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首页> 外文期刊>International Journal of Material Forming >On the implementation of the EAS and ANS concept into a reduced integration continuum shell element and applications to sheet forming
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On the implementation of the EAS and ANS concept into a reduced integration continuum shell element and applications to sheet forming

机译:关于将EAS和ANS概念实施为减少集成的连续壳元素及其在板材成型中的应用

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This contribution deals with the application of a new solid-shell finite element based on reduced integration with hourglass stabilization in the field of sheet metal forming. The formulation includes the enhanced assumed strain (EAS) concept getting by with a minimum of enhanced degrees-of-freedom to overcome the volumetric locking and Pois- son’s thickness locking. To circumvent further the well-known effects of curvature thickness locking and transverse shear locking present in standard eight-node hexahedral finite elements the assumed natural strain (ANS) concept is applied. The implementation of the latter key feature is not straight-forward in reduced integration solid-shells. The second crucial point is a combined Taylor expansion of the compatible Green-Lagrange strain tensor with respect to the center of the element and the normal through the element center leading to an efficient and locking-free hourglass stabilization. Due to the three-dimensional modeling of the structure fully three-dimensional materials can be implemented without additional assumptions. Furthermore simulations of double-side contact problems (e.g. sheet metal forming) benefit from an exact modeling of the sheet thickness.
机译:该贡献涉及在钣金成形领域中基于减少的集成和沙漏稳定性的新型固体有限元的应用。该公式包括增强假定应变(EAS)概念,以最小的增强自由度克服了体积锁定和泊松厚度锁定。为了进一步规避标准八节点六面体有限元中存在的曲率厚度锁定和横向剪切锁定的众所周知的影响,采用了假定的自然应变(ANS)概念。后一种关键功能的实现在减少集成的固态外壳中并不简单。第二个关键点是相容的Green-Lagrange应变张量相对于单元中心和法线通过单元中心的泰勒展开组合,从而实现了有效且无锁定的沙漏稳定性。由于结构的三维建模,无需附加假设即可实现完全三维的材料。此外,双面接触问题(例如,钣金成形)的仿真得益于对板材厚度的精确建模。

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