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    保定平原地下水均衡要素变化解析

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    井江楠, 王文科, 段磊, 马嘉骏, 马稚桐, 石涵月. 保定平原地下水均衡要素变化解析[J]. 水文地质工程地质, 2023, 50(4): 115-126. doi: 10.16030/j.cnki.issn.1000-3665.202208083
    引用本文: 井江楠, 王文科, 段磊, 马嘉骏, 马稚桐, 石涵月. 保定平原地下水均衡要素变化解析[J]. 水文地质工程地质, 2023, 50(4): 115-126. doi: 10.16030/j.cnki.issn.1000-3665.202208083
    JING Jiangnan, WANG Wenke, DUAN Lei, MA Jiajun, MA Zhitong, SHI Hanyue. An analysis of the changes in groundwater balance elements of the Baoding Plain[J]. Hydrogeology & Engineering Geology, 2023, 50(4): 115-126. doi: 10.16030/j.cnki.issn.1000-3665.202208083
    Citation: JING Jiangnan, WANG Wenke, DUAN Lei, MA Jiajun, MA Zhitong, SHI Hanyue. An analysis of the changes in groundwater balance elements of the Baoding Plain[J]. Hydrogeology & Engineering Geology, 2023, 50(4): 115-126. doi: 10.16030/j.cnki.issn.1000-3665.202208083

    保定平原地下水均衡要素变化解析

    • 基金项目: 国家重点研发计划项目(2018YFC0406504);国家自然科学重点基金项目(42130710)
    详细信息
      作者简介: 井江楠(1998-),女,硕士研究生,主要从事旱区地下水文过程与生态效应研究。E-mail: 2020129007@chd.edu.cn
      通讯作者: 王文科(1962-),男,博士,教授,博士生导师,主要从事旱区地下水文过程与生态效应研究。E-mail: wenkew@chd.edu.cn
    • 中图分类号: P641.8

    An analysis of the changes in groundwater balance elements of the Baoding Plain

    More Information
      Corresponding author: WANG Wenke,  wenkew@chd.edu.cn
      摘要
    • 随着南水北调工程的实施及地下水压采工作的落实,华北平原局部地下水位逐步回升,然而地下水均衡要素变化趋势及其对生态环境的影响缺乏系统研究。以华北平原典型区域南水北调受水区保定平原为例,采用水均衡法计算地下水补给项和排泄项,应用因子分析法分析1975—2019年地下水均衡要素变化的原因,根据最优开采系数法计算地下水可采资源量和压采资源量,为研究区地下水资源的开发利用与调控奠定基础。结果表明:近40 a来,保定平原地下水补给量小于排泄量,总体呈负均衡状态,主要发生变化的地下水均衡要素有渠灌入渗、渠系渗漏、井灌回归、河道渗漏、降水入渗和人工开采;人类活动是影响地下水均衡要素变化的主要原因,其贡献率为77.20%;2011—2019年地下水储水量逐渐增多,此时地下水水位埋深增加速率减小、地下水水位降落漏斗面积逐渐减小、白洋淀湿地面积逐步恢复;保定平原地下水资源的最优开采系数为0.64,地下水可开采资源量和压采量的范围分别为8.89×108 ~11.35×108 m3/a和2.68×108~5.14×108 m3/a。研究成果可为相似地区地下水资源和生态环境可持续发展提供科学依据。

      • 保定平原  / 
      • 地下水均衡要素  / 
      • 变化特征  / 
      • 驱动力  / 
      • 开采系数
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    • 图 1  研究区水文地质分区及河流水系图

      Figure 1. 

      下载: 全尺寸图片 幻灯片

      图 2  典型剖面岩性变化图

      Figure 2. 

      下载: 全尺寸图片 幻灯片

      图 3  保定平原1975—1985年地下水水位埋深变化

      Figure 3. 

      下载: 全尺寸图片 幻灯片

      图 4  保定平原1975、2006、2011、2019年地下水水位埋深空间变化

      Figure 4. 

      下载: 全尺寸图片 幻灯片

      图 5  白洋淀湖泊湿地面积和湖水位变化

      Figure 5. 

      下载: 全尺寸图片 幻灯片

      图 6  1980—2019年研究区内渠首引水量变化

      Figure 6. 

      下载: 全尺寸图片 幻灯片

      图 7  1975—2019年研究区内不同水文站径流量变化

      Figure 7. 

      下载: 全尺寸图片 幻灯片

      图 8  研究区内耕地面积变化和节水灌溉面积变化

      Figure 8. 

      下载: 全尺寸图片 幻灯片

      图 9  1975—2019年研究区内农业灌溉地下水开采量变化

      Figure 9. 

      下载: 全尺寸图片 幻灯片

      图 10  1975—2019年研究区降水量变化

      Figure 10. 

      下载: 全尺寸图片 幻灯片

      图 11  研究区内各行政区地下水压采范围

      Figure 11. 

      下载: 全尺寸图片 幻灯片

      表 1  研究区浅层地下水均衡要素及其占比

      Table 1.  Shallow groundwater balance elements and percentage in the study area

      均衡要素 1975年 1985年 2006年 2011年 2019年
      数量
      /(108 m3
      占比
      /%
      数量
      /(108 m3
      占比
      /%
      数量
      /(108 m3
      占比
      /%
      数量
      /(108 m3
      占比
      /%
      数量
      /(108 m3
      占比
      /%
      补给项 降水入渗 14.66 72.87 16.95 78.69 9.13 67.35 13.56 69.96 10.83 76.33
      井灌回归 2.49 12.38 2.06 9.56 1.66 12.22 1.59 8.22 0.47 3.31
      渠灌入渗 0.18 0.89 0.15 0.70 0.22 1.62 0.10 0.49 0.02 0.14
      渠系渗漏 0.46 2.29 0.39 1.81 0.55 4.03 0.26 1.32 0.05 0.35
      河道渗漏 0.57 2.83 0.45 2.09 0.42 3.10 1.79 9.26 0.50 3.52
      白洋淀渗漏 0.22 1.09 0.00 0.00 0.04 0.31 0.01 0.06 0.25 1.76
      侧向流入 1.54 7.65 1.54 7.15 1.54 11.37 2.07 10.69 2.07 14.59
      合计 20.12 100 21.54 100 13.56 100 19.38 100 14.19 100
      排泄项 侧向流出 0.35 1.65 0.35 1.28 1.61 5.13 1.35 5.18 1.35 8.78
      人工开采 20.70 97.36 27.10 98.02 29.74 94.87 24.71 94.82 14.03 91.22
      潜水蒸发 0.21 0.99 0.19 0.70
      合计 21.26 100 27.65 100 31.35 100 26.06 100 15.38 100
      地下水储存量的
      变化量
      −1.14 −6.11 −17.79 −6.68 −1.19
        注:表中空白表示未测,其余表中空白同此解释。
      下载: 导出CSV

      表 2  研究区浅层地下水均衡要素变化

      Table 2.  Changes of groundwater balance elements of the shallow groundwater in the study area

      均衡要素 变幅/%
      1975—1985 1985—2006 2006—2011 2011—2019


      降水入渗 15.62 −46.14 48.53 −20.14
      井灌回归 −17.27 −19.54 −3.86 −70.50
      渠灌入渗 −16.67 46.67 −56.73 −78.99
      渠系渗漏 −15.22 40.00 −53.21 −80.43
      河道渗漏 −21.05 −6.67 327.34 −72.14
      白洋淀
      渗漏
      −100.00 −72.00 2000.84
      侧向流入 0.00 0.13 34.36 −0.09


      侧向流出 1.29 353.99 −16.06 −0.07
      人工开采 30.92 9.74 −16.91 −43.22
      潜水蒸发 −7.90 −100.00
      下载: 导出CSV

      表 3  补给项主要驱动因子特征

      Table 3.  Initial eigenvalue, contribution rate and cumulative contribution rate of the main driving factors of recharge items

      成分 初始特征值 贡献率/% 累积贡献率/%
      成分1 3.818 54.54 54.54
      成分2 1.587 22.66 77.20
      成分3 1.162 16.60 93.80
      下载: 导出CSV

      表 4  补给项主要驱动因子载荷矩阵

      Table 4.  Load matrix of the main driving factors of recharge items

      均衡要素 成分1 成分2 成分3
      降水入渗 0.348 −0.064 0.935
      井灌回归 0.906 −0.011 0.295
      渠灌入渗 0.957 0.063 −0.309
      渠系渗漏 0.957 0.068 −0.277
      河道渗漏 −0.131 0.940 −0.039
      白洋淀渗漏 −0.448 −0.751 −0.127
      侧向流入 −0.919 0.355 0.105
      下载: 导出CSV
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