HR: 0800h
AN: T11A-0347 [Abstracts]
TI: Pulverized Tejon Lookout Granite: Attempts at Placing Constraints on the Processes
AU: * Sisk, M
EM: matthewmb77@aol.com
AF: San Diego State University, 5500 Campanile Dr., San Diego, CA 92182,
AU: Dor, O
EM: dor@usc.edu
AF: University of Southern California, University Park Campus, Los Angeles, CA 90089,
AU: Rockwell, T
EM: trockwell@geology.sdsu.edu
AF: San Diego State University, 5500 Campanile Dr., San Diego, CA 92182,
AU: Girty, G
EM: ggirty@geology.sdsu.edu
AF: San Diego State University, 5500 Campanile Dr., San Diego, CA 92182,
AU: Ben-Zion, Y
EM: benzion@usc.edu
AF: University of Southern California, University Park Campus, Los Angeles, CA 90089,
AB:
We have described and analyzed pulverized Tejon Lookout granite recovered from several transects of the
western segment of the Garlock fault on Tejon Ranch in southern California. Observations and data collected at
this location are compared to a sampled transect of the San Andreas fault at Tejon Pass previously studied by
Wilson et al. (2005), also exposing the Tejon Lookout granite. The purpose of this study is to characterize the
physical and chemical properties of the pervasively pulverized leucocratic rocks at multiple locations and to
hopefully place constraints on the processes producing them. To accomplish this we performed particle size
analysis with the use of both laser particle analyzer and pipette methodology; major and trace chemistry analyses
determined by XRF; clay mineralogy determined by XRD; and we evaluated fabric and texture through the study of
thin sections.
Recovered samples met the field criteria of pulverization developed by Dor et al., 2006 - that is, the individual 1-2
mm-sized crystals can be recognized in the field but the granite (including quartz and feldspar) can be mashed
with ones fingers and exhibits the texture of toothpaste. All samples were analyzed on a Horiba LA930 Laser
Particle Analyzer in an attempt to reproduce the earlier results of Wilson et al. (2005) with similar methodology.
We also utilized the classic pipette methodology to ensure complete discrimination of particle sizes. Our PSD
analysis shows that the dominant particle size falls in the 31-125 micron range, much coarser than previously
reported by Wilson et al. (2005), with >90% of the total sample falling in the >31 micron size range. We can
reproduce the previously documented results by allowing the samples to circulate for long periods of time at slow
circulation speeds in the laser particle size analyzer, during which time the coarse fraction settles out, thereby
leaving only the fine fraction for detection. However, subsequent increase in the circulation speed leads to a
complete recovery of the original PSD. Our XRF and XRD analyses provide evidence of the lack of major
weathering products and their inability to skew the PSD results in a significant way.
Dor et al. (2007) and Stillings et al. (2007) document evidence that support theoretical predictions and previous
inferences of pulverization occurring in the upper few kilometers, especially along faults of the southern San
Andreas system. Geophysical observations of Lewis et al. (2005, 2007) provide evidence that low velocity fault-
parallel layers, which are likely made of pulverized or highly damaged material, are dominant in the upper few
kilometers of the crust. Their asymmetric position with respect to the slipping zone, in agreement with asymmetric
patterns of small scale mapped rock damage (Dor et al., 2006), suggest that pulverized rocks are likely the
product of a preferred rupture direction during dynamic slip. Our results combined with the above mentioned
works imply that pulverized fault zone rocks at multiple locations are much less damaged than suggested in
previous studies.
DE: 8004 Dynamics and mechanics of faulting (8118)
DE: 8118 Dynamics and mechanics of faulting (8004)
SC: Tectonophysics [T]
MN: 2007 Fall Meeting