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Flowfield Comparisons from Three Navier-Stokes Solvers for an Axisymmetric Separate Flow Jet

机译:轴对称独立射流的三种Navier-Stokes解算器的流场比较

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摘要

To meet new noise reduction goals, many concepts to enhance mixing in the exhaust jets of turbofan engines are being studied. Accurate steady state flowfield predictions from state-of-the-art computational fluid dynamics (CFD) solvers are needed as input to the latest noise prediction codes. The main intent of this paper was to ascertain that similar Navier-Stokes solvers run at different sites would yield comparable results for an axisymmetric two-stream nozzle case. Predictions from the WIND and the NPARC codes are compared to previously reported experimental data and results from the CRAFT Navier-Stokes solver. Similar k-epsilon turbulence models were employed in each solver, and identical computational grids were used. Agreement between experimental data and predictions from each code was generally good for mean values. All three codes underpredict the maximum value of turbulent kinetic energy. The predicted locations of the maximum turbulent kinetic energy were farther downstream than seen in the data. A grid study was conducted using the WIND code, and comments about convergence criteria and grid requirements for CFD solutions to be used as input for noise prediction computations are given. Additionally, noise predictions from the MGBK code, using the CFD results from the CRAFT code, NPARC, and WIND as input are compared to data.
机译:为了达到新的降噪目标,正在研究许多增强涡轮风扇发动机排气喷嘴中混合的概念。需要使用最新的计算流体力学(CFD)求解器进行的精确稳态流场预测,作为最新噪声预测代码的输入。本文的主要目的是确定在轴对称两流喷嘴的情况下,在不同位置运行的类似Navier-Stokes求解器会产生可比的结果。将WIND和NPARC代码的预测与先前报告的实验数据以及CRAFT Navier-Stokes求解器的结果进行比较。在每个求解器中采用了相似的k-ε湍流模型,并且使用了相同的计算网格。实验数据与每个代码的预测之间的一致性通常对于平均值而言是好的。这三个代码都低估了湍动能的最大值。最大湍动能的预测位置比数据中的更下游。使用WIND代码进行了网格研究,并给出了关于CFD解决方案的收敛标准和网格要求的注释,这些注释将用作噪声预测计算的输入。此外,还将MGBK代码的噪声预测(使用CRAFT代码,NPARC和WIND的CFD结果作为输入)与数据进行比较。

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