The retrieval of ice-cloud properties from cloud radar and lidar synergy

被引:58
作者
Tinel, C
Testud, J
Pelon, J
Hogan, RJ
Protat, A
Delanoë, J
Bouniol, D
机构
[1] Ctr Etudes Terrestre & Planetaires, Inst Pierre Simon Laplace, Paris, France
[2] Inst Pierre Simon Laplace, Serv Aeron, Paris, France
[3] Univ Reading, Dept Meteorol, Reading, Berks, England
来源
JOURNAL OF APPLIED METEOROLOGY | 2005年 / 44卷 / 06期
关键词
D O I
10.1175/JAM2229.1
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Clouds are an important component of the earth's climate system. A better description of their microphysical properties is needed to improve radiative transfer calculations. In the framework of the Earth, Clouds, Aerosols, and Radiation Explorer (EarthCARE) mission preparation, the radar-lidar (RALI) airborne system, developed at L'Institut Pierre Simon Laplace (France), can be used as an airborne demonstrator. This paper presents an original method that combines cloud radar (94-95 GHz) and lidar data to derive the radiative and microphysical properties of clouds. It combines the apparent backscatter reflectivity from the radar and the apparent backscatter coefficient from the lidar. The principle of this algorithm relies on the use of a relationship between the extinction coefficient and the radar specific attenuation, derived from airborne microphysical data and Mie scattering calculations. To solve radar and lidar equations in the cloud region where signals can be obtained from both instruments, the extinction coefficients at some reference range z(0) must be known. Because the algorithms are stable for inversion performed from range z(0) toward the emitter, z(0) is chosen at the farther cloud boundary as observed by the lidar. Then, making an assumption of a relationship between extinction coefficient and backscattering coefficient, the whole extinction coefficient, the apparent reflectivity, cloud physical parameters, the effective radius, and ice water content profiles are derived. This algorithm is applied to a blind test for downward-looking instruments where the original profiles are derived from in situ measurements. It is also applied to real lidar and radar data, obtained during the 1998 Cloud Lidar and Radar Experiment (CLARE'98) field project when a prototype airborne RALI system was flown pointing at nadir. The results from the synergetic algorithm agree reasonably well with the in situ measurements.
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页码:860 / 875
页数:16
相关论文
共 52 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]   Estimating effective radius and liquid water content from radar and lidar based on the CLARE98 data-set [J].
Baedi, RJP ;
de Wit, JJM ;
Russchenberg, HWJ ;
Erkelens, JS ;
Baptista, JPVP .
PHYSICS AND CHEMISTRY OF THE EARTH PART B-HYDROLOGY OCEANS AND ATMOSPHERE, 2000, 25 (10-12) :1057-1062
[3]  
Battan, 1973, RADAR OBSERVATIONS A
[4]   INTERCOMPARISON AND INTERPRETATION OF CLIMATE FEEDBACK PROCESSES IN 19 ATMOSPHERIC GENERAL-CIRCULATION MODELS [J].
CESS, RD ;
POTTER, GL ;
BLANCHET, JP ;
BOER, GJ ;
DELGENIO, AD ;
DEQUE, M ;
DYMNIKOV, V ;
GALIN, V ;
GATES, WL ;
GHAN, SJ ;
KIEHL, JT ;
LACIS, AA ;
LETREUT, H ;
LI, ZX ;
LIANG, XZ ;
MCAVANEY, BJ ;
MELESHKO, VP ;
MITCHELL, JFB ;
MORCRETTE, JJ ;
RANDALL, DA ;
RIKUS, L ;
ROECKNER, E ;
ROYER, JF ;
SCHLESE, U ;
SHEININ, DA ;
SLINGO, A ;
SOKOLOV, AP ;
TAYLOR, KE ;
WASHINGTON, WM ;
WETHERALD, RT ;
YAGAI, I ;
ZHANG, MH .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1990, 95 (D10) :16601-16615
[5]   Cloud feedback in atmospheric general circulation models: An update [J].
Cess, RD ;
Zhang, MH ;
Ingram, WJ ;
Potter, GL ;
Alskseev, V ;
Barker, HW ;
Cohen-Solal, E ;
Colman, RA ;
Dazlich, DA ;
Del Genio, AD ;
Dix, MR ;
Dymnikov, V ;
Esch, M ;
Fowler, LD ;
Fraser, JR ;
Galin, V ;
Gates, WL ;
Hack, JJ ;
Kiehl, JT ;
Le Treut, H ;
Lo, KKW ;
McAvaney, BJ ;
Meleshko, VP ;
Morcrette, JJ ;
Randall, DA ;
Roeckner, E ;
Royer, JF ;
Schlesinger, ME ;
Sporyshev, PV ;
Timbal, B ;
Volodin, EM ;
Taylor, KE ;
Wang, W ;
Wetherald, RT .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1996, 101 (D8) :12791-12794
[6]  
Chepfer H, 1999, MON WEATHER REV, V127, P504, DOI 10.1175/1520-0493(1999)127<0504:RSOCRP>2.0.CO
[7]  
2
[8]   Statistical properties of the normalized ice particle size distribution -: art. no. D10201 [J].
Delanoë, J ;
Protat, A ;
Testud, J ;
Bouniol, D ;
Heymsfield, AJ ;
Bansemer, A ;
Brown, PRA ;
Forbes, RM .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2005, 110 (D10) :1-21
[9]   Cloud effective particle size and water content profile retrievals using combined lidar and radar observations - 1. Theory and examples [J].
Donovan, DP ;
van Lammeren, ACAP .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2001, 106 (D21) :27425-27448
[10]   Cloud effective particle size and water content profile retrievals using combined lidar and radar observations - 2. Comparison with IR radiometer and in situ measurements of ice clouds [J].
Donovan, DP ;
van Lammeren, ACAP ;
Hogan, RJ ;
Russchenberg, HWJ ;
Apituley, A ;
Francis, P ;
Testud, J ;
Pelon, J ;
Quante, M ;
Goddard, J .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2001, 106 (D21) :27449-27464