Experimental measurement of wall shear stress in strongly disrupted flows

被引:6
|
作者
Rodriguez-Lopez, Eduardo [1 ]
Bruce, Paul J. K. [1 ]
Buxton, Oliver R. H. [1 ]
机构
[1] Imperial Coll London, Dept Aeronaut, London, England
来源
JOURNAL OF TURBULENCE | 2017年 / 18卷 / 03期
关键词
Wall-shear stress; turbulent boundary layers; hot-wire anemometry; multi-scale turbulence; grid turbulence; TURBULENT-BOUNDARY-LAYERS; SKIN FRICTION; PRESSURE;
D O I
10.1080/14685248.2016.1277734
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Mean and fluctuating wall shear stress is measured in strongly disrupted cases generated by various low-porosity wall-mounted single- and multi-scale fences. These grids generate a highly turbulent wake which interacts with the wall-bounded flow modifying the wall shear stress properties. Measurement methods are validated first against a naturally growing zero pressure gradient turbulent boundary layer showing accuracies of 1% and 4% for extrapolation and direct measurement of the mean shear stress respectively. Uncertainty associated with the root mean square level of the fluctuations is better than 2% making it possible to measure small variations originating from the different fences. Additionally, probability density functions and spectra are also measured providing further insight into the flow physics. Measurement of shear stress in the disrupted cases (grid+TBL) suggest that the flow characteristics and turbulence mechanisms remain unaltered far from the grid even in the most disrupted cases. However, a different root mean square level of the fluctuations is found for different grids. Study of the probability density functions seem to imply that there are different degrees of interaction between the inner and outer regions of the flow.
引用
收藏
页码:271 / 290
页数:20
相关论文
共 50 条
  • [41] Analyzing guard-heating to enable accurate hot-film wall shear stress measurements for turbulent flows
    Etrati, Ali
    Assadian, Elsa
    Bhiladvala, Rustom B.
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2014, 70 : 835 - 843
  • [42] Measurement of the wall pressure and shear stress distribution using molecular tagging diagnostics
    D. A. Olson
    A. M. Naguib
    M. M. Koochesfahani
    Experiments in Fluids, 2015, 56
  • [43] Improved sensitivity of micro thermal sensor for underwater wall shear stress measurement
    Pengfei Zhu
    Binghe Ma
    Chengyu Jiang
    Jinjun Deng
    Yunlong Wang
    Microsystem Technologies, 2015, 21 : 785 - 789
  • [44] Measurement of turbulent wall shear-stress using micro-pillars
    Gnanamanickam, E. P.
    Nottebrock, B.
    Grosse, S.
    Sullivan, J. P.
    Schroeder, W.
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2013, 24 (12)
  • [45] Bottom wall shear stress fluctuations in shallow-water Langmuir turbulence
    Deng, Bing-Qing
    Yang, Zixuan
    Shen, Lian
    JOURNAL OF FLUID MECHANICS, 2022, 942
  • [46] Wall Shear Stress in Transient Turbulent Pipe Flow by Local Velocity Measurement
    Brunone, Bruno
    Berni, Alessandro
    JOURNAL OF HYDRAULIC ENGINEERING, 2010, 136 (10) : 716 - 726
  • [47] Wall shear stress revisited
    Reneman R.S.
    Vink H.
    Hoeks A.P.G.
    Artery Research, 2009, 3 (2) : 73 - 78
  • [48] Measurements of the unsteady wall shear stress vector using multi-aperture defocusing microscopic particle tracking velocimetry
    Klinner, Joachim
    Willert, Christian E.
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2025, 163
  • [49] Study on the association of wall shear stress and vessel structural stress with atherosclerosis: An experimental animal study
    Teng, Zhongzhao
    Wang, Shuo
    Tokgoz, Aziz
    Taviani, Valentina
    Bird, Joseph
    Sadat, Umar
    Huang, Yuan
    Patterson, Andrew J.
    Figg, Nichola
    Graves, Martin J.
    Gillard, Jonathan H.
    ATHEROSCLEROSIS, 2021, 320 : 38 - 46
  • [50] Extreme wall shear stress events in turbulent pipe flows: spatial characteristics of coherent motions
    Guerrero, Byron
    Lambert, Martin F.
    Chin, Rey C.
    JOURNAL OF FLUID MECHANICS, 2020, 904