The Influence of Track Irregularity in Front of the Turnout on the Dynamic Performance of Vehicles
Abstract
:1. Introduction
2. Numerical Approach
2.1. Vehicle Model
2.2. Turnout Model
2.3. Wheel-Rail Contact Model
2.4. Vehicle-Turnout-Track Coupling
3. Random Sampling Method
3.1. Latin Hypercube Sampling method
3.2. Calculation Process
4. Result Analysis
4.1. Simulation of Track Irregularity
4.2. Influence of Different Irregularities
4.2.1. Analysis of the Maximum in Dynamic Indicators
4.2.2. Time-Frequency Analysis
4.3. Comprehensive Assessment of Different Irregularities on Vehicle Dynamics
5. Conclusions and Future Works
- The alignment irregularity in front of the turnout mainly affects the wheelset lateral force and lateral acceleration of the vehicle body; the irregularity of the longitudinal level in front of the turnout mainly affects the wheel-rail vertical force, wheel unloading rate, and vertical acceleration of vehicle body, and the irregularities of the cross level in front of the turnout mainly affect the wheel unloading rate and lateral acceleration of the vehicle body.
- The dynamic performance of the vehicle is most sensitive to short-wavelength irregularities in front of the turnout. Short wavelength irregularities are more likely to cause a greater wheel-rail force and wheel load reduction, resulting in a greater safety risk. Thus, special attention should be given to short-wavelength irregularities in front of the turnout during maintenance.
- Another interesting aspect is that the alignment irregularity with a long wavelength (40 m) has a significant effect on the wheelset lateral force and lateral acceleration of the vehicle body, which is caused by the two-point contact between the wheel and rail.
- The frequency range of the effect of the irregularities in front of the turnout on the wheel-rail force, safety indicators, and accelerations of the vehicle are mainly below 200 Hz, 50 Hz, and 20 Hz, respectively, according to the frequency analysis.
- The comprehensive assessment of different irregularities in front of the turnout from time-frequency analysis represents a quantitative and intuitive reflection of the effect of the irregularity on the dynamic indicators, which provide a reference for maintenance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Parameters | Value |
---|---|
Vehicle mass (kg) | 3.376 × 104 |
The rolling moment of inertia of the car body (kg·m2) | 1.094 × 105 |
The nodding moment of inertia of the car body (kg·m2) | 1.655 × 106 |
The yawing moment of inertia of the car body (kg·m2) | 1.561 × 106 |
Bogie frame mass (kg) | 2.400 × 103 |
The rolling moment of inertia of the bogie (kg·m2) | 1.944 × 103 |
The nodding moment of inertia of the bogie (kg·m2) | 1.314 × 103 |
The yawing moment of inertia of the bogie (kg·m2) | 2.400 × 103 |
Wheelset mass (kg) | 1.850 × 103 |
The rolling moment of inertia of the wheelset (kg·m2) | 0.967 × 103 |
The nodding moment of inertia of the wheelset (kg·m2) | 0.123 × 103 |
The yawing moment of inertia of the wheelset (kg·m2) | 0.967 × 103 |
Longitudinal stiffness of primary spring (N/m) | 9.800 × 105 |
Lateral stiffness of primary spring (N/m) | 9.800 × 105 |
Vertical stiffness of primary spring (N/m) | 1.176 × 106 |
Vertical damping of primary spring (N·s/m) | 1.000 × 104 |
Longitudinal stiffness of secondary spring (N/m) | 1.600 × 105 |
Lateral stiffness of secondary spring (N/m) | 1.600 × 105 |
Vertical stiffness of secondary spring (N/m) | 2.400 × 105 |
Lateral damping of secondary spring (N·s/m) | 4.000 × 104 |
Vertical damping of secondary spring (N·s/m) | 2.000 × 104 |
Nominal rolling radius of the wheel (m) | 0.43 |
Distance between the mass centers of the bogies (m) | 17.50 |
Distance of bogie fixed axles (m) | 2.50 |
The Calculation Parameters | Y/Q | ΔQ/Q | |||
---|---|---|---|---|---|
Calculated length range | 0~30 m | 0~70 m | 0~30 m | ||
Calculated frequency range | 0~50 Hz | 0~20 Hz | 0~200 Hz |
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Chang, W.; Cai, X.; Wang, Q.; Tang, X.; Sun, J.; Yang, F. The Influence of Track Irregularity in Front of the Turnout on the Dynamic Performance of Vehicles. Appl. Sci. 2022, 12, 4169. https://doi.org/10.3390/app12094169
Chang W, Cai X, Wang Q, Tang X, Sun J, Yang F. The Influence of Track Irregularity in Front of the Turnout on the Dynamic Performance of Vehicles. Applied Sciences. 2022; 12(9):4169. https://doi.org/10.3390/app12094169
Chicago/Turabian StyleChang, Wenhao, Xiaopei Cai, Qihao Wang, Xueyang Tang, Jialin Sun, and Fei Yang. 2022. "The Influence of Track Irregularity in Front of the Turnout on the Dynamic Performance of Vehicles" Applied Sciences 12, no. 9: 4169. https://doi.org/10.3390/app12094169
APA StyleChang, W., Cai, X., Wang, Q., Tang, X., Sun, J., & Yang, F. (2022). The Influence of Track Irregularity in Front of the Turnout on the Dynamic Performance of Vehicles. Applied Sciences, 12(9), 4169. https://doi.org/10.3390/app12094169