An interface crack with contact zones in a piezoelectric/piezomagnetic bimaterial

被引:0
|
作者
K. P. Herrmann
V. V. Loboda
T. V. Khodanen
机构
[1] Paderborn University,Department of Mechanical Engineering, LTM
[2] National University,Department of Theoretical and Applied Mechanics
来源
Archive of Applied Mechanics | 2010年 / 80卷
关键词
Interface crack; Piezoelectric/piezomagnetic bimaterial; Contact zone; Electro-magnetic crack face conditions;
D O I
暂无
中图分类号
学科分类号
摘要
An interface crack with a frictionless contact zone at the right crack tip between two semi-infinite piezoelectric/piezomagnetic spaces under the action of a remote mechanical loading, magnetic and electric fluxes as well as concentrated forces at the crack faces is considered. Assuming that all fields are independent on the coordinate x2 co-directed with the crack front, the stresses, the electrical and the magnetic fluxes as well as the derivatives of the jumps of the displacements, the electrical and magnetic potentials are presented via a set of analytic functions in the (x1, x3)-plane with a cut along the crack region. Two cases of magneto-electric conditions at the crack faces are considered. The first case assumes that the crack is electrically and magnetically permeable, and in the second case the crack is assumed electrically permeable while the open part of the crack is magnetically impermeable. For both these cases due to the above-mentioned representation the combined Dirichlet–Riemann boundary value problems have been formulated and solved exactly. Stress, electric and magnetic induction intensity factors are found in a simple analytical form. Transcendental equations and a closed form analytical formula for the determination of the real contact zone length have been derived for both cases of magnetic conditions in the crack region. For a numerical illustration of the obtained results a bimaterial BaTiO3–CoFe2O4 with different volume fractions of BaTiO3 has been used, and the influence of the mechanical loading and the intensity of the magnetic flux upon the contact zone length and the associated intensity factors as well as the energy release rate has been shown.
引用
收藏
页码:651 / 670
页数:19
相关论文
共 50 条
  • [21] Periodic system of interface cracks with contact zones in the isotropic bimaterial in the fields of tension and shear
    S. V. Kozinov
    V. V. Loboda
    I. V. Kharun
    Materials Science, 2006, 42 : 533 - 542
  • [22] Periodic system of interface cracks with contact zones in the isotropic bimaterial in the fields of tension and shear
    Kozinov, S. V.
    Loboda, V. V.
    Kharun, I. V.
    MATERIALS SCIENCE, 2006, 42 (04) : 533 - 542
  • [23] Contact zone assessment for a fast growing interface crack in an anisotropic bimaterial
    K. P. Herrmann
    V. V. Loboda
    A. V. Komarov
    Archive of Applied Mechanics, 2004, 74 : 118 - 129
  • [24] Contact zone assessment for a fast growing interface crack in an anisotropic bimaterial
    K. P. Herrmann
    V. V. Loboda
    A. V. Komarov
    Archive of Applied Mechanics, 2004, 74 : 118 - 129
  • [25] Elastodynamics of a crack on the bimaterial interface
    Menshykov, Oleksandr V.
    Menshykov, Vasyl A.
    Guz, Igor A.
    ENGINEERING ANALYSIS WITH BOUNDARY ELEMENTS, 2009, 33 (03) : 294 - 301
  • [26] Contact zone assessment for a fast growing interface crack in an anisotropic bimaterial
    Herrmann, KP
    Loboda, VV
    Komarov, AV
    ARCHIVE OF APPLIED MECHANICS, 2004, 74 (1-2) : 118 - 129
  • [27] PREFRACTURE ZONE MODELING FOR AN ELECTRICALLY IMPERMEABLE INTERFACE CRACK IN A PIEZOELECTRIC BIMATERIAL COMPOUND
    Govorukha, Vladimir B.
    Kamlah, Marc
    JOURNAL OF MECHANICS OF MATERIALS AND STRUCTURES, 2008, 3 (08) : 1447 - 1463
  • [28] Analysis of a mode III interface crack in a piezoelectric bimaterial based on the dielectric breakdown model
    Govorukha, V.
    Kamlah, M.
    ARCHIVE OF APPLIED MECHANICS, 2020, 90 (05) : 1201 - 1213
  • [29] Analysis of a mode III interface crack in a piezoelectric bimaterial based on the dielectric breakdown model
    V. Govorukha
    M. Kamlah
    Archive of Applied Mechanics, 2020, 90 : 1201 - 1213
  • [30] Kinking of an interface crack in an orthotropic bimaterial
    Cui, C. B.
    Beom, H. G.
    Jang, H. S.
    Fang, Q. -Z.
    Li, H. M.
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2013, 36 (10) : 968 - 980