生态环境学报 ›› 2026, Vol. 35 ›› Issue (9): 1445-1457.DOI: 10.16258/j.cnki.1674-5906.2026.09.011
杨强1(
), 李权1, 夏晓芬2, 丁永强1, 张楚怡1, 杨涛涛3, 廖斌2, 刘安富4,5,*(
)
收稿日期:2025-12-23
修回日期:2026-06-23
接受日期:2026-07-02
出版日期:2026-09-18
发布日期:2026-09-16
通讯作者:
刘安富, E-mail: 作者简介:杨强(1986年生),男,高级工程师,硕士,主要从事矿山污染治理相关研究。E-mail: yangqiang@nwh.cn
基金资助:
Yang Qiang1(
), Li Quan1, Xia Xiaofen2, Ding Yongqiang1, Zhang Chuyi1, Yang Taotao3, Liao Bin2, Liu Anfu4,5,*(
)
Received:2025-12-23
Revised:2026-06-23
Accepted:2026-07-02
Online:2026-09-18
Published:2026-09-16
摘要:
【目的】酸性矿山废水(acid mine drainage,AMD)的直接排放会对周边生态环境造成严重影响,本研究旨在开发一套AMD的微生物联合处理技术,并实现其对有价金属资源的回收利用。【方法】建立了基于微生物的“好氧-厌氧”联合反应器系统,以广东云浮硫铁矿AMD为处理对象,通过理化分析、矿物学分析和16S rRNA基因V4区测序等方法,系统探究了其处理效能与微生物群落响应机制。【结果】该联合反应器系统出水pH值由2.23升至8.17,Fe3+、Al3+、Zn2+、Cu2+去除率达100%,Mn2+和SO42−去除率分别为97%和88%。好氧铁氧化与初级碱中和生成施氏矿物,进一步的碱中和形成黄钾铁矾、铁水合物,而后续的预处理与厌氧处理阶段则有效沉淀了Zn2+、Cu2+、Mn2+等离子。好氧反应器中微生物群落以Acidiphilium和Ferroplasma等嗜酸铁氧化菌为主,其介导的亚铁氧化和矿物形成是铁去除的关键;厌氧反应器则富集Desulfosporosinus和Clostridium等硫酸盐还原菌,驱动了硫酸盐还原和金属硫化物沉淀过程,其微生物群落结构受pH值显著影响。【结论】本研究通过好氧反应器中铁氧化菌与厌氧反应器中硫酸盐还原菌的协同作用,实现了对AMD的分级处理与有价金属回收,阐明了利用嗜酸铁硫代谢微生物的联合反应器进行AMD处理的技术可行性。
中图分类号:
杨强, 李权, 夏晓芬, 丁永强, 张楚怡, 杨涛涛, 廖斌, 刘安富. 硫铁矿酸性矿山废水的分级处理与有价金属回收研究[J]. 生态环境学报, 2026, 35(9): 1445-1457.
Yang Qiang, Li Quan, Xia Xiaofen, Ding Yongqiang, Zhang Chuyi, Yang Taotao, Liao Bin, Liu Anfu. Stepwise Treatment and Valuable Metal Recovery from an Acidic Pyrite Mine Drainage[J]. Ecology and Environmental Sciences, 2026, 35(9): 1445-1457.
| 指标 | 测定值 |
|---|---|
| pH | 2.23±0.03 |
| TOC质量浓度/(mg∙L−1) | 35.6±1.3 |
| Fe2+质量浓度/(mg∙L−1) | 2085±96 |
| Fe3+质量浓度/(mg∙L−1) | 3830±141 |
| Zn2+质量浓度/(mg∙L−1) | 361±13 |
| Mn2+质量浓度/(mg∙L−1) | 912±27 |
| Al3+质量浓度/(mg∙L−1) | 763±16 |
| Cu2+质量浓度/(mg∙L−1) | 0.62±0.03 |
| SO42−质量浓度/(mg∙L−1) | 32135±793 |
| COD质量浓度/(mg∙L−1) | 39.1±2.8 |
表1 云浮AMD的理化性质
Table 1 Physicochemical characteristics of the Yunfu AMD
| 指标 | 测定值 |
|---|---|
| pH | 2.23±0.03 |
| TOC质量浓度/(mg∙L−1) | 35.6±1.3 |
| Fe2+质量浓度/(mg∙L−1) | 2085±96 |
| Fe3+质量浓度/(mg∙L−1) | 3830±141 |
| Zn2+质量浓度/(mg∙L−1) | 361±13 |
| Mn2+质量浓度/(mg∙L−1) | 912±27 |
| Al3+质量浓度/(mg∙L−1) | 763±16 |
| Cu2+质量浓度/(mg∙L−1) | 0.62±0.03 |
| SO42−质量浓度/(mg∙L−1) | 32135±793 |
| COD质量浓度/(mg∙L−1) | 39.1±2.8 |
| 反应阶段 | pH | 质量浓度/(mg∙L−1) | |||||||
|---|---|---|---|---|---|---|---|---|---|
| SO42− | Fe2+ | Fe3+ | Zn2+ | Mn2+ | Al3+ | Cu2+ | COD | ||
| 0 | 2.23±0.03 | 32135±793 | 2085±96 | 3830±141 | 361±13 | 912±27 | 763±16 | 0.62±0.03 | 39.1±2.8 |
| M1 | 1.95±0.02 | 31773±467 | 49.2±4.0 | 4273±87 | 350±9.2 | 889±10 | 697±12 | 0.56±0.01 | - |
| M2 | 2.71±0.01 | 26900±504 | ND | 191±12 | 355±10 | 836±12 | 635±7.8 | 0.46±0.02 | - |
| M3 | 4.51±0.02 | 25251±230 | ND | 5.3±0.6 | 300±14 | 813±14 | 99.1±3.2 | 0.42±0.02 | - |
| M4 | 4.46±0.01 | 24965±308 | ND | ND | 120±6.8 | 779±15 | 32.7±2.4 | ND | - |
| S1 | 6.34±0.02 | 12644±406 | ND | ND | ND | 224±8.3 | ND | ND | - |
| S2 | 8.17±0.01 | 3903±95 | ND | ND | ND | 29.9±1.9 | ND | ND | 193±4.3 |
表2 各反应阶段中最终出水的理化性质分析结果
Table 2 Physicochemical properties of effluent in the different stages
| 反应阶段 | pH | 质量浓度/(mg∙L−1) | |||||||
|---|---|---|---|---|---|---|---|---|---|
| SO42− | Fe2+ | Fe3+ | Zn2+ | Mn2+ | Al3+ | Cu2+ | COD | ||
| 0 | 2.23±0.03 | 32135±793 | 2085±96 | 3830±141 | 361±13 | 912±27 | 763±16 | 0.62±0.03 | 39.1±2.8 |
| M1 | 1.95±0.02 | 31773±467 | 49.2±4.0 | 4273±87 | 350±9.2 | 889±10 | 697±12 | 0.56±0.01 | - |
| M2 | 2.71±0.01 | 26900±504 | ND | 191±12 | 355±10 | 836±12 | 635±7.8 | 0.46±0.02 | - |
| M3 | 4.51±0.02 | 25251±230 | ND | 5.3±0.6 | 300±14 | 813±14 | 99.1±3.2 | 0.42±0.02 | - |
| M4 | 4.46±0.01 | 24965±308 | ND | ND | 120±6.8 | 779±15 | 32.7±2.4 | ND | - |
| S1 | 6.34±0.02 | 12644±406 | ND | ND | ND | 224±8.3 | ND | ND | - |
| S2 | 8.17±0.01 | 3903±95 | ND | ND | ND | 29.9±1.9 | ND | ND | 193±4.3 |
| 反应阶段 | Fe | Mn | Zn | Cu | Al | K |
|---|---|---|---|---|---|---|
| M1 | 479±33.8 | 0.1±0 | 0.1±0 | ND | 0.6±0.1 | ND |
| M2 | 492±15.7 | 1.6±0 | 2.1±0 | ND | 2.8±0.1 | 16.1±0.6 |
| M3 | 207±17.3 | 2.8±0.1 | 2.6±0 | ND | 7.3±0.3 | 13.9±0 |
| M4 | 0.1±0 | 0.1±0 | 132±2.6 | 0.3±0 | 1.0±0 | 0.12±0.1 |
| S1 | 158±5.1 | 39.4±0.8 | 135±0.3 | ND | 6.7±0.1 | 3.6±0.2 |
| S2 | 166±3.4 | 21.6±0.1 | ND | ND | 1.8±0 | 6.9±0 |
表3 各反应阶段中沉淀的主要金属元素质量分数
Table 3 Concentration of the heavy metals in different stages of precipitate samples
| 反应阶段 | Fe | Mn | Zn | Cu | Al | K |
|---|---|---|---|---|---|---|
| M1 | 479±33.8 | 0.1±0 | 0.1±0 | ND | 0.6±0.1 | ND |
| M2 | 492±15.7 | 1.6±0 | 2.1±0 | ND | 2.8±0.1 | 16.1±0.6 |
| M3 | 207±17.3 | 2.8±0.1 | 2.6±0 | ND | 7.3±0.3 | 13.9±0 |
| M4 | 0.1±0 | 0.1±0 | 132±2.6 | 0.3±0 | 1.0±0 | 0.12±0.1 |
| S1 | 158±5.1 | 39.4±0.8 | 135±0.3 | ND | 6.7±0.1 | 3.6±0.2 |
| S2 | 166±3.4 | 21.6±0.1 | ND | ND | 1.8±0 | 6.9±0 |
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