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首页> 外文期刊>Journal of visualization >Vortex-shock and vortex-vortex interactions in the compressible starting jet from two beveled nozzle configurations
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Vortex-shock and vortex-vortex interactions in the compressible starting jet from two beveled nozzle configurations

机译:来自两个斜面喷嘴配置的可压缩起动喷射器中的涡旋冲击和涡旋涡流相互作用

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摘要

An experiment was conducted to investigate the flow structures in the compressible starting jet from two beveled nozzles (45° and 30° nozzle angles) of a shock tube using the schlieren technique. In the present study, the pressure ratios between the driver section and the driven section (PR) of 3.5, 7, and 10.5 corresponding to the shock wave Mach numbers (M_s) of 1.28, 1.48, and 1.59 were applied to produce three types of compressible vortex rings (CVRs). Owing to the beveled nozzle, the shock wave diffracts twice to produce two coaxial CVRs. For PR = 3.5 with 45° beveled nozzle, two shock-free CVRs are formed and merged into one primary CVR, while the two CVRs are separated from each other for the 30° beveled nozzle. The main reason is that the strength of the secondary CVR generated from the 30° beveled nozzle is much lower than that of the leading CVR. As for PR =7 and 10.5, the embedded shock and counter-rotating vortex rings (CRVRs) appear and constraint the formation of the secondary CVR. As a result, the two CVRs are merged into a primary CVR at a very early stage. In addition, for the two different beveled nozzles, the embedded shock-CVR, CRVR-CVR, and shock cell-trailing vortices interactions are observed and exhibited some differences. Moreover, by identifying the position of the primary CVR, it is found that the propagation velocity of the primary CVR generated from the beveled nozzles is significantly slower than that from a straight nozzle.
机译:进行了一种实验,以研究使用Schlieren技术的两个倾斜喷嘴(45°和30°和30°喷嘴角度)的可压缩起动喷射器中的流动结构。在本研究中,驱动器部分和3.5,7和10.5的从动部分(PR)之间的压力比对应于1.28,1.48和1.59的冲击波马赫数(M_S),以产生三种类型可压缩涡旋戒指(CVRS)。由于倾斜的喷嘴,冲击波衍射两次以产生两个同轴CVR。对于具有45°倾斜喷嘴的Pr = 3.5,形成两个无震的CVR并合并到一个主CVR中,而两个CVRS彼此分离为30°倾斜喷嘴。主要原因是从30°倾斜喷嘴产生的次级CVR的强度远低于前导CVR的强度。至于Pr = 7和10.5,嵌入式冲击和反向旋转涡旋环(CRVRS)出现并约束次级CVR的形成。结果,两个CVR在一个早期的阶段合并到主CVR中。另外,对于两个不同的倾斜喷嘴,观察到嵌入的冲击CVR,CRVR-CVR和休克电池尾部涡流相互作用并表现出一些差异。此外,通过识别主CVR的位置,发现从倾斜喷嘴产生的主CVR的传播速度显着比从直流喷嘴较慢。

著录项

  • 来源
    《Journal of visualization》 |2021年第2期|225-236|共12页
  • 作者

    Liang Qin; Yang Xiang; Hong Liu;

  • 作者单位

    J.C.Wu Center for Aerodynamics School of Aeronautics and Astronautics Shanghai Jiao Tong University Shanghai 200240 China;

    J.C.Wu Center for Aerodynamics School of Aeronautics and Astronautics Shanghai Jiao Tong University Shanghai 200240 China;

    J.C.Wu Center for Aerodynamics School of Aeronautics and Astronautics Shanghai Jiao Tong University Shanghai 200240 China;

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

    Compressible vortex rings; Vortex formation; Shock structures; Interaction;

    机译:可压缩涡旋戒指;涡旋形成;震动结构;相互作用;

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