Experimental studies and non-linear finite element analysis of flexural behavior of steel fibre-reinforced concrete under monotonic and repeated cyclic loading

被引:0
作者
P. B. Bhavish Bhat [1 ]
T. M. Swaroop [1 ]
K. Jayanth [1 ]
B. O. Naveen [1 ]
机构
[1] The National Institute of Engineering,Department of Civil Engineering
来源
Discover Civil Engineering | / 1卷 / 1期
关键词
SFRC; Aspect ratio; Monotonic loading; Repeated cyclic loading; FE analyses;
D O I
10.1007/s44290-024-00066-y
中图分类号
学科分类号
摘要
Experimental studies were carried out on beams of size 150 mm × 150 mm × 550 mm, subjected to four-point bending under monotonic and repeated cyclic loading. Hooked-end steel fibres of aspect ratio 50 (50 mm length and 1 mm diameter), at fibre volume fractions—1.0, 1.25, 1.5 and 1.75% for concrete of grade M20 was considered for the study. The load-deflection, moment-curvature and toughness responses were arrived through the tests. Non-linear Finite Element (FE) analysis was carried out for all the tested SFRC beams which were modelled and analyzed using robust and reliable FE tool ANSYS Mechanical APDL 2022 R2. The load-deflection responses arrived through FE analysis were compared and validated with the experimental results. Further the moment-curvature response shown was found to be influenced by the random distribution of steel fibres. This aspect considerably influenced the moment-curvature response under repeated cyclic loading. The ultimate load in flexure was found to be 122%, 133%, 156% and 183% higher for fibre volume fractions of 1.0, 1.25, 1.5 and 1.75%, respectively. Also, the toughness measured was found to be higher by 1993%, 2072%, 1748% and 1833% for fibre volume fractions of 1.0, 1.25, 1.5 and 1.75%, respectively when compared to the plain concrete under monotonic loading. The non-linear FE analysis of SFRC beams were found to be reliable for analyzing the flexural behavior of SFRC members.
引用
收藏
相关论文
共 73 条
  • [1] Liang X(2018)Meso-scale modelling of steel fibre reinforced concrete with high strength Constr Build Mater 2018 187-198
  • [2] Wu C(2020)Investigation of mechanical characteristics and specimen size effect of steel fibres reinforced concrete J Adhes Sci Technol 34 1426-1441
  • [3] Setti F(2016)Assessment of the structural performance of corrosion-affected RC members based on experimental study and probabilistic modeling Eng Struct 127 189-205
  • [4] Ezziane K(2001)The evalution of elastic modulus for steel fiber reinforced concrete Russ J Nondestruct Test 37 152-161
  • [5] Setti B(2022)Investigation of fatigue crack propagation behavior in steel fiber-reinforced ultra-high-performance concrete (UHPC) under cyclic flexural loading Compos Struct 282 49-60
  • [6] Lim S(2018)Experimental investigation of steel fibre-reinforced concrete beams under cyclic loading Int J Adv Struct Eng 10 1390-1397
  • [7] Akiyama M(2021)Effect of mix composition on the mechanical properties of SFRC Constr Build Mater 286 6143-6159
  • [8] Frangopol DM(2021)Flexural performance of fibre reinforced concrete with an optimised spirally deformed steel fibre Int J Eng 34 2930-2937
  • [9] Byung-Wan J(2020)Bending behavior and deflection prediction of high-strength SFRC beams under fatigue loading J Market Res 9 89-95
  • [10] Young-Hyun S(2012)Flexural behaviour of RC beams in fibre-reinforced concrete Compos B Eng 43 46-54