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March 29, 2026Minerals3 citationsOpen Access

Key Ore-Controlling Factors and Genetic Model of the Tamusu Super-Large Sandstone-Type Uranium Deposit, Bayingobi Basin

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CLChao LüZZZhongyue ZhangYJYangquan Jiao

Key Points

  • To evaluate ore-controlling factors and develop a genetic model for the Tamusu super-large sandstone-type uranium deposit.
  • Analyzed core descriptions from over 200 boreholes
  • Conducted log facies analysis
  • Used geochemical environmental proxies
  • Uranium orebodies are mainly located in the Upper Lower Cretaceous Bayingobi Formation
  • Mineralization is controlled by fan-delta architecture and interlayer oxidation
  • Uranium grades range from 0.01 to 0.33 wt% at redox transition positions

Abstract

Tamusu, the only identified super-large sandstone-hosted uranium deposit in the Bayingobi Basin, provides an important natural laboratory for evaluating ore-controlling factors and genetic models of sandstone-type uranium mineralization. Based on core descriptions from more than 200 boreholes, log facies analysis and geochemical environmental proxies, this study constrains the sedimentary–mineralization architecture and key controlling factors of the deposit. Uranium orebodies are mainly hosted in the upper member of the Lower Cretaceous Bayingobi Formation (Sq2) within a gravity flow-dominated fan-delta–lacustrine system. Braided distributary channel sands on the fan-delta plain and subaqueous distributary channel sands on the delta front constitute the principal uranium reservoirs, controlling both the migration pathways and storage space for U-bearing fluids. Mineralization is jointly governed by fan-delta architecture, interlayer oxidation zonation and reducing agents. The interlayer oxidation zone displays a north-thick–south-thin geometry, and uranium orebodies are concentrated at redox transition positions, with grades of 0.01–0.33 wt%. The metallogenic evolution can be summarized in three stages: syndepositional uranium pre-enrichment, interlayer oxidation mineralization, and a late hydrothermal/diagenetic overprint that mainly modified reservoir properties, favored ore preservation, and did not contribute to the primary uranium budget. Accordingly, a genetic model of “fan-delta architecture + interlayer oxidation control + late overprint and preservation” is proposed to guide exploration in the Bayingobi Basin and analogous sandstone-type uranium systems.

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Cite This Study

Lü et al. (2026) studied this question.

synapsesocial.com/papers/69c8c336de0f0f753b39dd31https://doi.org/10.3390/min16040357
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