Rotational vibrational-rotational Raman lidar:: Design and performance of the RASC Raman lidar at Shigaraki (34.8° N, 136.1° E), Japan

被引:3
作者
Behrendt, A [1 ]
Nakamura, T [1 ]
Sawai, Y [1 ]
Onishi, M [1 ]
Tsuda, T [1 ]
机构
[1] Kyoto Univ, Radio Sci Ctr Space & Atmosphere, Uji, Kyoto 6110011, Japan
来源
LIDAR REMOTE SENSING FOR INDUSTRY AND ENVIRONMENT MONITORING II | 2002年 / 4484卷
关键词
lidar; laser remote sensing; Raman lidar; rotational Raman lidar; rotational vibrational-rotational Raman lidar; temperature; humidity; aerosols; daytime lidar; cirrus;
D O I
10.1117/12.452774
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The design and the performance of the new Raman lidar of the Radio Science Center for Space and Atmosphere (RASC) at Kyoto University are presented. The system is located at (34.8degrees N, 136.1degrees E) near Shigaraki, Japan, where also one of the world largest atmospheric radars, the MU (middle and upper atmosphere) radar, is operated. Measurement parameters of the lidar are atmospheric temperature (with rotational Raman and with Rayleigh integration technique), water vapor mixing ratio (H2O Raman lidar technique), and optical particle properties. Common Raman lidar takes vibrational-rotational Raman backscatter of nitrogen as a reference signal. In contrast to this, our system makes use of the approximately 10-times stronger pure-rotational Raman signals for deriving both atmospheric temperature and a temperature independent Raman reference signal. This modification leads to a significant reduction of measurement uncertainties. With the RASC lidar, rotational Raman signals with, to our best knowledge, unprecedented intensity can be taken by means of a high-throughput receiver. This allows not only nighttime temperature measurements with a resolution of, e.g., a few minutes near the tropopause, but made also, to our knowledge, the first daytime measurements possible.
引用
收藏
页码:151 / 162
页数:12
相关论文
共 18 条
[1]   INDEPENDENT MEASUREMENT OF EXTINCTION AND BACKSCATTER PROFILES IN CIRRUS CLOUDS BY USING A COMBINED RAMAN ELASTIC-BACKSCATTER LIDAR [J].
ANSMANN, A ;
WANDINGER, U ;
RIEBESELL, M ;
WEITKAMP, C ;
MICHAELIS, W .
APPLIED OPTICS, 1992, 31 (33) :7113-7131
[2]   Use of a Fabry-Perot interferometer to isolate pure rotational Raman spectra of diatomic molecules [J].
Arshinov, Y ;
Bobrovnikov, S .
APPLIED OPTICS, 1999, 38 (21) :4635-4638
[3]   Atmospheric temperature profiling in the presence of clouds with a pure rotational Raman lidar by use of an interference-filter-based polychromator [J].
Behrendt, A ;
Reichardt, J .
APPLIED OPTICS, 2000, 39 (09) :1372-1378
[4]  
BEHRENDT A, 2000, P 5 EUR WORKSH STRAT, P153
[5]  
BEHRENDT A, 2000, P 20 INT LAS RAD C 9
[6]  
BEHRENDT A, 2000, P 19 QUEDR OZ S 3 8, P307
[7]  
Cooney J., 1972, Journal of Applied Meteorology, V11, P108, DOI 10.1175/1520-0450(1972)011<0108:MOATPB>2.0.CO
[8]  
2
[9]   NORMALIZATION OF ELASTIC LIDAR RETURNS BY USE OF RAMAN ROTATIONAL BACKSCATTER [J].
COONEY, J .
APPLIED OPTICS, 1975, 14 (02) :270-271
[10]  
EVANS DR, 1955, ATOMIC NUCL, P785