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Lear, Caroline H; Elderfield, Henry; Wilson, Paul A (2003): Sr/Ca ratios of Cenozoic benthic foraminifera [dataset publication series]. PANGAEA, https://doi.org/10.1594/PANGAEA.708380, Supplement to: Lear, CH et al. (2003): A Cenozoic seawater Sr/Ca record from benthic foraminiferal calcite and its application in determining global weathering fluxes. Earth and Planetary Science Letters, 208(1-2), 69-84, https://doi.org/10.1016/S0012-821X(02)01156-1

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Abstract:
A Cenozoic multi-species record of benthic foraminiferal calcite Sr/Ca has been produced and is corrected for interspecific offsets (typically less than 0.3 mmol/mol) and for the linear relationship between decreasing benthic foraminiferal Sr/Ca and increasing water depth. The water depth correction, determined from Holocene, Late Glacial Maximum and Eocene paleowater-depth transects, is ~0.1 mmol/mol/km. The corrected Cenozoic benthic foraminiferal Sr/Ca record ranges from 1.2 to 2.0 mmol/mol, and has been interpreted in terms of long-term changes in seawater Sr/Ca, enabling issues related to higher-resolution variability in Sr/Ca to be ignored. We estimate that seawater Sr/Ca was ~1.5 times modern values in the late Cretaceous, but declined rapidly into the Paleogene. Following a minimum in the Eocene, seawater Sr/Ca increased gradually through to the present day with a minimum superimposed on this trend centered in the late Miocene. By assuming scenarios for changing seawater calcium concentration, and using published carbonate accumulation rate data combined with suitable values for Sr partition coefficients into carbonates, the seawater Sr/Ca record is used to estimate global average river Sr fluxes. These fluxes are used in conjunction with the seawater strontium isotope curve and estimates of hydrothermal activity/tectonic outgassing to calculate changes in global average river 87Sr/86Sr through the Cenozoic. The absolute magnitude of Sr fluxes and isotopic compositions calculated in this way are subject to relatively large uncertainties. Nevertheless, our results suggest that river Sr flux increased from 35 Ma to the present day (roughly two-fold) accompanied by an overall increase in 87Sr/86Sr (by ~0 to 0.001). Between 75 and 35 Ma, river 87Sr/86Sr also increased (by ~0.001 to 0.002) but was accompanied by a decrease (two- to three-fold) in river Sr flux.
Coverage:
Median Latitude: -10.639641 * Median Longitude: -28.523640 * South-bound Latitude: -65.161000 * West-bound Longitude: -133.309500 * North-bound Latitude: 58.628800 * East-bound Longitude: 5.183000
Date/Time Start: 1970-09-12T00:00:00 * Date/Time End: 1997-02-06T04:30:00
Event(s):
73-522 * Latitude: -26.114000 * Longitude: -5.129700 * Date/Time: 1980-05-06T00:00:00 * Elevation: -4441.0 m * Penetration: 148.7 m * Recovery: 137.6 m * Location: South Atlantic/PLATEAU * Campaign: Leg73 * Basis: Glomar Challenger * Method/Device: Drilling/drill rig (DRILL) * Comment: 36 cores; 143.8 m cored; 5 m drilled; 95.7 % recovery
73-523 * Latitude: -28.552200 * Longitude: -2.251300 * Date/Time: 1980-05-15T00:00:00 * Elevation: -4562.0 m * Penetration: 197.5 m * Recovery: 148.4 m * Location: South Atlantic/PLATEAU * Campaign: Leg73 * Basis: Glomar Challenger * Method/Device: Drilling/drill rig (DRILL) * Comment: 45 cores; 170.5 m cored; 21 m drilled; 87 % recovery
74-525A * Latitude: -29.070700 * Longitude: 2.985300 * Date/Time: 1980-06-10T00:00:00 * Elevation: -2467.0 m * Penetration: 678.1 m * Recovery: 406.6 m * Location: South Atlantic/CREST * Campaign: Leg74 * Basis: Glomar Challenger * Method/Device: Drilling/drill rig (DRILL) * Comment: 62 cores; 549.7 m cored; 6 m drilled; 74 % recovery
Size:
10 datasets

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Datasets listed in this publication series

  1. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from DSDP Hole 73-523. https://doi.org/10.1594/PANGAEA.708369
  2. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from DSDP Hole 74-525A. https://doi.org/10.1594/PANGAEA.708370
  3. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from DSDP Site 85-573. https://doi.org/10.1594/PANGAEA.708377
  4. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from DSDP Hole 94-608. https://doi.org/10.1594/PANGAEA.708371
  5. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from DSDP Hole 73-522. https://doi.org/10.1594/PANGAEA.708367
  6. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from ODP Hole 113-689B. https://doi.org/10.1594/PANGAEA.708372
  7. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from ODP Site 113-690. https://doi.org/10.1594/PANGAEA.708375
  8. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from ODP Site 154-926. https://doi.org/10.1594/PANGAEA.708374
  9. Lear, CH; Elderfield, H; Wilson, PA (2003): (Appendix 1) Sr/Ca ratios of benthic foraminifera from ODP Site 171-1052. https://doi.org/10.1594/PANGAEA.708373
  10. Lear, CH; Elderfield, H; Wilson, PA (2003): (Table 2) Sr/Ca ratios of benthic foraminifera from Recent and LGM sediments. https://doi.org/10.1594/PANGAEA.708379