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Analytical and experimental methods for adhesively bonded joints subjected to high temperatures.

机译:高温下粘合接头的分析和实验方法。

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Recent advances in material systems have expanded the temperature range over which adhesively bonded composite joints can be used. In this work, several tools are developed for use in modeling joints over a broad range of temperatures. First, a set of dimensionless parameters is established which can be used for analysis of joint performance for an orthotropic symmetric double lap joint. A critical dimensionless ratio of mechanical and thermal loads is identified. The ratio predicts characteristics of the resulting stress distribution. A bonded joint finite element is also developed, wherein a joint-specific finite element is formulated based on an analytical solution. The resulting element allows for mesh-independent joint evaluation and multi-joint simulation at a system or vehicle level. As a mid-level analysis technique, the element has significant predictive and cost advantages over the previously available methods. An advanced analysis technique, the discrete cohesive zone method, is developed and demonstrated in a general element formulation. Initially, the element is examined from the perspective of computational efficiency and robustness. Two efficient traction laws are formulated and are compared to a traction law that is in common use. The element is subsequently used to investigate the interactions of adhesive parameters in standard adhesive characterization experiments. This quantification of experimental sensitivities allows for a deliberate mapping of cumulative experimental results to an appropriate set of model constitutive parameters. With knowledge of the parameter interactions, a set of experimental results are interpreted to determine a set of adhesive constitutive parameters for T650/AFR-PE-4/FM680-1, a high temperature material system of current interest.
机译:材料系统的最新进展扩大了可使用粘合复合复合材料接头的温度范围。在这项工作中,开发了几种工具,可用于在很宽的温度范围内对接头建模。首先,建立一组无量纲参数,这些参数可用于正交异性对称双搭接接头的接头性能分析。确定了机械和热负荷的关键无量纲比。该比率预测所得应力分布的特征。还开发了一种粘结关节有限元,其中,基于解析解制定了特定于关节的有限元。所得元素允许在系统或车辆级别进行独立于网格的关节评估和多关节仿真。作为一种中级分析技术,与以前可用的方法相比,该元素具有明显的预测和成本优势。开发了一种先进的分析技术,即离散内聚区法,并在一般元素配方中得到了证明。最初,从计算效率和鲁棒性的角度检查元素。制定了两个有效的牵引定律,并将其与常用的牵引定律进行比较。该元素随后用于研究标准胶粘剂表征实验中胶粘剂参数的相互作用。实验灵敏度的这种量化允许将累积的实验结果故意映射到适当的一组模型本构参数。有了参数相互作用的知识,就可以解释一组实验结果来确定T650 / AFR-PE-4 / FM680-1(当前关注的高温材料系统)的一组粘合剂本构参数。

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