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Metal Mine ›› 2026, Vol. 55 ›› Issue (3): 239-247.

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Leaching Research of Arsenic Removal from A Tin Tailings Enhanced by Ball Milling

SHAO Zeming1 LIU Shaogang1,2,3,4 SU Yiping1 ZHONG Lianyun1,5,6   

  1. 1. School of Chemistry and Chemical Engineering,Guangxi Minzu University,Nanning 530006,China;
    2. Key Laboratory of Chemistry and Engineering of Forest Products,State Ethnic Affairs Commission,Nanning 530006,China;
    3. Guangxi Key Laboratory of Chemistry and Engineering of Forest Products,Nanning 530006,China;
    4. Engineering Research Center of Low-carbon and High-quality Utilization of Forest Biomass,Nanning 530006,China;
    5. Guangxi Key Laboratory of Polysaccharide Materials and Modification,Nanning 530006,China;
    6. Guangxi Key Laboratory of New Technologies in Chemical and Biological Transformation Processes,Nanning 530006,China
  • Online:2026-03-15 Published:2026-04-01

Abstract: To facilitate the resource utilization and safe disposal of arsenic-bearing solid waste,this study investigates the
removal of arsenic from tin tailings using a synergistic process combining ball milling and hydrometallurgy. A thermodynamic equilibrium analysis was conducted on the SiO2-As2S3-CaCO3-FeS2-H+ / OH- -H2O system to elucidate the leaching mechanism
and dissolution equilibrium of arsenic. The effects of key process parameters,including material-to-ball ratio,material-to-water ratio,milling time,and pH value,on arsenic leaching efficiency were systematically examined,and the experimental conditions were optimized. The results show that decreasing the material-to-ball ratio and material-to-water ratio,as well as extending the milling time,enhance arsenic leaching. pH value significantly influences arsenic dissolution behavior,with the leaching rate reaching 84. 6% under strong alkaline conditions (pH=11. 0). Phase and microstructural analyses reveal that ball milling introduces structural defects on particle surfaces,reducing the average particle size and increasing the specific surface area of the tailings,thereby significantly promoting interfacial mass transfer and arsenic leaching. This study provides a technically feasible and readily industrializable approach for the green separation of arsenic from typical arsenic-bearing tin tailings.

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