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AbstractAbstract
[en] The thermal stability of bentonite is of particular interest for containment barrier in nuclear waste disposal facilities. However, very little is known about the stability of smectite (principal component of bentonite) under high-pressure and high-temperature conditions (HPHT). The objective of this work was to investigate the stability of the smectite structure under HP-HT conditions. The HP-HT experiments were performed on toroidal chambers (TC) with pressure up 7.7 GPa and temperatures of 1000 deg C. The samples were characterized by X-ray diffraction after the HP-HT processing. Furthermore, one sample from the original material was analyzed using Fourier transformed infra-red (FTIR) in situ measurements on a diamond anvil cell (DAC) in experiments up to 12 GPa. The original sample of bentonite, calcium dioctahedral montmorillonite with small fraction of quartz, was characterized by FTIR, XRD, X-ray fluorescence (XRF), scanning electron microscopy (SEM), surface area, thermogravimetric analysis (TGA) and differential thermal analysis (DTA). In the experiment performed using the DAC up to 12 GPa, the FTIR in situ measurements analysis showed that the smectite structure is stable with a reversible deformation in the Si-O bond and that the smectite did not loose water. Experiments performed in TC at 7.7 GPa of pressure and 250 deg C of temperature, during 3.5 h showed, after analysis by XRD and FTIR, that the smectite structure is stable and did not loose water. Experiments performed in TC at 7.7 GPa of pressure and 1000 deg C of temperature, during 3.5 h showed, after analysis by XRD and SEM, the transformation of bentonite to the mineral assemblage: Coesite, Quartz, Kyanite and Pyrope. (author)
Original Title
Analise da estabilidade estrutural da esmectita sob altas pressoes e altas temperaturas
Primary Subject
Source
Oct 2009; 113 p; Diss. (M.Sc.)
Record Type
Miscellaneous
Literature Type
Thesis/Dissertation
Report Number
Country of publication
BENTONITE, CRYSTALLOGRAPHY, DIFFERENTIAL THERMAL ANALYSIS, FISSION PRODUCTS, FISSIONABLE MATERIALS, FLUORESCENCE, FLUORESCENCE SPECTROSCOPY, FOURIER TRANSFORMATION, GROUND DISPOSAL, MONTMORILLONITE, NUCLEAR MATERIALS MANAGEMENT, OXIDE MINERALS, QUARTZ, RADIATION HAZARDS, RADIOACTIVE WASTE DISPOSAL, RADIOACTIVE WASTE FACILITIES, RADIOACTIVE WASTE MANAGEMENT, RADIOACTIVE WASTES, SCANNING ELECTRON MICROSCOPY, SILICA, SILICATE MINERALS, SILICATES, SILICON OXIDES, SPENT FUELS, STRUCTURAL CHEMICAL ANALYSIS, SURFACE AREA, SURFACES, THERMAL GRAVIMETRIC ANALYSIS, TRANSITION HEAT, X RADIATION, X-RAY DIFFRACTION, X-RAY FLUORESCENCE ANALYSIS
CHALCOGENIDES, CHEMICAL ANALYSIS, CLAYS, COHERENT SCATTERING, DIFFRACTION, ELECTROMAGNETIC RADIATION, ELECTRON MICROSCOPY, EMISSION, EMISSION SPECTROSCOPY, ENERGY SOURCES, ENTHALPY, FUELS, GRAVIMETRIC ANALYSIS, HAZARDS, HEALTH HAZARDS, INORGANIC ION EXCHANGERS, INTEGRAL TRANSFORMATIONS, ION EXCHANGE MATERIALS, IONIZING RADIATIONS, ISOTOPES, LUMINESCENCE, MANAGEMENT, MATERIALS, MICROSCOPY, MINERALS, NONDESTRUCTIVE ANALYSIS, NUCLEAR FACILITIES, NUCLEAR FUELS, OXIDE MINERALS, OXIDES, OXYGEN COMPOUNDS, PHOTON EMISSION, PHYSICAL PROPERTIES, QUANTITATIVE CHEMICAL ANALYSIS, RADIATIONS, RADIOACTIVE MATERIALS, RADIOACTIVE WASTE MANAGEMENT, REACTOR MATERIALS, SCATTERING, SILICATE MINERALS, SILICON COMPOUNDS, SPECTROSCOPY, SURFACE PROPERTIES, THERMAL ANALYSIS, THERMODYNAMIC PROPERTIES, TRANSFORMATIONS, WASTE DISPOSAL, WASTE MANAGEMENT, WASTES, X-RAY EMISSION ANALYSIS
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