Av. Fedorov et Ta. Khmel, TYPES AND STABILITY OF DETONATION FLOWS OF ALUMINUM PARTICLES IN OXYGEN, Combustion, explosion, and shock waves, 32(2), 1996, pp. 181-190
The problem of detonation-wave structure is studied on the basis of a
mathematical model for the detonation of aluminum particles in oxygen
within the framework: of a single-velocity two-temperature continuum.
An analysis of flow types in the form of the Chapman-Jouguet strong-de
tonation and weak-detonation regimes is given. A chart of the mixture
flow regimes in the plane of the Mach number of the detonation wave an
d the ratio of the characteristic times of thermal relaxation and comb
ustion is constructed using the results of numerical experiments. The
domain of realization of only strong detonation, regimes, the manifold
of existence of weak and strong detonation regimes, and the domain of
nonexistence of stationary solutions are determined. The structural p
roperties of the solutions with an internal singular point and weak st
ructurally unstable regimes with a saddle singularity in the final sta
te are described. The stability of all types of stationary regimes aga
inst small and finite perturbations that retain the detonation-wave (D
W) velocity and the final state is shown by numerical modeling of nons
tationary detonation flows.