A digital holography set-up for 3D vortex flow dynamics

被引:14
作者
Lebon, Benoit [1 ]
Perret, Gaele [1 ]
Coetmellec, Sebastien [2 ]
Godard, Gilles [2 ]
Grehan, Gerard [2 ]
Lebrun, Denis
Brossard, Jerome [1 ]
机构
[1] Normandie Univ, UNIHAVRE, CNRS, LOMC, F-76600 Le Havre, France
[2] Normandie Univ, UNIROUEN, INSA Rouen, CNRS,CORIA, F-76000 Rouen, France
关键词
IN-LINE HOLOGRAPHY; PARTICLE IMAGE VELOCIMETRY; PLATE; WAVES; GENERATION; VELOCITY; RECONSTRUCTION; LOCATION; FIDELITY; TRACKING;
D O I
10.1007/s00348-016-2187-8
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
In the present paper, a digital in-line holography (DIH) set-up, with a converging beam, is used to take three-dimensional (3D) velocity measurements of vortices. The vortices are formed periodically at the edges of a submerged horizontal plate submitted to regular waves. They take the form of vortex filaments that extend from side to side of the channel. They undergo strongly three-dimensional instability mechanisms that remain very complicated to characterize experimentally. The experiments are performed in a 10 x 0.3 x 0.3 m(3) wave flume. The DIH set-up is performed using a modulated laser diode emitting at the wavelength of 640 nm and a lensless CCD camera. The beam crosses the channel side to side. To reveal the flow dynamics, 30-mu m hydrogen bubbles are generated at the edge of the plate to serve as tracers. Their locations are recorded on the holograms multiple times to access the dynamics of the flow. This method leads to an accuracy in the order of 100 mu m on the axial location. Those measurements have been validated with stereo-PIV measurements. A very good agreement is found on time-averaged velocity fields between the two techniques.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Nonlinear dynamics of Airy-vortex 3D wave packets: emission of vortex light waves
    Driben, Rodislav
    Meier, Torsten
    [J]. OPTICS LETTERS, 2014, 39 (19) : 5539 - 5542
  • [22] Numerical simulation of 3D vorticity dynamics with the Diffused Vortex Hydrodynamics method
    Durante, D.
    Marrone, S.
    Brommel, D.
    Speck, R.
    Colagrossi, A.
    [J]. MATHEMATICS AND COMPUTERS IN SIMULATION, 2024, 225 : 528 - 544
  • [23] Visualization of 3D Surface Acoustic Waves In Granular Media Using Digital Color Holography
    Leclercq, Mathieu
    Picart, Pascal
    Tournat, Vincent
    Penelet, Guillaume
    [J]. OPTICAL METHODS FOR INSPECTION, CHARACTERIZATION, AND IMAGING OF BIOMATERIALS, 2013, 8792
  • [24] Dual-wavelength digital holography for 3D particle image velocimetry: experimental validation
    Grare, S.
    Allano, D.
    Coetmellec, S.
    Perret, G.
    Corbin, F.
    Brunel, M.
    Grehan, G.
    Lebrun, D.
    [J]. APPLIED OPTICS, 2016, 55 (03) : A49 - A53
  • [25] Digital holography simulations and experiments to quantify the accuracy of 3D particle location and 2D sizing using a proposed hybrid method
    Guildenbecher, Daniel R.
    Gao, Jian
    Reu, Phillip L.
    Chen, Jun
    [J]. APPLIED OPTICS, 2013, 52 (16) : 3790 - 3801
  • [26] 3D Optical Vortex Lattices
    Ikonnikov, Denis A.
    Myslivets, Sergey A.
    Arkhipkin, Vasily G.
    Vyunishev, Andrey M.
    [J]. ANNALEN DER PHYSIK, 2021, 533 (07)
  • [27] Digital holography-based 3D particle localization for single-molecule tweezer techniques
    Flewellen, James L.
    Minoughan, Sophie
    Garcia, Isabel Llorente
    Tolar, Pavel
    [J]. BIOPHYSICAL JOURNAL, 2022, 121 (13) : 2538 - 2549
  • [28] A hybrid image processing method for measuring 3D bubble distribution using digital inline holography
    Shao, Siyao
    Li, Cheng
    Hong, Jiarong
    [J]. CHEMICAL ENGINEERING SCIENCE, 2019, 207 : 929 - 941
  • [29] High bandwidth holographic 3D imaging through Kramers-Kronig Fresnel digital holography
    Wang, Shaohui
    Chang, Chenliang
    Dai, Bo
    Wang, Qi
    Zhang, Dawei
    Zhuang, Songlin
    [J]. OPTICS AND LASER TECHNOLOGY, 2025, 182
  • [30] Modelling of surface river plume using set-up and input data files of Delft-3D model
    Rueda-Bayona, Juan Gabriel
    Horrillo-Caraballo, Jose
    Chaparro, Tatiana R.
    [J]. DATA IN BRIEF, 2020, 31