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  • 1
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    PANGAEA
    In:  Supplement to: Murray, Richard W; Leinen, Margaret W; Isern, Alexandra R (1993): Biogenic flux of Al to sediment in the central Pacific Ocean: evidence for increased productivity during glacial periods. Paleoceanography, 8(5), 651-670, https://doi.org/10.1029/93PA02195
    Publication Date: 2023-05-12
    Description: We examined the flux of Al to sediment accumulating beneath the zone of elevated productivity in the central equatorial Pacific Ocean, along a surface sediment transect at 135°W as well as downcore for a 650 kyr record at 1.3°N, 133.6°W. Across the surface transect, a pronounced, broadly equatorially symmetric increase in Al accumulation is observed, relative to Ti, with Al/Ti ratios reaching values 3-4 times that of potential detrital sources. The profile parallels biogenic accumulation and the modeled flux of particulate 234Th, suggesting rapid and preferential adsorptive removal of Al from seawater by settling biogenic particles. Normative calculations confirm that most Al is unsupported by the terrigenous fraction. The observed distributions are consistent with previous observations of the relative and absolute behavior of Al and Ti in seawater, and we can construct a reasonable mass balance between the amount of seawater-sourced Al retained in the sediment and the amount of seawater Al available in the overlying column. The close tie between Al/Ti and biogenic accumulation (as opposed to concentration) emphasizes that biogenic sedimentary Al/Ti responds to removal-transport phenomena and not bulk sediment composition. Thus, in these sediments dominated by the biogenic component, the bulk Al/Ti ratio reflects biogenic particle flux, and by extension, productivity of the overlying seawater. The downcore profile of Al/Ti at 1.3°N displays marked increases during glacial episodes, similar to that observed across the surface transect, from a background value near Al/Ti of average upper crust. The excursions in Al/Ti are stratigraphically coincident with maxima in both bulk and CaCO3 accumulation and the excess Al appears to not be preferentially affiliated with opaline or organic phases. Consistent with the similar behavioral removal of Al and 234Th, the latter of which responds to the total particle flux, the Al flux reflects carbonate accumulation only because carbonate comprises the dominant flux in these particular deposits. These results collectively indicate that (1) Al in biogenic sediment and settling biogenic particles is strongly affected by a component adsorbed from seawater. Therefore, the common tenet that Al is dominantly associated with terrestrial particulate matter, and the subsequent use of Al distributions to calculate the abundance and flux of terrestrial material in settling particles and sediment, needs to be reevaluated. (2) The Al/Ti ratio in biogenic sediment can be used to trace the productivity of the overlying water, providing a powerful new paleochemical tool to investigate oceanic response to climatic variation. (3) The close correlation between the Al/Ti productivity signal and carbonate maxima downcore at 1.3°N suggests that the sedimentary carbonate maxima in the central equatorial Pacific Ocean record increased productivity during glacial episodes.
    Keywords: Department of Geology, Oregon State University; GC; Gravity corer; OSU; W8803B; W8803B-51GC; W8803B-T-23; W8803B-T-31; W8803B-T-36; W8803B-T-42; W8803B-T-47; W8803B-T-52; W8803B-T-57; W8803B-T-62; W8803B-T-68; W8803B-T-9; Wecoma
    Type: Dataset
    Format: application/zip, 11 datasets
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  • 2
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    PANGAEA
    In:  Supplement to: Murray, Richard W; Leinen, Margaret W (1993): Chemical transport to the seafloor of the equatorial Pacific Ocean across a latitudinal transect at 135°W: Tracking sedimentary major, trace, and rare earth element fluxes at the Equator and the Intertropical Convergence Zone. Geochimica et Cosmochimica Acta, 57(17), 4141-4163, https://doi.org/10.1016/0016-7037(93)90312-K
    Publication Date: 2023-05-12
    Description: We have analyzed the major, trace, and rare earth element composition of surface sediments collected from a transect across the Equator at 135°W longitude in the Pacific Ocean. Comparing the behavior of this suite of elements to the CaCO3, opal, and Corg fluxes (which record sharp maxima at the Equator, previously documented at the same sampling stations) enables us to assess the relative significance of the various pathways by which trace elements are transported to the equatorial Pacific seafloor. The 1. (1) high biogenic source at the Equator, associated with equatorial divergence of surface water and upwelling of nutrient-rich water, and 2. (2) high aluminosilicate flux at 4°N, associated with increased terrigenous input from elevated rainfall at the Intertropical Convergence Zone (ITCZ) of the tradewinds, are the two most important fluxes with which elemental transport is affiliated. The biogenic flux at the Equator transports Ca and Sr structurally bound to carbonate tests and Mn primarily as an adsorbed component. Trace elements such as Cr, As, Pb, and the REEs are also influenced by the biogenic flux at the Equator, although this affiliation is not regionally dominant. Normative calculations suggest that extremely large fluxes of Ba and P at the Equator are carried by only small proportions of barite and apatite phases. The high terrigenous flux at the ITCZ has a profound effect on chemical transport to the seafloor, with elemental fluxes increasing tremendously and in parallel with Ti. Normative calculations, however, indicate that these fluxes are far in excess of what can be supplied by lattice-bound terrigenous phases. The accumulation of Ba is greater than is affiliated with biogenic transport at the Equator, while the P flux at the ITCZ is only 10% less than at the Equator. This challenges the common view that Ba and P are essentially exclusively associated with biogenic fluxes. Many other elements (including Mn, Pb, As, and REEs) also record greater accumulation beneath the ITCZ than at the Equator. Thus, adsorptive scavenging by terrigenous paniculate matter, or phases intimately associated with them, appears to be an extremely important process regulating elemental transport to the equatorial Pacific seafloor. These findings emphasize the role of vertical transport to the sediment, and provide additional constraints on the paleochemical use of trace elements to track biogenic and terrigenous fluxes.
    Keywords: Accumulation rate, mass; Aluminium oxide; Arsenic; Barium; Calcium carbonate; Calcium oxide; Calculated; Carbon, organic, total; Cerium; Cerium/Cerium ratio; Chromium; Department of Geology, Oregon State University; DEPTH, sediment/rock; Dysprosium; Elevation of event; Erbium; Europium; Event label; Gadolinium; GC; Gravity corer; Holmium; Iron oxide, Fe2O3; Lanthanum; Latitude of event; Lead; Longitude of event; Loss on ignition; Lutetium; Magnesium oxide; Manganese oxide; Neodymium; Niobium; Opal, biogenic silica; Opal, normative calculation; Leinen, 1977; OSU; Phosphorus pentoxide; Potassium oxide; Praseodymium; Praseodymium/Ytterbium ratio; Rubidium; Samarium; Silicon Cycling in the World Ocean; Silicon dioxide; SINOPS; Sodium oxide; Strontium; Terbium; Thulium; Titanium dioxide; W8803B; W8803B-T-23; W8803B-T-31; W8803B-T-36; W8803B-T-42; W8803B-T-47; W8803B-T-52; W8803B-T-57; W8803B-T-62; W8803B-T-68; W8803B-T-69; W8803B-T-89; W8803B-T-9; W8803B-T-92; Wecoma; X-ray fluorescence (XRF); Ytterbium; Zirconium
    Type: Dataset
    Format: text/tab-separated-values, 501 data points
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  • 3
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    PANGAEA
    In:  Supplement to: Martin, William R; Bender, Michael L; Leinen, Margaret W; Orchardo, J (1991): Benthic organic carbon degradation and biogenic silica dissolution in the central equatorial Pacific. Deep-Sea Research Part A. Oceanographic Research Papers, 38(12), 1481-1516, https://doi.org/10.1016/0198-0149(91)90086-U
    Publication Date: 2023-05-12
    Description: Shipboard whole-core squeezing was used to measure pore water concentration vs depth profiles of [NO3]-, O2 and SiO2 at 12 stations in the equatorial Pacific along a transect from 15°S to 11°N at 135°W. The [NO3]- and SiO2 profiles were combined with fine-scale resistivity and porosity measurements to calculate benthic fluxes. After using O2 profiles, coupled with the [NO3]- profiles, to constrain the C:N of the degrading organic matter, the [NO3]- fluxes were converted to benthic organic carbon degradation rates. The range in benthic organic carbon degradation rates is 7-30 ?mol cm**-2 y**-1, with maximum values at the equator and minimum values at the southern end of the transect. The zonal trend of benthic degradation rates, with its equatorial maximum and with elevated values skewed to the north of the equator, is similar to the pattern of primary production observed in the region. Benthic organic carbon degradation is 1-2% of primary production. The range of benthic biogenic silica dissolution rates is 6.9-20 µmol cm**-2 y**-1, representing 2.5-5% of silicon fixation in the surface ocean of the region. Its zonal pattern is distinctly different from that of organic carbon degradation: the range in the ratio of silica dissolution to carbon degradation along the transect is 0.44-1.7 mol Si mol C**-1, with maximum values occurring between 12°S and 2°S, and with fairly constant values of 0.5-0.7 north of the equator. A box model calculation of the average lifetime of the organic carbon in the upper 1 cm of the sediments, where 80 +/- 11% of benthic organic carbon degradation occurs, indicates that it is short: from 3.1 years at high flux stations to 11 years at low flux stations. The reactive component of the organic matter must have a shorter lifetime than this average value. In contrast, the average lifetime of biogenic silica in the upper centimeter of these sediments is 55 +/- 28 years, and shows no systematic variations with benthic flux.
    Keywords: Department of Geology, Oregon State University; GC; Gravity corer; OSU; Silicon Cycling in the World Ocean; SINOPS; W8803B; W8803B-T-12; W8803B-T-16; W8803B-T-23; W8803B-T-31; W8803B-T-36; W8803B-T-42; W8803B-T-47; W8803B-T-52; W8803B-T-57; W8803B-T-62; W8803B-T-68; W8803B-T-69; W8803B-T-74; W8803B-T-89; W8803B-T-9; W8803B-T-92; Wecoma
    Type: Dataset
    Format: application/zip, 16 datasets
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  • 4
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    PANGAEA
    In:  Supplement to: Leinen, Margaret W; Graybeal, A (1986): Sedimentation in the vicinity of Leg 92 drill sites: Studies of site survey cores. In: Leinen, M; Rea DK; et al. (eds.), Initial Reports of the Deep Sea Drilling Project, Washington (U.S. Govt. Printing Office), 92, 239-251, https://doi.org/10.2973/dsdp.proc.92.109.1986
    Publication Date: 2023-05-12
    Description: Surveys of the areas surrounding the sites drilled on the Leg 92 19°S transect showed that sedimentation at all except the oldest site is dominated by calcium carbonate deposition. The sediments in the area of the oldest site, west of the Austral Fracture Zone, are being deposited beneath the calcium carbonate compensation depth and are dominated by terrigenous and metal-rich hydrogenous and hydrothermal sediments. The noncarbonate sediments in all of the areas east of the Austral Fracture Zone are dominated by hydrothermal sediment similar in composition to that presently being deposited at the East Pacific Rise. Although no biogenic microfossils were present in smear slides of the sediment, geochemical partitioning suggests that a remnant signal of siliceous biogenic deposition may be preserved, especially in gravity core (GC) 8, which was collected from a high heat flow zone near Site 600. The siliceous sediment may also result from the deposition of amorphous hydrothermal silica from the higher concentrations of pore water SiO2 characteristic of the upwelling waters. Sedimentation on the broad plateaus that characterize each area is quite uniform and suggests that sites on these plateaus will be broadly representative of pelagic sedimentation in the area.
    Keywords: Deep Sea Drilling Project; DSDP
    Type: Dataset
    Format: application/zip, 7 datasets
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  • 5
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    PANGAEA
    In:  Supplement to: Leinen, Margaret W (1986): Calcium carbonate sedimentation at subtropical South Pacific drill sites from Leg 92 and the carbonate stratigraphy of Site 598: Preliminary studies. In: Leinen, M; Rea DK; et al. (eds.), Initial Reports of the Deep Sea Drilling Project, Washington (U.S. Govt. Printing Office), 92, 305-330, https://doi.org/10.2973/dsdp.proc.92.113.1986
    Publication Date: 2023-05-12
    Description: The carbonate contents of sediments recovered at Leg 92 Sites 597, 598, and 601 were determined at 5-cm intervals. The long-term record of carbonate variation at Sites 597 and 598 shows the effect of decreasing dilution by hydrothermal phases as the sites moved away from the ridge crest at which they formed. Superimposed on this trend are high-amplitude variations in carbonate content. In the lower portions of Sites 597 and 598 the high-amplitude variations have a duration of a few hundred thousand years. The upper portion of the sediment column at both sites was deposited below the lysocline, and high-amplitude variations in this interval represent 1 to 2 m.y. The data suggest that only very intense carbonate dissolution events can be identified reliably at sites with low accumulation rates. At sites like Site 598, where the sedimentation rate is higher, the details of carbonate variation can be correlated with the carbonate lithostratigraphies developed for sites in the equatorial and North Pacific oceans.
    Keywords: Deep Sea Drilling Project; DSDP
    Type: Dataset
    Format: application/zip, 6 datasets
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  • 6
    Publication Date: 2023-05-12
    Keywords: Calcium carbonate; Department of Geology, Oregon State University; DEPTH, sediment/rock; Element analysis coulometric; GC; Gravity corer; OSU; W8803B; W8803B-T-31; Wecoma
    Type: Dataset
    Format: text/tab-separated-values, 9 data points
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  • 7
    Publication Date: 2023-05-12
    Keywords: Colorometric autoanalysis; Department of Geology, Oregon State University; DEPTH, sediment/rock; Flow injection analysis; GC; Gravity corer; Nitrate; Opal, biogenic silica; OSU; Oxygen; Sample code/label; Silicate; Silicon Cycling in the World Ocean; SINOPS; W8803B; W8803B-T-68; Wecoma
    Type: Dataset
    Format: text/tab-separated-values, 37 data points
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  • 8
    Publication Date: 2023-05-12
    Keywords: Colorometric autoanalysis; Department of Geology, Oregon State University; DEPTH, sediment/rock; Flow injection analysis; GC; Gravity corer; Nitrate; Opal, biogenic silica; OSU; Oxygen; Sample code/label; Silicate; Silicon Cycling in the World Ocean; SINOPS; W8803B; W8803B-T-62; Wecoma
    Type: Dataset
    Format: text/tab-separated-values, 47 data points
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  • 9
    Publication Date: 2023-05-12
    Keywords: Colorometric autoanalysis; Department of Geology, Oregon State University; DEPTH, sediment/rock; Flow injection analysis; GC; Gravity corer; Nitrate; Opal, biogenic silica; OSU; Oxygen; Sample code/label; Silicate; Silicon Cycling in the World Ocean; SINOPS; W8803B; W8803B-T-69; Wecoma
    Type: Dataset
    Format: text/tab-separated-values, 5 data points
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  • 10
    Publication Date: 2023-05-12
    Keywords: Colorometric autoanalysis; Department of Geology, Oregon State University; DEPTH, sediment/rock; Flow injection analysis; GC; Gravity corer; Nitrate; OSU; Oxygen; Sample code/label; Silicate; Silicon Cycling in the World Ocean; SINOPS; W8803B; W8803B-T-74; Wecoma
    Type: Dataset
    Format: text/tab-separated-values, 42 data points
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