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Diffusion Combustion of a Hydrogen Microjet at Variations of its Velocity Profile and Orientation of the Nozzle in the Field of Gravitation

机译:氢微射流在重力场中的速度分布和喷嘴取向的扩散燃烧

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摘要

Experimental data on diffusion combustion of round hydrogen microjets with a parabolic and a "top-hat" mean velocity profiles at the nozzle exit at different spatial orientation of the microjets are reported. Most of all, we are interested in the behavior of the so-called bottleneck flame region of the jet and its contribution to the diffusion combustion. As is found, in the cases of the jet velocity opposite and orthogonal to the direction of the gravitational force, the main features of combustion are practically the same. Otherwise, at the velocity vector matching the direction of the gravitational force, the combustion characteristics become much different. Combustion in the bottleneck flame region is found to be more stable at the parabolic profile while the stability of combustion is reduced at the top-hat velocity distribution at the nozzle exit. Then, the flame detachment occurs in the absence of the bottleneck flame region and the microjet combustion is terminated at a much higher velocity. An inversion of the dependence l/d = f(U-0) is observed at the transition from the parabolic to the top-hat velocity profile of the jet. The ratio of the bottleneck flame region size (l) to the nozzle exit diameter (d) is l/d. The nozzle heating is shown to have a profound effect on the microjet combustion.
机译:报道了圆形氢微射流的扩散燃烧的实验数据,该圆形氢微射流具有在微射流的不同空间取向处的喷嘴出口处的抛物线形和“顶帽”平均速度曲线。最重要的是,我们对射流的所谓“瓶颈火焰区域”的行为及其对扩散燃烧的贡献感兴趣。可以发现,在射流速度与重力方向相反且正交的情况下,燃烧的主要特征实际上是相同的。否则,在与重力方向匹配的速度矢量下,燃烧特性会大不相同。发现在“瓶颈火焰区域”中的燃烧在抛物线轮廓处更稳定,而燃烧稳定性在喷嘴出口处的大礼帽速度分布处降低。然后,在没有“瓶颈火焰区域”的情况下发生火焰分离,并且微射流燃烧以更高的速度终止。在从射流的抛物线速度到高顶礼帽速度分布的过渡处,观察到依赖关系l / d = f(U-0)的倒置。 瓶颈火焰区域大小(l)与喷嘴出口直径(d)之比为l / d。喷嘴加热对微射流燃烧具有深远的影响。

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