An efficient reanalysis assisted optimization for variable-stiffness composite design by using path functions

[1]  P. Pedersen On optimal orientation of orthotropic materials , 1989 .

[2]  Pauli Pedersen,et al.  On thickness and orientational design with orthotropic materials , 1991 .

[3]  R. Olmedo,et al.  Composite laminates with spatially varying fiber orientations - 'Variable stiffness panel concept' , 1992 .

[4]  Cristóvão M. Mota Soares,et al.  A discrete model for the design sensitivity analysis of multi-layered composite shells of revolution , 1995 .

[5]  H. Gea,et al.  Optimal orientation of orthotropic materials using an energy based method , 1998 .

[6]  Fred Moses,et al.  An improved reanalysis method for grillage-type structures , 1998 .

[7]  U. Kirsch Combined approximations – a general reanalysis approach for structural optimization , 2000 .

[8]  Raphael T. Haftka,et al.  Fast exact linear and non‐linear structural reanalysis and the Sherman–Morrison–Woodbury formulas , 2001 .

[9]  Baisheng Wu,et al.  EIGENVALUE REANALYSIS OF STRUCTURES USING PERTURBATIONS AND PADÉ APPROXIMATION , 2001 .

[10]  U. Kirsch,et al.  Exact and Accurate Reanalysis of Structures for Geometrical Changes , 2001, Engineering with Computers.

[11]  Mohammed Cheikh,et al.  Static reanalysis of discrete elastic structures with reflexive inverse , 2002 .

[12]  Amjad J. Aref,et al.  An optimization design procedure for fiber reinforced polymer web-core sandwich bridge deck systems , 2003 .

[13]  Su-huan Chen,et al.  Structural modal reanalysis for topological modifications with extended Kirsch method , 2003 .

[14]  Zhengguang Li,et al.  The implementation of a vector-valued rational approximate method in structural reanalysis problems , 2003 .

[15]  Su-huan Chen,et al.  A universal method for structural static reanalysis of topological modifications , 2004 .

[16]  R. Haftka,et al.  Optimization of fiber orientations near a hole for increased load-carrying capacity of composite laminates , 2005 .

[17]  Fazil O. Sonmez,et al.  Optimum design of composite laminates for maximum buckling load capacity using simulated annealing , 2005 .

[18]  A. Crosky,et al.  Optimisation of fibre steering in composite laminates using a genetic algorithm , 2006 .

[19]  Jun Wu,et al.  An integrated approach to shape and laminate stacking sequence optimization of free-form FRP shells , 2006 .

[20]  A. Crosky,et al.  Improvement of bearing strength of laminated composites , 2006 .

[21]  Zafer Gürdal,et al.  Design of variable–stiffness laminates using lamination parameters , 2006 .

[22]  Uri Kirsch,et al.  Nonlinear dynamic reanalysis of structures by combined approximations , 2006 .

[23]  P. B. Sujit,et al.  Particle swarm optimization approach for multi-objective composite box-beam design , 2007 .

[24]  Brian C. Fabien The influence of failure criteria on the design optimization of stacked-ply composite flywheels , 2007 .

[25]  Ranjan Ganguli,et al.  Strength design of composite beam using gradient and particle swarm optimization , 2007 .

[26]  Z. Gürdal,et al.  Variable stiffness composite panels : Effects of stiffness variation on the in-plane and buckling response , 2008 .

[27]  Zafer Gürdal,et al.  Design Tailoring for Pressure Pillowing Using Tow-Placed Steered Fibers , 2008 .

[28]  Guangwei Meng,et al.  Dynamic response reanalysis for modified structures under arbitrary excitation using epsilon-algorithm , 2008 .

[29]  Z. Gürdal,et al.  Design of variable-stiffness conical shells for maximum fundamental eigenfrequency , 2008 .

[30]  Ugo Icardi,et al.  A new tailoring optimization approach for improving structural response and energy absorption capability of laminated and sandwich composites , 2008 .

[31]  Xin Chen,et al.  An Adaptive Static Reanalysis Method for Structural Modifications Using Epsilon Algorithm , 2009, 2009 International Joint Conference on Computational Sciences and Optimization.

[32]  Krzysztof Dems,et al.  Two approaches to the optimal design of composite flywheels , 2009 .

[33]  Masoud Tahani,et al.  An ant colony optimization approach to multi-objective optimal design of symmetric hybrid laminates for maximum fundamental frequency and minimum cost , 2009 .

[34]  Zafer Gürdal,et al.  Fiber path definitions for elastically tailored conical shells , 2009 .

[35]  Samuel T. IJsselmuiden,et al.  Design of variable-stiffness composite panels for maximum buckling load , 2009 .

[36]  Zafer Gürdal,et al.  Thermomechanical Design Optimization of Variable Stiffness Composite Panels for Buckling , 2010 .

[37]  Zafer Gürdal,et al.  Design of variable stiffness panels for maximum strength using lamination parameters , 2011 .

[38]  Ugo Icardi,et al.  Laminated and sandwich panels subject to blast pulse loading , 2010 .

[39]  A. Muc,et al.  Design of plates with curved fibre format , 2010 .

[40]  Zafer Gürdal,et al.  Optimization of a composite cylinder under bending by tailoring stiffness properties in circumferential direction , 2010 .

[41]  Erik Lund,et al.  Nonlinear Buckling Optimization of Composite Structures , 2010 .

[42]  Mostafa Abdalla,et al.  Optimization of a variable-stiffness skin for morphing high-lift devices , 2010 .

[43]  Wei Yang,et al.  Optimum buckling design of composite stiffened panels using ant colony algorithm , 2010 .

[44]  Damiano Pasini,et al.  Optimum stacking sequence design of composite materials Part II: Variable stiffness design , 2010 .

[45]  Yoshihiro Narita,et al.  Vibration design of laminated fibrous composite plates with local anisotropy induced by short fibers and curvilinear fibers , 2011 .

[46]  Hassan Haddadpour,et al.  Curvilinear fiber optimization tools for design thin walled beams , 2011 .

[47]  S. N. Omkar,et al.  Applied Soft Computing Artificial Bee Colony (abc) for Multi-objective Design Optimization of Composite Structures , 2022 .

[48]  Zahra Zamani,et al.  Curvilinear fiber optimization tools for aeroelastic design of composite wings , 2012 .

[49]  Christos Kassapoglou,et al.  Generating realistic laminate fiber angle distributions for optimal variable stiffness laminates , 2012 .

[50]  L. Lessard,et al.  Surrogate-based multi-objective optimization of a composite laminate with curvilinear fibers , 2012 .

[51]  Paul M. Weaver,et al.  Buckling analysis and optimisation of variable angle tow composite plates , 2012 .

[52]  Yoshihiro Narita,et al.  Multi-objective optimization of curvilinear fiber shapes for laminated composite plates by using NSGA-II , 2013 .

[53]  Guangyao Li,et al.  An adaptive time-based global method for dynamic reanalysis , 2013 .

[54]  Janis Sliseris,et al.  Optimal Design of Composite Plates with Discrete Variable Stiffness , 2013 .

[55]  Angela Vincenti,et al.  Structural rigidity optimization of thin laminated shells , 2013 .

[56]  Paul M. Weaver,et al.  Postbuckling optimisation of variable angle tow composite plates , 2013 .

[57]  Damiano Pasini,et al.  A comparative study of metamodeling methods for the design optimization of variable stiffness composites , 2014 .

[58]  Damiano Pasini,et al.  Optimization of variable stiffness composites with embedded defects induced by Automated Fiber Placement , 2014 .

[59]  Pu Chen,et al.  An exact reanalysis algorithm for local non-topological high-rank structural modifications in finite element analysis , 2014 .

[60]  Fan Yang,et al.  Optimal Design of Lightweight Composite Pressure Vessel by Using Artificial Immune Algorithm , 2014 .

[61]  Guangyao Li,et al.  A reanalysis method for local modification and the application in large-scale problems , 2014 .

[62]  Suong V. Hoa,et al.  Effect of structural parameters on design of variable-stiffness composite cylinders made by fiber steering , 2014 .

[63]  Michaël Bruyneel,et al.  Optimization of composite structures with curved fiber trajectories , 2014 .

[64]  D. Peeters,et al.  Stacking sequence optimisation of variable stiffness laminates with manufacturing constraints , 2015 .

[65]  Hu Wang,et al.  “Seen Is Solution” a CAD/CAE integrated parallel reanalysis design system , 2016 .

[66]  Wenjie Zuo,et al.  Sensitivity reanalysis of static displacement using Taylor series expansion and combined approximate method , 2015, Structural and Multidisciplinary Optimization.