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Nonlinear thermo-mechanical analysis of stiffened composite laminates by a new finite element.

机译:用新的有限元对复合材料层合板进行非线性热机械分析。

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A new stiffened shell element combining shallow beam and shallow shell elements is developed for geometrically nonlinear analysis of stiffened composite laminates under thermal and/or mechanical loading. The formulation of this element is based on the principal of virtual displacements in conjunction with the co-rotational form of the total Lagrangian description of motion. In the finite element formulation, both the shell and the beam (stiffener) elements account for transverse shear deformations and material anisotropy. The cross-section of the stiffener (beam) can be arbitrary in geometry and lamination. In order to combine the stiffener with the shell element, constraint conditions are applied to the displacement and rotation fields of the stiffener. These constraint conditions ensure that the cross-section of the stiffener remains co-planar with the shell section after deformation. The resulting expressions for the displacement and rotation fields of the stiffener involve only the nodal unknowns of the shell element, thus reducing the total number of degrees of freedom. Also, the discretization of the entire stiffened shell structure becomes more flexible.
机译:开发了一种结合浅梁和浅壳单元的新型加劲壳单元,用于在热和/或机械载荷下对加劲复合材料层压板进行几何非线性分析。该元素的表述基于虚拟位移的原理以及总拉格朗日运动描述的同旋转形式。在有限元公式中,壳单元和梁(加劲肋)单元均会引起横向剪切变形和材料各向异性。加强筋(梁)的横截面在几何形状和层压方面可以是任意的。为了将加劲肋与壳单元组合在一起,将约束条件应用于加劲肋的位移和旋转场。这些约束条件确保了变形后加劲肋的横截面与壳体截面保持共面。加劲肋的位移场和旋转场的结果表达式仅涉及壳单元的节点未知量,从而减少了自由度的总数。而且,整个加劲壳结构的离散化变得更加灵活。

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