This study analyzes storm-triggered landslides in the US Appalachians, in the current geological setting. Concave valleys that favor the convergence of surface runoff are the primary locales for landslides. If the slopes are weathered to the same degree and have the same vegetation coverage, slope orientation (azimuthal) is not critical for slope stability. However, it is found that for the region south of the Black Mountains (North Carolina), north-facing slopes are more prone to slide, because, for the regions not limited by water availability (annual precipitation), the northern slopes usually are grass slopes. For the slopes of the Blue Ridge Mountains, south facing slopes are more prone to slide. Gravity measurements over the past decade reveal that geological conditions, the chute system and underground cracks over the region are stable. Future changes in storm-triggered landslide frequency are primarily controlled by changes in extreme precipitation. Thus, a series of ensemble climate model experiments is carried out to investigate possible changes in future extreme precipitation events, using a weather model forced by atmospheric perturbations from ensemble climate models. Over 50 locations are identified as prone to future landslides. Many of these locales are natural habitats to the Appalachian salamanders. In a future warmer climate, more severe extreme precipitation events are projected because of increased atmospheric water vapor and more frequent passages of tropical cyclone remnants. There is also a likely shift of tropical cyclone tracks and associated extreme precipitations, and the cluster center of Appalachians’s scarps is expected to move westward, with ecological consequences for the endemic salamanders.
KeywordsExtreme PrecipitationClimate ChangeLandslidesFlash FloodsEndemic Salamanders to AppalachiansEcosystem in MountainsTropical Cyclone Remnants and Extra-Tropical TransitionSEGMENT-Landslide
IPCC, AR5 (2013) Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. https://www.ipcc-wg1.unibe.ch/
Ren, D., Leslie, L. and Karoly, D. (2008) Mudslide Risk Analysis Using a New Constitutive Relationship for Granular Flow. Earth Interactions, 12, 1-16. http://dx.doi.org/10.1175/2007EI237.1
Ren, D., Wang, J., Fu, R., Karoly, D., Hong, Y., Leslie, L., Fu, C. and Huang, G. (2009) Mudslide Caused Ecosystem Degradation Following the Wenchuan Earthquake 2008. Geophysical Research Letters, 36, Article ID: L05401. http://dx.doi.org/10.1029/2008GL036702
Ren, D., Leslie, L., Fu, R. and Dickinson, R. (2011) Predicting Storm-Triggered Landslides and Ecological Consequences. Bulletin of the American Meteorological Society, 92, 129-139. http://dx.doi.org/10.1175/2010BAMS3017.1
Ren, D. (2014) Storm-Triggered Landslides in Warmer Climates. Springer-Verlag, Berlin.
Ren, D. (2014) The Devastating Zhouqu Storm-Triggered Debris Flow of August 2010: Likely Causes and Possible Trends in a Future Warming Climate. Journal of Geophysical Research, 119, 3643-3662. http://dx.doi.org/10.1002/2013jd020881
Williams, G. and Guy, H. (1973) Erosional and Depositional Aspects of Hurricane Camille in Virginia, 1969. US Geological Survey Professional Paper 804, 80 p.
Gryta, J.J. and Bartholomew, M. (1989) Factors Influencing the Distribution of Debris Avalanches Associated with the 1969 Hurricane Camille in Nelson County, Virginia. Geological Society of America Special Papers 236, 15-28. http://dx.doi.org/10.1130/spe236-p15
Iverson, R. (1997) The Physics of Debris Flows. Review of Geophysics, 35, 245-296. http://dx.doi.org/10.1029/97RG00426
Ren, D., Lynch, M., Leslie, L.M. and LeMarshall, J. (2014) Sensitivity of Tropical Cyclone Tracks and Intensity to Ocean Surface Temperature: Four Cases in Four Different Basins. Tellus A, 66, 24212. http://dx.doi.org/10.3402/tellusa.v66.24212
Lackmann, G. (2013) The South-Central US Flood of May 2010, Present and Future. Journal of Climate, 26, 4688-4709. http://dx.doi.org/10.1175/JCLI-D-12-00392.1
Trenberth, K. (1999) Conceptual Framework for Changes of Extremes of the Hydrological Cycle with Climate Change. Climatic Change, 42, 327-339. http://dx.doi.org/10.1023/A:1005488920935
Blue Mountain Ecosystem
Vaidya, S. and Kulkarni, J. (2007) Simulation of Heavy Precipitation over Santacruz, Mumbai on 26 July 2005, Using Numerical Model. Meteorology and Atmospheric Physics, 98, 55-66. http://dx.doi.org/10.1007/s00703-006-0233-4
Bassill, N. (2014) Accuracy of Early GFS and ECMWF Sandy (2012) Track Forecasts: Evidence for a Dependence on Cumulus Parameterization. GRL, 41, 3274-3281. http://dx.doi.org/10.1002/2014GL059839
Ren, D. and Leslie, L.M. (2014) Changes in Tropical Cyclone Activities over Northwest Western Australia in the Past Fifty Years and a Perspective into Future Fifty Years. Earth Interactions, 19, 1-24. http://dx.doi.org/10.1175/EI-D-14-0006.1
USGS 2004. http://srtm.usgs.gov.
Orlanski, I. (1982) Orographically Induced Vortex Centers. Proceedings of the First Sino-American Workshop on Mountain Meteorology, Beijing, 18-23 May 1982, 699 p.
Hart, R. and Evans, J.L. (2001) A Climatology of Extratropical Transition of Atlantic Tropical Cyclones. Journal of Climate, 14, 546-564. http://dx.doi.org/10.1175/1520-0442(2001)014 2.0.CO;2
Rader, E.K. and Evans, N.H. (1993) Geologic Map of Virginia-Expanded Explanation. Virginia Division of Mineral Resources, Charlottesville, 80 p.
Bloomer, R.O. and Werner, H.J. (1955) Geology of the Blue Ridge Region in Central Virginia. Geological Society of America Bulletin, 66, 579-606. http://dx.doi.org/10.1130/0016-7606(1955)66[579:GOTBRR]2.0.CO;2
Famiglietti, J. and Rodell, M. (2013) Water in the Balance. Science, 340, 1300-1301. http://dx.doi.org/10.1126/science.1236460
Scanlon, B.R., Faunt, C.C., Longuevergne, L., Reedy, R.C., Alley, W.M., McGuire, V.L. and McMahon, P.B. (2012) Groundwater Depletion and Sustainability of Irrigation in the US High Plains and Central Valley. Proceedings of the National Academy of Sciences of the United States of America, 109, 9320-9325. http://dx.doi.org/10.1073/pnas.1200311109
Voss, K., Famiglietti, J., Lo, M., de Linage, C., Rodell, M. and Swenson, S. (2013) Groundwater Depletion in the Middle East from GRACE with Implications for Transboundary Water Management in the Tigris-Euphrates-Western Iran Region. Water Resources Research, 49, 904-914. http://dx.doi.org/10.1002/wrcr.20078
Eswaran, H., Rice, T., Ahrens, R. and Stewart, B., Eds. (2002) Soil Classification: A Global Reference. CRC Press, Boca Raton.
Buol, S., Southard, R., Graham, R. and McDabiel, P. (2003) Soil Genesis and Classification. 5th Edition, Iowa State University Press, Ames.
ASTM (1985) Standard Test Method for Classification of Soils for Engineering Purposes. American Society for Testing and Materials, ASTM Designation D 2487-83, Annual Book of ASTM Standards, Section 4, Volume 04.08, 395-408.
Hogentogler, C. and Terzaghi, K. (1929) Interrelationship of Load, Road and Subgrade. Public Roads, 10, 37-64.
Soil Survey Division Staff (1993) Soil Survey Manual. USDA Handbook No. 18, US Government Printing Office, Washington DC.
Lawrence, D. and Slater, A. (2008) Incorporating Organic Soil into a Global Climate Model. Climate Dynamics, 30, 145-160. http://dx.doi.org/10.1007/s00382-007-0278-1
Homer, C., Huang, C., Yang, L., Wylie, B. and Coan, M. (2004) Development of a 2001 National Landcover Database for the United States. Photogrammetric Engineering and Remote Sensing, 70, 829-840. http://dx.doi.org/10.14358/PERS.70.7.829
Belward, A.S., Ed. (1996) The IGBP-DIS Global 1 km Land Cover Data Set “DISCOVER”: Proposal and Implementation Plans. Report WP No. 13, IGBP-DIS, Stockholm.
Hansen, D. (2001) Defining Cooperative Geospatial Projects between Organizations. In: Hansen, D.T., Singhroy, V.H., Pierce, R.R. and Johnson, A.I., Eds., Spatial Methods for Solution of Environmental and Hydrologic Problems: Science, Policy, and Standardization, ASTM STP 1420, American Society for Testing and Materials, West Conshohocken.
Zhao, M. and Running, S. (2010) Drought-Induced Reduction in Global Terrestrial Net Primary Production from 2000 through 2009. Science, 329, 940-943. http://dx.doi.org/10.1126/science.1192666
Coles, S. (2001) An Introduction to Statistical Modeling of Extreme Values. Springer Series in Statistics, Springer-Verlag, London, 224. http://dx.doi.org/10.1007/978-1-4471-3675-0
Balkema, A. and de Haan, L. (1974) Residual Lifetime at Great Age. Annals of Probability, 2, 792-804. http://dx.doi.org/10.1214/aop/1176996548
Karl, T. and Knight, R. (1998) Secular Trends of Precipitation Amount, Frequency, and Intensity in the USA. Bulletin of the American Meteorological Society, 79, 231-241. http://dx.doi.org/10.1175/1520-0477(1998)079 2.0.CO;2
Semenov, V. and Bengtsson, L. (2002) Secular Trends in Daily Precipitation Characteristic Greenhouse Gas Simulation with a Coupled AOGCM. Climate Dynamics, 19, 123-140. http://dx.doi.org/10.1007/s00382-001-0218-4
Groisman, P.Y., Knight, R.W., Easterling, D.R., Karl, T.R., Hegerl, G.C. and Razuvaev, V.N. (2005) Trends in Intense Precipitation in the Climate Record. Journal of Climate, 18, 1326-1350. http://dx.doi.org/10.1175/JCLI3339.1
Allen, M.R. and Ingram, W.J. (2002) Constraints on Future Changes in Climate and the Hydrological Cycle. Nature, 419, 224-232. http://dx.doi.org/10.1038/nature01092
Sidle, R. (1992) A Theoretical Model of the Effects of Timber Harvesting on Slope Stability. Water Resources Research, 28, 1897-1910. http://dx.doi.org/10.1029/92WR00804
Timoshenko, S. and Gere, J. (1963) Theory of Elastic Stability. 2nd Edition, McGraw-Hill, New York.
Townsend, F. and Gilbert, P. (1973) Tests to Measure Residual Strengths of Some Clay Shales. Ge?otechnique, 23, 267-271. http://dx.doi.org/10.1680/geot.1973.23.2.267
Doswell III, C.A. (1987) The Distinction between Large-Scale and Mesoscale Contribution to Severe Convection: A Case Study Example. Weather and Forecasting, 2, 3-16. http://dx.doi.org/10.1175/1520-0434(1987)002 2.0.CO;2
Groisman, P.Y., Knight, R.W. and Karl, T.R. (2012) Changes in Intense Precipitation over the Central United States. Journal of Hydrometeorology, 13, 47-66. http://dx.doi.org/10.1175/JHM-D-11-039.1
Carlson, T., Benjamin, S., Forbes, G. and Li, Y. (1983) Elevated Mixed Layers in the Regional Severe Storm Environment: Conceptual Model and Case Studies. Monthly Weather Review, 111, 1453-1473. http://dx.doi.org/10.1175/1520-0493(1983)111 2.0.CO;2