FAN Wei, JIANG Yuexiao, LI Yin, LI Wei, CHEN Zhiyu, HU Cheng. 2021. Study on the Optimization of Groundwater Monitoring Network in Key Areas of Jianghan Plain in Hubei Province. Northwestern Geology, 54(3): 222-228. doi: 10.19751/j.cnki.61-1149/p.2021.03.019
Citation: FAN Wei, JIANG Yuexiao, LI Yin, LI Wei, CHEN Zhiyu, HU Cheng. 2021. Study on the Optimization of Groundwater Monitoring Network in Key Areas of Jianghan Plain in Hubei Province. Northwestern Geology, 54(3): 222-228. doi: 10.19751/j.cnki.61-1149/p.2021.03.019

Study on the Optimization of Groundwater Monitoring Network in Key Areas of Jianghan Plain in Hubei Province

  • This paper selects the groundwater system in some key areas of Jianghan plain for the study on the optimization of the groundwater monitoring network based on the classification of groundwater flow system in Hubei Province.The adopted groundwater dynamic type mapping method provides geological basis for the arrangement of groundwater monitoring wells from the hydrogeological perspective,while the Kriging interpolation method quantitatively evaluates the interpolation accuracy of the water level so as to evaluate the density of the monitoring network. 77 monitoring wells attached to the National Groundwater Monitoring Project (natural resources) are in the study area.According to the monitoring requirements,the authors select 1.3 as the deviation of the critical interpolation error,thereby adding 30 new monitoring wells after the optimization.The optimized monitoring network in the research area can help obtain the groundwater dynamic information more scientifically and comprehensively.
  • 余楚, 张翼龙, 孟瑞芳, 等. 河套平原浅层地下水动态监测网优化设计[J]. 吉林大学学报(地球科学版), 2015, 45(04):1173-1179.

    Google Scholar

    YU C, ZHANG Y L, MENG R F, et al. Optimization Design of the Shallow Groundwater Dynamic Monitoring Network in Hetao plain[J]. Journal of Jilin University(Earth Science Edition), 2015, 45(04):1173-1179.

    Google Scholar

    郭燕莎, 王劲峰, 殷秀兰. 地下水监测网优化方法研究综述[J]. 地理科学进展, 2011, 30(09):1159-1166.

    Google Scholar

    GUO Y S, WANG J F, YIN X L. Review of the Optimization Methods for Groundwater Monitoring Network[J]. Progress in Geography, 2011, 30(09):1159-1166.

    Google Scholar

    朱瑾, 霍传英, 姜越, 等. 乌鲁木齐河流域地下水水位监测网设计[J]. 水文地质工程地质, 2007, (02):8-14.

    Google Scholar

    ZHU J, HUO C Y, JIANG Y, et al. Monitoring of regional groundwater level in Urumqi River Basin[J]. Hydrogeology & Engineering Geology, 2007, (02):8-14.

    Google Scholar

    秦延军, 宋雷鸣, 刘梅侠, 等. 大庆油田西部地区地下水动态监测网优化设计[J]. 水文地质工程地质, 2001, (02):21-25.

    Google Scholar

    QIN Y J, SONG L M, LIU M X, et al. Optimization Design of the Shallow Groundwater Dynamic Monitoring Network in Western Area of Daqing Oilfield[J]. Hydrogeology & Engineering Geology, 2001, (02):21-25.

    Google Scholar

    王亚维. 贵阳市地下水位监测网优化分析[A]. 2018年西南5省、市、区第二次岩石力学与工程学术大会[C].贵阳, 2018.

    Google Scholar

    WANG Y W. Optimization Analysis of groundwater level Monitoring Network in Guiyang City[A]. The second Academic Conference on Rock Mechanics and Engineering of 5 Provinces, Cities and Districts in Southwest China in 2018[C]. Guiyang, 2018.

    Google Scholar

    刘治政. 黄水河流域平原区地下水监测网优化研究[D].泰安:山东农业大学, 2010.

    Google Scholar

    LIU ZZ. Study on Optimizing Groundwater Monitoring Network of Plain in Huang Shui River Basin[D]. Tai'an:Shandong Agricultural University, 2010.

    Google Scholar

    郑王琼. 雷州半岛地下水监测网络优化设计[J]. 安全与环境工程, 2017, 24(01):95-99.

    Google Scholar

    ZHEN W Q. Optimal Design of Groundwater Monitoring Network of Leizhou Peninsula[J]. Safety and Environmental Engineering, 2017, 24(01):95-99.

    Google Scholar

    王力坚, 鱼晓利, 曹新艾, 等. 陕西省地下水动态监测井网优化试验研究[J]. 地下水, 2000, (02):47-49.

    Google Scholar

    WANG L J, YU X L, CAO X A, et al. Experimental study on groundwater dynamic monitoring well pattern optimization in Shaanxi Province[J]. Ground Water, 2000, (02):47-49.

    Google Scholar

    张俊, 尹立河, 侯光才, 等. 区域地下水流理论最新进展——区域地下水流理论、应用与发展国际研讨会综述[J]. 西北地质, 2014, 47(03):200-204.

    Google Scholar

    ZHANG J, YIN L H, HOU G C, et al. A Recent Review of Regional Groundwater Flow Theory-International Symposium on Regional Groundwater Flow Theory, Applications and Future Development[J]. Northwestern Geology, 2014, 47(03):200-204.

    Google Scholar

    周仰效, 李文鹏. 区域地下水位监测网优化设计方法[J]. 水文地质工程地质, 2007, (01):1-9.

    Google Scholar

    ZHOU Y X, LI W P. Design of regional groundwater level monitoring networks[J]. Hydrogeology & Engineering Geology, 2007, (01):1-9.

    Google Scholar

    李阳, 周金龙, 徐东. 我国地下水动态监测网优化布设方法研究综述[J]. 地下水, 2015, 37(02):64-65.

    Google Scholar

    LI Y, ZHOU J L, XU D. A review on the optimal layout of groundwater dynamic monitoring network in China[J]. Ground Water, 2015, 37(02):64-65.

    Google Scholar

    董殿伟, 林沛, 晏婴, 等. 北京平原地下水水位监测网优化[J]. 水文地质工程地质, 2007, (01):10-19.

    Google Scholar

    DONG D W, LIN P, YAN Y, et al. Optimum design of groundwater level monitoring network of Beijing Plain[J]. Hydrogeology & Engineering Geology, 2007, (01):10-19.

    Google Scholar

    王浩, 段磊, 王文科. 秦岭北麓地下水位动态特征与影响因素[J]. 西北地质, 2020, 53(02):280-288.

    Google Scholar

    WANG H, DUAN L, WANG W K. Dynamic Features of Groundwater Level in Northern Qinling and Its Influence Factors[J]. Northwestern Geology, 2020, 53(02):280-288.

    Google Scholar

    刘徽, 邓少平, 孙康. 江汉平原地下水位监测网优化设计[J]. 资源环境与工程, 2014, 28(05):692-696.

    Google Scholar

    LIU H, DEGN S P, SUN K. Optimum Design of Ground-water Level Monitoring Network in Jianghan Basin[J]. Resources Environment & Engineering, 2014, 28(05):692-696.

    Google Scholar

  • Related articles

    [1] FAN Wei,  JIANG Yuexiao,  LI Yin,  LI Wei,  CHEN Zhiyu,  HU Cheng. Study on the Optimization of Groundwater Monitoring Network in Key Areas of Jianghan Plain in Hubei Province. Northwestern Geology, 2021, 54(3): 222-222. doi: 10.19751/j.cnki.61-1149/p.2021.03.019
    [2] LUO Jie,  WANG Wenke,  DUAN Lei,  LI Ying,  ZHANG Zaiyong. Dynamic Analysis of Groundwater Level in Yinchuan Plain. Northwestern Geology, 2020, 53(1): 195-195. doi: 10.19751/j.cnki.61-1149/p.2020.01.018
    [3] QIANG Jian-hua. Study of Remote Sensing Monitoring Concerning Geological Environment of Major Metallogenic Belt and Mining Concentrations in Shaanxi Province. Northwestern Geology, 2013, 46(3): 203-203.
    [4] ZHANG Kun, MA Shi-bin, LIU Li-ping. Study of Remote Sensing Monitoring Concerning Geological Environment of Major Metallogenic Belt and Mining Concentrations in the Northern Qinghai Province. Northwestern Geology, 2012, 45(1): 283-283.
    [5] LI Jian, WANG Hui, WEI Li-qiong. Isotopic and Hydrochemical Characteristics of Groundwater in the Golmud River Basin. Northwestern Geology, 2007, 40(4): 94-94.
    [6] YANG Lizhi, WANG Xueqiong, LIU Chunhua. Researchon the Causality between Geological Environment Degenerating and Groundwater Sustainable Exploitation in the Yellow River Downriver Plain. Northwestern Geology, 2015, 48(4): 226-226.
    [7] YANG Chi,  TAO Fuping,  YUAN Xudong. Analysis of Groundwater Dynamic Characteristics in Major Basin Areas of Shaanxi Province. Northwestern Geology, 2022, 55(3): 345-345. doi: 10.19751/j.cnki.61-1149/p.2022.03.029
    [8] ZENG Qingming,  GU Xiaofan,  YANG Bingchao,  DANG Xueya,  JIANG Jun,  YOU Xiangzhi. The Quaternary Groundwater Quality Evaluation of Delingha Basin in Qinghai Province. Northwestern Geology, 2021, 54(2): 239-239. doi: 10.19751/j.cnki.61-1149/p.2021.02.021
  • 1.  陈胜林,潘立文,蔡足根,张海军. 湖北省地下水资源开发利用与经济可持续发展探讨. 地下水. 2024(05): 112-114+130 .
    2.  王丽娟,陶建华,胡学娟. 宿州市城西水源地地下水监测网优化. 辽东学院学报(自然科学版). 2024(02): 99-104 .
    3.  许海红,王宝文,周俊林,姜亭,韩小锋,赵飞,袁炳强,马杰. 基于逐级迭代插值的重力数据扩边方法研究. 西北地质. 2023(02): 306-321 .

    Other cited types(3)

  • Created with Highcharts 5.0.7Amount of accessChart context menuAbstract Views, PDF Downloads StatisticsAbstract ViewsPDF Downloads2024-042024-052024-062024-072024-082024-092024-102024-112024-122025-012025-022025-0300.250.50.7511.25Highcharts.com
    Created with Highcharts 5.0.7Chart context menuAccess Class DistributionDOWNLOAD: 4.3 %DOWNLOAD: 4.3 %META: 95.7 %META: 95.7 %DOWNLOADMETAHighcharts.com
    Created with Highcharts 5.0.7Chart context menuAccess Area Distribution其他: 12.5 %其他: 12.5 %Aurora: 0.6 %Aurora: 0.6 %Beijing: 0.6 %Beijing: 0.6 %Busanjin-gu: 0.8 %Busanjin-gu: 0.8 %Haidian: 12.5 %Haidian: 12.5 %Mountain View: 4.0 %Mountain View: 4.0 %Mumbai: 0.4 %Mumbai: 0.4 %Phoenix: 0.4 %Phoenix: 0.4 %Singapore: 0.2 %Singapore: 0.2 %Tehran: 0.6 %Tehran: 0.6 %Xining: 0.2 %Xining: 0.2 %Yuseong-gu: 1.3 %Yuseong-gu: 1.3 %[]: 0.8 %[]: 0.8 %上海: 0.8 %上海: 0.8 %东莞: 4.0 %东莞: 4.0 %北京: 3.5 %北京: 3.5 %南京: 0.8 %南京: 0.8 %南宁: 0.8 %南宁: 0.8 %南平: 0.2 %南平: 0.2 %台州: 0.8 %台州: 0.8 %合肥: 0.8 %合肥: 0.8 %哥伦布: 0.4 %哥伦布: 0.4 %嘉兴: 0.2 %嘉兴: 0.2 %天津: 2.3 %天津: 2.3 %太原: 1.0 %太原: 1.0 %安康: 0.8 %安康: 0.8 %宣城: 0.4 %宣城: 0.4 %广州: 0.2 %广州: 0.2 %张家口: 1.7 %张家口: 1.7 %扬州: 1.3 %扬州: 1.3 %杭州: 0.6 %杭州: 0.6 %武汉: 2.1 %武汉: 2.1 %池州: 0.2 %池州: 0.2 %洛阳: 0.4 %洛阳: 0.4 %温州: 0.6 %温州: 0.6 %湖州: 0.4 %湖州: 0.4 %漯河: 2.7 %漯河: 2.7 %石家庄: 0.6 %石家庄: 0.6 %芒廷维尤: 21.5 %芒廷维尤: 21.5 %芝加哥: 0.8 %芝加哥: 0.8 %莫斯科: 3.1 %莫斯科: 3.1 %衢州: 0.2 %衢州: 0.2 %西宁: 6.9 %西宁: 6.9 %西安: 1.0 %西安: 1.0 %运城: 0.4 %运城: 0.4 %郑州: 0.2 %郑州: 0.2 %长沙: 1.7 %长沙: 1.7 %青岛: 1.0 %青岛: 1.0 %其他AuroraBeijingBusanjin-guHaidianMountain ViewMumbaiPhoenixSingaporeTehranXiningYuseong-gu[]上海东莞北京南京南宁南平台州合肥哥伦布嘉兴天津太原安康宣城广州张家口扬州杭州武汉池州洛阳温州湖州漯河石家庄芒廷维尤芝加哥莫斯科衢州西宁西安运城郑州长沙青岛Highcharts.com
通讯作者: 陈斌, bchen63@163.com
  • 1. 

    沈阳化工大学材料科学与工程学院 沈阳 110142

  1. 本站搜索
  2. 百度学术搜索
  3. 万方数据库搜索
  4. CNKI搜索

Article Metrics

Article views(742) PDF downloads(68) Cited by(6)

Access History

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint