NUMERICAL MODELING OF COMBUSTION PROCESSES INDUCED BY A SUPERSONIC CONICAL BLUNT-BODY

被引:27
|
作者
LEFEBVRE, MH
FUJIWARA, T
机构
[1] Department of Aerospace Engineering, University of Nagoya, Chikusa-ku
关键词
D O I
10.1016/0010-2180(94)00044-S
中图分类号
O414.1 [热力学];
学科分类号
摘要
The structure of standing oblique detonations around a blunt conical body is numerically studied. A large range of incoming flow velocities and tip radii are compared. The mixture studied is a stoichiometric hydrogen-air at 0.1 atm. The physical model includes a detailed full-chemistry mechanism for the reaction rates. The numerical model is based on a TVD upwind algorithm including a point-implicit finite difference scheme for the coupling between the flow equations and the chemical reaction equations. The characteristics of the detonation induced by the present axisymmetric holder show substantial differences from previous studies performed on oblique detonations supported by a two-dimensional blunted wedge. As the incoming Mach number increases, one can observe the transition from a completely decoupled shock/reaction to a fully-coupled detonation front. When the tip radius of the cone is small, the transition process occurs on a continuous and smooth way along the conical wall of the holder, in contrast with the unsteady structure that develops when the tip radius is large. In a limited range of incoming Mach numbers, we found that the leading shock is able to ignite a strong forward-running detonation from the back of the computational domain. In that case, a forward-running detonation wave supported by a Mach-reflection-configuration has a normal portion that can be interpreted as a strong detonation.
引用
收藏
页码:85 / 93
页数:9
相关论文
共 50 条
  • [41] Numerical Modeling for combustion and soot formation processes in turbulent diffusion flames
    Kim, HJ
    Kim, YM
    KSME INTERNATIONAL JOURNAL, 2002, 16 (01): : 116 - 124
  • [42] Experimental and numerical modeling of flow combustion and emission processes in steam generators
    Holfeld, T
    Bernstein, W
    Hildebrand, V
    Ruttloff, G
    COMBUSTION AND INCINERATION - EIGHTEENTH DUTCH-GERMAN CONFERENCE ON FLAMES, 1997, 1313 : 377 - 381
  • [43] Numerical investigation of drag and heat flux reduction mechanism of the pulsed counterflowing jet on a blunt body in supersonic flows
    Zhang, Rui-rui
    Huang, Wei
    Yan, Li
    Li, Lang-quan
    Li, Shi-bin
    Moradi, R.
    ACTA ASTRONAUTICA, 2018, 146 : 123 - 133
  • [44] Numerical investigation of mixing and combustion enhancement in supersonic combustors by strut induced streamwise vorticity
    Gerlinger, Peter
    Stoll, Peter
    Kindler, Markus
    Schneider, Fernando
    Aigner, Manfred
    AEROSPACE SCIENCE AND TECHNOLOGY, 2008, 12 (02) : 159 - 168
  • [45] NUMERICAL MODELING OF RADIATIVE AND REACTIVE FLOW FIELD AROUND A BLUNT BODY AT HYPERSONIC REGIMES
    Rahmanpour, Morteza
    Ebrahimi, Reza
    Shams, Mehrzad
    PROCEEDINGS OF THE ASME INTERNATIONAL HEAT TRANSFER CONFERENCE - 2010, VOL 5: FUEL CELLS, GAS TURBINES, HEAT PIPES, JET IMPINGEMENT, RADIATION, 2010, : 749 - 760
  • [46] Interaction between laser-induced plasma and shock wave over a blunt body in a supersonic flow
    Sakai, T.
    Sekiya, Y.
    Mori, K.
    Sasoh, A.
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2008, 222 (G5) : 605 - 617
  • [47] Numerical Study on Shock-Induced Combustion of a Blunt Projectile via an Adaptive Mesh Program
    Chen W.-Q.
    Liu Y.
    Wang L.
    Xiao B.-G.
    Tuijin Jishu/Journal of Propulsion Technology, 2021, 42 (04): : 776 - 785
  • [48] Numerical Analysis of Vortex Structures and Heat Transfer in a Supersonic Flow Past the Junction of a Blunt-Fin Body and a Plate
    Kolesnik, E. V.
    Smirnov, E. M.
    TECHNICAL PHYSICS, 2020, 65 (02) : 174 - 181
  • [49] Numerical Analysis of Vortex Structures and Heat Transfer in a Supersonic Flow Past the Junction of a Blunt-Fin Body and a Plate
    E. V. Kolesnik
    E. M. Smirnov
    Technical Physics, 2020, 65 : 174 - 181
  • [50] Numerical Modeling of Wave Processes Accompanying Combustion of Inhomogeneously Distributed Composite Propellant
    I. S. Menshov
    M. Yu. Nemtsev
    I. V. Semenov
    Computational Mathematics and Mathematical Physics, 2019, 59 : 1528 - 1541