چكيده به لاتين
Abstract:
The present formulation applies Third-order Shear Deformation Theory by Zannon (TSDTZ) extended of Third-order Shear Deformation Theory (TSDT) to acoustic analysis across the laminated composite thick cylindrical shell. As it is obvious, there are many theories to determine the Sound Transmission Loss (STL) of the thick cylindrical shell including 3D elasticity theory as well as TSDT. It should be noted that although 3D elasticity theory presents the accurate results in comparison with other theories but it includes the long and complicated process for analyzing the current problem. Therefore, in this situation, particularly for thick cylindrical shell, TSDTZ are brought forward to improve the behavior of STL particularly at high frequencies where the effects of shear and rotation are appeared stronger. As another consequence, although TSDT ignore the strains in the thickness direction but the employed theories by considering this terms is able to demonstrate more accurate result when the shell is going to thicker. To fulfill this end, firstly the stress-strain relation based on TSDTZ are investigated by expressing the displacements filed up to three order of thickness coordinate Like Third-order Shear Deformation Theory (TSDT) considering some extra assumptions. Secondly, to designate the equations of motion of the laminated composite shell, Hamilton’s principle is employed. Besides, in order to predict the STL through the shell considering the present formulation (TSDTZ), the shell is excited by an oblique plane sound wave. In other words, vibroacoustic analysis is performed based on combining the shell equations of motions as well as the acoustics equations.
Keywords: Sound transmission loss (STL), Third-order Shear Deformation Theory by Zannon, laminated composite thick cylindrical shell, Hamilton’s principle