HR: 08:00h
AN: S31C-01 [Abstracts]
TI: Interpretations on the Geologic Setting of Yogyakarta Earthquakes 2006 (Central Java, Indonesia) Based on Integration of Aftershock Monitoring and Existing Geologic, Geophysical and Remote Sensing Data
AU: * Setijadji, L D
EM: lucas@mine.kyushu-u.ac.jp
AF: Department of Earth Resources Engineering, Kyushu University, 744 Motooka, Nishi-ku,
Fukuoka, Japan
AU: * Setijadji, L D
EM: lucas@mine.kyushu-u.ac.jp
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Watanabe, K
EM: wat@mine.kyushu-u.ac.jp
AF: Department of Earth Resources Engineering, Kyushu University, 744 Motooka, Nishi-ku,
Fukuoka, Japan
AU: Fukuoka, K
AF: Department of Earth Resources Engineering, Kyushu University, 744 Motooka, Nishi-ku,
Fukuoka, Japan
AU: Ehara, S
EM: ehara@mine.kyushu-u.ac.jp
AF: Department of Earth Resources Engineering, Kyushu University, 744 Motooka, Nishi-ku,
Fukuoka, Japan
AU: Setiadji, Y
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Rahardjo, W
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Susilo, A
AF: Geological Research and Development Centre, Bandung, Indonesia
AU: Barianto, D H
AF: Department of Earth Resources Engineering, Kyushu University, 744 Motooka, Nishi-ku,
Fukuoka, Japan
AU: Barianto, D H
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Harijoko, A
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Sudarno, I
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Pramumijoyo, S
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Hendrayana, H
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Akmalludin, A
AF: Department of Geological Engineering, Gadjah Mada University, 2 Grafika Bulaksumur,
Yogyakarta, Indonesia
AU: Nishijima, J
AF: Department of Earth Resources Engineering, Kyushu University, 744 Motooka, Nishi-ku,
Fukuoka, Japan
AU: Itaya, T
AF: Geochronological Laboratory, Okayama University of Science, Okayama, Japan
AB:
The unprecedented 26 May 2006 Yogyakarta earthquake (central Java, Indonesia) that took victims of 5,700 lives
was generally accepted to have a depth of about 10 km and moment magnitude of 6.4. However, the definition of
location of active fault is still under debate as the epicenter of mainshock was reported quite differently by several
institutions. Many researchers believe that the Opak fault which is located at the eastern boundary of Yogyakarta
low-land area (or Yogyakarta Basin) and the high-land region of Southern Mountains was the source of year 2006
earthquakes. However, our result of aftershocks observation suggests that the ruptured zone was not located
along the Opak fault but from an unknown fault located about 10 km to the east from it and within the Southern
Mountains domain. Unfortunately, surface geologic manifestations are scarce as this area is now largely covered
by limestone. Therefore the suspected active fault system must be studied through interpretations of the
subsurface geology and evaluation of the Cenozoic geo-history of the region utilizing existing geologic,
geophysical and remote sensing data.
This work suggests that the Yogyakarta Basin is a volcano-tectonic depression formed gradually since the early
Tertiary period (Oligo-Miocene or older). Geological and geophysical evidence suggest that structural trends
changed from the Oligocene NE-SW towards the Oligo-Miocene NNE-SSW and the Plio-Pleistocene NW-SE and
E-W directions. The ruptured "X" fault during the Yogyakarta earthquakes 2006 is likely to be a NNE-SSW trending
fault which is parallel to the Opak fault and both were firstly active in the Oligo-Miocene as sinistral strike-slip
faults. However, while the Opak fault had changed into a normal faulting after the Pliocene, the evidence from Kali
Ngalang and Kali Widoro suggests that the "X" fault system was still reactivated as a strike-slip one during the
Plio-Pleistocene orogeny. As this new interpretation of active fault causes spatial discrepancy between locations
of earthquakes epicenters and highly damaged regions, other geo-engineering factors must be considerably
important in determining the final scale of seismic hazards. The most vulnerable areas for seismic hazards are
those located nearest to the ruptured fault and are underlain by thick Quaternary unconsolidated deposits. In case
of regions along the fault line, seismic hazards seem to reach more distance region, such as the case of
Gantiwarno region, as the seismic waves can travel more easily along the fault line.
DE: 7215 Earthquake source observations (1240)
SC: Seismology [S]
MN: 2007 Joint Assembly