Earthquake‐Induced Chains of Geologic Hazards: Patterns, Mechanisms, and Impacts
Цепи геологических опасностей, вызванных землетрясениями: закономерности, механизмы и последствия
2019-05-07
SCID: 54.1/kptsp42a
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debris flowsearthquake-induced landslidesgeologic hazard chainsgeomorphic consequenceslandslide-dammed lakes
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Abstract (AI)
Abstract Large earthquakes initiate chains of surface processes that last much longer than the brief moments of strong shaking. Most moderate‐ and large‐magnitude earthquakes trigger landslides, ranging from small failures in the soil cover to massive, devastating rock avalanches. Some landslides dam rivers and impound lakes, which can collapse days to centuries later, and flood mountain valleys for hundreds of kilometers downstream. Landslide deposits on slopes can remobilize during heavy rainfall and evolve into debris flows. Cracks and fractures can form and widen on mountain crests and flanks, promoting increased frequency of landslides that lasts for decades. More gradual impacts involve the flushing of excess debris downstream by rivers, which can generate bank erosion and floodplain accretion as well as channel avulsions that affect flooding frequency, settlements, ecosystems, and infrastructure. Ultimately, earthquake sequences and their geomorphic consequences alter mountain landscapes over both human and geologic time scales. Two recent events have attracted intense research into earthquake‐induced landslides and their consequences: the magnitude M 7.6 Chi‐Chi, Taiwan earthquake of 1999, and the M 7.9 Wenchuan, China earthquake of 2008. Using data and insights from these and several other earthquakes, we analyze how such events initiate processes that change mountain landscapes, highlight research gaps, and suggest pathways toward a more complete understanding of the seismic effects on the Earth's surface.
Key Findings
1
Earthquake sequences and their geomorphic effects reshape mountain landscapes across human and geologic timescales, while major research gaps remain in understanding these linked surface processes.
2
Earthquake-driven sediment delivery alters river channels through bank erosion, floodplain accretion, and avulsions, changing flooding risks and affecting settlements, ecosystems, and infrastructure.
3
Earthquake-generated landslide deposits and mountain fractures can be remobilized by rainfall and sustain elevated landslide and debris-flow activity for decades.
4
Earthquake-triggered landslides can dam rivers, creating lakes that may fail days to centuries later and cause downstream flooding over hundreds of kilometers.
5
Most moderate- and large-magnitude earthquakes trigger landslides, ranging from shallow soil failures to catastrophic rock avalanches.
Research Object
Earthquake-induced chains of geologic hazards in mountain landscapes (including landslides, landslide-dammed lakes, debris flows, slope fractures, and downstream sediment transport)
Research Subject
the patterns, mechanisms, cascading impacts, and landscape-scale evolution of earthquake-triggered landslides, river damming and flooding, debris remobilization, erosion, sediment transport, and channel avulsion
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2019-05-07
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