屈曲约束支撑的有限元参数研究

P. S., S. S., N. Madhekar, A. F. Ghowsi
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摘要

同心支撑框架(CBF)是一种有效的抗侧荷载体系。它增加了结构系统的刚度和强度。然而,同心支撑在以往地震中的多次失效,引起了人们对其整体抗震性能和极限变形能力的关注。屈曲约束支撑(BRB)已成为抗震钢结构领域中流行的消能装置。BRB在循环性能中吸收大量的能量。通过防止支撑的屈曲,实现了BRB的对称和稳定的滞后曲线,因为它在每个循环中耗散大量的能量。在目前的研究工作中,对混凝土BRB的循环响应进行了数值模拟和预测。通过与实验结果的比较,验证了数值模型的正确性。利用有限元软件ABAQUS进行了数值模拟。屈服芯长为1m ~ 3m,摩擦系数为0 ~ 1。通过参数化研究,探讨了屈服芯长和摩擦系数对混凝土BRB滞回性能的影响。通过对各模型的滞回响应和压缩调整系数的比较,了解了各模型的性能。随着钢芯与混凝土之间摩擦系数的增加,观察到不对称的滞后响应,能量耗散减少。短长度BRB的轴向刚度比长长度BRB高。参数化研究表明,屈服芯的长度和摩擦对brb的循环响应有影响
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Finite Element Parametric Studies on Buckling Restrained Brace
Concentric Braced Frame (CBF) is an efficient lateral load resisting system. It adds stiffness and strength to the structural system. However, the repeated failures of concentric braces in the past earthquakes has raised concern of its overall seismic performance and ultimate deformation capacity. Buckling Restrained Brace (BRB) is becoming popular energy dissipation device in the field of seismic resistant steel structures. BRB absorbs substantial amount of energy during cyclic performance. By preventing the buckling of the brace, a symmetric and stable hysteresis curve of BRB is achieved, as it dissipates high amount of energy in every single cycle. In the present research work, numerical modelling, and prediction of cyclic response of concrete BRB is presented. The numerical model is validated by comparing the results with the previous experimental work. Numerical simulations have been performed using the finite element software ABAQUS. The yielding core length is varied from 1m to 3 m, and the coefficient of friction is varied from 0 to 1. The parametric study is carried out to investigate the influence of yielding core length and coefficient of friction on the hysteretic performance of concrete BRB. The performance of all the numerical models is accessed by comparing their hysteretic response and the compression adjustment factor. With increasing the friction coefficient between the steel core and the concrete, an unsymmetrical hysteretic response is observed, with reduction in energy dissipation. Axial stiffness of short length BRB is found to be higher, as compared to the longer length. From the parametric study, it is revealed that the length of the yielding core and friction impact the cyclic response of BRBs
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