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Nonnotte, Philippe; Ceuleneer, Georges; Benoit, Mathieu (2005): Petrological and geochemical characteristics of DSDP Hole 37-334 gabbroic cumulates (Table 1) [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.707911, Supplement to: Nonnotte, P et al. (2005): Genesis of andesitic-boninitic magmas at mid-ocean ridges by melting of hydrated peridotites: Geochemical evidence from DSDP Site 334 gabbronorites. Earth and Planetary Science Letters, 236(3-4), 632-653, https://doi.org/10.1016/j.epsl.2005.05.026

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Abstract:
The gabbronoritic cumulates drilled at DSDP Site 334 (Mid-Atlantic Ridge off the FAMOUS area) are neither crystallization products of the associated basalts, nor from any MORB composition documented along ocean ridges. Their parent melts are richer in SiO2 than MORB at a given MgO content, as attested by the crystallization sequence starting with an olivine+calcic and sub-calcic pyroxene assemblages. These melts are issued from a source highly depleted in incompatible elements, likely residual peridotite left after MORB extraction. To understand the role of water in the genesis of these lithologies whose occurrence in a mid-ocean ridge setting is rather puzzling, we performed a geochemical study on clinopyroxene separates following an analytical protocol able to remove the effects of water rock interactions post-dating their crystallization. Accordingly, the measured isotopic signatures can be used to trace magma sources. We find that Site 334 clinopyroxenes depart from the global mantle correlation: normal MORB values for the 143Nd/ 144Nd ratio (0.51307-0.51315) are associated to highly radiogenic 87Sr / 86Sr (0.7034-0.7067) ratios. This indicates that the parent melts of Site 334 cumulates are issued from a MORB source but that seawater contamination occurred at some stage of their genesis. The extent of contamination, traced by the Sr isotopic signature, is variable within all cumulates but more developed for gabbronorites sensus stricto, suggesting that seawater introduction was a continuous process during all the magmatic evolution of the system, from partial melting to fractional crystallization. Simple masse balance calculations are consistent with a contaminating agent having the characters of a highly hydrated (possibly water saturated) silica-rich melt depleted in almost all incompatible major, minor and trace elements relative to MORB. Mixing in various proportions of contaminated melts similar to the parent melts of Site 334 cumulates with MORB can account for part of the variability in the Sr isotopic signature of oceanic basalts, among other to the short wavelength isotopic ,,noise" superimposed on regional trends. We conclude that seawater introduction into residual peridotite at shallow depth beneath mid-ocean ridges can lead mantle rocks and their melts to follow complex P-T-fH2O paths that mimic petrogenetic contexts classically attributed to subduction zone environments, like the production of boninitic-andesitic magmas.
Project(s):
Comment:
Trace element and isotopic composition were measured on hand picked clinopyroxene separates (300 mg) selected for their freshness. Trace element concentrations are given with 3% average uncertainties
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
1DEPTH, sediment/rockDepth sedmGeocode
2Sample code/labelSample labelNonnotte, PhilippeDSDP/ODP/IODP sample designationA = archive, W = work
3Sample commentSample commentNonnotte, Philippe
4PlagioclasePl%Nonnotte, PhilippeElectron microprobe (EMP)
5OlivineOl%Nonnotte, PhilippeElectron microprobe (EMP)
6ClinopyroxeneCpx%Nonnotte, PhilippeElectron microprobe (EMP)
7OrthopyroxeneOpx%Nonnotte, PhilippeElectron microprobe (EMP)
8OreOre%Nonnotte, PhilippeElectron microprobe (EMP)
9AnorthiteAn%Nonnotte, PhilippeElectron microprobe (EMP)of plagioclase
10MagnesiumMg%Nonnotte, PhilippeElectron microprobe (EMP)Xmg of clinopyroxene
11Titanium dioxideTiO2%Nonnotte, PhilippeElectron microprobe (EMP)of clinopyroxene
12Sodium oxideNa2O%Nonnotte, PhilippeElectron microprobe (EMP)of clinopyroxene
13Aluminium oxideAl2O3%Nonnotte, PhilippeElectron microprobe (EMP)of clinopyroxene
14Chromium(III) oxideCr2O3%Nonnotte, PhilippeElectron microprobe (EMP)of clinopyroxene
15RubidiumRbmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
16StrontiumSrmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
17BariumBamg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
18YttriumYmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
19ChromiumCrmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
20CobaltComg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
21NickelNimg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
22ZirconiumZrmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
23LanthanumLamg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
24CeriumCemg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
25PraseodymiumPrmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
26NeodymiumNdmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
27SamariumSmmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
28EuropiumEumg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
29GadoliniumGdmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
30TerbiumTbmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
31DysprosiumDymg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
32HolmiumHomg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
33ErbiumErmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
34ThuliumTmmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
35YtterbiumYbmg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
36LutetiumLumg/kgNonnotte, PhilippeICP-MS, Perkin-Elmer, Elan 6000
37Lanthanum/Ytterbium ratioLa/YbNonnotte, PhilippeCalculated
38Lanthanum/Samarium ratioLa/SmNonnotte, PhilippeCalculated
39Strontium-87/Strontium-86 ratio87Sr/86SrNonnotte, PhilippeIsotope ratio mass spectrometryfor clinopyroxene separated from gabbronorites and olivine gabbronorites after leaching
40Strontium-87/Strontium-86 ratio87Sr/86SrNonnotte, PhilippeIsotope ratio mass spectrometryfor corresponding leachates (Sum of the 3 leaching steps)
41Strontium-87/Strontium-86 ratio, error87Sr/86Sr e±Nonnotte, Philippefor clinopyroxene separated from gabbronorites and olivine gabbronorites after leaching
42Strontium-87/Strontium-86 ratio, error87Sr/86Sr e±Nonnotte, Philippefor corresponding leachates (Sum of the 3 leaching steps)
43NumberNoNonnotte, Philipperuns, 87Sr/86Sr, for clinopyroxene separated from gabbronorites and olivine gabbronorites after leaching
44NumberNoNonnotte, Philipperuns, 87Sr/86Sr, for corresponding leachates (Sum of the 3 leaching steps)
45NumberNoNonnotte, Philipperuns, 143Nd/144Nd, for corresponding leachates (Sum of the 3 leaching steps)
46Neodymium-143/Neodymium-144 ratio143Nd/144NdNonnotte, PhilippeIsotope ratio mass spectrometryfor clinopyroxene separated from gabbronorites and olivine gabbronorites after leaching
47Neodymium-143/Neodymium-144 ratio143Nd/144NdNonnotte, PhilippeIsotope ratio mass spectrometryfor corresponding leachates (Sum of the 3 leaching steps)
48Neodymium-143/Neodymium-144 ratio, error143Nd/144Nd e±Nonnotte, Philippefor clinopyroxene separated from gabbronorites and olivine gabbronorites after leaching
49Neodymium-143/Neodymium-144 ratio, error143Nd/144Nd e±Nonnotte, Philippefor corresponding leachates (Sum of the 3 leaching steps)
Size:
614 data points

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