留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

横流作用下椭圆射流初期流动特性研究

董毅恒 张斌 吕科余 何快 张焕好 郑纯

董毅恒, 张斌, 吕科余, 等. 横流作用下椭圆射流初期流动特性研究[J]. 航空动力学报, 2025, 41(X):20250358 doi: 10.13224/j.cnki.jasp.20250358
引用本文: 董毅恒, 张斌, 吕科余, 等. 横流作用下椭圆射流初期流动特性研究[J]. 航空动力学报, 2025, 41(X):20250358 doi: 10.13224/j.cnki.jasp.20250358
DONG Yiheng, ZHANG Bin, LYU Keyu, et al. Study on characterization of initial flow of an elliptical jet in crossflow[J]. Journal of Aerospace Power, 2025, 41(X):20250358 doi: 10.13224/j.cnki.jasp.20250358
Citation: DONG Yiheng, ZHANG Bin, LYU Keyu, et al. Study on characterization of initial flow of an elliptical jet in crossflow[J]. Journal of Aerospace Power, 2025, 41(X):20250358 doi: 10.13224/j.cnki.jasp.20250358

横流作用下椭圆射流初期流动特性研究

doi: 10.13224/j.cnki.jasp.20250358
基金项目: 国家自然科学叶企孙基金(U2341215)
详细信息
    作者简介:

    董毅恒(2002-),男,硕士生,研究领域为超声速流动控制。E-mail:dongyh0299@163.com

    通讯作者:

    张焕好(1985-),女,研究员,博士,研究领域为计算流体力学。E-mail:zhanghuanhao@njust.edu.cn

  • 中图分类号: V430

Study on characterization of initial flow of an elliptical jet in crossflow

  • 摘要:

    为了研究流动控制中非圆射流与外围来流作用过程的流场特性,基于多组分可压缩Navier-Stokes方程,采用大涡模拟(LES)方法和高精度调谐中心差分(TCD)格式,对不同速度横流作用下的亚声速椭圆射流初期流动特性进行了数值研究。聚焦于射流喷出后主涡环形成、演化直至发生首次轴置换的初始发展阶段。数值结果清晰描述了横流速度对射流涡结构演化、穿透深度及混合效率的影响,得到了横流作用下非圆射流主涡环的三维流动形态演变机理,发现因横流绕射流表面运动时的切向速度有效抵消了非圆射流自诱导变形而出现的切向速度,抑制了迎流侧剪切层上肋状流向涡的生成,提升了迎流侧剪切层上周向涡管的稳定性。当横流绕过长轴两端剪切层时,内外侧切向速度差诱导长轴两端形成一对强反向流向涡对(CVP),并在射流后期发展过程中逐渐占据主导控制地位,最终导致射流截面形状转变为典型的反向涡对结构。此外,射流剪切层上反向流向涡对与背流侧涡环段的耦合作用,加剧了主涡环的破碎与失稳,使射流穿透深度降低,而混合效率得到提升。

     

  • 图 1  数值模拟结果与文献[24]的实验结果比较

    Figure 1.  Comparison of numerical simulation results with experimental results from Ref. [24]

    图 2  计算模型示意图

    Figure 2.  Schematic of the computational model

    图 3  无横流情况下,在t=0.1 ms时不同网格总量下流场特征

    Figure 3.  Flow field characteristics at different grid resolutions without crossflow at t=0.1 ms

    图 4  不同方位观察的椭圆涡环发展过程

    Figure 4.  Development of primary vortex loops viewed from different orientations

    图 5  无横流情况下轴置换过程中横截面涡核处流向涡量

    Figure 5.  Distirbution of the streamwise vorticity near the vortex core without crossflow during the process of axis switching

    图 6  Ma0=0.12时,不同时刻混合分数(f=0.8)与Q准则等值面显示的主涡环

    Figure 6.  Primary vortex loops of the elliptical jet shown by the mixture fraction (f=0.8) and the Q-criterion isosurfaces at different times for Ma0=0.12

    图 7  Ma0=0.12时,轴置换过程中横截面涡核处流向涡量

    Figure 7.  Distirbution of the streamwise vorticity near the vortex core during the process of axis switching for Ma0=0.12

    图 8  t=0.25 ms和Ma0=0.12时,不同方位展示的射流剪切层结构

    Figure 8.  Shear layer structures of jet exhibited in different orientations at t=0.25 ms and Ma0=0.12

    图 9  t=0.14 ms时,不同横流速度作用下Q准则等值面显示的主涡环形态

    Figure 9.  Primary vortex loop morphology visualized by Q-criterion isosurfaces for different crossflow velocities at t=0.14 ms

    图 10  主涡环几何特征参数随时间的变化曲线

    Figure 10.  Variations of geometric characteristic parameters of primary vortex loop with respect to time

    图 11  不同来流马赫数作用下剪切层处涡结构

    Figure 11.  Vortex structure at the shear layer for different crossflow velocities

    图 12  不同横流速度下椭圆射流穿透深度随时间的变化

    Figure 12.  Variation of penetration depth with respect to time for different crossflow velocities

    图 13  不同横流速度下t=0.36 ms时流场混合效率变化

    Figure 13.  Variation of mixing efficiency of jet flow field with respect to crossflow velocity at t=0.36 ms

    表  1  计算初始条件

    Table  1.   Simulated initial conditions

    参数 来流 射流
    γ 1.4 1.31
    ν/10−5 (m2/s) 1.57 1.68
    T/K 300 300
    p/kPa p0=100 pj=100
    下载: 导出CSV

    表  2  计算工况

    Table  2.   Simulated cases

    参数 工况1 工况2 工况3 工况4 工况5
    Ma0 0 0.12 0.15 0.2 0.3
    u0/(m/s) 0 41.7 52.1 69.4 104.2
    下载: 导出CSV
  • [1] DENG Qinghua, WANG Huihui, HE Wei, et al. Cooling characteristic of a wall jet for suppressing crossflow effect under conjugate heat transfer condition[J]. Aerospace, 2022, 9(1): 29. doi: 10.3390/aerospace9010029
    [2] 付仲议, 朱惠人, 姚春意, 等. 亚声速涡轮导叶全气膜冷却特性实验研究[J]. 推进技术, 2019, 40(1): 158-165. FU Zhongyi, ZHU Huiren, YAO Chunyi, et al. Experimental investigation of full film cooling characteristics of subsonic turbine guide vane[J]. Journal of Propulsion Technology, 2019, 40(1): 158-165. (in Chinese

    FU Zhongyi, ZHU Huiren, YAO Chunyi, et al. Experimental investigation of full film cooling characteristics of subsonic turbine guide vane[J]. Journal of Propulsion Technology, 2019, 40(1): 158-165. (in Chinese)
    [3] WANG Pengfei, LIU Jun, WANG Pei, et al. Effect of internal crossflow on impingement cooling flow and heat transfer characteristics[J]. International Communications in Heat and Mass Transfer, 2024, 159: 108119. doi: 10.1016/j.icheatmasstransfer.2024.108119
    [4] WANG Xiao, TAO Ruyi, RUAN Wenjun, et al. Numerical investigation of supersonic lateral jet interaction for subsonic projectiles with different fins at large angle of attack[J]. International Journal of Aeronautical and Space Sciences, 2021, 22(2): 264-276. doi: 10.1007/s42405-020-00314-2
    [5] CRABB D, DURAÕ D F G, WHITELAW J H. A round jet normal to a crossflow[J]. Journal of Fluids Engineering, 1981, 103(1): 142-153. doi: 10.1115/1.3240764
    [6] FRIC T F, ROSHKO A. Vortical structure in the wake of a transverse jet[J]. Journal of Fluid Mechanics, 1994, 279: 1-47. doi: 10.1017/S0022112094003800
    [7] KELSO R M, LIM T T, PERRY A E. An experimental study of round jets in cross-flow[J]. Journal of Fluid Mechanics, 1996, 306: 111-144. doi: 10.1017/S0022112096001255
    [8] MEGERIAN S, DAVITIAN J, DE B ALVES L S, et al. Transverse-jet shear-layer instabilities: Part 1 experimental studies[J]. Journal of Fluid Mechanics, 2007, 593: 93-129. doi: 10.1017/S0022112007008385
    [9] GEVORKYAN L, SHOJI T, PENG W Y, et al. Influence of the velocity field on scalar transport in gaseous transverse jets[J]. Journal of Fluid Mechanics, 2018, 834: 173-219. doi: 10.1017/jfm.2017.621
    [10] MAJANDER P, SIIKONEN T. Large-eddy simulation of a round jet in a cross-flow[J]. International Journal of Heat and Fluid Flow, 2006, 27(3): 402-415. doi: 10.1016/j.ijheatfluidflow.2006.01.004
    [11] IYER P S, MAHESH K. A numerical study of shear layer characteristics of low-speed transverse jets[J]. Journal of Fluid Mechanics, 2016, 790: 275-307. doi: 10.1017/jfm.2016.7
    [12] ZHANG Liwei, YANG V. Flow dynamics and mixing of a transverse jet in crossflow: Part Ⅰ steady crossflow[J]. Journal of Engineering for Gas Turbines and Power, 2017, 139(8): 082601. doi: 10.1115/1.4035808
    [13] HUSAIN H S, HUSSAIN A K M F. Controlled excitation of elliptic jets[J]. The Physics of Fluids, 1983, 26(10): 2763-2766. doi: 10.1063/1.864062
    [14] GRINSTEIN F F, GUTMARK E, PARR T. Near field dynamics of subsonic free square jets: a computational and experimental study[J]. Physics of Fluids, 1995, 7(6): 1483-1497. doi: 10.1063/1.868534
    [15] MILLER R S, MADNIA C K, GIVI P. Numerical simulation of non-circular jets[J]. Computers and Fluids, 1995, 24(1): 1-25. doi: 10.1016/0045-7930(94)00019-U
    [16] NEW T H, LIM T T, LUO S C. Elliptic jets in cross-flow[J]. Journal of Fluid Mechanics, 2003, 494: 119-140. doi: 10.1017/S0022112003005925
    [17] LIM T T, NEW T H, LUO S C. On the development of large-scale structures of a jet normal to a cross flow[J]. Physics of Fluids, 2001, 13(3): 770-775. doi: 10.1063/1.1347960
    [18] 关晖, 吴锤结. 湍流横向射流的大涡模拟及其涡结构特性[J]. 中国科学: G辑 物理学、力学、天文学, 2006, 36(6): 662-677. GUAN Hui, WU Chuijie. Large eddy simulation of turbulent transverse jet and its vortex structure characteristics[J]. Science in China: Series G Physics, Mechanics and Astronomy, 2006, 36(6): 662-677. (in Chinese

    GUAN Hui, WU Chuijie. Large eddy simulation of turbulent transverse jet and its vortex structure characteristics[J]. Science in China: Series G Physics, Mechanics and Astronomy, 2006, 36(6): 662-677. (in Chinese)
    [19] SALEWSKI M, STANKOVIC D, FUCHS L. Mixing in circular and non-circular jets in crossflow[J]. Flow, Turbulence and Combustion, 2008, 80(2): 255-283. doi: 10.1007/s10494-007-9119-x
    [20] 杨华, 李国能, 周昊, 等. 横向椭圆射流的大涡模拟[J]. 浙江大学学报(工学版), 2007, 41(7): 1181-1185. YANG Hua, LI Guoneng, ZHOU Hao, et al. Large eddy simulation of transverse elliptic jet[J]. Journal of Zhejiang University (Engineering Science), 2007, 41(7): 1181-1185. (in Chinese

    YANG Hua, LI Guoneng, ZHOU Hao, et al. Large eddy simulation of transverse elliptic jet[J]. Journal of Zhejiang University (Engineering Science), 2007, 41(7): 1181-1185. (in Chinese)
    [21] ZHANG Huanhao, CHEN Zhihua, LI Baoming, et al. The secondary vortex rings of a supersonic underexpanded circular jet with low pressure ratio[J]. European Journal of Mechanics: B/Fluids, 2014, 46: 172-180. doi: 10.1016/j.euromechflu.2014.03.016
    [22] PULLIN D I. A vortex-based model for the subgrid flux of a passive scalar[J]. Physics of Fluids, 2000, 12(9): 2311-2319. doi: 10.1063/1.1287512
    [23] HILL D J, PULLIN D I. Hybrid tuned center-difference-WENO method for large eddy simulations in the presence of strong shocks[J]. Journal of Computational Physics, 2004, 194(2): 435-450. doi: 10.1016/j.jcp.2003.07.032
    [24] 赵延辉. 超燃冲压发动机气态燃料射流混合机理研究[D]. 长沙: 国防科学技术大学, 2016. ZHAO Yanhui. Research on gaseous fuel mixing mechanism of transverse jet in scramjet engine[D]. Changsha: National University of Defense Technology, 2016. (in Chinese

    ZHAO Yanhui. Research on gaseous fuel mixing mechanism of transverse jet in scramjet engine[D]. Changsha: National University of Defense Technology, 2016. (in Chinese)
    [25] 张焕好, 郭则庆, 陈志华, 等. 欠膨胀椭圆射流的流动结构[J]. 航空动力学报, 2017, 32(12): 2997-3003. ZHANG Huanhao, GUO Zeqing, CHEN Zhihua, et al. Flow structure of underexpanded elliptic jet[J]. Journal of Aerospace Power, 2017, 32(12): 2997-3003. (in Chinese

    ZHANG Huanhao, GUO Zeqing, CHEN Zhihua, et al. Flow structure of underexpanded elliptic jet[J]. Journal of Aerospace Power, 2017, 32(12): 2997-3003. (in Chinese)
    [26] 张焕好, 陈志华, 姜孝海. 亚声速等膨胀方管射流轴置换现象的数值研究[J]. 推进技术, 2016, 37(2): 218-226. ZHANG Huanhao, CHEN Zhihua, JIANG Xiaohai. Numerical investigation on axis-switching of an iso-expanded subsonic square jet[J]. Journal of Propulsion Technology, 2016, 37(2): 218-226. (in Chinese

    ZHANG Huanhao, CHEN Zhihua, JIANG Xiaohai. Numerical investigation on axis-switching of an iso-expanded subsonic square jet[J]. Journal of Propulsion Technology, 2016, 37(2): 218-226. (in Chinese)
    [27] ZHANG Huanhao, CHEN Zhihua, GUO Zeqing, et al. Characteristic behavior of shock pattern and primary vortex loop of a supersonic square jet[J]. International Journal of Heat and Mass Transfer, 2017, 115: 347-363.
    [28] ZHANG Huanhao, AUBRY N, CHEN Zhihua, et al. The evolution of the initial flow structures of a highly under-expanded circular jet[J]. Journal of Fluid Mechanics, 2019, 871: 305-331. doi: 10.1017/jfm.2019.285
    [29] LEE S H, MITANI T. Mixing augmentation of transverse injection in scramjet combustor[J]. Journal of Propulsion and Power, 2003, 19(1): 115-124. doi: 10.2514/2.6087
    [30] SEGAL C. The scramjet engine[M]. Cambridge, UK: Cambridge University Press, 2009.
    [31] LIÑÁN A. Diffusion-controlled combustion[M]// PHILLIPS J W, HASSAN A. Mechanics for a new mellennium. Dordrecht, Netherlands: Springer, 2001: 487-502.
  • 加载中
图(13) / 表(2)
计量
  • 文章访问数:  195
  • HTML浏览量:  113
  • PDF量:  18
  • 被引次数: 0
出版历程
  • 收稿日期:  2025-07-30
  • 网络出版日期:  2025-11-19

目录

    /

    返回文章
    返回