Effect of water-cement ratio on fracture energy based on work of fracture

被引:0
作者
Arianti, A. D. [1 ]
Muin, R. B. [1 ]
Patty, A. H. [2 ]
机构
[1] Univ Mercu Buana, Dept Civil Engn, Jakarta Barat 11650, Dki Jakarta, Indonesia
[2] Univ Katolik Widyakarya Malang, Dept Civil Engn, Jl Bondowoso 2 Malang 2, Malang 65115, Jawa Timur, Indonesia
来源
INTERNATIONAL CONFERENCE ON INNOVATION IN ENGINEERING AND VOCATIONAL EDUCATION 2019 (ICIEVE 2019), PTS 1-4 | 2020年 / 830卷
关键词
D O I
10.1088/1757-899X/830/2/022063
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Concrete is brittle material which generally consists of many micro cracks which are a potential source of crack propagation which leads to possible catastrophic failure and resulting fracture of concrete structures under service loads. The relationship of fracture energy to material properties has not been clearly identified, with most studies showing a relative insensitivity to the water-cement ratio, and concrete cracks propagate mainly along the aggregate-cement interface. This research is an experiment about the effect of water-cement ratio on fracture energy based on the RILEM method. The fracture energy is measured by testing under three bend points with the notch depth ratio is 0.25 and loading rate is 0.05 mm/sec using a closed-loop testing machine to produce load-displacement curve. Concrete used crushed stones with a maximum size of 19 mm which was tested at 56 days of age and has a water-cement ratio (w / cm) of 0.30, 0.40 and 0.6. The correlation between fracture energy and water-cement ratio are insensitive to each other. This can be seen when concrete containing a lower water-cement ratio (0.3) tends to have increased compressive strength but decreases fracture energy.
引用
收藏
页数:7
相关论文
共 12 条
[1]  
[Anonymous], 1991, 2111991 ACIC
[2]  
Badan Standarisasi Nasional, 2012, 76562012 SNI BAD STA, P52
[3]  
Darwin D., 2001, Fracture energy of high-strength concrete
[4]   A comparative study on stress intensity factor-based criteria for the prediction of mixed mode I-II crack propagation in concrete [J].
Dong, Wei ;
Wu, Zhimin ;
Tang, Xuchao ;
Zhou, Xiangming .
ENGINEERING FRACTURE MECHANICS, 2018, 197 :217-235
[5]   Fracture properties of high-strength concrete [J].
Dong, Z ;
Keru, W .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 2001, 13 (01) :86-88
[6]  
Mehta P.K., 2017, CONCRETE MICROSTRUCT
[7]  
Mertol HC, 2008, ACI STRUCT J, V105, P626
[8]  
Recommendation R.D., 1985, MATER STRUCT, V18, P285
[9]  
Shah S., 1995, FRACTURE MECH CONCRE
[10]   FRACTURE-MECHANICAL BEHAVIOR OF AGGREGATE-CEMENT MATRIX INTERFACES [J].
TSCHEGG, EK ;
ROTTER, HM ;
ROELFSTRA, PE ;
BOURGUND, U ;
JUSSEL, P .
JOURNAL OF MATERIALS IN CIVIL ENGINEERING, 1995, 7 (04) :199-203