The swirling flow of sudden‐expansion dump combustor with central V‐gutter flameholder and six side‐inlets is studied by employing the SIMPLE‐C algorithm and Jones‐Launder k‐ε two‐equation turbulent model. Both combustion models of one‐step with infinite chemical reaction rate and two‐step with finite chemical reaction rate of eddy‐breakup (EBU) model are used to solve the present problem. The results agreed well with available prediction data in terms of axial‐velocity and total pressure coefficient along combustor centerline. The flowfield structure of combustor considered is strongly affected by swirling, flameholder and side‐inlet flow. For the fixed strength of swirling, the length of central recirculation zone is decreased when the angle of V‐gutter is increased. The outlet velocity of combustor in reacting flow is higher than that in cold flow because the released heat of combustion causes the decrease of density throughout the combustor flowfield. The distribution of mass fraction of various species in reacting process depends on the mixing effect, chemical kinetic and the geometric configuration of combustor.
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1 November 1999
Conceptual Paper|
November 01 1999
Predictions of swirling flow in sudden‐expansion dump combustor with flameholder side‐inlet using two‐step combustion model Available to Purchase
Shu‐Hao Chuang;
Shu‐Hao Chuang
Department of Mechanical Engineering, National Chung‐Hsing University, Taichung, Taiwan, Republic of China
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Chih‐Sheng Yang;
Chih‐Sheng Yang
Far East Engineering and Business College, Tainan, Taiwan, Republic of China
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Nein‐Jou Wu
Nein‐Jou Wu
Industrial Technology Research Institute, Center of Aeronautics and Astronautics, Hsinchu, Taiwan, Republic of China
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Publisher: Emerald Publishing
Online ISSN: 1758-6585
Print ISSN: 0961-5539
© MCB UP Limited
1999
International Journal of Numerical Methods for Heat & Fluid Flow (1999) 9 (7): 764–787.
Citation
Chuang S, Yang C, Wu N (1999), "Predictions of swirling flow in sudden‐expansion dump combustor with flameholder side‐inlet using two‐step combustion model". International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 9 No. 7 pp. 764–787, doi: https://doi.org/10.1108/09615539910291154
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