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Synthetic Turbulence Methods for Leading Edge Noise Predictions

机译:前沿噪声预测的合成湍流方法

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An advanced digital filter method to generate synthetic turbulence is presented for efficient two- and three-dimensional leading edge noise predictions. The technique, which is based on the Random Particle-Mesh method, produces a turbulent inflow that matches a target isotropic energy spectrum. The discretized equations for the synthetic eddies, and the input parameters needed to recover the desired turbulence statistics, are presented. Moreover, a simple and fast implementation strategy, which does not require an additional boundary condition, is presented under the frozen turbulence assumption. The method is used in a linearized Euler solver to predict turbulence-airfoil interaction noise from a number of configurations, including variations in airfoil thickness, angle of attack and Mach number. For the first time, noise predictions from a digital filter method are directly compared to those provided by synthetic turbulence based on a summation of Fourier modes. The comparison indicates that the advanced digital filter method gives enhanced performance in terms of computational cost and simulation accuracy. In addition, initial tests show that this method is capable of reproducing experimental noise measurements within 3 dB accuracy.
机译:提出了一种用于生成合成湍流的高级数字滤波器方法,以进行有效的二维和三维前沿噪声预测。该技术基于随机粒子网格方法,可产生与目标各向同性能谱相匹配的湍流。给出了合成涡流的离散方程,以及恢复所需湍流统计所需的输入参数。此外,在冻结湍流假设下,提出了一种简单,快速的实施策略,该策略不需要附加的边界条件。该方法用于线性Euler求解器中,可从多种配置(包括翼型厚度,迎角和马赫数的变化)中预测湍流与翼型的相互作用噪声。首次将基于数字滤波方法的噪声预测与基于傅立叶模式求和的合成湍流所提供的噪声预测直接进行比较。比较表明,先进的数字滤波器方法在计算成本和仿真精度方面均提供了增强的性能。此外,初步测试表明,该方法能够再现3 dB精度内的实验噪声测量值。

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