RUNOFF PRODUCTION IN A FORESTED, SHALLOW SOIL, CANADIAN SHIELD BASIN

被引:175
作者
PETERS, DL
BUTTLE, JM
TAYLOR, CH
LAZERTE, BD
机构
[1] TRENT UNIV,DEPT GEOG,PETERBOROUGH,ON K9J 7B8,CANADA
[2] ONTARIO MINIST ENVIRONM & ENERGY,DORSET RES CTR,DORSET,ON P0A 1E0,CANADA
关键词
D O I
10.1029/94WR03286
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Storm flow in forested basins on the Canadian Shield is largely supplied by subsurface water; however, mechanisms by which this water reaches the stream remain unclear. Side slope contributions to storm flow were studied using throughflow trenches on slopes in a headwater basin near Dorset, Ontario. Discharge, soil water content, and chemical and isotopic signatures of subsurface water were monitored at each site. Four hypotheses were tested: (1) most flow occurs at the soil-bedrock interface on shield slopes with thin soil; (2) a significant fraction of event water moves vertically to bedrock via preferential flow pathways and laterally over the bedrock surface; (3) relative preevent water contribution to subsurface flow on shield slopes is a function of soil thickness; and (4) a significant portion of event water flux in storm flow from forested basins with shallow soil cover is supplied from side slopes via subsurface flow along the soil-bedrock interface. Hypothesis 1 was confirmed from hydrometric observations during spring and fall rainstorms. Hypotheses 2 and 3 were supported by temporal trends in dissolved organic carbon and O-18 in flow at the soil-bedrock interface and by isotopic hydrograph separations (IHSs) of hillslope runoff. Comparison with the streamflow IHS indicated that event water flux from the basin in excess of that attributable to direct precipitation onto near-channel saturated areas could be supplied by flow along the bedrock surface (hypothesis 4). Flow at the soil-bedrock interface on side slopes also contributed similar to 25% of preevent water flux from the basin. Much of the event water component of basin storm flow may travel considerable distances via subsurface routes and is not necessarily contributed by surface runoff processes (Horton flow or saturation overland flow). Therefore the assumption that event water undergoes little interaction with the soil during its passage downslope may be unwarranted here.
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收藏
页码:1291 / 1304
页数:14
相关论文
共 47 条
[1]   LABORATORY STUDIES OF THE EFFECTS OF THE CAPILLARY-FRINGE ON STREAMFLOW GENERATION [J].
ABDUL, AS ;
GILLHAM, RW .
WATER RESOURCES RESEARCH, 1984, 20 (06) :691-698
[2]   FIELD STUDIES OF THE EFFECTS OF THE CAPILLARY-FRINGE ON STREAMFLOW GENERATION [J].
ABDUL, AS ;
GILLHAM, RW .
JOURNAL OF HYDROLOGY, 1989, 112 (1-2) :1-18
[3]   RUNOFF GENERATION IN ZERO-ORDER PRECAMBRIAN SHIELD CATCHMENTS - THE STORMFLOW RESPONSE OF A HETEROGENEOUS LANDSCAPE [J].
ALLAN, CJ ;
ROULET, NT .
HYDROLOGICAL PROCESSES, 1994, 8 (04) :369-388
[4]  
[Anonymous], 1978, WATER ENV PLANNING
[5]  
[Anonymous], 2012, BIOGEOCHEMISTRY FORE
[6]  
BOTTOMLEY DJ, 1984, J HYDROL, V75, P1, DOI 10.1016/0022-1694(84)90044-1
[7]   ISOTOPE HYDROGRAPH SEPARATIONS AND RAPID DELIVERY OF PRE-EVENT WATER FROM DRAINAGE BASINS [J].
BUTTLE, JM .
PROGRESS IN PHYSICAL GEOGRAPHY-EARTH AND ENVIRONMENT, 1994, 18 (01) :16-41
[8]   TESTING THE GROUNDWATER RIDGING HYPOTHESIS OF STREAMFLOW GENERATION DURING SNOWMELT IN A FORESTED CATCHMENT [J].
BUTTLE, JM ;
SAMI, K .
JOURNAL OF HYDROLOGY, 1992, 135 (1-4) :53-72
[9]  
CAMPBELL GS, 1985, SOIL PHYSICS BASIC T
[10]  
DAVIDSON DA, 1978, SCI PHYSICAL GEOGRAP