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7 - Implications for hazard and risk of seismic and volcanic responses to climate change in the high-mountain cryosphere

from Part II - Processes

Published online by Cambridge University Press:  05 September 2015

Christian Huggel
Affiliation:
Universität Zürich
Mark Carey
Affiliation:
University of Oregon
John J. Clague
Affiliation:
Simon Fraser University, British Columbia
Andreas Kääb
Affiliation:
Universitetet i Oslo
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The High-Mountain Cryosphere
Environmental Changes and Human Risks
, pp. 109 - 126
Publisher: Cambridge University Press
Print publication year: 2015

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References

McGuire, WJ, Potential for a hazardous geospheric response to projected future climate changes. Philosophical Transactions of the Royal Society A, 368 (2010), 23172346.CrossRefGoogle ScholarPubMed
Lundquist, J, Lagerbäck, R, The Pärve fault: a lateglacial fault in the Precambrian of Swedish Lapland. Geologiska Föreningens i Stockholm Förhandlingar, 98 (1976), 4551.CrossRefGoogle Scholar
Mörner, N-A, Faulting, fracturing and seismic activity as a function of glacial-isostasy in Fennoscandia. Geology, 6 (1978), 4145.2.0.CO;2>CrossRefGoogle Scholar
Lagerbäck, R, Neotectonic structures in northern Sweden. Geologiska Föreningens i Stockholm Förhandlingar, 100 (1979), 271278.Google Scholar
Jull, M, McKenzie, D, The effect of deglaciation on mantle melting beneath Iceland. Journal of Geophysical Research, 101 (1996), 2181521828.CrossRefGoogle Scholar
Maclennan, J, Jull, M, McKenzie, D, Slater, L, Gronvold, K, The link between volcanism and deglaciation in Iceland. Geochemistry, Geophysics, Geosystems, 3 (2002), doi:10.1029/2001GC00082.CrossRefGoogle Scholar
Beck, C, Manalt, F, Chapron, E, Rensbergen, PV, Batist, MD, Enhanced seismicity in the early post-glacial period: evidence from the post-Würm sediments of Lake Annecy, northwestern Alps. Journal of Geodynamics, 22 (1996), 155171.CrossRefGoogle Scholar
Becker, A, Ferry, M, Monecke, K, Schnellmann, M, Giardini, D, Multiarchive palaeoseismic record of late Pleistocene and Holocene strong earthquakes in Switzerland. Tectonophysics, 400 (2005), 153177.CrossRefGoogle Scholar
Ferry, M, Meghraoni, M, Delouis, B, Giardini, D, Evidence for Holocene palaeoseismicity along the Basel–Reinach active normal fault (Switzerland): a seismic source for the 1356 Basel earthquake in the Upper Rhine Graben. Geophysical Journal International, 160 (2005), 554572.CrossRefGoogle Scholar
Hampel, A, Hetzel, R, Maniatis, G, Response of faults to climate-driven changes in ice and water volumes on the Earth's surface. Philosophical Transactions of the Royal Society A, 368 (2010), 25012518.CrossRefGoogle ScholarPubMed
Hampel, A, Hetzel, R, Maniatis, G, Response of faults to climate-driven changes in ice and water volumes on the Earth's surface. In Climate Forcing of Geological Hazards, ed. McGuire, B., Maslin, M. (Chichester: John Wiley & Sons, 2013), pp. 124142.CrossRefGoogle Scholar
Tuffen, H, How will melting of ice affect volcanic hazards in the twenty-first century? Philosophical Transactions of the Royal Society A, 368 (2010), 25352578.CrossRefGoogle ScholarPubMed
Tuffen, H, Melting ice and volcanic hazards in the 21st century. In Climate Forcing of Geological Hazards, ed. McGuire, B., Maslin, M. (Chichester: John Wiley & Sons, 2013), pp. 78107.CrossRefGoogle Scholar
Intergovernmental Panel on Climate Change (IPCC), Climate Change 2013: The Physical Basis (Cambridge: Cambridge University Press, 2014).Google Scholar
Sauber, JM, Molnia, BF, Glacier ice mass fluctuations and fault instability in tectonically active southern Alaska. Global Planetary Change, 42 (2004), 279293.CrossRefGoogle Scholar
Stewart, IS, Sauber, J, Rose, J, Glacio-seismotectonics: ice sheets, crustal deformation and seismicity. Quaternary Science Reviews, 19 (2000), 13671389.CrossRefGoogle Scholar
Muir-Wood, R, Deglaciation seismotectonics: a principal influence on intraplate seismogenesis at high latitudes. Quaternary Science Reviews, 19 (2000), 13991411.CrossRefGoogle Scholar
Fenton, C, Postglacial faulting in eastern Canada: an annotated bibliography. Geological Survey of Canada Open-File Report 2774 (1994).CrossRefGoogle Scholar
Arvidsson, R, Fennoscandian earthquakes: whole crustal rupturing related to postglacial rebound. Science, 274 (1996), 744746.CrossRefGoogle Scholar
Dehls, JF, Olesen, O, Olsen, L, Harald-Blikra, L, Neotectonic faulting in northern Norway; the Stuoragurra and Nordmannvikdalen postglacial faults. Quaternary Science Reviews, 19 (2000), 14471460.CrossRefGoogle Scholar
Lagerbäck, R, Postglacial Faulting and Palaeoseismicity in the Lansjärv Area, Northern Sweden (Stockholm: Swedish Nuclear Fuel and Waste Management Co., 1988).Google Scholar
Lagerbäck, R, Witscard, F, Neotectonics in Northern Sweden: Geological Investigations. (Stockholm: Swedish Nuclear Fuel and Waste Management Co., 1983).Google Scholar
Ustaszewski, M, Hampel, A, Pfiffner, OA, Composite faults in the Swiss Alps formed by the interplay of tectonics, gravitation and postglacial rebound: an integrated field and modelling study. Swiss Journal of Geoscience, 101 (2008), 223235.CrossRefGoogle Scholar
Ehlers, J, Gibbard, P, Quaternary Glaciations: Extent and Chronology (Amsterdam: Elsevier, 2004).Google Scholar
Larsen, CF, Motyka, RJ, Freymueller, JT, Echelmeyer, KA, Ivins, EI, Rapid viscoelastic uplift in southeast Alaska caused by post-Little Ice Age glacial retreat. Earth and Planetary Science Letters, 237 (2005), 548560.CrossRefGoogle Scholar
Sauber, J, Molnia, BF, Glacier ice mass fluctuations and fault instability in tectonically active Southern Alaska. Global Planetary Change, 42 (2004), 279293.CrossRefGoogle Scholar
Doser, D, West, KR, Sauber, J, Seismicity of the Bering Glacier region and its relation to tectonic and glacial processes. Tectonophysics, 439 (2007), 119127.CrossRefGoogle Scholar
Talwani, P, On the nature of reservoir-induced siesmicity. Pure and Applied Geophysics, 150 (1997), 473492.CrossRefGoogle Scholar
Ge, S, Liu, M, Lu, N, Godt, JW, Luo, G, Did the Zipingpu Reservoir trigger the 2008 Wenchuan earthquake? Geophysical Research Letters, 36 (2009), doi:10.1029/2009GL040349.CrossRefGoogle Scholar
Hainzl, S, Kraft, T, Wassermann, J, Igel, H, Evidence for rain-triggered earthquake activity. Geophysical Research Letters, 33 (2006), L19303.CrossRefGoogle Scholar
Christiansen, LB, Hurwitz, S, Ingebritsen, S, Annual modulation of seismicity along the San Andreas Fault near Parkfield, CA. Geophysical Research Letters, 34 (2007), L04306.CrossRefGoogle Scholar
Strasser, M, Schindler, C, Anselmetti, FS, Late Pleistocene earthquake-triggered moraine dam failure and outburst of Lake Zurich, Switzerland. Journal of Geophysical Research 113 (2008), doi:10.1029/2007JF000802.CrossRefGoogle Scholar
Palmer, AP, Rose, J, Lowe, J, Macleod, A, Annually resolved events of Younger Dryas glaciation in Lochaber (Glen Roy and Glen Spean), western Scottish Highlands. Journal of Quaternary Science, 25 (2010), 581596.CrossRefGoogle Scholar
Jull, M, McKenzie, D, The effect of deglaciation on mantle melting beneath Iceland. Journal of Geophysical Research, 101 (1996), 2181521828.CrossRefGoogle Scholar
Maclennan, J, Jull, M, McKenzie, DP, Slater, L, Gronvold, K, The link between volcanism and deglaciation in Iceland. Geochemistry, Geophysics, Geosystems, 3 (2002), 125.CrossRefGoogle Scholar
McGuire, WJ, Howarth, RJ, Firth, CR, et al., Correlation between rate of sea level change and frequency of explosive volcanism in the Mediterranean. Nature, 389 (1997), 473476.CrossRefGoogle Scholar
Nowell, D, Jones, C, Pyle, D, Episodic Quaternary volcanism in France and Germany. Journal of Quaternary Science, 21 (2006), 645675.CrossRefGoogle Scholar
Jellinek, AM, Manga, M, Saar, MO, Did melting glaciers cause volcanic eruptions in eastern California? Probing the mechanics of dike formation. Journal of Geophysical Research, 109 (2004), B09206.CrossRefGoogle Scholar
Bigg, G, Clark, C, Hughes, A, A last glacial ice sheet on the Pacific Russian coast and catastrophic change arising from coupled ice–volcanic interaction. Earth and Planetary Science Letters, 265 (2008), 559570.CrossRefGoogle Scholar
Bacon, C, Lanphere, M, Eruptive history and geochronology of Mount Mazama and the Crater Lake region, Oregon. Geological Society of American Bulletin, 118 (2006), 13311359.CrossRefGoogle Scholar
Mee, K, Tuffen, H, Gilbert, JS, Snow-contact volcanic facies at Nevados de Chillan volcano, Chile, and implications for reconstructing past eruptive environments. Bulletin of Volcanology, 68 (2006), 363376.CrossRefGoogle Scholar
Gardeweg, MC, Sparks, RSJ, Matthews, SJ, Evolution of Lascar volcano, northern Chile. Journal of the Geological Society, 155 (1988), 89104.CrossRefGoogle Scholar
Singer, BS, Jicha, BR, Harper, MA, Naranjo, JA, Lara, LE, Moreno, H, Eruptive history, geochronology, and magmatic evolution of the Puyehue-Cordón Caulle volcanic complex, Chile. Geological Society of America Bulletin, 120 (2008), 599618.CrossRefGoogle Scholar
Huybers, P, Langmuir, C, Feedback between deglaciation, volcanism, and atmospheric CO2. Earth and Planetary Science Letters, 286 (2009), 479491.CrossRefGoogle Scholar
Capra, L, Abrupt climatic changes as triggering mechanisms of massive volcanic collapses. Journal of Volcanology and Geothermal Research, 155 (2008), 329333.CrossRefGoogle Scholar
Lowe, R, Volcano lateral collapse events in the Quaternary. Masters thesis (University College London, 2007).Google Scholar
Deeming, KR, McGuire, B, Harrop, P, Climate forcing of volcano lateral collapse: evidence from Mount Etna, Sicily. Philosophical Transactions of the Royal Society A, 368 (2010), 25592578.CrossRefGoogle ScholarPubMed
Pagli, C, Sigmundsson, F, Lund, B, et al., Glacio-isostatic deformation around the Vatnajökull ice cap, Iceland, induced by recent climate warming: GPS observations and finite element modeling. Journal of Geophysical Research, 112 (2007), B08405.CrossRefGoogle Scholar
Pagli, C, Sigmundsson, F, Will present day glacier retreat increase volcanic activity? Stress induced by recent glacier retreat and its effect on magmatism at the Vatnajökull ice cap, Iceland. Geophysical Research Letters, 35 (2008), L09304.CrossRefGoogle Scholar
Vuille, M, Francou, B, Wagnon, P, et al., Climate change and tropical Andean glaciers: past, present and future. Earth Science Reviews, 89 (2008), 7996.CrossRefGoogle Scholar
Ceballos, JL, Euscátegui, C, Ramírez, J, et al., Fast shrinkage of tropical glaciers in Colombia. Annals of Glaciology, 43 (2006), 194201.CrossRefGoogle Scholar
Huggel, C, Ceballos, JL, Pulgarín, B, Ramírez, J, Thouret, J-C, Review and reassessment of hazards owing to volcano–glacier interactions in Colombia. Annals of Glaciology, 45 (2007), 128136.CrossRefGoogle Scholar
Sigmundsson, F, Pinel, V, Lund, B, et al., Climate effects on volcanism: influence on magmatic systems of loading and unloading from ice mass variations with examples from Iceland. Philosophical Transactions of the Royal Society A, 368 (2010), 25192534.CrossRefGoogle ScholarPubMed
Sigmundsson, F, Albino, F, Schmidt, P, et al., Multiple effects of ice load changes and associated stress change on magmatic systems. In Climate Forcing of Geological Hazards, ed. McGuire, B., Maslin, M. (Chichester: John Wiley & Sons, 2013), pp. 1081123.CrossRefGoogle Scholar
Björnsson, H, Pálsson, F, Icelandic glaciers. Jökull, 58 (2008), 365386.CrossRefGoogle Scholar
Geyer, A, Bindeman, I, Glacial influence on caldera-forming eruptions. Journal of Volcanology and Geothermal Research, 202 (2011), 127142.CrossRefGoogle Scholar
Brondi, F, Salvatori, L, The 5–6 May (1998) mudflows in Campania, Italy. In Lessons Learned from Landslide Disasters in Europe, ed. Hervás, J. (Brussels: European Commission Joint Research Centre, 2003), pp. 516.Google Scholar
Scott, KM, Vallance, JW, Kerle, N, Macías, JL, Strauch, W, Devoli, G, Catastrophic precipitation-triggered lahar at Casita volcano, Nicaragua: occurrence, bulking and transformation. Earth Surface Processes and Landforms, 30 (2005), 5979.CrossRefGoogle Scholar
Carrivick, JL, Manville, V, Cronin, SJ, A fluid dynamics approach to modelling the 18th March (2007) lahar at Mt. Ruapehu, New Zealand. Bulletin of Volcanology, 71 (2009), 153169.CrossRefGoogle Scholar
Bilham, R, The seismic future of cities. Bulletin of Earthquake Engineering, 7 (2009), 839887.CrossRefGoogle Scholar
Siebert, L, Simkin, T, Kimberly, P, Volcanoes of the World. (Berkeley, CA: Smithsonian Institution and University of California Press, 2010).Google Scholar
Eliasson, J, Larsen, G, Gudmundsson, MT, Sigmundsson, F, Probabilistic model for eruptions and associated flood events in the Katla caldera, Iceland. Computational Geosciences, 10 (2006), 179200.CrossRefGoogle Scholar
McNutt, S, Beavan, R, Eruptions of Pavlof volcano and their possible modulation by ocean load and tectonic stresses. Journal of Geophysical Research, 92 (1987), 1150911523.CrossRefGoogle Scholar
McNutt, S, Eruptions of Pavlof Volcano, Alaska, and their possible modulation by ocean load and tectonic stresses: re-evaluation of the hypothesis based on new data from 1984–1998, Pure and Applied Geophysics, 155 (1999), 701712.CrossRefGoogle Scholar
Mason, B, Pyle, D, Dade, W, Jupp, T, Seasonality of volcanic eruptions. Journal of Geophysical Research, 109 (2004), doi:10.1029/2002JB002293.CrossRefGoogle Scholar
Voight, B, The 1985 Nevado del Ruiz volcano catastrophe: anatomy and retrospection. Journal of Volcanology and Geothermal Research, 42 (1990), 151188.CrossRefGoogle Scholar
BBC News, Flight disruptions cost airlines $1.7 billion, says IATA. April 21, 2010. Archived from the original on May 12, 2011. Retrieved March 12, 2014.Google Scholar

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