Xu Xianghui, Jiang Jiali, Niu Zhongguo, Ning Jipeng, Liu Jie. Measurements of cylinder’s wake by Tomo-PIV[J]. Journal of Experiments in Fluid Mechanics, 2015, (5): 60-64. DOI: 10.11729/syltlx20150022
Citation: Xu Xianghui, Jiang Jiali, Niu Zhongguo, Ning Jipeng, Liu Jie. Measurements of cylinder’s wake by Tomo-PIV[J]. Journal of Experiments in Fluid Mechanics, 2015, (5): 60-64. DOI: 10.11729/syltlx20150022

Measurements of cylinder’s wake by Tomo-PIV

More Information
  • Tomographic particle image velocimetry (Tomo-PIV)is an advanced optical meas-urement technology,which can acquire three-dimensional three-components (3D3C)flow field structure quantitatively in a complete volume,and can be used as an effective method on turbu-lence,vortex interference and other complex three-dimensional flow field measurement.In order to achieve the measurement application of Tomo-PIV in the FL-5 wind tunnel with 1.5m diame-ter test section of AVIC Aerodynamics Research Institute,the wake of a cylinder with 12mm di-ameter is investigated by means of Tomo-PIV.The flow speed is 15m/s,the measurement vol-ume is illuminated by a 2 ×200 mJ laser,and four 2048 ×2048 pixels CCD cameras with 85mm lens are used to record particles images from different directions.By solving a series of engineer-ing problems,such as diffusion of particles and optical path design,we successfully obtained the Karman rollers flow structure of the cylinder’s wake.Then,we studied the method of the data processing.The measurement volume extends approximately over a region of 95mm×70mm× 8.5mm with the shortest side in the direction of the depth of field,and the particle image spatial resolution is about 20 pixels/mm.There are tens of thousands of vectors recorded at every snap-shot.We can obtain a lot of information about the flow field by Tomo-PIV,much more than that obtained by 2D PIV or stereo-PIV measurement.
  • Related Articles

    [1]DU Baihe, ZHANG Songhe, GE Qiang, WANG Maogang. Study on flow field characteristics of inert gas-air hybrid arc[J]. Journal of Experiments in Fluid Mechanics, 2022, 36(5): 69-75. DOI: 10.11729/syltlx20210052
    [2]ZHANG Xinghuan, ZHANG Pingtao, PENG Bo, YI Xian. Prediction of icing wind tunnel temperature field with machine learning[J]. Journal of Experiments in Fluid Mechanics, 2022, 36(5): 8-15. DOI: 10.11729/syltlx20210196
    [3]Fu Cheng, Zhao Bo, Xu Dachuan, Liao Daxiong, Pei Haitao, Zhu Bo, Qin Honggang. Investigation on flow turbulent characteristics of plate-fin and tube-fin heat exchanger[J]. Journal of Experiments in Fluid Mechanics, 2019, 33(6): 22-27. DOI: 10.11729/syltlx20190036
    [4]Wang Feng, Xu Jinglei, Wang Yangsheng. Study of flow field characteristics of an over-under TBCC exhaust system during mode transition process[J]. Journal of Experiments in Fluid Mechanics, 2019, 33(3): 68-75. DOI: 10.11729/syltlx20190037
    [5]Gong Jishuang, Zhou Lin, Zhang Yining, Teng Honghui. Investigation on flow field structure of rotating detonation using the method of characteristics[J]. Journal of Experiments in Fluid Mechanics, 2019, 33(1): 89-96. DOI: 10.11729/syltlx20180072
    [6]Liao Daxiong, Chen Jiming, Zheng Juan, Chen Qin, Pei Haitao, Wu Shenghao. General performance of 0.6m continuous transonic wind tunnel[J]. Journal of Experiments in Fluid Mechanics, 2018, 32(6): 88-93. DOI: 10.11729/syltlx20170086
    [7]Yang Hong, Luo Yue, Wu Dong, Zhou Ping. Study on supersonic turbulence plate ablation flow field in arc heater[J]. Journal of Experiments in Fluid Mechanics, 2018, 32(4): 72-77. DOI: 10.11729/syltlx20170181
    [8]Yu Mingxing, Bai Shuxin, Xu Xiaoliang, Cao Zhanwei. Research on method for evaluating the thermal protective performance of non-catalysis material in non-equilibrium flow[J]. Journal of Experiments in Fluid Mechanics, 2017, 31(4): 84-89. DOI: 10.11729/syltlx20170084
    [9]Luo Yue, Zhou Wei, Yang Hong, Chen Wei. CFD analysis of the arc heater turbulent flow field of flat plate testing[J]. Journal of Experiments in Fluid Mechanics, 2017, 31(2): 86-92. DOI: 10.11729/syltlx20160088
    [10]Yang Bo, Liu Sen. Investigation of the performance of flow field in supersonic/hypersonic wind tunnel with different test section geometry configurations[J]. Journal of Experiments in Fluid Mechanics, 2014, (4): 59-64. DOI: 10.11729/syltlx20130023
  • Cited by

    Periodical cited type(18)

    1. 韩笑,高创,郑怡彤,刘小兵. 切角凹槽矩形截面桥塔的气动特性试验研究. 石家庄铁道大学学报(自然科学版). 2024(01): 9-15+23 .
    2. 白桦,刘博祥,姬乃川,李加武. 节段模型二元端板合理尺寸估算方法. 振动与冲击. 2023(02): 312-320 .
    3. 王仰雪,刘庆宽,靖洪淼,李震,孙一飞. 倾斜栏杆对流线型箱梁涡激振动性能影响的试验研究. 振动与冲击. 2023(06): 232-239+254 .
    4. 于畅,仇法梅,田学东,杨群,刘小兵. 圆角矩形柱平均气动力特性的雷诺数效应试验研究. 石家庄铁道大学学报(自然科学版). 2023(02): 29-34 .
    5. 杨群,于畅,刘小兵,刘庆宽. 不同圆角率的方形断面斯特罗哈数的雷诺数效应研究. 振动与冲击. 2023(11): 223-231 .
    6. 刘庆宽,王仰雪,孙一飞,李震,韩原,靖洪淼. 栏杆高度对流线型箱梁涡振性能影响的试验研究. 湖南大学学报(自然科学版). 2023(07): 140-150 .
    7. 刘路路,杨皓然,邹云峰,何旭辉,韩艳,陈志强. 公铁同层双幅非对称主梁气动干扰特性研究. 铁道科学与工程学报. 2023(10): 3861-3872 .
    8. 杨群,于畅,于文文,刘小兵. 圆角方柱气动特性的风洞试验研究. 振动与冲击. 2023(24): 59-68 .
    9. 韩振,李波,甄伟,杨庆山,田玉基. 宽厚比为5的超高层建筑风荷载特性研究. 哈尔滨工程大学学报. 2022(02): 196-202 .
    10. 张庆华,马文勇,杨杰,张彦,周帅伟. 不同风倾角下典型等边角钢静风力风洞试验研究. 振动工程学报. 2022(02): 277-283 .
    11. 白桦,王涵,姬乃川,李加武. 节段模型长宽比对风洞测力试验及计算分析的影响. 中国公路学报. 2022(08): 202-212 .
    12. 杨群,刘庆宽,韩瑞,刘小兵. 不同圆角率的方形断面气动特性的雷诺数效应. 振动与冲击. 2020(04): 150-156 .
    13. 沈国辉,姚剑锋,郭勇,邢月龙,楼文娟. 直径30 cm圆柱的气动力参数和绕流特性研究. 振动与冲击. 2020(06): 22-28 .
    14. 温青,池俊豪,华旭刚,王修勇,孙洪鑫. 端部条件和展弦比对矩形断面节段模型气动力特征的影响. 实验流体力学. 2020(04): 36-43 . 本站查看
    15. 任若松,梁新华,刘小兵,马文勇,刘庆宽. 准流线型桥梁断面气动力特性的雷诺数效应研究. 工程力学. 2020(S1): 139-144+167 .
    16. 李海飞,梁新华,孙一飞,崔会敏,刘庆宽. 流线型桥梁断面表面脉动风荷载特性研究. 工程力学. 2020(S1): 242-248+260 .
    17. 马文勇,汪冠亚,郑熙,陈铁,李智,张程远,方平治. 端部状态对斜置圆柱气动力分布的影响. 实验流体力学. 2019(02): 43-50 . 本站查看
    31. 杨群,刘庆宽,孙亚松,刘小兵. 圆角方形断面气动特性试验. 振动.测试与诊断. 2020(01): 140-147+208 .

    Other cited types(16)

Catalog

    Article Metrics

    Article views (226) PDF downloads (29) Cited by(34)
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return
    x Close Forever Close