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Im Rahmen mehrerer vom Bundesumweltministerium geförderter Forschungsvorhaben untersucht die BAM Bundesanstalt für Materialforschung und -prüfung zusammen mit Partnern aus Industrie und Wissenschaft das Tragverhalten von zyklisch lateral und axial belasteten Rammpfählen für Offshore-Windkraftanlagen. Neben Modellversuchen im Labor werden hierbei auch Großversuche durchgeführt. In diesem Beitrag wird das neu erstellte Testfeld der BAM zur Prüfung von Pfählen in Horstwalde vorgestellt. In den laufenden Großversuchen werden Parameter wie Tragfähigkeitsminderung infolge zyklisch-axialer Lasten im Druck- und Zugbereich sowie die Zunahme von Tragfähigkeiten durch sogenannte Anwachseffekte untersucht. Bezüglich der zyklischen Belastungen werden insbesondere als unsicher anzunehmende Wertepaare in den derzeit verwendeten Interaktionsdiagrammen betrachtet, wobei hier das Hauptaugenmerk aber nicht nur auf dem Versagen des Pfahls, sondern auch auf der Ermittlung der Resttragfähigkeit nach definierten Zyklenzahlen liegt. Im Beitrag werden erste Ergebnisse zu den Anwachseffekten präsentiert und mit Ergebnissen aus der Literatur verglichen. Des Weiteren werden das Versuchsprogramm zu den zyklisch axial belasteten Pfählen vorgestellt und erste Ergebnisse gezeigt. In einem Ausblick werden weitere Ziele des Forschungsvorhabens beschrieben. Hierzu gehören die Validierung und Kalibrierung eines existierenden Modells zur Ermittlung der Tragfähigkeit unter zyklischer Belastung auf der Grundlage aktueller Messdaten am Pfahl.-----------------------------------------------------------------------------------------------
Large-scale tests on driven piles for the investigation of pile capacity under cyclic loading and ageing effects. The cyclic behaviour of axially and laterally loaded piles for the foundation of offshore wind turbines is being investigated by the Federal Institute for Materials Research and Testing (BAM) in the frame of several research projects funded by the German Federal Ministry for the Environment and carried out in cooperation with industrial and academic partners. To this end, physical model tests in reduced scale as well as large scale field tests are being performed. This paper presents the new pile testing facility in the BAM's testing site at Horstwalde. The large-scale tests being performed there are aiming at the pile capacity degradation due to cyclic axial loading (both in tension and compression) as well as at the investigation of the capacity gains due to ageing effects (pile setup). Concerning the cyclic loading, the investigations have been mainly focused on special load combinations where there is little experience and where current interaction diagrams are loosely defined. However, the aim of the tests was not the cyclic failure, but rather the assessment of the post-cyclic capacity after the application of a pre-defined number of load cycles. Here, the testing program is summarised and some key results from the first testing campaign are discussed. The paper also presents some preliminary results concerning the capacity gains through ageing and compares them to previous experience from the literature. Finally, the paper gives an outlook on further goals of the current research projects, including the validation and calibration of a design model for the cyclic capacity of piles based on measured data from real piles.
This article presents a solid cohesion model for the simulation of bonded granular assemblies in the frame of 3D discrete element approaches (DEM). A simple viscoplastic cohesion model for 2D geometries is extended to 3D conditions, while its yield criterion is generalized as a hyper-surface in the space of bond solicitations to include torsional moments. The model is then calibrated using experimental results of uniaxial traction at both the microscopic and macroscopic scales with an artificial granular cohesive soil. The paper finally presents some simulated results on the macromechanical sample traction application and briefly discusses the model's current limitations and promising prospects for subsequent works.
This article presents a solid cohesion model for the simulation of bonded granular assemblies in the frame of 3D discrete element approaches (DEM). A simple viscoplastic cohesion model for 2D geometries is extended to 3D conditions, while its yield criterion is generalized as a hyper-surface in the space of bond solicitations to include torsional moments. The model is then calibrated using experimental results of uniaxial traction at both the microscopic and macroscopic scales with an artificial granular cohesive soil. The paper finally presents some simulated results on the macromechanical sample traction application and briefly discusses the model's current limitations and promising prospects for subsequent works.
In this contribution, we consider two applications in which probabilistic approaches can potentially complement or enhance the design and assessment of offshore wind turbine foundations. First, we illustrate in a numerical example that probabilistic modelling can be helpful in dealing with chang-es in turbine locations during the planning phase of an offshore wind farm. In this case, spatial probabilistic modelling of the ground conditions enables (a) an inference of the soil properties at the modified turbine location from field data collected at different locations across an offshore wind farm site and (b) an optimisation of further site investigations. Second, we discuss the uncer-tainties and risks associated with the installation of large diameter monopiles in soils with hetero-geneities such as strong layers and/or embedded boulders. Subsequently, we present a concept for modelling, understanding, and managing these risks based on a probabilistic model of the subgrade conditions, monopile, and subgrade-pile-interaction.
Most railway embankments in the UK were built in the Victorian era and are of end-tipped construction using materials (usually cohesive) excavated from adjacent cuttings, resulting in a clod-and-matrix structure. Historically, there has been a lack in understanding of the mechanical behaviour of such railway embankments. In the next decade railway traffic in the UK, particularly freight, is forecast to grow considerably. Consequently, there is a need to improve the understanding of how increases in rail traffic loading may influence the mechanical behaviour of railway embankments and thus track performance. The Rail Safety and Standards Board in conjunction with Network Rail is currently undertaking a programme of applied research into this topic. As part of these studies a programme of physical model tests has been carried out. Physical model tests can provide high quality data on system performance under a large range of loading conditions and geometrical configurations. The data can be generated rapidly, with test periods of weeks or months rather than years or decades. Additionally, boundary conditions are well-defined and controlled, compared with the complex situations encountered in full scale embankments in the field. This paper summarises the physical model test programme, the development of the test set-up, the tests themselves and the conclusions drawn.