Parameters affecting the behaviour of RC beams strengthened in shear and flexure with various FRP systems

被引:27
作者
Sengun, Kadir [1 ]
Arslan, Guray [1 ]
机构
[1] Yildiz Tech Univ, Dept Civil Engn, Istanbul, Turkey
关键词
Carbon fiber reinforced polymer (CFRP); Reinforced concrete; Beams; Glass fiber reinforced polymer (GFRP); Shear strength; Strengthening; REINFORCED-CONCRETE BEAMS; TRANSVERSE STEEL; T-BEAMS; CFRP; CAPACITY; POLYMER; PERFORMANCE; DESIGN; STRIPS; SHEETS;
D O I
10.1016/j.istruc.2022.04.024
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
An experimental investigation was carried out on rectangular RC beams strengthened with FRP in different strengthening forms in shear and flexure. The parameters examined in this study are as follows: The shear span to effective depth ratio (a/d), the number of FRP layers in shear, strengthening form (completely wrapping, U-wrapping, and side-bonding), FRP types (Glass or Carbon), and FRP strips width to spacing ratios (w(f)/s(f)). The experimental results showed that strengthening with FRP enhanced the load-carrying capacity, deflection capacity, initial stiffness, and ductility capacity with respect to the reference beams. Increasing the number of FRP layers in shear did not provide a proportional increase in the contribution of FRP to shear strength. The FRP types, FRP strips width to spacing ratios (w(f)/s(f)), the number of FRP layers in shear, a/d, and strengthening form affect the cracking patterns and loads of tested beams compared to reference beams. In addition, strengthening with FRP could change the failure modes of RC beams from brittle shear failure to more ductile flexural failure. It was also found that the equations used to calculate FRP contribution to shear strength (ACI 440.2R (2017), Fib-TG 9.3 (2001), Khalifa (2002), Triantafillou (1998), Bukhari (2010)) overestimated the FRP contribution and gave unconservative results, especially for U-wrapped and side bonded beams compared to the experimental results.
引用
收藏
页码:202 / 212
页数:11
相关论文
共 77 条
[21]   Experimental study of strengthening for increased shear bearing capacity [J].
Carolin, A ;
Täljsten, B .
JOURNAL OF COMPOSITES FOR CONSTRUCTION, 2005, 9 (06) :488-496
[22]  
Chaallal O., 1998, ASCE J COMPOSITES CO, V2, P111, DOI DOI 10.1061/(ASCE)1090-0268(1998)2:2(111)
[23]   Shear capacity of FRP-strengthened RC beams: FRP debonding [J].
Chen, JF ;
Teng, JG .
CONSTRUCTION AND BUILDING MATERIALS, 2003, 17 (01) :27-41
[24]   Shear capacity of fiber-reinforced polymer-strengthened reinforced concrete beams: Fiber reinforced polymer rupture [J].
Chen, JF ;
Teng, JG .
JOURNAL OF STRUCTURAL ENGINEERING, 2003, 129 (05) :615-625
[25]  
Damnoo DJ, 2016, RES J ENG TECHNOLOGY, V7, P103, DOI [10.5958/2321-581X.2016.00022.2, DOI 10.5958/2321-581X.2016.00022.2]
[26]   Shear strengthening effectiveness with CFF strips [J].
Diagana, C ;
Li, A ;
Gedalia, B ;
Delmas, Y .
ENGINEERING STRUCTURES, 2003, 25 (04) :507-516
[27]   Structural behaviour of RC beams with external flexural and flexural-shear strengthening by FRP sheets [J].
Dong, Jiangfeng ;
Wang, Qingyuan ;
Guan, Zhongwei .
COMPOSITES PART B-ENGINEERING, 2013, 44 (01) :604-612
[28]  
Federation internationale du beton, 2001, FED INT BET B, V14
[29]   Shear Strengthening of RC T-Beams Using Mechanically Anchored Unbonded Dry Carbon Fiber Sheets [J].
Galal, Khaled ;
Mofidi, Amir .
JOURNAL OF PERFORMANCE OF CONSTRUCTED FACILITIES, 2010, 24 (01) :31-39
[30]  
Grace NF, 1999, ACI STRUCT J, V96, P865