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Computation of supersonic jet mixing noise for an axisymmetric CD nozzle using k-epsilon turbulence model

机译:用kε湍流模型计算轴对称CD喷嘴的超音速喷射混合噪声

摘要

The turbulent mixing noise of a supersonic jet is calculated for a round convergent-divergent nozzle at the design pressure ratio. Aerodynamic computations are performed using the PARC code with a k-epsilon turbulence model. Lighthill's acoustic analogy combined with Ribner's assumption is adopted. The acoustics solution is based upon the methodology followed by GE in the MGB code. The source correlation function is expressed as a linear combination of second-order tensors. Assuming separable second-order correlations and incorporating Batchelor's isotropic turbulence model, the source term was calculated from the kinetic energy of turbulence. A Gaussian distribution for the time-delay of correlation was introduced. The computational fluid dynamics (CFD) solution was used to obtain the source strength as well as the characteristic time-delay of correlation. The effect of sound/flow interaction was incorporated using the high frequency asymptotic solution to Lilley's equation for axisymmetric geometries. Acoustic results include sound pressure level directivity and spectra at different polar angles. The aerodynamic and acoustic results demonstrate favorable agreement with experimental data.
机译:在设计压力比的情况下,对于圆形的收敛-发散喷嘴,计算了超声速射流的湍流混合噪声。空气动力学计算是使用带有k-ε湍流模型的PARC代码进行的。采用了莱特希尔的声学类比并结合了里伯纳的假设。声学解决方案基于MGB代码中GE遵循的方法。源相关函数表示为二阶张量的线性组合。假设可分离的二阶相关性并结合Batchelor的各向同性湍流模型,则根据湍流的动能来计算源项。介绍了相关时间延迟的高斯分布。计算流体动力学(CFD)解决方案用于获得源强度以及相关的特征时延。使用高频渐近解将轴对称几何形状的Lilley方程纳入声/流相互作用的影响。声学结果包括声压级方向性和不同极角处的频谱。空气动力学和声学结果表明与实验数据吻合良好。

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