Development and Performance Evaluation of a Novel Disc-Buckle Steel Scaffold Joint
Abstract
:1. Introduction
2. An Innovative Disc-Buckle Scaffolding
2.1. Research and Development Strategy
2.2. Research and Development Goals
2.3. The Configuration of the Novel Disc-Buckle Scaffolding
- Insertion and Compression: Initially, insert the horizontal pipe’s end connector into the fixed disc and let it attach tightly to the fixed disc by applying compressive force on it;
- Rotational Alignment: Subsequently, rotate the stopper disc to align the stopper spot by hammering the notches on the stopper disc, ensuring mechanical interlock through the stopper spot;
- Vertical Engagement: Third, engage the stopper disc with the fixed disc;
- Impact Fixation: Finally, secure the assembly by a hammer. The stopper disc is tightly attached to the fixed disc by hammering the striking mouth on the stopper disc.
3. Finite Element Modeling of the Novel Scaffold Joint
3.1. Finite Element Model
3.2. Semi-Rigid Behavior of Scaffold Joint
- Monotonic loading protocol: A displacement-controlled vertical load was applied at the distal end of the horizontal member following ASTM E2126 standards [13], with a constant loading rate of 2 mm/min until structural failure;
- Cyclic loading protocol: Quasi-static reversed cyclic loading was imposed, comprising three complete load–unload cycles at incremental displacement amplitudes of Δ = 20 mm, 40 mm, and 60 mm, respectively.
3.3. Analysis of Horizontal Tensile and Compressive Performance of the Joint
3.4. Shear Performance of Scaffold Joint
4. Conclusions
- Experimental moment–rotation relationships yield an average rotational stiffness of 34.5 kN·m/rad, satisfying the JGJ300-2013 specification threshold of 20 kN·m/rad for temporary support structures [14].
- The wedge-shaped plug-in structure maintains balanced load-transfer pathways. The novel scaffold joint also exhibits symmetric stiffness and bending moment under both positive and negative loading directions.
- The joint has a large tensile and compressive bearing capacity in the horizontal pipe direction. The maximum tensile bearing capacity of the joint in the horizontal direction is about 108 kN, and the maximum compressive bearing capacity is about 70 kN.
- The maximum shear bearing capacity of the joint exceeds 180 kN, and the shear resistance is greater than the buckling critical force of the vertical pipe, meeting the strength requirements.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Item | Detail (mm) | Length (mm) | Elastic Modulus (MPa) | Yield Strength (MPa) |
---|---|---|---|---|
Vertical pipe | φ48.3 × 3.2 | 1500 | 2.09 × 105 | 345 |
Horizontal pipe | φ48.3 × 3.2 | 1500 | 2.09 × 105 | 235 |
Other | - | - | 2.09 × 105 | 345 |
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Wei, S.; Xu, Y.; Yuan, B.; Chen, H.; Zhong, G.; Zhang, G. Development and Performance Evaluation of a Novel Disc-Buckle Steel Scaffold Joint. Buildings 2025, 15, 2034. https://doi.org/10.3390/buildings15122034
Wei S, Xu Y, Yuan B, Chen H, Zhong G, Zhang G. Development and Performance Evaluation of a Novel Disc-Buckle Steel Scaffold Joint. Buildings. 2025; 15(12):2034. https://doi.org/10.3390/buildings15122034
Chicago/Turabian StyleWei, Si, Yu Xu, Bing Yuan, Haofan Chen, Genquan Zhong, and Guoyan Zhang. 2025. "Development and Performance Evaluation of a Novel Disc-Buckle Steel Scaffold Joint" Buildings 15, no. 12: 2034. https://doi.org/10.3390/buildings15122034
APA StyleWei, S., Xu, Y., Yuan, B., Chen, H., Zhong, G., & Zhang, G. (2025). Development and Performance Evaluation of a Novel Disc-Buckle Steel Scaffold Joint. Buildings, 15(12), 2034. https://doi.org/10.3390/buildings15122034