微波强化含钒页岩磨矿-浸出试验研究
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作者单位:

1.武汉科技大学 资源与环境工程学院, 湖北 武汉 430081 ;2.国家环境保护矿冶资源利用与污染控制重点实验室, 湖北 武汉 430081 ;3.战略钒资源利用省部共建协同创新中心, 湖北 武汉 430081 ;4.湖北省页岩钒资源高效清洁利用工程技术研究中心, 湖北 武汉 430081

作者简介:

李胜(1997—),男,湖北襄阳人,博士研究生,主要从事外场强化提取研究。

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中图分类号:

TF841.3

基金项目:

湖北省科技创新人才及服务专项项目(2022EJD002),国家重点研发计划项目(2020YFC1909700)


Research on microwave enhanced grinding-leaching of vanadium-bearing shale
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Affiliation:

1.School of Resources and Environmental Engineering, Wuhan University of Science and Technology, Wuhan 430081 , China ;2.State Environmental Protection Key Laboratory of Mineral Metallurgical Resources Utilization and Pollution Control, Wuhan 430081 , China ;3.Collaborative Innovation Center of Strategic Vanadium Resources Utilization, Wuhan 430081 , China ;4.Hubei Provincial Engineering Technology Research Center of High Efficient Cleaning Utilization for Shale Vanadium Resource, Wuhan 430081 , China

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    摘要:

    微波介入含钒页岩磨矿和浸出环节对降低磨矿能耗和提高浸出效率和浸出率,具有积极作用。本研究进行了常规磨矿-浸出和微波磨矿-浸出条件试验对比,并通过微观形貌分析技术和COMSOL电磁热应力模拟研究了微波强化机制。条件试验表明,微波介入磨矿和浸出后,磨矿时间可缩短33.33%,节省约31.06%的磨矿能耗,钒回收率提高6.18%并且浸出时间缩短79.17%。COMSOL模拟结果表明,微波辐射下磨矿,当钒页岩颗粒彼此接触时,将发生电场极化,产生300~2500℃的高温热点,高温热点破坏矿物结构;同时,由于矿物组分间介电性质不同,其升温速率也不同,这将会在云母-碳间产生74.2~792MPa以及云母-黄铁矿间产生4.87~78.5GPa的热应力,导致异相解离,从而增加钒页岩的可磨性。微波辅助浸出过程中同样存在高温热点,局部高温破坏了矿物结构,细化了矿物的粒度,随着含钒矿物暴露表面的增加,氢离子与活性位点之间的碰撞频率增加,加快了钒的溶出。该研究可为微波辅助磨矿-浸出过程提供理论依据和参考。

    Abstract:

    Microwave intervention in the grinding and leaching process of vanadium-bearing shale has a positive effect on reducing grinding energy consumption and improving leaching efficiency and leaching rate. This study conducted experimental comparisons between conventional grinding leaching and microwave grinding leaching conditions, and studied the microwave strengthening mechanism through microscopic morphology analysis technology and COMOSL electromagnetic thermal stress simulation. The conditional experiment shows that after microwave intervention in grinding and leaching, the grinding time can be shortened by 33.33%, saving about 31.06% of grinding energy consumption, increasing the vanadium recovery rate by 6.18%, and shortening the leaching time by 79.17%. The COMSOL simulation results indicate that when vanadium shale particles come into contact with each other, electric field polarization occurs, generating high-temperature hot spots of 300~2500℃, which damage the mineral structure; at the same time, due to the different dielectric properties between mineral components, their heating rates also vary, which will result in a temperature difference of 500~2000℃ and a thermal stress of 4.87~78.5GPa, leading to heterogeneous dissociation and increasing the grindability of vanadium shale. There are also high temperature hot spots in the process of microwave assisted leaching. Local high temperature destroys the mineral structure and refines the particle size of minerals. With the increase of exposed surface of vanadium bearing minerals, the collision frequency between hydrogen ions and active site increases, accelerating the dissolution of vanadium. This study can provide theoretical basis and reference for the microwave assisted grinding leaching process.

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引用本文

李胜,张一敏,袁益忠,等.微波强化含钒页岩磨矿-浸出试验研究[J]. 中国有色冶金, 2023, 52(5): 25-33.

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  • 收稿日期:2023-03-09
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  • 在线发布日期: 2025-12-23
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