Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in Morocco
An accurate assessment of evapotranspiration (ET) is crucially needed at the basin scale for studying the hydrological processes and water balance especially from upstream to downstream. In the mountains, this term is poorly understood because of various challenges, including the vegetation complexi...
Main Authors: | , , , , , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
MDPI AG
2020-04-01
|
Series: | Remote Sensing |
Subjects: | |
Online Access: | https://www.mdpi.com/2072-4292/12/7/1181 |
id |
doaj-280287043f624e8ba9628ffe324a9cc8 |
---|---|
record_format |
Article |
spelling |
doaj-280287043f624e8ba9628ffe324a9cc82020-11-25T02:23:52ZengMDPI AGRemote Sensing2072-42922020-04-01121181118110.3390/rs12071181Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in MoroccoJamal Elfarkh0Jamal Ezzahar1Salah Er-Raki2Vincent Simonneaux3Bouchra Ait Hssaine4Said Rachidi5Aurore Brut6Vincent Rivalland7Said Khabba8Abdelghani Chehbouni9Lionel Jarlan10LP2M2E, Département de Physique Appliquée, Faculté des Sciences et Techniques, Université Cadi Ayyad, Marrakech 40000, MoroccoDépartement GIRT/Laboratoire MISC, Ecole Nationale des Sciences Appliquées, Université Cadi Ayyad, Safi 46000, MoroccoLP2M2E, Département de Physique Appliquée, Faculté des Sciences et Techniques, Université Cadi Ayyad, Marrakech 40000, MoroccoCentre d’Etudes Spatiales de la Biosphère, Université de Toulouse, CNES, CNRS, INRAE, IRD, UPS, 31400 Toulouse, FranceCenter for Remote Sensing Applications, Mohammed VI Polytechnic University, Ben Guerir 43150, MoroccoAgence de Bassin Hydraulique du Tensift (ABHT), Marrakech 40000, MoroccoCentre d’Etudes Spatiales de la Biosphère, Université de Toulouse, CNES, CNRS, INRAE, IRD, UPS, 31400 Toulouse, FranceCentre d’Etudes Spatiales de la Biosphère, Université de Toulouse, CNES, CNRS, INRAE, IRD, UPS, 31400 Toulouse, FranceCenter for Remote Sensing Applications, Mohammed VI Polytechnic University, Ben Guerir 43150, MoroccoCenter for Remote Sensing Applications, Mohammed VI Polytechnic University, Ben Guerir 43150, MoroccoCentre d’Etudes Spatiales de la Biosphère, Université de Toulouse, CNES, CNRS, INRAE, IRD, UPS, 31400 Toulouse, FranceAn accurate assessment of evapotranspiration (ET) is crucially needed at the basin scale for studying the hydrological processes and water balance especially from upstream to downstream. In the mountains, this term is poorly understood because of various challenges, including the vegetation complexity, plant diversity, lack of available data and because the in situ direct measurement of ET is difficult in complex terrain. The main objective of this work was to investigate the potential of a Two-Source-Energy-Balance model (TSEB) driven by the Landsat and MODIS data for estimating ET over a complex mountain region. The complexity is associated with the type of the vegetation canopy as well as the changes in topography. For validating purposes, a large-aperture scintillometer (LAS) was set up over a heterogeneous transect of about 1.4 km to measure sensible (H) and latent heat (LE) fluxes. Additionally, two towers of eddy covariance (EC) systems were installed along the LAS transect. First, the model was tested at the local scale against the EC measurements using multi-scale remote sensing (MODIS and Landsat) inputs at the satellite overpasses. The obtained averaged values of the root mean square error (RMSE) and correlation coefficient (R) were about 72.4 Wm<sup>−2</sup> and 0.79 and 82.0 Wm<sup>−2</sup> and 0.52 for Landsat and MODIS data, respectively. Secondly, the potential of the TSEB model for evaluating the latent heat fluxes at large scale was investigated by aggregating the derived parameters from both satellites based on the LAS footprint. As for the local scale, the comparison of the latent heat fluxes simulated by TSEB driven by Landsat data performed well against those measured by the LAS (R = 0.69, RMSE = 68.0 Wm<sup>−2</sup>), while slightly more scattering was observed when MODIS products were used (R = 0.38, RMSE = 99.8 Wm<sup>−2</sup>). Based on the obtained results, it can be concluded that (1) the TSEB model can be fairly used to estimate the evapotranspiration over the mountain regions; and (2) medium- to high-resolution inputs are a better option than coarse-resolution products for describing this kind of complex terrain.https://www.mdpi.com/2072-4292/12/7/1181latent heat fluxsensible heat fluxtwo-source energy balanceeddy covariance systemscintillometer |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jamal Elfarkh Jamal Ezzahar Salah Er-Raki Vincent Simonneaux Bouchra Ait Hssaine Said Rachidi Aurore Brut Vincent Rivalland Said Khabba Abdelghani Chehbouni Lionel Jarlan |
spellingShingle |
Jamal Elfarkh Jamal Ezzahar Salah Er-Raki Vincent Simonneaux Bouchra Ait Hssaine Said Rachidi Aurore Brut Vincent Rivalland Said Khabba Abdelghani Chehbouni Lionel Jarlan Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in Morocco Remote Sensing latent heat flux sensible heat flux two-source energy balance eddy covariance system scintillometer |
author_facet |
Jamal Elfarkh Jamal Ezzahar Salah Er-Raki Vincent Simonneaux Bouchra Ait Hssaine Said Rachidi Aurore Brut Vincent Rivalland Said Khabba Abdelghani Chehbouni Lionel Jarlan |
author_sort |
Jamal Elfarkh |
title |
Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in Morocco |
title_short |
Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in Morocco |
title_full |
Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in Morocco |
title_fullStr |
Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in Morocco |
title_full_unstemmed |
Multi-Scale Evaluation of the TSEB Model over a Complex Agricultural Landscape in Morocco |
title_sort |
multi-scale evaluation of the tseb model over a complex agricultural landscape in morocco |
publisher |
MDPI AG |
series |
Remote Sensing |
issn |
2072-4292 |
publishDate |
2020-04-01 |
description |
An accurate assessment of evapotranspiration (ET) is crucially needed at the basin scale for studying the hydrological processes and water balance especially from upstream to downstream. In the mountains, this term is poorly understood because of various challenges, including the vegetation complexity, plant diversity, lack of available data and because the in situ direct measurement of ET is difficult in complex terrain. The main objective of this work was to investigate the potential of a Two-Source-Energy-Balance model (TSEB) driven by the Landsat and MODIS data for estimating ET over a complex mountain region. The complexity is associated with the type of the vegetation canopy as well as the changes in topography. For validating purposes, a large-aperture scintillometer (LAS) was set up over a heterogeneous transect of about 1.4 km to measure sensible (H) and latent heat (LE) fluxes. Additionally, two towers of eddy covariance (EC) systems were installed along the LAS transect. First, the model was tested at the local scale against the EC measurements using multi-scale remote sensing (MODIS and Landsat) inputs at the satellite overpasses. The obtained averaged values of the root mean square error (RMSE) and correlation coefficient (R) were about 72.4 Wm<sup>−2</sup> and 0.79 and 82.0 Wm<sup>−2</sup> and 0.52 for Landsat and MODIS data, respectively. Secondly, the potential of the TSEB model for evaluating the latent heat fluxes at large scale was investigated by aggregating the derived parameters from both satellites based on the LAS footprint. As for the local scale, the comparison of the latent heat fluxes simulated by TSEB driven by Landsat data performed well against those measured by the LAS (R = 0.69, RMSE = 68.0 Wm<sup>−2</sup>), while slightly more scattering was observed when MODIS products were used (R = 0.38, RMSE = 99.8 Wm<sup>−2</sup>). Based on the obtained results, it can be concluded that (1) the TSEB model can be fairly used to estimate the evapotranspiration over the mountain regions; and (2) medium- to high-resolution inputs are a better option than coarse-resolution products for describing this kind of complex terrain. |
topic |
latent heat flux sensible heat flux two-source energy balance eddy covariance system scintillometer |
url |
https://www.mdpi.com/2072-4292/12/7/1181 |
work_keys_str_mv |
AT jamalelfarkh multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT jamalezzahar multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT salaherraki multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT vincentsimonneaux multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT bouchraaithssaine multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT saidrachidi multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT aurorebrut multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT vincentrivalland multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT saidkhabba multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT abdelghanichehbouni multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco AT lioneljarlan multiscaleevaluationofthetsebmodeloveracomplexagriculturallandscapeinmorocco |
_version_ |
1724856754764775424 |