Climate proxies in sediment core MD95-2010


Autoria(s): Dokken, Trond; Jansen, Eystein
Cobertura

LATITUDE: 66.684167 * LONGITUDE: 4.566160 * DATE/TIME START: 1995-06-07T00:00:00 * DATE/TIME END: 1995-06-07T00:00:00

Data(s)

25/03/1999

Resumo

High-amplitude, rapid climate fluctuations are common features of glacial times. The prominent changes in air temperature recorded in the Greenland ice cores (Dansgaard et al., 1993, doi:10.1038/339532a0; Grootes et al., 1993 doi:10.1038/366552a0) are coherent with shifts in the magnitude of the northward heat flux carried by the North Atlantic surface ocean (Bond et al., 1993, doi:10.1038/365143a0; Bond and Lotti, 1995, doi:10.1126/science.267.5200.1005); changes in the ocean's thermohaline circulation are a key component in many explanations of this climate flickering (Broecker, 1997, doi:10.1126/science.278.5343.1582). Here we use stable-isotope and other sedimentological data to reveal specific oceanic reorganizations during these rapid climate-change events. Deep water was generated more or less continuously in the Nordic Seas during the latter part of the last glacial period (60 to 10 thousand years ago), but by two different mechanisms. The deep-water formation occurred by convection in the open ocean during warmer periods (interstadials). But during colder phases (stadials), a freshening of the surface ocean reduced or stopped open-ocean convection, and deep-water formation was instead driven by brine-release during sea-ice freezing. These shifting magnitudes and modes nested within the overall continuity of deep-water formation were probably important for the structuring and rapidity of the prevailing climate changes.

Formato

application/zip, 2 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.735730

doi:10.1594/PANGAEA.735730

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Dokken, Trond; Jansen, Eystein (1999): Rapid changes in the mechanism of ocean convection during the last glacial period. Nature, 401(6752), 458-461, doi:10.1038/46753

Palavras-Chave #Age; AGE; Age, 14C AMS; Age, comment; Age, dated; Age, dated, error to older; Age, dated, error to younger; Age, dated standard deviation; Age, maximum/old; Age, minimum/young; Age dated; Age e -; Age e +; Age max; Age min; Age std dev; C. teretis d13C; C. teretis d18O; Calendar years; CALYPSO; Calypso Corer; Cal yrs; Cassidulina teretis, d13C; Cassidulina teretis, d18O; Comm; Counting; Counting >150 µm fraction; Counting >500 µm fraction; Depth; Depth, bottom/max; DEPTH, sediment/rock; Depth, top/min; Depth bot; Depth top; Foram/sed; Foraminifera, per unit sediment mass; Geological High-resolution Magnetic Tool (GHMT); Ice rafted debris; IMAGES; IMAGES I; International Marine Global Change Study; IRD; Isotope ratio mass spectrometry; KIA = Tandetron AMS facility at Kiel Leibniz Laboratory, GifA = Tandron AMS facility at Gif Sur Yvette; Label; Magnetic susceptibility; MAGS; Marion Dufresne; MD101; MD952010; MD95-2010; N. pachyderma s d13C; N. pachyderma s d18O; Neogloboquadrina pachyderma sinistral, d13C; Neogloboquadrina pachyderma sinistral, d18O; Rock fragm; Rock fragments per unit mass; Sample code/label; Voring Plateau
Tipo

Dataset