Oceanography during TYDEMAN cruise DCM (DeepChlorMax) to the Equatorial Atlantic


Autoria(s): Veldhuis, Marcel; Fransz, H George; de Bruin, Taco F
Cobertura

MEDIAN LATITUDE: 22.184876 * MEDIAN LONGITUDE: -37.264815 * SOUTH-BOUND LATITUDE: 7.414800 * WEST-BOUND LONGITUDE: -68.946700 * NORTH-BOUND LATITUDE: 34.000800 * EAST-BOUND LONGITUDE: -15.753300 * DATE/TIME START: 1996-07-20T12:52:00 * DATE/TIME END: 1996-08-31T20:43:00

Data(s)

15/06/1996

Resumo

The cruise with RV Tydeman was devoted to study permanently stratified plankton systems in the (sub)tropical ocean, which are characterised by a deep chlorophyll peak between 80 and 150 m. To minimise lateral effects by horizontal transport of nutrients and organic matter from river outflow and upwelling regions, stations were selected in the middle of the North Atlantic Ocean between the continents of America and Africa. (5 - 35° N and 50 - 15° W). Here the vertical distributions of light and nutrients control the abundance and growth of autotrophic algae in the thermically stratified water column. This phytoplankton is numerically dominated by the prokaryotic picoplankters Synechococcus spp. and Prochlorococcus spp., which are smaller than 2 ?m. The productivity of the 100 to 150 m deep euphotic zone can be high, because a high heterotrophic/autotrophic biomass ratio induces a rapid regeneration of nutrients and inorganic carbon. Primary grazers are mainly micro-organisms such as heterotrophic nannoflagellates and ciliates, which feed on the small algae and on bacteria. Heterotrophic bacteria can outnumber the autotrophic algae, because their number is related to the substrate pools of dissolved and particulate dead organic matter. These DOC and detritus pools reach equilibrium at a concentration, where the rate of their production (proportional to algal biomass) equals their mineralisation and sinking rate (proportional to the concentration and weight of POC and detritus). At a relatively low value of the weight-specific loss rates, the equilibrium concentration of these carbon pools and their load of bacteria can be high. The bacterial productivity is proportional to the mineralisation rate, which in a steady state can never be higher than the rate of primary production. Hence the ratio in turnover rate of bacteria and autotrophs tends to be reciprocally proportional to their biomass ratio.

Formato

application/zip, 19 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.761718

doi:10.1594/PANGAEA.761718

Idioma(s)

en

Publicador

PANGAEA

Relação

Veldhuis, Marcel; Fransz, H George; de Bruin, Taco F (1996): Deep Chlorophyll Maximum 1996 - cruise report - Hr. Ms. Tydeman, 22 July to 31 August 1996 - The Deep Chlorophyll Maximum of the oceans: persistence of the plankton community, its biodiversity and its implications for carbon cycling. Royal Netherlands Institute for Sea Research, Texel, The Netherlands, NIOZ-RAPPORT, 22 pp, hdl:10013/epic.37632.d001

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Palavras-Chave #[NH4]+; [NO2]-; 19-Butanoyloxyfucoxanthin; 19-Hexanoyloxyfucoxanthin; absolute weight content; Absorption and attenuation meter AC-9; Absorption and beam attenuation; Absorption coefficient, 412 nm; Absorption coefficient, 440 nm; Absorption coefficient, 488 nm; Absorption coefficient, 510 nm; Absorption coefficient, 555 nm; Absorption coefficient, 630 nm; Absorption coefficient, 650 nm; Absorption coefficient, 676 nm; Absorption coefficient, 715 nm; ac412; ac440; ac488; ac510; ac555; ac630; ac650; ac676; ac715; AC-9; accuracy 0.005 in upper 400 m; Advanced spectral irradiance meter; after Helder & Vries, 1979; Allo; Alloxanthin; alpha-Carotene, beta,epsilon-Carotene; Altitude; ALTITUDE; Ammonium; Anthera; Antheraxanthin; ASIR; bac412; bac440; bac488; bac510; bac555; bac630; bac650; bac676; bac715; bb-Car; be-Car; beta-Carotene, beta,beta-Carotene; Biom AFDM; Biomass, ash free dry mass per volume; Bottle; Bottle number; But-fuco; C/N; Calculated; Carbon, organic, dissolved; Carbon, organic, particulate; Carbon, total flux; Carbon/Nitrogen ratio; Carotene; C flux; Chl a; Chl a absorp 676; Chl b; Chl c1; Chl c2; Chl c3; Chlorophyll a; Chlorophyll a, absorption at 676 nm; Chlorophyll b; Chlorophyll c1; Chlorophyll-c1 like, solvent: 90% aceton; Chlorophyll c2; Chlorophyll c3; Chlorophyll total; Chl tot; cis-Neoxanthin; c-Neo; Comment; Counting; CT; CTD; CTD/Rosette; CTD-RO; CTD with attached oxygen sensor; Date/Time; DATE/TIME; DCM; DCM100-0; DCM100-1; DCM100-10; DCM100-11; DCM100-12; DCM100-13; DCM100-14; DCM100-15; DCM100-16; DCM100-17; DCM100-18; DCM100-19; DCM100-20; DCM100-21; DCM100-22; DCM100-23; DCM100-24; DCM100-25; DCM100-26; DCM100-27; DCM100-28; DCM100-29; DCM100-3; DCM100-30; DCM100-31; DCM100-33; DCM100-35; DCM100-37; DCM100-38; DCM100-39; DCM100-4; DCM100-41; DCM100-42; DCM100-43; DCM100-44; DCM100-46; DCM100-48; DCM100-5; DCM100-50; DCM100-51; DCM100-52; DCM100-53; DCM100-55; DCM100-56; DCM100-57; DCM100-59; DCM100-6; DCM100-61; DCM100-63; DCM100-64; DCM100-65; DCM100-66A; DCM100-69; DCM100-7; DCM100-70; DCM100-72; DCM100-74; DCM100-8; DCM10-1; DCM104-1; DCM105-2; DCM11-1; DCM111-1; DCM112-1; DCM112-2; DCM113-1; DCM12-1; DCM1-3; DCM13-1; DCM1-4; DCM1-6; DCM200-0; DCM200-1; DCM200-10; DCM200-11; DCM200-12; DCM200-13; DCM200-15; DCM200-16; DCM200-17; DCM200-18; DCM200-19; DCM200-20; DCM200-21; DCM200-23; DCM200-24; DCM200-25; DCM200-26; DCM200-27; DCM200-28; DCM200-29; DCM200-3; DCM200-30; DCM200-31; DCM200-32; DCM200-33; DCM200-34; DCM200-35; DCM200-37; DCM200-39; DCM200-4; DCM200-40; DCM200-41; DCM200-42; DCM200-45; DCM200-47; DCM200-48; DCM200-5; DCM200-50; DCM200-53; DCM200-54; DCM200-55; DCM200-57; DCM200-58; DCM200-6; DCM200-60; DCM200-61; DCM200-63; DCM200-64; DCM200-66; DCM200-68; DCM200-69; DCM200-7; DCM200-70; DCM200-72; DCM200-74; DCM200-75; DCM200-77; DCM200-79; DCM200-8; DCM200-81; DCM200-82; DCM200-83; DCM200-84; DCM202-1; DCM202-2; DCM2-1; DCM300-0; DCM300-1; DCM300-10; DCM300-11; DCM300-12; DCM300-13; DCM300-15; DCM300-17; DCM300-18; DCM300-19; DCM300-20; DCM300-21; DCM300-23; DCM300-24; DCM300-25; DCM300-26; DCM300-27; DCM300-28; DCM300-29; DCM300-3; DCM300-30; DCM300-31; DCM300-32; DCM300-33; DCM300-34; DCM300-35; DCM300-37; DCM300-38; DCM300-39; DCM300-4; DCM300-40; DCM300-41; DCM300-43; DCM300-45; DCM300-46; DCM300-47; DCM300-48; DCM300-5; DCM300-50; DCM300-52; DCM300-53; DCM300-56; DCM300-57; DCM300-58; DCM300-59; DCM300-6; DCM300-60; DCM300-61; DCM300-63; DCM300-64; DCM300-65; DCM300-66; DCM300-67; DCM300-69; DCM300-7; DCM300-73; DCM300-74; DCM300-76; DCM300-77; DCM300-8; DCM304-1; DCM304-2; DCM306-1; DCM306-2; DCM3-1; DCM400-0; DCM400-1; DCM400-10; DCM400-12; DCM400-13; DCM400-14; DCM400-15; DCM400-16; DCM400-17; DCM400-18; DCM400-19; DCM400-20; DCM400-21; DCM400-22; DCM400-23; DCM400-24; DCM400-25; DCM400-26; DCM400-27; DCM400-28; DCM400-29; DCM400-3; DCM400-30; DCM400-31; DCM400-32; DCM400-33; DCM400-35; DCM400-37; DCM400-39; DCM400-4; DCM400-40; DCM400-41; DCM400-43; DCM400-45; DCM400-46; DCM400-49; DCM400-5; DCM400-50; DCM400-52; DCM400-54; DCM400-55; DCM400-58; DCM400-59; DCM400-6; DCM400-60; DCM400-61; DCM400-62; DCM400-63; DCM400-64; DCM400-65; DCM400-67; DCM400-68; DCM400-69; DCM400-7; DCM400-70; DCM400-72; DCM400-74; DCM400-75; DCM400-78; DCM400-79; DCM400-8; DCM400-81; DCM400-82; DCM404-1; DCM404-2; DCM405-1; DCM4-1; DCM500-0; DCM500-1; DCM500-10; DCM500-12; DCM500-13; DCM500-14; DCM500-15; DCM500-16; DCM500-17; DCM500-18; DCM500-19; DCM500-2; DCM500-20; DCM500-21; DCM500-22; DCM500-23; DCM500-24; DCM500-25; DCM500-26; DCM500-27; DCM500-28; DCM500-29; DCM500-3; DCM500-30; DCM500-31; DCM500-32; DCM500-33; DCM500-34; DCM500-35; DCM500-37; DCM500-39; DCM500-4; DCM500-40; DCM500-41; DCM500-43; DCM500-45; DCM500-46; DCM500-49; DCM500-5; DCM500-50; DCM500-52; DCM500-53; DCM500-54; DCM500-55; DCM500-58; DCM500-6; DCM500-60; DCM500-61; DCM500-62; DCM500-63; DCM500-64; DCM500-65; DCM500-67; DCM500-7; DCM500-70; DCM500-72; DCM500-74; DCM500-75; DCM500-78; DCM500-79; DCM500-8; DCM500-81; DCM500-9; DCM5-1; DCM6-1; DCM7-1; DCM8-1; DCM9-1; DCM-track; DeepChlorMax; Density; Density, mass density; Density, sigma-theta (0); Depth, bottom/max; Depth, top/min; DEPTH, water; Depth bot; Depth of Secchi Disk; Depth top; Depth water; Determination of phosphate (Murphy & Riley, 1962); Diadino; Diadinoxanthin; DOC; DV, solvent: 90% aceton; Ed_406; Ed_414; Ed_428; Ed_444; Ed_457; Ed_470; Ed_480; Ed_493; Ed_513; Ed_528; Ed_546; Ed_557; Ed_577; Ed_600; Ed_615; Ed_621; Ed_648; Ed_665; Ed_678; Ed_686; Ed_690; Ed_700; Eggs; Element analyser CHN; Element analyser CHN, Perkin-Elmer 240; Element analyser CNS, Carlo Erba NA1500; Eu_406; Eu_414; Eu_428; Eu_444; Eu_457; Eu_470; Eu_480; Eu_493; Eu_513; Eu_528; Eu_546; Eu_557; Eu_577; Eu_600; Eu_615; Eu_621; Eu_648; Eu_665; Eu_678; Eu_686; Eu_690; Eu_700; Event; Female; Fluorescence; Fluorometer, Chelsea Instruments; Fluorometry; Flying fish; Fraction: 0.2-1 mm, ash free dry weigth (AFDW); Fraction: 0.2-1 mm, carbon; Fraction: 0.2-1 mm, nitrogen; Fraction: 1-20 mm, ash free dry weigth (AFDW); Fraction: 1-20 mm, carbon; Fraction: 1-20 mm, nitrogen; Fuco; Fucoxanthin; Hex-fuco; Humidity, relative; incubation time; integrated; IST-90, accuracy 0.005 in upper 400 m; JGOFS; Joint Global Ocean Flux Study; Label; Latitude; LATITUDE; Longitude; LONGITUDE; Lut; Lutein; Measured in situ; Mesozooplankton, biomass as carbon; Mesozooplankton, biomass as nitrogen; Mesozoopl C; Mesozoopl N; molar ratio; MSN; Multiple opening/closing net; Multi-spectral irradiance meter, ASIR; New production; N flux; Nitrate; Nitrite; Nitrogen, organic, particulate; Nitrogen, total flux; NO3; O2; O2 sat; of incubation; Optical beam attenuation coefficient, 412 nm; Optical beam attenuation coefficient, 440 nm; Optical beam attenuation coefficient, 488 nm; Optical beam attenuation coefficient, 510 nm; Optical beam attenuation coefficient, 555 nm; Optical beam attenuation coefficient, 630 nm; Optical beam attenuation coefficient, 650 nm; Optical beam attenuation coefficient, 676 nm; Optical beam attenuation coefficient, 715 nm; Oxygen; Oxygen saturation; PAR; PAR day; PAR sensor Q10876, LI-COR Inc.; per female; Perid; Peridinin; Phaeopigments; Pheop; Phosphate; Pnew; PO4; POC; PON; PP C; PP C area; Precision 0.01 °C; Precision 0.03; Press; Pressure, water; Primary production of carbon per area, daily; Primary production of carbon per hour; quality defined by PI as not very good; Radiation, photosynthetically active; Radiation, photosynthetically active per day; RH; Sal; Salinity; Samp com; Sample code/label; Sample comment; SD; Seawater analysis (Strickland & Parsons, 1972); Seawater analysis after Grasshoff et al., 1983 (Verlag Chemie GmbH Weinheim); Secchi average; Secchi disc; Secchi down; Secchi up; Si(OH)4; Sigma-theta; Silicate; simulated in situ; solvent: 90% aceton; solvent: aceton; solvent: ethanol; Species; Spectral irradiance, downward at 406 nm; Spectral irradiance, downward at 414 nm; Spectral irradiance, downward at 428 nm; Spectral irradiance, downward at 444 nm; Spectral irradiance, downward at 457 nm; Spectral irradiance, downward at 470 nm; Spectral irradiance, downward at 480 nm; Spectral irradiance, downward at 493 nm; Spectral irradiance, downward at 513 nm; Spectral irradiance, downward at 528 nm; Spectral irradiance, downward at 546 nm; Spectral irradiance, downward at 557 nm; Spectral irradiance, downward at 577 nm; Spectral irradiance, downward at 600 nm; Spectral irradiance, downward at 615 nm; Spectral irradiance, downward at 621 nm; Spectral irradiance, downward at 648 nm; Spectral irradiance, downward at 665 nm; Spectral irradiance, downward at 678 nm; Spectral irradiance, downward at 686 nm; Spectral irradiance, downward at 690 nm; Spectral irradiance, downward at 700 nm; Spectral irradiance, upward at 406 nm; Spectral irradiance, upward at 414 nm; Spectral irradiance, upward at 428 nm; Spectral irradiance, upward at 444 nm; Spectral irradiance, upward at 457 nm; Spectral irradiance, upward at 470 nm; Spectral irradiance, upward at 480 nm; Spectral irradiance, upward at 493 nm; Spectral irradiance, upward at 513 nm; Spectral irradiance, upward at 528 nm; Spectral irradiance, upward at 546 nm; Spectral irradiance, upward at 557 nm; Spectral irradiance, upward at 577 nm; Spectral irradiance, upward at 600 nm; Spectral irradiance, upward at 615 nm; Spectral irradiance, upward at 621 nm; Spectral irradiance, upward at 648 nm; Spectral irradiance, upward at 665 nm; Spectral irradiance, upward at 678 nm; Spectral irradiance, upward at 686 nm; Spectral irradiance, upward at 690 nm; Spectral irradiance, upward at 700 nm; Spectral radiometer; Spectrophotometry; SPRA; TAD; Temp; Temperature, water; Temperature, water, potential; Thermosalinograph; Time; time after start; Time at depth; Time in hours; total; Tpot; Trap; TRAP; Tydeman; Underway cruise track measurements; unknown; Vertical net; Viola; Violaxanthin; Visib; Visibility; VNET; with baseline method; z(SD); Zea; Zeaxanthin
Tipo

Dataset