Numerical investigation on a typical scramjet combustor using cavity floor H2 fuel injection strategy

被引:36
作者
Choubey, Gautam [1 ]
Solanki, Malhar [1 ]
Bhatt, Tathya [1 ]
Kshitij, G. [1 ]
Yuvarajan, D. [2 ]
Huang, Wei [3 ]
机构
[1] Inst Infrastruct Technol Res & Management IITRAM, Dept Mech & Aerosp Engn, Ahmadabad 380026, Gujarat, India
[2] SIMATS, Saveetha Sch Engn, Dept Automobile Engn, Chennai 602105, Tamilnadu, India
[3] Natl Univ Def Technol, Sci & Technology Scramjet Lab, Changsha, Hunan, Peoples R China
关键词
Scramjet combustor; Cavity floor injection; H2; fuel; Mach number; Cavity length; Mixing augmentation; TRANSVERSE HYDROGEN JET; MICRO AIR-JETS; SUPERSONIC COMBUSTOR; MIXING AUGMENTATION; FLAME STABILIZATION; PERFORMANCE; FIELD; SIMULATION; IGNITION; FLAMEHOLDER;
D O I
10.1016/j.actaastro.2022.10.055
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
The major issue in improving the efficiency of the scramjet engine is ensuring adequate hydrogen fuel distri-bution within the supersonic chamber. Recently cavity floor injection strategy is a promising approach to keeping the flame stable under an extensive range of operational conditions. Thus the present investigation involves the simulation of a scramjet combustor with cavity floor H2 injection technique under different free-stream Mach numbers using a computational approach. Our results indicate that as the free-stream Mach number rises; the circulations inside the cavity become more intense, resulting in the formation of a stable igniting zone inside the cavity. Next, the effect of different cavity floor length injection on the performance of the combustor has also been explored. The results obtained indicate an optimum cavity floor injection which can control the propagation of the shockwave in the downstream direction; or else, boundary layer separation may occur, resulting in even engine unstarts. For the present case, the optimum cavity floor length is found to be 45 mm.
引用
收藏
页码:373 / 385
页数:13
相关论文
共 75 条
[1]  
ANSYS Inc., 2016, ANSYS FLUENT US GUID, P2
[2]   Computational investigation of multi hydrogen jets at inclined supersonic flow [J].
Barzegar Gerdroodbary, M. ;
Moradi, R. ;
Babazadeh, Houman .
INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2021, 45 (02) :1661-1672
[3]  
Baurle R.A., 1998, 36 AIAA AEROSPACE SC
[4]   Cavity flame-holders for ignition and flame stabilization in scramjets: An overview [J].
Ben-Yakar, A ;
Hanson, RK .
JOURNAL OF PROPULSION AND POWER, 2001, 17 (04) :869-877
[5]  
Billig F.S., 1969, CR1386 NASA
[6]   RESEARCH ON SUPERSONIC COMBUSTION [J].
BILLIG, FS .
JOURNAL OF PROPULSION AND POWER, 1993, 9 (04) :499-514
[7]   Ignition processes and modes excited by laser-induced plasma in a cavity based supersonic combustor [J].
Cai, Zun ;
Zhu, Jiajian ;
Sun, Mingbo ;
Wang, Zhenguo ;
Bai, Xue-Song .
APPLIED ENERGY, 2018, 228 :1777-1782
[8]   A review on hydrogen industrial aerospace applications [J].
Cecere, D. ;
Giacomazzi, E. ;
Ingenito, A. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2014, 39 (20) :10731-10747
[9]   Hydrogen/air supersonic combustion for future hypersonic vehicles [J].
Cecere, D. ;
Ingenito, A. ;
Giacomazzi, E. ;
Romagnosi, L. ;
Bruno, C. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2011, 36 (18) :11969-11984
[10]   Research progress on strut-equipped supersonic combustors for scramjet application [J].
Chang, Juntao ;
Zhang, Junlong ;
Bao, Wen ;
Yu, Daren .
PROGRESS IN AEROSPACE SCIENCES, 2018, 103 :1-30