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논문 기본 정보

자료유형
학술저널
저자정보
Fethi Mouaici (University of Sidi Bel Abbes) Abed Bouadi (Université de Sidi Bel Abbés) Mohamed Bendaida (Université de Sidi Bel Abbés) Kada Draiche (University of Sidi Bel Abbes) Abdelmoumen Anis Bousahla (University of Sidi Bel Abbes) Fouad Bourada (University Centre of Ain Temouchent) Abdelouahed Tounsi (Universite de Sidi Bel Abbes) Mofareh Hassan Ghazwani (Jazan University) Ali Alnujaie (Jazan University)
저널정보
국제구조공학회 Steel and Composite Structures, An International Journal Steel and Composite Structures, An International Journal Vol.44 No.5
발행연도
2022.9
수록면
721 - 740 (20page)

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In this paper, an accurate kinematic model has been developed to study the mechanical response of functionally graded (FG) sandwich beams, mainly covering the bending, buckling and free vibration problems. The studied structure with homogeneous hardcore and softcore is considered to be simply supported in the edges. The present model uses a new refined shear deformation beam theory (RSDBT) in which the displacement field is improved over the other existing high-order shear deformation beam theories (HSDBTs). The present model provides good accuracy and considers a nonlinear transverse shear deformation shape function, since it is constructed with only two unknown variables as the Euler-Bernoulli beam theory but complies with the shear stress-free boundary conditions on the upper and lower surfaces of the beam without employing shear correction factors. The sandwich beams are composed of two FG skins and a homogeneous core wherein the material properties of the skins are assumed to vary gradually and continuously in the thickness direction according to the power-law distribution of volume fraction of the constituents. The governing equations are drawn by implementing Hamilton’s principle and solved by means of the Navier’s technique. Numerical computations in the non-dimensional terms of transverse displacement, stresses, critical buckling load and natural frequencies obtained by using the proposed model are compared with those predicted by other beam theories to confirm the performance of the proposed theory and to verify the accuracy of the kinematic model.

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