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武夷山国家公园水化学时空分布特征及控制因素

叶宏萌 甘娟 李国平 胡家朋 苏丽鳗 伍进平 王胜艳

叶宏萌,甘娟,李国平,等. 武夷山国家公园水化学时空分布特征及控制因素 [J]. 福建农业学报,2022,37(10):1362−1370 doi: 10.19303/j.issn.1008-0384.2022.010.016
引用本文: 叶宏萌,甘娟,李国平,等. 武夷山国家公园水化学时空分布特征及控制因素 [J]. 福建农业学报,2022,37(10):1362−1370 doi: 10.19303/j.issn.1008-0384.2022.010.016
YE H M, GAN J, LI G P, et al. Temporal and Spatial Distributions and Controlling Factors of Hydrochemistry at Wuyishan National Park Water Body [J]. Fujian Journal of Agricultural Sciences,2022,37(10):1362−1370 doi: 10.19303/j.issn.1008-0384.2022.010.016
Citation: YE H M, GAN J, LI G P, et al. Temporal and Spatial Distributions and Controlling Factors of Hydrochemistry at Wuyishan National Park Water Body [J]. Fujian Journal of Agricultural Sciences,2022,37(10):1362−1370 doi: 10.19303/j.issn.1008-0384.2022.010.016

武夷山国家公园水化学时空分布特征及控制因素

doi: 10.19303/j.issn.1008-0384.2022.010.016
基金项目: 中国博士后科学基金项目(2019M661874);福建省自然科学基金项目(2020J05218);南平市科技项目(2022ZXHZ002);大学生创新训练计划项目(202010397014)
详细信息
    作者简介:

    叶宏萌(1984−),女,博士,副教授,主要从事流域环境保护和环境地球化学研究(E-mail:hongmengye@sina.com

    通讯作者:

    李国平(1966−),男,博士,教授,主要从事植物多样性保护与利用研究(E-mail:ptlgp@126.com

  • 中图分类号: X 53

Temporal and Spatial Distributions and Controlling Factors of Hydrochemistry at Wuyishan National Park Water Body

  • 摘要:   目的  分析武夷山国家公园九曲溪水体主要阴、阳离子的含量变化,揭示该区域地表水水化学时空分布特征、作用机制和岩性控制类型。  方法  采集不同水文期及河流段的30份地表水样品,测试主要化学离子组分含量,利用吉布斯图、三角图和端元图进行水化学的作用机制和岩性类型分析,并以主成因分析和模型计算量化水化学物质的来源贡献。  结果  九曲溪水体呈弱酸性,总溶解固体(TDS)的平均值为25.30 mg·L−1(远低于世界河流的平均值100.00 mg·L−1),主要阳离子含量的大小顺序为Ca2+>Na+>K+>Mg2+,主要阴离子含量${\rm{HCO}}_3^- $>Cl${\rm{NO}}_3^- $${\rm{SO}}_4^{2-}$。不同水文期对比而言,该流域水体TDS及大多数主要离子浓度呈现出枯水期>平水期>丰水期;不同河流段对比,TDS及主要离子浓度从上游到下游整体呈现上升趋势。  结论  武夷山国家公园九曲溪水化学类型为${\rm{HCO}}_3^- $-Ca2++Na+型,作用机制以岩石风化为主,一定程度受大气降水和人为活动的影响。其中,岩石风化对上游河段的水化学组成影响小于中下游;大气降水对丰水期的水化学作用大于其他水文期。同时,研究区水化学的岩性控制类型以碳酸岩和硅酸岩的风化作用为主,两者对水化学物质的贡献率为58.82%。
  • 图  1  武夷山国家公园水体采样点分布

    Figure  1.  Water sampling points at Wuyishan National Park

    图  2  九曲溪水化学的时空分布特征

    Figure  2.  Spatial and temporal distributions of Jiuquxi hydrochemistry

    图  3  九曲溪水化学的Gibbs分布

    Figure  3.  Gibbs distribution of Jiuquxi hydrochemistry

    图  4  九曲溪水化学离子三角图

    Figure  4.  Trigonometric diagram on ions of Jiuquxi River water

    图  5  九曲溪水化学岩性端元图

    Figure  5.  End member diagram of Jiuquxi hydrochemistry and lithology

    表  1  九曲溪水化学主要离子组成

    Table  1.   Composition of major ions in Jiuquxi River water (单位:mg·L−1

    特征值
    Characteristic value
    pHTDSCa2+Mg2+Na+K+$\mathrm{HCO}_3^{-} $$ \mathrm{NO}_3^{-}$$\mathrm{SO}_4^{2-} $Cl
    最小值 Min.5.4215.000.700.080.450.376.100.710.601.26
    平均值 Avg.5.9225.301.660.351.160.6913.411.891.291.93
    最大值 Max.6.7141.004.051.262.591.3526.154.773.043.20
    标准差 SD0.347.230.890.290.460.274.660.950.550.54
    变异系数 CV/%5.7228.5753.9082.2839.2439.0134.7650.1442.3927.97
    下载: 导出CSV

    表  2  九曲溪水化学主成分分析的因子载荷

    Table  2.   Component loadings of principal components Jiuquxi hydrochemistry

    变量
    Variate
    因子1
    Factor 1
    因子2
    Factor 2
    因子3
    Factor 3
    公共性方差
    Publicity of variance
    Ca2+0.3860.4480.7740.912
    K+0.0840.3880.9020.958
    Mg2+0.3120.7760.4230.847
    Na+0.1040.8540.3720.876
    Si−0.1910.9230.1260.854
    $\mathrm{HCO}_3^{-} $0.8520.4070.1000.897
    Cl0.901−0.1440.2420.883
    $\mathrm{NO}_3^{-} $0.3070.5840.6090.764
    $\mathrm{SO}_4^{2-} $0.3800.5740.7290.963
    下载: 导出CSV

    表  3  九曲溪与其他流域水化学物质来源的比较

    Table  3.   Comparison on hydrochemistry of Jiuquxi River and rivers at other basins        (单位:%)

    来源
    Source
    碳酸岩
    Carbonatite
    硅酸岩
    Silicate
    蒸发岩
    Evaporite
    大气CO2
    Atmospheric
    CO2
    其他因素
    Other
    factors
    九曲溪
    Jiuquxi
    32.0726.7514.8522.763.58
    赣南
    Gannan[20]
    42.806.6029.2021.400.00
    韩江
    Hanjiang[10]
    27.7010.5033.4020.208.20
    长江
    Yangtze River[32]
    46.9012.9013.1019.602.65
    世界
    Rivers of the
    World[32]
    35.0015.0011.0037.002.00
    下载: 导出CSV
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  • 收稿日期:  2021-10-31
  • 修回日期:  2022-06-13
  • 网络出版日期:  2022-10-21
  • 刊出日期:  2022-10-30

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