Experimental and Theoretical Study on the Failure of Sandwich Specimens with Tabs under Four-Point Bending

V. Paimushin, S. Kholmogorov, M. Makarov, N. V. Levshonkova
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Abstract

The problem of testing sandwich specimens with composite facing layers and a transversally soft core for four-point bending was formulated. The localized external load from the loading rollers to the facing layer of the specimen was assumed to be transmitted through composite tabs, which reduced the stress concentration in the compressed facing layer. The external facing layers and tabs were analyzed for deformation mechanics using S.P. Timoshenko’s kinematic model. The model considered compression in the facing layers but not in the tabs. The core was classified as transversally soft with zero tangential stresses. The tabs were connected to the facing layers through adhesive interlayers, and the displacement vectors of the front surfaces of the tabs were coupled kinematically with the displacement vectors of the front surfaces of the facing layers. The relationships between the transverse shear stresses and strain in the facing layers were assumed to be physically nonlinear, with the shear modulus being a function of the shear strain.Using the generalized variational principle of virtual displacements, a system of nonlinear differential equilibrium equations for the facing layers and tabs was derived. The system was closed by three more equations, which were the conditions for the kinematic coupling of the facing layers with the core based on tangential displacements. To numerically solve the formulated problem, the finite sum method, also known as the method of integrating matrices, was employed. This method involved reducing the original boundary value problem to integro-algebraic equations with Volterra-type operators of the second kind and additional relations for determining the unknown integration constants. The algorithm of the developed method was implemented as an application software, which facilitated a series of computational experiments. The results obtained were compared with the experimental data on the four-point bending of sandwich specimens with the facing layers made of a unidirectional fiber-reinforced composite characterized by specific geometric and physico-mechanical properties, as well as with tabs under the loading rollers. It was shown that the use of tabs significantly increases the ultimate compressive failure stresses in the facing layers.
四点弯曲条件下带片材夹层试样破坏的实验和理论研究
研究人员提出了对具有复合面层和横向软核的夹层试样进行四点弯曲测试的问题。假定从加载辊到试样面层的局部外部载荷通过复合片传递,从而减少了压缩面层的应力集中。使用 S.P. Timoshenko 的运动学模型对外部面层和片材进行了变形力学分析。该模型考虑了面层的压缩,但未考虑片层的压缩。芯材被归类为横向软质材料,切向应力为零。凸台通过粘合剂夹层与面层相连,凸台前表面的位移矢量与面层前表面的位移矢量通过运动学耦合。面层的横向剪应力和应变之间的关系被假定为物理非线性,剪切模量是剪切应变的函数。利用虚拟位移的广义变分原理,推导出了面层和片材的非线性二阶平衡方程组。该系统由另外三个方程封闭,它们是基于切向位移的面层与核心的运动耦合条件。为了对所提出的问题进行数值求解,采用了有限和法,也称为矩阵积分法。该方法涉及将原始边界值问题简化为带有 Volterra 型第二类算子的积分代数方程,以及确定未知积分常数的附加关系。所开发方法的算法以应用软件的形式实现,这为一系列计算实验提供了便利。所获得的结果与夹层试样四点弯曲的实验数据进行了比较,夹层试样的面层由单向纤维增强复合材料制成,具有特定的几何和物理机械特性,并且在加载辊下设有标签。结果表明,使用凸块会显著增加面层的极限压缩破坏应力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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