Sensing the ocean biological carbon pump from space: A review of capabilities, concepts, research gaps and future developments

The element carbon plays a central role in climate and life on Earth. It is capable of moving among the geosphere, cryosphere, atmosphere, biosphere and hydrosphere. This flow of carbon is referred to as the Earth's carbon cycle. It is also intimately linked to the cycling of other elements and...

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Published inEarth-science reviews Vol. 217; p. 103604
Main Authors Brewin, Robert J.W., Sathyendranath, Shubha, Platt, Trevor, Bouman, Heather, Ciavatta, Stefano, Dall'Olmo, Giorgio, Dingle, James, Groom, Steve, Jönsson, Bror, Kostadinov, Tihomir S., Kulk, Gemma, Laine, Marko, Martínez-Vicente, Victor, Psarra, Stella, Raitsos, Dionysios E., Richardson, Katherine, Rio, Marie-Hélène, Rousseaux, Cécile S., Salisbury, Joe, Shutler, Jamie D., Walker, Peter
Format Journal Article
LanguageEnglish
Published Goddard Space Flight Center Elsevier B.V 01.06.2021
Elsevier
Subjects
Online AccessGet full text
ISSN0012-8252
1872-6828
DOI10.1016/j.earscirev.2021.103604

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Abstract The element carbon plays a central role in climate and life on Earth. It is capable of moving among the geosphere, cryosphere, atmosphere, biosphere and hydrosphere. This flow of carbon is referred to as the Earth's carbon cycle. It is also intimately linked to the cycling of other elements and compounds. The ocean plays a fundamental role in Earth's carbon cycle, helping to regulate atmospheric CO2 concentration. The ocean biological carbon pump (OBCP), defined as a set of processes that transfer organic carbon from the surface to the deep ocean, is at the heart of the ocean carbon cycle. Monitoring the OBCP is critical to understanding how the Earth's carbon cycle is changing. At present, satellite remote sensing is the only tool available for viewing the entire surface ocean at high temporal and spatial scales. In this paper, we review methods for monitoring the OBCP with a focus on satellites. We begin by providing an overview of the OBCP, defining and describing the pools of carbon in the ocean, and the processes controlling fluxes of carbon between the pools, from the surface to the deep ocean, and among ocean, land and atmosphere. We then examine how field measurements, from ship and autonomous platforms, complement satellite observations, provide validation points for satellite products and lead to a more complete view of the OBCP than would be possible from satellite observations alone. A thorough analysis is then provided on methods used for monitoring the OBCP from satellite platforms, covering current capabilities, concepts and gaps, and the requirement for uncertainties in satellite products. We finish by discussing the potential for producing a satellite-based carbon budget for the oceans, the advantages of integrating satellite-based observations with ecosystem models and field measurements, and future opportunities in space, all with a view towards bringing satellite observations into the limelight of ocean carbon research. [Display omitted] •Review of techniques for monitoring the ocean biological carbon pump•We focus particularly on satellite techniques•Field measurements, from ships and autonomous platforms, complement satellite data•Integrating satellite-based observations with ecosystems models is beneficial•The future of monitoring the ocean biological carbon pump from space is bright
AbstractList The element carbon plays a central role in climate and life on Earth. It is capable of moving among the geosphere, cryosphere, atmosphere, biosphere and hydrosphere. This flow of carbon is referred to as the Earth's carbon cycle. It is also intimately linked to the cycling of other elements and compounds. The ocean plays a fundamental role in Earth's carbon cycle, helping to regulate atmospheric CO₂ concentration. The ocean biological carbon pump (OBCP), defined as a set of processes that transfer organic carbon from the surface to the deep ocean, is at the heart of the ocean carbon cycle. Monitoring the OBCP is critical to understanding how the Earth's carbon cycle is changing. At present, satellite remote sensing is the only tool available for viewing the entire surface ocean at high temporal and spatial scales. In this paper, we review methods for monitoring the OBCP with a focus on satellites. We begin by providing an overview of the OBCP, defining and describing the pools of carbon in the ocean, and the processes controlling fluxes of carbon between the pools, from the surface to the deep ocean, and among ocean, land and atmosphere. We then examine how field measurements, from ship and autonomous platforms, complement satellite observations, provide validation points for satellite products and lead to a more complete view of the OBCP than would be possible from satellite observations alone. A thorough analysis is then provided on methods used for monitoring the OBCP from satellite platforms, covering current capabilities, concepts and gaps, and the requirement for uncertainties in satellite products. We finish by discussing the potential for producing a satellite-based carbon budget for the oceans, the advantages of integrating satellite-based observations with ecosystem models and field measurements, and future opportunities in space, all with a view towards bringing satellite observations into the limelight of ocean carbon research.
The element carbon plays a central role in climate and life on Earth. It is capable of moving among the geosphere, cryosphere, atmosphere, biosphere and hydrosphere. This flow of carbon is referred to as the Earth's carbon cycle. It is also intimately linked to the cycling of other elements and compounds. The ocean plays a fundamental role in Earth's carbon cycle, helping to regulate atmospheric CO2 concentration. The ocean biological carbon pump (OBCP), defined as a set of processes that transfer organic carbon from the surface to the deep ocean, is at the heart of the ocean carbon cycle. Monitoring the OBCP is critical to understanding how the Earth's carbon cycle is changing. At present, satellite remote sensing is the only tool available for viewing the entire surface ocean at high temporal and spatial scales. In this paper, we review methods for monitoring the OBCP with a focus on satellites. We begin by providing an overview of the OBCP, defining and describing the pools of carbon in the ocean, and the processes controlling fluxes of carbon between the pools, from the surface to the deep ocean, and among ocean, land and atmosphere. We then examine how field measurements, from ship and autonomous platforms, complement satellite observations, provide validation points for satellite products and lead to a more complete view of the OBCP than would be possible from satellite observations alone. A thorough analysis is then provided on methods used for monitoring the OBCP from satellite platforms, covering current capabilities, concepts and gaps, and the requirement for uncertainties in satellite products. We finish by discussing the potential for producing a satellite-based carbon budget for the oceans, the advantages of integrating satellite-based observations with ecosystem models and field measurements, and future opportunities in space, all with a view towards bringing satellite observations into the limelight of ocean carbon research. [Display omitted] •Review of techniques for monitoring the ocean biological carbon pump•We focus particularly on satellite techniques•Field measurements, from ships and autonomous platforms, complement satellite data•Integrating satellite-based observations with ecosystems models is beneficial•The future of monitoring the ocean biological carbon pump from space is bright
The element carbon plays a central role in climate and life on Earth. It is capable of moving among the geosphere, cryosphere, atmosphere, biosphere and hydrosphere. This flow of carbon is referred to as the Earth's carbon cycle. It is also intimately linked to the cycling of other elements and compounds. The ocean plays a fundamental role in Earth's carbon cycle, helping to regulate atmospheric CO2 concentration. The ocean biological carbon pump (OBCP), defined as a set of processes that transfer organic carbon from the surface to the deep ocean, is at the heart of the ocean carbon cycle. Monitoring the OBCP is critical to understanding how the Earth's carbon cycle is changing. At present, satellite remote sensing is the only tool available for viewing the entire surface ocean at high temporal and spatial scales. In this paper, we review methods for monitoring the OBCP with a focus on satellites. We begin by providing an overview of the OBCP, defining and describing the pools of carbon in the ocean, and the processes controlling fluxes of carbon between the pools, from the surface to the deep ocean, and among ocean, land and atmosphere. We then examine how field measurements, from ship and autonomous platforms, complement satellite observations, provide validation points for satellite products and lead to a more complete view of the OBCP than would be possible from satellite observations alone. A thorough analysis is then provided on methods used for monitoring the OBCP from satellite platforms, covering current capabilities, concepts and gaps, and the requirement for uncertainties in satellite products. We finish by discussing the potential for producing a satellite-based carbon budget for the oceans, the advantages of integrating satellite-based observations with ecosystem models and field measurements, and future opportunities in space, all with a view towards bringing satellite observations into the limelight of ocean carbon research.
ArticleNumber 103604
Audience PUBLIC
Author Rio, Marie-Hélène
Rousseaux, Cécile S.
Brewin, Robert J.W.
Dingle, James
Groom, Steve
Sathyendranath, Shubha
Salisbury, Joe
Raitsos, Dionysios E.
Walker, Peter
Ciavatta, Stefano
Kostadinov, Tihomir S.
Dall'Olmo, Giorgio
Psarra, Stella
Kulk, Gemma
Jönsson, Bror
Platt, Trevor
Shutler, Jamie D.
Bouman, Heather
Martínez-Vicente, Victor
Laine, Marko
Richardson, Katherine
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  organization: Centre for Geography and Environmental Science, College of Life and Environmental Sciences, University of Exeter, Penryn, Cornwall, United Kingdom
– sequence: 2
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  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
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  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
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  organization: Department of Earth Sciences, University of Oxford, Oxford, United Kingdom
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  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
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  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
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  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
– sequence: 10
  givenname: Tihomir S.
  surname: Kostadinov
  fullname: Kostadinov, Tihomir S.
  organization: Department of Liberal Studies, California State University San Marcos, San Marcos, CA, USA
– sequence: 11
  givenname: Gemma
  surname: Kulk
  fullname: Kulk, Gemma
  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
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  givenname: Marko
  surname: Laine
  fullname: Laine, Marko
  organization: Finnish Meteorological Institute, Helsinki, Finland
– sequence: 13
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  surname: Martínez-Vicente
  fullname: Martínez-Vicente, Victor
  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
– sequence: 14
  givenname: Stella
  surname: Psarra
  fullname: Psarra, Stella
  organization: Hellenic Centre for Marine Research, Crete, Greece
– sequence: 15
  givenname: Dionysios E.
  surname: Raitsos
  fullname: Raitsos, Dionysios E.
  organization: Department of Biology, National and Kapodistrian University of Athens, Athens, Greece
– sequence: 16
  givenname: Katherine
  surname: Richardson
  fullname: Richardson, Katherine
  organization: Globe Institute, University of Copenhagen, Denmark
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  givenname: Marie-Hélène
  surname: Rio
  fullname: Rio, Marie-Hélène
  organization: European Space Agency, European Space Research Institute (ESRIN), Frascati, Italy
– sequence: 18
  givenname: Cécile S.
  surname: Rousseaux
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  organization: Universities Space Research Association, Columbia, MD, USA
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  givenname: Joe
  surname: Salisbury
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  organization: College of Engineering and Physical Sciences, University of New Hampshire, Durham, NH, USA
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  givenname: Jamie D.
  surname: Shutler
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  organization: Centre for Geography and Environmental Science, College of Life and Environmental Sciences, University of Exeter, Penryn, Cornwall, United Kingdom
– sequence: 21
  givenname: Peter
  surname: Walker
  fullname: Walker, Peter
  organization: Plymouth Marine Laboratory, Plymouth, Devon, United Kingdom
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Snippet The element carbon plays a central role in climate and life on Earth. It is capable of moving among the geosphere, cryosphere, atmosphere, biosphere and...
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SubjectTerms Biology
biosphere
Carbon cycle
carbon dioxide
climate
complement
Earth Resources And Remote Sensing
ecosystems
global carbon budget
Ocean
Oceanography
organic carbon
Satellite
satellites
Title Sensing the ocean biological carbon pump from space: A review of capabilities, concepts, research gaps and future developments
URI https://dx.doi.org/10.1016/j.earscirev.2021.103604
https://ntrs.nasa.gov/citations/20210012945
https://www.proquest.com/docview/2574385013
Volume 217
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