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Research Article

The Methods of Control of Stabilized Detonation Location in a Supersonic Gas Flow in a Plane Channel

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Pages 1-13 | Received 31 Oct 2017, Accepted 06 Dec 2018, Published online: 24 Jan 2019
 

ABSTRACT

Using a detailed kinetic model of chemical interaction, we have studied detonation stabilization in a stoichiometric hydrogen–air mixture flowing at a supersonic velocity into a symmetric plane channel with constriction the outflow section of which exceeds the inflow one. In addition, we examined the possibility of control of stabilized detonation location in the flow.

In case of detonation initiation by energy input, the investigation of conditions of formation of a thrust developing flow with a stabilized detonation wave in the channel was conducted. The structure of the stabilized detonation wave was studied. We examined the effect of variations of the inflow Mach number, dustiness of the inflowing gas mixture, and geometric parameters of the channel on stabilized detonation location with the goal of thrust increase. In addition, the possibility of formation of the thrust developing flow with stabilized detonation in the channel without any energy consumption has been detected.

Acknowledgments

This research has been supported by the Ministry of Education and Science of the Russian Federation (contract 14.G39.31.0001 on 13.02.2017). Influence of the addition of fine inert dust particles into gas mixture to detonation stabilization has been studied with the assistance of the Russian Foundation for Basic Research (projects 16-29-01092, 18-01-00883). The research is carried out using the equipment of the shared research facilities of HPC computing resources at Lomonosov Moscow State University (Sadovnichy et al., 2013).

Additional information

Funding

This work was supported by the Ministry of Education and Science of the Russian Federation [contract 14.G39.31.0001 on 13.02.2017]; Russian Foundation for Basic Research [projects 16-29-01092, 18-01-00883].

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