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An analysis of fuel-oxidizer mixing and combustion induced by swirl coaxial jet injector with a model of gas-gas injection

机译:旋流同轴喷射器引起的燃料-氧化剂混合与燃烧的气喷模型分析。

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Mixing and combustion characteristics of swirl coaxial jet injector for gas-liquid injection are investigated numerically with a model of gas-gas injection. The gas-liquid injector, widely used in a high-performance combustor, consists of a central oxidizer post and peripheral fuel holes for fluid injection. The gaseous oxidizer passes through a central passage and liquid kerosene is injected tangentially for annular swirl flow. Upon injection, kerosene fuel is assumed to be vaporous because it is heated up to around its critical temperature while passing through a regenerative cooling channel before its injection to the chamber. With this assumption, the process of interaction between fuel and oxidizer inside the injector can be approximated to be gas-gas interaction. In addition to the model of gas-gas injection, an actual condition with high chamber pressure is scaled down to a model condition with an atmospheric pressure for investigation of fundamental features of mixing and combustion. From the numerical results calculated with this modeling and scaling, it is found that the spreading angle of the mixture jet and flame is decreased with recess length of the oxidizer post and flame is anchored more stably with it. Momentum flux ratio is another controlling parameter for spreading angle, flame shape, and reaction.
机译:利用气体-气体喷射模型,对旋流同轴射流喷射器的气化混合特性和燃烧特性进行了数值研究。气液喷射器广泛用于高性能燃烧器,由中央氧化柱和用于流体喷射的外围燃料孔组成。气态氧化剂通过中央通道,并且切向注入液态煤油以产生环形涡流。在注入时,煤油燃料被认为是气态的,因为它在被注入到燃烧室之前,在经过再生冷却通道的同时被加热到其临界温度左右。在此假设下,喷射器内的燃料与氧化剂之间的相互作用过程可以近似为气体-气体相互作用。除了气体-气体喷射的模型之外,具有高腔室压力的实际条件被缩小到具有大气压的模型条件,以研究混合和燃烧的基本特征。从通过该建模和缩放计算的数值结果中,发现随着氧化剂柱的凹进长度,混合物射流和火焰的扩散角减小,并且火焰更稳定地锚定。动量通量比是扩展角,火焰形状和反应的另一个控制参数。

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