Suppr超能文献

填充硅橡胶应变下辐照老化效应的本构模型。

Constitutive Model of Radiation Aging Effects in Filled Silicone Elastomers under Strain.

机构信息

Lawrence Livermore National Laboratory, Livermore, California 94550, United States.

出版信息

J Phys Chem B. 2021 Sep 9;125(35):10047-10057. doi: 10.1021/acs.jpcb.1c04958. Epub 2021 Aug 27.

Abstract

Filled silicone elastomers, an essential component in many technological applications, are often subjected to controlled or unintended radiation for a variety of reasons. Radiation exposure can lead to permanent mechanical and structural changes in the material, which is manifested as altered mechanical response, and in some cases, a permanent set. For unfilled elastomers, network theories developed and refined over decades can explain these effects in terms of chain-scission and cross-link formation and a hypothesis involving independent networks formed at different strain levels of the material. Here, we expose a filled silicone rubber to gamma radiation while being under finite elongational strain and show that the observed mechanical and structural changes can be quantitatively modeled within the same theoretical framework developed for unfilled elastomers as long as nuances associated with the Mullins effect are accounted for in a consistent manner. In this work, we employ Ogden's incompressible hyperelastic model within the framework of Tobolsky's two-network scheme to describe the observed permanent set and mechanical modulus changes as a function of radiation dosage. In the process, we conclude that gamma radiation induces both direct cross-linking at chain crossings (H-links) and main-chain-scission followed by cross-linking (Y-links). We provide an estimate of the ratio of chain-scission to cross-linking rates, which is in reasonable agreement with previous experimental estimate from Charlesby-Pinner analysis. We use density functional theory (DFT)-based quantum mechanical calculations to explore the stability of -Si and -SiO radicals that form upon a radiation-induced chain-scission event, which sheds light on the relative rates of Y-linking and H-linking processes.

摘要

填充硅橡胶弹性体是许多技术应用中必不可少的组成部分,由于各种原因,它们经常受到受控或意外的辐射。辐射暴露会导致材料发生永久性的机械和结构变化,表现为机械响应的改变,在某些情况下还会产生永久变形。对于未填充的弹性体,几十年来发展和完善的网络理论可以根据链断裂和交联形成以及涉及在材料不同应变水平下形成独立网络的假设来解释这些效应。在这里,我们在有限的伸长应变下使填充硅橡胶暴露于伽马辐射下,结果表明,只要以一致的方式考虑与 Mullins 效应相关的细微差别,就可以在为未填充弹性体开发的相同理论框架内对观察到的机械和结构变化进行定量建模。在这项工作中,我们在 Tobolsky 的双网络方案的框架内使用 Ogden 的不可压缩超弹性模型来描述观察到的永久变形和机械模量随辐射剂量的变化。在此过程中,我们得出结论,伽马辐射会在链交叉点(H 键)处诱导直接交联,以及主链断裂后交联(Y 键)。我们提供了链断裂与交联速率比的估计值,这与 Charlesby-Pinner 分析的先前实验估计值相符。我们使用基于密度泛函理论(DFT)的量子力学计算来研究在辐射诱导的链断裂事件中形成的-Si 和-SiO 自由基的稳定性,这为 Y 键和 H 键过程的相对速率提供了线索。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验