Ezzin Hamdi, Ben Amor Morched, Ben Ghozlen Mohamed Hédi
Laboratory of Physics of Materials, Faculty of Sciences of Sfax, BP 1171, 3000 University of Sfax, Tunisia.
Sfax Preparatory Engineering Institute, Menzel Chaker Road 0.5 km, BP 1172, 3000 Sfax, Tunisia.
Ultrasonics. 2017 Apr;76:63-69. doi: 10.1016/j.ultras.2016.12.016. Epub 2016 Dec 26.
A dynamic solution is presented for the propagation of harmonic waves in magneto-electro-elastic plates composed of piezoelectric BaTiO(B) and magnetostrictive CoFeO(F) material. The state-vector approach is employed to derive the propagator matrix which connects the field variables at the upper interface to those at the lower interface of each layer. The ordinary differential approach is employed to determine the wave propagating characteristics in the plate by imposing the traction-free boundary condition on the top and bottom surfaces of the layered plate. The dispersion curves of the piezoelectric-piezomagnetic plate are shown for different thickness ratios. The numerical results show clearly the influence of different stacking sequences as well as thickness ratio on dispersion curves and on magneto-electromechanical coupling factor. These findings could be relevant to the analysis and design of high-performance surface acoustic wave (SAW) devices constructed from piezoelectric and piezomagnetic materials.
提出了一种动态解决方案,用于研究由压电材料钛酸钡(B)和磁致伸缩材料钴铁氧体(F)组成的磁电弹性板中谐波的传播。采用状态向量法推导传播矩阵,该矩阵将每层上界面的场变量与下界面的场变量联系起来。通过在层状板的顶面和底面施加无牵引边界条件,采用常微分法确定板中的波传播特性。给出了不同厚度比的压电磁性板的色散曲线。数值结果清楚地表明了不同堆叠顺序以及厚度比对色散曲线和磁机电耦合系数的影响。这些发现可能与由压电和压磁材料构成的高性能表面声波(SAW)器件的分析和设计相关。