Geology, igneous geochemistry, mineralization, and fluid inclusion characteristics of the late Palaeozoic North Katpar W-Mo(-Cu-Bi) skarn deposit, central Kazakhstan

The North (Northern) Katpar W-Mo skarn deposit in the central Kazakhstan contains resources of 90 Kt WO3 in altered skarn (averaging 0.23% WO3 and 0.04% Mo). It is associated with a cluster of magmatic intrusions comprising early Carboniferous monzonite-quartz monzonite-granodiorite, late Carboniferous granite (to leucogranite ?), and late Carboniferous-early Permian leucogranite, with their overall evolution from subduction-related to post-collisional intrusions. In contrast to most W-Mo deposits in central Kazakhstan, which correspond to greisen and/or stockwork types, the North Katpar deposit comprises large skarn zones. It has signatures of an intermediate-redox W-Mo skarn deposit, although a greater content of garnet (vs. pyroxene) in prograde and early retrograde skarns, together with andradite-rich composition of garnets and high Mo content in scheelite, indicate a higher fO2. Late retrograde skarn comprises a paragenesis of wollastonite-quartz-fluorite (with Mn-Fe pyroxene and almandine-spessartine-rich garnet), and the subsequent phyllic (carbonate-phyllic) alteration assemblages also comprise fluorite, together with W-Mo and Cu-Bi-Pb-Zn-sulphide mineralization. Two alternative genetic models are considered, namely (i) that involving a gradual (single-series) magmatic-hydrothermal evolution corresponding to the respective continuing (direct) evolution from magnetite-series to transitional magnetite-ilmenite-series intrusions, or (ii) that suggesting a hydrothermal fluid supply from unrelated magmatic intrusions. The fluid inclusion data indicate the involvement of an aqueous, moderately-saline (15–19 wt.% NaCl-eq.), Mg-Na-chloride and then higher-salinity (~26 wt.% NaCl-eq.) Ca-Na-chloride, high-temperature single-phase fluids, possibly exsolved from a cooling magmatic intrusion, during the prograde and then early retrograde skarn formation. No boiling occurred, probably due to the significant (>5 km) depth of magmatic crystallization and related hydrothermal mineral deposition. Then, a distinct geochemical shift occurred, possibly corresponding to the intrusion of leucogranite, with high-F, low-salinity (<5 wt.% NaCl-eq.), dominantly aqueous-fluorine fluids forming the late retrograde skarn and subsequent phyllic (carbonate-phyllic) alteration assemblages. Further evolution towards aqueous-carbonic fluids could be associated with the intrusion of the late mafic dikes.

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Journal
International Geology Review
Published
2026-09-14
DOI
https://doi.org/10.1080/00206814.2026.2729579
Primary Topic
Geological and Geochemical Analysis
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article
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Geology, igneous geochemistry, mineralization, and fluid inclusion characteristics of the late Palaeozoic North Katpar W-Mo(-Cu-Bi) skarn deposit, central Kazakhstan

S. G. Kryazhev, Svetlana S. Dvurechenskaya, Nikolay N. Krivoschekov, Serguei G. Soloviev et al.
International Geology Review
Geological and Geochemical Analysis
article

Geology, igneous geochemistry, mineralization, and fluid inclusion characteristics of the late Palaeozoic North Katpar W-Mo(-Cu-Bi) skarn deposit, central Kazakhstan

S. G. Kryazhev, Svetlana S. Dvurechenskaya, Nikolay N. Krivoschekov, Serguei G. Soloviev, Evgeny М. Berkovsky
article en

Abstract

The North (Northern) Katpar W-Mo skarn deposit in the central Kazakhstan contains resources of 90 Kt WO3 in altered skarn (averaging 0.23% WO3 and 0.04% Mo). It is associated with a cluster of magmatic intrusions comprising early Carboniferous monzonite-quartz monzonite-granodiorite, late Carboniferous granite (to leucogranite ?), and late Carboniferous-early Permian leucogranite, with their overall evolution from subduction-related to post-collisional intrusions. In contrast to most W-Mo deposits in central Kazakhstan, which correspond to greisen and/or stockwork types, the North Katpar deposit comprises large skarn zones. It has signatures of an intermediate-redox W-Mo skarn deposit, although a greater content of garnet (vs. pyroxene) in prograde and early retrograde skarns, together with andradite-rich composition of garnets and high Mo content in scheelite, indicate a higher fO2. Late retrograde skarn comprises a paragenesis of wollastonite-quartz-fluorite (with Mn-Fe pyroxene and almandine-spessartine-rich garnet), and the subsequent phyllic (carbonate-phyllic) alteration assemblages also comprise fluorite, together with W-Mo and Cu-Bi-Pb-Zn-sulphide mineralization. Two alternative genetic models are considered, namely (i) that involving a gradual (single-series) magmatic-hydrothermal evolution corresponding to the respective continuing (direct) evolution from magnetite-series to transitional magnetite-ilmenite-series intrusions, or (ii) that suggesting a hydrothermal fluid supply from unrelated magmatic intrusions. The fluid inclusion data indicate the involvement of an aqueous, moderately-saline (15–19 wt.% NaCl-eq.), Mg-Na-chloride and then higher-salinity (~26 wt.% NaCl-eq.) Ca-Na-chloride, high-temperature single-phase fluids, possibly exsolved from a cooling magmatic intrusion, during the prograde and then early retrograde skarn formation. No boiling occurred, probably due to the significant (>5 km) depth of magmatic crystallization and related hydrothermal mineral deposition. Then, a distinct geochemical shift occurred, possibly corresponding to the intrusion of leucogranite, with high-F, low-salinity (<5 wt.% NaCl-eq.), dominantly aqueous-fluorine fluids forming the late retrograde skarn and subsequent phyllic (carbonate-phyllic) alteration assemblages. Further evolution towards aqueous-carbonic fluids could be associated with the intrusion of the late mafic dikes.

International Geology Review
Institute of Geology of Ore Deposits Petrography Mineralogy and Geochemistry (RU), Central Research Institute of Geological Prospecting for Base and Precious Metals (RU), Mineral Resources (AU), All-Russian Scientific-Research Institute Of Mineral Resources named after N.M. Fedorovsky (RU)
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Geological and Geochemical Analysis
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