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Published in Vadose Zone Journal 3:819-836 (2004)
© 2004 Soil Science Society of America
677 S. Segoe Rd., Madison, WI 53711 USA

SPECIAL SECTION: RESEARCH ADVANCES IN VADOSE ZONE HYDROLOGY THROUGH SIMULATIONS WITH THE TOUGH CODES

Modeling Seepage into Heated Waste Emplacement Tunnels in Unsaturated Fractured Rock

Jens T. Birkholzer*, Sumit Mukhopadhyay and Yvonne W. Tsang

Ernest Orlando Lawrence Berkeley National Laboratory, Earth Sciences Division, 1 Cyclotron Road, MS 90-1116, Berkeley, CA 94720
* Corresponding author (jtbirkholzer{at}lbl.gov)

Received 6 October 2003.

Predicting the amount of water that may seep into waste emplacement tunnels (drifts) is important for assessing the performance of the proposed geologic repository for high-level radioactive waste at Yucca Mountain, Nevada. The repository will be located in thick, partially saturated fractured tuff that—for the first several hundred years after emplacement—will be heated to above-boiling temperatures as a result of heat generation from the decay of radioactive waste. Heating of rock water to above-boiling conditions induces water saturation changes and perturbs water fluxes that affect the potential for water seepage into drifts. We describe numerical analyses of the coupled thermal-hydrological (TH) processes in the vicinity of waste emplacement drifts, evaluate the potential of seepage during the heating phase of the repository, and discuss the implications for the performance of the site. In addition to the capillary barrier at the rock-drift interface—independent of the thermal conditions—a second barrier exists to downward percolation at above-boiling conditions. This barrier is caused by vaporization of water in the fractured rock overlying the repository. A TOUGH2 dual-permeability simulation model was developed to analyze the combined effect of these two barriers; it accounts for all relevant TH processes in response to heating, while incorporating the capillary barrier condition at the drift wall. Model results are presented for a variety of simulation cases that cover the expected variability and uncertainty of relevant rock properties and boundary conditions.

Abbreviations: TH, thermal-hydrological




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J. T. Birkholzer, S. W. Webb, N. Halecky, P. F. Peterson, and G. S. Bodvarsson
Evaluating the Moisture Conditions in the Fractured Rock at Yucca Mountain: The Impact of Natural Convection Processes in Heated Emplacement Drifts
Vadose Zone J., November 20, 2006; 5(4): 1172 - 1193.
[Abstract] [Full Text] [PDF]


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J. T. Birkholzer and Y. Zhang
The Impact of Fracture-Matrix Interaction on Thermal-Hydrological Conditions in Heated Fractured Rock
Vadose Zone J., May 26, 2006; 5(2): 657 - 672.
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