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TSUNAMIS Alexandra Norris

TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

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Page 1: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

TSUNAMIS Alexandra Norris

Page 2: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

Tsunamis

Deep water• Small amplitudes and long wavelengths• Travel at well over 800 km/h

Shallow water• Wave Shoaling will compress and slow the wave to around 80

km/h• Wavelength will decease and amplitude will increase

Page 3: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

Seismic tsunamis

Page 4: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

Quantification of Tsunamis

• Sieberg (1927) Soloviev-Imamura tsunami intensity scale• Hav is the average coastal height

• Hatori(1986) Tsunami magnitude Mt

• H is amplitude measured by tide gages, and Δ is the shortest path form the earthquake epicentre to the tide station

• Murty and Loomis (1980)• E is energy (ergs)

avHI ln2

1

DbHaM t loglog

19log2 EML

Page 5: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

Numerical modeling

• The MOST-3 solves the nonlinear shallow-water wave equations

• η is the wave displacement, d is the undisturbed water depth, u is the horizontal velocities, g is the acceleration due to gravity, R and is the bottom friction term.

0

ht

hu

Ruuu

dghgt

dh

Page 6: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress
Page 7: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

Meteotsunamis

• Tsunami-like waves that are induced by atmospheric processes rather than by seismic sources

• Same periods, same spatial scales, similar physical properties, but Less energetic then seismic tsunamis

• Caused by atmospheric gravity waves, pressure jumps, frontal passages, squalls, etc.

• “rissaga” in Balearic Islands, “marubbio” in Sicily, “milghuba” in Malta, “abiki” in Nagasaki Bay, Japan

Page 8: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

Megatsunamis

• Informal name for Tsunamis with extremely large amplitudes• Originate from landslides or impact events

• 1792: Mount Unzen, Japan• 1958: Lituya Bay, Alaska, USA• 1963: Vajont Dam, Italy

• http://www.youtube.com/watch?v=yN6EgMMrhdI

Page 9: TSUNAMIS Alexandra Norris. Tsunamis Deep water Small amplitudes and long wavelengths Travel at well over 800 km/h Shallow water Wave Shoaling will compress

Thank You