Uncovering wall-shear stress dynamics from neural-network enhanced fluid flow measurements

被引:1
|
作者
Lagemann, Esther [1 ]
Brunton, Steven L. [1 ]
Lagemann, Christian [1 ]
机构
[1] Univ Washington, Dept Mech Engn, Seattle, WA 98195 USA
关键词
wall-shear stress; neural networks; flow measurements; particle-image velocimetry; TURBULENT-BOUNDARY-LAYER; SINGLE-PIXEL RESOLUTION; BIOMECHANICAL FORCES; DRAG REDUCTION; PIV; MODEL; WATER;
D O I
10.1098/rspa.2023.0798
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Accurate prediction and measurement of wall-shear stress dynamics in fluid flows is crucial in domains as diverse as transportation, public utility infrastructure, energy technology and human health. However, we still lack adequate experimental methods that simultaneously capture the temporal and the spatial behaviour of the wall-shear stress. In this contribution, we present a holistic approach that derives these dynamics from particle-image velocimetry (PIV) measurements using a deep optical flow estimator with physical knowledge. While the experimental measurements resemble state-of-the-art PIV set-ups, the established particle image processing is replaced by a deep neural network specifically tailored to extract velocity and wall-shear stress information. Since this WSSflow framework operates at the original image resolution, it provides the respective flow field information at a much higher spatial resolution compared with state-of-the-art PIV processing. The results show that this per-pixel approach is essential for an accurate wall-shear stress estimation. The validity and physical correctness of the derived flow quantities are demonstrated with synthetic and real-world experimental data of a turbulent channel flow, a wavy turbulent channel flow and an elastic blood vessel flow. Where baseline data are available for comparison, the instantaneous and time-averaged wall-shear stress predictions accurately follow the ground truth data.
引用
收藏
页数:24
相关论文
共 50 条
  • [1] Predicting the wall-shear stress and wall pressure through convolutional neural networks
    Balasubramanian, A. G.
    Guastoni, L.
    Schlatter, P.
    Azizpour, H.
    Vinuesa, R.
    INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2023, 103
  • [2] Wall-shear stress patterns of coherent structures in turbulent duct flow
    Grosse, Sebastian
    Schroder, Wolfgang
    JOURNAL OF FLUID MECHANICS, 2009, 633 : 147 - 158
  • [3] Simultaneous Stereo PIV and MPS3 Wall-Shear Stress Measurements in Turbulent Channel Flow
    Maeteling, Esther
    Klaas, Michael
    Schroeder, Wolfgang
    OPTICS, 2020, 1 (01): : 40 - 51
  • [4] High spanwise wall-shear stress events in turbulent duct flow
    Grosse, S.
    Schroeder, W.
    ADVANCES IN TURBULENCE XII - PROCEEDINGS OF THE 12TH EUROMECH EUROPEAN TURBULENCE CONFERENCE, 2009, 132 : 935 - +
  • [5] Measurements of the wall-shear stress distribution in turbulent channel flow using the micro-pillar shear stress sensor MPS3
    Liu, Yiou
    Klaas, Michael
    Schroeder, Wolfgang
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2019, 106 : 171 - 182
  • [6] In vivo blood flow and wall shear stress measurements in the vitelline network
    C. Poelma
    P. Vennemann
    R. Lindken
    J. Westerweel
    Experiments in Fluids, 2008, 45 : 703 - 713
  • [7] In vivo blood flow and wall shear stress measurements in the vitelline network
    Poelma, C.
    Vennemann, P.
    Lindken, R.
    Westerweel, J.
    EXPERIMENTS IN FLUIDS, 2008, 45 (04) : 703 - 713
  • [8] Quantitative infrared-thermography for wall-shear stress measurement in laminar flow
    Mayer, R
    Henkes, RAWM
    Van Ingen, JL
    INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1998, 41 (15) : 2347 - 2360
  • [9] Spatial Resolution Correction for Electrochemical Wall-shear Stress Measurements using Rectangular Sensors
    Fadla, F.
    Chovet, R.
    Cornu, D.
    Lippert, M.
    Aloui, F.
    Keirsbulck, L.
    JOURNAL OF APPLIED FLUID MECHANICS, 2016, 9 (03) : 1309 - 1319
  • [10] On the Wall Shear Stress Gradient in Fluid Dynamics
    Cherubini, C.
    Filippi, S.
    Gizzi, A.
    Nestola, M. G. C.
    COMMUNICATIONS IN COMPUTATIONAL PHYSICS, 2015, 17 (03) : 808 - 821