
doi: 10.2172/270673
Long-term stability of emplacement drifts and potential near-field fluid flow resulting from coupled effects are among the concerns for safe disposal of high-level nuclear waste (HLW). A number of factors can induce drift instability or change the near-field flow patterns. Repetitive seismic loads from earthquakes and thermal loads generated by the decay of emplaced waste are two significant factors. One of two key technical uncertainties (KTU) that can potentially pose a high risk of noncompliance with the performance objectives of 10 CFR Part 60 is the prediction of thermal-mechanical (including repetitive seismic load) effects on stability of emplacement drifts and the engineered barrier system. The second KTU of concern is the prediction of thermal-mechanical-hydrological (including repetitive seismic load) effects on the host rock surrounding the engineered barrier system. The Rock Mechanics research project being conducted at the Center for Nuclear Waste Regulatory Analyses (CNWRA) is intended to address certain specific technical issues associated with these two KTUs. This research project has two major components: (i) seismic response of rock joints and a jointed rock mass and (ii) coupled thermal-mechanical-hydrological (TMH) response of a jointed rock mass surrounding the engineered barrier system (EBS). This final report summarizes the research activities concerned with the repetitive seismic load aspect of both these KTUs.
Seismic Effects, Thermal Analysis, Geologic Fractures, High-Level Radioactive Wastes, Dynamic Loads, 550, Rock Mechanics, Reservoir Pressure, Recommendations, Site Characterization, 05 Nuclear Fuels, Geologic Models, Ground Water, Underground Disposal, Response Functions, Hydrology, Radioactive Waste Facilities
Seismic Effects, Thermal Analysis, Geologic Fractures, High-Level Radioactive Wastes, Dynamic Loads, 550, Rock Mechanics, Reservoir Pressure, Recommendations, Site Characterization, 05 Nuclear Fuels, Geologic Models, Ground Water, Underground Disposal, Response Functions, Hydrology, Radioactive Waste Facilities
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