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On 'best' shell models - From classical shells, degenerated and multi-layered concepts to 3D

机译:在“最佳”壳模型上-从经典壳,退化和多层概念到3D

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Problems of solid mechanics are most generally formulated within 3D continuum mechanics. However, engineering models favor reduced dimensions, in order to portray mechanical properties by surface or curvilinear approximations. Such attempts for dimensional reduction constitute interactions between theoretical formulations and numerical techniques. A classical reduced model for thin bodies is represented by shell theory, an approximation in terms of resultants and first-order moments. If the shell theory, with its inherent errors, is considered as qualitatively insufficient for a particular problem, a further improvement is given by solid shell models, which are gained by direct linear interpolation of the 3D kinematic relations. They improve considerably the analytic capabilities for shells, especially when their congenital locking effects are handled by variational 'convergence tricks'. The next step towards 3D quality are layered shells or solid shell elements. The present paper compares these three approximation stages from the point of view of multi-director (integral) transformations of classical continuum mechanics. It offers physical convergence requirements for each of the treated models.
机译:实体力学问题通常是在3D连续体力学中提出的。然而,工程模型倾向于减小尺寸,以便通过表面或曲线近似来描绘机械性能。这种减少尺寸的尝试构成了理论公式和数值技术之间的相互作用。薄壳的经典简化模型以壳理论为代表,这是根据结果和一阶矩来近似的。如果将具有固有误差的壳理论认为在质量上不足以解决特定问题,则可以通过对3D运动关系进行直接线性插值获得的固体壳模型进行进一步改进。它们大大提高了壳的分析能力,特别是当它们的先天性锁定效果通过变体“收敛技巧”来处理时。迈向3D质量的下一步是分层壳或实体壳元素。本文从经典连续体力学的多方向(积分)变换的角度比较了这三个近似阶段。它为每个已处理模型提供了物理收敛要求。

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