996 resultados para Heavy mineral grains
Resumo:
In einer Fülle sedimentpetrographischer Arbeiten wird versucht, aus der Korngrößenverteilung und der Mineralzusammensetzung von Sanden Schlüsse auf ihre Herkunft, ihre Transportrichtung oder ihr Ablagerungsmilieu abzuleiten, die für die Lösung geologischer und ebenso auch wasserbaulicher Probleme nötig sind. Diese Literatur steckt noch voller Widersprüche und Fehlschlüsse. In der vorliegenden Arbeit wird daher versucht, den Mechanismus des Sandtransports vom Grundsätzlichen her besser verständlich zu machen. Das geschieht anhand zweier ausgewählter und eingehend untersuchter Beispiele aus dem Küstenbereich der westlichen Ostsee unter Einbeziehung der Erfahrungen an vielen Vergleichsproben aus verschiedensten Sedimentationsräumen. Unentbehrlich für das Verständnis der transportbedingten Veränderungen an den Sanden ist das sog. 'Äquivalenzprinzip' (Abschnitt 2). Es stellt fest, daß es in einem von einer Strömung transportierten Sediment immer Körner zwar verschiedener Korngröße, aber auch entsprechend verschiedener Dichte und/oder Kornform gibt, die miteinander transportiert und abgelagert werden, weil unter den herrschenden hydraulischen Bedingungen diese Eigenschaften einander voll kompensieren. In Abschnitt 3 wird kurz die von Rittenhouse angegebene Methode geschildert, mit der man an natürlichen Sedimenten unter der sehr allgemein gehaltenen 'Äquivalenzbedingung' gleicher Transportierbarkeit bestimmen kann, welches Korngrößenverhältnis ein bestimmtes Verhältnis der Dichten kompensieren kann. Die von Rittenhouse am Beispiel von Flußsanden gefundene Funktion zwischen der Dichte der Körner und ihrem Äquivalenzverhältnis gegen Quarzkörner wird hier als erste Näherung auch für die Transportverhältnisse von Strandsanden zugrunde gelegt. In Abschnitt 6 wird gezeigt, daß das auch gerechtfertigt ist. In Abschnitt 4 wird eine allgemein brauchbare Methode abgeleitet, mit der man nicht nur unter stark vereinfachenden Annahmen, sondern auch an Sanden mit realen, stets komplexen Korn-größenverteilungen die Folgen des Äquivalenzprinzips für die Verteilung von Mineralen verschiedener Dichte berechnen kann. Für jede Serie von Sanden, deren Korngrößenverteilungen entlang des Transportweges eine bestimmte, von den Transportbedingungen abhängige Entwicklung durchmachen, ergibt sich damit eine Kurvenschar, die beschreibt, wie sich die Mengen von Mineralien mit verschiedenen Dichten in den einzelnen Korngrößenklassen dabei ändern müßten, vorausgesetzt, daß sie im gesamten Korngrößenbereich gleich verfügbar wären. Diese Kurvenschar ist die 'Charakteristik' des betreffenden Transportfalles. Durch den Vergleich zwischen den nach der Charakteristik in den einzelnen Klassen zu erwartenden Mineralmengen mit den in dem betrachteten Transportfall tatsächlich gefundenen läßt sich deren relative, d. h. auf die Menge des Quarzes bezogene 'Verfügbarkeit' berechnen. Sie wird durch die sog. 'hydraulischen Verhältnisse' (Rittenhouse) ausgedrückt, die im Gegensatz zu den 'Klassenverhältnissen' von der Korngrößensonderung beim Transport unabhängig und nur von der Zusammensetzung des Ausgangsmaterials bestimmt sind, solange beim Transport allein das Äquivalenzprinzip wirksam ist. In den untersuchten Fällen von Sandtransport an zwei Strandabschnitten der westlichen Ostsee (Abschnitt 5) zeigte dieser Vergleich (Abschnitt 6), daß die beobachtete Verteilung von Schwermineralen nicht allein durch Transportsonderung unter Gültigkeit des Äquivalenzprinzips erklärt werden kann, sondern daß dabei offenbar auch mechanische Zerkleinerung der Körner während des Transports mitgewirkt haben muß. Nur ein solcher, von der Transportsonderung unabhängiger Effekt kann als Transportrichtungs-Kriterium benutzt werden, wenn die Entwicklung der Korngrößenverteilungen allein keine Entscheidung erlaubt. Wie die Beispiele zeigen, läßt sich Klarheit über die bisher noch sehr umstrittene Frage nach dem Ausmaß der transportbedingten mechanischen Zerkleinerung von Sandkörnern nur gewannen, wenn in Zukunft versucht wird, bei der Bearbeitung natürlicher Beispiele den Einfluß der stets vorhandenen Transportsonderung auf Veränderungen des Mineralbestandes unter Anwendung des Äquivalenzprinzips rechnerisch auszuschalten. Über dieses wesentlichste Ergebnis hinaus erlauben die dargestellten Zusammenhänge auch eine kritische Stellungnahme zu den oben erwähnten allgemeinen Problemen und führen zu methodischen und sachlichen Verbesserungsvorschlägen für weitere Untersuchungen an klastischen Sedimenten.
Resumo:
Sequences of late Pliocene to Holocene sediment lap onto juvenile igneous crust within 20 km of the Juan de Fuca Ridge in northwestern Cascadia Basin, Pacific Ocean. The detrital modes of turbidite sands do not vary significantly within or among sites drilled during Leg 168 of the Ocean Drilling Program. Average values of total quartz, total feldspar, and unstable lithic fragments are Q = 35, F = 35, and L = 30. Average values of monocrystalline quartz, plagioclase, and K-feldspar are Qm = 46, P = 49, and K = 5, and the average detrital modes of polycrystalline quartz, volcanic-rock fragments, and sedimentary-rock plus metamorphic-rock fragments are Qp = 16, Lv = 43, and Lsm = 41. Likely source areas include the Olympic Peninsula and Vancouver Island; sediment transport was focused primarily through the Strait of Juan de Fuca, Juan de Fuca Channel, Vancouver Valley, and Nitinat Valley. Relative abundance of clay minerals (<2-µm-size fraction) fluctuate erratically with depth, stratigraphic age, and sediment type (mud vs. turbidite matrix). Mineral abundance in mud samples are 0%-35% smectite (mean = 8%), 18%-59% illite (mean = 40%), and 29%-78% chlorite + kaolinite (mean = 52%). We attribute the relatively low content of smectite to rapid mechanical weathering of polymictic source terrains, with little or no input of volcanic detritus from the Columbia River. The scatter in clay mineralogy probably was caused by converging of surface currents, turbidity currents, and near-bottom nepheloid clouds from several directions, as well as subtle changes in glacial vs. interglacial weathering products.
Resumo:
Mineralogical and granulometric properties of glacial-marine surface sediments of the Weddell Sea and adjoining areas were studied in order to decipher spatial variations of provenance and transport paths of terrigenous detritus from Antarctic sources. The silt fraction shows marked spatial differences in quartz contents. In the sand fractions heavy-mineral assemblages display low mineralogical maturity and are dominated by garnet, green hornblende, and various types of clinopyroxene. Cluster analysis yields distinct heavy-mineral assemblages, which can be attributed to specific source rocks of the Antarctic hinterland. The configuration of modern mineralogical provinces in the near-shore regions reflects the geological variety of the adjacent hinterland. In the distal parts of the study area, sand-sized heavy minerals are good tracers of ice-rafting. Granulometric characteristics and the distribution of heavy-mineral provinces reflect maxima of relative and absolute accumulation of ice-rafted detritus in accordance with major iceberg drift tracks in the course of the Weddell Gyre. Fine-grained and coarse-grained sediment fractions may have different origins. In the central Weddell Sea, coarse ice-rafted detritus basically derives from East Antarctic sources, while the fine-fraction is discharged from weak permanent bottom currents and/or episodic turbidity currents and shows affinities to southern Weddell Sea sources. Winnowing of quartz-rich sediments through intense bottom water formation in the southern Weddell Sea provides muddy suspensions enriched in quartz. The influence of quartz-rich suspensions moving within the Weddell Gyre contour current can be traced as far as the continental slope in the northwestern Weddell Sea. In general, the focusing of mud by currents significantly exceeds the relative and absolute contribution of ice-rafted detritus beyond the shelves of the study area.
Resumo:
Surface mineralogical compositions and their association to modern processes are well known from the east Atlantic and south-west Indian sectors of the Southern Ocean, but data from the interface of these areas - the Prydz Bay-Kerguelen region - is still missing. The objective of our study was to provide mineralogical data of reference samples from this region and to relate these mineralogical assemblages to hinterland geology, weathering, transport and depositional processes. Clay mineral assemblages were analysed by means of X-ray diffraction technique. Heavy mineral assemblages were determined by counting of gravity-separated grains under a polarizing microscope. Results show that by use of clay mineral assemblages four mineralogical provinces can be subdivided: i) continental shelf, ii) continental slope, iii) deep sea, iv) Kerguelen Plateau. Heavy mineral assemblages in the fine sand fraction are relatively uniform except for samples taken from the East Antarctic shelf. Our findings show that mineralogical studies on sediment cores from the study area have the potential to provide insights into past shifts in ice-supported transport and activity and provenance of different water masses (e.g. Antarctic slope current and deep western boundary current) in the Prydz Bay-Kerguelen region.
Resumo:
Depósitos albianos da bacia de São Luís-Grajaú, antigamente conhecidos apenas em subsuperfície como ‘Unidade Indiferenciada’ do Grupo Itapecuru, foram recentemente encontrados ao longo do rio Itapecuru, na parte leste desta bacia. São argilitos avermelhados, esverdeados a cinzas, arenitos estratificados e maciços e subordinadamente calcários, interpretados como depósitos de delta progradante para ENE/E e ESE e conectado a uma plataforma restrita. Para determinar a proveniência de arenitos albianos, foram coletadas 18 amostras para estudos de minerais pesados (fração 0,062-0,125 mm) usando-se microscópio petrográfico convencional e microscópio eletrônico de varredura. Os arenitos foram classificados como quartzo-arenito moderadamente a bem selecionado, cimentado por dolomita, cujos principais minerais pesados são zircão (4-70%), granada (12-74%), turmalina (3-20%), estaurolita (1-9%), rutilo (1-8%) e barita (0-55%), enquanto cianita, anatásio (autigênico), anfibólio (hornblenda), andaluzita, sillimanita, espinélio e ilmenita ocorrem raramente. A maioria dos grãos é irregular angulosa, mas grãos bem arredondados, particularmente de turmalina e zircão, também estão presentes. Texturas superficiais incluem fraturas conchoidais, marcas de percussão em V e pequenos buracos, estes últimos em grãos arredondados de turmalina e zircão, enquanto feições de corrosão estão principalmente presentes em barita (cavidades rômbicas), cianita, estaurolita (superfície mamilar) e granada (facetas bem formadas por dissolução). Grãos de zircão, com texturas de zoneamento oscilatório e razões U/Th ≥ 0,5 e Zr/Hf média de 29, indicam proveniência de granitos e migmatitos, enquanto os tipos de turmalina, determinados como dravita e shorlita, são oriundos, principalmente, de metapelitos e metapsamitos aluminosos e/ou pobres em Al, com menor contribuição de granitos e rochas meta-ultramáficas. As granadas, por sua vez, são ricas em almandina e têm baixos teores dos componentes de espessartita, grossulária e piropo. Suas fontes potenciais são rochas metamórficas de baixo a médio grau e granitos. Com base em análises de minerais pesados e progradação do sistema deltaico para ENE/E e ESE, as áreas mais prováveis como fontes potenciais de arenitos albianos são o cráton São Luís, os cinturões neoproterozóicos Araguaia e Gurupi, bem como a bacia paleozóica do Parnaíba, esta fornecendo sedimentos de grãos arredondados.
Resumo:
Five heavy mineral associations occur in the Paleocene and Eocene sediments recovered during Leg 81 of the Deep Sea Drilling Project (DSDP) in the SW Rockall area. Association 1, consisting of augite, iddingsite, and olivine, was derived from the basaltic rocks of the northern part of the Rockall Plateau. Association 2 consists of epidote group minerals, including piedmontite, and amphiboles of actinolite, actinolitic hornblende, and magnesio-hornblende compositions, and was derived from the metamorphic basement of south Greenland. Association 3 comprises garnet, augite, apatite, and edenitic and pargasitic amphiboles and has a provenance in the southern Rockall Plateau. Associations 4 (garnet, apatite, edenitic/pargasitic amphiboles) and 5 (garnet, apatite) are intrastratal solution derivatives of Association 3, with successive removal of first pyroxene and then amphibole with increasing depth of burial. Throughout the SW Rockall Plateau area there is a significant change in the spectrum of the above assemblages in the lower part of the Eocene. This change has been noted at Sites 403, 404, 553, and 555 and is defined by the last appearance of Association 2. This level therefore marks the cessation of sediment supply from southern Greenland and is the result of the final separation of Rockall and Greenland immediately prior to magnetic Anomaly 24.
Resumo:
The Aleutian abyssal plain is a fossil abyssal plain of Paleogene age in the western Gulf of Alaska. The plain is a large, southward-thinning turbidite apron now cut off from sediment sources by the Aleutian Trench. Turbidite sedimentation ceased about 30 m.y. ago, and the apron is now buried under a thick blanket of pelagic deposits. Turbidites of the plain were recovered at site 183 of the Deep Sea Drilling Project on the northern edge of the apron. The heavy-mineral fraction of sand-sized samples is mostly amphibole and epidote with minor pyroxene, garnet, and sphene. The light-mineral fraction is mostly quartzose debris and feldspars. Subordinate lithic fragments consist of roughly equal amounts of metamorphic, plutonic, sedimentary, and volcanic grains. The sand compositions are arkoses in many sandstone classifications, although if fine silt is included with clay as matrix, the sand deposits are feldspathic or lithofeldspathic graywacke. The sands are apparently first-cycle products of deep dissection into a plutonic terrane, and they contrast sharply with arc-derived volcanic sandstones of similar age common on the adjacent North American continental margin. The turbidite sands are stratigraphically remarkably constant in composition, which indicates derivation from virtually the same terrane through a time span approaching 20 m.y. Comparison of Aleutian plain data with the compositions of coeval sedimentary rocks from the northeast Pacific margin shows that the Kodiak shelf area includes possible proximal equivalents of the more distal turbidites. Derivation from the volcaniclastic Mesozoic flysch of the Shumagin-Kodiak shelf is unlikely; more probably the sediments were derived from primary plutonic sources. The turbidites also resemble deposits in the Chugach Mountains and the younger turbidites of the Alaskan abyssal plain and could conceivably have been derived from the coast ranges of southeastern Alaska or western British Columbia. The Aleutian plain sediment most likely was not derived from as far south as the Oregon-Washington continental margin, where coeval sedimentary deposits are dominantly volcaniclastic.