Influence of Fastener Stiffness and Damping on Vibration Transfer Characteristics of Urban Railway Bridge Lines Using Vibration Power Flow Method
Abstract
:1. Introduction
2. Theoretical Analysis Model and Calculation Method
2.1. Establishment of Vehicle Model and Determination of Parameters
2.2. Finite-Element Model of Track–Box Girder Bridge
2.3. Method for Calculating Vibration Power Flow
3. Vibration Transmission Characteristics of Urban Track Transit Bridge Lines
3.1. Vibration Energy Transfer Characteristics of Integral Ballast Bed Damping Track
3.2. Effect of Fastener Parameters on System Power Flow Characteristics
3.2.1. Effect of Fastener Stiffness on Power Flow Transmission Characteristics
3.2.2. Impact of Fastener Damping on Power Flow Transmission Characteristics
4. Vertical Vibration Transmission Characteristics of Urban Track Transit Integral Ballast Bed–Box Girder Bridge
4.1. Analysis of Transmission Characteristics Based on Average Vibration Energy Level
4.2. Impact of Fastener Parameters on the Power Flow Transfer Rate of the Entire System
5. Conclusions
- (1)
- The vibration energy caused by train operation in the low-frequency band is mainly concentrated in the integral ballast bed and the bridge roof and bottom plate of the box girder bridge. Most of the vibration energy will accumulate in the ballast bed. The vibration energy in the middle- and high-frequency band is mainly concentrated in the track position.
- (2)
- The fastener system, as the main vibration reduction component of the ordinary integral ballast, has a greater impact on the power flow in the low frequency range. Strategically reducing the stiffness of fasteners can effectively attenuate the transmission of low-frequency vibrations to the bridge, consequently leading to a reduction in the low-frequency vibrations experienced by the bridge structure. In the range of middle and low frequency, the accumulation of vibration energy of ballast decreases with the increase in damping of the fastener. However, with the increase in frequency, the accumulation state of vibration energy of the ballast bed and bridge will be intensified.
- (3)
- The fastener is the vibration reduction component of the ordinary integral ballast bed. In order to reduce the vibration and noise of the bridge on the bridge line, it is recommended to set the stiffness and damping of the fastener to 40 kN/mm and 50 kN·s/m, respectively.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Degrees of Freedom | Hang Down | Rise and Fall | Nods |
---|---|---|---|
Train body | Zc | βc | |
Front bogie | Zt1 | βt1 | |
Rear bogie | Zt2 | βt2 | |
First wheelset | Zw1 | - | βw1 |
Second wheelset | Zw2 | - | βw2 |
Third wheelset | Zw3 | - | βw3 |
Fourth wheelset | Zw4 | - | βw4 |
Parameters | Numerical Value |
---|---|
Body mass/kg | 4.566 × 104 |
Height of vehicle center from track surface/m | 1.852 |
Vehicle fixing distance/m | 15.7 |
Quality of wheelsets/(kg·m2) | 1,985,110 |
Fixed wheelbase/m | 1093 |
Framing quality/kg | 2.5 |
Primary longitudinal/transverse/vertical damping | 2081 |
Two-system vertical/transverse/vertical damping (Ns/m) | 0/0/10,626 |
Axlebox spring longitudinal/transverse stiffness | 0/2.9 × 104/1.1 × 104 |
Wheel radius/m | 0.42 |
Traction tie rod longitudinal stiffness (N/m) | 4.16 × 106 |
Height of the upper plane of the gas spring from the track surface/m | 0.896 |
Torsion bar spring stiffness (N/m) | 2.5 × 106 |
Track Component | Cell Type | Correlation Parameter | Numerical Value |
---|---|---|---|
Track | Beam188 | Cross-sectional moment of inertia/(m4) | 2.1 × 1011 |
Elastic modulus/(Pa) | 3.215 × 105 | ||
Poisson’s ratio | 0.3 | ||
Fastener | Combin14 | Linear density/(kg·m−1) | 60.64 |
Stiffness/(N·m−1) | 4 × 107 | ||
Damp/(N·s·m−1) | 2.26 × 104 | ||
Integrated ballast bed | Solid45 | Density/(kg·m−3) | 2251 |
Elastic modulus/GPa | 21 | ||
Bridge | Shell63 | Elastic modulus/Pa | 3 × 1010 |
Poisson’s ratio | 0.25 | ||
Density/(kg·m−3) | 2500 |
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Cao, X.; Yang, L.; Li, P.; Xu, J.; Zhang, X. Influence of Fastener Stiffness and Damping on Vibration Transfer Characteristics of Urban Railway Bridge Lines Using Vibration Power Flow Method. Appl. Sci. 2023, 13, 12543. https://doi.org/10.3390/app132312543
Cao X, Yang L, Li P, Xu J, Zhang X. Influence of Fastener Stiffness and Damping on Vibration Transfer Characteristics of Urban Railway Bridge Lines Using Vibration Power Flow Method. Applied Sciences. 2023; 13(23):12543. https://doi.org/10.3390/app132312543
Chicago/Turabian StyleCao, Xingxiao, Li Yang, Peixuan Li, Jiangang Xu, and Xiaoyun Zhang. 2023. "Influence of Fastener Stiffness and Damping on Vibration Transfer Characteristics of Urban Railway Bridge Lines Using Vibration Power Flow Method" Applied Sciences 13, no. 23: 12543. https://doi.org/10.3390/app132312543
APA StyleCao, X., Yang, L., Li, P., Xu, J., & Zhang, X. (2023). Influence of Fastener Stiffness and Damping on Vibration Transfer Characteristics of Urban Railway Bridge Lines Using Vibration Power Flow Method. Applied Sciences, 13(23), 12543. https://doi.org/10.3390/app132312543