Scales and self-sustained mechanism of reattachment unsteadiness in separated shock wave/boundary layer interaction

被引:0
|
作者
Zhou, Wen-Feng [1 ,2 ]
Hu, Yan-Chao [1 ,2 ]
Tang, Ming-Zhi [1 ,2 ]
Wang, Gang [1 ,2 ]
Yang, Yan-Guang [2 ,3 ]
Tang, Zhi-Gong [3 ]
机构
[1] China Aerodynam Res & Dev Ctr, Hyperveloc Aerodynam Inst HAI, Mianyang 621000, Peoples R China
[2] Natl Key Lab Aerosp Phys Fluids, Mianyang 621000, Peoples R China
[3] China Aerodynam Res & Dev Ctr, Mianyang 621000, Peoples R China
基金
国家重点研发计划;
关键词
high-speed flow; separated flows; LOW-FREQUENCY UNSTEADINESS; EXACT COHERENT STRUCTURES; TURBULENT-BOUNDARY-LAYER; DIRECT NUMERICAL-SIMULATION; GORTLER VORTICES; HYPERSONIC FLOW; MODAL-ANALYSIS; DYNAMICS; INSTABILITY; STABILITY;
D O I
10.1017/jfm.2024.825
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The spatio-temporal scales, as well as a comprehensive self-sustained mechanism of the reattachment unsteadiness in shock wave/boundary layer interaction, are investigated in this study. Direct numerical simulations reveal that the reattachment unsteadiness of a Mach 7.7 laminar inflow causes over 26 % variation in wall friction and up to 20 % fluctuation in heat flux at the reattachment of the separation bubble. A statistical approach, based on the local reattachment upstream movement, is proposed to identify the spanwise and temporal scales of reattachment unsteadiness. It is found that two different types, i.e. self-induced and random processes, dominate different regions of reattachment. A self-sustained mechanism is proposed to comprehend the reattachment unsteadiness in the self-induced region. The intrinsic instability of the separation bubble transports vorticity downstream, resulting in an inhomogeneous reattachment line, which gives rise to baroclinic production of quasi-streamwise vortices. The pairing of these vortices initiates high-speed streaks and shifts the reattachment line upstream. Ultimately, viscosity dissipates the vortices, triggering instability and a new cycle of reattachment unsteadiness. The temporal scale and maximum vorticity are estimated with the self-sustained mechanism via order-of-magnitude analysis of the enstrophy. The advection speed of friction, derived from the assumption of coherent structures advecting with a Blasius-type boundary layer, aligns with the numerical findings.
引用
收藏
页数:32
相关论文
共 50 条
  • [31] Shock Oscillation Mechanism of Highly Separated Transitional Shock-Wave/Boundary-Layer Interactions
    Nel, Philipp L.
    Schreyer, Anne-Marie
    Schrijer, Ferry F. J.
    van Oudheusden, Bas W.
    Janke, Christian
    Vasilopoulos, Ilias
    Swoboda, Marius
    AIAA JOURNAL, 2024,
  • [32] Control of unsteadiness of a shock wave/turbulent boundary layer interaction by using a pulsed-plasma-jet actuator
    Narayanaswamy, Venkateswaran
    Raja, Laxminarayan L.
    Clemens, Noel T.
    PHYSICS OF FLUIDS, 2012, 24 (07)
  • [33] Low-frequency unsteadiness of shock-wave/boundary-layer interaction in an isolator with background waves
    Wang, Ziao
    Chang, Juntao
    Hou, Wenxin
    Yu, Daren
    PHYSICS OF FLUIDS, 2020, 32 (05)
  • [34] Low-Frequency Unsteadiness of Shock Wave/Turbulent Boundary Layer Interactions
    Clemens, Noel T.
    Narayanaswamy, Venkateswaran
    ANNUAL REVIEW OF FLUID MECHANICS, VOL 46, 2014, 46 : 469 - 492
  • [35] FLOW UNSTEADINESS BY WEAK NORMAL SHOCK-WAVE TURBULENT BOUNDARY-LAYER INTERACTION IN INTERNAL FLOW
    KIM, HD
    MATSUO, K
    KAWAGOE, S
    KINOSITA, T
    JSME INTERNATIONAL JOURNAL SERIES II-FLUIDS ENGINEERING HEAT TRANSFER POWER COMBUSTION THERMOPHYSICAL PROPERTIES, 1991, 34 (04): : 457 - 465
  • [36] Modal Analysis of Cylinder-Induced Transitional Shock-Wave/Boundary-Layer Interaction Unsteadiness
    Hoffman, Eugene N. A.
    Rodriguez, Jose M.
    Cottier, Stephanie M.
    Combs, Christopher S.
    Bathel, Brett F.
    Weisberger, Joshua M.
    Jones, Stephen B.
    Schmisseur, John D.
    Kreth, Phillip A.
    AIAA JOURNAL, 2022, 60 (05) : 2730 - 2748
  • [37] Highly separated axisymmetric step shock-wave/turbulent-boundary-layer interaction
    Chandola, Gaurav
    Huang, Xin
    Estruch-Samper, David
    JOURNAL OF FLUID MECHANICS, 2017, 828 : 236 - 270
  • [38] SHOCK WAVE-BOUNDARY LAYER INTERACTION
    POPINSKI, Z
    CHEMICAL ENGINEERING PROGRESS, 1966, 62 (07) : 85 - &
  • [39] INTERACTION OF A SHOCK WAVE WITH A THERMAL BOUNDARY LAYER
    GRIFFITH, WC
    JOURNAL OF THE AERONAUTICAL SCIENCES, 1956, 23 (01): : 16 - &
  • [40] THE INTERACTION OF A REFLECTED SHOCK WAVE WITH THE BOUNDARY LAYER IN A SHOCK TUBE
    MARK, H
    JOURNAL OF THE AERONAUTICAL SCIENCES, 1957, 24 (04): : 304 - 306