中国激光, 2008, 35 (12): 1986, 网络出版: 2008-12-17   

纯转动拉曼激光雷达反演低层大气折射率廓线

Measurements of Refractive Profiles Using a Pure Rotational Raman Lidar in the Lower-Atmosphere
作者单位
1 中国科学院安徽光学精密机械研究所大气光学中心, 安徽 合肥 230031
2 中国科学院研究生院, 北京 100039
摘要
大气折射率是影响光电探测领域测量精度的重要因素。为了提高光电测量精度,提出利用纯转动拉曼激光雷达信号反演低层大气折射率廓线的方法。通过接收N2和O2的纯转动拉曼回波信号,由双光栅单色仪分光后获得高低量子信号。根据高低量子信号的比值反演得出大气温度和大气压强廓线,从而获得大气折射指数垂直分布。通过与折射指数理论模型相比较,表明纯转动拉曼激光雷达反演对流层折射指数有较高的精度。给出了多组折射指数廓线的反演结果,得出多天夜晚不同时刻折射指数的特性。结果表明一天中不同时刻折射指数变化较小,7.5 km内最大相对误差约为0.4%; 不同月份之间折射指数波动较为明显,4.5 km内相对误差可达3.5%左右。
Abstract
Atmospheric refractivity has a significant impact on measurement precision in the field of photoelectric detecting. To improve the detecting accuracy of photoelectric fields, a pure rotational Raman lidar technique for detecting tropospheric refractive index is discussed in detail. Higher-lower isolating two portions of the pure rotational Raman backscattering spectrum of N2 and O2 are obtained by separating from other singles using the double grating monochromator. By caculating ratio of the two return signals, atmospheric temperature and pressure profiles are derived, as well as the measurements of air refractivity. Compared with the theoretical model, the accuracy for detecting atmospheric refractivity using the pure rotational Raman lidar is convincingly illustrated by the results of laboratory experiments. Several atmospheric refractive profiles are shown and the characteristic of refractivity is acquired at different times and on different days. The results show that the changes of the refractivity are little during the night and reach only 0.4% below 7.5 km. The fluctuation of the refractivity between different days is obvious and reaches 3.5% below 4.5 km.
参考文献

[1] Stephen Doss-Hammel, Dimitri Tsintikidis, Kenneth Davidson et al.. The refractive propagation factor and the rough evaporation duct experiment [C]. SPIE, 2003, 4884:149~159

[2] J. Frster, J. Riechen, G. Biegel et al.. Refractivity variability of the marine boundary layer and its impact on electromagnetic wave propagation [C]. SPIE, 2004, 5572:281~291

[3] 孙刚,翁宁泉,肖黎明 等. 大气温度分布特性及对折射率结构常数的影响[J]. 光学学报, 2004, 24(5):592~596

    Sun Gang, Weng Ningquan, Xiao Liming et al.. Profile and character of atmospheric temperature [J]. Acta Optica Sinica, 2004, 24(5):592~596

[4] 戴福山,李有宽. 利用气象要素估算海洋大气近地层光学湍流[J]. 光学学报, 2007, 27(2):191~196

    Dai Fushan, Li Youkuan. Estimation of the optical turbulence in the marine atmospheric surface layer based on meteorological data [J]. Acta Optica Sinica, 2007, 27(2):191~196

[5] . J. Nugent, R. J. Condon. Velocity aberration and atmospheric refraction in satellite laser communication experiments[J]. Appl. Opt., 1966, 5(11): 1832-1837.

[6] . Brown, Michael C. Roggemann, Timothy J. Schulz et al.. Measurement and data-processing approach for estimating the spatial statistics of turbulence-induced index of refraction fluctuations in the upper atmosphere[J]. Appl. Opt., 2001, 40(12): 1863-1871.

[7] . 大气折射的研究进展[J]. 世界科技研究与发展, 2006, 28(1): 48-58.

    . Progresses in research of atmospheric refraction[J]. World Sci-Tech R&D, 2006, 28(1): 48-58.

[8] 季小玲,陈森会,李晓庆. 部分相干电磁厄米-高斯光束通过湍流大气传输的偏振特性[J]. 中国激光, 2008, 35(1):67~72

    Ji Xiaoling, Chen Senhui, Li Xiaoqing. Polarization properties of partially coherent electromagnetic Hermite-Gaussian beams in atmospheric turbulence [J]. Chinese J. Lasers, 2008, 35(1):67~72

[9] Gerard Kunz, Eric Heemskerk, Lex van Eijk. Comparison of atmospheric refraction at radar and optical wavelengths [C]. SPIE, 2005, 5981:1~12

[10] 宋正方. 应用大气光学基础[M]. 第一版. 北京: 气象出版社, 1990. 1~2

    Song Zhengfang. Applied Atmospheric Optics [M]. 1st ed.. Beijing: China Meteorological Press, 1990. 1~2

[11] J. Frster, J. Riechen. Measurements of refractive variability in the marine boundary layer in comparison with mesoscale meteorological model predictions [C]. SPIE, 2006, 6364:1~15

[12] . F. Arshimov, S. M. Bobrovnikov, V. E. Zuev et al.. Atmospheric temperature measurements using a pure rotational Raman lidar[J]. Appl. Opt., 1983, 22(19): 2984-2990.

[13] 刘玉丽,张寅超,苏嘉 等. 探测低空大气温度分布的转动拉曼激光雷达[J]. 光电工程, 2006, 33(10):43~48

    Liu Yuli, Zhang Yinchao, Su Jia et al.. Rotational Raman lidar for atmospheric temperature profiles measurements in the lower-air [J]. Opto-Electronic Engineering, 2006, 33(10):43~48

[14] . Nedelijkovic, A. Hauchecorne, M.-L. Chanin. Rotational Raman lidar to measure the atmospheric temperature from the ground to 30 km[J]. IEEE Trans. Geosci. Rem. Sens., 1993, 31(1): 90-101.

[15] 苏嘉,张寅超,赵曰峰 等. 双光栅纯转动拉曼测温激光雷达单色仪的光学设计[J]. 中国激光, 2007, 34(1):92~96

    Su Jia, Zhang Yinchao, Zhao Yuefeng et al.. Optical design of double grating monochromator of a pure rotational Raman-lidar [J]. Chinese J. Lasers, 2007, 34(1):92~96

[16] . 大气压强的精密计算[J]. 广西物理, 2000, 21(2): 7-8.

    . Accurate calculation for pressure[J]. Guangxi Wuli, 2000, 21(2): 7-8.

王敏, 胡顺星, 苏嘉, 赵培涛, 汪少林, 谢军, 曹开法, 方欣. 纯转动拉曼激光雷达反演低层大气折射率廓线[J]. 中国激光, 2008, 35(12): 1986. Wang Min, Hu Shunxing, Su Jia, Zhao Peitao, Wang Shaolin, Xie Jun, Cao Kaifa, Fang Xin. Measurements of Refractive Profiles Using a Pure Rotational Raman Lidar in the Lower-Atmosphere[J]. Chinese Journal of Lasers, 2008, 35(12): 1986.

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