Feasibility of Recycled Aggregate Concrete in a Novel Anchoring Connection for Beam-to-Concrete-Filled Steel Tube Joints
Abstract
:1. Introduction
2. Experimental Program
2.1. Specimens
2.2. Materials
2.3. Experimental Setup
3. Experimental Results
3.1. Failure Modes
3.2. Load–Displacement Curves
3.3. Key Experimental Results
3.4. Strain Distributions of CFST
4. Discussions
4.1. Effect of Anchoring Type and Configurations
4.2. Effect of Plate Thickness
4.3. Effect of Concrete Type
5. Prediction for the Anchorage Strength of the Connecting Plate
5.1. Connecting Plate with Holes
5.2. Connecting Plate with Notches
5.3. Connecting Plate with Rebars
5.4. Verifications
6. Conclusions
- (1)
- Mechanical properties of recycled aggregate concrete are similar to those of natural aggregate concrete with the same mixtures. Using recycled aggregate for a CFST does not obviously affect the pullout behavior of plates, demonstrating the feasibility of using RAC for composite structures.
- (2)
- The failure modes of the specimens greatly depend on the anchoring types and configurations. Plates with rebars exhibit higher strength and ductility than the plates with holes or notches, so it is a recommended anchoring method for beam-to-CFST joints.
- (3)
- With the same void area, plates with two small holes have higher strength than plates with one large hole do, likely due to the increase in bearing area. The effect of the notch dimension (20 mm × 40 mm vs. 40 mm × 20 mm, same area but different direction) on the anchorage strength is not significant, whereas the ductility is slightly influenced. The diameter of the rebars greatly affects the anchorage strength and ductility of the connecting plates.
- (4)
- Because the bearing area is proportional to the plate thickness, thickness has a significant influence on the pullout behavior of the connecting plates with holes and notches. However, the behavior of the plates with rebars is not affected by the plate thickness.
- (5)
- Deformations of the connecting plate and CFST are negligible, and their stiffness could be assumed to be infinity in the determination of the initial stiffness of a beam-to-column joint using the component method.
- (6)
- The proposed formulas could reasonably predict the anchorage strength of the connecting plates with holes and notches. The current method for perfobond rib connectors somewhat underestimates the anchorage strength of the connecting plates with rebars, likely due to the lack of consideration of the confining effect in CFSTs, which is a major difference compared with that in perfobond rib connectors.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Specimen | Configuration | T (mm) | RA Replacement (%) | Remark |
---|---|---|---|---|
A1-T6-F100 | 1 Φ 50 hole | 6 | 100 | With holes |
A1-T10-F100 | 1 Φ 50 hole | 10 | 100 | |
A1-T10-F0 | 1 Φ 50 hole | 10 | 0 | |
A2-T6-F100 | 2 Φ 35 hole | 6 | 100 | |
A2-T10-F100 | 2 Φ 35 hole | 10 | 100 | |
A2-T10-F0 | 2 Φ 35 hole | 10 | 0 | |
B1-T6-F100 | 2□20 × 40 notch | 6 | 100 | With notches |
B1-T10-F100 | 2□20 × 40 notch | 10 | 100 | |
B1-T10-F0 | 2□20 × 40 notch | 10 | 0 | |
B2-T6-F100 | 2□40 × 20 notch | 6 | 100 | |
B2-T10-F100 | 2□40 × 20 notch | 10 | 100 | |
B2-T10-F0 | 2□40 × 20 notch | 10 | 0 | |
C-r8-T6-F100 | 2 Φ 8 rebar | 6 | 100 | With rebars |
C-r8-T10-F100 | 2 Φ 8 rebar | 10 | 100 | |
C-r8-T10-F0 | 2 Φ 8 rebar | 10 | 0 | |
C-r12-T6-F100 | 2 Φ 12 rebar | 6 | 100 | |
C-r12-T10-F100 | 2 Φ 12 rebar | 10 | 100 | |
C-r12-T10-F0 | 2 Φ 12 rebar | 10 | 0 |
Replacement Ratio of RA (%) | Mass per Unit Volume (kg/m3) | fc′ (MPa) | Ec′ (GPa) | |||||
---|---|---|---|---|---|---|---|---|
Cement | Sand | Natural CA | Recycled CA | Water | Water Reducer | |||
0% | 425 | 762 | 1018 | 0 | 175.5 | 8.5 | 50.3 | 49.4 |
100% | 425 | 762 | 0 | 1018 | 175.5 | 8.5 | 49.3 | 41.5 |
Type | Es (GPa) | fy (MPa) | fu (MPa) |
---|---|---|---|
Steel plate | 211 | 328 | 444 |
Steel rebar | 209 | 453 | 672 |
Specimen | Py (kN) | Δy (mm) | Pu (kN) | Δu (mm) | DI | Np (kN) | Np/Pu |
---|---|---|---|---|---|---|---|
A1-T6-F100 | 36.4 | 1.14 | 62.6 | 9.3 | 82.5 | 60.6 | 1.03 |
A1-T10-F100 | 54.5 | 1.57 | 93.6 | 3.3 | 45.2 | 101.0 | 1.08 |
A1-T10-F0 | 70.4 | 1.51 | 89.8 | 3.4 | 22.3 | 103.2 | 1.15 |
A2-T6-F100 | 62.3 | 1.56 | 105.9 | 6.4 | 20.1 | 84.8 | 0.80 |
A2-T10-F100 | 102.4 | 1.53 | 142.7 | 2.5 | 8.0 | 141.4 | 0.99 |
A2-T10-F0 | 109.8 | 2.01 | 151.5 | 2.5 | 14.0 | 144.4 | 0.95 |
B1-T6-F100 | 11.7 | 0.67 | 24.4 | 4.4 | 38.8 | 28.0 | 1.15 |
B1-T10-F100 | 48.0 | 1.29 | 73.8 | 4.4 | 13.0 | 60.3 | 0.82 |
B1-T10-F0 | 31.6 | 1.15 | 59.2 | 4.6 | 19.5 | 61.6 | 1.04 |
B2-T6-F100 | 12.6 | 0.76 | 28.4 | 3.6 | 25.8 | 28.0 | 0.99 |
B2-T10-F100 | 37.2 | 0.85 | 58.7 | 4.3 | 26.4 | 60.3 | 1.03 |
B2-T10-F0 | 36.3 | 0.55 | 55.7 | 4.8 | 43.9 | 61.6 | 1.11 |
C-r8-T6-F100 | 58.0 | 1.80 | 89.4 | 5.9 | 7.9 | 71.9 | 0.80 |
C-r8-T10-F100 | 63.6 | 2.27 | 95.6 | 6.3 | 6.4 | 71.9 | 0.75 |
C-r8-T10-F0 | 26.9 | 2.02 | 69.4 | 4.8 | 9.4 | 72.0 | 1.04 |
C-r12-T6-F100 | 110.1 | 3.58 | 168.0 | 25.2 | 31.1 | 160.0 | 0.95 |
C-r12-T10-F100 | 110.8 | 3.64 | 160.4 | 38.0 | 30.1 | 160.0 | 1.00 |
C-r12-T10-F0 | 107.6 | 5.10 | 157.0 | 21.8 | 15.2 | 160.1 | 1.02 |
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Su, J.; Zhao, Q.; Cai, L.; Li, X.; Pu, H.; Dai, W.; Zhang, J.; Lu, D.; Liu, F. Feasibility of Recycled Aggregate Concrete in a Novel Anchoring Connection for Beam-to-Concrete-Filled Steel Tube Joints. Buildings 2024, 14, 1178. https://doi.org/10.3390/buildings14041178
Su J, Zhao Q, Cai L, Li X, Pu H, Dai W, Zhang J, Lu D, Liu F. Feasibility of Recycled Aggregate Concrete in a Novel Anchoring Connection for Beam-to-Concrete-Filled Steel Tube Joints. Buildings. 2024; 14(4):1178. https://doi.org/10.3390/buildings14041178
Chicago/Turabian StyleSu, Jianhua, Qian Zhao, Li’ao Cai, Xiaohui Li, Hongyin Pu, Wei Dai, Jian Zhang, Deng Lu, and Feng Liu. 2024. "Feasibility of Recycled Aggregate Concrete in a Novel Anchoring Connection for Beam-to-Concrete-Filled Steel Tube Joints" Buildings 14, no. 4: 1178. https://doi.org/10.3390/buildings14041178
APA StyleSu, J., Zhao, Q., Cai, L., Li, X., Pu, H., Dai, W., Zhang, J., Lu, D., & Liu, F. (2024). Feasibility of Recycled Aggregate Concrete in a Novel Anchoring Connection for Beam-to-Concrete-Filled Steel Tube Joints. Buildings, 14(4), 1178. https://doi.org/10.3390/buildings14041178