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Accurate evaluation of 3D stress fields in adhesive bonded joints via higher-order FE models

机译:通过高阶FE模型准确评估粘合剂接头中的3D应力场

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摘要

The accurate representation of the 3D stress fields at the bonded areas of adhesive joints is essential for their design and strength evaluation. In the present study, higher-order beam models developed in the framework of the Carrera Unified Formulation are employed to reduce the complexity and computational cost of numerical simulations on adhesive joints. The different components of the adhesive joint, i.e. adherends and adhesive, are modeled as beams with independent kinematics based on the Hierarchical Legendre Expansion (HLE). HLE models make use of a hierarchical polynomial expansion over the cross-section of the beam, thus allowing for the control of the accuracy of the stress solutions via the polynomial expansion. Recalling the Finite Element method, the beam axis is discretized by means of 1D elements. In this manner, generic geometries of the adhesive bonded joints can be studied. The proposed model is assessed through comparison against numerical and analytical references from the literature for single lap and double lap joints. Finally, a detailed 3D analysis is performed on the single lap joint problem, showing that the stress gradients along the adhesive are correctly and efficiently described if the proposed methodology is employed.
机译:粘合接头的粘结区域的3D应力场的准确表示对于它们的设计和强度评估至关重要。在本研究中,采用在卡拉统一配方的框架中开发的高阶波束模型来降低粘合接头上数值模拟的复杂性和计算成本。粘合剂接头的不同部件,即粘附和粘合剂,被建模为基于分层图例扩展(HE)的独立运动学的梁。 HLE模型在光束的横截面上使用分层多项式膨胀,从而允许通过多项式膨胀来控制应力溶液的精度。回顾有限元方法,横梁通过1D元件离散化。以这种方式,可以研究粘合剂接头的通用几何形状。通过对单圈和双圈关节的文献的数值和分析参考进行评估,评估所提出的模型。最后,在单圈关节问题上执行详细的3D分析,示出了如果采用所提出的方法,则正确有效地描述沿粘合剂的应力梯度。

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