Solid shell prism elements based on hierarchical, heterogeneous, and anisotropic shape functions
Lukasz Kaczmarczyk, Hoang Nguyen, Zahur Ullah, Mebratu Wakeni, Chris, Pearce

TL;DR
This paper introduces a novel solid shell finite element based on hierarchical, heterogeneous, and anisotropic shape functions, capable of accurately modeling complex nonlinear shell behaviors without locking or reduced integration.
Contribution
It presents a new prism finite element formulation that captures complex shell behavior, avoids locking, and supports local p-adaptivity and efficient multigrid solutions.
Findings
Effective in nonlinear shell analysis
Avoids locking phenomena without reduced integration
Demonstrated superior performance on benchmark problems
Abstract
The formulation of a new prism finite element is presented for the nonlinear analysis of solid shells subject to large strains and large displacements. The element is based on hierarchical, heterogeneous, and anisotropic shape functions. As with other solid shell formulations, only displacement degrees of freedom are required to describe the shell kinematics and general three-dimensional material laws can be adopted. However, the novelty of this formulation is the ability to capture complex shell behaviour and avoid locking phenomena, without the need to use reduced integration or adopt additional natural strain or enhanced strain fields. Thus, this element is ideally suited for geometrically and physically nonlinear problems. This is achieved by constructing independent approximation shape functions on both the prism element's triangular faces and through the thickness, where the…
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Taxonomy
TopicsComposite Structure Analysis and Optimization · Topology Optimization in Engineering · Structural Analysis and Optimization
