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Microscopic and macroscopic instabilities in finitely strained porous elastomers

机译:有限应变多孔弹性体的微观和宏观不稳定性

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The present work is an in-depth study of the connections between microstructural instabilities and their macroscopic manifestations—as captured through the effective properties—in finitely strained porous elastomers. The powerful second-order homogenization (SOH) technique initially developed for random media, is used for the first time here to study the onset of failure in periodic porous elastomers and the results are compared to more accurate finite element method (FEM) calculations. The influence of different microgeometries (random and periodic), initial porosity, matrix constitutive law and macroscopic load orientation on the microscopic buckling (for periodic microgeometries) and macroscopic loss of ellipticity (for all microgeometries) is investigated in detail. In addition to the above-described stability-based onset-of-failure mechanisms, constraints on the principal solution are also addressed, thus giving a complete picture of the different possible failure mechanisms present in finitely strained porous elastomers.
机译:本工作是对有限应变多孔弹性体中微观结构不稳定性及其宏观表现之间的联系的深入研究,这些微观表现是通过有效特性捕获的。最初为随机介质开发的功能强大的二阶均质化(SOH)技术在这里首次用于研究周期性多孔弹性体的破坏开始,并将结果与​​更精确的有限元方法(FEM)计算进行比较。详细研究了不同的微观几何形状(随机和周期性),初始孔隙率,基体本构律和宏观载荷方向对微观屈曲(对于周期性微观几何形状)和椭圆率宏观损失(对于所有微观几何形状)的影响。除了上述基于稳定性的破坏起因机制外,还解决了对主要解决方案的限制,因此可全面了解有限应变多孔弹性体中存在的不同可能的破坏机制。

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