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自然和人类活动影响下山西岩溶大泉流量和水质演变特征

张钰 赵一 申豪勇 梁永平 付雅君 王慧平 王志恒 赵春红 王建刚 谢浩 任坤 桌琳杨

张 钰,赵 一,申豪勇,等. 自然和人类活动影响下山西岩溶大泉流量和水质演变特征[J]. 中国岩溶,2026,45(0):1-15 doi: 10.11932/karst2026y027
引用本文: 张 钰,赵 一,申豪勇,等. 自然和人类活动影响下山西岩溶大泉流量和水质演变特征[J]. 中国岩溶,2026,45(0):1-15 doi: 10.11932/karst2026y027
ZHANG Yu, ZHAO Yi, SHEN Haoyong, LIANG Yongping, FU Yajun, WANG Huiping, WANG Zhiheng, ZHAO Chunhong, WANG Jiangang, XIE Hao, REN Kun, ZHUO Linyang. Evolutionary Characteristics of Discharge and Water Quality of Karst Springs in Shanxi under the Influence of Natural and Human Activitie[J]. CARSOLOGICA SINICA. doi: 10.11932/karst2026y027
Citation: ZHANG Yu, ZHAO Yi, SHEN Haoyong, LIANG Yongping, FU Yajun, WANG Huiping, WANG Zhiheng, ZHAO Chunhong, WANG Jiangang, XIE Hao, REN Kun, ZHUO Linyang. Evolutionary Characteristics of Discharge and Water Quality of Karst Springs in Shanxi under the Influence of Natural and Human Activitie[J]. CARSOLOGICA SINICA. doi: 10.11932/karst2026y027

自然和人类活动影响下山西岩溶大泉流量和水质演变特征

doi: 10.11932/karst2026y027
基金项目: 广西自然科学基金项目(2025GXNSFAA069753);国家自然科学基金项目(42372299);国家重点研发计划(2024YFC3713100);中国地质调查项目(DD20230500305,DD202605101703);中国地质科学院岩溶地质研究所基本科研业务费项目(2023003,2023018)。
详细信息
    作者简介:

    张钰(1980─),女,工程师,硕士,研究方向为水文与水资源。E-mail:zyu80119@sina.com

    通讯作者:

    赵一(1989─),男,副研究员,硕士,研究方向为地下水科学与工程。E-mail:767337467@qq.com

Evolutionary Characteristics of Discharge and Water Quality of Karst Springs in Shanxi under the Influence of Natural and Human Activitie

  • 摘要: 山西岩溶大泉不仅是我国北方地区重要的水资源载体,更是区域生态环境健康的指示器,掌握山西岩溶大泉流量与水质演变特征与驱动因素,对于北方岩溶大泉的保护和管理具有重要意义。本文以山西19处岩溶大泉为研究对象,定量解析了自然因素和人类活动对岩溶大泉流量衰减的贡献率,并探讨了岩溶大泉水质演变的地球化学机制。结果表明:山西岩溶大泉总流量呈阶段性衰减趋势,驱动因素由自然因素绝对主导逐渐转变为人类活动绝对主导。近40年山西岩溶大泉水质的演变趋势是Fe、Mn、Pb、F和NH$_4^{+}$污染状况有所改善,而${\rm{SO}}_4^{2-}$、总硬度(TH)和总溶解固体(TDS)含量显著升高。采空区煤系地层中黄铁矿氧化产生的矿坑水或酸性煤矿“老窑水”,进而中和溶解奥陶系灰岩,是导致岩溶大泉${\rm{SO}}_4^{2-}$、TH和TDS含量显著升高的主导地球化学过程。

     

  • 图  1  山西岩溶大泉分布图

    Figure  1.  Distribution map of major karst springs in Shanxi Province

    图  2  东部太行山东麓岩溶大泉流量动态曲线

    Figure  2.  Dynamic curves of discharge for major karst springs at the eastern foot of the Taihang Mountains

    图  3  中部盆地边缘岩溶大泉流量动态曲线

    Figure  3.  Dynamic curves of discharge for major karst springs at the margins of central basins

    图  4  西部吕梁山西侧黄河沿岸岩溶大泉流量动态曲线

    Figure  4.  Dynamic curves of discharge for major karst springs along the Yellow River on the western side of the Lvliang Mountains

    图  5  山西岩溶大泉总流量动态曲线

    Figure  5.  Dynamic curves of total discharge for major karst springs in Shanxi Province

    图  6  岩溶大泉降水-流量的双累积曲线图

    Figure  6.  Double-mass curve of precipitation and discharge for major karst springs

    图  7  岩溶大泉降水量、总流量、地下水开采量和煤矿开采量动态变化图

    Figure  7.  Dynamic variations of precipitation, total discharge, groundwater abstraction, and coal production for major karst springs

    图  8  典型岩溶大泉${\rm{SO}}_4^{2-}$、TH和TDS含量的变化图

    Figure  8.  Variation curves of ${\rm{SO}}_4^{2-}$, TH and TDS concentrations in typical karst springs

    表  1  不同阶段岩溶大泉流量衰减归因分析表

    Table  1.   Attribution analysis of karst spring discharge attenuation in different stages

    阶段 时段/年 降雨量/ mm 岩溶大泉总流量/
    (m3∙s−1)
    总流量衰减量/
    (m3∙s−1)
    气候贡献
    率/%
    人类活动贡
    献率/%
    主导因素
    I 1956—1960 560.63 78.72 自然因素绝对主导
    II 1961—1980 525.21 71.57 −7.15 69.5% 30.5% 自然因素主导
    III 1981—2000 484.99 49.64 −29.08 36.5% 63.5% 人类活动主导
    IV 2001—2024 523.01 34.50 −44.22 12.0% 88.0% 人类活动绝对主导
    下载: 导出CSV

    表  2  山西岩溶大泉不同时期水质(TDS, TH)和超标项对比表 (单位:mg∙L−1)

    Table  2.   Comparison of water quality (TDS, TH) and non-compliant parameters of major karst springs in different periods (Units: mg∙L−1)

    泉域代表样1986—1987年2000—2005年2020—2025年
    TDSTH超标项TDSTH超标项TDSTH超标项
    娘子关泉域五龙泉571.18421.63Mn、Pb646.00456.00TH814.62505.90${\rm{SO}}_4^{2-}$、TH
    辛安泉域南流泉384.93319.41Fe、Pb429.00213.00431.73281.02
    延河泉域延河泉401.69326.46Fe646.00388.00649.75404.46
    三姑泉域郭壁泉309.81273.40Pb399.00301.00572.22357.97
    坪上泉域水泉湾泉221.66189.24332.00202.00362.15228.94
    水神堂泉域水神堂泉293.44238.29319.00243.00381.42162.98
    城头会泉域大沙湖泉225.74184.32Fe246.00194.00NH$_4^{+}$414.76264.41
    神头泉域神头泉349.78252.49294.00243.00455.11262.70
    马圈泉域马圈泉356.65293.38435.00270.00428.77344.07
    雷鸣寺泉域雷鸣寺泉316.00231.23389.00246.00385.50249.95
    兰村泉域兰村水源地井279.01248.31Pb446.00248.00468.12267.23
    晋祠泉域难老泉598.19443.63${\rm{SO}}_4^{2-}$、Pb937.00588.00TH、${\rm{SO}}_4^{2-}$992.12709.45${\rm{SO}}_4^{2-}$、TH、TDS
    洪山泉域泉口附近岩溶井562.77438.56Pb646.00416.00700.61475.44${\rm{SO}}_4^{2-}$、TH
    郭庄泉域郭庄泉598.66450.58TH689.00463.00TH、${\rm{SO}}_4^{2-}$754.62508.07${\rm{SO}}_4^{2-}$、TH
    龙子祠泉域龙子祠泉709.99538.76TH、${\rm{SO}}_4^{2-}$、Pb779.00540.00TH、${\rm{SO}}_4^{2-}$899.95592.68${\rm{SO}}_4^{2-}$、TH
    霍泉泉域霍泉438.36367.54Pb458.00321.00487.43319.32
    古堆泉域泉口附近岩溶井790.27435.54${\rm{SO}}_4^{2-}$、F、Pb787.00427.00${\rm{SO}}_4^{2-}$、F634.12273.39
    柳林泉域上青龙泉449.35295.99Fe、Pb451.00265.00603.32294.53
    天桥泉域铁匠铺水源地井395.79282.07Pb342.00254.00Pb426.20229.88
    下载: 导出CSV

    表  3  山西岩溶大泉主要超标项主要来源及形成机制

    Table  3.   Primary sources and formation mechanisms of non-compliant parameters in major karst springs of Shanxi

    超标项 主要来源 形成机制
    ${\rm{SO}}_4^{2-}$ 自然地质背景(石膏)、矿坑水、煤矿“老窑水”、煤矸石、工业
    污染
    ①某些泉域奥陶系地层含石膏夹层,天然溶解产生大量${\rm{SO}}_4^{2-}$。
    ②黄铁矿氧化形成硫酸,不仅直接输入${\rm{SO}}_4^{2-}$,还溶蚀石膏。
    ③煤矸石在地表经雨水淋滤,形成富含${\rm{SO}}_4^{2-}$的酸性渗滤液入渗。
    ④SO2气体溶解于雨水通过入渗补给岩溶地下水。
    TH 自然地质背景(碳酸盐岩、石膏)、矿坑水、煤矿“老窑水” ①碳酸盐岩的溶解。
    ②矿坑水或酸性“老窑水”与碳酸盐岩发生中和反应,释放大量 Ca2+、Mg2+
    ③石膏的溶解产生大量Ca2+
    TDS 自然地质背景、矿坑水、煤矿
    “老窑水”、生活污染、工业污染、农业污染
    ①黄铁矿氧化形成硫酸,溶解大量矿物。
    ②矿坑排水导致区域水位下降,引发上覆高矿化度裂隙水倒灌。
    ③水岩作用时间延长导致离子富集。
    ④其他污染源的输入
    Fe、Mn、Pb 煤矸石、矿坑水、煤矿“老窑水”、工业污染 ①煤矸石在地表经雨水淋滤,形成富含Fe、Mn和Pb的酸性渗滤液入渗。
    ②煤层采空区围岩在酸性或氧化还原环境下含Fe、Mn和Pb矿物的溶解。
    ③工矿企业(冶炼)的废水废气沉降输入。
    F 自然地质背景(含氟矿物)、工业污染 ①干旱区强蒸发浓缩及含氟矿物溶解。
    ②工矿污水渗漏以及废气沉降经降水入渗。
    NH$_4^{+}$ 农业污染、工业污染、生活
    污染
    ①农业氮肥的施用
    ②工矿废水的输入污染
    ③农村生活污水及垃圾渗滤液的输入污染。
    下载: 导出CSV
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