Regional groundwater flow in mountainous terrain: Three-dimensional simulations of topographic and hydrogeologic controls

被引:189
作者
Gleeson, Tom [1 ]
Manning, Andrew H. [2 ]
机构
[1] Queens Univ, Dept Civil Engn, Kingston, ON K7L 3N6, Canada
[2] US Geol Survey, Denver, CO 80225 USA
关键词
D O I
10.1029/2008WR006848
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This study uses numerical simulations to define the salient controls on regional groundwater flow in 3-D mountainous terrain by systematically varying topographic and hydrogeologic variables. Topography for idealized multiple-basin mountainous terrain is derived from geomatic data and literature values. Water table elevation, controlled by the ratio of recharge to hydraulic conductivity, largely controls the distribution of recharged water into local, regional, and perpendicular flow systems, perpendicular flow being perpendicular to the regional topographic gradient. Both the relative (%) and absolute ( m(3)/d) values of regional flow and perpendicular flow are examined. The relationship between regional flow and water table elevation is highly nonlinear. With lower water table elevations, relative and absolute regional flow dramatically increase and decrease, respectively, as the water table is lowered further. However, for higher water table elevations above the top of the headwater stream, changes in water table elevation have little effect on regional flow. Local flow predominates in high water table configurations, with regional and perpendicular flow < 15% and < 10%, respectively, of total recharge in the models tested. Both the relative and the maximum absolute regional flow are directly controlled by the degree of incision of the mountain drainage network; the elevation of mountain ridges is considerably less important. The percentage of the headwater stream with perennial streamflow is a potentially powerful indicator of regional flow in all water table configurations and may be a good indicator of the susceptibility of mountain groundwater systems to increased aridity.
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页数:16
相关论文
共 62 条
[21]   Climate change impacts on groundwater recharge-uncertainty, shortcomings, and the way forward? [J].
Holman, I. P. .
HYDROGEOLOGY JOURNAL, 2006, 14 (05) :637-647
[22]  
JAMIESON GR, 1983, GROUND WATER, V21, P168
[23]  
JOHNSON RH, 2006, 20061030 US GEOL SUR, P32
[24]  
KAHN KG, 2007, HYDROGEOL J, V16, P103, DOI DOI 10.1007/S10040-10007-10225-10046
[25]   Simulating the multi-seasonal response of a large-scale watershed with a 3D physically-based hydrologic model [J].
Li, Q. ;
Unger, A. J. A. ;
Sudicky, E. A. ;
Kassenaar, D. ;
Wexler, E. J. ;
Shikaze, S. .
JOURNAL OF HYDROLOGY, 2008, 357 (3-4) :317-336
[26]  
Manning AH, 2004, WATER SCI APPL, V9, P139
[27]   An integrated environmental tracer approach to characterizing groundwater circulation in a mountain block [J].
Manning, AH ;
Solomon, DK .
WATER RESOURCES RESEARCH, 2005, 41 (12) :1-18
[28]   Groundwater noble gas, age, and temperature signatures in an Alpine watershed: Valuable tools in conceptual model development [J].
Manning, Andrew H. ;
Caine, Jonathan Saul .
WATER RESOURCES RESEARCH, 2007, 43 (04)
[29]   The use of 3H and 18O tracers to characterize water inflows in Alpine tunnels [J].
Maréchal, JC ;
Etcheverry, D .
APPLIED GEOCHEMISTRY, 2003, 18 (03) :339-351
[30]   Long-term simulations of thermal and hydraulic characteristics in a mountain massif:: The Mont Blanc case study, French and Italian Alps [J].
Maréchal, JC ;
Perrochet, P ;
Tacher, L .
HYDROGEOLOGY JOURNAL, 1999, 7 (04) :341-354