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首页> 外文期刊>Journal of thermal analysis and calorimetry >Numerical investigation on the rotating detonation critical mode for a methane-air mixture in an annular tube using reactive Navier-Stokes equations
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Numerical investigation on the rotating detonation critical mode for a methane-air mixture in an annular tube using reactive Navier-Stokes equations

机译:用反应南路 - 斯托克斯方程对环管中甲烷 - 空气混合物旋转爆轰临界模式的数值研究

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摘要

Previous experimental studies show that gaseous detonation propagation in an annular tube can be divided into three categories, i.e., stable mode, critical mode and unstable mode. However, the mechanism of detonation propagation with the critical mode is not well understood due to insufficient experimental data. In this paper, detonation propagation with the critical mode in the annular tube was numerically studied for the methane-air mixture based on reactive Navier-Stokes equations, in which the convective term was integrated by the fifth-order weighted essentially non-oscillatory. The numerical results show that the trajectories of the triple points of the shock wave front were drawn to obtain cell structure with "petal" pattern, which is agree with the experimental results. The wall curvature plays an important role for this phenomenon. The outer wall is concave, which can continuously compress the detonation wave and make it stronger. The inner wall is convex, which can produce an isentropic expansion and decouples the reaction front from the shock wave. The transverse shock wave emanating from the triple point moving from the outer wall reignites detonation near the inner wall, which implies that compression of the outer wall plays a key role in the rotating detonation propagation. As the transverse shock wave moves away from the inner wall, the detonation wave near it gradually weakens. Because of the back and forth reflection of the transverse shock wave between the inner and outer walls, the rotating detonation wave can be maintained and its cellular structure presents "petal" pattern. Meanwhile, the averaged detonation velocity at the outer wall is higher than that at the inner wall.
机译:以往的实验研究表明,气体爆轰波在环形管中的传播可分为三类,即稳定模式、临界模式和不稳定模式。然而,由于实验数据不足,对于临界模式下的爆轰传播机理还没有很好的理解。基于反应Navier-Stokes方程,用五阶加权基本无振荡积分对流项,对甲烷-空气混合物在环形管内的临界爆轰传播进行了数值研究。数值结果表明,绘制了激波前沿三点的轨迹,得到了花瓣状的细胞结构,与实验结果吻合。壁面曲率对这种现象起着重要作用。外壁是凹面的,可以不断压缩爆轰波,使其变得更强。内壁是凸面的,它可以产生等熵膨胀,并将反应前沿与冲击波分离。从外壁移动的三点产生的横向冲击波在内壁附近重新点燃爆轰,这意味着外壁的压缩在旋转爆轰传播中起着关键作用。随着横向冲击波远离内壁,其附近的爆轰波逐渐减弱。由于横向冲击波在内外壁之间来回反射,旋转爆轰波得以维持,其细胞结构呈“花瓣”状。同时,外壁处的平均爆速高于内壁处的平均爆速。

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