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Application of the Concept of Evolving Structure Tensors to the Modeling of Initial and Induced Anisotropy in Engineering Structures at Large Deformations

机译:在大变形中的工程结构中初始诱导各向异性建模的应用概念

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In this work, a thermodynamic approach to the modeling and simulation of induced elastic and inelastic material behaviour in the phenomenological realm as based on the concept of evolving structure tensors is discussed. From the constitutive point of view, these quantities determine the material symmetry properties. In addition, the stress and other dependent constitutive fields are isotropic functions of these by definition. The evolution of these during loading then results in an evolution of the anisotropy of the material. From an algorithmic point of view, the current approach leads to constitutive models which are quite amenable to numerical implementation. To demonstrate the applicability of the resulting constitutive formulation, we apply it to the cases of (i), metal plasticity with combined hardening involving both deformation-and permanently-induced anisotropy relevant to the modeling of processes such as metal forming, and to (ii), deformation-induced anisotropy in an initially orthotropic pneumatic membrane consisting of a rubber matrix and nylon fibres.
机译:在这项工作中,作为基于演进结构张量的概念来在现象领域建模和诱导弹性和非弹性材料行为的仿真一个热力学方法进行了讨论。从视点组成的,这些量确定材料对称特性。另外,压力和其他相关本构字段是通过定义的这些各向同性功能。这些装载期间的演变然后导致材料的各向异性的演进。从来看,目前的做法导致的本构模型,其非常适合于数值实现的算法点。为了证明所得到的组成型制剂的适用性,我们将其应用到(i)中,金属可塑性的情况下,与组合硬化同时涉及变形和永久引起的各向异性相关的诸如金属成形过程建模,以及(ⅱ ),变形引起的在由橡胶基体和尼龙纤维的初始正交各向异性气动薄膜各向异性。

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