HR: 1340h
AN: S43C-1010 [Abstracts]
TI: Packaged Fault Model for Geometric Segmentation of Active Faults Into Earthquake Source
Faults
AU: * NAKATA, T
EM: tnakata@hiroshima-u.ac.jp
AF: Dept. Geography, Graduate School of Letters, Hiroshima Univ., Kagamiyama 1-2-3, 3Higashi-Hiroshima,
7398522
Japan
AU: KUMAMOTO, T
EM: tkuma@cc.okayama-u.ac.jp
AF: Dept. Earth Sciences, Fac. Science, Okayama Univ., Tsushimanaka 3-1-1, Okayama, 7008530
Japan
AB:
In Japan, the empirical formula proposed by Matsuda (1975) mainly based on the length of the historical surface fault
ruptures and magnitude, is generally applied to estimate the size of future earthquakes from the extent of existing active
faults for seismic hazard assessment. Therefore validity of the active fault length and defining individual segment
boundaries where propagating ruptures terminate are essential and crucial to the reliability for the accurate assessments.
It is, however, not likely for us to clearly identify the behavioral earthquake segments from observation of surface faulting
during the historical period, because most of the active faults have longer recurrence intervals than 1000 years in Japan.
Besides uncertainties of the datasets obtained mainly from fault trenching studies are quite large for fault
grouping/segmentation. This is why new methods or criteria should be applied for active fault grouping/segmentation, and one
of the candidates may be geometric criterion of active faults.
Matsuda (1990) used _gfive kilometer_h as a critical distance for grouping and separation of neighboring active faults. On
the other hand, Nakata and Goto (1998) proposed the geometric criteria such as (1) branching features of active fault traces
and (2) characteristic pattern of vertical-slip distribution along the fault traces as tools to predict rupture length of
future earthquakes. The branching during the fault rupture propagation is regarded as an effective energy dissipation
process and could result in final rupture termination. With respect to the characteristic pattern of vertical-slip
distribution, especially with strike-slip components, the up-thrown sides along the faults are, in general, located on the
fault blocks in the direction of relative strike-slip.
Applying these new geometric criteria to the high-resolution active fault distribution maps, the fault grouping/segmentation
could be more practically conducted. We tested this model successfully on the active faults generated the 1943 Tottori
earthquake, the Chojagahara-Yoshii fault zone in Chugoku district in southwest Japan, as well as the active fault system in
northern Luzon, the Philippines. Thus, we name this conceptual model as _gPackaged Fault Model_h and call the active faults
grouped by the model as _gPackaged Faults_h for individual earthquake source faults. Moreover, we come to know that active
fault mapping with _gPackaged Fault Model_h in mind enables us to find many new active fault traces (e.g., the Shigenobu
fault along the MTL in Japan).
DE: 7223 Seismic hazard assessment and prediction
DE: 7215 Earthquake parameters
SC: Seismology [S]
MN: 2004 AGU Fall Meeting