Protection of forest ecosystems in the eastern United States from elevated atmospheric deposition of sulfur and nitrogen: A comparison of steady-state and dynamic model results
Tài liệu tham khảo
Aber, 1997, Modeling nitrogen saturation in forest ecosystems in response to land use and atmospheric deposition, Ecol. Model., 101, 61, 10.1016/S0304-3800(97)01953-4
Aber, 1998, Nitrogen saturation in temperate forest ecosystems; hypotheses revisited, Bioscience, 48, 921, 10.2307/1313296
Aerts, 2000, The mineral nutrition of wild plants revisited: a re-evaluation of processes and patterns, Adv. Ecol. Res., 30, 1
Belyazid, 2011, A dynamic modelling approach for estimating critical loads of nitrogen based on plant community changes under a changing climate, Environ. Pollut., 159, 789, 10.1016/j.envpol.2010.11.005
Blett, 2014, FOCUS: a pilot study for national-scale critical loads development in the United States, Environ. Sci. Pol., 38, 225, 10.1016/j.envsci.2013.12.005
Bobbink, 2010, Global assessment of nitrogen deposition effects on terrestrial plant diversity: a synthesis, Ecol. Appl., 20, 30, 10.1890/08-1140.1
Clark, 2019, Potential vulnerability of 348 herbaceous species to atmospheric deposition of nitrogen and sulfur in the U.S, Nature Plants, 5, 697, 10.1038/s41477-019-0442-8
Cosby, 1985, Modelling the effects of acid deposition: assessment of a lumped parameter model of soil water and streamwater chemistry, Water Resour. Res., 21, 51, 10.1029/WR021i001p00051
Cosby, 1985, Time scales of catchment acidification: a quantitative model for estimating freshwater acidification, Environ. Sci. Technol., 19, 1144, 10.1021/es00142a001
Cosby, 2001, Modeling the effects of acid deposition: refinements, adjustments and inclusion of nitrogen dynamics in the MAGIC model, Hydrol. Earth Syst. Sci., 5, 499, 10.5194/hess-5-499-2001
Cronan, 1995, Use of calcium/aluminum ratios as indicators of stress in forest ecosystems, J. Environ. Qual., 24, 209, 10.2134/jeq1995.00472425002400020002x
De Vries, 2007, 206
De Vries, 2010, Use of dynamic soil–vegetation models to assess impacts of nitrogen deposition on plant species composition: an overview, Ecol. Appl., 20, 60, 10.1890/08-1019.1
Dietze, 2011, Tree mortality in the eastern and central United States: patterns and drivers, Global Change Biol., 17, 3312, 10.1111/j.1365-2486.2011.02477.x
Driscoll, 2003, Nitrogen pollution in the northeastern United States: sources, effects, and management options, Bioscience, 53, 357, 10.1641/0006-3568(2003)053[0357:NPITNU]2.0.CO;2
Du, 2018, Nitrogen-induced new net primary production and carbon sequestration in global forests, Environ. Pollut., 242
Duarte, 2013, Susceptibility of forests in the northeastern USA to nitrogen and sulfur deposition: critical load exceedance and forest health, Water Air Soil Pollut., 224, 10.1007/s11270-012-1355-6
Emmett, 2007, Nitrogen saturation of terrestrial ecosystems: some recent findings and their implications for our conceptual framework, Water Air Soil Pollut. Focus, 7, 99, 10.1007/s11267-006-9103-9
Fakhraei, 2017, Sensitivity and uncertainty analysis of PnET-BGC to inform the development of total maximum daily loads (TMDLs) of acidity in the Great Smoky Mountains national park, Environ. Model. Software, 95, 156, 10.1016/j.envsoft.2017.06.013
Gbondo-Tugbawa, 2001, Evaluation of an integrated biogeochemical model (PnET-BGC) at a northern hardwood forest ecosystem, Water Resour. Res., 37, 1057, 10.1029/2000WR900375
Geiser, 2021, Lichen-based critical loads for deposition of nitrogen and sulfur in US forests, Environ. Pollut., 291, 10.1016/j.envpol.2021.118187
Groffman, 2018, Nitrogen oligotrophication in northern hardwood forests, Biogeochemistry, 10.1007/s10533-018-0445-y
Hettelingh, 2007, Critical loads and dynamic modelling to assess European areas at risk of acidification and eutrophication, Water Air Soil Pollut. Focus, 7, 379, 10.1007/s11267-006-9099-1
Horn, 2018, Growth and survival relationships of 71 tree species with nitrogen and sulfur deposition across the conterminous U.S, PLoS One, 13, 10.1371/journal.pone.0205296
Horswill, 2008, Base cation depletion, eutrophication and acidification of species-rich grasslands in response to long-term simulated nitrogen deposition, Environ. Pollut., 155, 336, 10.1016/j.envpol.2007.11.006
Howarth, 2008, Coastal Nitrogen Pollution: a review of sources and trends globally and regionally, Harmful Algae, 8, 14, 10.1016/j.hal.2008.08.015
Koseva, 2010, Estimating base cation weathering rates in Canadian forest soils using a simple texture-based model, Biogeochemistry, 101, 183, 10.1007/s10533-010-9506-6
Lawrence, 2015, Declining acidic deposition begins reversal of forest-soil acidification in the northeastern U.S. and eastern Canada, Environ. Sci. Technol., 49, 13103, 10.1021/acs.est.5b02904
Lawrence, 2018, Soil base saturation combines with beech bark disease to influence composition and structure of sugar maple-beech forests in an acid rain-impacted region, Ecosystems, 21, 795, 10.1007/s10021-017-0186-0
Li, 2007, Uncertainty analysis on simple mass balance model to calculate critical loads for soil acidity, Environ. Pollut., 149, 315, 10.1016/j.envpol.2007.05.014
McCabe, 2011, Independent effects of temperature and precipitation on modeled runoff in the conterminous United States, Water Resour. Res., 47, 10.1029/2011WR010630
McDonnell, 2010, Comparison among model estimates of critical loads of acidic deposition using different sources and scales of input data, Environ. Pollut., 158, 2934, 10.1016/j.envpol.2010.06.007
McDonnell, 2014, Modeled subalpine plant community response to climate change and atmospheric nitrogen deposition in Rocky Mountain National Park, USA, Environ. Pollut., 187, 55, 10.1016/j.envpol.2013.12.021
McDonnell, 2018, Vegetation dynamics associated with changes in atmospheric nitrogen deposition and climate in hardwood forests of Shenandoah and Great Smoky Mountains national parks, USA, Environ. Pollut., 237, 662, 10.1016/j.envpol.2018.01.112
McDonnell, 2018
McDonnell, 2021, Regional target loads of atmospheric nitrogen and sulfur deposition for the protection of stream and watershed soil resources of the Adirondack Mountains, USA, Environ. Pollut., 281, 10.1016/j.envpol.2021.117110
McNulty, 2007, Estimates of critical acid loads and exceedances for forest soils across the conterminous United States, Environ. Pollut., 149, 281, 10.1016/j.envpol.2007.05.025
McNulty, 2010, A conceptual framework: redefining forest soil's critical acid loads under a changing climate, Environ. Pollut., 158, 2053, 10.1016/j.envpol.2009.11.028
McNulty, 2013, Climate change impacts on forest soil critical acid loads and exceedances at a national scale, 95
Miller, 2001, Estimating soil weathering rates, appendix 3
Miller, 2011
2017
Nilsson, 1988
Pardo, 2011, Effects of nitrogen deposition and empirical nitrogen critical loads for ecoregions of the United States, Ecol. Appl., 21, 3049, 10.1890/10-2341.1
Phelan, 2014, Estimation of soil base cation weathering rates with the PROFILE model to determine critical loads of acidity for forested ecosystems in Pennsylvania, USA: pilot application of a potential national methodology, Water Air Soil Pollut., 225, 1, 10.1007/s11270-014-2109-4
Porter, 2005, Protecting resources on federal lands: implications of critical loads for atmospheric deposition on nitrogen and sulfur, Bioscience, 55, 603, 10.1641/0006-3568(2005)055[0603:PROFLI]2.0.CO;2
Posch, 2001
Posch, 2009, A very simple dynamic soil acidification model for scenario analyses and target load calculations, Environ. Model. Software, 24, 329, 10.1016/j.envsoft.2008.09.007
Seabloom, 2021, Species loss due to nutrient addition increases with spatial scale in global grasslands, Ecol. Lett., 24, 2100, 10.1111/ele.13838
Shao, 2021, The response of streams in the Adirondack region of New York to projected changes in sulfur and nitrogen deposition under changing climate, Sci. Total Environ., 800, 10.1016/j.scitotenv.2021.149626
Simkin, 2016, Conditional vulnerability of plant diversity to atmospheric nitrogen deposition across the United States, Proc. Natl. Acad. Sci. USA, 113, 4086, 10.1073/pnas.1515241113
Sullivan, 2011, Target loads of atmospheric sulfur deposition to protect terrestrial resources in the Adirondack Mountains, New York against biological impacts caused by soil acidification, J. Environ. Stud. Sci., 1, 301, 10.1007/s13412-011-0062-8
Sullivan, 2012, Target loads of atmospheric sulfur and nitrogen deposition for protection of acid sensitive aquatic resources in the Adirondack Mountains, New York, Water Resour. Res., 48, 10.1029/2011WR011171
Sullivan, 2013, Effects of acidic deposition and soil acidification on sugar maple in the Adirondack Mountains, New York, Environ. Sci. Technol., 47, 12687, 10.1021/es401864w
Sverdrup, 1992, Critical loads and steady-state chemistry for streams in the state of Maryland, Environ. Pollut., 77, 195, 10.1016/0269-7491(92)90077-N
Sverdrup, 1993, The effect of soil acidification on the growth of trees, grass and herbs as expressed by the (Ca+ Mg+ K)/Al ratio, Rep. in Ecol. Eng., 2, 1993
Sverdrup, 2019, Reviews and syntheses: weathering of silicate minerals in soils and watersheds: parameterization of the weathering kinetics module in the PROFILE and ForSAFE models, Biogeosci. Discuss., 1
Thomas, 2010, Increased tree carbon storage in response to nitrogen deposition in the US, Nat. Geosci., 3, 13, 10.1038/ngeo721
2020
2004
2020
Vitousek, 1991, Nitrogen limitation on land and in the sea: how can it occur?, Biogeochemistry, 13, 87, 10.1007/BF00002772
Wallman, 2005, ForSAFE—an integrated process-oriented forest model for long-term sustainability assessments, For. Ecol. Manage., 207, 19, 10.1016/j.foreco.2004.10.016
Warby, 2009, Continuing acidification of organic soils across the northeastern USA: 1984 - 2001, Soil Sci. Soc. Am. J., 73, 274, 10.2136/sssaj2007.0016
Watmough, 2004, 22
Whitfield, 2010, Estimating the sensitivity of forest soils to acid deposition in the athabasca oil sands region, alberta, J. Limnol., 69, 201, 10.4081/jlimnol.2010.s1.201
Yu, 2018, Modeling the forest phosphorus nutrition in a southwestern Swedish forest site, Ecol. Model., 369, 88, 10.1016/j.ecolmodel.2017.12.018
Zhang, 2018, Global negative effects of nitrogen deposition on soil microbes, ISME J., 12, 1817, 10.1038/s41396-018-0096-y