Hydraulic and thermal effects of in-stream structure-induced hyporheic exchange across a range of hydraulic conductivities

被引:35
作者
Menichino, Garrett T. [1 ]
Hester, Erich T. [1 ]
机构
[1] Virginia Tech, Dept Civil & Environm Engn, Blacksburg, VA 24061 USA
关键词
GROUNDWATER EXCHANGE; MODELING SURFACE; HUMAN IMPACTS; FLOW PATHS; TEMPERATURE; RIVER; ZONE; VARIABILITY; DYNAMICS; REGIME;
D O I
10.1002/2013WR014758
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In-stream structure-induced hyporheic exchange and associated thermal dynamics affect stream ecosystems. Their importance is controlled by spatial variability of sediment hydraulic conductivity (K). We calibrated a computational fluid dynamics (CFD) model of surface and groundwater hydraulics near a channel-spanning weir (represents log dams, boulder weirs) to field data and varied K from 10(-7) to 10(-2) m/s (silt to gravel). Surface water stopped cresting the weir for K>10(-3) m/s. Non-Darcy hyporheic flow was also prevalent for K > 10(-3) m/s, and velocity errors using non-CFD models ranged up to 32.2%. We also modeled weir-induced heat transport during summer. As K increased from 10(-7) to 10(-3) m/s, weir-induced hyporheic heat advection steadily increased. Cooling and buffering along hyporheic flow paths decreased with increasing K, particularly above K=10(-5) and 10(-4) m/s, respectively. Vertical heat conduction between surface water and groundwater near the weir decreased with increasing K, particularly for K>10(-5) m/s. Conduction between hyporheic flow paths and adjacent groundwater helped cool hyporheic flow. Downstream surface water cooling by hyporheic advection increased steadily with K as increases in hyporheic flow overwhelmed decreases in cooling along hyporheic flow paths. Yet such effects were small (0.016 degrees C) even at K=10(-3) m/s. The largest thermal effect of weir-induced exchange was therefore spatial expansion of subsurface diel variability (particularly for K>10(-5) m/s) which affects benthic habitat and chemical reactions. The specific values of K where such trend shifts occur is likely variable among streams based on flow conditions, but we expect the presence of such trend shifts to be widespread.
引用
收藏
页码:4643 / 4661
页数:19
相关论文
共 80 条
  • [1] Allan J.D., 2007, Stream Ecology, V2nd, P359, DOI DOI 10.1007/978-1-4020-5583-6_14
  • [2] Andersson B., 2012, Computational Fluid Dynamics for Engineers, Vxi, P189
  • [3] [Anonymous], 2001, SPE PERM BAS OIL GAS
  • [4] ANSYS, 2011, ANS CFX SOLV THEOR G
  • [5] ANSYS, 2011, ANS CFX SOLV MOD GUI
  • [6] Buffered, lagged, or cooled? Disentangling hyporheic influences on temperature cycles in stream channels
    Arrigoni, Alicia S.
    Poole, Geoffrey C.
    Mertes, Leal A. K.
    O'Daniel, Scott J.
    Woessner, William W.
    Thomas, Steven A.
    [J]. WATER RESOURCES RESEARCH, 2008, 44 (09)
  • [7] Beschta R.L., 1987, University of Washington Institute of Forest Resources Contribution, P191
  • [8] CHARACTERISTICS AND FREQUENCY OF COOL-WATER AREAS IN A WESTERN WASHINGTON STREAM
    BILBY, RE
    [J]. JOURNAL OF FRESHWATER ECOLOGY, 1984, 2 (06) : 593 - 602
  • [9] The functional significance of the hyporheic zone in streams and rivers
    Boulton, AJ
    Findlay, S
    Marmonier, P
    Stanley, EH
    Valett, HM
    [J]. ANNUAL REVIEW OF ECOLOGY AND SYSTEMATICS, 1998, 29 : 59 - 81
  • [10] Ecology and management of the hyporheic zone: stream-groundwater interactions of running waters and their floodplains
    Boulton, Andrew J.
    Datry, Thibault
    Kasahara, Tamao
    Mutz, Michael
    Stanford, Jack A.
    [J]. JOURNAL OF THE NORTH AMERICAN BENTHOLOGICAL SOCIETY, 2010, 29 (01): : 26 - 40