Use of regression-based models to map sensitivity of aquatic resources to atmospheric deposition in Yosemite National Park, USA

被引:22
作者
Clow, David W. [1 ]
Nanus, Leora [3 ]
Huggett, Brian [2 ]
机构
[1] US Geol Survey, MS Fed Ctr 415, Denver, CO 80225 USA
[2] Humboldt State Univ, Dept Forestry & Wildland Resources, Arcata, CA 95521 USA
[3] San Francisco State Univ, Dept Geosci, San Francisco, CA 94132 USA
关键词
SURFACE-WATER CHEMISTRY; MAJOR ION CHEMISTRY; ADIRONDACK REGION; SIERRA-NEVADA; ACIDIC DEPOSITION; NEW-YORK; NITROGEN; STREAMS; BASIN; CATCHMENT;
D O I
10.1029/2009WR008316
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
An abundance of exposed bedrock, sparse soil and vegetation, and fast hydrologic flushing rates make aquatic ecosystems in Yosemite National Park susceptible to nutrient enrichment and episodic acidification due to atmospheric deposition of nitrogen (N) and sulfur (S). In this study, multiple linear regression (MLR) models were created to estimate fall-season nitrate and acid neutralizing capacity (ANC) in surface water in Yosemite wilderness. Input data included estimated winter N deposition, fall-season surface-water chemistry measurements at 52 sites, and basin characteristics derived from geographic information system layers of topography, geology, and vegetation. The MLR models accounted for 84% and 70% of the variance in surface-water nitrate and ANC, respectively. Explanatory variables (and the sign of their coefficients) for nitrate included elevation (positive) and the abundance of neoglacial and talus deposits (positive), unvegetated terrain (positive), alluvium (negative), and riparian (negative) areas in the basins. Explanatory variables for ANC included basin area (positive) and the abundance of metamorphic rocks (positive), unvegetated terrain (negative), water (negative), and winter N deposition (negative) in the basins. The MLR equations were applied to 1407 stream reaches delineated in the National Hydrography Data Set for Yosemite, and maps of predicted surface-water nitrate and ANC concentrations were created. Predicted surface-water nitrate concentrations were highest in small, high-elevation cirques, and concentrations declined downstream. Predicted ANC concentrations showed the opposite pattern, except in high-elevation areas underlain by metamorphic rocks along the Sierran Crest, which had relatively high predicted ANC (> 200 mu eq L-1). Maps were created to show where basin characteristics predispose aquatic resources to nutrient enrichment and acidification effects from N and S deposition. The maps can be used to help guide development of water-quality programs designed to monitor and protect natural resources in national parks.
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页数:14
相关论文
共 58 条
[1]   A screening procedure for identifying acid-sensitive lakes from catchment characteristics [J].
Berg, NH ;
Gallegos, A ;
Dell, T ;
Frazier, J ;
Procter, T ;
Sickman, J ;
Grant, S ;
Blett, T ;
Arbaugh, M .
ENVIRONMENTAL MONITORING AND ASSESSMENT, 2005, 105 (1-3) :285-307
[2]   ION ELUTION AND RELEASE SEQUENCE FROM DEEP SNOWPACKS IN THE CENTRAL SIERRA-NEVADA, CALIFORNIA [J].
BERG, NH .
WATER AIR AND SOIL POLLUTION, 1992, 61 (1-2) :139-168
[3]   Evaluation of the use of soil ion exchange properties for predicting streamwater chemistry in upland catchments [J].
Billett, MF ;
Cresser, MS .
JOURNAL OF HYDROLOGY, 1996, 186 (1-4) :375-394
[4]   ACIDIC DEPOSITION TO STREAMS - A GEOLOGY-BASED METHOD PREDICTS THEIR SENSITIVITY [J].
BRICKER, OP ;
RICE, KC .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1989, 23 (04) :379-385
[5]  
Charles D.F., 1991, Acidic Deposition and Aquatic Ecosystems. Regional Case Studies
[6]   Ground Water Occurrence and Contributions to Streamflow in an Alpine Catchment, Colorado Front Range [J].
Clow, D. W. ;
Schrott, L. ;
Webb, R. ;
Campbell, D. H. ;
Torizzo, A. ;
Dornblaser, M. .
GROUND WATER, 2003, 41 (07) :937-950
[7]   Changes in the chemistry of lakes and precipitation in high-elevation national parks in the western United States, 1985-1999 [J].
Clow, DW ;
Sickman, JO ;
Striegl, RG ;
Krabbenhoft, DP ;
Elliott, JG ;
Dornblaser, M ;
Roth, DA ;
Campbell, DH .
WATER RESOURCES RESEARCH, 2003, 39 (06) :HWC41-HWC413
[8]   Comparison of snowpack and winter wet-deposition chemistry in the Rocky Mountains, USA: implications for winter dry deposition [J].
Clow, DW ;
Ingersoll, GP ;
Mast, MA ;
Turk, JT ;
Campbell, DH .
ATMOSPHERIC ENVIRONMENT, 2002, 36 (14) :2337-2348
[9]  
Clow DW, 1996, HYDROL PROCESS, V10, P727, DOI 10.1002/(SICI)1099-1085(199605)10:5<727::AID-HYP316>3.0.CO
[10]  
2-D