Drag Reduction of a Passenger Car Using Flow Control Techniques

被引:28
作者
Paul, Akshoy Ranjan [1 ]
Jain, Anuj [1 ]
Alam, Firoz [2 ]
机构
[1] Motilal Nehru Natl Inst Technol Allahabad, Dept Appl Mech, Prayagraj 211004, India
[2] RMIT Univ, Sch Aerosp Mech & Mfg Engn, Melbourne, Vic 3083, Australia
关键词
Car aerodynamics; Flow separation; Vortex Generator (VG); Rear spoiler; Drag coefficient; Turbulent Kinetic Energy (TKE); MODELS;
D O I
10.1007/s12239-019-0039-2
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The paper describes flow control techniques viz. vane-type vortex generator (VG) array and rear-spoiler on its trunk (boot) side used to reduce drag of a passenger car. The experimental and computational studies were carried out and different cases and combinations were analyzed for the car model by varying incoming airflow angle and spoiler angle and orientations of VG array to find out the optimum conditions for which drag coefficient is found minimum. Shear stress transport (SST) k-w turbulence model is found suitable in predicting the multi-scale rear-wake vortices of the car geometry. It is found that the crossflow increases the drag coefficient, which can however be reduced effectively if both VG array and rear-spoiler are used. Parametric analysis shows that counter-rotating VG array is found useful in reducing drag (around 23 %) as it promotes better flow mixing at its downstream, which is helpful in avoiding flow separation. The finding is also supported by the flow visualization study. It is also found that saving up to 11.5 % in the fuel consumption can be achieved by reducing drag using these techniques. The wake analysis and turbulent kinetic energy plots indicated that the counterrotating VG array while used with a rear spoiler parallel to the flow reduced drag considerably.
引用
收藏
页码:397 / 410
页数:14
相关论文
共 27 条
[1]   WAKE STRUCTURE OF TYPICAL AUTOMOBILE SHAPES [J].
AHMED, SR .
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 1981, 103 (01) :162-169
[2]  
[Anonymous], 2012, 2012010168 SAE, DOI DOI 10.4271/2012-01-0168
[3]  
[Anonymous], 1984, SAE T
[4]  
[Anonymous], 2012, CFD STUDY AERODYNAMI
[5]   Large eddy simulation of flow structures and pollutant dispersion in the near-wake region of the studied ground vehicle for different driving conditions [J].
Chan, T. L. ;
Luo, D. D. ;
Cheung, C. S. ;
Chan, C. K. .
ATMOSPHERIC ENVIRONMENT, 2008, 42 (21) :5317-5339
[6]   Effect of rear slant angle on flow structures, and pollutant dispersion and concentration fields in the wake of the studied model vehicle [J].
Chan, T. L. ;
Gosse, K. ;
Zhou, Y. ;
Lee, S. C. ;
Wang, X. W. ;
Huang, J. F. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2008, 51 (25-26) :6180-6193
[7]   Rear-roof spoiler effect on the aerodynamic drag performance of a simplified hatchback model [J].
Cheng, S. Y. ;
Mansor, S. .
FIFTEENTH ASIAN CONGRESS OF FLUID MECHANICS (15ACFM), 2017, 822
[8]   COMPARATIVE INVESTIGATION ON THE AERODYNAMIC EFFECTS OF COMBINED USE OF UNDERBODY DRAG REDUCTION DEVICES APPLIED TO REAL SEDAN [J].
Cho, Junho ;
Kim, Tae-Kyung ;
Kim, Kyu-Hong ;
Yee, Kwanjung .
INTERNATIONAL JOURNAL OF AUTOMOTIVE TECHNOLOGY, 2017, 18 (06) :959-971
[9]  
Desai Manan, 2008, WSEAS Transactions on Fluid Mechanics, V3, P359
[10]   Drag reduction of motor vehicles by active flow control using the Coanda effect [J].
Geropp, D ;
Odenthal, HJ .
EXPERIMENTS IN FLUIDS, 2000, 28 (01) :74-85