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Experimental investigation of starting characteristics and wave propagation from a shallow open cavity and its acoustic emission at supersonic speed

机译:超声速度浅滩浅腔起动特性和波传播的实验研究及其声发射

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摘要

Experiments were carried out on a shallow open cavity (L/D = 5) at a supersonic Mach number (M = 1.8) to understand its transient starting characteristics, wave propagation (inside and outside the cavity) during one vortex shedding cycle, and acoustic emission. Starting characteristics and wave propagation were visualized through time resolved schlieren images, while acoustic emissions were captured through unsteady pressure measurements. Results showed a complex shock system during the starting process which includes characteristics of the bifurcated shock system, shock train, flow separation, and shock wave boundary layer interaction. In one vortex shedding cycle, vortex convection from cavity leading edge to cavity trailing edge was observed. Flow features outside the cavity demonstrated the formation and downstream movement of a lambda-shock due to the interaction of shock from the cavity leading edge and shock due to vortex and generation of waves on account of shear layer impingement at the cavity trailing edge. On the other hand, interesting wave structures and its propagation were monitored inside the cavity. In one vortex shedding cycle, two waves such as a reflected compression wave from a cavity leading edge in the previous vortex shedding cycle and a compression wave due to the reflection of Mach wave at the cavity trailing edge corner in the current vortex shedding cycle were visualized. The acoustic emission from the cavity indicated that the 2nd to 4th modes/tones are dominant, whereas the 1st mode contains broadband spectrum. In the present studies, the cavity feedback mechanism was demonstrated through a derived parameter coherence coefficient. Published by AIP Publishing.
机译:在超声波马赫数(M = 1.8)的浅开腔(L / D = 5)上进行实验,以了解其在一个涡旋脱落周期期间的瞬态启动特性,波传播(腔内和腔内)和声学排放。通过时间分辨的Schlieren图像可视化启动特性和波传播,而声音发射通过不稳定的压力测量捕获。结果在起始过程中显示了复杂的冲击系统,包括分叉的冲击系统,冲击火车,流量分离和冲击波边界层相互作用的特性。在一个涡旋脱落周期中,观察到从腔前缘到腔后缘的涡流对流。腔外的流动特征在于从腔前缘的冲击相互作用,由于涡流引起的湿度和波浪的产生,因此由于涡流引起的脉冲的相互作用,并且由于腔腔后缘处的剪切层撞击而导致的λ冲击的形成和下游运动。另一方面,在腔内监测有趣的波结构及其传播。在一个涡旋脱落周期中,在当前涡旋脱落周期中的腔后沿边缘处的马赫波的反射,诸如来自先前涡旋脱落周期中的腔前沿的反射压缩波等两个波是可视化的。腔的声发射表明,第2到第4模式/音调是显性的,而第1模式包含宽带频谱。在本研究中,通过衍生的参数相干系数来证明腔反馈机制。通过AIP发布发布。

著录项

  • 来源
    《Physics of fluids》 |2018年第1期|共11页
  • 作者单位

    ISRO Prop Res Complex Tirunelveli 627133 Tamil Nadu India;

    Vikram Sarabhai Space Ctr Aeronaut Ent Thiruvananthapuram 695022 Kerala India;

    Indian Inst Technol Guwahati Mech Engn Dept Gauhati 781039 Assam India;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

  • 入库时间 2022-08-19 18:20:50

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