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Numerical Investigation of Second Mode Attenuation over Carbon/Carbon Surfaces on a Sharp Slender Cone

机译:尖细锥上碳/碳表面第二模态衰减的数值研究

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We have carried out axisymmetric numerical simulations of a spatially developing hypersonic boundary layer over a sharp 7~c-half-angle cone at M_x = 7.5 inspired by the experimental investigations by Wagner (2015). Simulations are first performed with impermeable (or solid) walls with a one-time broadband pulse excitation applied upstream to determine the most convectively-amplified frequencies resulting in the range 260kHz - 400kHz, consistent with experimental observations of second-mode instability waves. Subsequently, we introduce harmonic disturbances via continuous periodic suction and blowing at 270kHz and 350kHz. For each of these forcing frequencies complex impedance boundary conditions (IBC), modeling the acoustic response of two different carbon/carbon (C/C) ultrasonically absorptive porous surfaces, are applied at the wall. The IBCs are derived as an output of a pore-scale aeroacoustic analysis - the inverse Helmholtz Solver (iHS) - which is able to return the broadband real and imaginary components of the surface-averaged impedance. The introduction of the IBCs in all cases leads to a significant attenuation of the harmonically-forced second-mode wave. In particular, we observe a higher attenuation rate of the introduced waves with frequency of 350kHz in comparison with 270kHz, and, along with the iHS impedance results, we establish that the C/C surfaces absorb acoustic energy more effectively at higher frequencies.
机译:我们已根据Wagner(2015)的实验研究,对M_x = 7.5的7〜c半角圆锥体上的空间发展的高超声速边界层进行了轴对称数值模拟。首先使用不可渗透的(或固体)壁进行模拟,并在上游施加一次宽带脉冲激励,以确定对流放大的最大频率,从而产生260kHz-400kHz的频率,这与对第二种模式不稳定性波的实验观察一致。随后,我们通过连续的周期性吸力和270kHz和350kHz吹气引入谐波干扰。对于这些强迫频率中的每一个,在壁上应用了模拟两个不同的碳/碳(C / C)超声吸收性多孔表面的声学响应模型的复阻抗边界条件(IBC)。 IBC是作为孔尺度航空声学分析的输出-逆亥姆霍兹求解器(iHS)导出的,该逆向亥姆霍兹求解器能够返回表面平均阻抗的宽带实部和虚部。在所有情况下,IBC的引入都会导致谐波强迫的第二模式波的明显衰减。特别是,与270kHz相比,我们观察到频率为350kHz的引入波的衰减率更高,并且与iHS阻抗结果一起,我们确定C / C表面在更高的频率下更有效地吸收声能。

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