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Effects of boundary layer on flame propagation generated by forced ignition behind an incident shock wave

机译:边界层对入射冲击波后强制点火产生的火焰传播的影响

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摘要

To study the effects of the boundary layer on the deflagration to detonation transition (DDT) process, the mixture behind an incident shock wave was ignited using laser breakdown. Ignition timing was controlled so that the interaction of the resulting flame with a laminar or turbulent boundary layer could be examined. In the case of the interaction with a laminar boundary layer, wrinkling of the flame was observed after the flame reached the corner of the channel. On the other hand, interaction with the turbulent boundary layer distorted the flame front and increased the spreading rate of the flame followed by prompt DDT. The inner structure of the turbulent boundary layer plays an important role in the DDT process. The region that distorted the flame within the turbulent boundary layer was found to be the intermediate region , where y is the distance from the wall and is the boundary layer thickness. The flame disturbance by the turbulent motions is followed by the flame interaction with the inner layer near the wall, which in turn generates a secondary-ignition kernel that produced a spherical accelerating flame, which ultimately led to the onset of detonation. After the flame reached the intermediate region, the time required for DDT was independent of the ignition position. The effect of the boundary layer on the propagating flame, thus, became relatively small after the accelerating flame was generated.
机译:为了研究边界层对爆燃-爆轰过渡(DDT)过程的影响,使用激光击穿点燃了入射冲击波后面的混合物。控制点火正时,以便可以检查生成的火焰与层流或湍流边界层的相互作用。在与层状边界层相互作用的情况下,在火焰到达通道的拐角之后观察到火焰起皱。另一方面,与湍流边界层的相互作用使火焰前锋变形,并增加了火焰的扩散速率,随后迅速进行了滴滴涕检测。湍流边界层的内部结构在DDT过程中起着重要作用。发现在湍流边界层内使火焰变形的区域是中间区域,其中y是距壁的距离,并且是边界层的厚度。在湍流运动引起的火焰扰动之后,火焰与壁附近的内层相互作用,继而产生了二次点火核,产生了球形的加速火焰,最终导致了爆炸的开始。火焰到达中间区域后,DDT所需的时间与点火位置无关。因此,在产生加速火焰之后,边界层对传播火焰的影响变得相对较小。

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