Anisotropic reflection by melting glacier ice: Measurements and parametrizations in Landsat TM bands 2 and 4

被引:35
作者
Greuell, W [1 ]
de Wildt, MD [1 ]
机构
[1] Univ Utrecht, Inst Marine & Atmospher Res, NL-3584 CC Utrecht, Netherlands
关键词
D O I
10.1016/S0034-4257(99)00043-7
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This article deals with the anisotropic reflection of radiation by melting glacier ice. Ground-based measurements of the directional distribution of the reflected radiation over the hemisphere (so-called BRDFs=bidirectional reflectance distribution functions) were made on the Morteratschgletscher (Switzerland) in Landsat TM bands 2 (520-600 nm) and 4 (760-900 nm). These BRDFs cover a wide range of solar zenith angles (26-75 degrees) and surface characteristics (quantified by a variation in the spectrally integrated albedo between 0.14 and 0.50). All BRDFs exhibit a similar pattern with a minimum in the nadir direction and a maximum in the forward limb, but the amount of a anisotropy increases with increasing wavelength, with increasing solar zenith angle and with decreasing albedo. The data were used to derive parametrizations rations (one for each TM band) which relate the bidirectional reflectance (the reflectance in a specific direction) to the albedo for a given solar-view geometry. Specific parametrisations (one for each TM band) for near-nadir reflection" are also presented. All these parameterizations can be used to convert satellite-derived bidirectional reflectances into surface albedos and thus do correct for anisotropic reflectance. The residual uncertainty in the albedo due to inaccuracy of the correction is estimated to be 0.02 in both TM bands. (C) Elsevier Science Inc., 1999.
引用
收藏
页码:265 / 277
页数:13
相关论文
共 25 条
[1]  
AMBACH W, 1979, POLARFORSCHUNG, V49, P44
[2]  
Atkinson KE, 1978, An introduction to numerical analysis
[3]   ON THE ANGULAR VARIATION OF SOLAR REFLECTANCE OF SNOW [J].
CHOUDHURY, BJ ;
CHANG, ATC .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1981, 86 (NC1) :465-472
[4]   Visible and near-infrared reflectivity during the ablation period on Peyto Glacier, Alberta, Canada [J].
Cutler, PM ;
Munro, DS .
JOURNAL OF GLACIOLOGY, 1996, 42 (141) :333-340
[5]   SURFACE-ENERGY BALANCE AND KATABATIC FLOW OVER GLACIER AND TUNDRA DURING GIMEX-91 [J].
DUYNKERKE, PG ;
VANDENBROEKE, MR .
GLOBAL AND PLANETARY CHANGE, 1994, 9 (1-2) :17-28
[6]   RADIATION ABSORPTION-COEFFICIENTS OF POLYCRYSTALLINE ICE FROM 400-1400 NM [J].
GRENFELL, TC ;
PEROVICH, DK .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1981, 86 (NC8) :7447-7450
[7]   Elevational changes in meteorological variables along a midlatitude glacier during summer [J].
Greuell, W ;
Knap, WH ;
Smeets, PC .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1997, 102 (D22) :25941-25954
[8]  
GREUELL W, 1989, P S GLAC FLUCT CLIM, P305
[9]   COMPARISON OF INSITU AND SATELLITE-DERIVED REFLECTANCES OF FORBINDELS GLACIER, GREENLAND [J].
HALL, DK ;
BINDSCHADLER, RA ;
FOSTER, JL ;
CHANG, ATC ;
SIDDALINGAIAH, H .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 1990, 11 (03) :493-504
[10]   Some aspects of energy balance and ablation of Storglaciaren, northern Sweden [J].
Hock, R ;
Holmgren, B .
GEOGRAFISKA ANNALER SERIES A-PHYSICAL GEOGRAPHY, 1996, 78A (2-3) :121-131