Alkenones and TEX86 temperature proxies for core-top sediments from the southern Adriatic Sea


Autoria(s): Leider, Arne; Hinrichs, Kai-Uwe; Mollenhauer, Gesine; Versteegh, Gerard JM
Cobertura

MEDIAN LATITUDE: 40.777008 * MEDIAN LONGITUDE: 17.419967 * SOUTH-BOUND LATITUDE: 39.344833 * WEST-BOUND LONGITUDE: 15.999833 * NORTH-BOUND LATITUDE: 42.166667 * EAST-BOUND LONGITUDE: 18.776333 * DATE/TIME START: 2006-06-18T04:57:00 * DATE/TIME END: 2006-07-01T00:00:00

Data(s)

03/03/2010

Resumo

The Mediterranean Sea is at the transition between temperate and tropical air masses and as such of importance for studying climate change. The Gulf of Taranto and adjacent SW Adriatic Sea are at the heart of this region. Their sediments are excellently suited for generating high quality environmental records for the last millennia with a sub-decadal resolution. The quality of these records is dependent on a careful calibration of the transfer functions used to translate the sedimentary lipid signals to the local environment. Here, we examine and calibrate the UK'37 and TEX86 lipid-based temperature proxies in 48 surface sediments and relate these to ambient sea surface temperatures and other environmental data. The UK'37-based temperatures in surface sediments reflect winter/spring sea surface temperatures in agreement with other studies demonstrating maximum haptophyte production during the colder season. The TEX86-based temperatures for the nearshore sites also reflect winter sea surface temperatures. However, at the most offshore sites, they correspond to summer sea surface temperatures. Additional lipid and environmental data including the distribution of the BIT index and remote-sensed chlorophyll-a suggest a shoreward increase of the impact of seasonal and spatial variability in nutrients and control of planktonic archaeal abundance by primary productivity, particle loading in surface waters and/or overprint by a cold-biased terrestrial TEX86 signal. As such the offshore TEX86 values seem to reflect a true summer signal to the effect that offshore UK'37 and TEX86 reconstruct winter and summer temperature, respectively, and hence provide information on the annual temperature amplitude.

Formato

application/zip, 3 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.757943

doi:10.1594/PANGAEA.757943

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Leider, Arne; Hinrichs, Kai-Uwe; Mollenhauer, Gesine; Versteegh, Gerard JM (2010): Core-top calibration of the lipid-based U-37(K)' and TEX86 temperature proxies on the southern Italian shelf (SW Adriatic Sea, Gulf of Taranto). Earth and Planetary Science Letters, 300(1-2), 112-124, doi:10.1016/j.epsl.2010.09.042

Palavras-Chave #666; 667; 668; 670; 671; 672; 673; 674; 675; 676; 677; 678; 680; 681; 682; 683; 684; 685; 686; 687; 689; 690; 691; 692; 693; 694; 695; 696; 697; 699; 700; 701; 702; 703; 704; 705; 706; 707; 708; 709; 710; 712; 713; 714; 716; 717; 718; 719; Acyclic glycerol dialkyl glycerol tetraether, fractional abundance; Alkenone, unsaturation index UK'37; Alkenone/sed; Alkenone per unit sediment mass; an; au; BIT; Branched and isoprenoid tetraether index; Calculated, see reference(s); Calculated from C37 alkenones (Prahl & Wakeham, 1987); Calculated from TEX86 (Kim et al., 2008); Calculated from TEX86 (Kim et al., 2010); Calculated from UK37 (Conte et al., 2006); Carbon, organic, total; Center for Marine Environmental Sciences; Chl a; Chlorophyll a; Concentration; Crenarchaeol, fractional abundance; Crenarchaeol regio-isomer, fractional abundance; Depth; DEPTH, sediment/rock; Dicyclic glycerol dialkyl glycerol tetraether, fractional abundance; Event; Gargano Promontory; Gas chromatography (Finnigan Thermosquest Trace GC); GDGT-0; GDGT-1; GDGT-2; GDGT-3; GDGT-5; GDGT-5 reg-iso; GeoB10701-4; GeoB10702-3; GeoB10703-3; GeoB10704-3; GeoB10705-3; GeoB10706-3; GeoB10707-4; GeoB10708-3; GeoB10709-4; GeoB10710-4; GeoB10711-3; GeoB10712-3; GeoB10713-3; GeoB10714-3; GeoB10715-3; GeoB10716-3; GeoB10717-3; GeoB10718-3; GeoB10719-3; GeoB10720-5; GeoB10721-3; GeoB10722-3; GeoB10723-3; GeoB10724-3; GeoB10725-3; GeoB10726-3; GeoB10727-3; GeoB10728-3; GeoB10729-4; GeoB10730-3; GeoB10731-3; GeoB10732-3; GeoB10733-3; GeoB10734-3; GeoB10735-3; GeoB10736-3; GeoB10737-3; GeoB10738-3; GeoB10739-3; GeoB10740-3; GeoB10741-3; GeoB10742-3; GeoB10743-3; GeoB10744-3; GeoB10746-3; GeoB10747-3; GeoB10748-3; GeoB10749-3; Gulf of Manfredonia; Gulf of Taranto; High Performance Liquid Chromatography (HPLC-APCI-MS); MARUM; Monocyclic glycerol dialkyl glycerol tetraether, fractional abundance; MUC; MultiCorer; POS339; Poseidon; Sea surface salinity; Sea surface temperature; Sea surface temperature, annual mean; Sea surface temperature, autumn; Sea surface temperature, spring; Sea surface temperature, summer; Sea surface temperature, winter; see reference(s); sp; SSS; SST; SST (1-12); SST aut; SST satellite; SST spr; SST sum; SST TEX86; SST TEXH86; SST TEXL86; SST UK'37; SST win; Strait of Otranto; su; Tetraether index of 86 carbon atoms; TEX86; TEXH86; TEXL86; TOC; Tricyclic glycerol dialkyl glycerol tetraether, fractional abundance; UK'37; wi
Tipo

Dataset