Jacopo Ciambella, Giovanni Lancioni, Nico Stortini
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引用次数: 1
摘要
在过去的50年里,奥格登模型由于能够准确匹配大应变弹性体的实验数据,以及它的数学性质,如多凸性,在材料建模中得到了广泛的应用。在本文中,利用这些特征制定了一个有限应变模型,该模型通过Wu (Wu 2017 J. Mech.)最近提出的相场方法,将理论物理。固体103,72-99)对于小应变,一种内聚损伤机制,导致材料刚度的逐步退化和在张力下的破坏。通过适当调整本构参数,该模型能够涵盖从脆性到伪延性破坏模式的广泛影响。建立了一个平面应力问题来验证该模型与双网弹性体的实验,双网弹性体在大应变下表现出伪延性损伤行为,以及传统橡胶化合物的脆性破坏。结果表明,该模型适用于多种材料的断裂聚结和扩展。本文是专题“橡胶力学的奥格登模型:五十年来对非线性弹性的影响”的一部分。
An Ogden-like formulation incorporating phase-field fracture in elastomers: from brittle to pseudo-ductile failures.
Over the past 50 years the Ogden model has been widely used in material modelling owing to its ability to match accurately the experimental data on elastomers at large strain, as well as its mathematical properties, such as polyconvexity. In this paper, these characteristics are exploited to formulate a finite-strain model that incorporates, through the phase-field approach recently proposed by Wu (Wu 2017 J. Mech. Phys. Solids103, 72-99) for small strains, a cohesive damage mechanism which leads to the progressive degradation of the material stiffness and to failure under tension. By properly tailoring the constitutive parameters, the model is capable of encompassing a wide range of effects, from brittle to pseudo-ductile failure modes. A plane stress problem is formulated to test the model against experiments on double-network elastomers, which display a pseudo-ductile damage behaviour at large strain, and on conventional rubber compounds with brittle failure. The results show that the proposed model is applicable to fracture coalescence and propagation in a wide range of materials. This article is part of the theme issue 'The Ogden model of rubber mechanics: Fifty years of impact on nonlinear elasticity'.