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首页> 外文期刊>International Journal of Solids and Structures >A general framework for continuum damage models. I. Infinitesimal plastic damage models in stress space
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A general framework for continuum damage models. I. Infinitesimal plastic damage models in stress space

机译:连续损伤模型的通用框架。一,应力空间中的无限塑性损伤模型

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We identify in this paper a general framework for the development of continuum damage models in their fully coupled plastic damage form. The focus of this paper is directed to the general formulation of infinitesimal models defined by yield and damage surfaces in stress space. The main feature of the proposed formulation is the direct and independent consideration of the damage mechanisms (isotropic damage, cracking, etc.) degrading the stiffness of the material, thus allowing for a complete physical characterization of these effects. This modular structure is accomplished by a kinematic decomposition of the strains in an elastic, plastic and multiple damage parts, as belonging to each activated damage mechanism. An additive decomposition in the infinitesimal range of interest is considered. Based on this decomposition, the constitutive characterization alluded to above for each damage mechanism is carried out in a complete thermodynamically consistent framework. One of the virtues of the considered framework is the fact that it includes many of the diverse damage models existing in the literature as particular cases. In this way, the developments presented herein furnish a unified framework for the formulation of continuum damage models, including isotropic damage, compliance based formulations, effective stress anisotropic models, smeared crack models and the related formulations of cracking and damage based on strong discontinuities. Besides the clear physical significance added to these existing formulations, the proposed framework also defines a very convenient context for the efficient numerical integration of the resulting models. This aspect is explored in Part II of this work, as it is the application of the framework proposed herein to the numerical simulation of porous metals. (C) 2000 Elsevier Science Ltd. All rights reserved. [References: 37]
机译:我们在本文中确定了开发完全耦合塑性损伤形式的连续损伤模型的通用框架。本文的重点是针对由应力空间中的屈服面和损伤面定义的无穷小模型的一般表述。所提出配方的主要特征是直接和独立考虑破坏机理(各向同性的破坏,破裂等),从而降低了材料的刚度,因此可以对这些效应进行完整的物理表征。这种模块化结构是通过将弹性,塑性和多个损伤部位中的应变进行运动分解而实现的,这些部位属于每个激活的损伤机制。考虑在关注的无限小范围内的加性分解。基于这种分解,上面提到的每种损伤机理的本构特征是在完整的热力学一致的框架内进行的。所考虑的框架的优点之一是,它包括许多文献中作为特定案例而存在的多种损害模型。以这种方式,本文提出的发展为连续损伤模型的制定提供了统一的框架,包括各向同性损伤,基于顺应性的制定,有效应力各向异性模型,涂片裂缝模型以及基于强不连续性的裂缝和损伤的相关制定。除了为这些现有公式添加明显的物理意义外,所提出的框架还定义了一个非常方便的上下文,可以对所得模型进行有效的数值积分。在本工作的第二部分中将探讨这一方面,因为这是本文提出的框架在多孔金属数值模拟中的应用。 (C)2000 Elsevier ScienceLtd。保留所有权利。 [参考:37]

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