HR: 09:15h
AN: T41F-06 [Abstracts]
TI: Probing the Detailed Seismic Velocity Structure of Subduction Zones Using Advanced Seismic Tomography
Methods
AU: * Zhang, H
EM: hjzhang@geology.wisc.edu
AF: University of Wisconsin-Madison, Department of Geology and Geophysics, 1215 W. Dayton St., Madison, WI
53706
United States
AU: Thurber, C H
EM: thurber@geology.wisc.edu
AF: University of Wisconsin-Madison, Department of Geology and Geophysics, 1215 W. Dayton St., Madison, WI
53706
United States
AB:
Subduction zones are one of the most important components of the Earth's plate tectonic system. Knowing the detailed seismic
velocity structure within and around subducting slabs is vital to understand the constitution of the slab, the cause of
intermediate depth earthquakes inside the slab, the fluid distribution and recycling, and tremor occurrence [Hacker et al.,
2001; Obara, 2002].Thanks to the ability of double-difference tomography [Zhang and Thurber, 2003] to resolve the fine-scale
structure near the source region and the favorable seismicity distribution inside many subducting slabs, it is now possible
to characterize the fine details of the velocity structure and earthquake locations inside the slab, as shown in the study of
the Japan subduction zone [Zhang et al., 2004].
We further develop the double-difference tomography method in two aspects: the first improvement is to use an adaptive
inversion mesh rather than a regular inversion grid and the second improvement is to determine a reliable Vp/Vs structure
using various strategies rather than directly from Vp and Vs [see our abstract ``Strategies to solve for a better Vp/Vs model
using P and S arrival time'' at Session T29]. The adaptive mesh seismic tomography method is based on tetrahedral diagrams
and can automatically adjust the inversion mesh according to the ray distribution so that the inversion mesh nodes are denser
where there are more rays and vice versa [Zhang and Thurber, 2005]. As a result, the number of inversion mesh nodes is
greatly reduced compared to a regular inversion grid with comparable spatial resolution, and the tomographic system is more
stable and better conditioned. This improvement is quite valuable for characterizing the fine structure of the subduction
zone considering the highly uneven distribution of earthquakes within and around the subducting slab. The second improvement,
to determine a reliable Vp/Vs model, lies in jointly inverting Vp, Vs, and Vp/Vs using P, S, and S-P times in a manner
similar to double-difference tomography. Obtaining a reliable Vp/Vs model of the subduction zone is more helpful for
understanding its mechanical and petrologic properties.
Our applications of the original version of double-difference tomography to several subduction zones beneath northern Honshu,
Japan, the Wellington region, New Zealand, and Alaska, United States, have shown evident velocity variations within and
around the subducting slab, which likely is evidence of dehydration reactions of various hydrous minerals that are
hypothesized to be responsible for intermediate depth earthquakes. We will show the new velocity models for these subduction
zones by applying our advanced tomographic methods.
DE: 7240 Subduction zones (1207, 1219, 1240)
DE: 7270 Tomography (6982, 8180)
SC: Tectonophysics [T]
MN: Fall Meeting 2005