Three-stage optimization framework of functionally graded stiffened cylindrical shells under thermal environment
暂无分享,去创建一个
[1] Chien H. Thai,et al. A nonlocal strain gradient isogeometric model for free vibration analysis of magneto-electro-elastic functionally graded nanoplates , 2023, Composite Structures.
[2] V. H. Nam,et al. Nonlinear buckling of stiffened FG-GRCL cylindrical panels under axial compression with the uniformly distributed temperature variation , 2023, The European Physical Journal Plus.
[3] H. Tung,et al. Torsional instability of functionally graded porous toroidal shell segments including elastic edge constraints and elevated temperature , 2023, Mechanics Based Design of Structures and Machines.
[4] Jihong Zhu,et al. Concurrent Multi-material and Multi-scale Design Optimization of Fiber-reinforced Composite Material and Structures for Minimum Structural Compliance , 2023, Composite structures.
[5] Ji-Hwan Kim,et al. Temperature-dependent shear correction factor with heat transfer based on micromechanical properties for FGM plates , 2022, Thin-Walled Structures.
[6] Ikjin Lee,et al. A reanalysis-based multi-fidelity (RBMF) surrogate framework for efficient structural optimization , 2022, Computers & Structures.
[7] L. Gardner,et al. Shape optimisation of stainless steel corrugated cylindrical shells for additive manufacturing , 2022, Engineering Structures.
[8] W. Zhao,et al. Nonlinear axisymmetric buckling analysis of the FGM sandwich shallow spherical shells under thermomechanical loads , 2022, European Journal of Mechanics - A/Solids.
[9] S. Limkatanyu,et al. Reddy’s third-order shear deformation shell theory for free vibration analysis of rotating stiffened advanced nanocomposite toroidal shell segments in thermal environments , 2022, Acta Mechanica.
[10] Chien H. Thai,et al. Nonlocal strain gradient analysis of FG GPLRC nanoscale plates based on isogeometric approach , 2022, Engineering with Computers.
[11] Gokhan Serhat,et al. Maximizing buckling load of elliptical composite cylinders using lamination parameters , 2022, Engineering Structures.
[12] Zeng Meng,et al. Lightweight design of arcuately stiffened cylindrical shells based on smeared stiffener method and active learning strategy , 2022, Thin-Walled Structures.
[13] Chien H. Thai,et al. A refined isogeometric plate analysis of porous metal foam microplates using modified strain gradient theory , 2022, Composite Structures.
[14] P. Hao,et al. Post-buckling optimization of bending-induced variable stiffness composite cylinders considering worst geometric imperfections , 2021, Thin-Walled Structures.
[15] Chien H. Thai,et al. A nonlocal strain gradient analysis of laminated composites and sandwich nanoplates using meshfree approach , 2021, Engineering with Computers.
[16] Chien H. Thai,et al. A size dependent meshfree model for functionally graded plates based on the nonlocal strain gradient theory , 2021 .
[17] Chien H. Thai,et al. A modified strain gradient meshfree approach for functionally graded microplates , 2021, Engineering with Computers.
[18] Evandro Parente,et al. Kriging-based optimization of functionally graded structures , 2021, Structural and Multidisciplinary Optimization.
[19] A. Ghasemi,et al. Multi-Step Buckling Optimization Analysis of Stiffened and Unstiffened Polymer Matrix Composite Shells: A New Experimentally Validated Method , 2021 .
[20] Minh Duc Vu,et al. Nonlinear buckling analysis of stiffened FG-GRC laminated cylindrical shells subjected to axial compressive load in thermal environment , 2021, Mechanics Based Design of Structures and Machines.
[21] Minh Duc Vu,et al. Nonlinear torsional buckling of functionally graded graphene‐reinforced composite ( FG‐GRC) laminated cylindrical shells stiffened by FG‐GRC laminated stiffeners in thermal environment , 2021 .
[22] T. Dai,et al. Postbuckling of multilayer cylindrical and spherical shell panels reinforced with graphene platelet by isogeometric analysis , 2021, Engineering with Computers.
[23] Tayyab Zafar,et al. An efficient Kriging based method for time-dependent reliability based robust design optimization via evolutionary algorithm , 2020 .
[24] Jaehong Lee,et al. Shape and material optimization for buckling behavior of functionally graded toroidal shells , 2020 .
[25] V. H. Nam,et al. Nonlinear thermomechanical buckling of FG-GRC laminated cylindrical shells stiffened by FG-GRC stiffeners subjected to external pressure , 2020, Acta Mechanica.
[26] Leonardo Gonçalves Ribeiro,et al. Surrogate based optimization of functionally graded plates using radial basis functions , 2020 .
[27] T. I. Thinh,et al. Nonlinear analysis of buckling and postbuckling of functionally graded variable thickness toroidal shell segments based on improved Donnell shell theory , 2020, Composite Structures.
[28] Wu Zheng,et al. Elastoplastic buckling of FGM beams in thermal environment , 2020 .
[29] J. Rungamornrat,et al. Free vibration of stiffened functionally graded circular cylindrical shell resting on Winkler–Pasternak foundation with different boundary conditions under thermal environment , 2020 .
[30] Bo Yu,et al. Robust design optimization of imperfect stiffened shells using an active learning method and a hybrid surrogate model , 2020 .
[31] K. Foroutan,et al. Nonlinear vibration of stiffened multilayer FG cylindrical shells with spiral stiffeners rested on damping and elastic foundation in thermal environment , 2019 .
[32] Peng Hao,et al. Improved reliability-based design optimization of non-uniformly stiffened spherical dome , 2019, Structural and Multidisciplinary Optimization.
[33] N. D. Duc,et al. Nonlinear buckling and postbuckling of imperfect piezoelectric S-FGM circular cylindrical shells with metal–ceramic–metal layers in thermal environment using Reddy's third-order shear deformation shell theory , 2019 .
[34] Ke Zhang,et al. Tailoring the optimal load-carrying efficiency of hierarchical stiffened shells by competitive sampling , 2018, Thin-Walled Structures.
[35] G. G. Sheng,et al. The dynamic stability and nonlinear vibration analysis of stiffened functionally graded cylindrical shells , 2018 .
[36] Ryszard Buczkowski,et al. Nonlinear buckling and post-buckling response of stiffened FGM plates in thermal environments , 2017 .
[37] Yuanming Xu,et al. A new effective smeared stiffener method for global buckling analysis of grid stiffened composite panels , 2016 .
[38] P. Thang,et al. Effect of stiffeners on nonlinear buckling of cylindrical shells with functionally graded coatings under torsional load , 2016 .
[39] Bo Wang,et al. Numerical-based smeared stiffener method for global buckling analysis of grid-stiffened composite cylindrical shells , 2016 .
[40] C. Lim,et al. Accurate buckling solutions of grid-stiffened functionally graded cylindrical shells under compressive and thermal loads , 2016 .
[41] Ji-Hwan Kim,et al. Thermal buckling behavior of functionally graded plates based on neutral surface , 2016 .
[42] T. I. Thinh,et al. Non-linear buckling analysis of FGM toroidal shell segments filled inside by an elastic medium under external pressure loads including temperature effects , 2016 .
[43] C. Lim,et al. Accurate buckling analysis for shear deformable FGM cylindrical shells under axial compression and thermal loads , 2015 .
[44] Bo Wang,et al. Hybrid optimization of hierarchical stiffened shells based on smeared stiffener method and finite element method , 2014 .
[45] Hung Nguyen-Xuan,et al. Generalized shear deformation theory for functionally graded isotropic and sandwich plates based on isogeometric approach , 2014 .
[46] Bo Wang,et al. Surrogate-based optimization of stiffened shells including load-carrying capacity and imperfection sensitivity , 2013 .
[47] B. Boroomand,et al. Thermal buckling of functionally graded skew and trapezoidal plates with different boundary conditions using the element-free Galerkin method , 2013 .
[48] Hung Nguyen-Xuan,et al. An isogeometric finite element formulation for thermal buckling analysis of functionally graded plates , 2013 .
[49] Dao Huy Bich,et al. Nonlinear static and dynamic buckling analysis of imperfect eccentrically stiffened functionally graded circular cylindrical thin shells under axial compression , 2013 .
[50] Dao Van Dung,et al. Research on nonlinear torsional buckling and post-buckling of eccentrically stiffened functionally graded thin circular cylindrical shells , 2013 .
[51] Hui-Shen Shen,et al. Assessment of Voigt and Mori–Tanaka models for vibration analysis of functionally graded plates , 2012 .
[52] Reza Ansari,et al. Axial buckling analysis of single-walled carbon nanotubes in thermal environments via the Rayleigh–Ritz technique , 2011 .
[53] Hui-Shen Shen,et al. Postbuckling of nanotube-reinforced composite cylindrical shells in thermal environments, Part I: Axially-loaded shells , 2011 .
[54] Nicolas Gayton,et al. AK-MCS: An active learning reliability method combining Kriging and Monte Carlo Simulation , 2011 .
[55] Qiang Han,et al. Nonlinear buckling and postbuckling of heated functionally graded cylindrical shells under combined axial compression and radial pressure , 2009 .
[56] P. Khazaeinejad,et al. Mechanical stability of functionally graded stiffened cylindrical shells , 2009 .
[57] Romesh C. Batra,et al. Buckling of axially compressed thin cylindrical shells with functionally graded middle layer , 2006 .
[58] M. Ganapathi,et al. Thermal buckling of simply supported functionally graded skew plates , 2006 .
[59] Hui‐Shen Shen. Postbuckling of axially loaded FGM hybrid cylindrical shells in thermal environments , 2005 .
[60] Brian L. Wardle,et al. Buckling Response of Transversly Loaded Composites Shells, Part 2: Numerical Analysis , 2004 .
[61] Tiejun Wang,et al. Nonlinear bending and post-buckling of a functionally graded circular plate under mechanical and thermal loadings , 2003 .
[62] Hui‐Shen Shen. Postbuckling analysis of axially loaded functionally graded cylindrical panels in thermal environments , 2002 .
[63] J. N. Reddy,et al. THERMOMECHANICAL ANALYSIS OF FUNCTIONALLY GRADED CYLINDERS AND PLATES , 1998 .
[64] Raphael T. Haftka,et al. Response Surface Approximations for Fatigue Life Prediction , 1997 .
[65] S. Tsai,et al. Analysis and Optimum Design of Composite Grid Structures , 1996 .
[66] M. Crisfield. A FAST INCREMENTAL/ITERATIVE SOLUTION PROCEDURE THAT HANDLES "SNAP-THROUGH" , 1981 .
[67] M. Crisfield,et al. A faster modified newton-raphson iteration , 1979 .
[68] Bich Huy Dao,et al. Buckling Analysis of Eccentrically Stiffened Functionally Graded Toroidal Shell Segments under Mechanical Load , 2016 .
[69] Huaiwei Huang,et al. Nonlinear dynamic buckling of functionally graded cylindrical shells subjected to time-dependent axial load , 2010 .
[70] Su-Seng Pang,et al. Buckling load analysis of grid stiffened composite cylinders , 2003 .
[71] M. R. Eslami,et al. THERMAL BUCKLING OF FUNCTIONALLY GRADED PLATES BASED ON HIGHER ORDER THEORY , 2002 .
[72] M. Koizumi. FGM activities in Japan , 1997 .
[73] Damodar R. Ambur,et al. Formulation of an improved smeared stiffener theory for buckling analysis of grid-stiffened composite panels , 1996 .