受限压痕薄膜的外在和内在力学响应

O. Brazil, Johann P. de Silva, J. Pethica, G. Cross
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摘要

有限的几何形状提供了有用的和实验上可适应的机械测试安排,研究分子和微观结构过程,这些过程在由静水压力大于剪切主导的应力环境中控制塑性屈服。然而,从无约束模式(如单轴压缩)切换到受限模式(如单轴压缩)导致的宏观应力应变行为的变化经常被忽视,并且显示出惊人的复杂性,即使对于简单的弹塑性本构模型也是如此。本文报道了聚苯乙烯薄膜的约束诱导应变硬化效应,该效应是通过直径为初始薄膜厚度的许多倍的圆柱形扁冲床反复加载塑料而实现的。这种高纵横比与接触周围的薄膜材料提供的约束相结合,在缩进区域产生受限单轴应变状态,使变形一维。通过重复加载到塑性域中,我们实现了66%的受限屈服应力提高,从0.3 GPa到0.5 GPa。通过有限元模拟和主应力和应变的分析建模,我们表明这种影响不是由材料结构的内在变化引起的,而是在塑性加载过程中传递的残余应力。我们将这种效应与玻璃薄膜的内在变化(如物理老化和热交联)进行了对比。
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Extrinsic and Intrinsic Mechanical Responses of Confined Indented Thin Films
Confined geometries offer useful and experimentally amenable mechanical testing arrangements in which to study the molecular and micro-structural processes which govern plastic yield in stress environments dominated by hydrostatic pressure over shear. However, the changes to macroscopic stress strain behaviour that result from switching from an unconfined mode such as uniaxial compression to a confined one are often overlooked and display a surprising level of complexity, even for simple elastic plastic constitutive models. Here we report a confinement induced strain hardening effect in polystyrene thin films achieved through repeated plastic loading with a cylindrical flat punch whose diameter is many times the initial film thickness. This high aspect ratio combines with constraint provided by film material surrounding the contact to generate a state of confined uniaxial strain in the indented region, rendering the deformation one dimensional. By repeated loading into the plastic domain, we achieve a 66% increase in the confined yield stress, from 0.3 GPa to 0.5 GPa. Through finite element simulation and analytic modelling of the principal stresses and strains, we show that this effect arises not from intrinsic changes to the structure of the material, but rather residual stresses imparted during plastic loading. We contrast this effect with intrinsic changes to glassy thin films such as physical ageing and thermal cross-linking.
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