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apps Other research productkeyboard_double_arrow_right Other ORP type 2020 EnglishCopernicus Publications under license by EGU EC | OCEAN-CERTAINAuthors: Hopwood, Mark J.; Santana-González, Carolina; Gallego-Urrea, Julian Alberto; Sanchez, Nicolas; +9 AuthorsHopwood, Mark J.; Santana-González, Carolina; Gallego-Urrea, Julian Alberto; Sanchez, Nicolas; Achterberg, Eric P.; Ardelan, Murat Van; Gledhill, Martha; González-Dávila, Melchor; Hoffmann, Linn; Leiknes, Øystein; Santana-Casiano, Juana Magdalena; Tsagaraki, Tatiana Margo; Turner, David;The speciation of dissolved iron (DFe) in the ocean is widely assumed to consist almost exclusively of Fe(III)-ligand complexes. Yet in most aqueous environments a poorly defined fraction of DFe also exists as Fe(II), the speciation of which is uncertain. Here we deploy flow injection analysis to measure in situ Fe(II) concentrations during a series of mesocosm/microcosm/multistressor experiments in coastal environments in addition to the decay rate of this Fe(II) when moved into the dark. During five mesocosm/microcosm/multistressor experiments in Svalbard and Patagonia, where dissolved (0.2 µm) Fe and Fe(II) were quantified simultaneously, Fe(II) constituted 24 %–65 % of DFe, suggesting that Fe(II) was a large fraction of the DFe pool. When this Fe(II) was allowed to decay in the dark, the vast majority of measured oxidation rate constants were less than calculated constants derived from ambient temperature, salinity, pH, and dissolved O2. The oxidation rates of Fe(II) spikes added to Atlantic seawater more closely matched calculated rate constants. The difference between observed and theoretical decay rates in Svalbard and Patagonia was most pronounced at Fe(II) concentrations <2 nM, suggesting that the effect may have arisen from organic Fe(II) ligands. This apparent enhancement of Fe(II) stability under post-bloom conditions and the existence of such a high fraction of DFe as Fe(II) challenge the assumption that DFe speciation in coastal seawater is dominated by ligand bound-Fe(III) species.
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2017 Turkey English EC | MESOAQUAAuthors: Tsiola, Anastasia; Tsagaraki, Tatiana; Giannakourou, Antonia; Nikolioudakis, Nikolaos; +3 AuthorsTsiola, Anastasia; Tsagaraki, Tatiana; Giannakourou, Antonia; Nikolioudakis, Nikolaos; Yücel, Nebil; Herut, Barak; Pitta, Paraskevi;The impact of viral lysis and grazing by flagellates on bacterioplankton production was assessed during a mesocosm experiment in the Eastern Mediterranean Sea, in response to Saharan dust (SD) vs. mixed aerosols (A) addition. The results highlight a positive effect on bacterial abundance, production and growth rate (~1.2, ~2.4, and ~1.9-fold higher than the controls) in both SD and A, which was also confirmed by the increased portion of high DNA content bacteria (up to 48% of the bacterial community). Lytic viral production and the portion of bacterial production lost due to viral lysis were lower in SD and A after dust addition than in the controls (0.33 ± 0.17 × 106 virus-like particles mL-1 h-1 and 6 ± 4%, respectively). Potential ingestion rate of bacteria by flagellates increased upon dust enrichment, but did not differ between mesocosms. Larger predators possibly down regulated flagellate abundance, and the calculated portion of bacterial production lost due to flagellate grazing was probably an artifact. Higher frequency of lysogenic cells in A compared to SD and the controls four days after dust addition may reflect faster phosphorus limitation in A, due to receiving less dissolved inorganic phosphorus and more dissolved inorganic nitrogen than SD. Science Citation Index Expanded WOS: 000457690600057
Iskenderun Technical... arrow_drop_down Iskenderun Technical University Institutional RepositoryOther ORP type . 2017Data sources: Iskenderun Technical University Institutional RepositoryNorwegian Open Research ArchivesOther ORP type . 2017Data sources: Norwegian Open Research ArchivesAll Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://www.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=od______4723::6084a73838e831b9752d5d2d0ef9544b&type=result"></script>'); --> </script>
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more_vert Iskenderun Technical... arrow_drop_down Iskenderun Technical University Institutional RepositoryOther ORP type . 2017Data sources: Iskenderun Technical University Institutional RepositoryNorwegian Open Research ArchivesOther ORP type . 2017Data sources: Norwegian Open Research ArchivesAll Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://www.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=od______4723::6084a73838e831b9752d5d2d0ef9544b&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2016 Belgium EnglishCopernicus Publications EC | AtlantOS, EC | CARBOCHANGE, EC | SEADATANET IILauvset, Siv Kari; Key, Robert M.; Olsen, Are; van Heuven, Steven; Velo, Antón; Lin, Xiaohua; Schirnick, Carsten; Kozyr, Alex; Tanhua, Toste; Hoppema, Mario; Jutterström, Sara; Steinfeldt, Reiner; Jeansson, Emil; Ishii, Masao; Pérez, Fiz F.; Suzuki, Toru; Watelet, Sylvain;handle: 2268/201973
We present a mapped climatology (GLODAPv2.2016b) of ocean biogeochemical variables based on the new GLODAP version 2 data product (Olsen et al., 2016; Key et al., 2015), which covers all ocean basins over the years 1972 to 2013. The quality-controlled and internally consistent GLODAPv2 was used to create global 1° × 1° mapped climatologies of salinity, temperature, oxygen, nitrate, phosphate, silicate, total dissolved inorganic carbon (TCO2), total alkalinity (TAlk), pH, and CaCO3 saturation states using the Data-Interpolating Variational Analysis (DIVA) mapping method. Improving on maps based on an earlier but similar dataset, GLODAPv1.1, this climatology also covers the Arctic Ocean. Climatologies were created for 33 standard depth surfaces. The conceivably confounding temporal trends in TCO2 and pH due to anthropogenic influence were removed prior to mapping by normalizing these data to the year 2002 using first-order calculations of anthropogenic carbon accumulation rates. We additionally provide maps of accumulated anthropogenic carbon in the year 2002 and of preindustrial TCO2. For all parameters, all data from the full 1972–2013 period were used, including data that did not receive full secondary quality control. The GLODAPv2.2016b global 1° × 1° mapped climatologies, including error fields and ancillary information, are available at the GLODAPv2 web page at the Carbon Dioxide Information Analysis Center (CDIAC; doi:10.3334/CDIAC/OTG.NDP093_GLODAPv2).
Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2016Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2016Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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visibility 2visibility views 2 download downloads 0 Powered bymore_vert Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2016Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2016Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2015 EnglishCopernicus Publications EC | CARBOCHANGE, EC | SOCCLIHeinze, Christoph; Meyer, Stefanie; Goris, Nadine; Anderson, Leif; Steinfeldt, Rainer; Chang, Nicolette; Le Quéré, Corinne; Bakker, Dorothée C.E.;Carbon dioxide (CO2) is, next to water vapour, considered to be the most important natural greenhouse gas on Earth. Rapidly rising atmospheric CO2 concentrations caused by human actions such as fossil fuel burning, land-use change or cement production over the past 250 years have given cause for concern that changes in Earth's climate system may progress at a much faster pace and larger extent than during the past 20 000 years. Investigating global carbon cycle pathways and finding suitable adaptation and mitigation strategies has, therefore, become of major concern in many research fields. The oceans have a key role in regulating atmospheric CO2 concentrations and currently take up about 25% of annual anthropogenic carbon emissions to the atmosphere. Questions that yet need to be answered are what the carbon uptake kinetics of the oceans will be in the future and how the increase in oceanic carbon inventory will affect its ecosystems and their services. This requires comprehensive investigations, including high-quality ocean carbon measurements on different spatial and temporal scales, the management of data in sophisticated databases, the application of Earth system models to provide future projections for given emission scenarios as well as a global synthesis and outreach to policy makers. In this paper, the current understanding of the ocean as an important carbon sink is reviewed with respect to these topics. Emphasis is placed on the complex interplay of different physical, chemical and biological processes that yield both positive and negative air–sea flux values for natural and anthropogenic CO2 as well as on increased CO2 (uptake) as the regulating force of the radiative warming of the atmosphere and the gradual acidification of the oceans. Major future ocean carbon challenges in the fields of ocean observations, modelling and process research as well as the relevance of other biogeochemical cycles and greenhouse gases are discussed.
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2013 Belgium EnglishCopernicus Publications EC | CARBOCHANGE, NSF | Support for International..., NSF | Support for the Intergove...Pfeil, B. Br; Olsen, A. Br; Bakker, D. C. E. Br; Hankin, S. Br; Koyuk, H. Br; Kozyr, A. Br; Malczyk, J. Br; Manke, A. Br; Metzl, N. Br; Sabine, C. L. Br; Akl, J. Br; Alin, S. R. Br; Bates, N. Br; Bellerby, R. G. J. Br; Borges, Alberto; Boutin, J. Br; Brown, P. J. Br; Cai, W. J. Br; Chavez, F. P. Br; Chen, A. Br; Cosca, C. Br; Fassbender, A. J. Br; Feely, R. A. Br; González-Dávila, M. Br; Goyet, C. Br; Hales, B. Br; Hardman-Mountford, N. Br; Heinze, C. Br; Hood, M. Br; Hoppema, M. Br; Hunt, C. W. Br; Hydes, D. Br; Ishii, M. Br; Johannessen, T. Br; Jones, S. D. Br; Key, R. M. Br; Körtzinger, A. Br; Landschützer, P. Br; Lauvset, S. K. Br; Lefèvre, N. Br; Lenton, A. Br; Lourantou, A. Br; Merlivat, L. Br; Midorikawa, T. Br; Mintrop, L. Br; Miyazaki, C. Br; Murata, A. Br; Nakadate, A. Br; Nakano, Y. Br; Nakaoka, S. Br; Nojiri, Y. Br; Omar, A. M. Br; Padin, X. A. Br; Park, G. H. Br; Paterson, K. Br; Perez, F. F. Br; Pierrot, D. Br; Poisson, A. Br; Ríos, A. F. Br; Santana-Casiano, J. M. Br; Salisbury, J. Br; Sarma, V. V. S. S. Br; Schlitzer, R. Br; Schneider, B. Br; Schuster, U. Br; Sieger, R. Br; Skjelvan, I. Br; Steinhoff, T. Br; Suzuki, T. Br; Takahashi, T. Br; Tedesco, K. Br; Telszewski, M. Br; Thomas, H. Br; Tilbrook, B. Br; Tjiputra, J. Br; Vandemark, D. Br; Veness, T. Br; Wanninkhof, R. Br; Watson, A. J. Br; Weiss, R. Br; Wong, C. S. Br; Yoshikawa-Inoue, H. P;handle: 2268/146157
A well-documented, publicly available, global data set of surface ocean carbon dioxide (CO2) parameters has been called for by international groups for nearly two decades. The Surface Ocean CO2 Atlas (SOCAT) project was initiated by the international marine carbon science community in 2007 with the aim of providing a comprehensive, publicly available, regularly updated, global data set of marine surface CO2, which had been subject to quality control (QC). Many additional CO2 data, not yet made public via the Carbon Dioxide Information Analysis Center (CDIAC), were retrieved from data originators, public websites and other data centres. All data were put in a uniform format following a strict protocol. Quality control was carried out according to clearly defined criteria. Regional specialists performed the quality control, using state-of-the-art web-based tools, specially developed for accomplishing this global team effort. SOCAT version 1.5 was made public in September 2011 and holds 6.3 million quality controlled surface CO2 data points from the global oceans and coastal seas, spanning four decades (1968–2007). Three types of data products are available: individual cruise files, a merged complete data set and gridded products. With the rapid expansion of marine CO2 data collection and the importance of quantifying net global oceanic CO2 uptake and its changes, sustained data synthesis and data access are priorities.
Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2013Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2013Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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more_vert Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2013Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2013Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2013 Belgium EnglishCopernicus Publications EC | CARBOCHANGE, NSF | Support for International..., NSF | Support for the Intergove...Sabine, C. L. Br; Hankin, S. Br; Koyuk, H. Br; Bakker, D. C. E. Br; Pfeil, B. Br; Olsen, A. Br; Metzl, N. Br; Kozyr, A. Br; Fassbender, A. Br; Manke, A. Br; Malczyk, J. Br; Akl, J. Br; Alin, S. R. Br; Bellerby, R. G. J. Br; Borges, Alberto; Boutin, J. Br; Brown, P. J. Br; Cai, W. J. Br; Chavez, F. P. Br; Chen, A. Br; Cosca, C. Br; Feely, R. A. Br; González-Dávila, M. Br; Goyet, C. Br; Hardman-Mountford, N. Br; Heinze, C. Br; Hoppema, M. Br; Hunt, C. W. Br; Hydes, D. Br; Ishii, M. Br; Johannessen, T. Br; Key, R. M. Br; Körtzinger, A. Br; Landschützer, P. Br; Lauvset, S. K. Br; Lefèvre, N. Br; Lenton, A. Br; Lourantou, A. Br; Merlivat, L. Br; Midorikawa, T. Br; Mintrop, L. Br; Miyazaki, C. Br; Murata, A. Br; Nakadate, A. Br; Nakano, Y. Br; Nakaoka, S. Br; Nojiri, Y. Br; Omar, A. M. Br; Padin, X. A. Br; Park, G. H. Br; Paterson, K. Br; Perez, F. F. Br; Pierrot, D. Br; Poisson, A. Br; Ríos, A. F. Br; Salisbury, J. Br; Santana-Casiano, J. M. Br; Sarma, V. V. S. S. Br; Schlitzer, R. Br; Schneider, B. Br; Schuster, U. Br; Sieger, R. Br; Skjelvan, I. Br; Steinhoff, T. Br; Suzuki, T. Br; Takahashi, T. Br; Tedesco, K. Br; Telszewski, M. Br; Thomas, H. Br; Tilbrook, B. Br; Vandemark, D. Br; Veness, T. Br; Watson, A. J. Br; Weiss, R. Br; Wong, C. S. Br; Yoshikawa-Inoue, H. P;handle: 2268/146160
As a response to public demand for a well-documented, quality controlled, publically available, global surface ocean carbon dioxide (CO2) data set, the international marine carbon science community developed the Surface Ocean CO2 Atlas (SOCAT). The first SOCAT product is a collection of 6.3 million quality controlled surface CO2 data from the global oceans and coastal seas, spanning four decades (1968–2007). The SOCAT gridded data presented here is the second data product to come from the SOCAT project. Recognizing that some groups may have trouble working with millions of measurements, the SOCAT gridded product was generated to provide a robust, regularly spaced CO2 fugacity (fCO2) product with minimal spatial and temporal interpolation, which should be easier to work with for many applications. Gridded SOCAT is rich with information that has not been fully explored yet (e.g., regional differences in the seasonal cycles), but also contains biases and limitations that the user needs to recognize and address (e.g., local influences on values in some coastal regions).
Earth System Science... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2013Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2013Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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apps Other research productkeyboard_double_arrow_right Other ORP type 2020 EnglishCopernicus Publications under license by EGU EC | OCEAN-CERTAINAuthors: Hopwood, Mark J.; Santana-González, Carolina; Gallego-Urrea, Julian Alberto; Sanchez, Nicolas; +9 AuthorsHopwood, Mark J.; Santana-González, Carolina; Gallego-Urrea, Julian Alberto; Sanchez, Nicolas; Achterberg, Eric P.; Ardelan, Murat Van; Gledhill, Martha; González-Dávila, Melchor; Hoffmann, Linn; Leiknes, Øystein; Santana-Casiano, Juana Magdalena; Tsagaraki, Tatiana Margo; Turner, David;The speciation of dissolved iron (DFe) in the ocean is widely assumed to consist almost exclusively of Fe(III)-ligand complexes. Yet in most aqueous environments a poorly defined fraction of DFe also exists as Fe(II), the speciation of which is uncertain. Here we deploy flow injection analysis to measure in situ Fe(II) concentrations during a series of mesocosm/microcosm/multistressor experiments in coastal environments in addition to the decay rate of this Fe(II) when moved into the dark. During five mesocosm/microcosm/multistressor experiments in Svalbard and Patagonia, where dissolved (0.2 µm) Fe and Fe(II) were quantified simultaneously, Fe(II) constituted 24 %–65 % of DFe, suggesting that Fe(II) was a large fraction of the DFe pool. When this Fe(II) was allowed to decay in the dark, the vast majority of measured oxidation rate constants were less than calculated constants derived from ambient temperature, salinity, pH, and dissolved O2. The oxidation rates of Fe(II) spikes added to Atlantic seawater more closely matched calculated rate constants. The difference between observed and theoretical decay rates in Svalbard and Patagonia was most pronounced at Fe(II) concentrations <2 nM, suggesting that the effect may have arisen from organic Fe(II) ligands. This apparent enhancement of Fe(II) stability under post-bloom conditions and the existence of such a high fraction of DFe as Fe(II) challenge the assumption that DFe speciation in coastal seawater is dominated by ligand bound-Fe(III) species.
Biogeosciences (BG) arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2020Data sources: Norwegian Open Research ArchivesAll Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://www.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=copernicuspu::ee268915ba95329e83b9dc91a7b8ca6f&type=result"></script>'); --> </script>
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2017 Turkey English EC | MESOAQUAAuthors: Tsiola, Anastasia; Tsagaraki, Tatiana; Giannakourou, Antonia; Nikolioudakis, Nikolaos; +3 AuthorsTsiola, Anastasia; Tsagaraki, Tatiana; Giannakourou, Antonia; Nikolioudakis, Nikolaos; Yücel, Nebil; Herut, Barak; Pitta, Paraskevi;The impact of viral lysis and grazing by flagellates on bacterioplankton production was assessed during a mesocosm experiment in the Eastern Mediterranean Sea, in response to Saharan dust (SD) vs. mixed aerosols (A) addition. The results highlight a positive effect on bacterial abundance, production and growth rate (~1.2, ~2.4, and ~1.9-fold higher than the controls) in both SD and A, which was also confirmed by the increased portion of high DNA content bacteria (up to 48% of the bacterial community). Lytic viral production and the portion of bacterial production lost due to viral lysis were lower in SD and A after dust addition than in the controls (0.33 ± 0.17 × 106 virus-like particles mL-1 h-1 and 6 ± 4%, respectively). Potential ingestion rate of bacteria by flagellates increased upon dust enrichment, but did not differ between mesocosms. Larger predators possibly down regulated flagellate abundance, and the calculated portion of bacterial production lost due to flagellate grazing was probably an artifact. Higher frequency of lysogenic cells in A compared to SD and the controls four days after dust addition may reflect faster phosphorus limitation in A, due to receiving less dissolved inorganic phosphorus and more dissolved inorganic nitrogen than SD. Science Citation Index Expanded WOS: 000457690600057
Iskenderun Technical... arrow_drop_down Iskenderun Technical University Institutional RepositoryOther ORP type . 2017Data sources: Iskenderun Technical University Institutional RepositoryNorwegian Open Research ArchivesOther ORP type . 2017Data sources: Norwegian Open Research ArchivesAll Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://www.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=od______4723::6084a73838e831b9752d5d2d0ef9544b&type=result"></script>'); --> </script>
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more_vert Iskenderun Technical... arrow_drop_down Iskenderun Technical University Institutional RepositoryOther ORP type . 2017Data sources: Iskenderun Technical University Institutional RepositoryNorwegian Open Research ArchivesOther ORP type . 2017Data sources: Norwegian Open Research ArchivesAll Research productsarrow_drop_down <script type="text/javascript"> <!-- document.write('<div id="oa_widget"></div>'); document.write('<script type="text/javascript" src="https://www.openaire.eu/index.php?option=com_openaire&view=widget&format=raw&projectId=od______4723::6084a73838e831b9752d5d2d0ef9544b&type=result"></script>'); --> </script>
For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2016 Belgium EnglishCopernicus Publications EC | AtlantOS, EC | CARBOCHANGE, EC | SEADATANET IILauvset, Siv Kari; Key, Robert M.; Olsen, Are; van Heuven, Steven; Velo, Antón; Lin, Xiaohua; Schirnick, Carsten; Kozyr, Alex; Tanhua, Toste; Hoppema, Mario; Jutterström, Sara; Steinfeldt, Reiner; Jeansson, Emil; Ishii, Masao; Pérez, Fiz F.; Suzuki, Toru; Watelet, Sylvain;handle: 2268/201973
We present a mapped climatology (GLODAPv2.2016b) of ocean biogeochemical variables based on the new GLODAP version 2 data product (Olsen et al., 2016; Key et al., 2015), which covers all ocean basins over the years 1972 to 2013. The quality-controlled and internally consistent GLODAPv2 was used to create global 1° × 1° mapped climatologies of salinity, temperature, oxygen, nitrate, phosphate, silicate, total dissolved inorganic carbon (TCO2), total alkalinity (TAlk), pH, and CaCO3 saturation states using the Data-Interpolating Variational Analysis (DIVA) mapping method. Improving on maps based on an earlier but similar dataset, GLODAPv1.1, this climatology also covers the Arctic Ocean. Climatologies were created for 33 standard depth surfaces. The conceivably confounding temporal trends in TCO2 and pH due to anthropogenic influence were removed prior to mapping by normalizing these data to the year 2002 using first-order calculations of anthropogenic carbon accumulation rates. We additionally provide maps of accumulated anthropogenic carbon in the year 2002 and of preindustrial TCO2. For all parameters, all data from the full 1972–2013 period were used, including data that did not receive full secondary quality control. The GLODAPv2.2016b global 1° × 1° mapped climatologies, including error fields and ancillary information, are available at the GLODAPv2 web page at the Carbon Dioxide Information Analysis Center (CDIAC; doi:10.3334/CDIAC/OTG.NDP093_GLODAPv2).
Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2016Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2016Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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visibility 2visibility views 2 download downloads 0 Powered bymore_vert Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2016Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2016Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2015 EnglishCopernicus Publications EC | CARBOCHANGE, EC | SOCCLIHeinze, Christoph; Meyer, Stefanie; Goris, Nadine; Anderson, Leif; Steinfeldt, Rainer; Chang, Nicolette; Le Quéré, Corinne; Bakker, Dorothée C.E.;Carbon dioxide (CO2) is, next to water vapour, considered to be the most important natural greenhouse gas on Earth. Rapidly rising atmospheric CO2 concentrations caused by human actions such as fossil fuel burning, land-use change or cement production over the past 250 years have given cause for concern that changes in Earth's climate system may progress at a much faster pace and larger extent than during the past 20 000 years. Investigating global carbon cycle pathways and finding suitable adaptation and mitigation strategies has, therefore, become of major concern in many research fields. The oceans have a key role in regulating atmospheric CO2 concentrations and currently take up about 25% of annual anthropogenic carbon emissions to the atmosphere. Questions that yet need to be answered are what the carbon uptake kinetics of the oceans will be in the future and how the increase in oceanic carbon inventory will affect its ecosystems and their services. This requires comprehensive investigations, including high-quality ocean carbon measurements on different spatial and temporal scales, the management of data in sophisticated databases, the application of Earth system models to provide future projections for given emission scenarios as well as a global synthesis and outreach to policy makers. In this paper, the current understanding of the ocean as an important carbon sink is reviewed with respect to these topics. Emphasis is placed on the complex interplay of different physical, chemical and biological processes that yield both positive and negative air–sea flux values for natural and anthropogenic CO2 as well as on increased CO2 (uptake) as the regulating force of the radiative warming of the atmosphere and the gradual acidification of the oceans. Major future ocean carbon challenges in the fields of ocean observations, modelling and process research as well as the relevance of other biogeochemical cycles and greenhouse gases are discussed.
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2013 Belgium EnglishCopernicus Publications EC | CARBOCHANGE, NSF | Support for International..., NSF | Support for the Intergove...Pfeil, B. Br; Olsen, A. Br; Bakker, D. C. E. Br; Hankin, S. Br; Koyuk, H. Br; Kozyr, A. Br; Malczyk, J. Br; Manke, A. Br; Metzl, N. Br; Sabine, C. L. Br; Akl, J. Br; Alin, S. R. Br; Bates, N. Br; Bellerby, R. G. J. Br; Borges, Alberto; Boutin, J. Br; Brown, P. J. Br; Cai, W. J. Br; Chavez, F. P. Br; Chen, A. Br; Cosca, C. Br; Fassbender, A. J. Br; Feely, R. A. Br; González-Dávila, M. Br; Goyet, C. Br; Hales, B. Br; Hardman-Mountford, N. Br; Heinze, C. Br; Hood, M. Br; Hoppema, M. Br; Hunt, C. W. Br; Hydes, D. Br; Ishii, M. Br; Johannessen, T. Br; Jones, S. D. Br; Key, R. M. Br; Körtzinger, A. Br; Landschützer, P. Br; Lauvset, S. K. Br; Lefèvre, N. Br; Lenton, A. Br; Lourantou, A. Br; Merlivat, L. Br; Midorikawa, T. Br; Mintrop, L. Br; Miyazaki, C. Br; Murata, A. Br; Nakadate, A. Br; Nakano, Y. Br; Nakaoka, S. Br; Nojiri, Y. Br; Omar, A. M. Br; Padin, X. A. Br; Park, G. H. Br; Paterson, K. Br; Perez, F. F. Br; Pierrot, D. Br; Poisson, A. Br; Ríos, A. F. Br; Santana-Casiano, J. M. Br; Salisbury, J. Br; Sarma, V. V. S. S. Br; Schlitzer, R. Br; Schneider, B. Br; Schuster, U. Br; Sieger, R. Br; Skjelvan, I. Br; Steinhoff, T. Br; Suzuki, T. Br; Takahashi, T. Br; Tedesco, K. Br; Telszewski, M. Br; Thomas, H. Br; Tilbrook, B. Br; Tjiputra, J. Br; Vandemark, D. Br; Veness, T. Br; Wanninkhof, R. Br; Watson, A. J. Br; Weiss, R. Br; Wong, C. S. Br; Yoshikawa-Inoue, H. P;handle: 2268/146157
A well-documented, publicly available, global data set of surface ocean carbon dioxide (CO2) parameters has been called for by international groups for nearly two decades. The Surface Ocean CO2 Atlas (SOCAT) project was initiated by the international marine carbon science community in 2007 with the aim of providing a comprehensive, publicly available, regularly updated, global data set of marine surface CO2, which had been subject to quality control (QC). Many additional CO2 data, not yet made public via the Carbon Dioxide Information Analysis Center (CDIAC), were retrieved from data originators, public websites and other data centres. All data were put in a uniform format following a strict protocol. Quality control was carried out according to clearly defined criteria. Regional specialists performed the quality control, using state-of-the-art web-based tools, specially developed for accomplishing this global team effort. SOCAT version 1.5 was made public in September 2011 and holds 6.3 million quality controlled surface CO2 data points from the global oceans and coastal seas, spanning four decades (1968–2007). Three types of data products are available: individual cruise files, a merged complete data set and gridded products. With the rapid expansion of marine CO2 data collection and the importance of quantifying net global oceanic CO2 uptake and its changes, sustained data synthesis and data access are priorities.
Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2013Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2013Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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more_vert Norwegian Open Resea... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2013Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2013Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
You have already added works in your ORCID record related to the merged Research product.This Research product is the result of merged Research products in OpenAIRE.
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For further information contact us at helpdesk@openaire.euapps Other research productkeyboard_double_arrow_right Other ORP type 2013 Belgium EnglishCopernicus Publications EC | CARBOCHANGE, NSF | Support for International..., NSF | Support for the Intergove...Sabine, C. L. Br; Hankin, S. Br; Koyuk, H. Br; Bakker, D. C. E. Br; Pfeil, B. Br; Olsen, A. Br; Metzl, N. Br; Kozyr, A. Br; Fassbender, A. Br; Manke, A. Br; Malczyk, J. Br; Akl, J. Br; Alin, S. R. Br; Bellerby, R. G. J. Br; Borges, Alberto; Boutin, J. Br; Brown, P. J. Br; Cai, W. J. Br; Chavez, F. P. Br; Chen, A. Br; Cosca, C. Br; Feely, R. A. Br; González-Dávila, M. Br; Goyet, C. Br; Hardman-Mountford, N. Br; Heinze, C. Br; Hoppema, M. Br; Hunt, C. W. Br; Hydes, D. Br; Ishii, M. Br; Johannessen, T. Br; Key, R. M. Br; Körtzinger, A. Br; Landschützer, P. Br; Lauvset, S. K. Br; Lefèvre, N. Br; Lenton, A. Br; Lourantou, A. Br; Merlivat, L. Br; Midorikawa, T. Br; Mintrop, L. Br; Miyazaki, C. Br; Murata, A. Br; Nakadate, A. Br; Nakano, Y. Br; Nakaoka, S. Br; Nojiri, Y. Br; Omar, A. M. Br; Padin, X. A. Br; Park, G. H. Br; Paterson, K. Br; Perez, F. F. Br; Pierrot, D. Br; Poisson, A. Br; Ríos, A. F. Br; Salisbury, J. Br; Santana-Casiano, J. M. Br; Sarma, V. V. S. S. Br; Schlitzer, R. Br; Schneider, B. Br; Schuster, U. Br; Sieger, R. Br; Skjelvan, I. Br; Steinhoff, T. Br; Suzuki, T. Br; Takahashi, T. Br; Tedesco, K. Br; Telszewski, M. Br; Thomas, H. Br; Tilbrook, B. Br; Vandemark, D. Br; Veness, T. Br; Watson, A. J. Br; Weiss, R. Br; Wong, C. S. Br; Yoshikawa-Inoue, H. P;handle: 2268/146160
As a response to public demand for a well-documented, quality controlled, publically available, global surface ocean carbon dioxide (CO2) data set, the international marine carbon science community developed the Surface Ocean CO2 Atlas (SOCAT). The first SOCAT product is a collection of 6.3 million quality controlled surface CO2 data from the global oceans and coastal seas, spanning four decades (1968–2007). The SOCAT gridded data presented here is the second data product to come from the SOCAT project. Recognizing that some groups may have trouble working with millions of measurements, the SOCAT gridded product was generated to provide a robust, regularly spaced CO2 fugacity (fCO2) product with minimal spatial and temporal interpolation, which should be easier to work with for many applications. Gridded SOCAT is rich with information that has not been fully explored yet (e.g., regional differences in the seasonal cycles), but also contains biases and limitations that the user needs to recognize and address (e.g., local influences on values in some coastal regions).
Earth System Science... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2013Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2013Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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more_vert Earth System Science... arrow_drop_down Norwegian Open Research ArchivesOther ORP type . 2013Data sources: Norwegian Open Research ArchivesOpen Repository and Bibliography - University of LiègeOther ORP type . 2013Data sources: Open Repository and Bibliography - University of Liègeadd ClaimPlease grant OpenAIRE to access and update your ORCID works.This Research product is the result of merged Research products in OpenAIRE.
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