Mode-I fracture of steel fiber reinforced concrete at low temperatures: Characterization with 3D meso-scale modelling

被引:10
作者
Jin, Liu [1 ]
Jia, Likun [1 ]
Zhang, Renbo [1 ]
Yu, Wenxuan [1 ]
Du, Xiuli [1 ]
机构
[1] Beijing Univ Technol, Key Lab Urban Secur, Disaster Engn Minist Educ, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
Steel fiber reinforced concrete; Fracture mechanics; 3D meso -scale model; Low temperature; Toughness; DYNAMIC TENSILE BEHAVIOR; QUASI-BRITTLE FRACTURE; DOUBLE-K CRITERION; MECHANICAL-PROPERTIES; CRACK-PROPAGATION; COMPRESSION; STRENGTH;
D O I
10.1016/j.tafmec.2023.103797
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
To investigate the mode I fracture behavior of SFRC (Steel Fiber Reinforced Concrete) at low temperatures, 3D meso-scale models of SFRC specimens with different steel fiber volume fractions (Vf = 0.0 %, 0.5 %, 1.0 % and 1.5 %) were developed by means of finite element analysis. The corresponding failure patterns as well as fracture properties were obtained by three-point bending simulations at low temperatures. SFRC is regarded as a multiphase material composed of mortar, aggregate, ITZ (Interface Transition Zone) and steel fiber at the mesoscopic scale. The comparison between simulation results and the test results verifies that the meso-scale numerical model could well describe the mechanical behavior of SFRC. The simulation results show that the fracture energy and unstable fracture toughness of SFRC significantly increase with the increase of fiber volume fraction and the decrease of temperature. The characteristic length of SFRC decreases with decreasing temper-ature but increases with increasing fiber volume fraction. The initial fracture toughness is less affected by fiber content while increasing with decreasing temperature. The prediction formulas were proposed which could be used to predict the fracture energy, characteristic length and unstable fracture toughness of SFRC at low tem-perature, respectively.
引用
收藏
页数:15
相关论文
共 55 条
[1]   Bonding Mechanisms and Strength of Steel Fiber-Reinforced Cementitious Composites: Overview [J].
Abdallah, Sadoon ;
Fan, Mizi ;
Rees, David W. A. .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2018, 30 (03)
[2]  
[Anonymous], 1985, MAT STRUCT, V18, P285, DOI [DOI 10.1007/BF02472918, 10.1007/BF02472918]
[3]  
AOKI K., 1990, Tunnelling and underground space technology, V5, P319, DOI [10.1016/0886-7798(90)90126-5, DOI 10.1016/0886-7798(90)90126-5]
[4]  
BAZANT ZP, 1984, J ENG MECH-ASCE, V110, P518
[5]   Experimental evaluation of fiber reinforced concrete fracture properties [J].
Bencardino, F. ;
Rizzuti, L. ;
Spadea, G. ;
Swamy, R. N. .
COMPOSITES PART B-ENGINEERING, 2010, 41 (01) :17-24
[6]   Parametric analysis on compressive strain rate effect of concrete using mesoscale modeling approach [J].
Chen, Hongbing ;
Xu, Bin ;
Wang, Jiang ;
Zhou, Tianmin ;
Nie, Xin ;
Mo, Y. L. .
CONSTRUCTION AND BUILDING MATERIALS, 2020, 246
[7]   Evaluation of fracture energy, toughness, brittleness, and fracture process zone properties for lightweight concrete exposed to high temperatures [J].
Dabbaghi, Farshad ;
Fallahnejad, Hossein ;
Nasrollahpour, Sepideh ;
Dehestani, Mehdi ;
Yousefpour, Hossein .
THEORETICAL AND APPLIED FRACTURE MECHANICS, 2021, 116
[8]  
Du M., 2016, RES SIZE EFFECT CONC
[9]   Pull-out and bond-slip performance of steel fibers with various ends shapes embedded in polymer-modified concrete [J].
Esmaeili, Jamshid ;
Andalibi, Keyvan ;
Gencel, Osman ;
Maleki, Farshid Khosravi ;
Maleki, Vahid Arab .
CONSTRUCTION AND BUILDING MATERIALS, 2021, 271
[10]  
Euro-International Committee for Concrete, 1991, CEB FIP MOD COD 1990