Citation: | WANG Guan, WANG Huilin, QIAN Kun, SHEN Yu, BIAN Yun. Research on atmospheric refraction correction of airborne electro-optical system target location[J]. Journal of Applied Optics, 2022, 43(4): 641-647. DOI: 10.5768/JAO202243.0401008 |
The target location accuracy is an important index to evaluate the performance of airborne electro-optical system. For the high-altitude airborne electro-optical system, the target location accuracy is not only affected by the comprehensive factors such as sensor, rangefinder, stabilization accuracy of load platform, stabilization accuracy and position accuracy of flight platform, but also affected by the atmospheric refraction. For the long-distance ground observation of high-altitude airborne electro-optical system, the impact of atmospheric refraction on target location is particularly serious. Starting from the influence mechanism of atmospheric refraction on target location, an atmospheric model was given to analyze the influence factors of atmospheric refraction. Based on the earth model between the sphere and the reference rotating ellipsoid, the atmospheric refraction error model was given. Finally, the influence of atmospheric refraction on target location was analyzed according to the proposed earth model of approximate reference rotating ellipsoid. The analysis results have important guiding significance for the atmospheric refraction correction of airborne electro-optical system for long-distance target location.
[1] |
樊邦奎, 段连飞, 赵炳爱, 等. 无人机侦察目标定位技术[M]. 北京: 国防工业出版社, 2014.
FAN Bangkui, DUAN Lianfei, ZHAO bingai, et al. UAV reconnaissance target location technology[M]. Beijing: National Defense Industry Press, 2014.
|
[2] |
闫明, 杜佩, 王惠林, 等. 机载光电系统的地面多目标定位算法[J]. 应用光学,2012,33(4):717-720.
YAN Ming, DU Pei, WANG Huilin, et al. Ground multi-target positioning algorithm for airborne optoelectronic system[J]. Journal of Applied Optics,2012,33(4):717-720.
|
[3] |
秦川, 吴玉敬, 陶忠, 等. 载机平台光电转塔目标定位的仿真算法[J]. 应用光学,2020,41(2):257-264. doi: 10.5768/JAO202041.0201004
QIN Chuan, WU Yujing, TAO Zhong, et al. Simulation algorithm of target location for electro-optical turret of airborne platform[J]. Journal of Applied Optics,2020,41(2):257-264. doi: 10.5768/JAO202041.0201004
|
[4] |
张瑜, 赤娜, 侯佳, 等. 大气折射引起的雷达定位误差模型[J]. 电光与控制,2009,16(7):65-67. doi: 10.3969/j.issn.1671-637X.2009.07.018
ZHANG Yu, CHI Na, HOU Jia, et al. Model of radar locating error caused by atmosphere refraction[J]. Electronics Optics & Control,2009,16(7):65-67. doi: 10.3969/j.issn.1671-637X.2009.07.018
|
[5] |
李双刚, 聂劲松. 大气折射对光电探测定位的影响[J]. 红外与激光工程,2008,37(增刊3):170-173.
LI Shuanggang, NIE Jinsong. Effect of atmospheric refraction to electro-optical reconnaissance and orientation[J]. Infrared and Laser Engineering,2008,37(S3):170-173.
|
[6] |
韩文焌, 张喜镇. 实测大气模型下雷达定位公式的解析式兼论有效地球半径[J]. 电子与信息学报,2005(2):269-273.
HAN Wenjun, ZHANG Xizhen. Analytical formulae of radar location for measured atmospheric model with discussion on effective earth radius[J]. Journal of Electronics & Information Technology,2005(2):269-273.
|
[7] |
金群锋. 大气折射率影响因素的研究[D]. 杭州: 浙江大学, 2006.
JIN Qunfeng. Research on the influencing factors of atmospheric refractive index[D]. Hangzhou: Zhejiang University, 2006.
|
[8] |
郭冠军, 李树楷. 对流层内激光垂直精密测距研究[J]. 光电子·激光,2001(4):400-402. doi: 10.3321/j.issn:1005-0086.2001.04.021
GUO Guanjun, LI Shukai. Study on the precise laser vertical distance measurement in the troposphere[J]. Journal of Optoelecrronics·Laser,2001(4):400-402. doi: 10.3321/j.issn:1005-0086.2001.04.021
|
[9] |
童谓, 萧耐园. 大气折射与路径弯曲延迟[J]. 天文学报,2008(4):419-424. doi: 10.3321/j.issn:0001-5245.2008.04.008
TONG Wei, XIAO Naiyuan. Atmospheric refraction and path bending delay[J]. Acta Astronomica Sinica,2008(4):419-424. doi: 10.3321/j.issn:0001-5245.2008.04.008
|
[10] |
秦永元. 惯性导航[M]. 北京: 科学出版社, 2006.
QIN Yongyuan. Inertial navigation[M]. Beijing: Science Press, 2006.
|
[11] |
O’KEEFE K, ECKLES A, SQUIRES R. Vanguard measurements give pear-shaped component of earth’s figure[J]. Science,1959,129(3348):565-566. doi: 10.1126/science.129.3348.565
|
[12] |
周慧, 赵满庆. 靶场光学测量数据大气折射修正研究[J]. 计算机仿真,2012,29(9):6-9. doi: 10.3969/j.issn.1006-9348.2012.09.002
GUO Hui, ZHAO Manqing. Study on correction of atmospheric refraction error of optical measurement data in navy range[J]. Computer Simulation,2012,29(9):6-9. doi: 10.3969/j.issn.1006-9348.2012.09.002
|
[13] |
杨豪强, 朱命怡, 张瑜. 等效地球半径的等效性与局限性研究[J]. 河南师范大学学报(自然科学版),2008,36(6):66-69.
YANG Haoqiang, ZHU Mingyi, ZHANG Yu. Study on equivalence and limitation of equivalent earth radius[J]. Journal of Henan Normal University(Natural Science),2008,36(6):66-69.
|
[14] |
韩先平, 周慧. 低仰角大气折射的高精度修正方法研究[J]. 光电技术应用,2008(1):24-26. doi: 10.3969/j.issn.1673-1255.2008.01.007
HAN Xianping, ZHOU Hui. Study of high accuracy adjust method of atmospheric refraction of low elevation[J]. Electro-Optic Technology Application,2008(1):24-26. doi: 10.3969/j.issn.1673-1255.2008.01.007
|
[15] |
段成林, 马传令, 曹建峰. 低仰角对流层折射修正快速算法[J]. 现代电子技术,2011,34(22):7-10. doi: 10.3969/j.issn.1004-373X.2011.22.003
DUAN Chenglin, MA Chuanling, CAO Jianfeng. A fast and efficient algorithm of tropospheric refraction correction at low elevation[J]. Modern Electronics Technique,2011,34(22):7-10. doi: 10.3969/j.issn.1004-373X.2011.22.003
|
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