HR: 0800h
AN: T51A-1313 [Abstracts]
TI: Isotopic Evidence of Fluid Processes in Fault-related Rocks From TCDP Drill Cores in Taiwan
AU: * Wang, P
EM: plwang@ntu.edu.tw
AF: Institute of Oceanography, National Taiwan University, No.1, Sec. 4, Roosevelt Road, Taipei, 106
Taiwan
AU: Wu, J
EM: r93241301@ntu.edu.tw
AF: Institute of Oceanography, National Taiwan University, No.1, Sec. 4, Roosevelt Road, Taipei, 106
Taiwan
AU: Lin, L
EM: lhlin@ntu.edu.tw
AF: Department of Geosciences, National Taiwan University, No.1, Sec. 4, Roosevelt Road, Taipei, 106
Taiwan
AU: Yeh, E
EM: yeh@jamestec.go.jp
AF: Japan Agency for Marine Science and Technology, 2-15 Natsushima-Cho, Yokohama, 237-0061
Japan
AU: Chen, Y
EM: ygchen@ntu.edu.tw
AF: Department of Geosciences, National Taiwan University, No.1, Sec. 4, Roosevelt Road, Taipei, 106
Taiwan
AU: Song, S
EM: srsong@ntu.edu.tw
AF: Department of Geosciences, National Taiwan University, No.1, Sec. 4, Roosevelt Road, Taipei, 106
Taiwan
AB:
Faults and shear zones are generally thought to be major fluid conduits in crustal environment. Fluid circulation and
migration may deposit or recrystallize clay or carbonate minerals in fracture within the fault zone. Isotopic signatures of
such crack-fill materials will serve as a good indicator of both sources of fluid and processes of fluid-rock interaction.
We here report results from carbon and oxygen isotope analyses of calcite veins retrieved by Taiwan Chelungpu Drilling
Program (TCDP), which penetrated the active Chelungpu fault zone at around 1100 m depth. The calcite veins are well observed
on both side of the fault zone in the drill cores and the samples between 900 and 1300 m depths have been examined. The cores
are composed of the Chinshui Shale and the calcite veins mainly appear in sandstone and siltstone with several mm in width.
Calcite vein samples reveal variable δ13C(PDB) values ranging from -7.0 to -2.0 permil, and
δ18O(SMOW) values of 15.7 to 19.9 permil. Both of values tend to increase slightly below 1225 m in depth. The
δ13C values of calcite veins are between that of marine carbonate and sedimentary rocks. Calculated
δ18O values of fluids in chemical equilibrium with calcite veins are ranging from -7.9 to -2.6 permil, which are
between that of seawater and meteoric water. The isotopic results indicate that the calcite veins were formed from fluids
originating from meteoric water mixed with seawater and carrying bicarbonate dissolved from fossil or diagenetic carbonate.
The variation of isotopic composition is not related to the appearance of major shear zone of Chelungpu fault. Depleted
oxygen isotopic signature of fluids indicates no contribution of metamorphic or mantle derived sources. Both of them infer
that the Chelungpu fault may not serve as a deep fluid conduit or have no widely effect on calcite vein formation in host
rocks.
DE: 7230 Seismicity and tectonics (1207, 1217, 1240, 1242)
DE: 8010 Fractures and faults
DE: 8102 Continental contractional orogenic belts and inversion tectonics
DE: 8150 Plate boundary: general (3040)
SC: Tectonophysics [T]
MN: Fall Meeting 2005