OCEANIC LIDAR - RADIATIVE-TRANSFER IN THE ATMOSPHERE AT OPERATING ALTITUDES FROM 100 M TO 100 KM

被引:7
作者
BARTSCH, B [1 ]
BRAESKE, T [1 ]
REUTER, R [1 ]
机构
[1] UNIV OLDENBURG, FACHBEREICH PHYS, D-26111 OLDENBURG, GERMANY
来源
APPLIED OPTICS | 1993年 / 32卷 / 33期
关键词
OCEANIC LIDAR; DAYLIGHT LIDAR MEASUREMENTS; CHLOROPHYLL; GELBSTOFF; WATER RAMAN SCATTERING;
D O I
10.1364/AO.32.006732
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The feasibility of measuring water-column parameters of the sea with a fluorescence lidar under daylight conditions and at flight altitudes between 100 m and 100 km is studied by modeling the atmospheric radiative transfer. Parameters to be measured are fluorescence of gelbstoff and chlorophyll and Raman scattering of water molecules. A cloudless and stratified atmosphere with various conditions of near-surface visibility and ozone concentration is taken into consideration. Solar zenith angles are varied between 0 degrees and 60 degrees. Lidar specifications are set to 1 J output energy, 10 ns pulse duration, 0.1 mrad beam divergence, 0.1 mrad detection angle, and 400 cm(-1) detection bandwidth. Signal recovery is carried out over the effective purse length of the returned signal, which is roughly 20-30 ns. Sensor zenith angles are set between 0 degrees and 60 degrees. As a result of the study the recommended range of excitation wavelengths for high altitudes should be chosen between 350 and 400 nm. Under these circumstances, and with the given laser and sensor specifications, oceanic lidar measurements should also be possible at flight altitudes of up to 100 km under clear visibility conditions, even at noon.
引用
收藏
页码:6732 / 6741
页数:10
相关论文
共 24 条
[1]  
[Anonymous], 1986, AERONOMY MIDDLE ATMO
[2]   BIO-OPTICAL CLASSIFICATION AND MODEL OF NATURAL-WATERS .2. [J].
BAKER, KS ;
SMITH, RC .
LIMNOLOGY AND OCEANOGRAPHY, 1982, 27 (03) :500-509
[3]  
BARTSCH B, 1992, ADV REMOTE SENSING, V1, P79
[4]   USE OF WATER RAMAN EMISSION TO CORRECT AIRBORNE LASER FLUOROSENSOR DATA FOR EFFECTS OF WATER OPTICAL ATTENUATION [J].
BRISTOW, M ;
NIELSEN, D ;
BUNDY, D ;
FURTEK, R .
APPLIED OPTICS, 1981, 20 (17) :2889-2906
[5]  
DIEBELLANGOHR D, 1985, ARCHIMEDES 1 EXPT, P123
[6]   NEW DETERMINATION OF RAYLEIGH-SCATTERING IN THE TERRESTRIAL ATMOSPHERE [J].
FROHLICH, C ;
SHAW, GE .
APPLIED OPTICS, 1980, 19 (11) :1773-1775
[7]   COMPUTER-SIMULATIONS AND THEORY OF OCEANOGRAPHIC FLUORESCENCE LIDAR SIGNALS - EFFECT OF SEA-SURFACE STRUCTURE [J].
GEHLHAAR, U .
APPLIED OPTICS, 1982, 21 (20) :3743-3755
[8]  
Green A. E. S., 1982, ROLE SOLAR ULTRAVIOL, P5
[9]   ATTENUATION BY OZONE + EARTHS ALBEDO IN MIDDLE ULTRAVIOLET [J].
GREEN, AES .
APPLIED OPTICS, 1964, 3 (02) :203-&
[10]   ATMOSPHERIC CORRECTION OF DATA MEASURED BY A FLYING PLATFORM OVER THE SEA - ELEMENTS OF A MODEL AND ITS EXPERIMENTAL VALIDATION [J].
GUZZI, R ;
RIZZI, R ;
ZIBORDI, G .
APPLIED OPTICS, 1987, 26 (15) :3043-3051