Modelling changes in glass transition temperature in polymer matrices exposed to low molecular weight penetrants.

Antonio Baldanza, Valerio Loianno, Giuseppe Mensitieri, Giuseppe Scherillo
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引用次数: 1

Abstract

Polymer matrices, when placed in contact with a fluid phase made of low molecular weight compounds, undergo a depression of their glass transition temperature (Tg) determined by the absorption of these compounds and the associated plasticization phenomena. Frequently, this effect is coupled with the mechanical action of the compressive stress exerted by the pressure of the fluid phase that, in contrast, promotes an increase in the Tg. This issue is relevant for technological and structural applications of composites with high-performance glassy polymer matrices, due to their significant impact on mechanical properties. We propose an approach to model and predict rubbery-glassy states maps of polymer-penetrant mixtures as a function of pressure and temperature based on the Gibbs-Di Marzio criterion. This criterion establishes that a 'thermodynamic' glass transition does occur when the configurational entropy of the system vanishes. Although questioned and criticized, this criterion constitutes a good practical approach to analyse changes of Tg and, in some way, reflects the idea of an 'entropy catastrophe' occurring at the glass transition. Several polymer-penetrant systems have been analysed modelling configurational entropy by means of the Non-Random Hydrogen Bond lattice fluid theory, able to cope with possible non-random mixing and occurrence of strong interactions. This article is part of the theme issue 'Ageing and durability of composite materials'.

模拟暴露于低分子量渗透剂的聚合物基质中玻璃化转变温度的变化。
当聚合物基体与由低分子量化合物组成的流体相接触时,它们的玻璃化转变温度(Tg)由这些化合物的吸收和相关的塑化现象决定。通常,这种效应与流体相压力施加的压应力的机械作用相结合,相反,压应力促进Tg的增加。这一问题与高性能玻璃聚合物基体复合材料的技术和结构应用有关,因为它们对机械性能有重大影响。我们提出了一种基于Gibbs-Di Marzio准则的方法来模拟和预测聚合物-渗透混合物的橡胶-玻璃态图作为压力和温度的函数。这个判据表明,当系统的构型熵消失时,确实会发生“热力学”玻璃化转变。尽管受到质疑和批评,这个准则构成了分析Tg变化的一个很好的实用方法,并且在某种程度上反映了在玻璃化转变中发生的“熵突变”的想法。用非随机氢键晶格流体理论对几种聚合物渗透体系进行了构型熵建模分析,能够处理可能的非随机混合和强相互作用的发生。本文是主题“复合材料的老化和耐久性”的一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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