Research on the Mechanical Model and Hysteresis Performance of a New Mild Steel-Rotational Friction Hybrid Self-Centering Damper
Abstract
:1. Introduction
2. Basic Structure and Working Principle of MS-SCFD
2.1. Structure of MS-SCFD
2.2. Working Mechanism
2.3. Practical Engineering Application
3. Theoretical Model of the MS-SCFD
3.1. Restoring Force Model of the SCFD
3.2. Restoring-Force Model of the X-Shaped MS Damper
3.3. Restoring-Force Model of the MS-SCFD
4. Finite Element Modeling and Result Verification
4.1. Numerical Model of the MS-SCFD
4.2. Verification of the Theoretical Restoring Model
4.3. Comparison of Hysteresis Curves between the MS-SCFD and the SCFD
5. Parameter Analysis
5.1. Disc Spring Pre-Pressure
5.2. Friction Coefficient
5.3. Mild Steel Thickness
6. Conclusions
- The damper makes up for the limitation of traditional metal yield dampers that cannot dissipate energy at the linear elastic stage with low displacement. Additionally, by incorporating the X-shaped mild steel for energy dissipation, the SCFD can effectively enhance its energy-dissipation performance, addressing the issue of a single energy-dissipation mechanism and insufficient energy consumption in traditional self-centering dampers;
- The hysteresis curve of the MS-SCFD is smooth and plump, exhibiting typical flag characteristics and excellent self-centering performance. The simulation results of the numerical model are essentially consistent with the theoretical results, with a maximum error at crucial performance points of bearing capacity being only 9.46%;
- The equivalent viscous damping coefficient and accumulated energy dissipation of the MS-SCFD can be effectively enhanced by increasing either friction coefficient or mild steel thickness; however, these measures lead to a slight decrease in self-centering performance. On the other hand, raising the pre-pressure on combined disc springs improves the self-centering ability while slightly reducing the energy-dissipation efficiency. Factors such as reset ratio, bearing capacity, and energy dissipation must be comprehensively considered to meet structural seismic performance requirements.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Types of Material Parameters | Non-X-Shaped Mild Steel Parts | X-Shaped Mild Steel |
---|---|---|
Young’s elastic modulus (Gpa) | 210 | 203 |
Yield strength (Mpa) | 690 | 160 |
Tensile strength (Mpa) | 860 | - |
Poisson’s ratio | 0.294 | 0.3 |
Parameter Type | Rin | Rout | H | L | b | h | t |
---|---|---|---|---|---|---|---|
Data (mm) | 102 | 200 | 56.1 | 748 | 300 | 306 | 30 |
Damper Category | SCFD | MS-SCFD | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Fts | Ftu | Ftr | Ftc | Fa | Fb | Fc | Fd | Fe | Ff | ||
∆ = 10 mm | Simulation results (kN) | 615.0 | 1010.1 | 247.1 | 156.7 | 614.8 | 719.8 | 1134.3 | 352.7 | 109.8 | 68.9 |
Theoretical results (kN) | 579.8 | 971.0 | 249.5 | 168.2 | 579.8 | 724.0 | 1065.1 | 343.6 | 103.3 | 74.1 | |
Error (%) | 6.07 | 4.02 | −0.93 | −6.83 | 6.03 | −0.58 | 6.50 | 2.65 | 6.29 | −7.02 | |
∆ = 40 mm | Simulation results (kN) | 614.8 | 2312.7 | 600.3 | 156.8 | 615.5 | 719.8 | 2465.4 | 673.9 | 145.1 | 67.1 |
Theoretical results (kN) | 579.8 | 2262.8 | 581.3 | 168.2 | 579.8 | 724.0 | 2404.0 | 649.7 | 154.3 | 74.1 | |
Error (%) | 6.03 | 2.21 | 3.27 | −6.79 | 6.16 | −0.58 | 2.55 | 3.59 | −5.96 | −9.46 |
Model Definition | Model Number | P (kN) | μ | t (mm) |
---|---|---|---|---|
Benchmark model | D1 | 200 | 0.2 | 30 |
Pre-pressure change | D2 | 150 | 0.2 | 30 |
D3 | 250 | 0.2 | 30 | |
Friction coefficient change | D4 | 200 | 0.1 | 30 |
D5 | 200 | 0.3 | 30 | |
Mild steel thickness change | D6 | 200 | 0.2 | 15 |
D7 | 200 | 0.2 | 45 |
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Wang, D.; Pang, R.; Wang, G.; Fan, G. Research on the Mechanical Model and Hysteresis Performance of a New Mild Steel-Rotational Friction Hybrid Self-Centering Damper. Materials 2023, 16, 7168. https://doi.org/10.3390/ma16227168
Wang D, Pang R, Wang G, Fan G. Research on the Mechanical Model and Hysteresis Performance of a New Mild Steel-Rotational Friction Hybrid Self-Centering Damper. Materials. 2023; 16(22):7168. https://doi.org/10.3390/ma16227168
Chicago/Turabian StyleWang, Debin, Ran Pang, Gang Wang, and Guoxi Fan. 2023. "Research on the Mechanical Model and Hysteresis Performance of a New Mild Steel-Rotational Friction Hybrid Self-Centering Damper" Materials 16, no. 22: 7168. https://doi.org/10.3390/ma16227168
APA StyleWang, D., Pang, R., Wang, G., & Fan, G. (2023). Research on the Mechanical Model and Hysteresis Performance of a New Mild Steel-Rotational Friction Hybrid Self-Centering Damper. Materials, 16(22), 7168. https://doi.org/10.3390/ma16227168