrain responses in nano- and micro-scale structures. The non-local modeling approach is one solution to this deficiency in which the non-local effects, associated with the presence of highly localized plastic deformation fields, are integrated into the constitutive relations. The microstructural information together with the intrinsic material length scale are incorporated in these theories to take into account the non-local effects and to ensure the well-posedness of the governing equations. While non-local theories have been extensively investigated for Metals (class M materials), this work aims to develop a rate dependent plasticity theory with strain gradient effects for semicrystalline Polymers (class P materials).
机译:当将这些材料部署在微结构应用中时,半结晶玻璃状聚合物的微尺度机械响应至关重要。 MEMS和NEMS。在高度局部变形的情况下,经典的连续性可塑性理论变得不适当,它们导致依赖于网格的有限元(FE)解决方案。然后,连续理论可能无法直接应用于研究纳米和微米尺度结构中的应力应变响应。非局部建模方法是解决该缺陷的一种方法,在该方法中,与局部高塑性变形场相关的非局部效应被整合到本构关系中。这些理论中结合了微观结构信息和固有材料长度尺度,以考虑非局部效应并确保控制方程的适定性。尽管对金属(M类材料)的非局部理论进行了广泛研究,但这项工作的目的是为半结晶聚合物(P类材料)开发一种具有应变梯度效应的速率依赖性塑性理论。

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