7 resultados para dreiteiliger Aufbau

em Institutional Repository of Leibniz University Hannover


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Digital data from various scientific fields is stored in separate information systems („FIS geology“, „FIS pedology“, etc.) in the Lower Saxony Geo-Information System NIBIS so that it can be processed and interpreted; this is necessary to meet increasing demand for soil-relevant information for decision-making and planning purposes. The necessary work will be considerably accelerated and its quality improved by setting up and actually using such a tool. A detailed account is given of the Lower Saxony Geo-Information System NIBIS, in particular how the data base is set up and how the NIBIS is used in cases where concrete problems occured.

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Das untere Elbtal hat während der Weichsel-Kaltzeit (120.000-10.000 vor heute) als nordwestliche Fortsetzung der drei großen mitteldeutschen und polnischen Urstromtäler gedient (GIRARD 1855). Die drei Urstromtäler sind jeweils der Haupteisrandlage einer Vereisungsphase zuzuordnen und nacheinander in Funktion gewesen (KEILHACK 1887, 1898). Die drei Urstromtäler vereinigen sich nahe dem Elbknie bei Havelberg. Von dort aus sind die Schmelzwässer des skandinavischen Inlandeises gemeinsam mit den Flußwässern aus dem mitteldeutschen Einzuggebiet der Elbe zur Nordsee abgeflossen. Dazugekommen sind Schmelzwasserabflüsse vom Eisrand, der während des Höchststandes der Vereisung nur etwa 10 km vom Elbtal entfernt gelegen hat. Trotz der wichtigen Funktion des Elbe-Urstromtales bei der Entwässerung Mitteleuropas hat es bisher keine zusammenfassende Bearbeitung der weichselkaltzeitlichen Urstromtal - Ablagerungen gegeben. Ausgangspunkt für die vorliegende Arbeit ist die Frage gewesen, ob sich die weichselkaltzeitlichen Urstromtalabiagerungen, die als Niederterrassen-Ablagerungen bezeichnet werden, petrographisch von liegenden Schichteinheiten abtrennen lassen. Weitere thematische Schwerpunkte sind die Anlage und Entwicklung des Elbe-Urstromtales sowie die Untergliederung der dazugehörigen Sedimente. Geographischer Ausgangspunkt der Untersuchungen ist der Raum Gorleben. Dort wurde die kiespetrographische Gliederung der quartären Schichten erarbeitet, unter maßgeblicher Mitwirkung von Frau Dipl.-Geol. C. KABEL (in Duphorn 1980, 1983). Von Gorleben aus wird der Verlauf der Niederterrasse anhand von 11 Querprofilen bis in die Deutsche Bucht verfolgt.

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Der Plan, große Mengen radioaktiver Materialien in Salinar- gesteine von Salzstöcken einzulagern, schließt die Rück- holbarkeit praktisch aus. Bei der Abschätzung des Langzeitverhaltens der Gesteine, der Grubenbaue und des gesamten Diapirs sind - wie auch beim Einlagerungsvorgang selbst - Fehler nicht auszuschließen und nicht korrigierbar. Die Antragsteller behandeln die geowissenschaftlichen Aspekte der Einlagerung (Teilprojekt 6) nicht qualifiziert und widmen den damit verbundenen Problemen eine unangemessen geringe Aufmerksamkeit. Sie lassen die einem solchen Projekt adäquate planerische Sorgfalt vermissen, gehen mit den zur Verfügung stehenden Daten in ihrer Argumentation ungenau oder selektiv um und erwecken den Eindruck, unter der Erdoberfläche nach dem 'trial-and-error'-Prinzip Vorgehen zu wollen. Salzstöcke sind tektonisch grundsätzlich instabile Gesteinskörper. Die an ihrem Aufbau überwiegend beteiligten Gesteine sind die wasserlöslichsten der Erdkruste; sie reagieren am empfindlichsten auf mechanische und thermische Beanspruchung und sind am reaktionsfähigsten bei möglichen Interaktionen zwischen Einlagerungsmaterial und Einlagerungsmedium. Salzstöcke sind die auf bergtechnische Eingriffe am sensibelsten reagierenden Gesteinskörper, insbesondere, wenn der am Salzspiegel herrschende Lösungszustand gestört wird, wenn durch künstliche Hohlräume im Innern Kriechbewegung (Konvergenz) des gesamten Salinars ausgelöst wird und wenn mit der Einlagerung thermische Belastungen einhergehen, welche höher sind als die mit der Gesteinsbildung und -Umbildung verbundenen Temperaturen es jemals waren. Daß trotz dieser Empfindlichkeit Gewinnungsbergbau in Diapiren möglich ist, ist kein Beleg für ihre Eignung als Endlager. Die Geowissenschaften verfügen über Modellvorstellungen zur Deutung der Salinargenese, des Salzaufstiegs und des gebirgsmechanischen Verhaltens. Diese Modelle sind teils als 'Lehrbuchwahrheit1 allgemein akzeptiert, werden z.T. aber auch als Hypothesen kontrovers diskutiert. Langzeitprognosen über das Verhalten von Gesteinen sind nicht verläßlich, wenn sie auf widersprochenen Modellvorstellungen über das Wesen von Gesteinen und Gesteinsverhalten beruhen. Die Salzstockauswahl ging der geowissenschaftlichen Erkundung voraus. Die wenigen publizierten Daten zur regionalen Geologie lassen nicht auf einen bergbautechnisch besonders leicht zu beherrschenden Salzstock schließen. Die Lage des Diapirs im Verbreitungsgebiet wasserreicher quartärzeitlicher Rinnensysteme spricht genauso gegen die Standortwahl wie die zu erwartende komplizierte Interntektonik und die politisch bedingte Unerforschbarkeit der Gesamtstruktur Gorleben-Rambow. Als Fehlentscheidung ist die durch Landkäufe am Standort Gorleben vorweggenommene Auswahl des Fabrikgeländes einschließlich Schachtanlage und Tritiumwasser-Verpressung auf dem Salzstock zu werten. Der nicht auszuschließende "Störfall Wassereinbruch" kann sich über Tage auf die Standsicherheit der riesigen Gebäude und Lagerbecken zerstörerisch auswirken und so Kontamination der Umgebung verursachen. Geowissenschaftliche Gründe, Erfahrungen aus der Bergbaukunde und die Erwartung, daß man fehlerhaftes Handeln nicht ausschließen kann, führen den Verfasser zu der Überzeugung, daß die Endlagerung radioaktiver Abfälle im Salz nicht zu empfehlen und nicht zu verantworten ist.

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In this article the sand-/gravelbodies from Hausberge-Veltheim and Krankenhagen- Möllenbeck in the Wesertal are described and compared considering their depositional and architectural regime. A scenario is developed to explain the genetic sequence of the deposits. The sand-/gravel-body exposed at Krankenhagen-Möllenbeck was deposited first in form of a marginal käme. Subsequently during the Drenthe-stade of the Saale ice age, the sedimentation of the sand- /gravelbody at Hausberge-Veltheim took place under the depositional environment of an end- moraine.

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The 2108,0 m deep exploration well "Bad Laer Z 1" (1993) has been carried down in order to investigate the deeper ground lying beneath the "Kleiner Berg" anticline, concerning the existence of reservoir beds which was postulated according to preceeding seismic investigations. This aim of the borehole was not attained, because no formations have been drilled suitable for the construction of an artificial gas reservoir. On the other hand the bore hole revealed a great amount of new regional geologic, stratigraphic, mining, coalification and coal bed gas data. Therefore, from a scientific point of view the exploration well must be considered successful. After the drilling of a stratigraphic succession, mainly consisting of cretaceous "Pläner" limestones (from Albian to Turonian), surprisingly in a depth of only 439 m productive Upper Carboniferous rocks formed by the Lembeck beds of uppermost Westfalian C have been found. In addition to this discovery, nearly the whole Westfalian C and B reaching down to the coal bed "Katharina" at the Westfalian A boundary were drilled through revealing over 66 partly minable coal beds. Investigations of the coalification pattern showed a more or less continuous increase of the rank gradient with depth reaching from the step of gas flame coal down to 700 m over that of gas coal down to 1600 m to that of fat coal down to the bottom of the borehole. An additional surprising result of the exploration well was the observation, that immediately below the base of the Cretaceous the coal beds revealed a high gas content without the presence of a desorption zone. This result must also be considered as success of the drilling with respect to the strong interest in a potential utilization of coal bed methane nowadays.

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During the Sedimentation of the platform carbonate deposits of the Korallenoolith Formation (middle Oxfordian to early Kimmeridgian) small buildups ofcorals formed in the Lower Saxony Basin. These bioconstructions are restricted to particular horizons (Untere Korallenbank,ßorigenuna-Bank Member etc.) and represent patch reefs and biostromes. In this study, the development of facies, fossil assemblages, spatial distribution of fossils, and reefs of the ßorigenuna-Bank Member (upper Middle Oxfordian) in the Süntel Mts and the eastern Wesergebirge Mts is described; the formation of reefs is discussed in detail. Twelve facies types are described and interpreted. They vary between high-energy deposits as well winnowed oolites and quiet-water lagoonal mudstones. Owing to the significance of biota, micro- and macrofossils are systematically described. The reefs are preserved in growth position, are characterized by numerous corresponding features and belong to a certain reef type. According to their size, shape and framework, they represent patch reefs, coral knobs (sensu James, 1983), coral thrombolite reefs (sensu Leinfelder et al., 1994) or “Klein- and Mitteldickichte” (sensu Laternser, 2001). Their growth fabric corresponds to the superstratal (dense) pillarstone (sensu Insalaco, 1998). As the top of the ßorigenuna-Bank displays an erosional unconformity (so-called Hauptdiskontinuität), the top of the reefs are erosionally capped. Their maximum height amounts to at least the maximum thickness of the ßorigenuna-Bank which does not exceed 4 metres. The diversity of coral fauna of the reefs is relatively low; a total of 13 species is recorded. The coral community is over- whelmingly dominated by the thin-branched ramose Thamnasteria dendroidea (Lamouroux) that forms aggregations of colonies (77?. dendroidea thickets). Leafy to platy Fungiastrea arachnoides (Parkinson) and Thamnasteria concinna (Goldfuss) occur subordinately, other species are only of minor importance. In a few cases, the reef-core consisting of Th. dendroidea thickets is laterally encrusted by platy F. arachnoides and Th. concinna colonies, and microbial carbonates. This zonation reflects probably a succession of different reef builders as a result of changing environmental conditions (allogenic succession). Moreover, some reefs are overlain by a biostrome made of large Solenopora jurassica nodules passing laterally in a nerinean bed. Mikrobial carbonates promoted reef growth and favoured the preservation of reef organismn in their growth position or in situ. They exhibit a platy, dendroid, or reticulate growth form or occur as downward-facing hemispheroids. According to their microstructure, they consist of a peloidal, clotted, or unstructured fabric (predominately layered and poorly structured thrombolite as well as clotted leiolite) (sensu Schmid, 1996). Abundant endo- and epibiontic organisms (bivalves, gastropods, echinoids, asteroids, ophiuroids, crabs etc) are linked to the reefs. With regard to their guild structure, the reefs represent occurrences at which only a few coral species serve as builder. Moreover, microbial carbonates contribute to both building and binding of the reefs. Additional binder as well as baffler are present, but not abundant. According to the species diversity, the dweller guild comprises by far the highest number of invertebrate taxa. The destroyer guild chiefly encompasses bivalves. The composition of the reef community was influenced by the habitat structure of the Th. dendroidea thickets. Owing to the increase in encrusting organisms and other inhabitants of the thickets, the locational factors changed, since light intensity and hydrodynamic energy level and combined parameters as oxygen supply declined in the crowded habitat. Therefore a characteristic succession of organisms is developed that depends on and responds to changing environmental conditions („community replacement sequence“). The succession allows the differentiation of different stages. It started after the cessation of the polyps with boring organisms and photoautotrophic micro-encrusters (calcareous algae, Lithocodium aggregatum). Following the death of these pioneer organisms, encrusting and adherent organisms (serpulids, „Terebella“ species, bryozoans, foraminifers, thecideidinids, sklerospongid and pharetronid sponges, terebratulids), small mobile organisms (limpets), and microbial induced carbonates developed. The final stage in the community replacement sequence gave rise to small cryptic habitats and organisms that belong to these caves (cryptobionts, coelobites). The habitat conditions especially favoured small non-rigid demosponges (“soft sponges”) that tolerate reduced water circulation. Reef rubble is negligible, so that the reefs are bordered by fossiliferous micritic limestone passing laterally in micritic limestone. Approximately 10% of the study area (outcropping florigemma-Bank) corresponds to reefal deposits whereas the remaining 90% encompass lagoonal inter-reefal deposits. The reef development is a good example for the interaction between reef growth, facies development and sea-level changes. It was initiated by a sea-level rise (transgression) and corresponding decrease in the hydrodynamic energy level. Colonization and reef growth took place on a coarse-grained Substrate composed of oncoids, larger foraminifers and bioclasts. Reef growth took place in a calm marine lagoonal setting. Increasing abundance of spherical coral morphs towards the Northeast (section Kessiehausen, northwestem Süntel Mts) reflects higher turbidity and a facies transition to coral occurrences of the ßorigenuna-Bank Member in the adjacent Deister Mts. The reef growth was neither influenced by stonns nor by input of siliciclastic deposits, and took place in short time - probably in only a thousand years under most probably mesotrophic conditions. The mass appearance of solenoporids and nerineids in the upper part of the ßorigenuna-Bank Member point to enhanced nutrient level as a result of regression. In addition, this scenario of fluctuations in nutrient availability seems to be responsible for the cessation of reef corals. The sea level fall reached its climax in the subaerial exposure and palaeokarst development of the florigemma-Bank. The reef building corals are typical pioneer species. The blade-like, flattened F. amchnoides colonies are characterized by their light porous calcium carbonate skeleton, which is a distinct advantage in soft bottom environment. Thus, they settled on soft bottom exposing the large parts of its surface to the incoming light. On the other hand, in response to their light requirements they were also able to settle shaded canopy structures or reef caves. Th. dendroidea is an opportunistic coral species in very shallow, well illuminated marine environment. Their thin and densely spaced branches led to a very high surface/volume ratio of the colonies that were capable to exploit incoming light due to their small thamasterioid calices characterized by “highly integrated polyps”. In addition, sideward coalescence of branches during colony growth led to a wave-resistant framework and favoured the authochthonous preservation of the reefs. Asexual reproduction by fragmented colonies promoted reef development as Th. dendroidea thickets laterally extend over the sea floor or new reefs have developed from broken fragments of parent colonies. Similar build ups with Th. dendroidea as a dominant or frequent reef building coral species are known from the Paris Basin and elsewhere from the Lower Saxony Basin (Kleiner Deister Mts). These buildups developed in well-illuminated shallow water and encompass coral reefs or coral thrombolite reefs. Intra- and inter-reef deposits vary between well-winnowed reef debris limestone and mudstones representing considerably calmer conditions. Solenoporid, nerineids and diceratides belong to the characteristic fossils of these occurrences. However, diceratides are missing in theflorigemma-Bank Member. Th. dendroidea differs in its colonization of low- to high-energy environment from recent ramose scleractinian corals (e.g., Acropora and Porites sp.). The latter are restricted to agitated water habitats creating coral thickets and carpets. According to the morphologic plasticity of Th. dendroidea, thick-branched colonies developed in a milieu of high water energy, whereas fragile, wide- and thin-branched colonies prevail in low-energy settings. Due to its relatively rapid growth, Th. dendroidea was able to keep pace with increased Sedimentation rates. 68 benthonic foraminiferan species/taxa have been recognized in thin sections. Agglutinated foraminifers (textulariids) predominate when compared with rotaliids and milioliids. Numerous species are restricted to a certain facies type or occur in higher population densities, in particular Everticyclammina sp., a larger agglutinated foraminifer that occurs in rock building amounts. Among the 25 reef dwelling foraminiferal species, a few were so far only known from Late Jurassic sponge reefs. Another striking feature is the frequency of adherent foraminiferal species. Fauna and flora, in particular dasycladaleans and agglutinated foraminifers, document palaeobiogeographic relationships to the Tethys and point to (sub)tropical conditions. Moreover, in Germany this foraminiferan assemblage is yet uncompared. In Southern Germany similar tethyan type assemblages are not present in strata as young as Middle Tithonian.

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This report investigates adaptations of electronic packaging methods used to create stacks of these sensors. Four methods were developed and tested to determine the best option in terms of mechanical stability and electrical conductivity of the system. For the first method, a stack is created by way of through paper vias (TPVs), a hole that is cut in the pads of the sensors and then filled with electrically conductive adhesive through the openings on the two sensors to be joined. The second method is called mechanical caulking and connects sensors through pads which have been lined with copper tape backed with conductive adhesive. The connection is created with a small copper rivet which is flattened in place by compressive force. The third method is the stitching method which is inspired by sewing of fabric. A pattern of thin copper wire is stitched on the pad of a sensor that is lined with copper tape backed with conductive adhesive. The wire is then stitched through a second sensor that is treated similarly with copper tape and the stack receives the same pattern through the two layers as was applied to the first sensor alone. The final method is the collapsed daisy chain which is the linear connection of sensors to their neighboring sensors via copper tape backed with conductive adhesive. The row of sensors is then collapsed in an alternating orientation into a single stack.