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The role of micro-structural and mechanical properties in the framework of the model for damage inception and growth from air-filled voids in Polyethylene-based materials for HVDC cables

机译:微结构和机械性能在用于HVDC电缆的聚乙烯基材料中损伤终止和生长模型的框架作用

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An innovative, physical, aging and life model for polymeric insulation systems, founded on damage inception and growth at the level of microscopic cavities, was developed previously by the Authors. This paper is focused on the role played by micro-structural and mechanical properties (such as crystallinity and Young''s modulus) in the framework of such model. These concepts are applied to the case of LDPE, HDPE and XLPE matrixes. The relevant estimates of damage growth rate and time-to-failure as a function of void size and applied electric field in typical working conditions for HVDC power cables are performed. The results show that, under the assumptions made, the crystallinity level itself does not seem to affect significantly the life times, while the mechanical characteristics of the investigated materials (accounted for via the Young''s modulus) seem to have a non-negligible impact on damage growth rate and time-to-failure of the polymeric matrix.
机译:在作者上,成立于聚合物绝缘系统的创新,身体,老化和生命模型,其基于损坏的显微镜腔水平的损伤和生长,以前由作者开发。本文的重点是在这种模型的框架中进行微观结构和机械性能(如结晶度和幼年模量)的作用。这些概念应用于LDPE,HDPE和XLPE矩阵的情况。进行了HVDC电力电缆典型工作条件下的空隙尺寸和应用电场的损伤增长速率和失效时间的相关估计。结果表明,在所做的假设下,结晶度水平本身似乎不会影响终身时间,而研究材料的机械特性(通过年轻的模量占用)似乎具有不可忽视的对聚合物基质的损伤生长速率和失效的影响。

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