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Summary The Brabant Massif is the southeastern part of the Caledonian fold belt known as the Anglo-Brabant Massif, which extends from East Anglia to central Belgium and is a major constituting part of the Eastern Avalonia microcontinent. Recent research in Lower Palaeozoic stratigraphy and in geophysical interpretation led to a new subcrop map of the Brabant Massif. Palaeogeographical analysis supports the rapid movement of this Massif to lower latitudes and towards Baltica in Ordovician times. Structurally, the Brabant Massif appears as a faulted antiform, flanked longitudinally to the southwest by a magmatic arc of late Ordovician to early Silurian age. An elongated gravity low points to concealed granitic intrusions below a part of the magmatic arc.  相似文献   
714.
New germanate analogs of the mineral surinamite, Mg3Al4BeSi3O16, have been synthesized with composition Mg4A4Ge3O16 (A=Al, Ga) and have been characterized by powder X-ray diffraction and transmission electron microscopy. The Al surinamite phase crystallizes with a primitive unit-cell (P2/n, a=10.153(1), b=11.708(2), c=9.920(1) Å, β=110.18 (2)° and Z=4) similar to that of the silicate mineral. The Ga surinamite-like phase crystallizes with a larger unit-cell (C2/c, a=10.308(2), b=23.690(5), c=10.057(l) Å, β=110.23 (2)° and Z=8). High-resolution electron microscopy has shown the common formation of intergrowths between the surinamite and sapphirine structures, illustrating the polysomatic structural relationship between them. Observations of disordered microstructures in the Al surinamite suggest the occurrence of a P2/n?C2/c transformation.  相似文献   
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Isotopic fractionation is discussed in terms of collision cross sections. Under thermal equilibrium conditions, isotopically non-reactive collisions and collisions involving indistinguishable isotopes have no effect on the concentration of isotopic species: isotopic exchange reactions give rise to the well known mass-dependent isotopic fractionation (MDF). Under non-thermal equilibrium conditions, the non-reactive and indistinguishable cross sections must be taken into account since they participate in the loss of energy (thermalisation) of the hot species. If an isotope exchange between hot and cold species occurs during the thermalisation, the relative isotopic abundances contribute to the reaction rates and the MDF rule is not valid anymore. A general formulation of the isotopic fractionation, accounting for thermal and non-thermal situations, is proposed. The experimental results obtained during the synthesis of ozone [1] are well explained by the present treatment, which could be extended to other isotopic anomalies observed in meteorites.  相似文献   
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Résumé Une particule qui ne subit que des transformations adiabatiques, occupe sa position d'équilibre au sein d'une masse d'air en équilibre hydrostatique, lorsque la sommeS de son enthalpie spécifique et de son énergie potentielle par unité de masse est extremum. Suivant que cet extremum est un minimum ou un maximum, l'état d'équilibre hydrostatique est stable ou instable. On peut généraliser cette proposition au cas de l'état de mouvement géostrophique, à condition d'ajouter, à la sommeS, l'énergie cinétique longitudinale, par unité de masse, de la particule. On peut étendre immédiatement ce dernier résultat au cas du tourbillon circulaire permanent.
Summary A particle of air which undergoes but adiabatic changes of state occupies its position of equilibrium inside a mass of air in hydrostatic equilibrium if the sumS of its specific enthalpy and of its potential energy per unit of mass assumes an extreme value. According as this extreme is a minimum or a maximum the state of hydrostatic equilibrium is stable or unstable. This postulate can be generalized in case of geostrophic state of motion on condition that the kinetic longitudinal energy of the particle per unit of mass is added to the sumS. This last result can be immediately extended on the case of a permanent circular vortex.

Zusammenfassung Ein Luftpartikelchen, das ausschließlich adiabatischen Zustandsänderungen unterliegt, nimmt seine Gleichgewichtslage im Innern einer im hydrostatischen Gleichgewicht befindlichen Luftmasse ein, wenn die SummeS seiner spezifischen Enthalpie und seiner potentiellen Energie in der Masseneinheit ein Extrem wird; je nachdem dieses Extrem ein Minimum oder ein Maximum ist, ist das hydrostatische Gleichgewicht stabil oder instabil. Diese Forderung läßt sich für den Fall der geostrophischen Bewegung verallgemeinern, indem man zur SummeS die kinetische Longitudinalenergie der Partikel (je Maßeinheit) addiert. Dieses letztere Resultat läßt sich unmittelbar auf den Fall des permanenten Kreiswirbels ausdehnen.
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The Algiers region, northern Algeria, is known to be seismically active, with recurrent large (M>6) earthquakes. Because of the lack of high-resolution bathymetry, the offshore structures remained for a long time poorly known. Thanks to a new marine data base (MARADJA 2003 cruise), the offshore part of the margin is accurately mapped, and new active and recent structures are described. West of the bay of Algiers, the margin enlarges, forming the Khayr al Din bank, interpreted as a tilted block of the passive margin born during the opening of the Algero-Provençal basin. At the slope break, a 80 km-long fault-tip Quaternary fold, namely the Khayr al Din fault, extends at the foot of the margin off NW Algiers and represents the largest active structure of the coastal area, together with the Sahel anticline. We also map for the first time a set of overlapping, en echelon active folds in the upper part of the Khayr al Din bank, located off previously known active structures on land. Most of these faults represent actually a threat for the Algiers region in terms of seismic hazard but also geological hazards, such as tsunamis, as most of them depicts significant dimensions and slip rates. The highest long-term horizontal shortening rate is found on the Khayr al Din fault and is estimated at 0.5 ± 0.1 mm/yr, with a maximal magnitude of 7.3, which provides one of the highest seismogenic potential in the region.A new tectonic framework for the Algiers region is proposed, in which the main south-dipping offshore structure, of opposite vergence relative to most thrusts on land, appears to be nowadays the main driving fault system, as also found further east in the Boumerdès (M 6.8) 2003 rupture zone. The overall apparent pop-up structure of the recent and active faults may result from a progressive migration of the plate limit from the Late Miocene, north-dipping suture zone on land, to the Quaternary, south-dipping main Khayr al Din fault at sea, suggesting a process of subduction inception.  相似文献   
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