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Direct numerical simulation of disturbances generated by periodic suction-blowing in a hypersonic boundary layer

机译:高超声速边界层中周期性吸吹产生的扰动的直接数值模拟

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摘要

A numerical algorithm and code are developed and applied to direct numerical simulation (DNS) of unsteady two-dimensional flow fields relevant to stability of the hypersonic boundary layer. An implicit second-order finite-volume technique is used for solving the compressible Navier-Stokes equations. Numerical simulation of disturbances generated by a periodic suction-blowing on a flat plate is performed at free-stream Mach number 6. For small forcing amplitudes, the second-mode growth rates predicted by DNS agree well with the growth rates resulted from the linear stability theory (LST) including nonparallel effects. This shows that numerical method allows for simulation of unstable processes despite its dissipative features. Calculations at large forcing amplitudes illustrate nonlinear dynamics of the disturbance flow field. DNS predicts a nonlinear saturation of fundamental harmonic and rapid growth of higher harmonics. These results are consistent with the experimental data of Stetson and Kimmel obtained on a sharp cone at the free-stream Mach number 8.
机译:开发了一种数值算法和代码,并将其应用于与高超声速边界层稳定性有关的非稳态二维流场的直接数值模拟(DNS)。隐式二阶有限体积技术用于求解可压缩的Navier-Stokes方程。在自由流马赫数为6的情况下,对平板上的周期性吸吹产生的扰动进行了数值模拟。对于较小的强迫幅度,DNS预测的第二模式增长率与线性稳定性所导致的增长率非常吻合。理论(LST),包括非平行效应。这表明数值方法尽管具有耗散特征,但仍可以模拟不稳定过程。大推力振幅的计算说明了扰动流场的非线性动力学。 DNS可以预测基本谐波的非线性饱和和高次谐波的快速增长。这些结果与Stetson和Kimmel在自由流马赫数为8的尖锥上获得的实验数据一致。

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