• Acta Photonica Sinica
  • Vol. 40, Issue 6, 811 (2011)
WU Yong-hua1、2、*, HU Yi-hua1、2, DAI Ding-chuan3, XU Shi-long1、2, and LI Jin-ming1、2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • 3[in Chinese]
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    DOI: 10.3788/gzxb20114006.0811 Cite this Article
    WU Yong-hua, HU Yi-hua, DAI Ding-chuan, XU Shi-long, LI Jin-ming. Research on the Technique of Aircraft Wake Vortex Detection Based on 1.5 μm Doppler Lidar[J]. Acta Photonica Sinica, 2011, 40(6): 811 Copy Citation Text show less
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    [2] KEANE M, BUCKTON D, REDFERN M, et al. Axial detection of aircraft wake vortices using doppler lidar[J]. Journal of Aircraft, 2002, 39(5): 850-861.

    [3] FIDUCCIA P C, BRYANT W, LANG S. FAA/NASA wake turbulence research program[J]. Journal of Air Traffic Control, 2004, 3(1): 17-21.

    [4] MACKEY S M, BURNHAM D C. Use of a commercial wind SODAR for measuring wake vortices[C]. 27th AIAA Aeroacoustics Conference, 2006, 2537-2547.

    [5] KOMATSUBARA T, KAKU N. Wake vortex detection of departure aircraft[J]. Journal of Aircraf Technical Report of IEICE, 2006, 106(1): 267-271.

    [6] OGASAWARA T, MISAKA T, OGAWA T, et al. Measurement of aircraft wake vortices using doppler lidar[J]. International Journal of Fluid Science and Technology, 2008, 3(4): 488-499.

    [7] FREDERIC B, UWE M. Radar monitoring of a wake vortex: electromagnetic reflection of wake turbulence in clear air[J]. Comptes Rendus Physique, 2010, 11(9): 54-67.

    [8] KOPP F, RAHM S, SMALIKHO I. Characterization of aircraft wake vortices by 2-μm pulsed doppler lidar[J]. Journal of Atmospheric and Oceanic Technology, 2004, 21(2): 194-206.

    [9] KOPP F, SMALIKHO I, RAHM S. Characterization of aircraft wake vortices by multiple-Lidar triangulation[J]. AIAA Journal, 2003, 41(6): 1081-1088.

    [10] FREHLICH R, SHARMAN R. Maximum likelihood estimates of vortex parameters from simulated coherent doppler Lidar data[J]. Journal of Atmospheric and Oceanic Technology, 2005, 22(2): 117-130.

    [11] LIU Jun-kai, WANG Xue-song, WANG Tao, et al. Analysis of doppler characteristics of airplane wake vortices in wet air[J]. Signal Processing, 2009, 25(9): 1443-1447.

    [12] RAHM S, SMALIKHO I. Aircraft wake vortex measurement with airborne coherent doppler l;idar[J]. Journal of Aircraft, 2008, 45(4): 1148-1155.

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    WU Yong-hua, HU Yi-hua, DAI Ding-chuan, XU Shi-long, LI Jin-ming. Research on the Technique of Aircraft Wake Vortex Detection Based on 1.5 μm Doppler Lidar[J]. Acta Photonica Sinica, 2011, 40(6): 811
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