Free vibration and random dynamic analyses for the composite cabin-like combined structure in aero-thermal environment
暂无分享,去创建一个
C. Shuai | Qingshan Wang | B. Qin | Rui Zhong | Xianjie Shi | Longting Chen
[1] Emad Sobhani. Vibrational characteristics of fastening of a spherical shell with a coupled conical-conical shells strengthened with nanocomposite sandwiches contained agglomerated CNT face layers and GNP core under spring boundary conditions , 2023, Engineering Analysis with Boundary Elements.
[2] C. Shuai,et al. Legendre-meshfree vibration analysis of cross-ply laminated elliptical shell of revolution considering the effect of drop-off ply , 2023, Thin-Walled Structures.
[3] B. Qin,et al. A dynamic stiffness formulation for the vibration analysis of rotating cross-ply laminated coupled conical–cylindrical–conical shells , 2023, Thin-Walled Structures.
[4] C. Shuai,et al. Meshless analysis for modal properties and stochastic responses of heated laminated rectangular/sectorial plates in supersonic airflow , 2022, European Journal of Mechanics - A/Solids.
[5] Qingshan Wang,et al. Random vibration study of functionally graded porous curved beams with elastically restrained ends , 2022, Engineering Structures.
[6] Haichao Li,et al. Free and forced vibration analysis of uniform and stepped combined conical-cylindrical-spherical shells: A unified formulation , 2022, Ocean Engineering.
[7] C. Shuai,et al. Meshless stochastic vibration for laminated quadrilateral plates considering thermal factor , 2022, International Journal of Mechanical Sciences.
[8] Qingshan Wang,et al. Thermal vibration analysis of functionally graded conical-cylindrical coupled shell based on spectro-geometric method , 2022, Thin-Walled Structures.
[9] Peng Zuo,et al. Vibration analysis of combined functionally graded cylindrical-conical shells coupled with annular plates in thermal environment , 2022, Composite Structures.
[10] Y. Kim,et al. A meshfree approach for free vibration analysis of laminated sectorial and rectangular plates with varying fiber angle , 2022, Thin-Walled Structures.
[11] Songhun Kwak,et al. Free vibration analysis of combined composite laminated conical–cylindrical shells with varying thickness using the Haar wavelet method , 2022, Acta Mechanica.
[12] H. Li,et al. Natural vibration of an elastically supported porous truncated joined conical-conical shells using artificial spring technology and generalized differential quadrature method , 2022, Aerospace Science and Technology.
[13] Paeksan Jang,et al. A meshfree local weak-form method for free vibration analysis of an open laminated cylindrical shell with elliptical section , 2021 .
[14] Songhun Kwak,et al. Three-dimensional free vibration analysis of thick laminated combination shell using a meshfree approach , 2021, AIP Advances.
[15] Dixiong Yang,et al. Exact benchmark solutions of random vibration responses for thin-walled orthotropic cylindrical shells , 2021 .
[16] G. Jin,et al. Dynamic stiffness formulation and vibration analysis of coupled conical-ribbed cylindrical-conical shell structure with general boundary condition , 2021 .
[17] Songhun Kwak,et al. Application of Haar wavelet discretization method for free vibration analysis of inversely coupled composite laminated shells , 2021 .
[18] Xing Wu,et al. Analysis of vibration characteristics of FGM sandwich joined conical–conical shells surrounded by elastic foundations , 2021, Thin-Walled Structures.
[19] Songhun Kwak,et al. A solution method for free vibration analysis of coupled laminated composite elliptical-cylindrical-elliptical shell with elastic boundary conditions , 2021, Journal of Ocean Engineering and Science.
[20] Ya-qi Tian,et al. Analytical study on longitudinal vibration characteristics of the coupled shaft and conical-cylindrical shell , 2021 .
[21] Dixiong Yang,et al. Analytical stochastic responses of thin cylindrical shells under various stationary excitations , 2021 .
[22] H. Dai,et al. Analysis of vibration characteristics of joined cylindrical-spherical shells , 2020, Engineering Structures.
[23] Songhun Kwak,et al. Natural frequency calculation of open laminated conical and cylindrical shells by a meshless method , 2020 .
[24] H. Hua,et al. Stationary/nonstationary stochastic response analysis of composite laminated plates with aerodynamic and thermal loads , 2020 .
[25] Kwanghun Kim,et al. Dynamic analysis of composite laminated doubly-curved revolution shell based on higher order shear deformation theory , 2019, Composite Structures.
[26] Kwangnam Choe,et al. A unified Jacobi-Ritz formulation for vibration analysis of the stepped coupled structures of doubly-curved shell , 2019, Composite Structures.
[27] D. Younesian,et al. Dynamic Analysis of a Plate on the Generalized Foundation with Fractional Damping Subjected to Random Excitation , 2018, Mathematical Problems in Engineering.
[28] Kwangnam Choe,et al. Vibration analysis of the coupled doubly-curved revolution shell structures by using Jacobi-Ritz method , 2018 .
[29] Dixiong Yang,et al. Exact Solutions of Fully Nonstationary Random Vibration for Rectangular Kirchhoff Plates Using Discrete Analytical Method , 2017 .
[30] Yahui Zhang,et al. Random vibration analysis of axially compressed cylindrical shells under turbulent boundary layer in a symplectic system , 2017 .
[31] Jilei Zhou,et al. Benchmark solutions of stationary random vibration for rectangular thin plate based on discrete analytical method , 2017 .
[32] Dongyan Shi,et al. Free vibrations of composite laminated doubly-curved shells and panels of revolution with general elastic restraints , 2017 .
[33] G. Jin,et al. Vibration analysis of coupled conical-cylindrical-spherical shells using a Fourier spectral element method. , 2016, The Journal of the Acoustical Society of America.
[34] Xianzhong Wang,et al. Dynamic Modeling and Vibration Characteristics Analysis of Submerged Stiffened Combined Shells , 2016 .
[35] Nicholas Fantuzzi,et al. The GDQ method for the free vibration analysis of arbitrarily shaped laminated composite shells using a NURBS-based isogeometric approach , 2016 .
[36] Guoyong Jin,et al. Vibrations of composite laminated doubly-curved shells of revolution with elastic restraints including shear deformation, rotary inertia and initial curvature , 2015 .
[37] Hui Zheng,et al. Integrated orthogonal polynomials based spectral collocation method for vibration analysis of coupled laminated shell structures , 2015 .
[38] Guang Meng,et al. Dynamic analysis of composite laminated and sandwich hollow bodies of revolution based on three-dimensional elasticity theory , 2014 .
[39] Zhu Su,et al. A unified Chebyshev–Ritz formulation for vibration analysis of composite laminated deep open shells with arbitrary boundary conditions , 2014 .
[40] Guang Meng,et al. A unified formulation for vibration analysis of composite laminated shells of revolution including shear deformation and rotary inertia , 2013 .
[41] Louis A. Romero,et al. A Spectral-Tchebychev Solution for Three-Dimensional Vibrations of Parallelepipeds Under Mixed Boundary Conditions , 2012 .
[42] Mauro Caresta,et al. Free vibrational characteristics of isotropic coupled cylindrical–conical shells , 2010 .
[43] Xinqun Zhu,et al. Response analysis of piezoelectric shells in plane strain under random excitations , 2009 .
[44] Tao Chen,et al. Optimal control of random vibration in plate and shell structures with distributed piezoelectric components , 2007 .
[45] Yiu-Yin Lee,et al. Non‐linear random response of laminated composite shallow shells using finite element modal method , 2006 .
[46] H.-C. Chang,et al. A finite element analysis on random vibration of nonlinear shell structures , 2006 .
[47] W. L. Li. Vibration analysis of rectangular plates with general elastic boundary supports , 2004 .
[48] Liviu Librescu,et al. Response of laminated plates to non-stationary random excitation , 1989 .