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May 2, 2026Minerals0 citationsOpen Access

Mineralogical and Geochemical Characteristics of the Lower Xishanyao Formation in the Mengqiguer Uranium Deposit, Yili Basin, NW China

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GWG WANGHZHailong ZhangHZHailong Zhang

Key Points

  • The study aims to systematically analyze the mineralogical and geochemical responses to redox evolution in the Mengqiguer uranium deposit.
  • Conducted petrographic observation and X-ray diffraction analysis on samples from the interlayer oxidation zone.
  • Performed electron probe microanalysis and whole-rock geochemical analyses.
  • Analyzed clay minerals and traced the evolution of ore-forming fluids.
  • Dominant clay minerals are kaolinite and illite, with higher concentrations in oxidation zones.
  • Uranium minerals primarily consist of uranium oxides and coffinite, with significant enrichment in transition zones.
  • The Fe3+/Fe2+ ratio increases with oxidation, indicating a progression from acidic oxidized to weakly alkaline reduced fluids.

Abstract

The interlayer oxidation zone-type Mengqiguer uranium deposit in the southern Yili Basin is a typical sandstone-hosted uranium deposit in northwest China, and the lower member of the Jurassic Xishanyao Formation is its main ore-hosting stratum. However, mineralogical and geochemical responses to redox evolution in the deposit have not been systematically constrained. In this study, we carried out detailed petrographic observation, X-ray diffraction analysis, electron probe microanalysis, and whole-rock geochemical analyses on samples from the interlayer oxidation zone in the lower member of the Xishanyao Formation. Kaolinite and illite are the dominant clay minerals in the deposit, with higher contents in oxidation zones than in transition and unaltered zones, while the illite–smectite mixed-layer content shows the opposite trend. The main uranium minerals are uranium oxides and coffinite. U, S and organic carbon are enriched in the transition zone, while the Fe3+/Fe2+ ratio increases with the oxidation degree. Comprehensive analysis on clay minerals shows that the ore-forming fluids evolved from acidic oxidized meteoric fluids to weakly alkaline reduced fluids; the uranium was mainly derived from the leaching of uraniferous sandstone. The formation of the deposit is controlled by sedimentary facies, tectonic uplift, organic–inorganic fluid interaction and redox reaction. This study provides detailed mineralogical and geochemical evidence for the metallogenic mechanism of interlayer oxidation zone-type uranium deposits, and has important guiding significance for uranium prospecting in the Yili Basin.

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Cite This Study

WANG et al. (2026) studied this question.

synapsesocial.com/papers/69f594fc71405d493afffe61https://doi.org/10.3390/min16050448
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