On the yield criterion of porous materials by the homogenization approach and Steigmann–Ogden surface model

被引:0
作者
Chenyi Zheng
Hongzhen Wang
Yali Jiang
Gaohui Li
机构
[1] Huadong Engineering Corporation Limited,
来源
Scientific Reports | / 13卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
In this work, we investigate the yield criterion of nanoporous materials by using homogenization approach and Steigmann–Ogden surface model. The representative volume element is proposed as an infinite matrix containing a tiny nanovoid. The matrix is incompressible, rigid-perfectly plastic, von Mises materials and nanovoids are dilute and equal in size. First, the constitutive of microscopic stress and microscopic strain rate is established based on the flow criterion. Secondly, according to the Hill’s lemma, the relationship between the macroscopic equivalent modulus and the microscopic equivalent modulus is established by homogenization approach. Thirdly, the macroscopic equivalent modulus containing the Steigmann–Ogden surface model including surface parameters, porosity and nanovoid radius is derived from the trial microscopic velocity field. Finally, an implicit macroscopic yield criterion for nanoporous materials is developed. For surface modulus, nanovoids radius and porosity studies are developed through extensive numerical experiments. The research results in this paper have reference significance for the design and manufacture of nanoporous materials.
引用
收藏
相关论文
共 83 条
  • [1] Gurson AL(1977)Continuum theory of ductile rupture by void nucleation and growth: Part I—yield criteria and flow rules for porous ductile media J. Eng. Mater. Technol. 99 2-15
  • [2] Duan H(2005)Size-dependent effective elastic constants of solids containing nano-inhomogeneities with interface stress J. Mech. Phys. Solids 53 1574-1596
  • [3] Wang J(2007)A unified scheme for prediction of effective moduli of multiphase composites with interface effects part i: Theoretical framework Mech Mater. 39 81-93
  • [4] Huang Z(2020)Analytical solutions of a spherical nanoinhomogeneity under far-field unidirectional loading based on Steigmann-Ogden surface model Math. Mech. Solids 25 1904-1923
  • [5] Karihaloo B(2021)On spherical nanoinhomogeneity embedded in a half-space analyzed with Steigmann-Ogden surface and interface models Int. J. Solids Struct. 216 123-135
  • [6] Duan H(2013)Stress concentration around a nanovoid near the surface of an elastic half-space Int. J. Solids Struct. 50 2737-2748
  • [7] Yi X(2018)Circular inhomogeneity with Steigmann-Ogden interface: Local fields, neutrality, and Maxwell’s type approximation formula Int. J. Solids Struct. 135 85-98
  • [8] Huang Z(2013)Non linear homogenization approach of strength of nanoporous materials with interface effects Int. J. Eng. Sci. 71 102-110
  • [9] Wang J(2014)Macroscopic yield criteria for ductile materials containing spheroidal voids: An Eshelby-like velocity fields approach Mech. Mater. 72 1-18
  • [10] Ban Y(1981)Influence of voids on shear band instabilities under plane strain conditions Int. J. Fract. 17 389-407