Study on the Bending–Shear Properties of Concrete-Filled Circular Carbon Fibre Reinforced Plastic Steel Tubes
Abstract
:1. Introduction
2. Experimental Research
2.1. Design and Material Properties
2.2. Loading and Measurement
3. Experimental Results
3.1. Failure Mode
3.1.1. Experimental Phenomenon of Shear Failure
3.1.2. Experimental Phenomenon of Bending Failure
3.1.3. Experimental Phenomenon of Bending Shear Failure
3.2. Test Results and Analysis
3.2.1. Shear–Displacement Curve
3.2.2. Collaborative Performance of Steel Tube and CFRP
4. Finite Element Simulation
4.1. Model of FES
4.2. Comparison between Simulation Results and Experimental Results
4.2.1. Shear–Displacement Curve
4.2.2. Failure Modes
4.3. Full-Process Analysis of Stress
4.3.1. Typical V-D Curve
4.3.2. Stress in Concrete
4.3.3. Stress in the Steel Tube
4.3.4. Stress in the CFRP
5. Calculating Expressions and Expression Validation
6. Conclusions
- According to the shear span ratio, the shear failure of the specimens can be divided into pure shear failure (λ = 0.15), bending shear failure (λ = 0.3~0.75), and bending failure (λ = 1.5).
- Steel tubes and CFRP can work together; as the shear span ratio increases, the bearing capacity and stiffness of the specimen decrease; while an increase in the number of transverse CFRP layers can improve the bearing capacity, it has no significant effect on stiffness.
- ABAQUS was applied to simulate the V-Δ curve and failure mode of the bending–shear specimens, and the simulation results were in good agreement with the experimental results.
- The relevant equation for the bearing capacity of the bending shear members was given, and the calculation results using this equation were in good agreement with the experimental results.
- The coupling effects of the compression bending–shear loads of concrete-filled CFRP steel tubes should be conducted in conditions that are closer to actual working conditions in the future.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Yang, J.; Sheehan, T.; Dai, X.H.; Lam, D. Experimental study of beam to concrete-filled elliptical steel tubular column connections. Thin-Walled Struct. 2015, 95, 16–23. [Google Scholar] [CrossRef]
- Peng, K.; Wang, Q.L.; Shao, Y.B. Test on shearing performance of concrete filled square CFRP-steel tube. Ocean. Eng. 2023, 274, 114065. [Google Scholar] [CrossRef]
- Han, L.H.; Zhong, S.T. Bearing capacity correlation equations of concrete filled steel tubular members under compression torsion and bending torsion. J. Harbin Inst. Archit. Eng. 2004, 27, 32–37. [Google Scholar]
- Nie, J.G. Stiffness and capacity of steel-concrete composite beams with profiled sheeting. Eng. Struct. 2005, 27, 1074–1085. [Google Scholar] [CrossRef]
- Nie, J.G.; Wang, Y.H.; Fan, J.S. Study on seismic behavior of concrete filled steel tube under pure torsion and compression torsion load. Ocean. Eng. 2014, 47, 47–58. [Google Scholar]
- Sundarraja, M.C.; Ganesh, P.G. Investigation on strengthening of CFST members under compression using CFRP composites. J. Reinf. Plast. Compos. 2011, 30, 1251–1264. [Google Scholar] [CrossRef]
- Uenaka, K.; Tsunokake, H. Behavior of Concrete Filled Elliptical Steel Tubular Deep Beam under Bending-Shear. Structures 2017, 10, 10348. [Google Scholar] [CrossRef]
- Ye, Y.; Han, L.H.; Tao, Z.; Guo, S.L. Experimental behavior of concrete-filled steel tubular members under lateral shear loads. J. Constr. Steel Res. 2016, 122, 226–237. [Google Scholar] [CrossRef]
- Wang, Z.B.; Zhou, J.Z. Research on shear performance of rectangular steel tube concrete components. J. Guangxi Univ. 2013, 38, 28–35. (In Chinese) [Google Scholar]
- Zhou, R.; Zhao, J.H.; Wei, X.Y. Analysis on bearing capacity of concrete-filled tubular CFRP-steel stub column under axial compression. Appl. Mech. Mater. 2014, 584–586, 1155–1160. [Google Scholar] [CrossRef]
- Li, S.Q.; Chen, J.F.; Bisby, L.A.; Hu, Y.M.; Teng, J.G. Strain efficiency of FRP jackets in FRP-confined concrete-filled circular steel tubes. Int. J. Struct. Stab. Dyn. 2012, 12, 75–94. [Google Scholar] [CrossRef]
- Yu, F.; Wu, P. Study on stress-strain relationship of FRP-confined concrete filled steel tubes. Adv. Mater. Res. 2011, 163–167, 3826–3829. [Google Scholar] [CrossRef]
- Li, X.; Hu, Z.; Zhou, J.; Shi, Y.; Song, X. Calculation method for axial compressive bearing capacity of CFRP constrained arc-shaped SCFST short columns Structural Engineer. Struct. Eng. 2020, 36, 157–164. [Google Scholar]
- Tao, Z.; Han, L.H.; Wang, L.L. Compressive and flexural behaviour of CFRP repaired concrete-filled steel tubes after exposure to fire. J. Constr. Steel Res. 2017, 63, 1116–1126. [Google Scholar] [CrossRef]
- Yu, Y.; Liu, Z.; Mei, B.; Zhang, Y.F. Research on the influence of slenderness ratio on the eccentric compressive performance of CFRP confined concrete filled steel tube columns Henan Science. Henan Sci. 2020, 38, 586–593. [Google Scholar]
- Du, Y.S.; Zhang, Y.T.; Chen, Z.H.; Yan, J.B.; Zheng, Z.H. Axial compressive performance of CFRP confined rectangular CFST columns using high-strength materials with moderate slenderness. Constr. Build. Mater. 2021, 299, 123912. [Google Scholar] [CrossRef]
- Sundarraja, M.C.; Ganesh Prabhu, G. Finite element modeling of CFRP jacketed CFST members under flexural loading. Thin-Walled Struct. 2011, 49, 1483–1491. [Google Scholar] [CrossRef]
- AL-Mekhlafi, G.M.; AL-Osta, M.A.; Sharif, A.M. Behavior of eccentrically loaded concrete-filled stainless steel tubular stub columns confined by CFRP composites. Eng. Struct. 2020, 205, 110113. [Google Scholar] [CrossRef]
- Chen, C.; Zhao, Y.H.; Zhu, C.Y.; Wei, L. Study on the impact response of concrete filled FRP-steel tube structures. Adv. Mater. Res. 2012, 368–373, 549–552. [Google Scholar] [CrossRef]
- Cai, Z.K.; Wang, D.Y.; Smith Scott, T.; Wang, Z.Y. Experimental investigation on the seismic performance of GFRP-wrapped thin-walled steel tube confined RC columns. Eng. Struct. 2016, 110, 269–280. [Google Scholar] [CrossRef]
- GB/T 228.1-2010; Metallic Materials-Tensile Testing-Part 1: Method of Test at Room Temperature. China Architecture and Building Press: Beijing, China, 2010.
- GB 50010-2010; National Standard of the People’s Republic of China. Code for Design of Concrete Structures. China Architecture and Building Press: Beijing, China, 2010. (In Chinese)
- GB/T 3362-2017; Test Methods for Tensile Properties of Carbon Fiber Multifilament. China Architecture and Building Press: Beijing, China, 2017.
- Han, L.H. Concrete Filled Steel Tubular Structures-Theory and Practice, 3rd ed.; Science Press: Beijing, China, 2016. (In Chinese) [Google Scholar]
- CECS 254:2009; China Association for Engineering Construction Standardization. Technical Standard for Concrete Filled-Steel tube Hybrid Structures. China Architecture & Building Press: Beijing, China, 2009. (In Chinese)
- Bai, H.H. Research on Shear Performance and Design Method of Double Steel Plate Concrete Composite Cylinder Structure; Tsinghua University: Beijing, China, 2022. [Google Scholar]
- Karren, K.W. Corner properties of cold-formed steel shapes. J. Struct. Div. ASCE 1967, 93, 401–432. [Google Scholar] [CrossRef]
- Wang, Q.L.; Guan, C.W.; Zhao, Y.H. Theoretical analysis about concentrically compressed concrete filled hollow CFRP-steel stub columns with circular cross-section. In Proceeding of the 2nd International Conference on Steel and Composite Structures, Seoul, Republic of Korea, 2–4 September 2004; pp. 684–695. [Google Scholar]
- Han, L.H.; Yao, G.H.; Zhao, X.L. Tests and calculations for hollow structural steel (HSS) stub columns filled with self-consolidating concrete (SCC). J. Constr. Steel Res. 2005, 61, 1241–1269. [Google Scholar] [CrossRef]
- Wang, Q.L.; Li, J.; Shao, Y.B.; Zhao, W.J. Flexural performances of square concrete filled CFRP-steel tubes (S-CF-CFRP-ST). Adv. Struct. Eng. 2015, 18, 1319–1344. [Google Scholar] [CrossRef]
No. | L/mm | λ | mt/Layer | ξss | ξcf | ξ |
---|---|---|---|---|---|---|
CFS11 | 66 | 0.15 | 1 | 1.06 | 0.16 | 1.22 |
CFS12 | 102 | 0.3 | 1 | 1.06 | 0.16 | 1.22 |
CFS13 | 138 | 0.45 | 1 | 1.06 | 0.16 | 1.22 |
CFS14 | 210 | 0.75 | 1 | 1.06 | 0.16 | 1.22 |
CFS15 | 390 | 1.5 | 1 | 1.06 | 0.16 | 1.22 |
CFS21 | 66 | 0.15 | 2 | 1.06 | 0.32 | 1.38 |
CFS22 | 102 | 0.3 | 2 | 1.06 | 0.32 | 1.38 |
CFS23 | 138 | 0.45 | 2 | 1.06 | 0.32 | 1.38 |
CFS24 | 210 | 0.75 | 2 | 1.06 | 0.32 | 1.38 |
CFS25 | 390 | 1.5 | 2 | 1.06 | 0.32 | 1.38 |
CFS31 | 66 | 0.15 | 3 | 1.06 | 0.49 | 1.54 |
CFS32 | 102 | 0.3 | 3 | 1.06 | 0.49 | 1.54 |
CFS33 | 138 | 0.45 | 3 | 1.06 | 0.49 | 1.54 |
CFS34 | 210 | 0.75 | 3 | 1.06 | 0.49 | 1.54 |
CFS35 | 390 | 1.5 | 3 | 1.06 | 0.49 | 1.54 |
fy/MPa | fu/MPa | Es/GPa | vs | e’/% |
---|---|---|---|---|
466 | 610 | 206 | 0.28 | 27 |
Cement | Fly Ash | Sand | Gravel | Water |
---|---|---|---|---|
0.6 | 0.4 | 2 | 1.4 | 0.35 |
Thickness (mm) | Ecf (GPa) | εcftr (μe) | εcflr (μe) |
---|---|---|---|
0.111 | 230 | 5500 | 5500 |
No. | Displacement at Yielding/mm | Yielding Load/kN | Displacement at Maximum Load/mm | Maximum Load/kN |
---|---|---|---|---|
CFS11 | 4.93 | 337.61 | 8.22 | 415 |
CFS12 | 5.5 | 305.45 | 12.97 | 333.65 |
CFS13 | 6.13 | 283.9 | 27.78 | 311.2 |
CFS14 | 6.93 | 184.63 | 11.2 | 211.9 |
CFS15 | 5.98 | 132.88 | 25.98 | 183.54 |
CFS21 | 6.43 | 374.5 | 11.03 | 420.55 |
CFS22 | 7.39 | 302.7 | 20.46 | 354.25 |
CFS23 | 7.59 | 291.8 | 30.08 | 319.6 |
CFS24 | 7.06 | 211.9 | 32.2 | 258.16 |
CFS25 | 6.09 | 134.69 | 18.19 | 185.41 |
CFS31 | 6.08 | 429.9 | 452.3 | 8.32 |
CFS32 | 7.34 | 318.8 | 5.29 | 365.15 |
CFS33 | 7.98 | 307.1 | 7.46 | 322.46 |
CFS34 | 6.98 | 223.6 | 19.32 | 277.36 |
CFS35 | 6.32 | 128.71 | 26.13 | 188.36 |
Geometry | Steel | Concrete | CFRP | End Plate |
---|---|---|---|---|
Section (mm) | 120 × 120 | 116 × 116 | Different dimensions | 200 × 200 |
Thickness (mm) | 2 | / | Different dimensions | 20 |
Length (mm) | Different | Different | Different | / |
Type of geometry | Solid | Solid | Shell | Solid |
Mesh type | C3D8R | C3D8R | M3D4 | C3D8R |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wang, Q.; Qin, H.; Peng, K. Study on the Bending–Shear Properties of Concrete-Filled Circular Carbon Fibre Reinforced Plastic Steel Tubes. Materials 2024, 17, 2895. https://doi.org/10.3390/ma17122895
Wang Q, Qin H, Peng K. Study on the Bending–Shear Properties of Concrete-Filled Circular Carbon Fibre Reinforced Plastic Steel Tubes. Materials. 2024; 17(12):2895. https://doi.org/10.3390/ma17122895
Chicago/Turabian StyleWang, Qingli, Haiyu Qin, and Kuan Peng. 2024. "Study on the Bending–Shear Properties of Concrete-Filled Circular Carbon Fibre Reinforced Plastic Steel Tubes" Materials 17, no. 12: 2895. https://doi.org/10.3390/ma17122895
APA StyleWang, Q., Qin, H., & Peng, K. (2024). Study on the Bending–Shear Properties of Concrete-Filled Circular Carbon Fibre Reinforced Plastic Steel Tubes. Materials, 17(12), 2895. https://doi.org/10.3390/ma17122895