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首页> 外文期刊>Russian journal of physical chemistry, B. >Calculation of shock wave propagation in water containing reactive gas bubbles
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Calculation of shock wave propagation in water containing reactive gas bubbles

机译:含有反应气泡水中冲击波繁殖的计算

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The entry of a shock wave from air into water containing reactive gas (stoichiometric acetylene-oxygen mixture) bubbles uniformly distributed over the volume of the liquid has been numerically investigated using equations describing two-phase compressible viscous reactive flow. It has been demonstrated that a steady-state supersonic self-sustaining reaction front with rapid and complete fuel burnout in the leading shock wave can propagate in this bubbly medium. This reaction front can be treated as a detonation-like front or "bubble detonation." The calculated and measured velocities of the bubble detonation wave have been compared at initial gas volume fraction of 2 to 6%. The observed and calculated data are in satisfactory qualitative and quantitative agreement. The structure of the bubble detonation wave has been numerically studied. In this wave, the gas volume fraction behind the leading front is approximately 3-4 times higher than in the pressure wave that propagates in water with air bubbles when the other initial conditions are the same. The bubble detonation wave can form after the penetration of the shock wave to a small depth (similar to 300 mm) into the column of the bubbly medium. The model suggested here can be used to find optimum conditions for maximizing the efficiency of momentum transfer from the pressure wave to the bubbly medium in promising hydrojet pulse detonation engines.
机译:使用描述两相可压缩粘性反应流动的等式,在数值上研究了从空气中从空气进入含有反应性气体(化学计量乙炔 - 氧混合物)气泡的水中的含水的气泡。已经证明,在前冲击波中具有快速和完整的燃料燃烧的稳态超声波自维持反应可以在该助推中传播。该反应前部可以作为爆炸式前部或“气泡爆炸”。在初始气体体积分数为2〜6%的初始气体体积分数下比较了泡沫爆炸波的计算和测量速度。观察和计算的数据符合定性和定量协议令人满意。在数值上研究了气泡爆炸波的结构。在该波中,前线后面的气体体积分数比在其他初始条件相同时在水中传播的压力波的压力波大约3-4倍。在冲击波穿过冲击波以在起泡介质的柱中渗透到冲击波的小深度(类似于300mm)之后,可以形成气泡爆炸波。此处建议的模型可用于找到最佳条件,以使从压力波到承诺的水电脉冲爆炸发动机的压力波的动量转移效率。

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