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Effects of injection pressure variation on mixing in a cold supersonic combustor with kerosene fuel

机译:喷射压力变化对冷超声速燃烧器与煤油混合的影响

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摘要

Spray jet in cold kerosene-fueled supersonic flow has been characterized under different injection pressures to assess the effects of the pressure variation on the mixing between incident shock wave and transverse cavity injection. Based on the real scramjet combustor, a detailed computational fluid dynamics model is developed. The injection pressures are specified as 0.5, 1.0, 2.0, 3.0 and 4.0 MPa, respectively, with the other constant operation parameters (such as the injection diameter, angle and velocity). A three dimensional Couple Level Set & Volume of Fluids approach incorporating ari improved Kelvin-Helmholtz & Rayleigh-Taylor model is used to investigate the interaction between kerosene and supersonic air. The numerical simulations primarily concentrate on penetration depth, span expansion area, angle of shock wave and sauter mean diameter distribution of the kerosene droplets with/without evaporation. Validation has been implemented by comparing the calculated against the measured in literature with good qualitative agreement. Results show that the penetration depth, span-wise angle and expansion area of the transverse cavity jet are all increased with the injection pressure. However, when the injection pressure is further increased, the value in either penetration depth or expansion area increases appreciably. This study demonstrates the feasibility and effectiveness of the combination of Couple Level Set & Volume of Fluids approach and an improved Kelvin-Helmholtz & Rayleigh-Taylor model, in turn providing insights into scramjet design improvement.
机译:煤油为燃料的超声速冷流中的喷射流已经在不同的喷射压力下进行了表征,以评估压力变化对入射冲击波和横向腔喷射之间混合的影响。基于真正的超燃冲压燃烧器,开发了详细的计算流体动力学模型。注射压力分别指定为0.5、1.0、2.0、3.0和4.0 MPa,并带有其他恒定的操作参数(例如注射直径,角度和速度)。结合改进的Kelvin-Helmholtz和Rayleigh-Taylor模型的三维耦合液位和流体体积方法用于研究煤油与超音速空气之间的相互作用。数值模拟主要集中在有/无蒸发的煤油液滴的渗透深度,跨度扩展面积,冲击波角度和苏特平均直径分布上。通过将计算结果与文献中测得的结果进行比较,具有良好的定性一致性,从而进行了验证。结果表明,横向腔射流的穿透深度,跨度角和扩张面积均随注入压力的增加而增加。然而,当进一步增加注射压力时,穿透深度或膨胀面积中的值会明显增加。这项研究证明了结合液面高度和流体体积方法与改进的Kelvin-Helmholtz和Rayleigh-Taylor模型相结合的可行性和有效性,进而为改进超燃冲压发动机的设计提供了见识。

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