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Constant moving crack in a magnetoelectroelastic material under anti-plane shear loading
Institution:1. Department of Civil & Environmental Engineering, 360 Huntington Avenue, Northeastern University, Boston, MA 02115, USA;2. Department of Chemistry and Chemical Biology, 360 Huntington Avenue, Northeastern University, Boston, MA 02115, USA;1. Department of Applied Mathematics, Ferdowsi University of Mashhad, Mashhad, Iran;2. Department of Mathematics and Statistics, Faculty of Science, Universiti Putra Malaysia, Serdang 43400, Selangor, Malaysia;3. Laboratory of Computational Sciences and Mathematical Physics, Institute for Mathematical Research, Universiti Putra Malaysia, Serdang, Selangor 43400, Malaysia;4. Department of Science, School of Mathematical Sciences, University of Zabol, Zabol, Iran
Abstract:Analytical solutions for an anti-plane Griffith moving crack inside an infinite magnetoelectroelastic medium under the conditions of permeable crack faces are formulated using integral transform method. The far-field anti-plane mechanical shear and in-plane electrical and magnetic loadings are applied to the magnetoelectroelastic material. Expressions for stresses, electric displacements and magnetic inductions in the vicinity of the crack tip are derived. Field intensity factors for magnetoelectroelastic material are obtained. The stresses, electric displacements and magnetic inductions at the crack tip show inverse square root singularities. The moving speed of the crack have influence on the dynamic electric displacement intensity factor (DEDIF) and the dynamic magnetic induction intensity factor (DMIIF), while the dynamic stress intensity factor (DSIF) does not depend on the velocity of the moving crack. When the crack is moving at very lower or very higher speeds, the crack will propagate along its original plane; while in the range of Mc1 < M < Mc2, the propagation of the crack possibly brings about the branch phenomena in magnetoelectroelastic media.
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