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Multiscale computational homogenisation of shear-flexible beam elements: a Direct FE2 approach

机译:剪切柔性梁单元的多尺度计算均质化:一种直接FE2方法

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摘要

Structural beam elements are computationally efficient in modelling slender structures. However, they require homogenised material models and computational homogenisation for such elements is complex because it involves higher order kinematics. A Direct FE2 homogenisation model for shear-flexible beam elements that is based on the more versatile Timoshenko-Ehrenfest beam theory is presented. Beyond conventional Euler-Bernoulli beam kinematics, an independent shear angle needs to be imposed onto the heterogeneous microscale RVE to govern the microscale shear deformation. It is shown that this can be achieved using an integral constraint involving the moments of axial displacement. With the proposed model, the multiscale analysis can be implemented on commercial FE codes completely as a pre-processing step. Examples presented to demonstrate the performance of the proposed model include 2D and 3D models of fibre reinforced composite beams with material nonlinearity and coupled stretch-twist response. When compared with direct numerical simulations, the proposed model gave closely matching predictions while requiring only a fraction of the computational time. The examples also highlighted the inadequacy of the Euler-Bernoulli beam theory in some cases to further motivate this work.
机译:结构梁单元在对细长结构进行建模时具有计算效率。然而,它们需要均质化的材料模型,并且这些元素的计算均质化很复杂,因为它涉及高阶运动学。提出了一种基于更通用的Timoshenko-Ehrenfest梁理论的剪切柔性梁单元的直接FE2均质化模型。除了传统的欧拉-伯努利梁运动学之外,还需要在非均质微尺度RVE上施加一个独立的剪切角,以控制微尺度剪切变形。结果表明,这可以通过涉及轴向位移力矩的积分约束来实现。通过所提出的模型,可以完全作为预处理步骤在商业有限元代码上实现多尺度分析。为证明所提出模型的性能而给出的示例包括具有材料非线性和拉伸-扭转耦合响应的纤维增强组合梁的二维和三维模型。与直接数值模拟相比,所提出的模型给出了非常匹配的预测,而只需要一小部分计算时间。这些例子还强调了在某些情况下欧拉-伯努利梁理论的不足之处,无法进一步推动这项工作。

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