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Explicit tangent stiffness matrix for the geometrically nonlinear analysis of laminated composite frame structures

机译:显式切线刚度矩阵用于层合组合框架结构的几何非线性分析

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In this paper, based on Von Karman's nonlinear theory and the classical lamination theory, a closed form expression is derived for the tangent stiffness matrix of a laminated composite beam element undergoing large deformation and rotation under mechanical and hygrothermal loads. Stretching, bending and torsion have been considered. A co-rotational element reference frame is used as the Updated Lagrangian (UL) formulation. The model has been verified in different problems by comparison with the results of Nastran and ANSYS composite laminate tools, and the difference in the resulting large deformations is less than 5%. The major advantage of the proposed approach is that the composite structure is modeled using 1D beam elements rather than 2D shell or 3D solid elements as in the case of Nastran and ANSYS where laminates are defined over surfaces or 3D solids. The availability of an explicit expression for the tangent stiffness matrix makes the proposed model highly efficient specially when dealing with large composite space frame structures. The saving in computational time could reach 93% compared to regular FE software packages. The developed model is very useful for modeling and designing flexible composites used in new applications such as morphing aerospace structures and flexible robots.
机译:本文基于冯·卡曼(Von Karman)的非线性理论和经典的层合理论,推导了层状复合梁单元在机械和湿热载荷作用下发生大变形和旋转的切线刚度矩阵的闭合形式。已经考虑了拉伸,弯曲和扭转。同向旋转元素参考系用作更新的拉格朗日(UL)公式。通过与Nastran和ANSYS复合层压工具的结果进行比较,该模型已针对不同的问题进行了验证,所产生的大变形差异小于5%。拟议方法的主要优点是,使用Nastran和ANSYS的情况(其中在表面或3D实体上定义了层压板)的情况下,使用1D梁元素而不是2D外壳或3D实体元素对复合结构进行建模。切线刚度矩阵的显式表达式的可用性使所提出的模型在处理大型复合空间框架结构时特别高效。与常规的FE软件包相比,节省的计算时间可达到93%。所开发的模型对于建模和设计用于新应用的柔性复合材料非常有用,这些新应用包括变形航空航天结构和柔性机器人。

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