Experimental Study on Hysteretic Behavior of Concrete- Filled Square Carbon Fiber-Reinforced Polymer Steel Tubular Beam-Column

International Concrete Abstracts Portal

The International Concrete Abstracts Portal is an ACI led collaboration with leading technical organizations from within the international concrete industry and offers the most comprehensive collection of published concrete abstracts.

  


Title: Experimental Study on Hysteretic Behavior of Concrete- Filled Square Carbon Fiber-Reinforced Polymer Steel Tubular Beam-Column

Author(s): Qing-li Wang, Kuan Peng, Yi-Huan Guo, and Yong-bo Shao

Publication: Structural Journal

Volume: 119

Issue: 3

Appears on pages(s): 67-80

Keywords: finite element simulation; hysteretic behavior; middle section lateral force-deflection curve; square carbon fiber-reinforced polymer (CFRP) concrete-filled steel tube

DOI: 10.14359/51734491

Date: 5/1/2022

Abstract:
To study the hysteretic behavior of concrete-filled square carbon fiber-reinforced polymer (CFRP) steel tubular (S-CF-CFRP-ST) beam-columns under different influence factors, 12 specimens were designed, and the failure mode, middle section lateral force-deflection (P-Δ) curve, middle section bending moment-curvature (M-ϕ) curve, and middle section deflection-deformation (Δ−Δ′) curve were studied. Using the axial compression ratio and longitudinal CFRP reinforcement coefficient as influencing factors, the effects of the axial compression ratio and longitudinal CFRP reinforcement coefficient on the P-Δ skeleton curve, M-ϕ skeleton curve, strength and stiffness degradation, ductility, cumulative energy consumption, and other indexes were studied. The P-Δ curve and deformation mode of the specimens were simulated by ABAQUS, and the effects of the axial compression ratio, slenderness ratio, and other main parameters on the hysteretic performance of the members were studied. The test results show that CFRP has good lateral restraint and longitudinal reinforcement effect on concrete-filled steel tubular (CFST) columns, and the local buckling of CFST is delayed. The P-Δ curve and M-ϕ curve of all specimens are full. In addition, the steel tube and CFRP have good synergy in both longitudinal and transverse directions. The change of the axial compression ratio and longitudinal CFRP reinforcement coefficient has no significant effect on the strength degradation. The increase of the axial compression ratio and longitudinal CFRP reinforcement coefficient can improve the flexural capacity and stiffness of the specimens, and slow down the stiffness degradation, but reduce the ductility and cumulative energy consumption of the specimens. The finite element software ABAQUS is used to simulate the P-Δ curve and deformation mode of the specimens. It is found that the simulation results are in good agreement with the experimental results. Based on the model analysis of the main parameters, it is found that the increase of steel yield strength and CFRP layers can improve the bearing capacity of the specimens, and the axial compression ratio has the most significant effect on the specimens.

Related References:

1. Li, D. S.; Du, F. Z.; Chen, Z.; and Wang, Y. L., “Identification of Failure Mechanisms for CFRP-Confined Circular Concrete-Filled Steel Tubular Columns through Acoustic Emission Signals,” Smart Structures and Systems, V. 18, No. 3, 2016, pp. 525-540. doi: 10.12989/sss.2016.18.3.525

2. Li, N.; Lu, Y.; Li, S.; and Liu, L., “Slenderness Effects on Concrete-Filled Steel Tube Columns Confined with CFRP,” Journal of Constructional Steel Research, V. 143, 2018, pp. 110-118.

3. Che, Y.; Wang, Q. L.; and Shao, Y. B., “Compressive Performances of the Concrete Filled Square CFRP-Steel Tube (C-CFRP-CFST),” Advanced Steel Construction, V. 8, No. 4, 2012, pp. 331-358.

4. Park, J. W.; Hong, Y. K.; Hong, G. S.; Kim, J. H.; and Choi, S. M., “Design Formulas of Concrete Filled Circular Steel Tubes Reinforced by Carbon Fiber Reinforced Plastic Sheets,” Procedia Engineering, V. 14, 2011, pp. 2916-2922. doi: 10.1016/j.proeng.2011.07.367

5. Sundarraja, M. C., and Prabhu, G. G., “Finite Element Modeling of CFRP Jacketed CFST Members under Flexural Loading,” Thin-Walled Structures, V. 49, No. 12, 2011, pp. 1483-1491. doi: 10.1016/j.tws.2011.07.008

6. Liu, Y., and Dong, Z., “Experimental Study on Torsional Behavior of Circular CFRP Concrete Filled Steel Tube,” Journal of Civil Engineering, V. 42, No. 11, 2009, pp. 91-101.

7. Ling, Z. G., and Chen, D., “Experimental Study on Torsional Behavior of CFRP Square Section Concrete Filled Steel Tubular Members,” Journal of Building Structures, V. 38, 2017, pp. 478-484.

8. Han, L. H., and Zhong, S. T., “Bearing Capacity Correlation Equations of Concrete Filled Steel Tubular Members under Compression Torsion and Bending Torsion,” Journal of Harbin Institute of Architectural Engineering, V. 27, No. 2, 2004, pp. 32-37.

9. Tao, Z.; Han, L.-H.; and Zhuang, J.-P., “Axial Loading Behavior of CFRP Strengthened Concrete-Filled Steel Tubular Stub Columns,” Advances in Structural Engineering, V. 10, No. 1, 2007, pp. 37-46. doi: 10.1260/136943307780150814

10. Tao, Z.; Han, L.-H.; and Wang, L.-L., “Compressive and Flexural Behaviour of CFRP-Repaired Concrete-Filled Steel Tubes after Exposure to Fire,” Journal of Constructional Steel Research, V. 63, No. 8, 2007, pp. 1116-1126. doi: 10.1016/j.jcsr.2006.09.007

11. Cai, Z. K.; Wang, D. Y.; Smith, S. T.; and Wang, Z. Y., “Experimental Investigation on the Seismic Performance of GFRP-Wrapped Thin-Walled Steel Tube Confined RC Columns,” Engineering Structures, V. 110, 2016, pp. 269-280. doi: 10.1016/j.engstruct.2015.11.043

12. Al Zand, A. W.; Badaruzzaman, W. H. W.; Mutalib, A. A.; and Hilo, S. J., “The Enhanced Performance of CFST Beams Using Different Strengthening Schemes Involving Unidirectional CFRP Sheets: An Experimental Study,” Engineering Structures, V. 128, 2016, pp. 184-198. doi: 10.1016/j.engstruct.2016.09.044

13. Wang, Q. L., and Shao, Y. B., “Flexural Performance of Circular Concrete Filled CFRP-Steel Tubes,” Advanced Steel Construction, V. 11, No. 2, 2015, pp. 127-149.

14. Wang, Q. L.; Qu, S. E.; Shao, Y. B.; and Feng, L. M., “Static Behavior of Axially Compressed Circular Concrete Filled CFRP-Steel Tubular (C-CF-CFRP-ST) Columns with Moderate Slenderness Ratio,” Advanced Steel Construction, V. 12, No. 3, 2016, pp. 263-295.

15. Wang, J. F.; Shen, Q. H.; Wang, F. Q.; and Wang, W., “Experimental and Analytical Studies on CFRP Strengthened Circular Thin-Walled CFST Stub Columns under Eccentric Compression,” Thin-Walled Structures, V. 127, 2018, pp. 102-119. doi: 10.1016/j.tws.2018.01.039

16. Wang, Q.-L.; Li, J.; Shao, Y.-B.; and Zhao, W.-J., “Flexural Performances of Square Concrete Filled CFRP-Steel Tubes (S-CF-CFRP-ST),” Advances in Structural Engineering, V. 18, No. 8, 2015, pp. 1319-1344. doi: 10.1260/1369-4332.18.8.1319

17. Wang, Q.-L.; Zhao, Z.; Shao, Y.-B.; and Li, Q.-L., “Static Behavior of Axially Compressed Square Concrete Filled CFRP-Steel Tubular (S-CF-CFRP-ST) Columns with Moderate Slenderness,” Thin-Walled Structures, V. 110, 2017, pp. 106-122. doi: 10.1016/j.tws.2016.10.019

18. Tao, Z.; Wang, Z.-B.; Han, L.-H.; and Uy, B., “Fire Performance of Concrete-Filled Steel Tubular Columns Strengthened by CFRP,” Steel and Composite Structures, V. 11, No. 4, 2011, pp. 307-324. doi: 10.12989/scs.2011.11.4.307

19. Tao, Z.; Han, L.-H.; and Zhuang, J.-P., “Cyclic Performance of Fire-Damaged Concrete-Filled Steel Tubular Beam-Columns Repaired with CFRP Wraps,” Journal of Constructional Steel Research, V. 64, No. 1, 2008, pp. 37-50. doi: 10.1016/j.jcsr.2007.02.004

20. Alam, M. I.; Fawzia, S.; Zhao, X.-L.; Remennikov, A. M.; Bambach, M. R.; and Elchalakani, M., “Performance and Dynamic Behaviour of FRP Strengthened CFST Members Subjected to Lateral Impact,” Engineering Structures, V. 147, 2017, pp. 160-176. doi: 10.1016/j.engstruct.2017.05.052

21. Al-Zand, A. W.; Badaruzzaman, W. H. W.; Mutalib, A. A.; and Hilo, S. J., “Modelling the Delamination Failure Along the CFRP-CFST Beam Interaction Surface Using Different Finite Element Techniques,” Journal of Engineering Science and Technology, V. 12, No. 1, 2017, pp. 214-228.


ALSO AVAILABLE IN:

Electronic Structural Journal



  

Edit Module Settings to define Page Content Reviewer