Finite element analysis of micromechanical failure modes in a heterogeneous ceramic material system

被引:0
|
作者
J. Zhai
M. Zhou
机构
[1] Georgia Institute of Technology,The George W. Woodruff School of Mechanical Engineering
来源
关键词
Micromechanical modeling; cohesive force; fracture; heterogeneous materials; elasticity; fracture modes; failure modes; numerical simulation; crack propagation; ceramic composites.;
D O I
暂无
中图分类号
学科分类号
摘要
A micromechanical model that provides explicit accounts for arbitrary microstructures and arbitrary fracture patterns is developed and used. The approach uses both a constitutive law for the bulk solid constituents and a constitutive law for fracture surfaces. The model is based on a cohesive surface formulation of Xu and Needleman and represents a phenomenological characterization for atomic forces on potential crack/microcrack surfaces. This framework of analysis does not require the use of continuum fracture criteria which assume, for example, the existence of K-fields. Numerical analyses carried out concern failure in the forms of crack propagation and microcrack formation. Actual microstructures of brittle alumina/titanium diboride (Al2O3/TiB2) composites are used. The results demonstrate the effects of microstructure and material inhomogeneities on the selection of failure modes in this material system. For example, the strength of interfaces between the phases is found to significantly influence the failure characteristics. When weak interfacial strength exists, interfacial debonding and microcrack initiation and growth are the principal mode of failure. When strong interfacial strength is derived from material processing, advancement of a dominant crack and crack branching are observed.
引用
收藏
页码:161 / 180
页数:19
相关论文
共 50 条
  • [31] Micromechanical analysis of dentin/adhesive interface by the finite element method
    Misra, A
    Spencer, P
    Marangos, O
    Wang, Y
    Katz, JL
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2004, 70B (01) : 56 - 65
  • [32] FINITE-ELEMENT ANALYSIS OF A MICROMECHANICAL DEFORMABLE MIRROR DEVICE
    SHEERER, TJ
    NELSON, WE
    HORNBECK, LJ
    SEVENTEENTH NASTRAN USERS COLLOQUIUM, 1989, 3029 : 290 - 310
  • [33] INVESTIGATING DUCTILE FAILURE AT THE MICROSCALE IN ENGINEERING STEELS: A MICROMECHANICAL FINITE ELEMENT MODEL
    Li, Dong-Feng
    O'Dowd, Noel P.
    PROCEEDINGS OF THE ASME PRESSURE VESSELS AND PIPING CONFERENCE, PVP 2012, VOL 6, PTS A AND B, 2012, : 137 - 143
  • [34] A finite element analysis of ceramic bracket debonding
    Ghosh, J
    Grimsley, JL
    Sinha, PK
    Nanda, RS
    JOURNAL OF DENTAL RESEARCH, 1997, 76 : 2929 - 2929
  • [35] Finite element analysis of modes of vibration in apples
    Lu, RF
    Abbott, JA
    JOURNAL OF TEXTURE STUDIES, 1996, 27 (03) : 265 - 286
  • [36] Finite element method simulating failure of rock material
    Qiu, Feng
    Ding, Hua
    Yanshilixue Yu Gongcheng Xuebao/Chinese Journal of Rock Mechanics and Engineering, 2007, 26 (SUPPL. 1): : 2663 - 2668
  • [37] A finite element simulation system for ceramic drying processes
    Keum, YT
    Kim, JH
    Auh, KH
    JOURNAL OF CERAMIC PROCESSING RESEARCH, 2001, 2 (01): : 9 - 15
  • [39] Finite Element Analysis of the Parameters Influencing the Failure Modes of Carbon Fiber Reinforced Polymer Cores
    Cao, Jiayun
    Zhang, Xiaomin
    Chen, Hongbo
    Jiang, Yu
    IEEE ACCESS, 2021, 9 : 81139 - 81146
  • [40] Load resistance and failure modes of hollow-core slabs with openings: A finite element analysis
    Pachalla, Sameer K. S.
    Prakash, S. Suriya
    PCI JOURNAL, 2018, : 25 - 40