TY - JOUR
T1 - A new method for calculating seismic velocities in rocks containing strongly dimensionally anisotropic mineral grains and its application to antigorite-bearing serpentinite mylonites
AU - Watanabe, Tohru
AU - Shirasugi, Yuhto
AU - Michibayashi, Katsuyoshi
N1 - Funding Information:
S. Arai, S. Ohtoh, M. Shimojo, T. Satsukawa and H. Yano are thanked for their help in sampling and microstructural analyses. G. Lloyd, N. Christensen and H. Kern are gratefully appreciated for their careful reading and invaluable comments. This work was financially supported by Grants-in-Aid for Scientific Research “Rheology and Metamorphic Processes in Mantle Wedge Peridotites” ( 2244062 ) and Cooperative Research Program ( 2010-A-1-1428 , 2011-A-1-1428 , 2012-A-1-1428 ) of Earthquake Research Institute, University of Tokyo.
PY - 2014/4/1
Y1 - 2014/4/1
N2 - Seismic velocity is one of the most important sources of information about the Earth's interior. For its proper interpretation, we must have a thorough understanding of the dependence of seismic velocity on microstructural elements, including the modal composition, the crystal preferred orientation (CPO), the grain shape, the spatial distribution of mineral phases, etc. The conventional Voigt, Reuss and Hill averaging schemes take into account only the modal composition and the CPO. The information about the Earth's interior is thus poorly constrained. For a better interpretation, it is critical to have a calculation method which accounts for the grain shape and the spatial distribution of mineral phases, etc. We propose a calculation method which accounts for the grain shape of strongly dimensionally anisotropic minerals like micas and serpentines. Our method can be applied to a distributed geometrical orientation of mineral grains. Comparison was made between calculated and measured velocities in three antigorite-serpentinite mylonites. Judging from the root mean square relative error, our method provides velocities closer to measured values than the Voigt, Reuss and Hill averaging schemes. The input of the grain shape considerably improves the prediction of seismic properties. However, large discrepancies (>0.1 km/s) between measured and calculated velocities can be seen in some directions. The discrepancies might come from microstructural elements which were not considered in the calculation (layer structures and cracks).
AB - Seismic velocity is one of the most important sources of information about the Earth's interior. For its proper interpretation, we must have a thorough understanding of the dependence of seismic velocity on microstructural elements, including the modal composition, the crystal preferred orientation (CPO), the grain shape, the spatial distribution of mineral phases, etc. The conventional Voigt, Reuss and Hill averaging schemes take into account only the modal composition and the CPO. The information about the Earth's interior is thus poorly constrained. For a better interpretation, it is critical to have a calculation method which accounts for the grain shape and the spatial distribution of mineral phases, etc. We propose a calculation method which accounts for the grain shape of strongly dimensionally anisotropic minerals like micas and serpentines. Our method can be applied to a distributed geometrical orientation of mineral grains. Comparison was made between calculated and measured velocities in three antigorite-serpentinite mylonites. Judging from the root mean square relative error, our method provides velocities closer to measured values than the Voigt, Reuss and Hill averaging schemes. The input of the grain shape considerably improves the prediction of seismic properties. However, large discrepancies (>0.1 km/s) between measured and calculated velocities can be seen in some directions. The discrepancies might come from microstructural elements which were not considered in the calculation (layer structures and cracks).
KW - Antigorite
KW - CPO
KW - Grain shape
KW - Seismic anisotropy
KW - Seismic velocity
KW - Serpentinite
UR - http://www.scopus.com/inward/record.url?scp=84893611682&partnerID=8YFLogxK
U2 - 10.1016/j.epsl.2014.01.025
DO - 10.1016/j.epsl.2014.01.025
M3 - 学術論文
AN - SCOPUS:84893611682
SN - 0012-821X
VL - 391
SP - 24
EP - 35
JO - Earth and Planetary Science Letters
JF - Earth and Planetary Science Letters
ER -