Water percolation through a clayey vadose zone

被引:75
|
作者
Baram, S. [1 ]
Kurtzman, D. [2 ]
Dahan, O. [1 ]
机构
[1] Ben Gurion Univ Negev, Jacob Blaustein Inst Desert Res, Zuckerberg Inst Water Res, Dept Environm Hydrol & Microbiol, IL-84990 Sede Boqer Campus, Israel
[2] Agr Res Org, Volcani Ctr, Inst Soil Water & Environm Sci, IL-50250 Bet Dagan, Israel
关键词
Vadose zone; Smectite-dominated clay; Desiccation crack; Infiltration; Preferential flow; Waste lagoon; PREFERENTIAL FLOW; SOLUTE TRANSPORT; WASTE LAGOONS; SOIL; CRACKING; INFILTRATION; MACROPORES; BROMIDE; SEEPAGE; PORE;
D O I
10.1016/j.jhydrol.2011.12.040
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Heavy clay soils are regarded as less permeable due to their low saturated hydraulic conductivities, and are perceived as safe for the construction of unlined or soil-lined waste lagoons. Water percolation dynamics through a smectite-dominated clayey vadose zone underlying a dairy waste lagoon, waste channel and their margins was investigated using three independent vadose-zone monitoring systems. The monitoring systems, hosting 22 TDR sensors, were used for continuous measurements of the temporal variation in vadose zone water-content profiles. Results from 4 years of continuous measurements showed quick rises in sediment water content following rain events and temporal wastewater overflows. The percolation pattern indicated dominance of preferential flow through a desiccation-crack network crossing the entire clay sediment layer (depth of 12 m). High water-propagation velocities (0.4-23.6 m h(-1)) were observed, indicating that the desiccation-crack network remains open and serves as a preferential flow pathway year-round, even at high sediment water content (similar to 0.50 m(3) m(-3)). The natural formation of desiccation-crack networks at the margins of waste lagoons induces rapid infiltration of raw waste to deep sections of the vadose zone, bypassing the sediment's most biogeochemically active parts, and jeopardizing groundwater quality. (C) 2012 Elsevier B.V. All rights reserved.
引用
收藏
页码:165 / 171
页数:7
相关论文
共 50 条
  • [21] Downward water flow through sloping layers in the vadose zone: Analytical solutions for diversions
    Warrick, AW
    Wierenga, PJ
    Pan, L
    JOURNAL OF HYDROLOGY, 1997, 192 (1-4) : 321 - 337
  • [22] Fate of urine nitrogen through a volcanic vadose zone
    Barkle, G. F.
    Stenger, R.
    Woehling, Th.
    SOIL RESEARCH, 2014, 52 (07) : 658 - 670
  • [23] Transport of Escherichia coli through a Thick Vadose Zone
    Arnaud, Emmanuelle
    Best, Anna
    Parker, Beth L.
    Aravena, Ramon
    Dunfield, Kari
    JOURNAL OF ENVIRONMENTAL QUALITY, 2015, 44 (05) : 1424 - 1434
  • [24] An integrative approach for monitoring water movement in the vadose zone
    Liu, SY
    Yeh, TCJ
    VADOSE ZONE JOURNAL, 2004, 3 (02) : 681 - 692
  • [25] A TENSIOMETER AND PORE WATER SAMPLER FOR VADOSE ZONE MONITORING
    MORRISON, RD
    SZECSODY, JE
    SOIL SCIENCE, 1987, 144 (05) : 367 - 372
  • [26] Linking water and nutrients through the vadose zone: a fungal interface between the soil and plant systems
    Michael F ALLEN
    JournalofAridLand, 2011, 3 (03) : 155 - 163
  • [27] WATER RECHARGE AND SOLUTE TRANSPORT THROUGH THE VADOSE ZONE OF FRACTURED CHALK UNDER DESERT CONDITIONS
    NATIV, R
    ADAR, E
    DAHAN, O
    GEYH, M
    WATER RESOURCES RESEARCH, 1995, 31 (02) : 253 - 261
  • [28] Constraining a Flow Model with Field Measurements to Assess Water Transit Time Through a Vadose Zone
    Boumaiza, Lamine
    Chesnaux, Romain
    Walter, Julien
    Stumpp, Christine
    GROUNDWATER, 2021, 59 (03) : 417 - 427
  • [29] Water dynamics and groundwater recharge in a deep vadose zone
    Ju, Zhaoqiang
    Li, Xiaoxin
    Hu, Chunsheng
    WATER SCIENCE AND TECHNOLOGY-WATER SUPPLY, 2016, 16 (03): : 579 - 586
  • [30] Palygorskite transport through the Vadose Zone: A progress report
    Mohammadnia, M
    Kowsar, A
    PROCEEDINGS OF THE 8TH INTERNATIONAL CONFERENCE OF RAINWATER CATCHMENT SYSTEMS, VOLS 1 AND 2: RAINWATER CATCHMENT FOR SURVIVAL, 1997, : 128 - 135