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Hydrodynamic instabilities and transverse waves in propagation mechanism of gaseous detonations
Institution:1. Science and Technology on Scramjet Laboratory, China Aerodynamics Research and Development Center, China;2. Research Center of Combustion Aerodynamics, Southwest University of Science and Technology, China;1. Federal Science Center “Scientific Research Institute for System Analysis of Russian Academy of Sciences”, 36-1 Nakhimovskiy pr., Moscow, 117218, Russia;2. Moscow Lomonosov State University, Leninskie Gory 1, Moscow, 119992, Russia;1. Faculty of Mechanics and Mathematics, Moscow Lomonosov State University, Moscow 119992, Russia;2. Scientific Research Institute for System Studies of Russian Academy of Sciences, Moscow 117218, Russia;3. University of Birjand, Birjand, Iran
Abstract:The present study examines the role of transverse waves and hydrodynamic instabilities mainly, Richtmyer–Meshkov instability (RMI) and Kelvin–Helmholtz instability (KHI) in detonation structure using two-dimensional high-resolution numerical simulations of Euler equations. To compare the numerical results with those of experiments, Navier–Stokes simulations are also performed by utilizing the effect of diffusion in highly irregular detonations. Results for both moderate and low activation energy mixtures reveal that upon collision of two triple points a pair of forward and backward facing jets is formed. As the jets spread, they undergo Richtmyer–Meshkov instability. The drastic growth of the forward jet found to have profound role in re-acceleration of the detonation wave at the end of a detonation cell cycle. For irregular detonations, the transverse waves found to have substantial role in propagation mechanism of such detonations. In regular detonations, the lead shock ignites all the gases passing through it, hence, the transverse waves and hydrodynamic instabilities do not play crucial role in propagation mechanism of such regular detonations. In comparison with previous numerical simulations present simulation using single-step kinetics shows a distinct keystone-shaped region at the end of the detonation cell.
Keywords:Detonation structure  Richtmyer–Meshkov instability  Kelvin–Helmholtz instability  Transverse waves  Keystone region
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