Single-borehole tracer detection of groundwater movement in water-rich sand layer under riverbed impacted by sea tide
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(1.College of Civil and Transportation Engineering, Hohai University, Nanjing 210098, China;2.Key Laboratory of Ministry of Education for Geomechanics and Embankment Engineering, Hohai University, Nanjing 210098, China;3.ZhiyongConstruction Group Co., Ltd., Minqing 350899, China;4.Fujian Zhongyu Irrigation-Hydroelectric Power Engineering Co., Ltd., Yong’an 366099, China;5.Zhongda (Fujian) Engineering Construction Group Co., Ltd., Jianou 353199, China;6.Hunan Kehong Dam Monitoring Center Co., Ltd., Changsha 410007, China)

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P641.2

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    Abstract:

    To address the complicated groundwater seepage conditions in water-rich sand layer under riverbed influenced by sea tide, the single-borehole dilution method was employed to measure both vertical and horizontal groundwater flow velocities within boreholes, so as to determine the groundwater movement patterns under the fluctuation of river stage. Field test results indicate that the fluctuation of river stage has little impact on the groundwater seepage on both banks, but has great impact on that of alluvial sand bar. If the river stage decreases, the water level of alluvial sand bar will be higher than the river water level, resulting in downward vertical flow in the boreholes. Conversely, when the river stage rises, the water level of alluvial sand bar will be lower, leading to upward vertical flow in the boreholes. The upper silty sand layer of the formation has a certain degree of impermeability, weakening the influence of river water on the deeper strata. As a result, there is no obvious vertical flow in the underlying sand and pebble layer, in which the maximum horizontal flow velocity is as low as 0.48 m/d and will be in favor of the implement of the freezing method.

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董海洲,王晋健,林建忠,等.潮汐影响下江底富水砂层地下水运动单孔示踪测试研究[J].水利水电科技进展,2025,45(4):24-30.(DONG Haizhou, WANG Jinjian, LIN Jianzhong, et al. Single-borehole tracer detection of groundwater movement in water-rich sand layer under riverbed impacted by sea tide[J]. Advances in Science and Technology of Water Resources,2025,45(4):24-30.(in Chinese))

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History
  • Received:November 21,2024
  • Revised:
  • Adopted:
  • Online: July 30,2025
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