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铁、锰介导下灰岩岩芯回收酸性矿山废水中钇的界面演化与多过程耦合机制研究

韩佳欣 高旭波 任怡鑫

韩佳欣,高旭波,任怡鑫. 铁、锰介导下灰岩岩芯回收酸性矿山废水中钇的界面演化与多过程耦合机制研究[J]. 中国岩溶,2026,45(0):1-16 doi: 10.11932/karst2026y033
引用本文: 韩佳欣,高旭波,任怡鑫. 铁、锰介导下灰岩岩芯回收酸性矿山废水中钇的界面演化与多过程耦合机制研究[J]. 中国岩溶,2026,45(0):1-16 doi: 10.11932/karst2026y033
Jiaxin HAN, Xubo GAO, Yixin REN. Interface Evolution and Multi-Process Coupling Mechanisms of Yttrium Recovery from Acid Mine Drainage by Limestone Cores Mediated by Iron and Manganese[J]. CARSOLOGICA SINICA. doi: 10.11932/karst2026y033
Citation: Jiaxin HAN, Xubo GAO, Yixin REN. Interface Evolution and Multi-Process Coupling Mechanisms of Yttrium Recovery from Acid Mine Drainage by Limestone Cores Mediated by Iron and Manganese[J]. CARSOLOGICA SINICA. doi: 10.11932/karst2026y033

铁、锰介导下灰岩岩芯回收酸性矿山废水中钇的界面演化与多过程耦合机制研究

doi: 10.11932/karst2026y033
基金项目: 国家重点研发计划(2023YFC3710002)
详细信息
    作者简介:

    韩佳欣(2001–),男,硕士研究生,环境科学与工程专业,主要研究方向为地下水污染与防治。E-mail:1020181695@qq.com

    通讯作者:

    高旭波(1975–),男,研究员,主要研究方向为岩溶水资源与岩溶环境,地下水污染防治,岩溶地热资源开发利用。E-mail:xubo.gao.cug@gmail.com。

  • 中图分类号: X751

Interface Evolution and Multi-Process Coupling Mechanisms of Yttrium Recovery from Acid Mine Drainage by Limestone Cores Mediated by Iron and Manganese

  • 摘要: 文章以天然灰岩岩芯为研究对象,结合动态流动实验、BET、XRD、XPS表征及Phreeqc地球化学模拟,系统研究了酸性矿山废水(AMD)中稀土元素钇(Y(III))在灰岩体系中的回收行为及作用机制,以及废水中赋存的Fe、Mn等金属元素对回收过程的影响机制。结果表明,Fe和Mn的参与未改变方解石晶体结构,但显著调控了材料表面性质,其中Fe的参与显著提高了比表面积并引入高密度Fe-OH活性位点,增强了体系对钇的富集与固定能力,在拟定吸附实验的前100 h出水钇浓度几乎为0。此外,Mn同样对灰岩表面性质及Y的去除行为产生了一定影响,表明Mn参与了界面反应过程并可能改变了表面活性位点分布。相较于含Fe体系,Mn对Y去除性能的影响相对较弱,因此本文主要针对Fe介导的界面作用进行了进一步讨论。Phreeqc模拟表明,方解石溶解导致体系pH升高至9.2并促进钇向稳定碳酸络合物转化,回收过程受矿物溶解–溶液络合–表面络合多过程耦合控制。在Fe参与条件下,钇在灰岩表面的固定稳定性显著提高,出水浓度波动减小,体系回收效率得到增强。研究结果表明,灰岩在Fe参与条件下具有一定的稀土资源化回收潜力,为酸性矿山废水中稀土元素的资源化利用提供了实验依据和理论支持。本研究创新性地揭示了Fe在灰岩表面形成的铁氧化物包覆层由传统钝化层向活性吸附界面层的转变机制,阐明了钇回收过程中由方解石溶解,铁氧化物界面重构以及表面络合构成的多过程耦合控制机制,构建了实验表征与Phreeqc模拟相结合的界面反应分析方法,为AMD中稀土元素高效资源化回收提供了新的认识。

     

  • 图  1  实验方案流程图

    Figure  1.  Experimental scheme flowchart

    图  2  实验装置示意图

    (1.实验水溶液储存箱,2.进水管,3.柱塞泵,4.压力表,5.流量计,6.致密岩体反应池,7.致密岩体岩样,8.氟橡胶套管,9.高压手动泵,10.连接口,11.出水管,12.收集装置。)

    Figure  2.  Schematic diagram of the experimental apparatus

    (1. Experimental aqueous solution storage tank, 2. Inlet pipe, 3. Plunger pump, 4. Pressure gauge, 5. Flow meter, 6. Dense rock reaction cell,7. Dense rock sample, 8. Fluororubber sleeve, 9. High-pressure manual pump, 10. Connector, 11. Outlet pipe, 12. Collection device.)

    图  3  原岩芯的XRD分析

    Figure  3.  XRD analysis of the original core

    图  4  铁盐浸泡岩芯的XRD分析

    Figure  4.  XRD analysis of iron salt−soaked core

    图  5  锰盐浸泡岩芯的XRD分析

    Figure  5.  XRDanalysis of manganese salt−soaked core

    图  6  岩芯的XPS谱图

    Figure  6.  XPS Spectrum of the Core

    图  7  吸附剂用量对岩芯回收率的影响

    Figure  7.  Effect of adsorbent dosage on core recovery efficiency

    图  8  反应时间对氯化铁浸泡岩芯回收率的影响

    Figure  8.  Effect of Reaction Time on Recovery Efficiency of Ferric Chloride−Soaked Core

    图  9  柱试验吸附效果

    Figure  9.  Adsorptionperformance in the column experiment

    表  1  岩芯浸泡条件

    Table  1.   Core immersion conditions

    实验条件数值
    浸泡液浓度20 μmol∙L−1
    岩芯浸泡时间24 h
    岩芯烘干温度130 ℃
    岩芯烘干时间8 h
    下载: 导出CSV

    表  2  岩芯比表面积

    Table  2.   Specific surface area of core samples

    原岩芯铁盐浸泡岩芯锰盐浸泡岩芯
    比表面积/(m2∙g−113.993624.364416.8336
    增幅百分比74%21%
    下载: 导出CSV

    表  3  氯化铁用量对回收率的影响

    Table  3.   Effect of ferric chloride dosage on recovery efficiency

    用量/g0.010.020.040.080.16
    回收率/%89.376493.081095.995899.719799.8191
    下载: 导出CSV

    表  4  反应时间对回收率的影响

    Table  4.   Effect of reaction time on recovery efficiency

    时间/h24612244872
    回收率/%90.351493.867795.995899.237899.268799.346599.5359
    下载: 导出CSV

    表  5  反应后吸附状态分布

    Table  5.   Distribution of adsorption states after reaction

    表面物种 mol 占比
    Hfo_sO 3.675e-6 61.2%
    Hfo_sOHCa2+ 1.965e-6 32.7%
    Hfo_sOY2+ 2.885e-7 4.8%
    Hfo_sOH 7.2e-8 1.2%
    下载: 导出CSV
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  • 收稿日期:  2026-02-28
  • 录用日期:  2026-05-22
  • 修回日期:  2026-05-11
  • 网络出版日期:  2026-08-25

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