半导体光子学与技术, 2007, 13 (1): 20, 网络出版: 2011-08-18  

Detection and Ranging System of Flight Aid Lights

Detection and Ranging System of Flight Aid Lights
作者单位
Research Base of Ground Support Equipment of CAAC, Civil Aviation University of China, Tianjin 300300, CHN
摘要
Abstract
Dynamic detection based on optics sensors and ranging radars is a new method to detect the luminous intensity of flight aid lights. The optics sensors can get the illumination information of each light, the ranging radar gets the distance information, and then data amalgamation technology is used to compute the luminous intensity of each light. A method to modify the errors of this dynamic detection system is presented. It avoids the accumulation error and measurement carrierps excursion error by using peak value detection based on optics sensors to estimate the accurate position of each light, then to modify the lightsplengthways distance information and transverse position information. The performance of the detection and ranging system is validated by some experiments and shown in pictures.
参考文献

[1] TONG Xiao-yong. Flight aid lights detection and control system aused in Xiaoshan airdrome[J]. Art of Science and Technology, 2001, 3: 48-51.

[2] ZHANG Jun-dong, REN Guang. A plan of flight aid lights detection and control system based on LAN[J]. Traffic transport engineering transaction, 2002, 1: 125-129.

[3] LIU Hai-yan, LIU Li-na. A plan of flight aid lights detection and control system based on CAN bus[J]. Automatization transaction, 2005, S1: 104-105.

[4] Juarez-Perez V M, Ferrandis M D. PCR-based approach for detection of novel Bacillus thuringiensis genes[J]. Applied & Environmental Microbiology, 1997, 63(8): 2 997-3 002.

[5] Ogarev S A, Sapritski V I, Parfentpev N A, et al. Contemporary state of providing uniformity of luminous quantity measurements[J]. Measurement Techniques, 2005, 48(11): 1 090-1 095.

[6] Hovila J, Mustonen M, Karha P, et al. Determination of the diffuser reference plane for accurate illuminance responsivity calibrations[J]. Applied Optics, 2005, 44(28): 5 894-5 898.

[7] Hovila J, Toivanen P, Ikonen E. Realization of the unit of luminous flux at the HUT using the absolute integrating-sphere method[J]. Metrologia, 2004, 41(6): 407-413.

[8] Eppeldauer G P, Cromer C L, Hardis J E. Luminous intensity measurements of sources using a new detector-based illuminance scale Eppeldauer[J]. Proceedings of The International Society for Optical Engineering, 1992, 1 687: 522-532.

[9] Finkle M. Luminance-to-intensity measurement method[J]. Journal of the Illuminating Engineering Society, 1997, 26(2): 13-19.

[10] Wooldridge M D, Finley M, Denholm J, et al. Photometric Requirements for Arrow Panels[R]. Report 494021, Texas Transportation Institute, College Station, Texas, 2001.

[11] Texas Manual on Uniform Traffic Control Devices[Z]. Texas Department of Transportation, Austin,Texas, 2003.

[12] Specification TO27045, Vehicle Signal Heads[Z]. Texas Department of Transportation, Austin, Texas, 2003.

[13] Pawlak A, Zaremba K. Light intensity distribution of diffusive elements deposited onto the surface of light guiding plate Lightguides and their ApplicationsⅡ[J]. Proceedings of The International Society for Optical Engineering, 2003, 5 576(1): 439-443.

[14] Hoshimura Y. Measurement of luminous intensity from a wide variety of polyethylenes by chemiluminescence method [J]. Transactions of the Institute of Electrical Engineers of Japan. 2003, 1232C(4): 765-770.

[15] Pathak S. The science of light[J]. IEEMA Journal, 2003, 23(10): 70-71.

[16] Dybczynski W. The influence of distance on the photometry of luminous intensity[J]. Przeglad Elektrotechniczny, 2003, 79(4): 274-277.

[17] HUANG Qi-jun, GUO Jing-peng, LI Xue-wen, et al. Low luminous intensity detecting system by using intra-modulated photodetector[J]. Chinese Journal of Sensors and Actuators, 2002, 15(2): 1-4.

[18] ZHANG Tie-qiang, LIN Xiao-long, GUO Shan-he. Study of a testing system for the automobile retro-reflector luminous function[J]. Chinese Journal of Scientific Instrument, 2002, 23(1): 64-66.

[19] Gotoh S, Fujita I, Kasuya T, et al. Measurement of HgI intensity distribution along a high frequency low pressure discharge lamp[A]. the 25th International Conference on Phenomena in Ionized Gases, 2001, 4: 321-322.

YU Zhi-jing, WANG Qiang. Detection and Ranging System of Flight Aid Lights[J]. 半导体光子学与技术, 2007, 13(1): 20. YU Zhi-jing, WANG Qiang. Detection and Ranging System of Flight Aid Lights[J]. Semiconductor Photonics and Technology, 2007, 13(1): 20.

关于本站 Cookie 的使用提示

中国光学期刊网使用基于 cookie 的技术来更好地为您提供各项服务,点击此处了解我们的隐私策略。 如您需继续使用本网站,请您授权我们使用本地 cookie 来保存部分信息。
全站搜索
您最值得信赖的光电行业旗舰网络服务平台!