Toward the Integrated Marine Debris Observing System

На пути к интегрированной системе наблюдений за морским мусором
Nikolai Maximenko, Paolo Corradi, Kara Lavender Law, Erik van Sebille, Shungudzemwoyo P. Garaba, Richard S. Lampitt, François Galgani, Víctor Martínez-Vicente, Lonneke Goddijn‐Murphy, Joana Mira Veiga, Richard C. Thompson, Christophe Maes, Delwyn Moller, Carolin R. Löscher, Anna Maria Addamo, Megan R. Lamson, Luca Centurioni, Nicole R. Posth, Rick Lumpkin, Matteo Vinci, Ana Martins, Catharina Pieper, Atsuhiko Isobe, Georg Hanke, Margo H. Edwards, Irina Chubarenko, Ernesto Rodríguez, Stefano Aliani, Manuel Arias, Gregory P. Asner, Alberto Brosich, James T. Carlton, Yi Chao, Anna‐Marie Cook, Andrew B. Cundy, Tamara S. Galloway, Alessandra Giorgetti, Gustavo Goñi, Yann Guichoux, Linsey E. Haram, Britta Denise Hardesty, Neil Holdsworth, Laurent Lebreton, H.A. Leslie, Ilan Macadam-Somer, Thomas H. Mace, Mark Manuel, Robert Marsh, Élodie Martinez, Daniel J. Mayor, Morgan Le Moigne, Maria Eugenia Molina Jack, Matthew C. Mowlem, R. W. Obbard, Katsiaryna Pabortsava, Bill Robberson, Amelia‐Elena Rotaru, Gregory M. Ruiz, María Teresa Spedicato, Martín Thiel, Alexander Turra, Chris Wilcox
2019-08-28

Integrated Marine Debris Observing Systemin situ observationsmarine debris monitoringplastic pollutionremote sensing
Plastics and other artificial materials pose new risks to health of the ocean. Anthropogenic debris travels across large distances and is ubiquitous in the water and on the shorelines, yet, observations of its sources, composition, pathways and distributions in the ocean are very sparse and inaccurate. Total amounts of plastics and other man-made debris in the ocean and on the shore, temporal trends in these amounts under exponentially increasing production, as well as degradation processes, vertical fluxes and time scales are largely unknown. Present ocean circulation models are not able to accurately simulate drift of debris because of its complex hydrodynamics. In this paper we discuss the structure of the future integrated marine debris observing system (IMDOS) that is required to provide long-term monitoring of the state of the anthropogenic pollution and support operational activities to mitigate impacts on the ecosystem and safety of maritime activity. The proposed observing system integrates remote sensing and in situ observations. Also, models are used to optimize the design of the system and, in turn, they will be gradually improved using the products of the system. Remote sensing technologies will provide spatially coherent coverage and consistent surveying time series at local to global scale. Optical sensors, including high-resolution imaging, multi- and hyperspectral, fluorescence, and Raman technologies, as well as SAR will be used to measure different types of debris. They will be implemented in a variety of platforms, from hand-held tools to ship-, buoy-, aircraft-, and satellite-based sensors. A network of in situ observations, including reports from volunteers, citizen scientists and ships of opportunity, will be developed to provide data for calibration/validation of remote sensors and to monitor the spread of plastic pollution and other marine debris. IMDOS will interact with other observing systems monitoring physical, chemical, and biological processes in the ocean and on shorelines as well as state of the ecosystem, maritime activities and safety, drift of sea ice, etc. The synthesized data will support innovative multi-disciplinary research and serve diverse community of users.
1
Existing ocean circulation models cannot accurately simulate marine debris drift because of its complex hydrodynamics.
2
In situ observations from volunteers, citizen scientists, ships, and other sources will calibrate and validate remote sensing while monitoring pollution spread.
3
Marine debris observations are currently sparse and inaccurate, leaving sources, composition, pathways, distributions, quantities, trends, degradation, and vertical fluxes largely unknown.
4
Remote sensing using optical, hyperspectral, fluorescence, Raman, and SAR technologies across multiple platforms will provide spatially coherent, multiscale debris surveys.
5
The proposed Integrated Marine Debris Observing System combines remote sensing, in situ observations, and models for long-term pollution monitoring and mitigation support.

Anthropogenic marine debris, including plastics and other artificial materials, in the ocean and on shorelines

Long-term observation and characterization of the sources, composition, pathways, distributions, amounts, degradation, vertical fluxes, and temporal dynamics of marine debris to support pollution mitigation and maritime safety

Publication Details
Publication Date
2019-08-28
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Authors
Nikolai Maximenko
Paolo Corradi
Kara Lavender Law
Erik van Sebille
Shungudzemwoyo P. Garaba
Richard S. Lampitt
François Galgani
Víctor Martínez-Vicente
Lonneke Goddijn‐Murphy
Joana Mira Veiga
Richard C. Thompson
Christophe Maes
Delwyn Moller
Carolin R. Löscher
Anna Maria Addamo
Megan R. Lamson
Luca Centurioni
Nicole R. Posth
Rick Lumpkin
Matteo Vinci
Ana Martins
Catharina Pieper
Atsuhiko Isobe
Georg Hanke
Margo H. Edwards
Irina Chubarenko
Ernesto Rodríguez
Stefano Aliani
Manuel Arias
Gregory P. Asner
Alberto Brosich
James T. Carlton
Yi Chao
Anna‐Marie Cook
Andrew B. Cundy
Tamara S. Galloway
Alessandra Giorgetti
Gustavo Goñi
Yann Guichoux
Linsey E. Haram
Britta Denise Hardesty
Neil Holdsworth
Laurent Lebreton
H.A. Leslie
Ilan Macadam-Somer
Thomas H. Mace
Mark Manuel
Robert Marsh
Élodie Martinez
Daniel J. Mayor
Morgan Le Moigne
Maria Eugenia Molina Jack
Matthew C. Mowlem
R. W. Obbard
Katsiaryna Pabortsava
Bill Robberson
Amelia‐Elena Rotaru
Gregory M. Ruiz
María Teresa Spedicato
Martín Thiel
Alexander Turra
Chris Wilcox
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