Citation: | ZHAO Huan-juan, John H. S. LEE, ZHANG Ying-hua, YAN Yi-ran. Precise mechanism of triple point passage removing soot on soot-coated surface[J]. Chinese Journal of Engineering, 2017, 39(3): 335-341. doi: 10.13374/j.issn2095-9389.2017.03.003 |
[2] |
Voitsekhovskii B V. Stationary detonation. Dokl USSR Acad Sci, 1959, 129(6):1254
|
[3] |
Bykowski F A, Mitrofanov V V, Vedernikov E F. Continuous detonation combustion of fuel-air mixtures. Combust Explo Shock Waves, 1997, 33(3):344
|
[4] |
Bykovskii F A, Zhdan S A, Verdernikov E F. Continuous spin detonation in ducted annular combustors:2. Combustor with an expanding annular channel. Combust Explo Shock Waves, 2008, 44(3):330
|
[5] |
Bykovskii F A, Zhdam S A, Vedernikov E F. Realization and modeling of continuous spin detonation of a hydrogen oxygen mixture in flow-type combustors. Combust Explo Shock Waves, 2009, 45(5):716
|
[6] |
Wang Y H, Wang J P. Coexistence of detonation with deflagration in rotating detonation engines. Int J Hydrogen Energy, 2016, 41(32):14302
|
[7] |
Yang C L, Wu X S, Ma H, et al. Experimental research on initiation characteristics of a rotating detonation engine. Exp Therm Fluid Sci, 2016, 71:154
|
[8] |
Daniau E, Falempin F, Getin N, et al. Design of a continuous detonation wave engine for space application//42nd AIAA/ASME/SAE/ASEE Joint Propulsion Conference & Exhibit. California, 2006:4794
|
[10] |
Wu Y W, Lee J H S. Stability of spinning detonation waves. Combust Flame, 2015, 162(6):2660
|
[11] |
Mazaheri K, Mahmoudi Y, Sabzpooshani M, et al. Experimental and numerical investigation of propagation mechanism of gaseous detonations in channels with porous walls. Combust Flame, 2015, 162(6):2638
|
[12] |
Hishida M, Fujiwara T, Wolanski P. Fundamentals of rotating detonations. Shock Waves, 2009, 19(1):1
|
[13] |
Zhdan S A, Bykovskii F A, Vedernikov E F. Mathmatical modeling of a rotating detonation wave in a hydrogen-oxygen mixture. Combust Explos Shock Waves, 2007, 43(4):449
|
[14] |
Pan Z H, Fan B C, Zhang X D, et al. Wavelet pattern and selfsustained mechanism of gaseous detonation rotating in a coaxial cylinder. Combust Flame, 2011, 158(11):2220
|
[15] |
Trotsyuk A V, Fomin P A, Vasil'ev A A. Numerical study of cellular detonation structures of methane mixtures. J Loss Prev Proc Ind, 2015, 36:394
|
[16] |
Lee J H S. The Detonation Phenomenon. Cambridge:Cambridge University Press, 2008
|
[19] |
Zhang B, Mehrjoo N, Ng H D, et al. On the dynamic detonation parameters in acetylene-oxygen mixtures with varying amount of argon dilution. Combust Flame, 2014, 161(5):1390
|
[26] |
Wu Y, Chri Stensen K T. Population trends of spanwise vortices in wall turbulence. J Fluid Mech, 2006, 568:55
|
[27] |
Head M R, Bandyopadhyay P. New aspects of turbulent boundary-layer structure. J Fluid Mech, 1981, 107:297
|
[29] |
Zhao H J, Lee J H S, Lee J L, et al. Quantitative comparison of cellular patterns of stable and unstable mixtures. Shock Waves, 2016, 26(5):621
|