Structural Behavior of RC Column Confined by FRP Sheet under Uniaxial and Biaxial Load
Abstract
:1. Introduction
2. Experimental Program
2.1. Specimen Design
2.2. Material Properities
2.3. Strengthening with FRP Sheet
2.4. Test Set Up and Installment of Equipment
3. Experimental Results
3.1. Failure Mode
3.2. Load-Displacement Relationship
3.3. Load-Carrying Capacity and CFRP Strengthening Efficacy
3.4. Strain of CFRP Sheets and Steel Reinforcements
4. Study on Design Guidelines
4.1. Failure Modes Design Columns According to ACI 440.2R-17
4.2. Design Columns According to Fib Bulletin 14
4.3. Comparison of Experimental Results with Design Guideline Results
5. Conclusions
- (1)
- Both partial and full CFRP wrapping demonstrated effectiveness in improving axial stiffness, load-carrying capacity, and optimization of reinforcement strains:
- Initial axial stiffness of strengthened columns increased up to 17% and 37% for partially and fully CFRP-confined columns in comparison with those of corresponding controlled columns, respectively. As a result, the ultimate axial and lateral displacement of partially CFRP-confined columns increased up to 19% and 53%, and those of fully CFRP-confined columns increased up to 48% and 62%, respectively;
- Load-carrying capacity of strengthened columns increased up to 31% and 33% for partially and fully CFRP-confined columns in comparing with those of corresponding controlled columns, respectively.
- The ultimate strain of horizontal CFRP sheets varied between 0.92% and 1.13%, corresponding to 44–54% of their rupture strain from coupon tests. The difference between the CFRP strain of partial wrap columns and that of full wrap ones was small. The use of horizontal CFRP sheets delayed the yielding of compressive reinforcements and thus increased the stiffness of confined columns. Horizontal CFRP sheets also improved the ultimate strain of stirrups and longitudinal compressive rebars from 1.6 to 2.4 times and 1.4 to 3.8 times, respectively.
- The ultimate strain of vertical CFRP sheets increased with the increase of e/h ratio as well as confined level of concrete, and it varied 0.26% and 0.62%. The use of CFRP sheets delayed the yielding of tension reinforcements, and this effect is bigger with a higher level of confinement.
- (2)
- From the comparison with test results and predicted strengths by code equations, for full confinement columns, safety factors were between 1.87 and 1.97 when using ACI 440.2R-17 Manual [17], similar to those obtained when using Fib Bulletin 14 Guidelines [18], between 1.97 and 2.09. The differences in safety factors between these two design guides were not much, just 5–6%. However, for partially confined columns, the strength prediction is possible only in Fib Bulletin 14 [18] and the safety factors evaluated by using it were from 1.93 to 1.98 for uniaxially loaded columns and from 1.55 to 1.76 for biaxially loaded ones. The safety factors of biaxially loaded columns were 9–21% lower than that of uniaxially loaded columns. Therefore, more studies on this topic are deemed necessary to provide more useful data and analysis so that the design of partially FRP-confined columns can be applied with high confidence.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Grade | Cement kg/m3 | River Sand kg/m3 | Coarse Aggregates kg/m3 | Fine Aggregates kg/m3 | Water L/m3 | Superplasticizer L/m3 | fc,cube Mpa | fsp,cube Mpa | Slump mm |
---|---|---|---|---|---|---|---|---|---|
M40 | 414 | 802 | 788 | 263 | 185 | 4.0 | 49 | 4.5 | 125 |
Impregnation * | CFRP | Longitudinal Rebars | Stirrups | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
fadhesive,u Mpa | Eadhesive Gpa | ffu Mpa | εfu % | tf * mm | Ef Gpa | fu Mpa | fy Mpa | Es Gpa | fuw Mpa | fyw Mpa | Es Gpa | |
Mean | 60 | 3-3.5 | 3579 | 2.08 | 0.166 | 201 | 621 | 350 | 200 | 470 | 303 | 200 |
COV (%) | - | - | 16 | 10 | - | 8 | 3 | 1 | 2 | 2 | 1 | 2 |
Columns | Pu | Pu/Pu0 | δvu | δhxu | δhyu | EA0 | Py | Ep |
---|---|---|---|---|---|---|---|---|
(kN) | (%) | (mm) | (mm) | (mm) | (kN/mm) | (kN) | (kNmm) | |
00-00 | 1819 | 100 | 3.0 | −1.0 | 0.6 | 767 | 1156 | 3234 |
00-25 | 1284 | 71 | 3.7 | −2.8 | 0.7 | 373 | 1077 | 2623 |
00-50 | 1044 | 57 | 4.0 | −2.7 | 0.9 | 347 | 985 | 2593 |
00-2525 | 1025 | 56 | 4.9 | −3.1 | 0.7 | 224 | 963 | 2539 |
00-5050 | 597 | 33 | 5.2 | −1.2 | 3.2 | 190 | 556 | 2125 |
10C50 | 1064 | 58 | 3.8 | −2.8 | 0.9 | 375 | 915 | 2539 |
10C2525 | 1096 | 60 | 5.3 | −1.2 | 2.7 | 255 | 1022 | 3340 |
10C5050 | 625 | 34 | 5.4 | −2.9 | 2.0 | 182 | 583 | 2281 |
1iC25 | 1533 | 84 | 4.4 | −2.8 | 0.8 | 413 | 1402 | 3876 |
1iC50 | 1128 | 62 | 4.7 | −2.9 | 1.2 | 385 | 990 | 3655 |
1iC2525 | 1219 | 67 | 5.5 | −3.3 | 1.1 | 261 | 1137 | 3819 |
1iC5050 | 782 | 43 | 5.6 | −1.5 | 3.4 | 220 | 660 | 2798 |
11C25 | 1704 | 94 | 5.5 | −3.0 | 1.1 | 512 | 1450 | 6576 |
11C50 | 1164 | 64 | 5.7 | −3.4 | 1.0 | 462 | 1079 | 5120 |
Columns | Pu | εstu,A | εstu,B | εswu | εcu | εfhu,A | εfhu,B | εfvu |
---|---|---|---|---|---|---|---|---|
(kN) | (‰) | (‰) | (‰) | (‰) | (‰) | (‰) | (‰) | |
00-00 | 1819 | 2.2 | 1.7 | 2.0 | 3.2 | |||
00-25 | 1284 | −0.7 | 1.9 | 1.3 | 3.4 | |||
00-50 | 1044 | −1.0 | 1.9 | 1.0 | 3.6 | |||
00-2525 | 1025 | −1.5 | 2.5 | 1.2 | 3.1 | |||
00-5050 | 597 | −3.3 | 1.8 | 1.0 | 3.2 | |||
10C50 | 1064 | −0.8 | 2.6 | 1.0 | 3.5 | 2.6 | ||
10C2525 | 1096 | −1.4 | 3.8 | 1.3 | 3.5 | 2.8 | ||
10C5050 | 625 | −1.6 | 3.7 | 1.2 | 3.3 | 3.3 | ||
1iC25 | 1533 | −3.4 | 5.2 | 2.0 | 4.2 | 2.6 | 9.9 | 5.7 |
1iC50 | 1128 | −3.9 | 2.8 | 1.9 | 4.1 | 4.0 | 9.7 | 4.7 |
1iC2525 | 1219 | −4.1 | 4.0 | 2.3 | 4.3 | 4.6 | 9.9 | 3.7 |
1iC5050 | 782 | −6.9 | 6.2 | 1.7 | 3.6 | 4.0 | 9.2 | 5.9 |
11C25 | 1704 | −6.6 | 7.5 | 2.4 | 4.5 | 4.9 | 11.3 | 6.1 |
11C50 | 1164 | −7.1 | 7.0 | 2.4 | 4.2 | 5.8 | 10.9 | 6.2 |
Specimens | Pu (kN) | Safety Factor | |||
---|---|---|---|---|---|
Exp | Fib | ACI | Pu,Exp/Pu,Fib | Pu,Exp/Pu,ACI | |
1iC25 | 1532.9 | 792.9 | - | 1.93 | - |
1iC50 | 1128.2 | 569.0 | - | 1.98 | - |
1iC2525 | 1219.0 | 693.2 | - | 1.76 | - |
1iC5050 | 781.9 | 504.8 | - | 1.55 | - |
11C25 | 1703.8 | 817.0 | 866.4 | 2.09 | 1.97 |
11C50 | 1163.6 | 592.0 | 623.6 | 1.97 | 1.87 |
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Tin, H.-X.; Thuy, N.-T.; Seo, S.-Y. Structural Behavior of RC Column Confined by FRP Sheet under Uniaxial and Biaxial Load. Polymers 2022, 14, 75. https://doi.org/10.3390/polym14010075
Tin H-X, Thuy N-T, Seo S-Y. Structural Behavior of RC Column Confined by FRP Sheet under Uniaxial and Biaxial Load. Polymers. 2022; 14(1):75. https://doi.org/10.3390/polym14010075
Chicago/Turabian StyleTin, Huynh-Xuan, Ngo-Thanh Thuy, and Soo-Yeon Seo. 2022. "Structural Behavior of RC Column Confined by FRP Sheet under Uniaxial and Biaxial Load" Polymers 14, no. 1: 75. https://doi.org/10.3390/polym14010075
APA StyleTin, H. -X., Thuy, N. -T., & Seo, S. -Y. (2022). Structural Behavior of RC Column Confined by FRP Sheet under Uniaxial and Biaxial Load. Polymers, 14(1), 75. https://doi.org/10.3390/polym14010075