DOI QR코드

DOI QR Code

Flow Analysis due to the Configuration of Automotive Spoiler

자동차 스포일러의 형상에 따른 유동해석

  • Han, Moonsik (Department of Mechanical & Automotive Engineering, Keimyung University) ;
  • Cho, Jaeung (Department of Mechanical & Automotive Engineering, Kongju National University)
  • 한문식 (계명대학교 기계자동차공학과) ;
  • 조재웅 (공주대학교 기계자동차공학부)
  • Received : 2015.11.06
  • Accepted : 2016.09.08
  • Published : 2016.11.01

Abstract

In this study, the pressures due to air resistances on the models of 1, 2, 3 and 4 as the automotive bodies grafted on various spoilers are investigated through the flow analysis. Model 1 has the flat type and model 2 has the shape that a flat plane is projected. Model 3 is attached with the slanted plate and model 4 has the shape that two slanted plates are installed on both sides. At the flow streams on the models of 1, 2, 3 and 4, the flow velocities are shown to become highest above the roofs of automotive bodies. The maximum flow velocities are also shown at the beginning points at the roofs of car bodies on the side planes of automotive bodies. The maximum pressures of 102,500 to 102,553 Pa as air resistances are shown at the bumpers of the front car bodies. The flow velocities on the inlet and middle planes become nearly same at the models of 1, 2, 3 and 4. But these velocities on the inlet plane at model 2 projected with the spoiler of flat plate become lower than the models of 1, 3 and 4. The air streams throughout the models become uniform at all models. The flow stream is shown most uniformly at model 2 projected with the spoiler of flat plate. But the flow stream is shown most irregularly at model 3 projected with the spoiler of slanting plate. By using the result of this flow analysis, it is thought to reduce the power of car effectively in driving by changing the configuration of automotive spoiler.

Keywords

References

  1. D. R. Lee, "Investigation of Aerodynamic Characteristics of a Medium-size Vehicle," Journal of the Korea Society for Power System Engineering, Vol.10, No.2, pp.22-28, 2006.
  2. B. J. Kim, S. W. Kang, H. G. Choi and J. Y. Yoo, "Flow Analysis around the Vehicle Model Using Unstructured Mesh," Korea Mechanic Conference, pp.2121-2126, 2002.
  3. D. M. Kang, Y. R. Jung, W. G. Park and S. D. Ha, "Numerical Analysis of Flow Field around an Automobile with Variation of Yaw Angles," Journal of the KSCFE, Vol.4, No.3, pp.1-11, 1999.
  4. S. R. Ahmed, "Wake Structure of Typical Automobile Shapes," Journal of Fluids Engineering, Vol.103, pp.162-169, 1981. https://doi.org/10.1115/1.3240767
  5. Y. R. Jung, D. M. Kang and W. G. Park, "Numerical Analysis of Flow Characteristic around an Automobile with Variation of Slant Angle of Rear End," Transactions of the KSAE, Vol.9, No.1, pp.75-83, 2001.
  6. S. W. Kang, H. G. Choi and J. Y. Yoo, "Parallelized Dynamic Large Eddy Simulation of Turbulent Flow around a Vehicle Model," Proceedings of the KSME Fall Annual Conference, pp.1562-1567, 2002.
  7. W. J. Jin, "A Numerical Study on the Flow around Automobile," Proceedings of the KSPE Autumn Conference, pp.555-558, 2000.
  8. H. P. Kim and Y. J. Kim, "Flow Analysis for an Effective Weld Line Control in Injection Molding," Transactions of the Korean Society of Machine Toll Engineers, Vol.10, No.2, pp.64-72, 2001.
  9. G. H. Lee, E. S. Lee, M. K. Lee, J. S. Kim and I. J. Bae, "Automatic Control Valve for the Semiconductor Chemical Liquid," Journal of the Korean Society of Manufacturing Technology Engineers, Vol.21, No.2, pp.311-315, 2012. https://doi.org/10.7735/ksmte.2012.21.2.311