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首页> 外文期刊>Computer Methods in Applied Mechanics and Engineering >A non-isothermal thermodynamically consistent phase field model for damage, fracture and fatigue evolutions in elasto-plastic materials
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A non-isothermal thermodynamically consistent phase field model for damage, fracture and fatigue evolutions in elasto-plastic materials

机译:弹塑性材料中损伤,断裂和疲劳演进的非等温热力学致力化相模型

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摘要

This paper presents a general thermodynamically consistent non-isothermal phase field framework to model effects of damage, fracture and fatigue evolutions in elasto-plastic materials under the hypothesis of small strains. The proposed methodology is obtained from the principle of virtual power, energy balance and second law of thermodynamics in the form of a generalized Clausius-Duhem inequality for entropy. Aspects of the energy degradation functions are thoroughly investigated for an isotropic elasto-plastic material with viscous dissipation and constant specific heat. A new combined degradation function is proposed to degrade both elastic and plastic energy densities as an alternative to the classical degradation functions. Our conceptual framework leads to thermodynamically consistent models that may include contributions not usually considered in the literature, as temperature and inertia effects as well as time-rate dependent processes. The governing nonlinear transient equations obtained are solved adopting a semi-implicit time integration scheme combined with the classical Newton-Raphson iterative procedure. Results for an I-shaped specimen made of 7075-T7351 aluminum alloy under different conditions are presented. The proposed model is able to reproduce qualitative and quantitatively the ductile fracture and the fatigue phenomena. In particular for fatigue, both the S-N experimental data and the Paris crack growth curve over cycles are recovered. In addition, the cycle jump strategy reduces four times the CPU time for fatigue simulations. (C) 2020 Elsevier B.V. All rights reserved.
机译:本文呈现了一般热力学一致的非等温相位框架,以在小菌株的假设下模拟损伤,断裂和疲劳演化的损伤,断裂和疲劳演化的影响。所提出的方法是从虚拟电力,能量平衡和热力学的第二律法的原则获得,以熵的广义克劳斯 - duhem不平等的形式。彻底研究了能量降解函数的各个方面,用于具有粘性耗散和恒定的比热的各向同性弹塑性塑料材料。提出了一种新的组合降解功能,以降低弹性和塑料能量密度作为经典降解功能的替代方案。我们的概念框架导致热力学上一致的模型,可以包括通常在文献中通常考虑的贡献,作为温度和惯性效应以及时间率依赖过程。获得的管理非线性瞬态方程在采用半隐式时间集成方案与经典的牛顿 - 拉申迭代程序结合。提出了由7075-T7351铝合金制成的I形试样的结果。所提出的模型能够再现定性和定量的韧性骨折和疲劳现象。特别是对于疲劳,回收S-N实验数据和巴黎裂纹生长曲线过度。此外,循环跳转策略减少了四倍CPU时间的疲劳模拟。 (c)2020 Elsevier B.v.保留所有权利。

著录项

  • 来源
    《Computer Methods in Applied Mechanics and Engineering》 |2020年第1期|112962.1-112962.43|共43页
  • 作者单位

    Univ Estadual Campinas Inst Math Stat & Sci Comp Dept Appl Math BR-13083859 Campinas SP Brazil;

    Univ Estadual Campinas Sch Mech Engn Dept Integrated Syst BR-13083970 Campinas SP Brazil;

    Univ Estadual Campinas Sch Mech Engn Dept Integrated Syst BR-13083970 Campinas SP Brazil;

    Univ Estadual Campinas Inst Math Stat & Sci Comp Dept Appl Math BR-13083859 Campinas SP Brazil|Univ Estadual Campinas Sch Mech Engn Dept Integrated Syst BR-13083970 Campinas SP Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Damage; Fracture; Fatigue; Phase field; Plasticity;

    机译:损伤;骨折;疲劳;相位;可塑性;

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