Numerical Analysis and Characterization of Surface Pressure Fluctuations of High-Speed Trains Using Wavenumber–Frequency Analysis
Abstract
:1. Introduction
2. Numerical Methods and Target Model
2.1. Large Eddy Simulation
2.2. Wavenumber–Frequency Analysis
2.3. Target Model and Details on Simulation
3. Validation of Numerical Methods
4. Unsteady Flow and Analysis
4.1. Overall Flow Characteristics
4.2. Bogie
4.3. Roof Fairing and Pantograph
4.4. Intercoach Space
5. Decomposition of Surface Pressure
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Thompson, D.J.; Iglesias, E.L.; Liu, X.; Zhu, J.; Hu, Z. Recent developments in the prediction and control of aerodynamic noise from high-speed trains. Int. J. Rail Transp. 2015, 3, 119–150. [Google Scholar] [CrossRef]
- Zhu, J. Aerodynamic Noise of High-Speed Train Bogies. Ph.D. Thesis, University of Southampton, Southampton, UK, 2015. [Google Scholar]
- Paradot, N.; Masson, E.; Poisson, F.; Grégoire, R.; Guilloteau, E.; Touil, H.; Sagaut, P. Aero-acoustic methods for high-speed train noise prediction. In Proceedings of the World Congress on Railway Research, Seoul, Korea, 18–22 May 2008. [Google Scholar]
- Andreini, A.; Bianchini, C.; Facchini, B.; Giusti, A.; Bellini, D.; Chiti, F.; Federico, G. Large eddy simulation for train aerodynamic noise predictions. In Proceedings of the World Congress on Railway Research, Lille, France, 22–26 May 2011. [Google Scholar]
- Yu, H.H.; Li, J.C.; Zhang, H.Q. On aerodynamic noises radiated by the pantograph system of high-speed trains. Acta Mech. Sin. 2013, 29, 399–410. [Google Scholar] [CrossRef]
- Meskine, M.; Pérot, F.; Kim, M.; Freed, D.; Senthooran, S.; Sugiyama, Z.; Polidoro, F.; Gautier, S. Community noise prediction of digital high speed train using LBM. In Proceedings of the 19th AIAA/CEAS Aeroacoustics Conference, Berlin, Germany, 24 May 2013. [Google Scholar]
- Van Herpe, F.; Bordji, M.; Baresh, D.; Lafon, P. Wavenumber-frequency analysis of the wall pressure fluctuations in the wake of a car side mirror. In Proceedings of the 17th AIAA/CEAS Aeroacoustics Conference, Portland, OR, USA, 5–8 June 2011. [Google Scholar]
- Lee, S.; Cheong, C. Decomposition of surface pressure fluctuations on vehicle side window into incompressible/compressible ones using wavenumber-frequency analysis. Korean Soc. Noise Vib. Eng. (KSNVE) 2016, 26, 765–773. [Google Scholar] [CrossRef]
- Kwon, H. A study on the resistance force and the aerodynamic drag of Korean high-speed trains. Veh. Syst. Dyn. 2018, 56, 1250–1268. [Google Scholar] [CrossRef]
- Thompson, D.J. Railway Noise and Vibration: Mechanisms, Modelling and Means of Control, 1st ed.; Elsevier: Oxford, UK, 2008. [Google Scholar]
- Dowling, A.P.; Ffowcs Williams, J.E. Chapter 4.5: Evanescent waves. In Sound and Sources of Sound; Horwood E: Chichester, UK, 1983; pp. 90–93. [Google Scholar]
Equations | Discretization Method |
---|---|
Pressure | Second order |
Momentum | Bounded central differencing |
Energy | Second order upwind |
Transient formulation | Second order implicit |
Boundary | Setting | Remarks |
---|---|---|
Inlet boundary | Velocity inlet | 83.33 m/s (300 km/h), non-reflecting |
Outlet boundary | Pressure outlet | 101,325 Pa, non-reflecting |
Side and upper boundary | Pressure far field | 101,325 Pa, Ma = 0.24 |
Ground boundary | Moving wall | 83.33 m/s |
HEMU wall | No-slip wall | |
Rail wall | Moving wall |
Train Formation | ||
---|---|---|
H. Kwon (from coasting test) | TC + 4M + MC (6 coaches) | 0.900 |
Present study | TC + 2M + MC (4 coaches) | 0.612 |
TC Car | M1 Car | M4 Car | MC Car | |||||
---|---|---|---|---|---|---|---|---|
Roof | Left Side | Roof | Left Side | Roof | Left Side | Roof | Left Side | |
Total | 112.5 | 121.0 | 127.2 | 124.8 | 119.0 | 127.3 | 128.3 | 124.9 |
Comp. | 109.0 | 114.4 | 109.7 | 111.6 | 105.2 | 112.7 | 111.2 | 111.9 |
Incomp. | 110.0 | 120.0 | 127.1 | 124.6 | 118.8 | 127.2 | 128.2 | 124.7 |
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Lee, S.; Cheong, C.; Kim, J.; Kim, B.-h. Numerical Analysis and Characterization of Surface Pressure Fluctuations of High-Speed Trains Using Wavenumber–Frequency Analysis. Appl. Sci. 2019, 9, 4924. https://doi.org/10.3390/app9224924
Lee S, Cheong C, Kim J, Kim B-h. Numerical Analysis and Characterization of Surface Pressure Fluctuations of High-Speed Trains Using Wavenumber–Frequency Analysis. Applied Sciences. 2019; 9(22):4924. https://doi.org/10.3390/app9224924
Chicago/Turabian StyleLee, Songjune, Cheolung Cheong, Jaehwan Kim, and Byung-hee Kim. 2019. "Numerical Analysis and Characterization of Surface Pressure Fluctuations of High-Speed Trains Using Wavenumber–Frequency Analysis" Applied Sciences 9, no. 22: 4924. https://doi.org/10.3390/app9224924
APA StyleLee, S., Cheong, C., Kim, J., & Kim, B.-h. (2019). Numerical Analysis and Characterization of Surface Pressure Fluctuations of High-Speed Trains Using Wavenumber–Frequency Analysis. Applied Sciences, 9(22), 4924. https://doi.org/10.3390/app9224924