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VORTEX BREAKDOWN IN SWIRLING FUEL INJECTOR FLOWS

机译:旋流喷油器中的涡流破坏

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It is well known that the process of vortex breakdown plays an important role in establishing the near-field aerodynamic characteristics of fuel injectors, influencing fuel/air mixing and flame stability. The precise nature of the vortex breakdown can take on several forms, which have been shown in previous papers to include both a precessing vortex core (PVC) and the appearance of multiple helical vortices formed in the swirl stream shear layer. The unsteady dynamics of these particular features can play an important role in combustion induced oscillations. The present paper reports an experimental investigation, using PIV and hot-wire-anemometry, to document variations in the relative strength of PVC and helical vortex patterns as the configuration of a generic fuel injector is altered. Examples of geometric changes which have been investigated include: 1. The combination of an annular swirl stream with and without a central jet. 2. Variation in geometric details of the swirler passage, e.g. alteration in the swirler entry slots to change swirl number, and variations in the area ratio of the swirler passage. The results show that these geometric variations can influence: 3. The axial location of the origin of the helical vortices (from inside to outside the fuel injector). 4. The strength of the PVC. For example, in a configuration with no central jet (swirl number S=0.72) the helical vortex pattern was much less coherent, but the PVC was much stronger than when a central jet was present. These changes modify the magnitude of the turbulence energy in the fuel injector near field dramatically, and hence have an important influence on fuel air mixing patterns.
机译:众所周知,涡旋破坏过程在建立燃料喷射器的近场空气动力学特性,影响燃料/空气混合和火焰稳定性方面起着重要作用。涡旋破坏的精确性质可以采取多种形式,在先前的论文中已经显示出包括旋进旋涡芯(PVC)和在旋流剪切层中形成的多个螺旋形涡旋的出现。这些特定特征的非稳态动力学可以在燃烧引起的振荡中起重要作用。本文报道了一项使用PIV和热线电流测定法进行的实验研究,以记录随着通用燃料喷射器配置的变化,PVC和螺旋涡旋图案的相对强度的变化。已研究的几何变化的示例包括:1.带有和不带有中心射流的环形旋流的组合。 2.旋流器通道的几何细节变化,例如改变旋流器入口槽以改变旋流数,并改变旋流器通道的面积比。结果表明,这些几何变化会影响:3.螺旋涡旋起点的轴向位置(从喷油器的内部到外部)。 4. PVC的强度。例如,在没有中央射流的配置中(旋流数S = 0.72),螺旋涡旋图案的相干性要差得多,但PVC比存在中央射流时要强得多。这些变化极大地改变了燃料喷射器近场中湍流能量的大小,因此对燃料空气混合模式具有重要影响。

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