The mSCOPE model: A simple adaptation to the SCOPE model to describe reflectance, fluorescence and photosynthesis of vertically

被引:79
作者
Yang, Peiqi [1 ]
Verhoef, Wout [1 ]
van der Tol, Christiaan [1 ]
机构
[1] Univ Twente, Fac Geoinformat Sci & Earth Observat ITC, POB 217, NL-7500 AE Enschede, Netherlands
关键词
SCOPE; Vertical heterogeneity; Radiative transfer model; Chlorophyll fluorescence; Photosynthesis; INDUCED CHLOROPHYLL FLUORESCENCE; RADIATIVE-TRANSFER; LIGHT-SCATTERING; WINTER-WHEAT; CANOPY; LEAF; PARAMETERS; PROFILE; INDEX; PROBE;
D O I
10.1016/j.rse.2017.08.029
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The vertical heterogeneity of leaf biophysical and biochemical properties may have a large effect on the bidirectional reflectance and fluorescence of vegetation canopies. This has implications for the interpretation of remote sensing data. We developed a model for light interaction and energy balance in vegetation canopies in which leaf biophysical and biochemical properties vary in the vertical. The model mSCOPE is an extension of the Soil-Canopy Observation of Photosynthesis and Energy fluxes (SCOPE) model, which simulates spectral and bidirectional reflectance, fluorescence, and photosynthesis of vertically heterogeneous vegetation canopies. The modelling of radiative transfer in mSCOPE is based on the classical SAIL theory. A solution to the radiative transfer equation for multi-layer canopies is given, which allows calculating top-of-canopy (TOC) reflectance and the flux profile. The latter is used for the simulation of fluorescence emission and photosynthesis of every leaf through the leaf radiative transfer model Fluspect and a biochemical model. The radiative transfer of fluorescence in multi-layer canopies is solved numerically in mSCOPE to obtain TOC bidirectional fluorescence. The significant effect of vertical heterogeneity of leaf properties on TOC reflectance, fluorescence and photosynthesis is demonstrated by different scenarios with customized vertical profiles of leaf chlorophyll content and leaf water content, and also with measured vertical profiles of leaf chlorophyll content in corn canopies. A preliminary validation of the reflectance calculating routine of mSCOPE is conducted by comparing measured and simulated TOC reflectance spectra of the corn canopies. We conclude that it is important to consider the vertical heterogeneity of leaf properties for the prediction of reflectance, fluorescence and photosynthesis. The model mSCOPE could serve as a tool to better understand vertically heterogeneous vegetation canopies.
引用
收藏
页码:1 / 11
页数:11
相关论文
共 41 条
[1]   Chlorophyll fluorescence: A probe of photosynthesis in vivo [J].
Baker, Neil R. .
ANNUAL REVIEW OF PLANT BIOLOGY, 2008, 59 :89-113
[2]   MODTRAN™5, a reformulated atmospheric band model with auxiliary species and practical multiple scattering options:: Update [J].
Berk, A ;
Anderson, GP ;
Acharya, PK ;
Bernstein, LS ;
Muratov, L ;
Lee, J ;
Fox, M ;
Adler-Golden, SM ;
Chetwynd, JH ;
Hoke, ML ;
Lockwood, RB ;
Gardner, JA ;
Cooley, TW ;
Borel, CC ;
Lewis, PE .
Algorithms and Technologies for Multispectral, Hyperspectral, and Ultraspectral Imagery XI, 2005, 5806 :662-667
[3]   PLANT CANOPY GAP-SIZE ANALYSIS THEORY FOR IMPROVING OPTICAL MEASUREMENTS OF LEAF-AREA INDEX [J].
CHEN, JM ;
CIHLAR, J .
APPLIED OPTICS, 1995, 34 (27) :6211-6222
[4]   Vertical profile and temporal variation of chlorophyll in maize canopy: Quantitative "Crop Vigor" indicator by means of reflectance-based techniques [J].
Ciganda, Veronica ;
Gitelson, Anatoly ;
Schepers, James .
AGRONOMY JOURNAL, 2008, 100 (05) :1409-1417
[5]   COUPLED PHOTOSYNTHESIS-STOMATAL CONDUCTANCE MODEL FOR LEAVES OF C4 PLANTS [J].
COLLATZ, GJ ;
RIBAS-CARBO, M ;
BERRY, JA .
AUSTRALIAN JOURNAL OF PLANT PHYSIOLOGY, 1992, 19 (05) :519-538
[6]   REFLECTANCE OF A VEGETATION CANOPY USING THE ADDING METHOD [J].
COOPER, K ;
SMITH, JA ;
PITTS, D .
APPLIED OPTICS, 1982, 21 (22) :4112-4118
[7]   Far-red sun-induced chlorophyll fluorescence shows ecosystem-specific relationships to gross primary production: An assessment based on observational and modeling approaches [J].
Damm, A. ;
Guanter, L. ;
Paul-Limoges, E. ;
van der Tol, C. ;
Hueni, A. ;
Buchmann, N. ;
Eugster, W. ;
Ammann, C. ;
Schaepman, M. E. .
REMOTE SENSING OF ENVIRONMENT, 2015, 166 :91-105
[8]  
De Wit C., 1962, SPACE RELATIONSHIPS
[9]   Dynamics of vertical leaf nitrogen distribution in a vegetative wheat canopy. Impact on canopy photosynthesis [J].
Dreccer, MF ;
Van Oijen, M ;
Schapendonk, AHCM ;
Pot, CS ;
Rabbinge, R .
ANNALS OF BOTANY, 2000, 86 (04) :821-831
[10]   The FLuorescence EXplorer Mission Concept-ESA's Earth Explorer 8 [J].
Drusch, Matthias ;
Moreno, Jose ;
Del Bello, Umberto ;
Franco, Raffaella ;
Goulas, Yves ;
Huth, Andreas ;
Kraft, Stefan ;
Middleton, Elizabeth M. ;
Miglietta, Franco ;
Mohammed, Gina ;
Nedbal, Ladislav ;
Rascher, Uwe ;
Schttemeyer, Dirk ;
Verhoef, Wout .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2017, 55 (03) :1273-1284