Skip to main content
Top

2018 | OriginalPaper | Chapter

7. Continuous Detonation Engine Researches at Peking University

Authors : Jian-Ping Wang, Song-Bai Yao, Xu-Dong Han

Published in: Detonation Control for Propulsion

Publisher: Springer International Publishing

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

In this chapter we reviewed the research of the continuous detonation engine (CDE) performed at Peking University. The research team at Peking University was the first to conduct numerical and experimental research of the CDE in China. We designed several types of CDE combustion chambers and carried out experiments to verify its feasibility. In addition, we have performed a series of two- and three-dimensional simulations of the CDE. Numerical studies covered many aspects of the CDE, including the detailed flow structure, fuel injection, nozzle design, viscous effect, propulsive performance, initiation method, particle path, thermodynamic performance, shock wave reflections near the head-wall, spontaneously formation of multiple detonation waves, etc. In this chapter, we also discussed several recent examples of progress and accomplishments.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
go back to reference Bykovskii, F. A., Zhdan, S. A., & Vedernikov, E. F. (2006). Continuous spin detonations. Journal of Propulsion and Power, 22(6), 1204–1216.CrossRef Bykovskii, F. A., Zhdan, S. A., & Vedernikov, E. F. (2006). Continuous spin detonations. Journal of Propulsion and Power, 22(6), 1204–1216.CrossRef
go back to reference Liu, Y. S., Wang, J. P., Shi, T. Y., Wang, Y. H., Li, Y., & Li, Y. (2013). Experimental investigation on H2/O2 continuously rotating detonation engine. Paper presented at the 24th International Colloquium on the Dynamics of Explosions and Reactive Systems, Taipei, 28 July – 2 August 2013. Liu, Y. S., Wang, J. P., Shi, T. Y., Wang, Y. H., Li, Y., & Li, Y. (2013). Experimental investigation on H2/O2 continuously rotating detonation engine. Paper presented at the 24th International Colloquium on the Dynamics of Explosions and Reactive Systems, Taipei, 28 July – 2 August 2013.
go back to reference Liu, Y. S., Wang, Y. H., Li, Y., Li, Y. S., & Wang, J. P. (2015a). Spectral analysis and self-adjusting mechanism for oscillation phenomenon in hydrogen-oxygen continuously rotating detonation engine. Chinese Journal of Aeronautics, 28(3), 669–675.CrossRef Liu, Y. S., Wang, Y. H., Li, Y., Li, Y. S., & Wang, J. P. (2015a). Spectral analysis and self-adjusting mechanism for oscillation phenomenon in hydrogen-oxygen continuously rotating detonation engine. Chinese Journal of Aeronautics, 28(3), 669–675.CrossRef
go back to reference Liu, M., Zhang, S., Wang, J. P., & Chen, Y. F. (2015b). Parallel three-dimensional numerical simulation of rotating detonation engine on graphics processing units. Computers & Fluids, 110, 36–42.CrossRef Liu, M., Zhang, S., Wang, J. P., & Chen, Y. F. (2015b). Parallel three-dimensional numerical simulation of rotating detonation engine on graphics processing units. Computers & Fluids, 110, 36–42.CrossRef
go back to reference Liu, M., Zhou, R., & Wang, J. P. (2015c). Numerical investigation of different injection patterns in rotating detonation engines. Combustion Science and Technology, 187(3), 343–361.CrossRef Liu, M., Zhou, R., & Wang, J. P. (2015c). Numerical investigation of different injection patterns in rotating detonation engines. Combustion Science and Technology, 187(3), 343–361.CrossRef
go back to reference Lu, F. K., & Braun, E. M. (2014). Rotating detonation wave propulsion: Experimental challenges, modeling, and engine concepts. Journal of Propulsion and Power, 30(5), 1125–1142.CrossRef Lu, F. K., & Braun, E. M. (2014). Rotating detonation wave propulsion: Experimental challenges, modeling, and engine concepts. Journal of Propulsion and Power, 30(5), 1125–1142.CrossRef
go back to reference Shao, Y. T., & Wang, J. P. (2010). Change in continuous detonation wave propagation mode from rotating detonation to standing detonation. Chinese Physics Letters, 27(3), 034705.CrossRef Shao, Y. T., & Wang, J. P. (2010). Change in continuous detonation wave propagation mode from rotating detonation to standing detonation. Chinese Physics Letters, 27(3), 034705.CrossRef
go back to reference Shao, Y. T., & Wang, J. P. (2011). Three dimensional simulation of rotating detonation engine without inner wall. Paper presented at the 23rd International Colloquium on the Dynamics of Detonation and Reactive Systems, University of California, Irvine, U.S.A., 24–29 July 2011. Shao, Y. T., & Wang, J. P. (2011). Three dimensional simulation of rotating detonation engine without inner wall. Paper presented at the 23rd International Colloquium on the Dynamics of Detonation and Reactive Systems, University of California, Irvine, U.S.A., 24–29 July 2011.
go back to reference Shao, Y. T., Liu, M., & Wang, J. P. (2010a). Continuous detonation engine and effects of different types of nozzle on its propulsion performance. Chinese Journal of Aeronautics, 23(6), 647–652.CrossRef Shao, Y. T., Liu, M., & Wang, J. P. (2010a). Continuous detonation engine and effects of different types of nozzle on its propulsion performance. Chinese Journal of Aeronautics, 23(6), 647–652.CrossRef
go back to reference Shao, Y. T., Liu, M., & Wang, J. P. (2010b). Numerical investigation of rotating detonation engine propulsive performance. Combustion Science and Technology, 182(11–12), 1586–1597.CrossRef Shao, Y. T., Liu, M., & Wang, J. P. (2010b). Numerical investigation of rotating detonation engine propulsive performance. Combustion Science and Technology, 182(11–12), 1586–1597.CrossRef
go back to reference Tang, X. M., Wang, J. P., & Shao, Y. T. (2015). Three-dimensional numerical investigations of the rotating detonation engine with a hollow combustor. Combustion and Flame, 162(4), 997–1008.CrossRef Tang, X. M., Wang, J. P., & Shao, Y. T. (2015). Three-dimensional numerical investigations of the rotating detonation engine with a hollow combustor. Combustion and Flame, 162(4), 997–1008.CrossRef
go back to reference Voitsekhovskii, B. V. (1959). Statsionarnaya dyetonatsiya. Doklady Akademii Nauk SSSR, 129(6), 1254–1256. Voitsekhovskii, B. V. (1959). Statsionarnaya dyetonatsiya. Doklady Akademii Nauk SSSR, 129(6), 1254–1256.
go back to reference Wang, J. P., Shi, T. Y., Wang, Y. H., Liu, Y. S., & Li, Y. S. (2010). Experimental research on the rotating detonation engine. Paper presented at the 14th Shock Wave and Shock Tube Conference, Huangshan, Anhui, China, 14–16 July 2010. Wang, J. P., Shi, T. Y., Wang, Y. H., Liu, Y. S., & Li, Y. S. (2010). Experimental research on the rotating detonation engine. Paper presented at the 14th Shock Wave and Shock Tube Conference, Huangshan, Anhui, China, 14–16 July 2010.
go back to reference Wang, Y. H., Wang, J. P., Shi, T. Y., & Liu, Y. S. (2012). Experimental research on transition regions in continuously rotating detonation waves. Paper presented at the 48th AIAA/ASME/SAE/ASEE Joint Propulsion Conference & Exhibit, AIAA Paper No. 2012–3946, Atlanta, Georgia, U.S.A., 30 July–1 August 2012. Wang, Y. H., Wang, J. P., Shi, T. Y., & Liu, Y. S. (2012). Experimental research on transition regions in continuously rotating detonation waves. Paper presented at the 48th AIAA/ASME/SAE/ASEE Joint Propulsion Conference & Exhibit, AIAA Paper No. 2012–3946, Atlanta, Georgia, U.S.A., 30 July–1 August 2012.
go back to reference Wang, Y. H., Wang, J. P., Li, Y. S., & Li, Y. (2014). Induction for multiple rotating detonation waves in the hydrogen-oxygen mixture with tangential flow. International Journal of Hydrogen Energy, 39(22), 11792–11797.CrossRef Wang, Y. H., Wang, J. P., Li, Y. S., & Li, Y. (2014). Induction for multiple rotating detonation waves in the hydrogen-oxygen mixture with tangential flow. International Journal of Hydrogen Energy, 39(22), 11792–11797.CrossRef
go back to reference Wolanski, P. (2011). Rotating detonation wave stability. Paper presented at the 23rd International Colloquium on the Dynamics of Detonation and Reactive Systems, University of California, Irvine, U.S.A., 24–29 July, 2011. Wolanski, P. (2011). Rotating detonation wave stability. Paper presented at the 23rd International Colloquium on the Dynamics of Detonation and Reactive Systems, University of California, Irvine, U.S.A., 24–29 July, 2011.
go back to reference Wu, D., Liu, Y., Liu, Y. S., & Wang, J. P. (2014a). Numerical investigations of the restabilization of hydrogen–air rotating detonation engines. International Journal of Hydrogen Energy, 39(28), 15803–15809.CrossRef Wu, D., Liu, Y., Liu, Y. S., & Wang, J. P. (2014a). Numerical investigations of the restabilization of hydrogen–air rotating detonation engines. International Journal of Hydrogen Energy, 39(28), 15803–15809.CrossRef
go back to reference Wu, D., Zhou, R., Liu, M., & Wang, J. P. (2014b). Numerical investigation of the stability of rotating detonation engines. Combustion Science and Technology, 186(10–11), 1699–1715.CrossRef Wu, D., Zhou, R., Liu, M., & Wang, J. P. (2014b). Numerical investigation of the stability of rotating detonation engines. Combustion Science and Technology, 186(10–11), 1699–1715.CrossRef
go back to reference Yao, S. B., Liu, M., & Wang, J. P. (2015). Numerical investigation of spontaneous formation of multiple detonation wave fronts in rotating detonation engine. Combustion Science and Technology, 187(12), 1867–1878.CrossRef Yao, S. B., Liu, M., & Wang, J. P. (2015). Numerical investigation of spontaneous formation of multiple detonation wave fronts in rotating detonation engine. Combustion Science and Technology, 187(12), 1867–1878.CrossRef
go back to reference Yao, S. B., Han, X. D., Liu, Y., & Wang, J. P. (2017a). Numerical study of rotating detonation engine with an array of injection holes. Shock Waves, 27(3), 467–476.CrossRef Yao, S. B., Han, X. D., Liu, Y., & Wang, J. P. (2017a). Numerical study of rotating detonation engine with an array of injection holes. Shock Waves, 27(3), 467–476.CrossRef
go back to reference Yao, S. B., Tang, X. M., Luan, M. Y., & Wang, J. P. (2017b). Numerical study of hollow rotating detonation engine with different fuel injection area ratios. Proceedings of the Combustion Institute, 36(2), 2649–2655.CrossRef Yao, S. B., Tang, X. M., Luan, M. Y., & Wang, J. P. (2017b). Numerical study of hollow rotating detonation engine with different fuel injection area ratios. Proceedings of the Combustion Institute, 36(2), 2649–2655.CrossRef
go back to reference Zhou, R., & Wang, J. P. (2012). Numerical investigation of flow particle paths and thermodynamic performance of continuously rotating detonation engines. Combustion and Flame, 159(12), 3632–3645.CrossRef Zhou, R., & Wang, J. P. (2012). Numerical investigation of flow particle paths and thermodynamic performance of continuously rotating detonation engines. Combustion and Flame, 159(12), 3632–3645.CrossRef
go back to reference Zhou, R., & Wang, J. P. (2013). Numerical investigation of shock wave reflections near the head ends of rotating detonation engines. Shock Waves, 23(5), 461–472.CrossRef Zhou, R., & Wang, J. P. (2013). Numerical investigation of shock wave reflections near the head ends of rotating detonation engines. Shock Waves, 23(5), 461–472.CrossRef
go back to reference Zhou, R., Wu, D., Liu, Y., & Wang, J. P. (2014). Particle path tracking method in two-and three-dimensional continuously rotating detonation engines. Chinese Physics B, 23(12), 124704.CrossRef Zhou, R., Wu, D., Liu, Y., & Wang, J. P. (2014). Particle path tracking method in two-and three-dimensional continuously rotating detonation engines. Chinese Physics B, 23(12), 124704.CrossRef
Metadata
Title
Continuous Detonation Engine Researches at Peking University
Authors
Jian-Ping Wang
Song-Bai Yao
Xu-Dong Han
Copyright Year
2018
DOI
https://doi.org/10.1007/978-3-319-68906-7_7

Premium Partners