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Earthquake energy dissipation in a fracture mechanics framework

  • David S. Kammer
  • , Gregory C. McLaskey
  • , Rachel E. Abercrombie
  • , Jean Paul Ampuero
  • , Camilla Cattania
  • , Massimo Cocco
  • , Luca Dal Zilio
  • , Georg Dresen
  • , Alice Agnes Gabriel
  • , Chun Yu Ke
  • , Chris Marone
  • , Paul Antony Selvadurai
  • , Elisa Tinti

Research output: Contribution to journalArticlepeer-review

Abstract

Earthquakes are rupture-like processes that propagate along tectonic faults and cause seismic waves. The propagation speed and final area of the rupture, which determine an earthquake’s potential impact, are directly related to the nature and quantity of the energy dissipation involved in the rupture process. Here, we present the challenges associated with defining and measuring the energy dissipation in laboratory and natural earthquakes across many scales. We discuss the importance and implications of distinguishing between energy dissipation that occurs close to and far behind the rupture tip, and we identify open scientific questions related to a consistent modeling framework for earthquake physics that extends beyond classical Linear Elastic Fracture Mechanics.

Original languageEnglish (US)
Article number4736
JournalNature communications
Volume15
Issue number1
DOIs
StatePublished - Dec 2024

All Science Journal Classification (ASJC) codes

  • General Chemistry
  • General Biochemistry, Genetics and Molecular Biology
  • General Physics and Astronomy

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