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Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends

Our understanding of the long‐term evolution of the Earth system is based on the assumption that terrestrial weathering rates should respond to, and hence help regulate, atmospheric CO(2) and climate. Increased terrestrial weathering requires increased carbonate accumulation in marine sediments, whi...

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Autores principales: Greene, S. E., Ridgwell, A., Kirtland Turner, S., Schmidt, D. N., Pälike, H., Thomas, E., Greene, L. K., Hoogakker, B. A. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6774345/
https://www.ncbi.nlm.nih.gov/pubmed/31598585
http://dx.doi.org/10.1029/2019PA003601
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author Greene, S. E.
Ridgwell, A.
Kirtland Turner, S.
Schmidt, D. N.
Pälike, H.
Thomas, E.
Greene, L. K.
Hoogakker, B. A. A.
author_facet Greene, S. E.
Ridgwell, A.
Kirtland Turner, S.
Schmidt, D. N.
Pälike, H.
Thomas, E.
Greene, L. K.
Hoogakker, B. A. A.
author_sort Greene, S. E.
collection PubMed
description Our understanding of the long‐term evolution of the Earth system is based on the assumption that terrestrial weathering rates should respond to, and hence help regulate, atmospheric CO(2) and climate. Increased terrestrial weathering requires increased carbonate accumulation in marine sediments, which in turn is expected to result in a long‐term deepening of the carbonate compensation depth (CCD). Here, we critically assess this long‐term relationship between climate and carbon cycling. We generate a record of marine deep‐sea carbonate abundance from selected late Paleocene through early Eocene time slices to reconstruct the position of the CCD. Although our data set allows for a modest CCD deepening, we find no statistically significant change in the CCD despite >3 °C global warming, highlighting the need for additional deep‐sea constraints on carbonate accumulation. Using an Earth system model, we show that the impact of warming and increased weathering on the CCD can be obscured by the opposing influences of ocean circulation patterns and sedimentary respiration of organic matter. From our data synthesis and modeling, we suggest that observations of warming, declining δ(13)C and a relatively stable CCD can be broadly reproduced by mid‐Paleogene increases in volcanic CO(2) outgassing and weathering. However, remaining data‐model discrepancies hint at missing processes in our model, most likely involving the preservation and burial of organic carbon. Our finding of a decoupling between the CCD and global marine carbonate burial rates means that considerable care is needed in attempting to use the CCD to directly gauge global carbonate burial rates and hence weathering rates.
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spelling pubmed-67743452019-10-07 Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends Greene, S. E. Ridgwell, A. Kirtland Turner, S. Schmidt, D. N. Pälike, H. Thomas, E. Greene, L. K. Hoogakker, B. A. A. Paleoceanogr Paleoclimatol Research Articles Our understanding of the long‐term evolution of the Earth system is based on the assumption that terrestrial weathering rates should respond to, and hence help regulate, atmospheric CO(2) and climate. Increased terrestrial weathering requires increased carbonate accumulation in marine sediments, which in turn is expected to result in a long‐term deepening of the carbonate compensation depth (CCD). Here, we critically assess this long‐term relationship between climate and carbon cycling. We generate a record of marine deep‐sea carbonate abundance from selected late Paleocene through early Eocene time slices to reconstruct the position of the CCD. Although our data set allows for a modest CCD deepening, we find no statistically significant change in the CCD despite >3 °C global warming, highlighting the need for additional deep‐sea constraints on carbonate accumulation. Using an Earth system model, we show that the impact of warming and increased weathering on the CCD can be obscured by the opposing influences of ocean circulation patterns and sedimentary respiration of organic matter. From our data synthesis and modeling, we suggest that observations of warming, declining δ(13)C and a relatively stable CCD can be broadly reproduced by mid‐Paleogene increases in volcanic CO(2) outgassing and weathering. However, remaining data‐model discrepancies hint at missing processes in our model, most likely involving the preservation and burial of organic carbon. Our finding of a decoupling between the CCD and global marine carbonate burial rates means that considerable care is needed in attempting to use the CCD to directly gauge global carbonate burial rates and hence weathering rates. John Wiley and Sons Inc. 2019-06-17 2019-06 /pmc/articles/PMC6774345/ /pubmed/31598585 http://dx.doi.org/10.1029/2019PA003601 Text en ©2019. The Authors. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Greene, S. E.
Ridgwell, A.
Kirtland Turner, S.
Schmidt, D. N.
Pälike, H.
Thomas, E.
Greene, L. K.
Hoogakker, B. A. A.
Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends
title Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends
title_full Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends
title_fullStr Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends
title_full_unstemmed Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends
title_short Early Cenozoic Decoupling of Climate and Carbonate Compensation Depth Trends
title_sort early cenozoic decoupling of climate and carbonate compensation depth trends
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6774345/
https://www.ncbi.nlm.nih.gov/pubmed/31598585
http://dx.doi.org/10.1029/2019PA003601
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