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冲击荷载与火灾联合作用下SFRC梁的力学行为
引用本文:张仁波,金浏,杜修力,窦国钦.冲击荷载与火灾联合作用下SFRC梁的力学行为[J].爆炸与冲击,2019,39(9):60-72.
作者姓名:张仁波  金浏  杜修力  窦国钦
作者单位:北京工业大学城市与工程安全减灾教育部重点实验室,北京,100124
基金项目:国家自然科学基金(51822801);国家重点基础研究发展计划(973计划)(2015CB058000);国家重点研发计划专项(2016YFC0701100)
摘    要:为了探究冲击荷载与火灾联合作用下钢纤维混凝土(steel fiber reinforced concrete, SFRC)梁的力学性能,联合应用高性能落锤试验系统、四点弯曲实验装置与装配式电炉开展了4根SFRC梁的冲击实验与高温恒载实验,观察了其破坏模式并记录了跨中位移和钢筋应变的时程曲线,探讨了冲击损伤SFRC梁的抗火性能。此外,在实验研究的基础上,考虑材料的应变率强化效应及温度软化效应,建立数值模型,首先对梁进行冲击加载模拟,并以冲击模拟结果为初始状态,采用热-力“顺序”耦合方法,对冲击加载与高温恒载联合作用下SFRC梁的力学行为进行了三维宏观有限元数值模拟。同时,考虑混凝土内部结构非均质性的影响,采用类似步骤,开展了细观模拟。宏/细观模拟结果与实验结果的良好吻合验证了本文数值方法的合理性与有效性,并体现了细观方法的优越性。研究发现,冲击能量较小时,SFRC梁在冲击荷载作用下,尽管局部混凝土开裂,梁整体残余变形较小,抗火性能有一定程度的下降;随着钢纤维掺量增大,混凝土基体抗剪强度增大,SFRC梁在冲击荷载作用下的开裂形态由弯剪裂缝并存向以弯曲裂缝为主转变;冲击损伤SFRC梁在高温恒载作用下裂缝分布较为集中,且发生脆性破坏。

关 键 词:钢纤维混凝土梁  冲击荷载  火灾  跨中位移  有限元模拟
收稿时间:2018-05-30

Mechanical behavior of SFRC beams subjected to both impact and fire loadings
ZHANG Renbo,JIN Liu,DU Xiuli,DOU Guoqin.Mechanical behavior of SFRC beams subjected to both impact and fire loadings[J].Explosion and Shock Waves,2019,39(9):60-72.
Authors:ZHANG Renbo  JIN Liu  DU Xiuli  DOU Guoqin
Institution:Key Laboratory of Urban Security and Disaster Engineering, Ministry of Education, Beijing University of Technology, Beijing 100124, China
Abstract:To explore the mechanical behavior of SFRC beams subjected to both impact and fire loadings, 4 beams were tested with high-performance drop-weight test system, four point bending test machine and assembled electric furnace. The beams were firstly subjected to impact loadings and then exposed to fire with a constant load. During the test process, the crack patterns of beams were observed while the time histories of mid-span deflections and rebar strain were recorded. Then, the fire resistance of these beams was discussed. Based on the experiment, three-dimensional macroscopic finite element numerical model considering the effects of strain rate and high temperature was established. The impact loading process was simulated firstly; and then taking simulation results as the initial state, SFRC beams subjected to both fire and constant loading were simulated with a sequentially coupled thermal-stress analysis method. Moreover, considering the heterogeneity of concrete’s internal structure, a meso-scale simulation was also conducted with the procedures similar to that in macroscopic simulation. Good agreement between both the macro-/meso-scale simulation results and the test results illustrates the rationality and effectiveness of the present numerical analysis methods. The advantages of mesoscopic model were indicated through the comparison of macro-/meso-scopic results. It has been found that when the impact energy is low, the local concrete is cracked but a small overall deformation is remained. Nevertheless, this degrades the fire resistance of SFRC beams to some ex-tent. When the steel fiber dosage increases, resulting in an increasing shear strength of concrete matrix, the coexistence phenomenon of bending and shear cracks of beams under the impact load is changed to bending cracks as a dominant. Moreover, when subjected to elevated temperatures with a constant load, the distribution of cracks on the impact-damaged SFRC beams is relatively concentrated and a brittle failure occurs.
Keywords:steel-fiber reinforced concrete beam  impact loading  fire  mid-span displacement  finiteelement simulation
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