HR: 1330h
AN: OS22B-1154 [PDF]
TI: Volcanic Tsunami Generation in the Aleutian Arc of Alaska
AU: * Waythomas, C F
EM: chris@usgs.gov
AF: U.S.Geological Survey Alaska Volcano Observatory, 4230 University Drive
Suite 201, Anchorage, AK 99508 United States
AU: Watts, P
EM: phil.watts@appliedfluids.com
AF: Applied Fluids Engineering, Inc., Private Mail Box #237, 5710 E. 7th Street, Long Beach, CA 90803 United States
AB:
Many of the worlds active volcanoes are situated on or near coastlines, and during eruptions the transfer of mass from
volcano to sea is a potential source mechanism for tsunamis. Flows of granular material off of volcanoes, such as
pyroclastic flow, debris avalanche, and lahar, often deliver large volumes of unconsolidated debris to the ocean that have a
large potential tsunami hazard. The deposits of both hot and cold volcanic grain flows produced by eruptions of Aleutian arc
volcanoes are exposed at many locations along the coastlines of the Bering Sea, North Pacific Ocean, and Cook Inlet
indicating that the flows entered the sea and in some cases may have initiated tsunamis. We evaluate the process of tsunami
generation by granular subaerial volcanic flows using examples from Aniakchak volcano in southwestern Alaska, and Augustine
volcano in southern Cook Inlet. Evidence for far-field tsunami inundation coincident with a major caldera-forming eruption
of Aniakchak volcano ca. 3.5 ka has been described and is the basis for one of our case studies. We perform a numerical
simulation of the tsunami using a large volume pyroclastic flow as the source mechanism and compare our results to field
measurements of tsunami deposits preserved along the north shore of Bristol Bay. Several attributes of the tsunami
simulation, such as water flux and wave amplitude, are reasonable predictors of tsunami deposit thickness and generally agree
with the field evidence for tsunami inundation.
At Augustine volcano, geological investigations suggest that as many as 14 large volcanic-rock avalanches have reached the
sea in the last 2000 years, and a debris avalanche emplaced during the 1883 eruption may have initiated a tsunami observed
about 80 km east of the volcano at the village of English Bay (Nanwalek) on the coast of the southern Kenai Peninsula. By
analogy with the 1883 event, previous studies concluded that tsunamis could have been generated many times in the past. If
so, geological evidence of tsunamis, such as tsunami deposits on land, should be found in the area around Augustine Island.
Paradoxically, unequivocal evidence for tsunami inundation has been found. Augustine Volcano is the most historically active
volcano in the Cook Inlet region and a future tsunami from the volcano would have devastating consequences to villages,
towns, oil-production facilities, and the fishing industry, especially if it occurred at high tide (the tidal range in this
area is about 5 m). Numerical simulation experiments of tsunami generation, propagation and inundation using a subaerial
debris avalanche source at Augustine volcano indicate only modest wave generation because of the shallow water surrounding
the volcano (maximum water depth about 25 m).
Lahar flows produced during eruptions at snow and ice clad volcanoes in the Aleutian arc also deliver copious amounts of
sediment to the sea. These flows only rarely transform to subaqueous debris flows that may become tsunamigenic. However, the
accumulation of loose, unconsolidated sediment on the continental shelf may lead to subaqueous debris flows and landslides if
these deposits become mobilized by large earthquakes. Tsunamis produced by this mechanism could potentially reach coastlines
all along the Pacific Rim.
Finally, recent work in the western Aleutian Islands indicates that many of the island volcanoes in this area have
experienced large-scale flank collapse. Because these volcanoes are surrounded by deep water, the tsunami hazard associated
with a future sector collapse could be significant.
DE: 4564 Tsunamis and storm surges
DE: 8499 General or miscellaneous
SC: Ocean Sciences [OS]
MN: 2003 Fall Meeting