Ingenieurwissenschaften und zugeordnete Tätigkeiten
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- Wasserstoff (7)
- Neutron imaging (5)
- Hydrogen (3)
- Phasenumwandlung (3)
- Bragg-edge imaging (2)
- Neutron radiography (2)
- Neutronenradiographie (2)
- Supermartensit (2)
- Additive manufacturing (1)
- Austenite-to-martensite transformation (1)
Organisationseinheit der BAM
Eingeladener Vortrag
- nein (6)
One of the main advantages of metal additive manufacturing (MAM) techniques is their ability to produce components with site-specific microstructural features. Nevertheless, microstructural defects and lack of repeatability are still major concerns in MAM. In this study, a laser powder bed fusion (PBF-LB/M) IN718 material, produced using two different scan length vectors, is investigated using Bragg-edge neutron 2D imaging (BENI) combined with electron backscatter diffraction (EBSD) analysis. BENI is able to detect, on a macroscopic scale, process-induced changes in texture in a large field of view covering the entire sample (20×80 mm2). In addition, high-resolution BENI (HR-BENI), with a pixel size of 12.8 µm, provides a micro-scale examination of the local variations of texture and grain morphology, otherwise undistinguishable using the standard resolution. As such, HR-BENI offers a straightforward and detailed way of screening the integrity of MAM parts at cm-length scales.
Polychromatic and wavelength-selective neutron transmission radiography were applied during bead-on-plate welding on 5 mm thick sheets on the face side of martensitic low transformation temperature (LTT) steel plates using gas tungsten arc welding (GTAW). The in situ visualization of austenitization upon welding and subsequent α’-martensite formation during cooling could be achieved with a temporal resolution of 2 s for monochromatic imaging using a single neutron wavelength and of 0.5 s for polychromatic imaging using the full spectrum of the beam (white beam).
The spatial resolution achieved in the experiments was approximately 200 µm. The transmitted monochromatic neutron beam intensity at a wavelength of λ = 0.395 nm was significantly reduced during cooling below the martensitic start temperature M s since the emerging martensitic phase has a ~10% higher attenuation coefficient than the austenitic phase. Neutron imaging was significantly influenced by coherent neutron scattering caused by the thermal motion of the crystal lattice (Debye–Waller factor), resulting in a reduction in the neutron transmission by approx. 15% for monochromatic and by approx. 4% for polychromatic imaging.
Hydrogen-charged supermartensitic steel samples were used to systematically investigate imaging artifacts in neutron radiography. Cadmium stencils were placed around the samples to shield the scintillator from excessive neutron radiation and to investigate the influence of the backlight effect. The contribution of scattered neutrons to the total detected intensity was investigated by additionally varying the sample-detector distance and applying a functional correlation between distance and intensity. Furthermore, the influence of the surface roughness on the edge effect due to refraction was investigated.
In situ ED XRD und Radiographie während eines Zugversuchs an wasserstoffbeladenem Supermartensit
(2019)
Die Ergebnisse von in-situ Experimenten am Berliner Elektronenspeicherring (BESSY II) werden vorgestellt. Es wurden Zugversuche an wasserstoffbeladenen und wasserstofffreien supermartensitischen Proben durchgeführt und Diffraktionsspektren und radiographische Bilder aufgenommen. Die energiedispersive Röntgendiffraktion ermöglichte dabei die dehnungsinduzierte Phasenumwandlung von Restaustenit zu Martensit in-situ zu beobachten. Die Radiographiebilder der zerreisenden Probe gaben Einblicke in das Bruchverhalten in Abhängigkeit vom Wasserstoffgehalt des Supermartensits.
Die wasserstoffunterstützte Schädigung von Komponenten und Bauteilen aus Stahl ist ein Phänomen, welches seit vielen Jahrzehnten bekannt ist und untersucht wird. Eine Vielzahl von Quellen (z.B. Schutzgas oder Feuchtigkeit beim Schweißen, Reinigung von Metallen in Säurebädern, galvanischer oder kathodischer Schutz) ermöglicht die Wasserstoffaufnahme in den Stahl. Der im Gitter gelöste oder an Wasserstoffhaftstellen (Versetzungen, Grenzflächen, Poren, etc.) getrappte Wasserstoff diffundiert aufgrund von Konzentrationsgradienten oder getrieben durch Spannungs- bzw. Dehnungsgradienten durch das vorliegende Gefüge, wo er in Kombination mit einwirkenden Beanspruchungen (äußere Last oder Eigenspannungen) eine lokale, signifikante Degradation der mechanisch-technologischen Eigenschaften bewirken kann.
Die dazu entwickelten und allgemein anerkannten Schädigungsmodelle gehen unter anderem von einem Einfluss des Wasserstoffs auf die Versetzungsentstehung und Versetzungsbeweglichkeit aus. Des Weiteren wird angenommen, dass Wasserstoff nicht nur durch Diffusion im Gitter transportiert wird, sondern auch an Versetzungen angehaftet ist und sich mit diesen im Falle plastischer Verformung mitbewegt.
Wasserstoff hat im Vergleich zu den meisten üblichen Legierungselementen von Stahl (Eisen, Chrom, Kohlenstoff) einen großen Wechselwirkungsquerschnitt für kalte und thermische Neutronen, was Neutronenradiographie und -tomographie zu geeigneten bildgebenden Verfahren zur lokalen Detektion von Wasserstoffakkumulationen in Stahl macht.
Elektrochemisch mit Wasserstoff beladene Zugproben aus supermartensitischem Stahl wurden vor und nach dem Zugversuch an der ANTARES beamline am FRM II polychromatisch radiographiert bzw. tomographiert. Die Bruchoberfläche der Probe wurde zusätzlich rasterelektronenmikroskopisch charakterisiert. Die Fraktographien der Bruchoberfläche in Verbindung mit den durch die Tomographie gewonnenen Informationen zu Wasserstoffansammlungen zeigen, dass nach dem Bruch auch in duktilen Versagensbereichen untypischerweise vermehrt Wasserstoff zu finden ist.
Neutron cameras allow visualizing hydrogen distributions with radiographic or tomographic imaging methods in iron (and steel) and many other metals. The necessary contrast between hydrogen and these metals stems from the high difference in the total neutron cross section of both elements. This allows, e.g., the in situ measurement of hydrogen mass flow inside cm thick metal samples with a temporal resolution of at best 10 s using neutron radiography as well as the quantitative measurement of hydrogen accumulations, e.g., at the crack’s inner surfaces in hydrogen embrittled iron samples with neutron tomography. This new quality of the information on a micrometer scale allows new insights for the analysis of hydrogen-assisted damage mechanisms. Further, this method is non-destructive and provides local information in situ and in three dimensions with a spatial resolution of 20 μm - 30 μm. In this contribution, we give a short historical overview of neutron imaging and show examples that demonstrate the spatial and temporal resolution of the neutron radiography and tomography methods in order to visualize and quantify hydrogen accumulations, absorption processes, and diffusion. The examples are taken from the works of researchers dealing with titanium, palladium, zirconium, and iron or steel. More detailed descriptions of the experimental and analytic procedures are given for hydrogen detection using radiography and tomography on iron and steel samples.
Additive Manufacturing (AM) offers the opportunity to produce easier geometrically complex parts compared to traditional production technologies. An important AM technology for metals is selective laser melting (SLM) where a part is produced by melting and solidifying powder in layers. This technique is known to cause a pronounced texture in the produced AM products due to the specific heat flow and the associated solidification of the material during SLM deposition. In order to evaluate the influence of the deposition hatch length during SLM of nickel based superalloy Inconel 718 samples on the texture and in order to identify any preferred crystallographic direction, we performed monochromatic neutron radiography scans (using wavelength from 1.6 Å to 4.4 Å, step size 0.05 Å) to image the samples while rotating it through 90°. Samples produced with short hatch length showed fine textured columnar grains oriented along the sample building direction in high-resolution radiographs. Whereas processing the sample using a ten-fold longer hatch length reduced the texture. The neutron radiographic experiments were accompanied by scanning electron microscopy including electron back-scattered diffraction to visualize and verify the microstructure and texture.
Neutron cameras allow visualizing hydrogen distributions with radiographic or tomographic imaging methods in iron and steel. The necessary contrast between hydrogen and iron stems from the high difference in the total neutron cross section of both elements. This allows e.g. the in situ measurement of hydrogen mass flow inside cm thick steel samples with a temporal resolution of 20 s using neutron radiography as well as the quantitative measurement of hydrogen accumulations at the crack’s inner surfaces in hydrogen embrittled iron samples with neutron tomography. We could detect directly gaseous hydrogen in the crack cavities and we measured the gas pressure. This new quality of the information on a micrometer scale allows new insights for the analysis of hydrogen-induced damage mechanisms. Further, this method is non-destructive and provides local information in situ and in three dimensions with a spatial resolution of 20-30 µm. In this contribution, we show examples that demonstrate the spatial and temporal resolution of the neutron radiography and tomography methods in order to visualize and quantify hydrogen accumulations at cracks. The measurements were performed at the research reactor BER II of the HZB in Berlin and at the FRM II reactor of the neutron source Heinz Maier-Leibnitz in Garching.