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Analytical solution of stability and vibration problem of clamped cylindrical shells containing functionally graded layers within shear deformation theory

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dc.creator Fantuzzi, N.
dc.creator Sofiyev, A.H.
dc.date 2023-02-01T00:00:00Z
dc.identifier b1f14033-2b24-41db-bf8b-f2fa6a2926aa
dc.identifier 10.1016/j.aej.2022.08.024
dc.identifier https://avesis.sdu.edu.tr/publication/details/b1f14033-2b24-41db-bf8b-f2fa6a2926aa/oai
dc.description © 2022 THE AUTHORSThe aim of the study is to present a new approach to the analytical solution of the vibration and stability problem of clamped sandwich cylindrical shells (SCSs) covered by functionally graded (FG) coatings under an axial compressive load in the framework of shear deformation theory (ST). After modeling the micro and macro mechanical properties of FG coated SCSs with various configurations, the constitutive relations and basic equations are derived depending on the stress, deflection and two angles of rotation functions using modified Donnell type theory. An attempt is made to analytically solve the fundamental differential equations for SCSs covered by FG coatings using novel approximation functions satisfying the clamped boundary conditions. Three different shear stress functions (SSFs) such as parabolic shear stress function (Par-SSF), cosine-hyperbolic shear stress function (Cos-Hyp-SSF) and uniform shear stress function (U-SSF) are used in the analysis. After confirming the accuracy of the obtained results, the influences of coating profiles, volume fractions and layer arrangement variations on the critical parameters for three different transverse shear stress functions are investigated in detail.
dc.language eng
dc.rights info:eu-repo/semantics/closedAccess
dc.title Analytical solution of stability and vibration problem of clamped cylindrical shells containing functionally graded layers within shear deformation theory
dc.type info:eu-repo/semantics/article


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