Holographic focusing schlieren imaging (HFSI) for three-dimensional flow visualization

被引:0
作者
Lin, Zhiming [1 ]
Li, Yiqin [1 ]
Xie, Aimin [2 ]
Liu, Kaihui [1 ]
Xue, Zhiliang [1 ]
Jin, Qiwen [1 ]
Wu, Yingchun [1 ]
Wu, Xuecheng [1 ]
机构
[1] Zhejiang Univ, State Key Lab Clean Energy Utilizat, Hangzhou 310027, Zhejiang, Peoples R China
[2] China Aerodynam Res & Dev Ctr, Ultrahigh Speed Aerodynam Res Inst, Mianyang 621000, Sichuang, Peoples R China
基金
中国国家自然科学基金;
关键词
FIELD;
D O I
10.1007/s00348-024-03951-5
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Flow field visualization techniques, e.g., schlieren and shadowgraphy, are indispensable in fluid mechanics research and application. In this paper, we present a novel technique, named holographic focusing schlieren imaging (HFSI), which takes only a single-camera and single-shot configuration to achieve three-dimensional (3D) flow visualization. The essence of this technique is that a coherent reference wave is introduced to interfere with the wavefront yielded by the traditional focusing schlieren (FS) method, forming a hologram. The reconstruction of the hologram directly yields the FS results along the test volume slice by slice with adjustable intervals, achieving 3D visualization. To demonstrate the capability of HFSI, a proof-of-concept setup was established, and experiments were performed using a compressed air jet, with a comparison to the FS method. The result shows that HFSI image reconstruction remarkably refocuses the out-of-focus jet flow, yielding similar schlieren effect observed in the FS images. The proposed HFSI holds significant practical value in some scenarios, such as in a wind tunnel, as it requires only one pair of parallel windows to achieve 3D flow visualization.
引用
收藏
页数:7
相关论文
共 50 条
[21]   Three-Dimensional Imaging by Self-Reference Digital Holograms [J].
Kelner, Roy ;
Rosen, Joseph .
PROCEEDINGS 2015 IEEE INTERNATIONAL CONFERENCE ON INDUSTRIAL INFORMATICS (INDIN), 2015, :755-761
[22]   SIMULATION AND ANALYSIS OF A TURBULENT FLOW AROUND A THREE-DIMENSIONAL OBSTACLE [J].
Benahmed, Lamia ;
Aliane, Khaled .
ACTA MECHANICA ET AUTOMATICA, 2019, 13 (03) :173-180
[23]   Time-resolved three-dimensional imaging of flame refractive index via endoscopic background-oriented Schlieren tomography using one single camera [J].
Liu, Hecong ;
Shui, Chongyuan ;
Cai, Weiwei .
AEROSPACE SCIENCE AND TECHNOLOGY, 2020, 97
[24]   Extending the depth of focus for enhanced three-dimensional imaging and profilometry: an overview [J].
Zlotnik, Alex ;
Ben-Yaish, Shai ;
Zalevsky, Zeev .
APPLIED OPTICS, 2009, 48 (34) :H105-H112
[25]   Ultrafast Three-Dimensional Imaging of Lattice Dynamics in Individual Gold Nanocrystals [J].
Clark, J. N. ;
Beitra, L. ;
Xiong, G. ;
Higginbotham, A. ;
Fritz, D. M. ;
Lemke, H. T. ;
Zhu, D. ;
Chollet, M. ;
Williams, G. J. ;
Messerschmidt, M. ;
Abbey, B. ;
Harder, R. J. ;
Korsunsky, A. M. ;
Wark, J. S. ;
Robinson, I. K. .
SCIENCE, 2013, 341 (6141) :56-59
[26]   Methods of Single-Channel Digital Holography for Three-Dimensional Imaging [J].
Kelner, Roy ;
Rosen, Joseph .
IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2016, 12 (01) :220-230
[27]   Three-dimensional acoustic energy flow from rotating sound sources [J].
Ocker, Christof ;
Pannert, Wolfram .
ACTA ACUSTICA, 2021, 5
[28]   Three-dimensional numerical simulation of flow in vertical slot fishways: validation of the model and characterization of the flow [J].
Sanagiotto, Daniela Guzzon ;
Rossi, Julia Brusso ;
Lauffer, Luisa Ludtke ;
Bravo, Juan Martin .
RBRH-REVISTA BRASILEIRA DE RECURSOS HIDRICOS, 2019, 24
[29]   Three-dimensional super-resolution imaging for fluorescence emission difference microscopy [J].
You, Shangting ;
Kuang, Cuifang ;
Li, Shuai ;
Liu, Xu ;
Ding, Zhihua .
AIP ADVANCES, 2015, 5 (08)
[30]   Computational Reconstruction of Three-Dimensional Integral Imaging by Rearrangement of Elemental Image Pixels [J].
Cho, Myungjin ;
Javidi, Bahram .
JOURNAL OF DISPLAY TECHNOLOGY, 2009, 5 (1-3) :61-65