Effect of Bolted Joints on Shock Propagation Across Structures Under Medium Impact Loading

P. Shojaei, M. Trabia, B. O’Toole
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引用次数: 1

Abstract

A bolted joint is one of the most common fastening techniques. While the behavior of bolted joints under static or quasi-static conditions is well documented, their behavior under shock/impact loading is not well-understood. In many applications, where a bolted joint connects a sensitive component to the rest of a structure, it is important to interpret shock propagation through the bolted joints. This problem is further complicated owing to the fact that a bolted joint exhibits multiple types of nonlinearities, due to the interaction between the bolts and clamped parts, thread friction between the shank and nut, pre-tension, damping characteristics, and interference with the hole. This study was focused on developing computational techniques for understanding shock propagation through a bolted joint. As a case study, the behavior of a bolted joint within a two-component cylindrical structure subjected to impact loading was considered. A finite element (FE) model of the fixture was developed. Two different approaches were considered. The first one modeled the bolt assembly as one part. The second model had the bolt and nut as separate parts. In this model, the tie contact between the bolt shank and the nut was defined using a shear failure criterion. Both models included bolt pre-tension. The two models were compared based on energy balance, acceleration signal, and displacement at the base of the fixture. The results indicated that the model with the separate bolt and nut resulted in a more realistic performance.
中等冲击载荷下螺栓连接对结构冲击传播的影响
螺栓连接是最常用的紧固技术之一。虽然螺栓连接在静态或准静态条件下的行为已经有了很好的记录,但它们在冲击/冲击载荷下的行为还不是很清楚。在许多应用中,用螺栓连接敏感部件与结构的其余部分,解释通过螺栓连接的冲击传播是很重要的。由于螺栓与被夹件之间的相互作用、杆与螺母之间的螺纹摩擦、预张力、阻尼特性以及与孔的干涉,螺栓连接表现出多种非线性,这一事实使问题进一步复杂化。这项研究的重点是发展计算技术来理解通过螺栓连接的冲击传播。作为实例研究,考虑了双组份圆柱结构中螺栓连接在冲击载荷作用下的行为。建立了夹具的有限元模型。考虑了两种不同的方法。第一个模型将螺栓总成建模为一个部件。第二个型号有螺栓和螺母作为单独的部分。在该模型中,螺栓杆与螺母之间的连接接触采用剪切破坏准则定义。两种型号都包括螺栓预张力。基于能量平衡、加速度信号和夹具底部位移对两种模型进行了比较。结果表明,分离螺栓和螺母的模型更符合实际。
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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