论文标题
冲击序列与腔剪切层在Scramjet隔离器中的相互作用
Interaction of Shock Train with Cavity Shear Layer in a Scramjet Isolator
论文作者
论文摘要
使用分离的涡流模拟(DES)研究了自启发的冲击序列流量与弹药隔离器中的空腔剪切层之间的相互作用。使用不稳定的统计和模态分析分析了通过控制背压比和更改腔前壁角的效果来改变冲击序列的效果。通过时空互相关系数分析研究了压力干扰的传播机制。在目前的数值研究中,考虑了带有空腔前壁的恒定隔离器截面,然后以2.2的马赫2.2模拟扩散器部分,三个不同的背压比。背压的变化提供了三种不同的条件。为了了解剪切层与冲击序列的相互作用的不稳定动力学,壁压的时空轨迹和中心线压力分布,时空互相关系数以及通过动态模式分解的模态分析。结果表明,低频冲击序列振荡主导了空腔振荡。壁表面和腔底壁之间的时空互相关表明,由腔内的冲击和再循环带引起的分离边界层的局部干扰的传播。动态模式分解分析显示了腔的前缘处的剪切层以及来自腔体的大涡流的下游传播。它还显示了冲击序列与腔的再循环区之间相干结构的配对。
The interaction between the self-excited shock train flow and the cavity shear layer in a scramjet isolator is investigated numerically using detached-eddy simulations (DES). The effect of changing the position of the shock train by controlling the back pressure ratio and the effect of changing the cavity front wall angle are analyzed using unsteady statistics and modal analysis. The propagation mechanism of the pressure disturbance was investigated by spatiotemporal cross-correlation coefficient analysis. In the present numerical study, a constant isolator section with a cavity front wall was considered, followed by a diffuser section simulated at Mach number 2.2 with three different back pressure ratios. The change in back pressure provides three different conditions. To understand the unsteady dynamics of the interaction of the shear layer with the shock train, the spatiotemporal trajectory of the wall pressure and the centerline pressure distribution, the spatiotemporal cross-correlation coefficient, and the modal analysis by dynamic mode decomposition are obtained. The results show that the low-frequency shock train oscillation dominates the cavity oscillation. The spatiotemporal cross-correlation between the wall surface and the cavity bottom wall indicates the propagation of local disturbances originating from the separated boundary layer caused by the shock and the recirculation zone in the corners of the cavity. Dynamic mode decomposition analysis shows the shear layer at the leading edge of the cavity and the downstream propagation of large eddies from the cavity. It also shows the pairing of coherent structures between the shock train and the recirculation zone of the cavity.