چكيده به لاتين
Abstract:
The present thesis study on sound transmission loss (TL) through a double-walled laminated composite cylindrical shell lined with compressed porous material. For this purpose, in the first step the sound transmission loss across double-walled laminated composite cylindrical shell with air-gap in annular space between two walls has been investigated. Then, TL is predicted applying the porous material between two walls. In literature, simplified theories such as CST, FSDT and TSDT, has been used to calculate the TL through single and double-walled cylindrical shells. However in this thesis the three-dimensional elasticity theory is used which is more accurate rather than simplified ones. For this purpose, the equations of motion are derived for each monoclinic anisotropic layer of both walls of double-walled laminated composite cylindrical shell. Then, these equations are reformulated using the state space method. Hence, the state space governing formulation of each layer of both walls has been solved using the approximate laminate model along with the local transfer matrix approach. Finally, using the global transfer matrix method and considering the appropriate boundary conditions the TL of the double-walled laminated composite cylindrical shell is calculated. The results have been verified using the single-walled laminated composite cylindrical shell, by approaching the air-gap in annular space between two walls to zero. Here with the state space method is applied to investigate the TL of double-walled laminated composite cylindrical shell lined with porous material. In addition, the extended full method (EFM) is used to model the porous layer. It should be also noted that both the double-wall as well as porous layer have been modeled using three-dimensional method. Also, this study has been performed for unbonded-unbonded (U-U), bonded-bonded (B-B) and bonded-unbonded (B-U) configurations. Furthermore, the effect of compressing of porous material between two walls has been investigated. The results show the accuracy of the model presented in this thesis. Also the results show the effect of structural and porous parameters on sound transmission loss.
Keywords: Sound transmission loss (TL), State space method, Three-dimensional elasticity theory, Porous materials