DOE OSTI · 3022233
Selective mass scaling for single-layer thick shell elements in DYNA3D
Abstract
Hexahedral elements can be adapted to model thin and moderately thick structures by neglecting the coupling of through-thickness stress, resulting in a fully three-dimensional, but simplified, state of stress. These specialized elements, often referred to as “thick” or “solid” shells, are generally employed to model thin-walled structures using continuum mechanics-based material models. In explicit dynamics simulations, where computational speed is important, these elements are integrated with a single quadrature point and a set of anti-hourglassing (stabilizing) forces. Thick shells, by definition, have a thickness dimension smaller than their in-plane dimensions, and this small thickness often determines the stable time step size in simulations, despite the mechanics being approximated. To alleviate this limitation while retaining the relevant dynamics of thin-walled structures, selective mass scaling (SMS), or selective mass “augmentation,” has been proposed in the literature. In this technical report, we explore the application of SMS to single-layer thick shells in the simulation software DYNA3D.
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Recuero, Antonio Martin [Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)]. 2025-06-26. Selective mass scaling for single-layer thick shell elements in DYNA3D. https://doi.org/10.2172/3022233
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