Title of article :
Efficient and accurate multilayer solid-shell element: non-linear materials at finite strain
Author/Authors :
X. G. Tan، نويسنده , , L. Vu-Quoc، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Abstract :
We present in this paper an efficient and accurate low-order solid-shell element formulation for
analyses of large deformable multilayer shell structures with non-linear materials. The element has
only displacement degrees of freedom (dofs), and an optimal number of enhancing assumed strain
(EAS) parameters to pass the patch tests (both membrane and out-of-plane bending) and to remedy
volumetric locking. Based on the mixed Fraeijs de Veubeke-Hu-Washizu (FHW) variational principle,
the in-plane and out-of-plane bending behaviours are improved and the locking associated with (nearly)
incompressible materials is avoided via a new efficient enhancement of strain tensor. Shear locking and
curvature thickness locking are resolved effectively by using the assumed natural strain (ANS) method.
Two non-linear 3-D constitutive models (Mooney–Rivlin material and hyperelastoplastic material at
finite strain) are applied directly without requiring the enforcement of the plane-stress assumption. In
particular, we give a simple derivation for the hyperelastoplastic model using spectral representations.
In addition, the present element has a well-defined lumped mass matrix, and provides double-side
contact surfaces for shell contact problems. With the dynamics referred to a fixed inertial frame, the
present element can be used to analyse multilayer shell structures undergoing large overall motion.
Numerical examples involving static analyses and implicit/explicit dynamic analyses of multilayer shell
structures with both material and geometric non-linearities are presented, and compared with existing
results obtained from other shell elements and from a meshless method. It is shown that elements that
did not pass the out-of-plane bending patch test could not provide accurate results, as compared to the
present element formulation, which passed the out-of-plane bending patch test. The present element
proves to be versatile and efficient in the modelling and analyses of general non-linear composite
multilayer shell structures.
Keywords :
solid–shell element , Plasticity , Incompressibility , non–linear materials , large deformation , Multilayer , Finite strains , dynamic analyses , Contact , composite shell , patch tests
Journal title :
International Journal for Numerical Methods in Engineering
Journal title :
International Journal for Numerical Methods in Engineering