Continuous Bracing Requirements for Constrained-Axis Torsional Buckling

M. Denavit, William P. Jacobs, T. Helwig
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Abstract

The design of floor and roof framing members is typically controlled by flexural demands; however, if a member serves as a chord or collector it can also be subjected to significant axial compression. Continuous restraint provided by the floor or roof diaphragm is commonly assumed in design to provide adequate bracing of connected wide-flange members against minor-axis flexural buckling; however, these members are still susceptible to major-axis flexural buckling and potentially to torsional buckling about a constrained axis located at the top flange. In addition to the lateral restraint, floor and roof decking systems can also provide continuous torsional restraint through their flexural stiffness and strength. This restraint can be used to increase the calculated constrained-axis torsional buckling strength or inhibit the mode altogether. In this paper, the specific case of a wide-flange steel beam-column with both lateral and torsional restraint located at the top flange is investigated and torsional bracing requirements are derived. The focus of the study is on continuous torsional bracing and its effect on the constrained-axis torsional buckling mode. The requirements are illustrated through a design example and a parametric study is performed examining typical floor and roof decking system configurations, identifying cases where improved design efficiency can be achieved.
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约束轴扭转屈曲的连续支撑要求
楼板和屋顶框架构件的设计通常受抗弯曲要求的控制;但是,如果构件用作弦杆或集力杆,则也会受到很大的轴向压缩。在设计中,通常假定由楼板或屋顶隔墙提供的连续约束可为连接的宽翼缘构件提供足够的支撑,以防止小轴弯曲屈曲;但是,这些构件仍然容易受到大轴弯曲屈曲的影响,并有可能围绕位于顶部翼缘的约束轴发生扭转屈曲。除了横向约束外,楼板和屋顶装饰系统还可以通过其抗弯刚度和强度提供持续的扭转约束。这种约束可用于提高计算出的约束轴扭转屈曲强度或完全抑制该模式。本文研究了宽翼缘钢梁-柱的具体情况,其横向和扭转约束均位于上翼缘,并得出了扭转支撑要求。研究的重点是连续扭转支撑及其对约束轴扭转屈曲模式的影响。通过一个设计实例对要求进行了说明,并对典型的楼板和屋顶装饰系统配置进行了参数研究,确定了可提高设计效率的情况。
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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