Fundamental Study for Slip Resistance Improvement of High-Strength Bolted Joints Subjected to Shear and Tension

IF 1.1 4区 工程技术 Q3 CONSTRUCTION & BUILDING TECHNOLOGY
Yuma Sugimoto, Soshi Kato
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Abstract

The objective of this study was to refine the slip resistance formulas for high-strength bolted joints subjected to combined shear and tension forces. Traditional formulas typically assume that the prying force generated at the contact surface does not contribute to the slip resistance. To explore the influences of the prying force on slip resistance, a trial design was conducted based on the Specifications for Highway Bridges and Recommendation for Design of High Strength Tensile Bolted Connections for Steel Bridges, with variations in parameters such as bolt diameter, bolt pitch, joint flange thickness, and joint flange material. Additionally, numerical analyses were performed to validate the design methodology incorporating prying force. The trial design results demonstrated that the slip capacity improved when the prying force was considered, especially in cases where the external force direction ranged between 27.6 and 90 degrees. The maximum observed improvement in slip capacity was a factor of 1.2. Moreover, the slip resistance of joints with thinner flanges was enhanced when prying force effects were accounted for. This increase in slip capacity due to prying force was further corroborated through fine element method (FEM) simulations. Finally, the findings suggest the potential for enhancing joint compactness and slip resistance.

本研究的目的是完善承受剪力和拉力的高强度螺栓连接的抗滑移公式。传统公式通常假定接触面产生的撬力不会对抗滑性产生影响。为了探索撬力对抗滑性的影响,我们根据《公路桥梁规范》和《钢桥高强度拉伸螺栓连接设计建议》进行了试验设计,并改变了螺栓直径、螺栓间距、连接法兰厚度和连接法兰材料等参数。此外,还进行了数值分析,以验证包含撬力的设计方法。试验设计结果表明,考虑撬力后,滑移能力有所提高,尤其是在外力方向介于 27.6 度和 90 度之间的情况下。观察到的最大滑移能力提高了 1.2 倍。此外,在考虑撬力效应时,法兰较薄的接头的抗滑能力也有所提高。精细元素法(FEM)模拟进一步证实了撬力对滑移能力的提高。最后,研究结果表明了提高接头紧凑性和抗滑性的潜力。
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来源期刊
International Journal of Steel Structures
International Journal of Steel Structures 工程技术-工程:土木
CiteScore
2.70
自引率
13.30%
发文量
122
审稿时长
12 months
期刊介绍: The International Journal of Steel Structures provides an international forum for a broad classification of technical papers in steel structural research and its applications. The journal aims to reach not only researchers, but also practicing engineers. Coverage encompasses such topics as stability, fatigue, non-linear behavior, dynamics, reliability, fire, design codes, computer-aided analysis and design, optimization, expert systems, connections, fabrications, maintenance, bridges, off-shore structures, jetties, stadiums, transmission towers, marine vessels, storage tanks, pressure vessels, aerospace, and pipelines and more.
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