Dargazany Roozbeh, Itskov Mikhail
Department of Continuum Mechanics, RWTH Aachen University, Aachen, Germany.
Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Jul;88(1):012602. doi: 10.1103/PhysRevE.88.012602. Epub 2013 Jul 8.
The large strain behavior of filled rubbers is characterized by the strong Mullins effect, permanent set, and induced anisotropy. Strain controlled cyclic tests also exhibit a pronounced hysteresis as a strain rate independent phenomenon. Prediction of these inelastic features in elastomers is an important challenge with immense industrial and technological relevance. In the present paper, a micromechanical model is proposed to describe the inelastic features in the behavior of filled elastomers. To this end, the previously developed network decomposition concept [Dargazany and Itskov, Int. J. Solids Struct. 46, 2967 (2009)] is extended and an additional network (CP network) is added to the classical elastic rubber (CC) and polymer-filler (PP) networks. The new network is considered to account for the damage of filler aggregates in the cyclic deformation as the source of hysteresis energy loss. The accuracy of the resulting model is evaluated in comparison to a new set of experimental data.
填充橡胶的大应变行为具有强烈的穆林斯效应、永久变形和诱导各向异性等特征。应变控制循环试验也表现出明显的滞后现象,这是一种与应变率无关的现象。预测弹性体中的这些非弹性特征是一项具有重大工业和技术意义的重要挑战。在本文中,提出了一个细观力学模型来描述填充弹性体行为中的非弹性特征。为此,扩展了先前开发的网络分解概念[Dargazany和Itskov,《国际固体结构杂志》46,2967(2009)],并在经典弹性橡胶(CC)网络和聚合物-填料(PP)网络中添加了一个额外的网络(CP网络)。新网络被认为是为了解释循环变形中填料聚集体的损伤,这是滞后能量损失的来源。与一组新的实验数据相比,评估了所得模型的准确性。