Volume 27 Issue 5
May  2012
Turn off MathJax
Article Contents
JIA Zhen, WU Di, PIAO Ying, XUE Mei-xin. Effect of cavity leading edge angle on performance of super-sonic combustor[J]. Journal of Aerospace Power, 2012, 27(5): 993-998.
Citation: JIA Zhen, WU Di, PIAO Ying, XUE Mei-xin. Effect of cavity leading edge angle on performance of super-sonic combustor[J]. Journal of Aerospace Power, 2012, 27(5): 993-998.

Effect of cavity leading edge angle on performance of super-sonic combustor

  • Received Date: 2011-06-15
  • Publish Date: 2012-05-28
  • The effect of cavity leading edge angle on flow field and cavity drag characteristics in a supersonic combustor under the condition with/without chemical reactions was numerically investigated.It is found that low velocity and high temperature recirculation zones form in cavity and upstream boundary layer of wall orifice,respectively,which are induced by a bow shock produced by the normal fuel jet interacting with the supersonic cross flow and expected to facilitate the fuel ignition and enhance the flame stabilization.A shock/boundary layer interaction phenomenon arises from an intense back pressure fluctuation induced by combustion spreading upstream through subsonic region of boundary layer.Decreasing the leading edge angle moves separation point of free shear layer ahead,which strengthens the reattaching shock at angled back wall and consequently increases the total pressure loss,in other words,decreases the total pressure recovery coefficient as well as the drag coefficient.This investigation provides insight into the characteristics of flow field inside supersonic combustor with/without combustion and corresponding mechanism of fuel-air mixing enhancement,which is crucial for optimization of the cavity structure.

     

  • loading
  • [1]
    Vinagradov V,Grachev V,Petrov M.Experimental investigation of 2-D dual mode scramjet with hydrogen fuel at Mach 4-6.AIAA-1990-5269,1990.
    [2]
    司徒明.煤油超燃冲压发动机性能分析[J].推进技术,1998,19(2):18-22. SITU Ming.Performance analysis of hydrocarbon-fueled scramjet[J].Journal of Propulsion Technology,1998,19(2):18-22.(in Chinese)
    [3]
    Niioka T,Terada K,Kobayashi H,et al.Flame stabilization characteristics of strut divided into two parts in supersonic airflow[J].Journal of Propulsion and Power,1995,11(1):112-116.
    [4]
    Brandstetter A,Denis S R,Kau H P.Flame stabilization in supersonic combustion.AIAA-2002-5224,2002.
    [5]
    Rogers R C,Capriotti D P,Guy R W.Experimental supersonic combustion research at NASA Langley.AIAA 1998-2506,1998.
    [6]
    Roudakov A S,Schikhmann Y,Semenov V,et al.Flight testing of an axisymmetric scramjet-Russian recent advances.International Astronautical Federation,IAF Paper 93-S4.458,1993.
    [7]
    Rodriguez C G.CFD analysis of the CIAM/NASA scramjet.AIAA-2002-4128,2002.
    [8]
    Owens M G,Tehranian S,Segal C,et al.Flame-holding configurations for kerosene combustion in a Mach 1.8 airflow[J].Journal of Propulsion and Power,1998,14(4):456-461.
    [9]
    Baurle R A,Tam C J,Dasgupta S.Analysis of unsteady cavity flows for scramjet applications.AIAA-2000-3617,2000.
    [10]
    Gruber M R.Fundamental investigation of an integrated fuel injector/flameholder concept for supersonic combustion.AFRL-PR-WP-TR-1998-2111.1998.
    [11]
    Gruber M R,Baurle R A,Mathur T,et al.Fundamental studies of cavity-based flameholder concept for supersonic combustors[J].Journal of Propulsion and Power,2001,17(1):146-153.
    [12]
    王春,司徒明,马继华,等.高温富油燃气超声速燃烧数值模拟[J].推进技术,2000,21(2):60-63. WANG Chun,SITU Ming,MA Jihua,et al.Numerical simulation on supersonic combustion of fuel-rich hot gas[J].Journal of Propulsion Technology,2000,21(2):60-63.(in Chinese)
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (1792) PDF downloads(591) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return