An Experimental Study on the Transport of Turbulent Energy in the Transitional Boundary Layer

천이영역에서 난류에너지의 이동에 관한 실험적 연구

  • 임효재 (호서대학교 기계공학과) ;
  • 백성구 (한국과학기술원 항공우주공학과) ;
  • 이원근 ((주)현대자동차)
  • Published : 2003.06.01

Abstract

This paper considered the structural mechanism of transitional boundary layer by the experimental approach. In order to measure the turbulence quantity in the boundary layer, we made a wind tunnel with 400${\times}$190${\times}$2500 mm test section and a flat plate with well fabricated leading edge. Hot wire anemometer was used for acquiring the continuous turbulence signal which is processed by special software. The results of experiment show that the region where turbulence spot is dominant moves from near wall to overall layer and thus the anisotropy of velocity fluctuation shows so large value. Also the turbulence energy originally contained in low frequency band comes up to the high frequency band. Finally the turbulence model needs minimum two length scales to consider the pre-transition region.

본 연구에서는 평판 경계층의 천이 영역에서 평균속도, 표면마찰계수, 간헐도 분포, 에너지 스펙트럼 등의 신뢰성 있는 실험 자료를 획득하였다. 실험 결과 천이가 진행됨에 따라 난류반점이 지배하는 영역이 벽면 근처에서 전 경계층으로 확산되었으며 이러한 현상의 결과로 속도 섭동량에서 비등방성이 크게 나타난다. 천이 이전영역에서는 에너지가 주로 저주파에 집중되어 있다가 천이를 거치면서 에너지가 고주파 성분으로 이동하였다 이는 두 가지 이상의 에너지 발생과 소멸 메커니즘이 천이영역에서 공존하고 있음을 의미한다. 따라서 천이영역에서의 유동장을 예측하기 위한 난류 계산 모형에서 비등방성과 서로 다른 메커니즘을 표현할 수 있기 위해서는 반드시 두 가지 이상의 척도를 표현할 수 있어야 한다.

Keywords

References

  1. Proc. of the Third Symposium on Numerical and Physical Aspect of Aerodynamic Flows Transitional Spot Formation Rate in Two-Dimensional Boundary Layers Narashima,R.;Dey,J.;Cebeci,T(ed)
  2. ASME, J. of Turbomachinery v.113 The Role of Laminar-Turbulent Transition in Gas Turbine Engines Mayle,R.E. https://doi.org/10.1115/1.2929110
  3. ERCOFTAC Bulletin v.24 A Summary Report on the COSTERCOFTAC Transition SIG Project Evaluating Turbulence Models for Predicting Transition Savill,A.M.
  4. Int. J Heat and Fluid Flow v.17 Spectral Analysis of Boundary-Layer Transition on a Heated Flat Plate Wang,T.;Zhou,D. https://doi.org/10.1016/0142-727X(95)00082-2
  5. ASME J.Turbomachinery v.118 The Effects of Adverse Pressure Gadients on Momentum and Thermal Structures in Transitional Boundary Layers: Part 1 and 2 Mislevy,S.P.;Wang,T. https://doi.org/10.1115/1.2840927
  6. ASME J.Turbomachinery v.118 Flow and Heat Transfer Behaviour in Transitional Boundary Layer with Streamwise Acceleration Keller,F.J.;Wang.T. https://doi.org/10.1115/1.2836642
  7. Experimental Thermal and Fluid Science v.12 Flow and Thermal Structures in a Transitional Boundary Layer Wang,T.;Keller,F.J.;Zhou,D https://doi.org/10.1016/0894-1777(95)00126-3
  8. Experimental Thermal and Fluid Science v.12 Combined Effects of Elevated Freestream Turbulence and Streamwise Acceleration on Flow and Thermal Structures in Transitional Bourdary Layers Zhou,D.;Wang,T. https://doi.org/10.1016/0894-1777(95)00125-5
  9. ASME J.Turbomachinery v.111 Investigation of Boundary Layer Transition in an Adverse Pressure Gradient Gostelow,J.P.;Blunden,A.R. https://doi.org/10.1115/1.3262281
  10. ASME J.Turbomachinery v.112 Effects of Adverse Pressure Gradients on the Nature and Length of Boundary Layer Transition Walker,G.J.;Glstelow,J.P. https://doi.org/10.1115/1.2927633
  11. ASME J. Fluids Engineering v.114 Similarity Behaviour in Transitional Boundary Layers Over a Range of Adverse Pressure Gradient and Turbulence Levels Gostelow,J.P.;Walker,G.J.
  12. ASME J.Turbomachinery v.116 Effects of Freestream Turbulence and Adverse Pressure Gradients on Boundary Layer Transition Gostelow,J.P.;Blunden,A.R.;Walker,G.J. https://doi.org/10.1115/1.2929426
  13. 대한기계학회논문집 B권 v.18 no.7 프레스톤 튜브를 이용한 벽면전단응력의 측정에 관한 실험적 연구 강신형;윤민수;전우평
  14. 대한기계학회논문집 B권 v.22 no.9 자유유동 난류 강도 변화에 따른 평판위 천이경계층의 유동특성에 관한 실험적 연구 신성호;전우평;강신형
  15. Experiments in Fluids v.20 Measurement of Transitional Boundary Layer on a Flat Plate Using a Computational Preston Tube Method Jeon,W.P.;Kang,S.H. https://doi.org/10.1007/BF00190595
  16. Experimental Thermal and Fluid Science v.1 Describing the uncertainties in experimental results Moffat,R.J. https://doi.org/10.1016/0894-1777(88)90043-X
  17. 설비공학논문집 v.15 no.1 천이경계층에서 간헐도 측정에 관한 실험적 연구 임효재;안재용;백성구;정명균
  18. Turbulent Shear Flows v.4 A Computational Preston Tube Method Nitsche,W.;Thunker,R.;Haberland,C.
  19. Viscous Fluid Flow White,F.M.
  20. Experimental Thermal and Fluid Science v.3 Investigation of the Intermittent Behavior of Transitional Boundary Layer Using a Conditional Averaging Technique Kuan,C.L.;Wang,T. https://doi.org/10.1016/0894-1777(90)90084-K
  21. J Fluid Mechanics v.3 Some Properties of Boundary Layer Flow during the Transition from Laminar to Turbulent Motion Dhawan,S.;Narasimha,R. https://doi.org/10.1017/S0022112058000094
  22. ASME J.Turbomachinery v.117 Effects of Criterion Functions on Intermittency in Heated Transitional Boundary Layers with and Without Streamwise Acceleration Keller,F.J.;Wang,T. https://doi.org/10.1115/1.2835633