Drag reduction on a rectangular bluff body with base flaps and fluidic oscillators

被引:43
|
作者
Schmidt, H. -J. [1 ]
Woszidlo, R. [2 ]
Nayeri, C. N. [1 ]
Paschereit, C. O. [1 ]
机构
[1] Tech Univ Berlin, Inst Fluid Dynam & Tech Acoust, Hermann Fottinger Inst, D-10623 Berlin, Germany
[2] Univ Kansas, Dept Aerosp Engn, Lawrence, KS 66045 USA
关键词
FLOW;
D O I
10.1007/s00348-015-2018-3
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The present paper investigates drag reduction on a rectangular bluff body by employing base flaps and controlling flow separation with fluidic oscillators. Wind tunnel experiments are conducted to assess the influence of various parameters. The flap length has to be sufficiently long to shift the wake structures far enough downstream away from the base plate. Any additional increase in flap length does not yield any further benefits. The flap angle has to be large enough to provide a sufficient inward deflection of the outer flow. If the angle is too large, actuation becomes inefficient due to the pressure gradient imposed by the opposite side of the base perimeter. Furthermore, the flaps at high deflection angles provide additional area for low pressure to act in the streamwise direction and therefore negate the positive effects of actuation. The required actuation intensity is best governed by the ratio between jet and freestream velocity for varying oscillator spacing. For a flap angle of 20 degrees, the smallest net drag is obtained at a velocity ratio of 4.5. Furthermore, the optimal velocity ratio for the most efficient drag reduction changes linearly with flap angle. Smaller flap deflections require a smaller velocity ratio for optimal control at different oscillator spacing. A net drag reduction of about 13 % is measured at a flap angle of 20 degrees when the drag is corrected by the momentum input. Even if the measured drag is conservatively corrected by the energy coefficient, a net improvement of 7 % is achieved. For the current setup, the most efficient drag reduction is still obtained at smaller flap angles with a lower momentum input. However, the presented results support the general feasibility of this drag reduction approach with significant room left for optimization.
引用
收藏
页数:16
相关论文
共 50 条
  • [41] Numerical simulation of micro-bubble drag reduction of an axisymmetric body using OpenFOAM
    Zhao, Xiao-jie
    Zong, Zhi
    Jiang, Yi-chen
    Pan, Yu
    JOURNAL OF HYDRODYNAMICS, 2019, 31 (05) : 900 - 910
  • [42] Some innovative concepts for car drag reduction: A parametric analysis of aerodynamic forces on a simplified body
    Khaled, Mahmoud
    El Hage, Hicham
    Harambat, Fabien
    Peerhossaini, Hassan
    JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2012, 107 : 36 - 47
  • [43] Base suction, entrainment flux, and wake modes in the vortex formation region at the rear of a three-dimensional blunt bluff body
    Keirsbulck, Laurent
    Cadot, Olivier
    Basley, Jeremy
    Lippert, Marc
    PHYSICAL REVIEW E, 2023, 108 (01)
  • [44] Design and Analysis of a Base Bleed Unit for the Drag Reduction of a High-Power Rocket Operating at Transonic Speeds
    Famellos, Petros
    Skevas, Athanasios
    Koutsiadis, Asterios
    Koutsouras, Christos
    Panagiotou, Pericles
    AEROSPACE, 2024, 11 (05)
  • [45] Drag Reduction on a Three-Dimensional Teardrop-Shaped Body Car with Different Stagnation Points
    Lee, M. W.
    Tiew, H. S. K.
    Chang, W. S.
    Ishak, M. H. H.
    Ismail, Farzad
    INTERNATIONAL JOURNAL OF AUTOMOTIVE AND MECHANICAL ENGINEERING, 2022, 19 (03) : 9872 - 9891
  • [46] Drag reduction mechanisms on a generic square-back vehicle using an optimised yaw-insensitive base cavity
    Urquhart, Magnus
    Varney, Max
    Sebben, Simone
    Passmore, Martin
    EXPERIMENTS IN FLUIDS, 2021, 62 (12)
  • [47] Numerical Study of Combined Drag Reduction Bases on Vortex Generators and Riblets for the Ahmed Body using IDDES Methodology
    Yang, X.
    Hu, Y.
    Gong, Z.
    Jian, J.
    Liu, Z.
    JOURNAL OF APPLIED FLUID MECHANICS, 2022, 15 (01) : 193 - 207
  • [48] Topology Optimization of Hydrodynamic Body Shape for Drag Reduction in Low Reynolds Number Based on Variable Density Method
    Zhao, Ning
    Zhang, Jianyu
    Han, Haitao
    Miao, Yongzhuang
    Deng, Yongbo
    APPLIED SCIENCES-BASEL, 2023, 13 (09):
  • [49] Mach Number Effect on Supersonic Drag Reduction using Repetitive Laser Energy Depositions over a Blunt Body
    Iwakawa, Akira
    Shoda, Tatsuro
    Majima, Ryosuke
    Pham, Son Hoang
    Sasoh, Akihiro
    TRANSACTIONS OF THE JAPAN SOCIETY FOR AERONAUTICAL AND SPACE SCIENCES, 2017, 60 (05) : 303 - 311
  • [50] Investigation of influence factors to the reduction of hypersonic blunt-body drag and aeroheating based on a spike-aerodisk-Channel concept
    Wang, Ziyu
    Fang, Shuzhou
    Guo, Jian
    Ni, Zijian
    Xu, Yang
    ACTA ASTRONAUTICA, 2023, 211 : 716 - 733