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引用次数: 0

摘要

高强度钢在结构和建筑应用中变得越来越有吸引力,因为它们具有优越的强度重量比,可以导致更轻和优雅的结构。高强度钢的刚度和强度在受火后会降低。高强度钢的火灾后力学性能对评价其残余强度起着至关重要的作用。本文对冷弯高强钢火灾后的力学性能进行了试验研究。进行了一系列的张紧试验。试样取自室温下标称屈服应力为700和900 MPa的冷弯方形空心截面。试样暴露在200 ~ 1000℃的高温下,然后冷却到环境温度,然后进行测试直至失效。得到了冷弯高强钢材料在高温作用下的应力-应变曲线,导出了其杨氏模量、屈服应力(0.2%抗应力)和极限强度等力学性能。实验研究得到的火后滞留系数与文献中已有的预测方程进行了比较。提出了确定高强钢火灾后残余力学性能的新预测方程。结果表明,所提出的预测方程适用于标称屈服应力范围为690 ~ 960 MPa的冷弯和热轧高强度钢材料。
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Post-fire mechanical properties of high strength steels
High strength steels are becoming increasingly attractive for structural and architectural applications due to their superior strength-to-weight ratio which could lead to lighter and elegant structures. The stiffness and strength of high strength steels may reduce after exposure to fire. The post-fire mechanical properties of high strength steels have a crucial role in evaluating the residual strengths of these materials. This paper presents an experimental investigation on post-fire mechanical properties of cold-formed high strength steels. A series of tensile coupon tests has been carried out. The coupon specimens were extracted from cold-formed square hollow sections with nominal yield stresses of 700 and 900 MPa at ambient temperature. The specimens were exposed to various elevated temperatures ranged from 200 to 1000 °C and then cooled down to ambient temperature before tested to failure. Stress-strain curves were obtained and the mechanical properties, namely, Young’s modulus, yield stress (0.2% proof stress) and ultimate strength, of the cold-formed high strength steel materials after exposure to elevated temperatures were derived. The post-fire retention factors that obtained from the experimental investigation were compared with existing predictive equations in the literature. New predictive equations are proposed to determine the residual mechanical properties of high strength steels after exposure to fire. It is shown that the proposed predictive equations are suitable for both cold-formed and hot-rolled high strength steel materials with nominal yield stresses ranged from 690 to 960 MPa.
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