Phase relations and melting of nominally 'dry' residual eclogites with variable CaO/Na2O from 3 to 5 GPa and 1250 to 1500 °C; implications for refertilisation of upwelling heterogeneous mantle
| dc.contributor.author | Rosenthal, Anja | |
| dc.contributor.author | Yaxley, Greg | |
| dc.contributor.author | Crichton, A. Wilson | |
| dc.contributor.author | Kovacs, I | |
| dc.contributor.author | Spandler, Carl | |
| dc.contributor.author | Hermann, Joerg | |
| dc.contributor.author | Sándorné, K. Judith | |
| dc.contributor.author | Rose-Koga, Estelle | |
| dc.contributor.author | Pelleter, Anne-Aziliz | |
| dc.date.accessioned | 2020-01-15T02:53:40Z | |
| dc.date.issued | 2018 | |
| dc.date.updated | 2019-11-25T07:20:38Z | |
| dc.description.abstract | This study investigates the phase and melting relations of nominally ‘dry’ residual eclogites (Res2 and Res3), with varying bulk CaO/Na2O ratios (4 and 12, respectively), from ~160 (5 GPa) to ~90 km (3 GPa) depth. Garnet, clinopyroxene and minor quartz/coesite are subsolidus phases in both compositions. In contrast to Res2, in Res3, the proportions of garnet always exceeding those of clinopyroxene. This also leads to higher modal quartz/coesite in Res3 relative to Res2. In modelling melting along a near-adiabatic upwelling path with a mantle potential temperature of ~1360 °C, at 5 GPa, near-solidus andesitic Res3 partial melts are much less siliceous and sodic, and are more calcic and magnesian than the incipient dacitic melts of Res2. Continuously self-fluxed melting increases considerably from 4 to 3 GPa due to the increased breakdown of Ca-Eskolaite solid solution component in clinopyroxene along the adiabat. This causes a steepening of the solidus, but more-so for Res2 than for Res3. At 3 GPa, the near exhaustion of residual clinopyroxene causes higher melt productivity for Res3 (~60%) than for Res2 (~30%), despite both melts being of basaltic-andesite composition. Resulting Res3 melts are therefore significantly more calcic and magnesian, and less sodic than those of Res2 melts. As Res3 undergoes a higher degree of melting relative to Res2 during adiabatic ascent, Res3 eclogitic residues become significantly more refractory; with relatively higher Mg# and grossular in garnet, higher Mg# and Ca-tschermaks, and lower jadeite components of clinopyroxene, and higher garnet/clinopyroxene ratios than eclogitic Res2 residuals. In upwelling heterogenous mantle domains, the siliceous eclogitic melts formed within a body of eclogite will react with encapsulating mantle peridotite, effectively refertilising it and producing hybrid pyroxene- and garnet-rich rocks. Subsequent melting of these sources may lead to compositionaly diverse primitive mantle-derived magmas, with high Ca/Al and low Na/Ca signatures indicators of preferential melting of a heterogeneous mantle, previously refertilised by recycled Ca-rich oceanic crustal material, and primitive magmas with low Ca/Al and high Na/Ca derived from melting of mantle with a ‘normal recycled crustal material signature’. Thus, compositional magma diversity may directly reflect precursor compositions of the mantle source region. | |
| dc.format.mimetype | application/pdf | en_AU |
| dc.identifier.issn | 0024-4937 | en_AU |
| dc.identifier.uri | http://hdl.handle.net/1885/197772 | |
| dc.language.iso | en_AU | en_AU |
| dc.publisher | Elsevier | en_AU |
| dc.relation | http://purl.org/au-research/grants/arc/DP0558189 | en_AU |
| dc.rights | © 2018 Elsevier B.V | en_AU |
| dc.source | Lithos | en_AU |
| dc.title | Phase relations and melting of nominally 'dry' residual eclogites with variable CaO/Na2O from 3 to 5 GPa and 1250 to 1500 °C; implications for refertilisation of upwelling heterogeneous mantle | en_AU |
| dc.type | Journal article | en_AU |
| local.bibliographicCitation.lastpage | 519 | en_AU |
| local.bibliographicCitation.startpage | 506 | en_AU |
| local.contributor.affiliation | Rosenthal, Anja, College of Science, ANU | en_AU |
| local.contributor.affiliation | Yaxley, Gregory, College of Science, ANU | en_AU |
| local.contributor.affiliation | Crichton, A. Wilson, ESRF – The European Synchrotron | en_AU |
| local.contributor.affiliation | Kovacs, I, Eotvos Lorand Geophysical Institute of Hungary | en_AU |
| local.contributor.affiliation | Spandler, Carl, James Cook University | en_AU |
| local.contributor.affiliation | Hermann, Joerg, University of Bern | en_AU |
| local.contributor.affiliation | Sándorné, K. Judith , Hungarian Institute for Forensic Sciences | en_AU |
| local.contributor.affiliation | Rose-Koga, Estelle, Clermont Auvergne University | en_AU |
| local.contributor.affiliation | Pelleter, Anne-Aziliz , Clermont Auvergne University | en_AU |
| local.contributor.authoruid | Rosenthal, Anja, u4268874 | en_AU |
| local.contributor.authoruid | Yaxley, Gregory, u4039347 | en_AU |
| local.description.embargo | 2037-12-31 | |
| local.description.notes | Imported from ARIES | |
| local.identifier.absfor | 040304 - Igneous and Metamorphic Petrology | en_AU |
| local.identifier.absseo | 970104 - Expanding Knowledge in the Earth Sciences | en_AU |
| local.identifier.ariespublication | a383154xPUB10400 | en_AU |
| local.identifier.citationvolume | 314-315 | en_AU |
| local.identifier.doi | 10.1016/j.lithos.2018.05.025 | en_AU |
| local.identifier.scopusID | 2-s2.0-85049588420 | |
| local.publisher.url | https://www.elsevier.com/en-au | en_AU |
| local.type.status | Published Version | en_AU |
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