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- 2020 (8) (entfernen)
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- Additive Manufacturing (2)
- L-PBF (2)
- 316L (1)
- AFM (1)
- Additive manufacturing (1)
- Aged heating oil with 10% and 20% biodiesel (1)
- Al-Mg-Si (1)
- BNP (1)
- Beförderung (1)
- Boehmite (1)
Organisationseinheit der BAM
- 9 Komponentensicherheit (4)
- 3 Gefahrgutumschließungen; Energiespeicher (2)
- 5 Werkstofftechnik (2)
- 5.1 Mikrostruktur Design und Degradation (2)
- 7 Bauwerkssicherheit (2)
- 8 Zerstörungsfreie Prüfung (2)
- 9.3 Schweißtechnische Fertigungsverfahren (2)
- 9.4 Integrität von Schweißverbindungen (2)
- 3.2 Gefahrguttanks und Unfallmechanik (1)
- 3.3 Sicherheit von Transportbehältern (1)
- 6 Materialchemie (1)
- 6.1 Oberflächen- und Dünnschichtanalyse (1)
- 6.6 Physik und chemische Analytik der Polymere (1)
- 7.2 Ingenieurbau (1)
- 7.6 Korrosion und Korrosionsschutz (1)
- 8.0 Abteilungsleitung und andere (1)
- 8.5 Röntgenbildgebung (1)
Eingeladener Vortrag
- nein (2)
Der Einsatz von Aluminiumlegierungen als Konstruktionswerkstoff hat in den letzten Jahrzehnten aufgrund seines überlegenen Festigkeits-/ Gewichtsverhältnisses zugenommen. Dabei spielen höherfeste aushärtbare Al-Mg-Si-Legierungen eine wichtige Rolle.
Dieser Beitrag konzentriert sich auf die additive Fertigung von Prinzipbauteilen aus einer Al-Mg-Si-Aluminiumlegierung mittels Wire + Arc Additive Manufacturing. Werkstoffe dieses Legierungssystems weisen eine ausgeprägte Heißrissanfälligkeit auf, weshalb das artgleiche Fügen dieser Materialien, mittels Metallschutzgasschweißen, heutzutage immer noch eine Herausforderung darstellt. Kommerzielle Al-Mg-Si-Schweißdrähte sind am Markt nicht verfügbar.
In dieser Arbeit wird die Anwendbarkeit eines neuartigen Al-Mg-Si-Schweißdrahtes mit zusätzlichen kornfeinenden Elementen für die additive Fertigung mittels MSG-Verfahren gezeigt. Dazu wird der Zusammenhang von verwendeten Prozessparametern und der resultierenden Bauteilqualität untersucht, wobei die Größe und Verteilung von Poren sowie die Kornmorphologie analysiert werden. Darüber hinaus wird der Einfluss einer T6 Wärmenachbehandlung auf die mechanischen Eigenschaften des Werkstoffes untersucht und ein Vergleich zum entsprechenden Referenzmaterial (Knetlegierung) gezogen.
Thermography is one on the most promising techniques for in-situ monitoring of metal additive manufacturing processes. Especially in laser powder bed fusion processes, the high process dynamics and the strong focus of the laser beam cause a very complex thermal history within the produced specimens, such as multiple heating cycles within single layer expositions. This complicates data interpretation, e.g., in terms of cooling rates. A quantity that is easily calculated is the time a specific area of the specimen is at a temperature above a chosen threshold value (TOT). Here, we discuss variations occurring in time-over-threshold-maps during manufacturing of an almost defect free cuboid specimen.
The image designed by Natalia Cano Murillo and colleagues shows the cross section of a ternary composite (boehmite/polycarbonate/epoxy, 80μm x 80μm). The surface was measured by AFM kelvin probe microscopy, yielding the surface potential which is shown as 3D‐surface and contour lines. The sample was further subjected to AFM force spectroscopy with a lateral resolution of 1μm², yielding the local Young's modulus, projected in false colors on the 3D surface. The ternary system, containing boehmite nanoparticles, shows a broad distribution of modulus, desirable for optimized macroscopic mechanical properties, such as high stiffness as well as toughness.
Fracture mechanics is a key to fatigue assessment in AM metal components. Short fatigue cracks are initiated at defects and pronounced surface roughness intrinsic to AM. The subsequent crack-propagation is strongly influenced by microstructural interactions and the build-up of crack-closure. The aim of the present study is to give an insight into short-crack propagation in AM-metals. Fatigue crack propagation resistance curves were determined experimentally for AISI 316L manufactured by Laser Powder Bed Fusion (L-PBF) which was heat treated at three different temperatures. Differences in the build-up of the fatigue-crack propagation threshold in between the L-PBF specimens and compared to wrought material are due to the residual stress states, a pronounced roughness of the crack-faces in the L-PBF specimens and phase transformation in the vicinity of the crack-tip, resulting in increased crack-closure. This, together with crack-branching found along the crack path, enhances the resistance to the propagation of fatigue cracks.
Biodiesel is viewed as a major source of energy. In areas such as the European Un-ion, where 80 % of the oil-based fuel is imported, there is also the desire to reduce dependence on external oil supplies.
Materials compatibility is a major concern whenever the fuel composition is changed. The question arises of whether polymeric materials are resistant to heating oil with 20 % biodiesel (B20) in comparison to pure heating oil.
The polarity of biodiesel increases its solvency and facilitates permeation and extrac-tion. Solvation, swelling and/or extraction lead to changes in the physical properties. Extraction alters the fuel chemistry. These chemical changes could also accelerate the degradation (hydrolysis and oxidation) of the polymeric material with the loss of additives and stabilizers.
Exposure tests to determine the resistance of polymers frequently used for compo-nents in middle distillate facilities, such as ACM, FKM, HNBR, PA, PE, POM, PUR and PVC in heating oil and a blend of heating oil and 20 % biodiesel (B20) were al-ready performed.
The objective of this research was to determine the resistance of these polymers in 8-year aged heating oil blend B10 and 1-year aged blend B20 at 40 °C.
Mass, tensile strength, breaking elongation and Shore hardness A (D) of the test specimens were determined before and after exposure for 84 (42) days in the test fuels under static conditions.
There is not determined a threshold for the reduction in tensile properties and Shore hardness in the international standards. Therefore, a threshold of 15 % was deter-mined for the evaluation of the compatibility.
A significant reduction in Shore hardness was determined after exposure of ACM and PUR test specimens in 1-year aged B20.
The tensile strength of PUR test specimens in 1-year aged B20 was reduced by more than 50 %, and the breaking elongation by more than 30 %.
A decrease in breaking elongation was measured for POM test specimens after ex-posure to 1-year aged B20 by 25 % (limited resistance).
8-year aged B10 had a stronger effect than 1-year aged B20 on the polymers. ACM test specimens were softened by B10 resulting in a drop of Shore hardness by over 20 %. B10 reduced tensile strength and breaking elongation of PUR test specimens by over 50 %. In contrast, the breaking elongation of POM was increased by over 270 %.
It can be concluded that the polymers HNBR, FKM, PA6, PE and PVC are resistant in 1-year aged B20 whereas ACM and POM are limited resistant. PUR is not re-sistant.
HNBR, FKM, PA6, PE and PVC are resistant in 8-year aged B10, whereas PUR and POM are not resistant, and ACM just limited resistant.
The effect of two types of scanning strategies on the grain structure and build-up of Residual Stress (RS) has been investigated in an as-built IN718 alloy produced by Laser Powder Bed Fusion (LPBF). The RS state has been investigated by X-ray diffraction techniques. The microstructural characterization was performed principally by Electron Backscatter Diffraction (EBSD), where the application of a post-measurement refinement technique enables small misorientations (< 2°) to be resolved. Kernel average misorientation (KAM) distributions indicate that preferably oriented columnar grains contain higher levels of misorientation, when compared to elongated grains with lower texture. The KAM distributions combined with X-ray diffraction stress maps infer that the increased misorientation is induced via plastic deformation driven by the thermal stresses, acting to self-relieve stress. The possibility of obtaining lower RS states in the build direction as a consequence of the influence of the microstructure should be considered when envisaging scanning strategies aimed at the mitigation of RS.
Classic non-destructive fatigue crack detection methods reveal the state of the fatigue damage evolution at the moment of application, generally not under operational conditions. The here introduced crack luminescence method realizes a clear visibility of the occurred and growing crack in loaded components during operation. Different established experiments show that due to the sensitive coating a crack Formation can be detected even in early stage under the premise the crack reached the surface. The coating consists of two layers with different properties and functions. The bottom layer emits light as fluorescence under UV radiation. The top layer covers the fluorescing one and prevents the emitting of light in case of no damage at the surface. In case of surface crack occurrence, the luminescent light is clearly noticeable by visual observations and also by standard camera equipment which makes automated crack detection possible as well. It is expected that crack luminescence can increase structural safety as well as reduce costs and time for inspections and preventive maintenance.
Radioaktive Stoffe in besonderer Form (SFRM) sind nicht dispergierbare feste radioaktive Stoffe oder dichte Kapseln, die radioaktive Stoffe enthalten /1/. SFRM sind eine Kategorie innerhalb der verkehrsrechtlichen Vorschriften. Für die Beförderung zu Anwendern in der Industrie, Medizin und Forschung werden umschlossene radioaktive Stoffe (Strahler) gemäß ihrem aktivitätsabhängigen Gefahrenpotenzial verpackt. Strahler mit einer hohen Aktivität (> A2) erfordern entsprechend der verkehrsrechtlichen Vorschriften eine Beförderung in Typ B (U) Versandstücken, die als unfallsicher gelten. Alternativ besteht bis zu einer Aktivität < A1 die Möglichkeit der Beförderung in nicht unfallsicheren Typ A Versandstücken, wenn die Strahler nachweislich unfallsicher ausgelegt sind und eine Zulassung als SFRM vorliegt.
Die Bundesanstalt für Materialforschung und –prüfung (BAM) ist gemäß GGVSEB §8 (2) /2/ in Deutschland die zuständige Behörde für die Prüfung und Zulassung radioaktiver Stoffe in besonderer Form.