Hysteretic Behavior and Ductility Analysis of Circular Recycled Concrete-Filled Steel Tube Columns Under Low-Cycle Loading
Abstract
1. Introduction
2. Experimental Scheme
2.1. Experimental Introduction
2.2. Experimental Design and Procedure
2.3. Experimental Results
3. Numerical Model
3.1. Definition of Numerical Model
3.2. Model Parameters and Calibration
3.3. Model Validation
3.4. Simulation Cases and Procedures
3.5. Analysis of Simulation Results
4. Conclusions
- RACFST columns failed in bending, with local outward bulging at the base, exhibiting full “spindle-shaped” hysteresis loops with no brittle shear failure.
- The peak bearing capacity of RACFST columns was comparable to that of conventional CFST of the same dimensions, while the RACFST specimens showed significantly higher displacement ductility and energy dissipation.
- Increasing the section diameter, reducing D/t, markedly improved ductility and delayed post-peak stiffness degradation, whereas higher concrete strength (C50) raised the peak load by roughly 10–15% per strength class but slightly reduced the yield displacement, thus causing only a marginal change in overall ductility.
- The equivalent viscous damping ratio (ξeq) increased monotonically with drift: at service-level drifts ≤ 1%, ξeq ≈ 0.04–0.08, and at larger drifts of ~2–3%, ξeq reached 0.10–0.18. These values support using stage-dependent damping ≈ 5–8% for service levels and ≈10–18% for strong-motion drifts in seismic design.
- The validated finite element model accurately captured the cyclic response. Parametric simulations indicate that existing CFST design codes can be applied to RACFST columns with only a modest ~3–5% reduction in the core concrete design strength to ensure post-peak stability. While this study demonstrates promising mechanical performance for 100% recycled aggregate CFST columns, future research should assess economic feasibility at scale. Large-scale adoption may face challenges related to consistent supply of high-quality recycled aggregates and potential cost variations due to processing and transportation. A lifecycle cost analysis and regional supply chain evaluation would help clarify the practical implementation potential of this sustainable construction approach.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Hua, B. Research on the Improvement of Seismic Toughness of Underground Station Structures Using Steel Tube Concrete Composite Columns. Civ. Eng. Manag. News 2025, 42, 18–29. [Google Scholar]
- Yang, X.; Zhao, X.-Y.; Wu, B.; Chen, G.-M. Cyclic behavior of recycled-lump-concrete-filled GFRP tubular columns: Experimental investigation and numerical modeling. Structures 2023, 53, 1489–1505. [Google Scholar]
- Wang, C.; Feng, D. Low-cycle reversed loading test study on circular concrete-filled steel tube columns. Water Transport Eng. 2019, 2019, 132–137+176. [Google Scholar]
- Huang, Y.; Zhao, P.; Liu, Z.; Wang, H.; Lu, Y. Experimental research on seismic performance of steel fiber-reinforced recycled concrete-filled circular steel tube columns. J. Build. Eng. 2022, 54, 104683. [Google Scholar]
- Chen, Z.; Mo, L.; Xu, D. Seismic performance of concrete-filled steel tube column-reinforced concrete beam frame using 100% recycled coarse aggregate. Struct. Concr. 2024, 25, 5024–5036. [Google Scholar]
- Han, L.-H.; Hou, C.; Xu, C.-Y. Behaviour of recycled aggregate concrete-filled stainless steel tubular columns subjected to lateral monotonic and cyclic loading. Eng. Struct. 2023, 293, 116663. [Google Scholar] [CrossRef]
- Wei, C.; Wang, Y.; Fang, Y.; Zhou, X.; Geng, Y. Seismic behaviour of concrete-filled steel tubular columns with 100% recycled coarse and fine aggregates: Experiments and modeling. Eng. Struct. 2025, 344, 121294. [Google Scholar]
- Guo, Y.; Wang, Y.; Wang, R.; Zhao, H.; Wang, W.-D.; Chen, M.-T. Cyclic response of tapered recycled aggregate concrete-filled high-strength double-skin steel tube column. J. Constr. Steel Res. 2026, 236, 109948. [Google Scholar]
- Huang, H.; Wang, H.; Cheng, Y.; Dai, Y.; Zhang, L. Experimental and numerical investigation on strengthening mechanism of rib-reinforced round-over-round RCFDST column jointed with steel beam under cyclic loading. Thin-Walled Struct. 2023, 192, 111049. [Google Scholar]
- Du, Y.; Mohammed, A.; Chen, Z.; Huang, J. Research on Seismic Behavior of CFT-Frame-Buckling Restrained Steel Plate ShearWall Structures Using Recycled Aggregate Concrete. In Proceedings of the 17th East Asian-Pacific Conference on Structural Engineering and Construction (EASEC), Singapore, 27–30 June 2022. [Google Scholar]
- Yu, Y.; Meng, E.; Zhang, X.; Su, Y. Restoring force model of steel-recycled concrete composite frame with infilled recycled block wall. Struct. Des. Tall Spec. Build. 2022, 31, e1944. [Google Scholar]
- Yu, Y.; Meng, E.; Jiang, Y.; Liu, S.; Su, Y. Study on Restoring Force Model of RACFST Frame Infilled with RHB Masonry Wall. Int. J. Steel Struct. 2022, 22, 597–609. [Google Scholar] [CrossRef]
- Zhang, G.; Ma, H.; Xin, A.; Bai, H. Hysteretic behaviors and calculation model of steel reinforced recycled concrete filled circular steel tube columns. Struct. Eng. Mech. 2022, 83, 305–326. [Google Scholar]
- Yang, R.; Ma, H.; Yang, L.; Du, B.; Liu, F. Numerical Analysis and Bearing Capacity Calculation of Steel-Reinforced Recycled Aggregate Concrete-Filled Square Steel Tube Columns Under Low Cyclic Loading. Struct. Des. Tall Spec. Build. 2025, 34, e70060. [Google Scholar]
- EN 1994-1-1; Eurocode 4—Design of Composite Steel and Concrete Structures—Part 1-1: General Rules and Rules for Buildings. European Committee for Standardization (CEN): Brussels, Belgium, 2004.
- GB 50936-2014; Technical Code for Concrete-Filled Steel Tubular Structures. China Architecture & Building Press: Beijing, China, 2014.
- Qiang, J.; Ma, H.; Xi, J.; Zhao, Y. Cyclic loading tests and horizontal bearing capacity of recycled concrete filled circular steel tube and profile steel composite columns. J. Constr. Steel Res. 2022, 199, 107572. [Google Scholar] [CrossRef]
- Liu, X.; Ma, H.; Chen, Y.; Zhao, Y. Seismic damage evaluation of steel reinforced recycled concrete filled circular steel tube composite columns. Earthq. Struct. 2022, 23, 445–462. [Google Scholar]
- Liu, F.; Ma, H.; Fang, L.; Zhao, Y.; Gan, X. Cyclic loading tests and seismic behaviors of steel-reinforced recycled aggregate concrete filled square steel tube composite columns. J. Constr. Steel Res. 2024, 212, 108270. [Google Scholar]
- Elzeadani, M.; Bompa, D.V.; Elghazouli, A.Y. Seismic Performance of Steel Tubes Infilled with Rubberised AAC Materials. In Proceedings of the 11th International Conference on the Behaviour of Steel Structures in Seismic Areas (STESSA), Salerno, Italy, 8–18 July 2024. [Google Scholar]
- Amer, M.; Du, Y.; Chen, Z.; Al-Haaj, M.; Huang, J. Seismic behaviors of CFT-column frame-four-corner bolted connected buckling-restrained steel plate shear walls using ALC/RAC panels. Thin-Walled Struct. 2024, 195, 111365. [Google Scholar]
- Chen, J.; Chen, Z.; Zhang, Y.; Zhen, Z.; Liu, Y.; Zhan, L. Seismic behaviors of tailings and recycled aggregate concrete-filled steel tube columns. Constr. Build. Mater. 2023, 365, 130115. [Google Scholar] [CrossRef]
- Chen, Z.; Amer, M.; Du, Y.; Mashrah, W.A.H.; Zhang, W. Experimental and numerical investigations on cyclic performance of L-shaped-CFT column frame-buckling restrained and unrestrained steel plate shear walls with partial double-side/four corner connections. J. Build. Eng. 2023, 78, 107568. [Google Scholar]
- Amer, M.; Du, Y.S.; Chen, Z.H.; Laqsum, S.A.; Zhang, Y.T. Seismic behavior of concrete-filled steel tubes column frame-buckling restrained steel plate shear walls connected with bolt/weld. Thin-Walled Struct. 2023, 189, 110911. [Google Scholar] [CrossRef]
- Lu, Y.; Zong, S.; Ma, W.; Liu, Z.; Li, P. Research on eccentric-compressive behaviour of steel-fiber-reinforced recycled concrete-filled square steel tube short columns. J. Constr. Steel Res. 2023, 206, 107910. [Google Scholar]
- Yan, G.-Y.; Chen, S.-D.; Xu, L.; Zhang, P.-Q.; Liu, R.-Y. Flexural behavior of recycled brick aggregate geopolymer concrete-filled steel tube members. Structures 2025, 76, 108888. [Google Scholar] [CrossRef]












| Cement Type | Standard Consistency (%) | Fineness (%) | Specific Surface Area (cm2/g) | Density (kg/m3) | Stability | Initial/Final Setting (min) | Compressive Strength 3 d/28 d (MPa) | Flexural Strength 3 d/28 d (MPa) | Loss on Ignition (%) |
|---|---|---|---|---|---|---|---|---|---|
| P.O 42.5R | 28.5 | 4.7 | 3460 | 3043 | Qualified | 142/229 | 26.1/49.4 | 4.97/8.64 | 2.3 |
| Type | Fineness Modulus | Apparent Density (kg/m3) | Loose Bulk Density (kg/m3) | Compacted Bulk Density (kg/m3) | Water Absorption (24 h) (%) | Porosity (%) |
|---|---|---|---|---|---|---|
| Recycled Medium Sand | 3.05 | 2580 | 1170 | 1360 | 9.06 | 47 |
| Gradation (mm) | Apparent Density (kg/m3) | Bulk Density (kg/m3) | Water Absorption (24 h) (%) | Needle/Flake Content (%) | Mud Content (%) | Porosity (%) | Crushing Index (%) |
|---|---|---|---|---|---|---|---|
| 5–20 | 2660 | 1410 | 3.74 | 1.4 | 0.423 | 47 | 13.5 |
| Mix ID | Cement (kg/m3) | Water (kg/m3) | Recycled Coarse Aggregate (kg/m3) | Recycled Fine Aggregate (kg/m3) | Sand Ratio |
|---|---|---|---|---|---|
| C30-RAC | 370 | 165 | 650 | 780 | 0.45 |
| C40-RAC | 400 | 160 | 620 | 760 | 0.40 |
| C50-RAC | 430 | 155 | 600 | 740 | 0.36 |
| C40-NC | 400 | 160 | 0 | 0 | 0.38 |
| Test Block Number | Fcu1/(MPa) | Fcu2/(MPa) | Fcu3/(MPa) | Fcu/(MPa) |
|---|---|---|---|---|
| RACFSTC30-219 | 46.56 | 40.03 | 39.92 | 42.17 |
| RACFSTC40-219 | 63.81 | 63.23 | 61.89 | 62.98 |
| RACFSTC50-219 | 67.21 | 67.59 | 65 | 63.26 |
| FSTC40-219 | 55.69 | 50.63 | 50.63 | 52.32 |
| RACFSTC40-165 | 50.6 | 55.57 | 49.15 | 51.78 |
| Specimen ID | D × t × L (mm) | As (mm2) | Ac (mm2) | ρs | Design Axial Load (kN) | fc (MPa) |
|---|---|---|---|---|---|---|
| RACFSTC30-219-1 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 340.4 | 30 |
| RACFSTC30-219-2 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 340.4 | 30 |
| RACFSTC40-219-1 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 399.9 | 40 |
| RACFSTC40-219-2 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 399.9 | 40 |
| RACFSTC50-219-1 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 459.3 | 50 |
| RACFSTC50-219-2 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 459.3 | 50 |
| RACFSTC40-165-1 | 165 × 4 × 905 | 2023.2 | 19,359.3 | 0.0946 | 253.0 | 40 |
| RACFSTC40-165-2 | 165 × 4 × 905 | 2023.2 | 19,359.3 | 0.0946 | 253.0 | 40 |
| FSTC40-219-1 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 399.9 | 40 |
| FSTC40-219-2 | 219 × 4 × 1200 | 2701.8 | 34,966.7 | 0.0717 | 399.9 | 40 |
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Li, X.; Cao, R.; Meng, Y. Hysteretic Behavior and Ductility Analysis of Circular Recycled Concrete-Filled Steel Tube Columns Under Low-Cycle Loading. Coatings 2025, 15, 1456. https://doi.org/10.3390/coatings15121456
Li X, Cao R, Meng Y. Hysteretic Behavior and Ductility Analysis of Circular Recycled Concrete-Filled Steel Tube Columns Under Low-Cycle Loading. Coatings. 2025; 15(12):1456. https://doi.org/10.3390/coatings15121456
Chicago/Turabian StyleLi, Xingxin, Ruifeng Cao, and Ying Meng. 2025. "Hysteretic Behavior and Ductility Analysis of Circular Recycled Concrete-Filled Steel Tube Columns Under Low-Cycle Loading" Coatings 15, no. 12: 1456. https://doi.org/10.3390/coatings15121456
APA StyleLi, X., Cao, R., & Meng, Y. (2025). Hysteretic Behavior and Ductility Analysis of Circular Recycled Concrete-Filled Steel Tube Columns Under Low-Cycle Loading. Coatings, 15(12), 1456. https://doi.org/10.3390/coatings15121456

