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Corotational nonlinear dynamic analysis of laminated composite shells

机译:复合材料层合壳的比例非线性动力学分析

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The formulation and application of an implicit time-stepping scheme based on the corotational formulation for nonlinear dynamic analysis of laminated composite shells is the main objective of this work. The time-integration algorithm used here is a particular form of a mid-point procedure which approximately conserves the energy of the system allowing the computation of long-term response in problems presenting large translations and rotations. This algorithm has been applied to problems involving frame structures, but few works dealt with shell analysis and practically no studies were developed with laminated composite structures. The corotational procedure is independent with respect to the core linear element formulation and operates as transformation of quantities between element local and global reference systems. In this work shells are modeled by a flat triangular finite element obtained by a novel combination of a high performance membrane element and a simple and efficient plate element developed for laminated composite analysis considering first order shear flexibility. Examples are presented to demonstrate that the corotational time-stepping scheme is able to solve complex nonlinear dynamic problems with large body motion. Laminated composite shell stiffness is shown to be correctly determined by the core element formulation. Results indicate that, in spite of its simplicity, the present algorithm can efficiently solve hard nonlinear dynamic problems involving laminated composite shell.
机译:这项工作的主要目的是基于分层计算的隐式时间步长方案的层合动态公式的制定和应用。此处使用的时间积分算法是中点过程的一种特殊形式,该过程大约节省了系统的能量,从而可以计算出存在较大平移和旋转的问题时的长期响应。该算法已被应用于涉及框架结构的问题,但是很少涉及外壳分析的工作,并且实际上没有对层压复合结构进行研究。相对于核心线性元素公式化,确定性过程是独立的,并且作为元素局部参考系统和全局参考系统之间的量转换。在这项工作中,壳体是由平面三角形有限元建模的,该有限元是由高性能膜元件和简单有效的板状元件的新颖组合而获得的,该元件是为考虑一阶剪切挠性而进行层压复合材料分析而开发的。实例表明,协调时间步长法能够解决大运动量的复杂非线性动力学问题。层压复合材料壳的刚度显示是由核心元素公式正确确定的。结果表明,尽管其简单性,本算法仍可以有效地解决涉及层压复合壳的硬非线性动力学问题。

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