Experimental study on the auto-initiation of rotating detonation with high-temperature hydrogen-rich gas

被引:19
作者
Bai, Qiaodong [1 ]
Han, Jiaxiang [1 ]
Zhang, Shijian [1 ]
Weng, Chunsheng [1 ]
机构
[1] Nanjing Univ Sci & Technol, Natl Key Lab Transient Phys, Nanjing 210094, Peoples R China
关键词
IGNITION; WAVE; PROPAGATION; TRANSITION; MIXTURES;
D O I
10.1063/5.0144322
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
An experimental study on the auto-initiation process of rotating detonation waves (RDWs) was conducted with high-temperature hydrogen-rich gas as the fuel and air as the oxidant. Spontaneous combustion of high-temperature hydrogen-rich gas and air occurred after they were injected into a rotating detonation chamber (RDC), which resulted in hot spots in the RDC and induced the formation of a rotating deflagration flame. Then, an RDW formed through the deflagration-to-detonation transition process in the RDC. The auto-initiation process of high-temperature hydrogen-rich gas and the formation mechanism of RDWs were studied in detail through experiments. The influences of the equivalence ratio on the RDW propagation characteristics of high-temperature hydrogen-rich gas were analyzed. The results showed that with the increase in the equivalence ratio from 0.61 to 1.93, five RDW propagation modes appeared in the RDC: Failure, two counter rotating detonation wave (TCRDW), Mixed, intermittent single rotating demodulation wave, and single rotating detonation wave (SRDW) modes. The Mixed mode was the transition mode from the TCRDW mode to the SRDW mode. The highest RDW velocity was 1485.9 m/s when the equivalence ratio was 1.32, in which the propagation mode was the stable SRDW mode.
引用
收藏
页数:10
相关论文
共 39 条
[1]   Rotating detonation combustors and their similarities to rocket instabilities [J].
Anand, Vijay ;
Gutmark, Ephraim .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2019, 73 :182-234
[2]   Experimental Study of a Hypergolically Ignited Liquid Bipropellant Rotating Detonation Rocket Engine [J].
Anderson, Wesly S. ;
Heister, Stephen D. ;
Kan, Brandon ;
Hartsfied, Carl .
JOURNAL OF PROPULSION AND POWER, 2020, 36 (06) :851-861
[3]  
Bai Q., 2022, INT C DEFENCE TECHNO
[4]   Flame front dynamics studies at deflagration-to-detonation transition in a cylindrical tube at low-energy initiation mode [J].
Baranyshyn, Y. A. ;
Krivosheyev, P. N. ;
Penyazkov, O. G. ;
Sevrouk, K. L. .
SHOCK WAVES, 2020, 30 (03) :305-313
[5]   High-speed imaging of wave modes in an RDC [J].
Bohon, M. D. ;
Bluemner, R. ;
Paschereit, C. O. ;
Gutmark, E. J. .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2019, 102 :28-37
[6]   Initiation of detonation of fuel-air mixtures in a flow-type annular combustor [J].
Bykovskii, F. A. ;
Zhdan, S. A. ;
Vedernikov, E. F. .
COMBUSTION EXPLOSION AND SHOCK WAVES, 2014, 50 (02) :214-222
[7]   Autoignition and detonation development from a hot spot inside a closed chamber: Effects of end wall reflection [J].
Dai, Peng ;
Chen, Zheng ;
Gan, Xiaohua ;
Liberman, Mikhail A. .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2021, 38 (04) :5905-5913
[8]   FAST FLAME PROPAGATION IN HYDROGEN/OXYGEN MIXTURE [J].
Dzieminska, E. ;
Fukuda, M. ;
Hayashi, A. K. ;
Yamada, E. .
COMBUSTION SCIENCE AND TECHNOLOGY, 2012, 184 (10-11) :1608-1615
[9]   Study of the ignition process in a laboratory scale rotating detonation engine [J].
Fotia, M. L. ;
Hoke, J. ;
Schauer, F. .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2018, 94 :345-354
[10]   Thrust Validation of Rotating Detonation Engine System by Moving Rocket Sled Test [J].
Goto, Keisuke ;
Kato, Yuichi ;
Ishihara, Kazuki ;
Matsuoka, Ken ;
Kasahara, Jiro ;
Matsuo, Akiko ;
Funaki, Ikkoh ;
Nakata, Daisuke ;
Higashino, Kazuyuki ;
Tanatsugu, Nobuhiro .
JOURNAL OF PROPULSION AND POWER, 2021, 37 (03) :419-425