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某落底式止水帷幕基坑的群井连通试验研究

陈律 危正平 胡磊 程凯 汪紫璇

陈律, 危正平, 胡磊, 程凯, 汪紫璇. 某落底式止水帷幕基坑的群井连通试验研究[J]. 岩土工程技术, 2026, 40(3): 423-429. doi: 10.20265/j.cnki.issn.1007-2993.2025-0118
引用本文: 陈律, 危正平, 胡磊, 程凯, 汪紫璇. 某落底式止水帷幕基坑的群井连通试验研究[J]. 岩土工程技术, 2026, 40(3): 423-429. doi: 10.20265/j.cnki.issn.1007-2993.2025-0118
CHEN Lü, WEI Zhengping, HU Lei, CHENG kai, WANG Zixuan. Experimental study on well group connectivity test of a foundation pit with aquifer-penetrating cut-off wall[J]. GEOTECHNICAL ENGINEERING TECHNIQUE, 2026, 40(3): 423-429. doi: 10.20265/j.cnki.issn.1007-2993.2025-0118
Citation: CHEN Lü, WEI Zhengping, HU Lei, CHENG kai, WANG Zixuan. Experimental study on well group connectivity test of a foundation pit with aquifer-penetrating cut-off wall[J]. GEOTECHNICAL ENGINEERING TECHNIQUE, 2026, 40(3): 423-429. doi: 10.20265/j.cnki.issn.1007-2993.2025-0118

某落底式止水帷幕基坑的群井连通试验研究

doi: 10.20265/j.cnki.issn.1007-2993.2025-0118
基金项目: 武汉市2023年度市城建局科技项目(202361);湖北省建设科技计划项目(2023117)
详细信息
    作者简介:

    陈 律,男,1987年生,硕士,高级工程师,主要从事岩土工程勘察、设计、咨询等工作。E-mail:277679311@qq.com

  • 中图分类号: TU473

Experimental study on well group connectivity test of a foundation pit with aquifer-penetrating cut-off wall

  • 摘要: 高承压水地区的深基坑工程通常采用落底式止水帷幕隔渗,以减小降水对周边环境的影响。然而目前关于落底式帷幕止水效果的评价方法尚不完善。武汉某深基坑工程地下水控制采用CSM落底式止水帷幕+坑内疏干方案,为预判基坑出水量并评价帷幕止水效果,开展了群井多降深抽水试验,通过获取坑内外的水位降深数据以及出水量等信息,在土方开挖前预判了基坑后期的出水量,经初步判断,CSM落底式帷幕止水效果良好。该方法可为落底式止水帷幕评价提供借鉴。

     

  • 图  1  项目周边环境示意图

    Figure  1.  Schematic diagram of the surrounding environment of the project

    图  2  基坑支护典型剖面图

    Figure  2.  Typical section of excavation support

    图  3  数字水位计工作原理图

    Figure  3.  Working principle of digital water level gauge

    图  4  单声道V字形布设流量计示意图

    Figure  4.  Schematic diagram of flowmeter with monophonic V-shaped layout

    图  5  连通试验井位平面布置图

    Figure  5.  Layout plan of wells for connectivity test

    图  6  试验全过程观测井水位-时间曲线图

    Figure  6.  Water level-time curve of observation wells during full test process

    图  7  基坑每半小时总出水量折线图

    Figure  7.  Line chart of total water discharge from foundation pit per half hour

    表  1  岩土层参数表

    Table  1.   Geotechnical parameter

    地层编号岩土名称层厚
    /m
    黏聚力c
    /kPa
    内摩擦角φ
    /(°)
    (1-1)杂填土0.3~3.1815
    (1-2)素填土0.6~3.986
    (2-1)黏土0.8~3.02413
    (2-2)黏土0.7~2.71911
    (2-3)淤泥质粉质黏土2.7~6.9125
    (2-4)淤泥质粉质黏土夹粉土1.0~6.3156
    (3)粉砂夹粉土、粉质黏土1.0~4.8148
    (4-1)粉砂2.0~13.4032
    (4-2)粉细砂4.6~16.5034
    (4-2a)粉砂夹粉土0.5~2.0129
    (4-3)细砂6.6~17.5035
    (4-3a)粉砂夹粉土0.5~6.0
    (4-4)中粗砂混卵、砾石0.3~3.0
    (5-1)强风化粉砂质泥岩0.5~5.84518
    (5-2)中等风化粉砂质泥岩8.0~21.06725
    (5-2s)中等风化软弱夹层粉砂质泥岩5.0~3516
    下载: 导出CSV

    表  2  抽水连通试验和水位恢复试验过程记录

    Table  2.   Process record of pumping connectivity test and water level recovery test

    阶段 次序 开始
    时间
    开关井顺序 开(关)井
    时长/h
    稳定
    时长/h
    阶段
    用时/h
    群井抽水
    试验
    1 0.0 h 第一批开启4口降水井
    J1、J7、J9、J24
    17.0 11.5 28.5
    2 28.5 h 第二批开启4口降水井
    J11、J8、J21、J15
    5.0 38.0 43.0
    3 71.5 h 第三批开启3口降水井
    J3、J20、J18
    5.0 17.0 22.0
    4 93.5 h 第四批开启2口降水井
    J24(重启)、J25
    5.0 75.5 80.5
    水位恢复
    试验
    5 174.0 h 第一批关停降水井
    J3、J25、J18
    13.0 11.5 24.5
    6 198.5 h 第二批关停降水井
    J11、J8、J20、J15
    13.0 11.0 24.0
    7 222.5 h 第三批关停降水井
    J1、J7、J9、J24
    0 46.5 46.5
    注:①在抽水试验55 h时,因周边新建排水沟需要J24井关泵;②在抽水试验75 h时J21降水井损坏,为维持出水量保证水位降深要求,第四批次J24井重新开启,新开启J25井; ③312 h后水位稳定不再回升,试验结束时坑内水位距离初始水位约1.0 m,坑外距离初始水位约0.4 m。
    下载: 导出CSV

    表  3  连通试验坑内外试验井最大降深汇总表

    Table  3.   Summary table of maximum drawdown of test wells inside and outside the pit for connectivity test

    区位坑外观测井
    最大降深/m
    坑内观测井
    最大降深/m
    降深差
    /m
    基坑东侧4.1110.826.71
    基坑西侧2.969.606.64
    基坑南侧3.119.506.39
    基坑北侧3.1210.257.13
    注:GCJ1最大降深为4.11 m,综合判断为异常数据(可能受南侧在建基坑施工影响所致)。
    下载: 导出CSV

    表  4  基坑理论涌水量计算公式取值表

    Table  4.   Value-taking table of calculation formula for theoretical water inflow of foundation pit

    参数取值
    基坑面积A/m222268.8
    基坑等效半径r0/m84.21
    降水影响半径R/m200
    基坑地下水位设计降深sd/m10.50
    承压含水层厚度M/m37.0
    渗透系数k/(m·d−117.0
    下载: 导出CSV
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  • 收稿日期:  2025-03-17
  • 修回日期:  2025-05-12
  • 录用日期:  2025-06-26
  • 网络出版日期:  2026-06-08
  • 刊出日期:  2026-06-08

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