Optical Technique, Volume. 46, Issue 6, 641(2020)
Fast 3D measurement technology of complex ice shape in low temperature environment
[1] [1] Lynch F T, Khodadoust A. Effects of ice accretions on aircraft aerodynamics[J]. Progress in Aerospace Sciences,2001,37(8):669—767.
[2] [2] Kind R J, Potapczuk M G, Feo A, et al. Experimental and computational simulation of in-flight icing phenomena[J]. Progress in Aerospace Sciences,1998,34(5-6):257—345.
[3] [3] Miller D, Bernstein B, McDonough B, et al. NASA/FAA/NCAR supercooled large droplet icing flight research-Summary of winter 96-97 flight operations[C]∥36th AIAA Aerospace Sciences Meeting and Exhibit, Reno,NV,USA:AIAA,1998:577.
[4] [4] Macarthur C. Numerical simulation of airfoil ice accretion[C]∥21st Aerospace Sciences Meeting, Reno,NV,USA: AIAA,1983:112.
[5] [5] Bragg M, Broeren A, Addy H, et al. Airfoil ice-accretion aerodynamic simulation[C]∥45th AIAA Aerospace Sciences Meeting and Exhibit, Reno,NV,USA:AIAA,2007:85.
[7] [7] Wright W B. Validation methods and results for a two-dimensional ice accretion code[J]. Journal of Aircraft,1999,36(5):827—835.
[8] [8] Gong X, Bansmer S. 3-D ice shape measurements using mid-infrared laser scanning[J]. Optics Express,2015,23(4):4908—4926.
[9] [9] Broeren A P, Whalen E A, Busch G T, et al. Aerodynamic simulation of runback ice accretion[J]. Journal of Aircraft,2010,47(3):924—939.
[10] [10] Han Y, Palacios J L, Smith E C. An experimental correlation between rotor test and wind tunnel ice shapes on NACA 0012 airfoils[R]. SAE Technical Paper,2011.
[11] [11] Lee S, Broeren A, Addy H, et al. Development of 3D ice accretion measurement method[C]∥4th AIAA atmospheric and space environments conference,New Orleans,Louisiana,USA:AIAA,2012:2938.
[12] [12] Lee S, Broeren A P, Kreeger R E, et al. Implementation and validation of 3-D ice accretion measurement methodology[C]∥6th AIAA Atmospheric and Space Environments Conference, Atlanta, GA,USA:2014:2613.
[13] [13] Broeren A P, Addy H E, Lee S, et al. Validation of 3-D ice accretion measurement methodology for experimental aerodynamic simulation[C]∥6th AIAA Atmospheric and Space Environments Conference, Atlanta,GA,USA: AIAA,2014:2614.
[14] [14] Gong X, Bansmer S. 3-D ice shape measurements using mid-infrared laser scanning[J]. Optics Express,2015,23(4):4908.
[15] [15] Geng J. Structured-light 3D surface imaging: a tutorial[J]. Advances in Optics and Photonics,2011,3(2):128—160.
[16] [16] Geng J. Structured-light 3D surface imaging: a tutorial[J]. Advances in Optics and Photonics,2011,3(2):128—160.
[17] [17] Gorthi S S, Rastogi P. Fringe projection techniques: whither we are[J]. Optics and Lasers in Engineering,2010,48(ARTICLE):133—140.
[18] [18] Geng J. DLP-based structured light 3D imaging technologies and applications[C]∥Emerging Digital Micromirror Device Based Systems and Applications III,San Francisco,California,USA:SPIE,2011:79320B.
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LIU Qinglin, NI Zhangsong, ZHANG PingTao, ZHANG Pan, ZHONG Kai. Fast 3D measurement technology of complex ice shape in low temperature environment[J]. Optical Technique, 2020, 46(6): 641
Received: Mar. 19, 2020
Accepted: --
Published Online: Apr. 7, 2021
The Author Email: Qinglin LIU (aseity670@126.com)
CSTR:32186.14.