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火箭技术

压力不匹配混合层中激波与流场结构的实验研究

  • 张冬冬 ,
  • 谭建国 ,
  • 吕良
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  • 国防科学技术大学高超声速冲压发动机技术重点实验室,长沙 410073

张冬冬(1990-),男,江苏泰州人,博士研究生,研究方向:高超声速推进技术。

收稿日期: 2015-05-10

  网络出版日期: 2025-05-30

基金资助

国家自然科学基金(11272351;91441121);湖南省研究生科研创新项目(CX2016B001)资助

Experimental Investigation on Shock Waves and Flow Structures in Pressure Unmatched Mixing Layer

  • ZHANG Dongdong ,
  • TAN Jianguo ,
  • LYU Liang
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  • Science and Technology on Scramjet Laboratory, National University of Defense Technology, Changsha 410073, China

Received date: 2015-05-10

  Online published: 2025-05-30

摘要

为了研究压力不匹配混合层的流动结构以及激波与湍流边界层的相互作用,采用基于纳米粒子的平面激光散射技术(NPLS)和伪彩色处理方法获得了流场中Kelvin-Helmholtz涡、激波、湍流边界层以及边界层分离泡等流动精细结构。研究结果表明:压力不匹配导致混合层的转换位置提前,大尺度涡的结构更加破碎,混合层向压力低的一侧发展。激波的作用使得边界层在激波入射点之后增厚,湍流脉动的加剧导致了激波入射点发生前后的偏移。

本文引用格式

张冬冬 , 谭建国 , 吕良 . 压力不匹配混合层中激波与流场结构的实验研究[J]. 弹箭与制导学报, 2016 , 36(3) : 65 -68 . DOI: 10.15892/j.cnki.djzdxb.2016.03.018

Abstract

Nanoparticle-based planar laser scattering (NPLS)technique and pseudo-color processing technology were employed to investigate flow structures and interaction of shock waves and turbulent boundary layer.The images clearly displayed fine flow structures such as Kelvin-Helmholtz vortices, shock waves, turbulent boundary layer and separation bubble.The results show that the transition position of mixing layer advances and large scale structures become crushed due to the unmatched pressure.Meanwhile, the development direction is downside, which has lower pressure.Because of the interaction of shock waves and turbulent boundary layer, the boundary layer becomes thicker behind incidence point.Besides, the intensification of turbulence fluctuations is responsible for movement of incidence point.

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