Effect of cavity flow control on high-speed train pantograph and roof aerodynamic noise

被引:31
作者
Kim, Hogun [1 ]
Hu, Zhiwei [1 ]
Thompson, David [2 ]
机构
[1] Univ Southampton, Aerodynam & Flight Mech Res Grp, Southampton SO17 1BJ, Hants, England
[2] Univ Southampton, Inst Sound & Vibrat Res, Dynam Grp, Southampton SO17 1BJ, Hants, England
关键词
High-speed train; Aeroacoustics; Pantograph; Pantograph recess; Cavity flow; Noise control; REDUCTION; IDENTIFICATION; TURBULENCE; SOUND;
D O I
10.1007/s40534-020-00205-y
中图分类号
U [交通运输];
学科分类号
08 ; 0823 ;
摘要
The pantograph and its recess on the train roof are major aerodynamic noise sources on high-speed trains. Reducing this noise is particularly important because conventional noise barriers usually do not shield the pantograph. However, less attention has been paid to the pantograph recess compared with the pantograph. In this paper, the flow features and noise contribution of two types of noise reduction treatments rounded and chamfered edges are studied for a simplified high-speed train pantograph recess, which is represented as a rectangular cavity and numerically investigated at 1/10 scale. Improved delayed detached-eddy simulations are performed for the near-field turbulent flow simulation, and the Ffowcs Williams and Hawkings aeroacoustic analogy is used for far-field noise prediction. The highly unsteady flow over the cavity is significantly reduced by the cavity edge modifications, and consequently, the noise radiated from the cavity is reduced. Furthermore, effects of the rounded cavity edges on the flow and noise of the pantographs (one raised and one folded) are investigated by comparing the flow features and noise contributions from the cases with and without rounding of the cavity edges. Different train running directions are also considered. Flow analysis shows that the highly unsteady flow within the cavity is reduced by rounding the cavity edges and a slightly lower flow speed occurs around the upper parts of the raised pantograph, whereas the flow velocity in the cavity is slightly increased by the rounding. Higher pressure fluctuations occur on the folded pantograph and the lower parts of the raised pantograph, whereas weaker fluctuations are found on the panhead of the raised pantograph. This study shows that by rounding the cavity edges, a reduction in radiated noise at the side and the top receiver positions can be achieved. Noise reductions in the other directions can also be found.
引用
收藏
页码:54 / 74
页数:21
相关论文
共 29 条
[1]  
[Anonymous], 2000, 6 AIAACEAS AEROACOUS
[2]   Modeling aerodynamically generated sound of helicopter rotors [J].
Brentner, KS ;
Farassat, F .
PROGRESS IN AEROSPACE SCIENCES, 2003, 39 (2-3) :83-120
[3]  
Brentner KS, 1997, AM HEL SOC 53 ANN FO
[4]   Computational fluid dynamics as a means of assessing the influence of aerodynamic forces on the mean contact force acting on a pantograph [J].
Carnevale, Marco ;
Facchinetti, Alan ;
Maggiori, Luca ;
Rocchi, Daniele .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART F-JOURNAL OF RAIL AND RAPID TRANSIT, 2016, 230 (07) :1698-1713
[5]   Research at DLR Gottingen on bluff body aerodynamics, drag reduction by wake ventilation and active flow control [J].
Grosche, FR ;
Meier, GEA .
JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2001, 89 (14-15) :1201-1218
[6]   Wall pressure and shear stress spectra from direct simulations of channel flow [J].
Hu, Z. W. ;
Morfey, C. L. ;
Sandham, N. D. .
AIAA JOURNAL, 2006, 44 (07) :1541-1549
[7]   Component-based model to predict aerodynamic noise from high-speed train pantographs [J].
Iglesias, E. Latorre ;
Thompson, D. J. ;
Smith, M. G. .
JOURNAL OF SOUND AND VIBRATION, 2017, 394 :280-305
[8]  
Ikeda Mitsuru, 2010, Quarterly Report of RTRI, V51, P220, DOI 10.2219/rtriqr.51.220
[9]  
Ikeda Mitsuru, 2009, Quarterly Report of RTRI, V50, P227, DOI 10.2219/rtriqr.50.227
[10]  
Ikeda Mitsuru, 2008, Quarterly Report of RTRI, V49, P184, DOI 10.2219/rtriqr.49.184