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  • 108-662; 114-704; 121-758; 124-772; 130-806; 138-846; 138-849; 151-907; 161-978; 162-982; 165-999; 175-1082; 175-1087; 177-1088; 177-1090; 177-1092; 184-1143; 184-1148; 198-1208; 202-1241; 208-1267; 22-214; 306-U1313; 321-U1337; 341-U1417; 90-593; 90-594; Alboran Sea; alkenone SST; Benguela Current, South Atlantic Ocean; benthic and planktonic foraminifers; Caribbean Sea; Change point detection; COMPCORE; Composite Core; d18O of planktic foraminifera; Date/Time of event; DRILL; Drilling/drill rig; Event label; Exp306; Exp321; Exp341; foraminifera oxygen isotopes; Glomar Challenger; Iceland Sea; Indian Ocean; Indian Ocean//RIDGE; Italy; Joides Resolution; Latitude of event; Leg108; Leg114; Leg121; Leg124E; Leg130; Leg138; Leg151; Leg161; Leg162; Leg165; Leg175; Leg177; Leg184; Leg198; Leg202; Leg208; Leg22; Leg90; Literature search; Longitude of event; Measurement conducted; Mg/Ca-based sea surface temperature; North Atlantic Climate 2; Northern Hemisphere glaciation; North Pacific Ocean; OUTCROP; Outcrop sample; Pacific Equatorial Age Transect II / Juan de Fuca; PAGES_PlioVAR; Pleistocene; Pliocene; PlioVAR - Pliocene climate variability over glacial-interglacial timescales; Proxy; Punta-Grande_Punta-Piccola; Site; South Atlantic Ocean; South China Sea; Southern Alaska Margin: Tectonics, Climate and Sedimentation; South Pacific/CONT RISE; South Pacific/Tasman Sea/PLATEAU; South Pacific Ocean  (1)
  • 138-848B; 138-849; 138-853; COMPCORE; Composite Core; DRILL; Drilling/drill rig; Joides Resolution; Leg138; North Pacific Ocean; Ocean Drilling Program; ODP; South Pacific Ocean  (1)
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  • 1
    Publication Date: 2023-12-11
    Keywords: 108-662; 114-704; 121-758; 124-772; 130-806; 138-846; 138-849; 151-907; 161-978; 162-982; 165-999; 175-1082; 175-1087; 177-1088; 177-1090; 177-1092; 184-1143; 184-1148; 198-1208; 202-1241; 208-1267; 22-214; 306-U1313; 321-U1337; 341-U1417; 90-593; 90-594; Alboran Sea; alkenone SST; Benguela Current, South Atlantic Ocean; benthic and planktonic foraminifers; Caribbean Sea; Change point detection; COMPCORE; Composite Core; d18O of planktic foraminifera; Date/Time of event; DRILL; Drilling/drill rig; Event label; Exp306; Exp321; Exp341; foraminifera oxygen isotopes; Glomar Challenger; Iceland Sea; Indian Ocean; Indian Ocean//RIDGE; Italy; Joides Resolution; Latitude of event; Leg108; Leg114; Leg121; Leg124E; Leg130; Leg138; Leg151; Leg161; Leg162; Leg165; Leg175; Leg177; Leg184; Leg198; Leg202; Leg208; Leg22; Leg90; Literature search; Longitude of event; Measurement conducted; Mg/Ca-based sea surface temperature; North Atlantic Climate 2; Northern Hemisphere glaciation; North Pacific Ocean; OUTCROP; Outcrop sample; Pacific Equatorial Age Transect II / Juan de Fuca; PAGES_PlioVAR; Pleistocene; Pliocene; PlioVAR - Pliocene climate variability over glacial-interglacial timescales; Proxy; Punta-Grande_Punta-Piccola; Site; South Atlantic Ocean; South China Sea; Southern Alaska Margin: Tectonics, Climate and Sedimentation; South Pacific/CONT RISE; South Pacific/Tasman Sea/PLATEAU; South Pacific Ocean
    Type: Dataset
    Format: text/tab-separated-values, 333 data points
    Location Call Number Limitation Availability
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  • 2
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    PANGAEA
    In:  Supplement to: Ford, Heather L; Ravelo, Ana Christina; Hovan, Steven A (2012): A deep Eastern Equatorial Pacific thermocline during the early Pliocene warm period. Earth and Planetary Science Letters, 355-356, 152-161, https://doi.org/10.1016/j.epsl.2012.08.027
    Publication Date: 2024-01-09
    Description: During the early Pliocene warm period (~4.6-4.2 Ma) in the Eastern Equatorial Pacific upwelling region, sea surface temperatures were warm in comparison to modern conditions. Warm upwelling regions have global effects on the heat budget and atmospheric circulation, and are argued to have contributed to Pliocene warmth. Though warm upwelling regions could be explained by weak winds and/or a deep thermocline, the temporal and spatial evolution of the equatorial thermocline is poorly understood. Here we reconstruct temporal and spatial changes in subsurface temperature to monitor thermocline depth and show the thermocline was deeper during the early Pliocene warm period than it is today. We measured subsurface temperature records from Eastern Equatorial Pacific ODP transect Sites 848, 849, and 853 using Mg/Ca records from Globorotalia tumida, which has a depth habitat of ~50-100 m. In the early Pliocene, subsurface temperatures were ~4-5°C warmer than modern temperatures, indicating the thermocline was relatively deep. Subsurface temperatures steeply cooled ~2-3°C from 4.8 to 4.0 Ma and continued to cool an additional 2-3°C from 4.0 Ma to present. Compared to records from other regions, the data suggests the pronounced subsurface cooling between 4.8 and 4.0 Ma was a regional signal related to restriction of the Isthmus of Panama, while continued cooling from 4.0 Ma to present was likely related to global processes that changed global thermocline structure. Additionally, the spatial evolution of the equatorial thermocline along a N-S transect across ODP Sites 853, 849 and 848 suggests an intensification of the southeast trades from the Pliocene to present. Large-scale atmospheric and oceanographic circulation processes link high and low latitude climate through their influence on equatorial thermocline source water regions and consequently the equatorial thermocline. Through these low latitude/high latitude linkages, changes in the equatorial thermocline and thermocline source water played an important role in the transition from the warm Pliocene to the cold Pleistocene.
    Keywords: 138-848B; 138-849; 138-853; COMPCORE; Composite Core; DRILL; Drilling/drill rig; Joides Resolution; Leg138; North Pacific Ocean; Ocean Drilling Program; ODP; South Pacific Ocean
    Type: Dataset
    Format: application/zip, 3 datasets
    Location Call Number Limitation Availability
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