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Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
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Reduced-order THMC coupled simulation of nuclear waste disposal in shale.
Abstract not provided.
Thermal-hydrological-mechanical characterization of the Ghareb formation at conditions of high-level nuclear waste disposal.
Abstract not provided.
Modeling for nuclear waste disposal: from materials to minerals.
Abstract not provided.
Modeling of Fractured Rock Under Stress for Nuclear Waste Disposal Applications.
Abstract not provided.
Impact of thermo-mechanical properties on deformation behavior of potential host rock for nuclear waste disposal .
Abstract not provided.
A Continuum-Scale Approach to Predicting Wellbore Stability in Ghareb Chalk for Safe Nuclear Waste Disposal
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Thermal-hydrological-mechanical characterization of the Ghareb formation at conditions of high-level nuclear waste disposal.
Abstract not provided.
Long-term risk analysis associated with nuclear waste disposal in space
An assessment and verification of previous analytic results on the long term risk of earth reentry for hazardous payloads is presented. The two areas were studied: (1) stability of nominal, near-circular storage orbits in the regions between Venus and earth and between earth and Mars, and (2) probability of earth reentry for off-nominal planet-crossing orbits resulting from deployment system failures. In the first area, numerical integrations of the equations of motion are compared with stability predications based on secular perturbation theory. The agreement is good in terms of the heliocentric distances covered and the general behavior of the orbital history, although certain near-resonance situations can lead to difficulty. In the second area, a Monte Carlo simulation of orbital evolution is used and the results compared with Opik's analytic theory of planetary encounters and collision statistics, with data verified to within a close order-of-magnitude.
Long-term risk analysis associated with nuclear waste disposal in space
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Chemical waste disposal in space by plasma discharge
An inductively coupled plasma discharge apparatus operating at 13.56 MHz and with electrical power up to 2.5 kW was constructed. The efficiency of this device to destroy various gases expected to be carried aboard the Space Station was tested. By expressing the efficiency of the device in terms of G-value (the number of molecules decomposed per 100 eV of energy absorbed), the results are compared with known efficiencies of ionizing radiation to destroy these same gases. In the case of ammonia, it was found that in the inductively coupled device, the destruction efficiency, G(-NH3) varied from 6.0 to 32.0 molecules/100 eV, depending on conditions. It was also found that capacitatively coupled discharges were less efficient in destroying NH2 than the inductively coupled discharge. In the case NH2 destruction, it was found that the G(-NH3) was a qualitative guide to the efficiencies of plasmas. The plasma device was also used to destroy nitrous oxide and methane. It is shown how the G-value for the destruction of any gas can be computed theoretically from a knowledge of the electron velocity distribution, the various electron molecule scattering cross sections, and the rate constants for the reactions of secondary species.
NEVADA NATIONAL SECURITY SITE WASTE DISPOSAL OPERATIONS - DISPOSAL VOLUME REPORT FY 2021 - QUARTER FOUR
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Characterization and borehole analysis of the Ghareb Formation for nuclear waste disposal.
Abstract not provided.
Characterization and borehole analysis of the Ghareb Formation for nuclear waste disposal.
Abstract not provided.
US Department of Energy (DOE) Work in Nuclear Waste Disposal: Status and Crystalline Rock R&D.
Abstract not provided.
LIDAR MEASUREMENTS FOR SURFACE PROFILES OF WASTE DISPOSAL UNITS AND APPLICATION OF DIGITAL TWIN TECHNOLOGY TO DOE STRUCTURES – 23050
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Modeling of Fractured Rock Under Stress for Nuclear Waste Disposal Applications.
Abstract not provided.