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Mechanical modeling for predicting the axial restraint forces and rotations of steel top and seat angle connections at elevated temperatures

机译:用于预测高温下钢顶部和阀座角连接件的轴向约束力和旋转的机械模型

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摘要

Purpose - This paper aims at developing a mechanical-based model for predicting the thermally induced axial forces and rotation of steel top and seat angles connections with and without web angles subjected to elevated temperatures due to fire. Finite element (FE) simulations and experimental results are used to develop the mechanical model. Design/methodology/approach - The model incorporates the overall connection and column-beam rotation of key component elements, and includes nonlinear behavior of bolts and base materials at elevated temperatures and some major geometric parameters that impact the behavior of such connections when exposed to fire. This includes load ratio, beam length, angle thickness, and gap distance. The mechanical model consists of multi-linear and nonlinear springs that predict each component stiffness, strength, and rotation. Findings - The capability of the FE model to predict the strength of top and seat angles under fire loading was validated against full scale tests. Moreover, failure modes, temperature at failure, maximum compressive axial force, maximum rotation, and effect of web angles were all determined in the parametric study. Finally, the proposed mechanical model was validated against experimental results available in the literature and FE simulations developed as a part of this study. Originality/value - The proposed model provides important insights into fire-induced axial forces and rotations and their implications on the design of steel bolted top and seat angle connections. The originality of the proposed mechanical model is that it requires low computational effort and can be used in more advanced modelling applications for fire analysis and design.
机译:目的-本文旨在建立一个基于机械的模型,以预测在有或没有腹板角受到火势升高的情况下,热诱导的轴向力以及钢顶角和阀座角连接的旋转。有限元(FE)模拟和实验结果用于建立力学模型。设计/方法/方法-该模型结合了关键零部件的整体连接和柱梁旋转,并包括螺栓和基础材料在高温下的非线性行为以及一些主要几何参数,这些参数在暴露于火中时会影响此类连接的行为。这包括负载率,梁长度,角度厚度和间隙距离。力学模型由多线性和非线性弹簧组成,可预测每个组件的刚度,强度和旋转。研究结果-FE模型预测火荷载下顶部和座椅角度强度的能力已通过全面测试得到验证。此外,在参数研究中确定了失效模式,失效温度,最大压缩轴向力,最大旋转以及腹板角度的影响。最后,针对文献中提供的实验结果对提出的力学模型进行了验证,并将有限元模拟作为该研究的一部分进行了开发。原创性/价值-所提出的模型为火灾引起的轴向力和旋转及其对钢制螺栓连接的顶部和阀座角连接的设计提供了重要的见解。所提出的机械模型的独创性在于它需要较少的计算量,并且可以用于更高级的建模应用中进行火灾分析和设计。

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