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The effects of cross-flow fuel injection on the reacting jet in vitiated cross-flow

机译:横流式燃料喷射对振动横流中反应射流的影响

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摘要

The effects of cross-flow fuel injection on a slotted jet flame consisting of an ethylene-air premixture are investigated experimentally. Cross-flow conditions of 900 K and 100 m/s were chosen to closely simulate the environment of a secondary combustor in a staged combustion system. It was found that increasing the cross-flow equivalence ratio (Φ∞) requires a consequent reduction in the jet equivalence ratio (Φj) for jet flame stabilization in order to avoid the formation of locally rich mixtures beyond the flammability limits of the flame. Stable flames were achieved for a low cross-flow equivalence ratio of Φ∞ = 0.4 across a range of jet equivalence ratio values and momentum flux ratios, demonstrating the ability of the transverse jet to extend the flammability limits of the cross-flow mixture. Significantly, as Φ∞is increased beyond a certain point, no ethylene is required to be present in the jet mixture, and a jet consisting only of air is able to stabilize the flame. Due to the fluidic nature of the flame stabilization mechanism of these flames, they are dubbedfluidically stabilized flames(FSF). OH* chemiluminescence and high-speed particle image velocimetry were utilized to gain deeper understanding of the flame behavior and flow field features of the FSF. In contrast to bluff-body stabilized flames, it was found that the FSF provides increased control of the flame shape, with increasing flame width and penetration for higher jet momentum flux ratios (J). The FSF was also demonstrated to be a highly dynamical phenomenon, characterized by a dominant peak frequency that is dependent on both Φjand Φ∞. Proper orthogonal decomposition of the time-resolved velocity fields shows that heat release affects the dynamics of the FSF in a similar manner to the reacting jet in cross-flow (RJICF), as demonstrated in a previous study. Finally, the flame behavior was found to be highly dependent on the cross-flow fueling mechanism, with coherent flame oscillations present when the fuel injection point is closely-coupled to the flame stabilization location.
机译:实验研究了错流燃料喷射对由乙烯-空气预混合物组成的狭缝喷射火焰的影响。选择了900 K和100 m / s的错流条件,以精确模拟分级燃烧系统中二次燃烧器的环境。已经发现,增加横流当量比(Φ∞)需要随之降低射流当量比(Φj)以稳定喷射火焰,以避免形成超出火焰可燃极限的局部富混合物。在一定范围的射流当量比值和动量通量比范围内,对于较低的横流当量比Φ∞= 0.4,可获得稳定的火焰,证明了横向射流能够扩展横流混合物的可燃性极限。值得注意的是,随着Φ∞的增加超过某个点,在射流混合物中不需要存在乙烯,并且仅由空气组成的射流能够稳定火焰。由于这些火焰的火焰稳定机制的流体性质,它们被称为流体稳定火焰(FSF)。 OH *化学发光和高速颗粒图像测速技术被用来加深对FSF的火焰行为和流场特征的了解。与钝体稳定的火焰相反,发现FSF提供了对火焰形状的增强控制,并随着火焰宽度和穿透性的增加而获得了更高的射流动量比(J)。 FSF还被证明是一种高度动态的现象,其特征在于主要的峰值频率取决于ΦjandΦ∞。如先前的研究所示,对时间分辨速度场的正确正交分解表明,放热以与横流反应射流(RJICF)相似的方式影响FSF的动力学。最后,发现火焰行为高度依赖于横流加油机制,当燃料喷射点紧密耦合到火焰稳定位置时,会出现连贯的火焰振荡。

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