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NONLINEAR THROUGH-THICKNESS BEHAVIOR OF A TOROIDAL SHELL USING 2-D FINITE ELEMENTS

机译:基于二维有限元的环形壳的非线性贯穿厚度行为

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摘要

The use of two-dimensional shell finite elements is explored for finding the three-dimensional state of stress in a toroidal shell. The torus under study represents a 90-degree pipe elbow with a pressure load on a portion of its surface. Layer-wise polynomials are used to represent the transverse shear and normal stretch deformations in the shell. These functions are chosen such that displacements and stresses (but not strains) are continuous at the ply interfaces. Both isotropic and composite (cross-ply) versions of the shell are investigated, and the thicknesses of each are varied to see the effect on through-thickness behavior. Significant qualitative and quantitative differences in these behaviors are observed, particularly in the important direct through-thickness (peeling) stress. The contribution of the transverse deformations to strain energy is investigated and, in most of the shells studied, the thickness stretch component is found to be a greater contributor to strain energy than the transverse shear, though the transverse shear contribution is seen to vary more dramatically with changes in shell thickness.
机译:探索了使用二维壳有限元来寻找环形壳中的三维应力状态。研究中的圆环代表90度的弯头,其一部分表面承受压力。分层多项式用于表示壳中的横向剪切和法向拉伸变形。选择这些功能以使在层界面处的位移和应力(而不是应变)连续。研究了壳的各向同性和复合(交叉)形式,并改变了每个壳的厚度,以查看其对贯穿厚度行为的影响。观察到这些行为在质量和数量上存在显着差异,尤其是在重要的直接厚度变化(剥离)应力中。研究了横向变形对应变能的贡献,并且在大多数研究的壳中,发现厚度拉伸分量比横向剪切对应变能的贡献更大,尽管横向剪切的贡献变化更大。随着外壳厚度的变化。

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