Study on Self-Excited Oscillation Suppression of Supersonic Inlet Based on Parallel Cavity

被引:2
|
作者
Cai, FeiChao [1 ]
Huang, Xing [2 ]
机构
[1] Northwestern Polytech Univ, Sch Power & Energy, Xian, Peoples R China
[2] AECC HUNAN Aviat Powerplant Res Inst, Zhuzhou, Peoples R China
来源
FRONTIERS IN ENERGY RESEARCH | 2022年 / 10卷
关键词
parallel cavity; supersonic inlet; self-excited oscillation; suppression; unsteady flow; SHOCK-TRAIN; TRAPPED VORTEX; PERFORMANCE; MECHANISM; MODEL;
D O I
10.3389/fenrg.2022.884540
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Aiming at the problem of self-excited oscillation in a supersonic inlet, the oscillation suppression of parallel cavities in a shock system is studied. Based on the shock dynamic model, the theoretical calculation model of parallel cavity under dynamic shock is established, and the effects of cavity volume and oscillation frequency on shock oscillation flow field parameters are analyzed. On this basis, an integrated numerical model including cavity and inlet and outflow fields is established, and the effects of cavity on the inlet flow field parameter distribution and parameter oscillation are compared by using unsteady numerical calculation algorithm. The theoretical calculation results show that the parallel cavity can reduce the amplitude of flow field pressure oscillation, and increasing the cavity volume is beneficial to suppress parameter oscillation. The unsteady numerical calculation of three groups of working conditions shows that the cavity changes the amplitude of parameter oscillation, and the high amplitude frequency point also decreases compared to the model without cavity. Through the alternating change of pressure between the channel and cavity during the movement of the shock wave, the cavity gas filling and overflow dampen the shock wave forward and pressure change of the mainstream, so as to suppress the self-excited oscillation.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] The origin of self-excited oscillation of double-walled carbon nanotubes
    Zou, Hang
    Jiang, Wu-Gui
    Chen, Liang
    Qin, Qing-Hua
    Lin, Yan-Wen
    MATERIALS RESEARCH EXPRESS, 2019, 6 (07):
  • [42] Self-excited oscillation produced by a phase shift: linear and nonlinear instabilities
    Linjun An
    Hiroshi Yabuno
    Nonlinear Dynamics, 2022, 107 : 587 - 597
  • [43] Large eddy simulation of self-excited oscillation inside Helmholtz oscillator
    Fang, Zhenlong
    Zeng, Fandong
    Xiong, Ting
    Wei, Wei
    Jiang, Pan
    Wu, Qiang
    Wang, Yuanshun
    Fei, Yuxuan
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2020, 126
  • [44] Self-excited oscillation produced by a phase shift: linear and nonlinear instabilities
    An, Linjun
    Yabuno, Hiroshi
    NONLINEAR DYNAMICS, 2022, 107 (01) : 587 - 597
  • [45] Activated drops: Self-excited oscillation, critical speeding and noisy transport
    Chaudhury, Manoj K.
    Goohpattader, Partho Sarathi
    EUROPEAN PHYSICAL JOURNAL E, 2013, 36 (02):
  • [46] VOLTAGE CONTROL OF PARALLEL OPERATED SELF-EXCITED INDUCTION GENERATORS
    ALBAHRANI, AH
    MALIK, NH
    IEEE TRANSACTIONS ON ENERGY CONVERSION, 1993, 8 (02) : 236 - 242
  • [47] Flow Parameters in Dominant Mode Selection of Self-Excited Oscillation in Slat Coves
    Lu, Weishuang
    Liu, Peiqing
    Guo, Hao
    Hu, Tianxiang
    AIAA JOURNAL, 2021, 59 (08) : 3195 - 3208
  • [48] Multi-objective optimization of self-excited oscillation heat exchange tube based on multiple concepts
    Cheng, Ziqiang
    Wang, Zhaohui
    Sun, Xiao
    Fu, Ting
    APPLIED THERMAL ENGINEERING, 2021, 197
  • [49] Analysis and Suppression of Self-Excited Oscillations in Pressure Servo Valve System
    Huang, Jian
    Zhang, Qiwei
    Zhao, Fan
    Liu, Xiangyu
    Wang, Tianyi
    APPLIED SCIENCES-BASEL, 2022, 12 (17):
  • [50] Generating self-excited oscillation in a class of mechanical systems by relay-feedback
    Malas, Anindya
    Chatterjee, S.
    NONLINEAR DYNAMICS, 2014, 76 (02) : 1253 - 1269