HR: 1340h
AN: S13D-1081 [Abstracts]
TI: The Physics of Earthquakes: In the Quest for a Unified Theory (or Model) That Quantitatively Describes
the Entire Process of an Earthquake Rupture, From its Nucleation to the Dynamic Regime and to its
Arrest
AU: * Ohnaka, M
EM: ohnaka@g05.itscom.net
AF: The University of Tokyo, Bunkyo-ku, Tokyo, 113-0032
Japan
AU: * Ohnaka, M
EM: ohnaka@g05.itscom.net
AF: University College London, Gower Street, London, WC1E 6BT
United Kingdom
AB:
For the past four decades, great progress has been made in understanding earthquake source processes. In particular, recent
progress in the field of the physics of earthquakes has contributed substantially to unraveling the earthquake generation
process in quantitative terms. Yet, a fundamental problem remains unresolved in this field. The constitutive law that governs
the behavior of earthquake ruptures is the basis of earthquake physics, and the governing law plays a fundamental role in
accounting for the entire process of an earthquake rupture, from its nucleation to the dynamic propagation to its arrest,
quantitatively in a unified and consistent manner. Therefore, without establishing the rational constitutive law, the physics
of earthquakes cannot be a quantitative science in a true sense, and hence it is urgent to establish the rational
constitutive law. However, it has been controversial over the past two decades, and it is still controversial, what the
constitutive law for earthquake ruptures ought to be, and how it should be formulated. To resolve the controversy is a
necessary step towards a more complete, unified theory of earthquake physics, and now the time is ripe to do so.
Because of its fundamental importance, we have to discuss thoroughly and rigorously what the constitutive law ought to be
from the standpoint of the physics of rock friction and fracture on the basis of solid evidence. There are prerequisites for
the constitutive formulation. The brittle, seismogenic layer and individual faults therein are characterized by
inhomogeneity, and fault inhomogeneity has profound implications for earthquake ruptures. In addition, rupture phenomena
including earthquakes are inherently scale dependent; indeed, some of the physical quantities inherent in rupture exhibit
scale dependence. To treat scale-dependent physical quantities inherent in the rupture over a broad scale range
quantitatively in a unified and consistent manner, it is critical to formulate the governing law properly so as to
incorporate the scaling property. Thus, the properties of fault inhomogeneity and physical scaling are indispensable
prerequisites to be incorporated into the constitutive formulation. Thorough discussion in this context necessarily leads to
the consistent conclusion that the constitutive law must be formulated in such a manner that the shear traction is a primary
function of the slip displacement, with the secondary effect of slip rate or stationary contact time. This constitutive
formulation makes it possible to account for the entire process of an earthquake rupture over a broad scale range
quantitatively in a unified and consistent manner.
DE: 7260 Theory and modeling
DE: 5100 PHYSICAL PROPERTIES OF ROCKS
DE: 5104 Fracture and flow
DE: 7200 SEISMOLOGY
DE: 7209 Earthquake dynamics and mechanics
SC: Seismology [S]
MN: 2004 AGU Fall Meeting