HR: 0800h
AN: GP21A-0125 [Abstracts]
TI: A Geophysical Study on the Hwasan Caldera in the Euisung Sub-basin, Korea, Using Magnetotelluric Survey
AU: * Yang, J
EM: jun95017@kordi.re.kr
AF: Korea Ocean Research and Development Institute, Marine Resources Research Div.,
Korea Ocean Research & Development Institute, Ansan, 426-744, Korea, Republic of
AU: Kwon, B
EM: bdkwon@mantle.snu.ac.kr
AF: Seoul National University, Department of Earth science education, Seoul National
University, Seoul, 151-742, Korea, Republic of
AU: Lee, H
EM: yihsoon@ginue.ac.kr
AF: Gyeongin National University of Education, Department of Science education, Gyeongin
National University of Education, Anyang, 430-739, Korea, Republic of
AU: Um, J
EM: eomjy@mantle.snu.ac.kr
AF: Seoul National University, Department of Earth science education, Seoul National
University, Seoul, 151-742, Korea, Republic of
AU: Yoo, H
EM: hsyoo@kordi.re.kr
AF: Korea Ocean Research and Development Institute, Marine Resources Research Div.,
Korea Ocean Research & Development Institute, Ansan, 426-744, Korea, Republic of
AU: Min, D
EM: djmin@kordi.re.kr
AF: Korea Ocean Research and Development Institute, Marine Resources Research Div.,
Korea Ocean Research & Development Institute, Ansan, 426-744, Korea, Republic of
AU: Kim, K
EM: kwanghee@kordi.re.kr
AB:
Among the calderas of the southeastern region of the Korean Peninsula, the Hwasan caldera has a
comparatively large spatial size and its ring fault system accompanied by forming caldera structure has been
preserved well until now. Several previous gravity and magnetic surveys on this area have provided regional
geophysical knowledge such as depth of basin basement and spatial distribution of volcanic rocks, but it was
difficult to reveal the detailed subsurface structure of internal and marginal part of the caldera. To extend our
detailed knowledge for the Hwasan caldera, we carried out magnetotelluric (MT) survey, which is pretty sensitive
to electrical property variation in both horizontal and vertical direction of subsurface, across the Hwasan caldera
with the direction of EW. The 2-D inversion results of observed MT data lead to following conclusions. Firstly, the
depth of the basin basement inferred by the MT inversion results matches well with that suggested by previous
potential studies, but the basement resistivity seems fairly low when compared to that of general case. This
feature might be related with the large-scaled, highly conductive layer beneath the Euisung Sub-basin suggested
by Lee (2006). Secondly, the high resistivity zones reaching to 4000 ohm-m are imaged around two external ring
fault boundaries. These zones are thought of as the response of the rhyolitic dykes intruding along the ring fault,
and in the previous gravity data correspond to relatively high density anomalies. Thirdly, low resistivity zone
reaching to 200 ohm-m is detected around a depth of 1km beneath the central part of the caldera, which has
been not yet reported in korean geophysical literatures. If we take account of the evolution model of the Hwasan
caldera, this zone is regarded as the past sedimentary layer that subsided during the period of forming external
ring fault system. In addition, the relatively low density anomaly observed in the central part of the caldera may be
attributed to this sedimentary layer.
DE: 0925 Magnetic and electrical methods (5109)
DE: 5109 Magnetic and electrical properties (0925)
SC: Geomagnetism and Paleomagnetism [GP]
MN: 2007 Fall Meeting