Matches in SemOpenAlex for { <https://semopenalex.org/work/W3013460803> ?p ?o ?g. }
- W3013460803 endingPage "103503" @default.
- W3013460803 startingPage "103503" @default.
- W3013460803 abstract "Abstract A series of early Permian mafic–ultramafic complexes associated with Ni-Cu mineralization are distributed in western Beishan region, Xinjiang, NW China. The Ni mineralization in this area consists of two sub-belts, which have the same magma conduit at depth, similar rock types and similar emplacement ages, but different mineralization types. The Ni mineralization in the north (Hongshishan) sub-belt consists of low-tenor disseminated sulfide, whereas that in the south (Pobei) sub-belt consists of disseminated sulfide and vein-type sulfide with high tenor, suggesting different sulfide segregation mechanisms. The Hongshishan complex consists of dunite, wehrlite, olivine clinopyroxenite, troctolite, olivine gabbro, and gabbro (from earlier to later). The mafic rocks occur along margins of the complex, and the mineralized ultramafic rocks are confined to the center. The dunite and wehrlite host significant amounts of disseminated sulfide. The parental magma of the Hongshishan complex may have originated from 17.0% partial melting of the depleted mantle. It is characterized by high temperature (1368 ℃), high Mg (picritic affinity, 14.52 wt% MgO), oxidation and platinum group element (PGE) depletion, as constrained by the major and trace elements, olivine and chromite mineralogy, and PGE contents. Two stages of sulfide segregation have been recognized. Early sulfide segregation at depth, which is indicated by elevated Cu/Pd ratios and sulfide inclusions in chromite, produces the PGE-depleted parental magma. Later in situ segregation results in disseminated sulfide mineralization. Model of the olivine crystallization and PGE content shows that 0.01%−0.015% of the sulfide is segregated in situ, with R = 100–500. Significant crustal contamination is suggested by xenoliths of wall rock as well as negative Nb, Ta, and Ti anomalies and positive Pb and Sr anomalies in intrusive rocks. The addition of crustal Si and decrease in FeO by fractional crystallization are the main factors triggering S-oversaturation and later in situ segregation. The early segregation at depth is more likely caused by the addition of crustal S, although the δ34S values of sulfides (-0.75‰ to 1.15‰) indicate the isotopic signature of mantle sulfur. For comparison, the development of vein-type sulfide mineralization in the Poyi deposit is ascribed to assimilation of S-bearing Archean rocks. Finally, a model of “early segregation at depth + later in situ segregation + multistage pulsation” is proposed for the Ni mineralization in this area." @default.
- W3013460803 created "2020-04-03" @default.
- W3013460803 creator A5009347661 @default.
- W3013460803 creator A5010155139 @default.
- W3013460803 creator A5052621392 @default.
- W3013460803 creator A5061391748 @default.
- W3013460803 creator A5064904482 @default.
- W3013460803 date "2020-07-01" @default.
- W3013460803 modified "2023-10-17" @default.
- W3013460803 title "Sulfide segregation mechanism of magmatic Ni mineralization in western Beishan region, Xinjiang, NW China: Case study of the Hongshishan mafic–ultramafic complex" @default.
- W3013460803 cites W1417947632 @default.
- W3013460803 cites W1449351719 @default.
- W3013460803 cites W1549487579 @default.
- W3013460803 cites W183765136 @default.
- W3013460803 cites W1965193826 @default.
- W3013460803 cites W1965410050 @default.
- W3013460803 cites W1965754569 @default.
- W3013460803 cites W1972400638 @default.
- W3013460803 cites W1979082610 @default.
- W3013460803 cites W1981950497 @default.
- W3013460803 cites W1983176626 @default.
- W3013460803 cites W1987329135 @default.
- W3013460803 cites W1987405372 @default.
- W3013460803 cites W1995798238 @default.
- W3013460803 cites W1996694420 @default.
- W3013460803 cites W2000148870 @default.
- W3013460803 cites W2000517918 @default.
- W3013460803 cites W2002256044 @default.
- W3013460803 cites W2011176927 @default.
- W3013460803 cites W2014947076 @default.
- W3013460803 cites W2027877967 @default.
- W3013460803 cites W2027936730 @default.
- W3013460803 cites W2034918180 @default.
- W3013460803 cites W2036143042 @default.
- W3013460803 cites W2036180675 @default.
- W3013460803 cites W2036333570 @default.
- W3013460803 cites W2060004273 @default.
- W3013460803 cites W2062384730 @default.
- W3013460803 cites W2069220978 @default.
- W3013460803 cites W2071123829 @default.
- W3013460803 cites W2071171668 @default.
- W3013460803 cites W2073172102 @default.
- W3013460803 cites W2076755830 @default.
- W3013460803 cites W2085717916 @default.
- W3013460803 cites W2087662765 @default.
- W3013460803 cites W2087673255 @default.
- W3013460803 cites W2088516428 @default.
- W3013460803 cites W2090035514 @default.
- W3013460803 cites W2091178948 @default.
- W3013460803 cites W2095807877 @default.
- W3013460803 cites W2098100186 @default.
- W3013460803 cites W2115021200 @default.
- W3013460803 cites W2123387016 @default.
- W3013460803 cites W2135379769 @default.
- W3013460803 cites W2137126784 @default.
- W3013460803 cites W2138150662 @default.
- W3013460803 cites W2138522501 @default.
- W3013460803 cites W2140763040 @default.
- W3013460803 cites W2155384515 @default.
- W3013460803 cites W2159572003 @default.
- W3013460803 cites W2168246340 @default.
- W3013460803 cites W2168808656 @default.
- W3013460803 cites W2323406240 @default.
- W3013460803 cites W2338103790 @default.
- W3013460803 cites W2340534035 @default.
- W3013460803 cites W2420641256 @default.
- W3013460803 cites W2465585140 @default.
- W3013460803 cites W2545799301 @default.
- W3013460803 cites W2758622817 @default.
- W3013460803 cites W2809717833 @default.
- W3013460803 cites W2911397638 @default.
- W3013460803 cites W2911661728 @default.
- W3013460803 cites W2950416046 @default.
- W3013460803 cites W2955207684 @default.
- W3013460803 cites W2990690357 @default.
- W3013460803 doi "https://doi.org/10.1016/j.oregeorev.2020.103503" @default.
- W3013460803 hasPublicationYear "2020" @default.
- W3013460803 type Work @default.
- W3013460803 sameAs 3013460803 @default.
- W3013460803 citedByCount "4" @default.
- W3013460803 countsByYear W30134608032020 @default.
- W3013460803 countsByYear W30134608032021 @default.
- W3013460803 countsByYear W30134608032022 @default.
- W3013460803 crossrefType "journal-article" @default.
- W3013460803 hasAuthorship W3013460803A5009347661 @default.
- W3013460803 hasAuthorship W3013460803A5010155139 @default.
- W3013460803 hasAuthorship W3013460803A5052621392 @default.
- W3013460803 hasAuthorship W3013460803A5061391748 @default.
- W3013460803 hasAuthorship W3013460803A5064904482 @default.
- W3013460803 hasConcept C111696902 @default.
- W3013460803 hasConcept C127313418 @default.
- W3013460803 hasConcept C159390177 @default.
- W3013460803 hasConcept C159750122 @default.
- W3013460803 hasConcept C167284885 @default.
- W3013460803 hasConcept C17409809 @default.
- W3013460803 hasConcept C178790620 @default.
- W3013460803 hasConcept C185592680 @default.
- W3013460803 hasConcept C195081551 @default.