Scinovex
article Open AccessTop 1% cited

The SMOS Mission: New Tool for Monitoring Key Elements ofthe Global Water Cycle

Proceedings of the IEEE · 2010 · Vol. 98(5) · pp. 666–687
Yann H. KerrPhilippe WaldteufelJean‐Pierre WigneronSteven DelwartFrançois CabotJacqueline BoutinMaria‐José EscorihuelaJordi FontNicolás ReulClaire GruhierSilvia Enache JugleaMark R. DrinkwaterA. HahneManuel Martín‐NeiraSusanne Mecklenburg

Abstract

It is now well understood that data on soil moisture and sea surface salinity (SSS) are required to improve meteorological and climate predictions. These two quantities are not yet available globally or with adequate temporal or spatial sampling. It is recognized that a spaceborne L-band radiometer with a suitable antenna is the most promising way of fulfilling this gap. With these scientific objectives and technical solution at the heart of a proposed mission concept the European Space Agency (ESA) selected the Soil Moisture and Ocean Salinity (SMOS) mission as its second Earth Explorer Opportunity Mission. The development of the SMOS mission was led by ESA in collaboration with the Centre National d'Etudes Spatiales (CNES) in France and the Centro para el Desarrollo Tecnologico Industrial (CDTI) in Spain. SMOS carries a single payload, an L-Band 2-D interferometric radiometer operating in the 1400-1427-MHz protected band . The instrument receives the radiation emitted from Earth's surface, which can then be related to the moisture content in the first few centimeters of soil over land, and to salinity in the surface waters of the oceans. SMOS will achieve an unprecedented maximum spatial resolution of 50 km at L-band over land (43 km on average over the field of view), providing multiangular dual polarized (or fully polarized) brightness temperatures over the globe. SMOS has a revisit time of less than 3 days so as to retrieve soil moisture and ocean salinity data, meeting the mission's science objectives. The caveat in relation to its sampling requirements is that SMOS will have a somewhat reduced sensitivity when compared to conventional radiometers. The SMOS satellite was launched successfully on November 2, 2009.

Soil Moisture and Remote SensingPrecipitation Measurement and AnalysisCryospheric studies and observationsRadiometerEnvironmental sciencePayload (computing)Remote sensingL bandWater contentMeteorologyGeographyComputer scienceGeology
Citations
1,968
FWCI
75.81
field-weighted impact
References
80
Percentile
100%
vs. same field & year
Citations per year
Cited by
Assimilation of remote sensing into crop growth models: Current status and perspectives
Agricultural and Forest Meteorology · 2019 · 480 citations
The SMOS Soil Moisture Retrieval Algorithm
IEEE Transactions on Geoscience and Remote Sensing · 2012 · 1,022 citations
The Soil Moisture Active Passive (SMAP) Mission
Proceedings of the IEEE · 2010 · 3,644 citations
References
Soil moisture retrieval from AMSR-E
IEEE Transactions on Geoscience and Remote Sensing · 2003 · 1,547 citations
Soil moisture retrieval from space: the Soil Moisture and Ocean Salinity (SMOS) mission
IEEE Transactions on Geoscience and Remote Sensing · 2001 · 1,738 citations
An improved model for the dielectric constant of sea water at microwave frequencies
IEEE Transactions on Antennas and Propagation · 1977 · 888 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

The SMOS Mission: New Tool for Monitoring Key Elements ofthe Global Water Cycle · Scinovex