The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins

Descripción del Articulo

The use of satellite imagery to assess river sediment discharge is discussed in the context of poorly monitored basins. For more than three decades, the Peruvian hydrological service SENAMHI has been maintaining several gauging stations in the lower part of the Amazon River catchment. This network h...

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Detalles Bibliográficos
Autores: Espinoza-Villar, R., Martinez, J.-M., Guyot, J.L., Fraizy, Pascal, Armijos, E., Crave, A., Bazan, H., Vauchel, P., Lavado-Casimiro, W.
Formato: artículo
Fecha de Publicación:2012
Institución:Servicio Nacional de Meteorología e Hidrología del Perú
Repositorio:SENAMHI-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorio.senamhi.gob.pe:20.500.12542/66
Enlace del recurso:https://hdl.handle.net/20.500.12542/66
https://doi.org/10.1016/j.jhydrol.2012.04.024
Nivel de acceso:acceso cerrado
Materia:Amazon
Hydrology
MODIS
Remote sensing
Sediment discharge
Cuencas
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oai_identifier_str oai:repositorio.senamhi.gob.pe:20.500.12542/66
network_acronym_str SEAM
network_name_str SENAMHI-Institucional
repository_id_str 4818
dc.title.en_US.fl_str_mv The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
title The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
spellingShingle The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
Espinoza-Villar, R.
Amazon
Hydrology
MODIS
Remote sensing
Sediment discharge
Cuencas
title_short The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
title_full The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
title_fullStr The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
title_full_unstemmed The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
title_sort The integration of field measurements and satellite observations to determine river solid loads in poorly monitored basins
author Espinoza-Villar, R.
author_facet Espinoza-Villar, R.
Martinez, J.-M.
Guyot, J.L.
Fraizy, Pascal
Armijos, E.
Crave, A.
Bazan, H.
Vauchel, P.
Lavado-Casimiro, W.
author_role author
author2 Martinez, J.-M.
Guyot, J.L.
Fraizy, Pascal
Armijos, E.
Crave, A.
Bazan, H.
Vauchel, P.
Lavado-Casimiro, W.
author2_role author
author
author
author
author
author
author
author
dc.contributor.author.fl_str_mv Espinoza-Villar, R.
Martinez, J.-M.
Guyot, J.L.
Fraizy, Pascal
Armijos, E.
Crave, A.
Bazan, H.
Vauchel, P.
Lavado-Casimiro, W.
dc.subject.en_US.fl_str_mv Amazon
Hydrology
MODIS
Remote sensing
Sediment discharge
topic Amazon
Hydrology
MODIS
Remote sensing
Sediment discharge
Cuencas
dc.subject.none.fl_str_mv Cuencas
description The use of satellite imagery to assess river sediment discharge is discussed in the context of poorly monitored basins. For more than three decades, the Peruvian hydrological service SENAMHI has been maintaining several gauging stations in the lower part of the Amazon River catchment. This network has been recently supplemented by the Hydro-geodynamics of the Amazon Basin (HYBAM) program, which has a water quality monitoring network distributed over five locations and allows the assessment of river discharge and surface suspended sediment (SSS) concentration. In this paper, the three stations that are located near the confluence of the Marañon and Ucayali Rivers, which form the Amazon River, are reviewed in detail. Two of the stations provide a complete time series of 10-day SSS samples over the studied period. The third station, along the Ucayali River, failed to provide valid estimates of sediment concentration at the river surface. The objective is to use satellite data as a substitute for the missing records in order to assess the Ucayali River sediment discharge, which has never been directly assessed before. An additional goal was to extend the river sediment discharge records for the other two stations. Water reflectance, assessed from the time series of MODIS satellite images, is calibrated using field-sampling campaigns to provide satellite-based SSS estimates. Validation is achieved using an independent dataset consisting of the 10-day SSS samples derived from the HYBAM network. Over a 4-year period between 2004 and 2008, there is greater than 10% agreement between satellite-derived data and network data for the two stations that provided complete field records. Based on satellite-derived SSS estimates assessed from 2000 to 2009, the river sediment balance is shown to be consistent between upstream and downstream stations. The use of satellite data and their integration with field data in the context of poorly monitored basins is discussed, and different cases are proposed.
publishDate 2012
dc.date.accessioned.none.fl_str_mv 2019-07-27T00:59:00Z
dc.date.available.none.fl_str_mv 2019-07-27T00:59:00Z
dc.date.issued.fl_str_mv 2012-06
dc.type.en_US.fl_str_mv info:eu-repo/semantics/article
format article
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12542/66
dc.identifier.isni.none.fl_str_mv 0000 0001 0746 0446
dc.identifier.doi.none.fl_str_mv https://doi.org/10.1016/j.jhydrol.2012.04.024
url https://hdl.handle.net/20.500.12542/66
https://doi.org/10.1016/j.jhydrol.2012.04.024
identifier_str_mv 0000 0001 0746 0446
dc.language.iso.en_US.fl_str_mv eng
language eng
dc.relation.ispartof.none.fl_str_mv urn:issn:0022-1694
dc.rights.none.fl_str_mv info:eu-repo/semantics/closedAccess
Atribución-NoComercial-SinDerivadas 3.0 Estados Unidos de América
dc.rights.uri.none.fl_str_mv http://creativecommons.org/licenses/by-nc-nd/3.0/us/
eu_rights_str_mv closedAccess
rights_invalid_str_mv Atribución-NoComercial-SinDerivadas 3.0 Estados Unidos de América
http://creativecommons.org/licenses/by-nc-nd/3.0/us/
dc.format.none.fl_str_mv application/pdf
dc.publisher.en_US.fl_str_mv IRD France Nord
dc.source.es_PE.fl_str_mv Servicio Nacional de Meteorología e Hidrología del Perú
Repositorio Institucional - SENAMHI
dc.source.none.fl_str_mv reponame:SENAMHI-Institucional
instname:Servicio Nacional de Meteorología e Hidrología del Perú
instacron:SENAMHI
instname_str Servicio Nacional de Meteorología e Hidrología del Perú
instacron_str SENAMHI
institution SENAMHI
reponame_str SENAMHI-Institucional
collection SENAMHI-Institucional
dc.source.volume.es_PE.fl_str_mv 444-445
dc.source.issue.es_PE.fl_str_mv 11
dc.source.initialpage.es_PE.fl_str_mv 221
dc.source.endpage.es_PE.fl_str_mv 228
dc.source.journal.es_PE.fl_str_mv Journal of Hydrology
bitstream.url.fl_str_mv http://repositorio.senamhi.gob.pe/bitstream/20.500.12542/66/2/license.txt
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spelling Espinoza-Villar, R.Martinez, J.-M.Guyot, J.L.Fraizy, PascalArmijos, E.Crave, A.Bazan, H.Vauchel, P.Lavado-Casimiro, W.2019-07-27T00:59:00Z2019-07-27T00:59:00Z2012-06https://hdl.handle.net/20.500.12542/660000 0001 0746 0446https://doi.org/10.1016/j.jhydrol.2012.04.024The use of satellite imagery to assess river sediment discharge is discussed in the context of poorly monitored basins. For more than three decades, the Peruvian hydrological service SENAMHI has been maintaining several gauging stations in the lower part of the Amazon River catchment. This network has been recently supplemented by the Hydro-geodynamics of the Amazon Basin (HYBAM) program, which has a water quality monitoring network distributed over five locations and allows the assessment of river discharge and surface suspended sediment (SSS) concentration. In this paper, the three stations that are located near the confluence of the Marañon and Ucayali Rivers, which form the Amazon River, are reviewed in detail. Two of the stations provide a complete time series of 10-day SSS samples over the studied period. The third station, along the Ucayali River, failed to provide valid estimates of sediment concentration at the river surface. The objective is to use satellite data as a substitute for the missing records in order to assess the Ucayali River sediment discharge, which has never been directly assessed before. An additional goal was to extend the river sediment discharge records for the other two stations. Water reflectance, assessed from the time series of MODIS satellite images, is calibrated using field-sampling campaigns to provide satellite-based SSS estimates. Validation is achieved using an independent dataset consisting of the 10-day SSS samples derived from the HYBAM network. Over a 4-year period between 2004 and 2008, there is greater than 10% agreement between satellite-derived data and network data for the two stations that provided complete field records. Based on satellite-derived SSS estimates assessed from 2000 to 2009, the river sediment balance is shown to be consistent between upstream and downstream stations. The use of satellite data and their integration with field data in the context of poorly monitored basins is discussed, and different cases are proposed.Por paresapplication/pdfengIRD France Nordurn:issn:0022-1694info:eu-repo/semantics/closedAccessAtribución-NoComercial-SinDerivadas 3.0 Estados Unidos de Américahttp://creativecommons.org/licenses/by-nc-nd/3.0/us/Servicio Nacional de Meteorología e Hidrología del PerúRepositorio Institucional - SENAMHI444-44511221228Journal of Hydrologyreponame:SENAMHI-Institucionalinstname:Servicio Nacional de Meteorología e Hidrología del Perúinstacron:SENAMHIAmazonHydrologyMODISRemote sensingSediment dischargeCuencasThe integration of field measurements and satellite observations to determine river solid loads in poorly monitored basinsinfo:eu-repo/semantics/articleLICENSElicense.txtlicense.txttext/plain; charset=utf-81748http://repositorio.senamhi.gob.pe/bitstream/20.500.12542/66/2/license.txt8a4605be74aa9ea9d79846c1fba20a33MD5220.500.12542/66oai:repositorio.senamhi.gob.pe:20.500.12542/662022-01-12 14:33:28.217Repositorio Institucional SENAMHIrepositorio@senamhi.gob.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