The Mechanism of Resonant Amplification of One-Dimensional Detonation Propagating in a Non-Uniform Mixture

A. Lopato, Pavel Utkin
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Abstract

The propagation of detonation waves (i.e., supersonic combustion waves) in non-uniform gaseous mixtures has become a matter of interest over the past several years due to the development of rotating detonation engines. It was shown in a number of recent theoretical studies of one-dimensional pulsating detonation that perturbation of the parameters in front of the detonation wave can lead to a resonant amplification of intrinsic pulsations for a certain range of perturbation wavelengths. This work is dedicated to the clarification of the mechanism of this effect. One-dimensional reactive Euler equations with single-step Arrhenius kinetics were solved. Detonation propagation in a gas with sine waves in density was simulated in a shock-attached frame of reference. We carried out a series of simulations, varying the wavelength of the disturbances. We obtained a non-linear dependence of the amplitude of these pulsations on the wavelength of disturbances with resonant amplification for a certain range of wavelengths. The gain in velocity was about 25% of the Chapman–Jouguet velocity of the stable detonation wave. The effect is explained using the characteristic analysis in the x-t diagram. For the resonant case, we correlated the pulsation period with the time it takes for the C+ and C− characteristics to travel through the effective reaction zone. A similar pulsation mechanism is realized when a detonation wave propagates in a homogeneous medium.
在非均匀混合物中传播的一维爆破的共振放大机理
在过去几年中,由于旋转爆燃发动机的发展,爆燃波(即超音速燃烧波)在非均匀气态混合物中的传播已成为一个令人感兴趣的问题。最近一些关于一维脉动爆轰的理论研究表明,在一定的扰动波长范围内,对爆轰波前方参数的扰动会导致本征脉动的共振放大。本研究致力于阐明这种效应的机理。采用单步阿伦尼乌斯动力学求解了一维反应欧拉方程。在冲击附加参照系中模拟了密度为正弦波的气体中的爆破传播。我们进行了一系列模拟,改变了扰动的波长。我们得到了这些脉动的振幅与扰动波长的非线性关系,在一定波长范围内具有共振放大作用。速度增益约为稳定爆轰波 Chapman-Jouguet 速度的 25%。这种效应可以用 x-t 图中的特性分析来解释。对于共振情况,我们将脉动周期与 C+ 和 C- 特性穿过有效反应区所需的时间相关联。当爆轰波在均质介质中传播时,也会产生类似的脉动机制。
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