2008 Joint Meeting of The Geological Society of America, Soil Science Society of America, American Society of Agronomy, Crop Science Society of America, Gulf Coast Association of Geological Societies with the Gulf Coast Section of SEPM

Paper No. 14
Presentation Time: 11:30 AM

Stress Analysis and Fracture-Based Fluid Transmissivity at the Underground Research Laboratory Site at Horonobe, Hokkaido, Japan


MORRIS, Alan Paul1, TAKAGI, Tetsuichi2, SIMS, Darrell1, SMART, Kevin J.1, WYRICK, Danielle Y.3 and STAMATAKOS, John A.4, (1)Department of Earth, Material, and Planetary Sciences, Southwest Research Institute, 6220 Culebra Road, San Antonio, TX 78238, (2)Institute for Geo-Resources and Environment, National Institute of Advanced Industrial Sci and Technology, Central-7, 1-1-1 Higashi, Tsukuba, 305-8567, Japan, (3)Department of Space Sciences, Southwest Research Institute, 6220 Culebra Road, San Antonio, TX 78238, (4)Center for Nuclear Waste Regulatory Analyses, Southwest Research Institute, 6220 Culebra Road, San Antonio, TX 78238, dsims@swri.edu

Faults and fractures are important conduits for subsurface flow. The ambient stress state is now well-recognized to exert a primary control on fluid transmissivity of faults and fractures. Using fault geometries based on available map and seismic reflection data, and fracture simulations based on well data from the Underground Research Laboratory (URL) site at Horonobe, Hokkaido, Japan, we investigated the sensitivity of fracture-based transmissivity to estimates of in situ stress. In the Horonobe area, NNW-SSE trending and west-verging faults and folds formed with maximum principal compressive stress (σ1) horizontal and approximately ENE-WSW from Late Pliocene to present. The Omagari fault system, which is one of the major thrust faults in the area, passes close to the URL site, so the shape and properties of the Omagari fault and related fracture systems potentially affect the subsurface ground-water flow in the URL area. Our analysis shows that although the fault and fracture systems that are likely to be present are sensitive to variations in stress state, the currently available stress estimates indicate that they are unlikely to have a significant influence on ground-water flow in the area.