(Table 1) Stable carbon and oxygen isotope ratios of benthic foraminifera of ODP Hole 184-1148A

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Autores principales: Tian, Jun, Shevenell, Amelia E, Wang, Pinxian, Li, Qianyu, Cheng, Xinrong
Formato: Dataset Open Access
Lenguaje:en
Publicado: PANGAEA 2009
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author Tian, Jun
Shevenell, Amelia E
Wang, Pinxian
Li, Qianyu
Cheng, Xinrong
author_facet Tian, Jun
Shevenell, Amelia E
Wang, Pinxian
Li, Qianyu
Cheng, Xinrong
collection Datos científicos de ciencias marinas y ambientales
contents Changes in intermediate and deep ocean circulation likely played a significant role in global carbon cycling and meridional heat/moisture transport during the middle Miocene climate transition (~14 Ma). High-resolution middle Miocene (16-13 Ma) benthic foraminifer stable isotope records from the South China Sea reveal a reorganization of regional bottom waters, which preceded the globally recognized middle Miocene ~1 per mil d18O increase (13.8 Ma) by 100,000 years. An observed reversal of the benthic foraminifera d13C gradient between ODP Sites 1146 (2092 m) and 1148 (3294 m; 13.9–13.5 Ma) is interpreted to reflect an increase in the southward flux of low d13C deep (> 2000 m) Pacific Ocean waters (Flower and Kennett, 1993, doi:10.1029/93PA02196; Shevenell and Kennett, 2004). Large-scale changes in Pacific intermediate and deep ocean circulation, coupled with enhanced global carbon cycling at the end of the Monterey Carbon Isotope excursion, likely acted as internal feedbacks to the Earth's climate system. These feedbacks reduced the sensitivity of Antarctica to lower latitude-derived heat/moisture and facilitated the transition of the Earth's climate system to a new, relatively stable glacial state.
format Dataset Open Access
id pangaea_https___doi_org_10_1594_PANGAEA_777751
institution PANGAEA
language en
publishDate 2009
publisher PANGAEA
record_format pangaea
spellingShingle (Table 1) Stable carbon and oxygen isotope ratios of benthic foraminifera of ODP Hole 184-1148A
Tian, Jun
Shevenell, Amelia E
Wang, Pinxian
Li, Qianyu
Cheng, Xinrong
184-1148A; Cibicidoides wuellerstorfi, δ13C; Cibicidoides wuellerstorfi, δ18O; DEPTH, sediment/rock; DRILL; Drilling/drill rig; DSDP/ODP/IODP sample designation; Joides Resolution; Leg184; Mass spectrometer, Finnigan, MAT 252; Ocean Drilling Program; ODP; Oridorsalis spp., δ13C; Oridorsalis spp., δ18O; Sample code/label; South China Sea
Changes in intermediate and deep ocean circulation likely played a significant role in global carbon cycling and meridional heat/moisture transport during the middle Miocene climate transition (~14 Ma). High-resolution middle Miocene (16-13 Ma) benthic foraminifer stable isotope records from the South China Sea reveal a reorganization of regional bottom waters, which preceded the globally recognized middle Miocene ~1 per mil d18O increase (13.8 Ma) by 100,000 years. An observed reversal of the benthic foraminifera d13C gradient between ODP Sites 1146 (2092 m) and 1148 (3294 m; 13.9–13.5 Ma) is interpreted to reflect an increase in the southward flux of low d13C deep (> 2000 m) Pacific Ocean waters (Flower and Kennett, 1993, doi:10.1029/93PA02196; Shevenell and Kennett, 2004). Large-scale changes in Pacific intermediate and deep ocean circulation, coupled with enhanced global carbon cycling at the end of the Monterey Carbon Isotope excursion, likely acted as internal feedbacks to the Earth's climate system. These feedbacks reduced the sensitivity of Antarctica to lower latitude-derived heat/moisture and facilitated the transition of the Earth's climate system to a new, relatively stable glacial state.
title (Table 1) Stable carbon and oxygen isotope ratios of benthic foraminifera of ODP Hole 184-1148A
topic 184-1148A; Cibicidoides wuellerstorfi, δ13C; Cibicidoides wuellerstorfi, δ18O; DEPTH, sediment/rock; DRILL; Drilling/drill rig; DSDP/ODP/IODP sample designation; Joides Resolution; Leg184; Mass spectrometer, Finnigan, MAT 252; Ocean Drilling Program; ODP; Oridorsalis spp., δ13C; Oridorsalis spp., δ18O; Sample code/label; South China Sea
url https://doi.org/10.1594/PANGAEA.777751