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Fracture and permeability analysis of the Santana Tuff, Trans-Pecos TexasFuller, Carla Matherne 11 December 2009 (has links)
A fracture and permeability analysis was performed on the Santana Tuff because of its similarity to the
Topopah Springs unit at the Yucca Mountain site. The
Topopah Springs unit is the proposed horizon for the spent nuclear fuel repository. Because of the impossibility of completely characterizing the flow properties of the unit without destroying the
characteristics that make it desirable as a repository, other ash flow tuffs must be studied. The Santana Tuff and the Topopah Springs tuff both are rhyolitic in
composition, nonwelded to densely welded and fractured.
Fractures were examined at six outcrop locations
spanning a five mile area. Stereonets and rose diagrams were constructed from over 312 fracture
orientations. Although the composite data showed two
major orientations of nearly vertical fractures, fracture trends at individual outcrops showed a variety
of preferred orientations. Over 900 surface permeability measurements were
taken using a mini-permeameter. The samples were
categorized by three observed types of surface
weathering: fresh, weathered, or varnished. Fracture
surfaces were generally classified as weathered. The
average permeabilities for the samples are 55.33 millidarcies, 5.03 millidarcies, and 3.31 millidarcies,
respectively. The one-way statistical analysis performed on the data indicated that the permeability
of fresh tuff surfaces is significantly different than
both the permeabilities of the weathered and varnished tuffs, using both a least significant difference and
greatest significant difference test. However, no
difference was shown to exist between the weathered and
varnished tuff permeabilities.
Samples of fresh, weathered, and varnished tuffs
were examined by X-Ray Defraction, the Scanning Electron Microscope, and in thin section. The SEM analysis showed surface differences between the three weathering classifications. The weathered and
varnished samples were similar, exhibiting a platy,
lamellate texture. The fresh surfaces were irregular
and jagged. In thin section, a thin rind of dark
minerals (FE-oxides) is observed on the edges of the
varnished samples and in microcracks. This fills surface pores and causes the reduction in permeability. Two other zones of weathering have been identified in
some of the samples, which may also cause changes in permeability. Tuff permeabilities were also analyzed for directional dependence. After an ash flow tuff is
deposited and cooled, it may undergo flattening of pumice fragments and glass shards. These flattened
fragments can be identified in handsamples, and are
indicative of the direction of flow emplacement. The
analysis showed that permeability is enhanced parallel
to the emplacement direction, which is generally horizontal. Cut surfaces showed a 30% decrease in
permeability perpendicular to flow direction. On
varnished surfaces, this trend is still evident, although decreased in magnitude. This is expected because of the clay particles which make up the desert varnish. This study indicates that the formation of low
permeability weathering rinds in association with
vertical fractures may inhibit infiltration at the
surface. It may accelerate infiltration at depth and allow more fluid to penetrate vertically into the tuff. In the event that fluid is absorbed into the matrix, it will travel horizontally, along the enhanced
permeability parallel to the emplacement direction. / text
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REE-Be-U-F mineralization of the Round Top laccolith, Sierra Blanca Peaks, Trans-Pecos TexasO'Neill, Laurie Christine 04 September 2014 (has links)
The Round Top laccolith is considered to be one of the youngest laccoliths in a series of five known as the Sierra Blanca peaks, located in Hudspeth county, Texas. The laccolith is anomalous within the region in that it is peraluminous and enriched in HREEs, F, and U, and is comprised of intermingled discrete packages of various rhyolite types. The laccolith rhyolite varies in color from gray, purple, red, and tan, which combine locally to form distinct geometric mottled textures. The general composition of the rhyolite is 48-52% potassium feldspar, 28-30% quartz, 8-14% plagioclase feldspar, 4-5% annite biotite, 2-3% magnetite-hematite, 1% zircon, and 1% trace phases. The morphology of the trace phases suggests quenching of a late-stage volatile-rich vapor phase at the time of the laccolith formation. The rhyolite displays a wide array of unique mineralogical characteristics indicative to rapid emplacement and metastable crystallization conditions, including three-part quartz phenocrysts, hourglass sector-zoned potassium feldspars, and late-stage anhedral zircons. Unique accessory and trace phases include cassiterite, cerianite-(Ce), changbaiite, columbite, cryolite, tantalite, thorite, yttrofluorite, yttrocerite, and two unidentified minerals named (W) and (X). Initial alteration of the laccolith by high temperature volatile-rich vapor during the late stages of crystallization caused the partial dissolution of the feldspars and quartz. Subsequent quenching of this high temperature vapor phase produced the abundant interstitial, and pore filling REE-fluorides common to the laccolith. The variation in rhyolite color and the presence of the mottled textures are a direct result of partial oxidation of the laccolith by secondary fluids. The oxidizing fluids migrated within the laccolith along an extensive fracture network, altering the adjacent wallrock by oxidizing magnetite phenocrysts to hematite. The gray, purple, and red rhyolite types reflect an increase in turbidity caused by hematitic inclusions primarily within the pore spaces of the potassium feldspar portions of the groundmass. The tan rhyolite is locally restricted to the base of the laccolith and has been subjected to an intense degree of alteration independent of the other rhyolite types, primarily indicated by the conversion of feldspars to clay. Petrographic, microbeam, and geochemical studies have determined little variation in REE concentration between the three rhyolites of similar alteration intensity, but have indicated a depletion in LREEs within the more altered tan rhyolite. The average REE+Y content for the rhyolites sampled (n=11) ranges between 249 ppm and 518 ppm. The REE+Y concentrations between rhyolite samples of the same type show some variation, possibly indicating a correlation between alteration and REE+Y abundance and/or innate heterogeneity in the vapor phase during the initial laccolith formation. The magma emplaced at Round Top underwent a prolonged evolutionary process of fractionation/differentiation as evident by the unusual mineral assemblage and geochemical enrichment associated with the laccolith (e.g. extremely negative europium anomaly, and the positive La/Yb correlation). Future exploration for Round Top style REE-deposits should center within long-lived, tectonically active and complex regions where laccoliths are likely to exist. Specifically, exploration should focus on identifying the youngest laccolith in a felsic series, as this is the most likely to contain the greatest abundance of incompatible elements within the laccolithic group. The early alteration of feldspars by the high temperature vapor phase was crucial in the development of the REE+Y enrichment at Round Top. The feldspar dissolution provided abundant open pore space that was subsequently filled by the REE-fluorides. Thus, exploration should additionally seek laccoliths that have undergone a similar early alteration process, and expand to potential laccolith groups not yet exposed by erosional processes. / text
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