吉林大学学报(工学版) ›› 2016, Vol. 46 ›› Issue (5): 1464-1470.doi: 10.13229/j.cnki.jdxbgxb201605013

Previous Articles     Next Articles

Sound radiation characteristics of high-speed train wheel and wheelsets

LUO Le1, ZHENG Xu1, LYU Yi2, HAO Zhi-yong1   

  1. 1.Department of Energy Engineering, Zhejiang University, Hangzhou 310027, China;
    2.Changchun Railway Vehicles Co., Ltd., Changchun 130062, China
  • Received:2015-04-21 Online:2016-09-20 Published:2016-09-20

Abstract: The standard wheel of model CRH3 high-speed train was taken as the study subject. The radiation noise of a single wheel under a vertical unit force excitation was calculated by acoustic Boundary Element Method (BEM). Then a new damped wheel with web-mounted noise shielding was introduced. The sound characteristics of both wheels were analyzed contrastively. Detailed boundary conditions were taken into consideration in studying the wheelsets rolling noise distribution on the coach surface. First, Multi-body Dynamics (MBD) was adopted to extract the wheel-rail interaction forces at the speed of 350 km/h. Then, a vibro-acoustic coupling model with four wheelsets was established. The results show that sound field of a single wheel reveals an evident directivity with petaloid variation by angle and continuous decrease by distance; and the wheel tread and web contribute the most rolling noise. Compared with the standard wheel the acoustic power of the damped wheel decreases significantly, especially at the peak frequency. The sound field of four wheelsets, which mainly distributes at the end of the coach and maintains the basic directivity, is formed under a composite overlap and interference effect between multiple wheel noise sources. Finally, a sound pressure spectrum comparison at an observation point indicates that the peak value of the standard wheel noise is mostly below 110 dB, while the total sound pressure level of the damped wheelsets is reduced by 15 dB, therefore, the noise reduction effect of the wheelsets is quite satisfactory.

Key words: damped wheel, wheelsets, rolling noise, acoustic boundary element method, multi-body dynamics

CLC Number: 

  • TB532
[1] 张曙光. 350 km/h 高速列车噪声机理、声源识别及控制[J]. 中国铁道科学,2009, 30(1): 86-90.
Zhang Shu-guang. Noise mechanism, sound source localization and noise control of 350 km/h high-speed train[J]. China Railway Science,2009, 30(1):86-90.
[2] Poisson F, Gautier P E, Letourneaux F. Noise sources for high speed trains: a review of results in the TGV case[C]∥Proceedings of the 9th International Workshop on Railway Noise, Munich, Germany: Springer, 2007:71-77.
[3] Thompson D J, Jones C J C. A review of the modelling of wheel/rail noise generation[J]. Journal of Sound and Vibration,2000, 231(3): 519-536.
[4] Thompson D J, Jones C J C. Sound radiation from a vibrating railway wheel[J]. Journal of Sound and Vibration,2002, 253(2): 401-419.
[5] Sato K, Sasakura M, Akutsu K, et al. Acoustic characteristics of wheels with different Web shapes[J]. Quarterly Report of Railway Technical Research Institute, 2006, 47(1): 28-33.
[6] Stefanelli R, Dual J, Cataldi-Spinola E. Acoustic modelling of railway wheels and acoustic measurements to determine involved eigenmodes in the curve squealing phenomenon[J]. Vehicle System Dynamics,2006, 44(Sup.1): 286-295.
[7] 房建英,肖新标,金学松,等. 行车速度对高速列车车轮振动声辐射特性的影响[J]. 机械工程学报,2010, 46(22): 96-104.
Fang Jian-ying, Xiao Xin-biao, Jin Xue-song, et al. Effect of train speed on acoustic radiation characteristics of high-speed train wheel vibration[J]. Journal of Mechanical Engineering, 2010, 46(22):96-104.
[8] 方锐,肖新标,金学松. 辐板型式和轮轨接触点位置对车轮声辐射特性的影响[J]. 振动与冲击,2009, 28(1): 112-117.
Fang Rui, Xiao Xin-biao, Jin Xue-song. Effects of web shape and contact position on sound radiation characteristic of railway wheel[J]. Journal of Vibration and Shock, 2009, 28(1):112-117.
[9] 杨新文,石广田,杨建近. 车轮辐板开孔对车轮振动噪声辐射特性的影响[J]. 中国铁道科学,2014, 35(2): 58-64.
Yang Xin-wen, Shi Guang-tian, Yang Jian-jin. Effect of web hole on vibration noise radiation characteristics of railway wheel[J]. China Railway Science, 2014, 35(2):58-64.
[10] Efthimeros G A, Photeinos D I, Diamantis Z G, et al. Vibration/noise optimization of a FEM railway wheel model[J]. Engineering Computations,2002, 19(8): 922-931.
[11] Nielsen J C O, Fredö C R. Multi-disciplinary optimization of railway wheels[J]. Journal of Sound and Vibration,2006, 293(3-5): 510-521.
[12] 薛弼一,王谛,肖新标,等. 辐板屏蔽式阻尼车轮振动声辐射特性试验研究[J]. 机械工程学报, 2013, 49(10): 1-7.
Xue Bi-yi, Wang Di, Xiao Xin-biao, et al. Experimental study on vibration and sound radiation characteristics of new type of damped wheel with web-mounted noise shielded[J]. Journal of Mechanical Engineering, 2013, 49(10):1-7.
[13] 刘玉霞,温泽峰,肖新标,等. 不同阻尼形式对车轮振动声辐射特性的影响[J]. 噪声与振动控制, 2014, 34(4): 62-66.
Liu Yu-xia, Wen Ze-feng, Xiao Xin-biao, et al. Effects of different forms of damping on vibration and sound radiation characteristics of wheels[J]. Noise and Vibration Control, 2014, 34(4):62-66.
[14] Brancati A, Aliabadi M H. Boundary element simulations for local active noise control using an extended volume[J]. Engineering Analysis with Boundary Elements, 2012, 36(2): 190-202.
[15] Ling L, Xiao X, Xiong J, et al. A 3D model for coupling dynamics analysis of high-speed train/track system[J]. Journal of Zhejiang University: Science A, 2014, 15(12): 964-983.
[1] HAO Zhi-yong, DING Zheng-yin, SUN Qiang. Sound insulation performance of the silent floor of high-speed train based on FE-SEA hybrid method [J]. 吉林大学学报(工学版), 2015, 45(4): 1069-1075.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] LIU Song-shan, WANG Qing-nian, WANG Wei-hua, LIN Xin. Influence of inertial mass on damping and amplitude-frequency characteristic of regenerative suspension[J]. 吉林大学学报(工学版), 2013, 43(03): 557 -563 .
[2] CHU Liang, WANG Yan-bo, QI Fu-wei, ZHANG Yong-sheng. Control method of inlet valves for brake pressure fine regulation[J]. 吉林大学学报(工学版), 2013, 43(03): 564 -570 .
[3] LI Jing, WANG Zi-han, YU Chun-xian, HAN Zuo-yue, SUN Bo-hua. Design of control system to follow vehicle state with HIL test beach[J]. 吉林大学学报(工学版), 2013, 43(03): 577 -583 .
[4] HU Xing-jun, LI Teng-fei, WANG Jing-yu, YANG Bo, GUO Peng, LIAO Lei. Numerical simulation of the influence of rear-end panels on the wake flow field of a heavy-duty truck[J]. 吉林大学学报(工学版), 2013, 43(03): 595 -601 .
[5] WANG Tong-jian, CHEN Jin-shi, ZHAO Feng, ZHAO Qing-bo, LIU Xin-hui, YUAN Hua-shan. Mechanical-hydraulic co-simulation and experiment of full hydraulic steering systems[J]. 吉林大学学报(工学版), 2013, 43(03): 607 -612 .
[6] ZHANG Chun-qin, JIANG Gui-yan, WU Zheng-yan. Factors influencing motor vehicle travel departure time choice behavior[J]. 吉林大学学报(工学版), 2013, 43(03): 626 -632 .
[7] MA Wan-jing, XIE Han-zhou. Integrated control of main-signal and pre-signal on approach of intersection with double stop line[J]. 吉林大学学报(工学版), 2013, 43(03): 633 -639 .
[8] YU De-xin, TONG Qian, YANG Zhao-sheng, GAO Peng. Forecast model of emergency traffic evacuation time under major disaster[J]. 吉林大学学报(工学版), 2013, 43(03): 654 -658 .
[9] XIAO Yun, LEI Jun-qing, ZHANG Kun, LI Zhong-san. Fatigue stiffness degradation of prestressed concrete beam under multilevel amplitude cycle loading[J]. 吉林大学学报(工学版), 2013, 43(03): 665 -670 .
[10] XIAO Rui, DENG Zong-cai, LAN Ming-zhang, SHEN Chen-liang. Experiment research on proportions of reactive powder concrete without silica fume[J]. 吉林大学学报(工学版), 2013, 43(03): 671 -676 .