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Bei der Einführung von Bachelor- und Masterstudiengängen sind die entsprechenden gesetzlichen Anforderungen zu beachten sowie die Anforderungen von Akkreditierungsrat und Akkreditierungsagentur. Bachelor- und Masterstudiengänge müssen modularisiert sein und in ein Leistungspunktesystem integriert. Die Leistungspunkte müssen auf der tatsächlichen Arbeitsbelastung der Studierenden basieren. Bei der Konzeption von Bachelor- und Masterstudiengängen soll zunächst eine Bedarfsermittlung erfolgen. Besteht ein Bedarf, soll ein Abschlussprofil basierend auf den Kompetenzen (besondere Beachtung verdienen die Schlüsselqualifikationen), über die der Absolvent verfügen soll, erstellt werden. Aus diesem wird ein Curriculum mit Modulen abgeleitet. Die Module werden mit Leistungspunkten versehen und auf einem Modulbogen zwecks Transparenz beschrieben. Dabei ist der Paradigmenwechsel vom Lehrenden zum Lernenden zu beachten – Lernergebnisse statt Lernziele. Die Lernergebnisse werden mittels Kompetenzen ausgedrückt. Der Studiengang wird des weiteren im Diploma Supplement, welches der Studierende bei Abschluss zusätzlich zum Zeugnis erhält, dokumentiert. ECTS ist aber auch mit weiteren Auflagen verbunden. Noch herrührend von ECTS als reinem Transfersystem müssen beim Austausch von Studierenden die Formulare ECTS Application, Learning Agreement und Transcript of Records vom Fachbereich in Abstimmung mit der jeweiligen Partnerhochschule ausgefüllt werden, (siehe Anlagen 4 und 5). Zur Information aller Studierenden sollen die folgenden Dokumente bereitstehen: Ein Ratgeber für Gaststudierende, eine Beschreibung der Hochschule und der Fachbereiche (nach bestimmten Kriterien) sowie Beschreibungen aller Module (siehe Anlage). Die Fachhochschule hat diese Informationen schon zum größten Teil auf ihrer Website dargestellt. Wichtig ist die Pflege der Daten, die von den einzelnen Fachbereichen bzw. den Lehrenden übernommen werden muss, da nur sie die Richtigkeit und Aktualität der Daten gewährleisten können.
IASSE-2004 - 13th International Conference on Intelligent and Adaptive Systems and Software Engineering eds. W. Dosch, N. Debnath, pp. 245-250, ISCA, Cary, NC, 1-3 July 2004, Nice, France We introduce a UML-based model for conceptual design support in civil engineering. Therefore, we identify required extensions to standard UML. Class diagrams are used for elaborating building typespecific knowledge: Object diagrams, implicitly contained in the architect’s sketch, are validated against the defined knowledge. To enable the use of industrial, domain-specific tools, we provide an integrated conceptual design extension. The developed tool support is based on graph rewriting. With our approach architects are enabled to deal with semantic objects during early design phase, assisted by incremental consistency checks.
Schweinebraten
(2004)
Improved collapse loads of thick-walled, crack containing pipes and vessels are suggested. Very deep cracks have a residual strength which is better modelled by a global limit load. In all burst tests, the ductility of pressure vessel steels was sufficiently high whereby the burst pressure could be predicted by limit analysis with no need to apply fracture mechanics. The relative prognosis error increases however, for long and deep defects due to uncertainties of geometry and strength data.
Applications of Graph Transformations with Industrial Relevance Lecture Notes in Computer Science, 2004, Volume 3062/2004, 90-105, DOI: 10.1007/978-3-540-25959-6_7 In this paper we discuss how tools for conceptual design in civil engineering can be developed using graph transformation specifications. These tools consist of three parts: (a) for elaborating specific conceptual knowledge (knowledge engineer), (b) for working out conceptual design results (architect), and (c) automatic consistency analyses which guarantee that design results are consistent with the underlying specific conceptual knowledge. For the realization of such tools we use a machinery based on graph transformations. In a traditional PROGRES tool specification the conceptual knowledge for a class of buildings is hard-wired within the specification. This is not appropriate for the experimentation platform approach we present in this paper, as objects and relations for conceptual knowledge are due to many changes, implied by evaluation of their use and corresponding improvements. Therefore, we introduce a parametric specification method with the following characteristics: (1) The underlying specific knowledge for a class of buildings is not fixed. Instead, it is built up as a data base by using the knowledge tools. (2) The specification for the architect tools also does not incorporate specific conceptual knowledge. (3) An incremental checker guarantees whether a design result is consistent with the current state of the underlying conceptual knowledge (data base).
Murphy's law
(2004)
Multiplex
(2004)
For the application of the concept of Lightning Protection Zones (LPZ), the knowledge of the magnetic fields and induced voltages inside a structure is necessary. Laboratory experiments have been conducted at a downscaled model of a building (scale factor 1:6) to determine these electromagnetic quantities in case of a direct strike to the structure. The model (3 m x 2 m x 2 m) represented a small industrial building using the reinforcement of the concrete as electromagnetic shield. The magnetic fields and magnetic field derivatives were measured at several location inside the scaled model. Further, the voltages induced on three typical cable routes inside the model was determined. The influence of the lightning current waveshape, point-of-strike, bonding of the cable routes, and bridging of an expansion joint in the middle of the building on these quantities was studied.
In the paper the results obtained from experiments at a modelled reinforced building in case of a direct lightning strike are compared with calculations. The comparison includes peak values of the magnetic field Hmax, its derivative (dH/dt)max and of induced voltages umax in typical cable routings. The experiments are performed at a 1:6 scaled building and the results are extrapolated using the similarity relations theory. The calculations are based on the approximate formulae given in IEC 62305-4 and have to be supplemented by a rough estimation of the additional shielding effect of a second reinforcement layer. The comparison shows, that the measured peak values of the magnetic field and its derivative are mostly lower than the calculated. The induced voltages are in good agreement. Hence, calculations of the induced voltages based on IEC 62305-4 are a good method for lightning protection studies of buildings, where the reinforcement is used as a grid-like electromagnetic shield.