Laser & Optoelectronics Progress, Volume. 51, Issue 8, 81202(2014)
Design and Performance Analysis of Aircraft Wake Vortex Coherent Laser Detection System
[1] [1] Shen Chun. Radar Scattering Characteristic and Simulation Platform Construction of the Aircraft Wake Vortex[D]. Changsha: National University of Defense Technology, 2008. 1-2.
[2] [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] [3] Patrick R Veillette. Data show that U.S wake-turbulence accidents are most frequent at low altitude and during approach and landing[J]. Flight Safety Digest, 2002, 21(3-4): 1-47.
[4] [4] Barbaresco F, Juge P, Klein M, et al.. Optimising runway throughput through wake vortex detection, prediction and decision support tools[C]. Digital Communications-Enhanced Surveillance of Aircraft and Vehicles (TIWDC/ESAV), 2011 Tyrrhenian International Workshop on IEEE, 2011. 27-32.
[5] [5] Darracq D, Corjon A, Fré, et al.. Simulation of wake vortex detection with airborne Doppler lidar[J]. Journal of Aircraft, 2000, 37(6): 984-993.
[6] [6] Fiduccia P C, Bryant W, Lang S. Wake turbulence research program[J]. Journal of Air Traffic Control, 2004, 46(1): 17-21.
[7] [7] Hannon S M, Barr K S, Jacob D K, et al.. Application of pulsed Doppler lidar in the airport terminal area [C]. Fourth International Asia-Pacific Environmental Remote Sensing Symposium 2004: Remote Sensing of the Atmosphere, Ocean, Environment, and Space: International Society for Optics and Photonics, 2005. 186-197.
[8] [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] [9] Leosphere. Pulsed 1.5 micron Lidar for wake vortex measurements and monitoring: CREDOS trials on Frankfurt Airport[R] Paris: Thales Research & Technology, 2010.
[10] [10] Jean-Pierre Cariou, Laurent Sauvage, Matthieu Boquet. New long range lidar for airport wind profiling [R] Paris: Thales Research&Technology, 2010.
[11] [11] Zhou Bin, Wang Xuesong, Wang Tao, et al.. A radar reflectivity model of aircraft wake vortices in clear air [J]. Computer Simulation, 2009, 26(6): 78-81.
[12] [12] Li Jun, Zhou bin, Wang Xuesong, et al.. Radar detection performance of aircraft wake vortices in clear air [J]. Jouranal of Electronics & Information Technology, 2009, 31(12): 2853-2857.
[13] [13] Li Jun, Wang Tao, Li Wenchen, et al.. Experimental study of X-band radar scattering characteristics of aircraft wake vortices[J]. Radar Science and Technology, 2009, 7(6): 406-410.
[14] [14] Shen Fahua, Sun Dongsong, Wang Zhongchun, et al.. Beam scanning and wind inversion technique of a mobile doppler lidar[J]. Acta Optica Sinica, 2012, 32(3): 0312004.
[17] [17] Li Dongmei, Zheng Yongchao, Pan Jingyan, et al.. Index system of coherence doppler wind lidar[J]. Optical Technique, 2010, 36(6): 880-884.
[18] [18] Yan Jixiang, Gong Shunsheng, Liu Zhishen. Environmental Monitoring Laser Radar [M]. Beijing: Science Press, 2001.
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Xu Shilong, Hu Yihua, Guo Liren. Design and Performance Analysis of Aircraft Wake Vortex Coherent Laser Detection System[J]. Laser & Optoelectronics Progress, 2014, 51(8): 81202
Category: Instrumentation, Measurement and Metrology
Received: Jan. 22, 2014
Accepted: --
Published Online: Jul. 30, 2014
The Author Email: Xu Shilong (xushi1988@yeah.net)