HR: 13:40h
AN: T23E-01 INVITED [Abstracts]
TI: Overview of SAFOD Phases 1 and 2: Drilling, Sampling and Measurements in the San Andreas Fault Zone at
Seismogenic Depth
AU: * Zoback, M D
EM: zoback@pangea.stanford.edu
AF: Stanford University, Dept of Geophysics, Mitchell Building, Stanford, CA 94305
United States
AU: Hickman, S
EM: hickman@usgs.gov
AF: USGS, 345 Middlefield Road, MS 977
, Menlo Park, CA 94025
United States
AU: Ellsworth, W
EM: ellsworth@usgs.gov
AF: USGS, 345 Middlefield Road, MS 977
, Menlo Park, CA 94025
United States
AB:
In this talk we provide an overview of on-site drilling, sampling and downhole measurement activities associated with the
first two Phases of the San Andreas Fault Observatory at Depth. SAFOD is located at the transition between the creeping and
locked sections of the fault, 9 km NW of Parkfield, CA. A 2.1 km deep vertical pilot hole was drilled at the site in 2002.
The SAFOD main borehole was drilled vertically to a depth of 1.5 km and then deviated at an average angle of 55° to
vertical, passing beneath the surface trace of the San Andreas fault, 1.8 km to the NW at a depth of 3.2 km. Repeating
microearthquakes on the San Andreas define the main active fault trace at depth, as well as a secondary active fault about
250 m to the SW (i.e., closer to SAFOD).
The hole was rotary drilled, comprehensive cuttings were obtained and a real-time analysis of gases in the drilling mud was
carried out. Spot cores were obtained at three depths (at casing set points) in the shallow granite and deeper sedimentary
rocks penetrated by the hole, augmented by over fifty side-wall cores. Continuous coring of the San Andreas Fault Zone will
be carried out in Phase 3 of the project in the summer of 2007. In addition to sampling mud gas, discrete fluid and gas
samples were obtained at several depths for geochemical analysis. Real-time geophysical measurements were made while drilling
through most of the San Andreas Fault Zone. A suite of "open hole" geophysical measurements were also made over essentially
the entire depth of the hole.
Construction of the multi-component SAFOD observatory is well underway, with a seismometer and tiltmeter operating at 1 km
depth in the pilot hole and a fiber-optic laser strainmeter cemented behind casing in the main hole. A seismometer deployed
at depth in the hole between Phases 1 and 2 detected one of the target earthquakes. A number of surface-to-borehole seismic
experiments have been carried out to characterize seismic velocities and structures at depth, including deployment of an
80-level, 240-component seismic array in SAFOD in the spring of 2005.
With knowledge of P- and S-wave velocities obtained from the geophysical measurements in conjunction with downhole recordings
of the SAFOD target earthquake, it appears that the seismically active main trace of the fault is on the order of 400 m SW
of the surface trace, in proximity to several candidate zones of particularly anomalous geophysical properties. Observations
of casing deformation to be made over the next several years, as well as monitoring of the microearthquakes using
seismometers directly within the fault zone, will pinpoint the exact location of this and other active fault traces prior to
continuous coring in Phase 3.
As will be elaborated in detail by the presentations of the SAFOD science team at this meeting, the activities carried out as
part of Phases 1 and 2 of SAFOD lay the ground work for years of exciting research in earthquake physics, fault-rock
geology, rock mechanics and the role of fluids and gases in faulting and earthquake generation.
UR: http://www.earthscope.org
DE: 8111 Continental tectonics: strike-slip and transform
DE: 8150 Plate boundary: general (3040)
DE: 8164 Stresses: crust and lithosphere
SC: Tectonophysics [T]
MN: Fall Meeting 2005