Article (Scientific journals)
Explicit finite deformation analysis of isogeometric membranes
Chen, Lei; Nguyen-Thanh, Nhon; Nguyen-Xuan, Hung et al.
2014In Computer Methods in Applied Mechanics and Engineering
Peer reviewed
 

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Keywords :
explicit; isogeometric; membrane
Abstract :
[en] NURBS-based isogeometric analysis was first extended to thin shell/membrane structures which allows for finite membrane stretching as well as large deflection and bending strain. The assumed non-linear kinematics employs the Kirchhoff-Love shell theory to describe the mechanical behaviour of thin to ultrathin structures. The displacement fields are interpolated from the displacements of control points only, and no rotational degrees of freedom are used at control points. Due to the high order Ck (k ≥ 1) continuity of NURBS shape functions the Kirchhoff-Love theory can be seamlessly implemented. An explicit time integration scheme is used to compute the transient response of membrane structures to time-domain excitations, and a dynamic relaxation method is employed to obtain steady-state solutions. The versatility and good performance of the present formulation is demonstrated with the aid of a number of test cases, including a square membrane strip under static pressure, the inflation of a spherical shell under internal pressure, the inflation of a square airbag and the inflation of a rubber balloon. The mechanical contribution of the bending stiffness is also evaluated.
Disciplines :
Engineering, computing & technology: Multidisciplinary, general & others
Author, co-author :
Chen, Lei
Nguyen-Thanh, Nhon
Nguyen-Xuan, Hung
Rabczuk, Timon
Bordas, Stéphane ;  University of Luxembourg > Faculty of Science, Technology and Communication (FSTC) > Engineering Research Unit
Limbert, Georges
Language :
English
Title :
Explicit finite deformation analysis of isogeometric membranes
Alternative titles :
[fr] Déformations explicites de membranes isogéométriques
Publication date :
2014
Journal title :
Computer Methods in Applied Mechanics and Engineering
ISSN :
0045-7825
Publisher :
Elsevier Science, Lausanne, Switzerland
Peer reviewed :
Peer reviewed
Focus Area :
Computational Sciences
European Projects :
FP7 - 279578 - REALTCUT - Towards real time multiscale simulation of cutting in non-linear materials with applications to surgical simulation and computer guided surgery
Funders :
European Office of Aerospace Research and Development (Air Force Office of Scientific Research) [Grant FA8655-12-1-2103] and the Engineering and Physical Sciences Research Council (EPSRC) [Grant EP/F034296/1].
CE - Commission Européenne [BE]
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