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Eingeladener Vortrag
- nein (2)
Nickel-free, nitrogen alloyed austenitic stainless-steels, with about 19 wt.-% Mn and 0,8 wt. % N, are an interesting alternative to classic CrNi austenitic stainless steels due to their superior mechanical properties (Rm > 900 MPa, A5 > 50 %, Av > 350 J) in the solution annealed condition. The formation of chromium-rich nitrides during suboptimal heat treatment, processing or application leads to an inhomogeneous distribution of alloying elements in the microstructure, which reduces the corrosion resistance. Consequently, an accurate knowledge of the sensitization behavior is indispensable for the use of nickel-free, high-nitrogen austenitic stainless steels. The relationship between artificial aging, phase formation and corrosion resistance was investigated on the alloys X8CrMnN18-19 (1.3815) and X8CrMnMoN18-19-2 (1.4456), both alloyed with 0,8 wt.-% Nitrogen, in the present work. The microstructural evolution was studied by LM and SEM while the corrosion resistance was characterized with the electrochemical potentiodynamic reactivation (EPR) and the KorroPad indicator-test. Both alloys showed increased corrosion susceptibility within critical aging parameters. Finally, a sensitization diagram was described successfully for both alloys showing the positive effect of molybdenum.
The duplex stainless steel 1.4062 (X2CrNiN22-2) is used as alternative material to austenitic stainless steels in the construction industry. The corrosion resistance of welded seams is influenced by the base material, the weld filler material, the welding process and also by the final surface treatment. The scale layer next to the weld seam can be removed by grinding, pickling, electro-polishing or blasting depending on the requested corrosion resistance. Blasted surfaces are often used in the industrial practice due to the faster and cheaper manufacturing process compared to pickled or electro-polished surfaces. Furthermore blasting with corundum-grain is more effective than blasting with glass-beads which also lower the process costs. In recent years, stainless steel surfaces showed an unusually high susceptibility to pitting corrosion after grinding with corundum. For this reason, it is now also questioned critically whether the corrosion resistance is influenced by the applied blasting agent. This question was specifically investigated by comparing grinded, pickled, corundum-grain- and glass-bead-blasted welding seams. Results of the SEM analyses of the blasting agents and the blasted surfaces will be presented and correlated with the results of different corrosion tests (KorroPad-testing and pitting potentials).
Einfluss der Schweißnaht-Nachbehandlung auf die Korrosionsbeständigkeit vom Duplexstahl 1.4062
(2017)
Der Duplexstahl 1.4062 (X2CrNi22-2) hat sich im Bauwesen als Werkstoffalternative zu den nichtrostenden Austeniten etabliert. Die Korrosionsbeständigkeit von Schweißverbindungen wird, neben dem Grundwerkstoff, dem Schweißzusatzwerkstoff und dem Schweißverfahren, auch sehr stark von der Schweißnaht-Nachbehandlung beeinflusst. Je nach zukünftigem Anwendungsbereich, geforderter Optik und Korrosionsbeständigkeit wird die Schweißnaht geschliffen, gebeizt, elektropoliert oder gestrahlt, um die beim Schweißen entstehenden An-lauffarben zu entfernen. Gestrahlte Oberflächen sind in der industriellen Praxis häufig anzutreffen, da sie deutlich schneller und kostengünstiger herzustellen sind als geschliffene, gebeizte oder polierte Oberflächen. Das Strahlen mit Korund ist außerdem effektiver als das Strahlen mit Glasperlen. In den letzten Jahren wurden korrosionsanfällige Oberflächen bei nichtrostenden Stählen beobachtet, wenn diese mit Korund geschliffen wurden. Daher wird nun auch beim Strahlen kritisch hinterfragt, ob die eingesetzten Strahlmittel die Korrosionsbeständigkeit beeinflussen. Diese Fragestellung wird beantwortet, indem geschliffene, gebeizte, polierte und mit verschiedenen Strahlmitteln gestrahlte Schweißverbindungen vom Duplexstahl 1.4062 im Vergleich zu gleichartig behandeltem Walzmaterial untersucht werden. Die Ergebnisse der Korrosionsuntersuchungen werden vorgestellt und mit den rasterelektronenmikroskopischen Untersuchungen der gestrahlten Oberflächen korreliert.
Die Legierungselemente (Chrom und Kohlenstoff) und die Wärmebehandlung bestimmen Korrosionsbeständigkeit und Härte martensitischer nichtrostender Stähle. Verschiedene wissenschaftliche Arbeiten haben bereits gezeigt, dass die Korrosionsbeständigkeit sehr stark vom Anteil an Chromkarbiden im Gefüge bestimmt wird. Der kombinierte Einfluss von Kohlenstoffgehalt und der Abkühlgeschwindigkeit beim Härten wurde mit Fokus auf die Korrosionsbeständigkeit bisher nur unzureichend untersucht. Die Literatur liefert außerdem gegensätzliche Aussagen über den Einfluss der Abkühlgeschwindigkeit, was möglicherweise auf unterschiedliche Kohlenstoffgehalte zurückgeführt werden kann. In dieser Arbeit wird daher systematisch untersucht, ab welcher Abkühlgeschwindigkeit es bei den Werkstoffen X20Cr13 und X46Cr13 zu Karbidbildung und Chromverarmung kommt. Die Variation der Abkühlgeschwindigkeit erfolgte für die industriell relevante Härtetemperatur von 1050 °C mit dem Stirnabschreckversuch. In Abhängigkeit von der Abkühlgeschwindigkeit wurden an den Stirnabschreckproben Gefüge, Härte und Korrosionsbeständigkeit (EPR, kritische Lochkorrosionspotentiale) untersucht und die Ergebnisse mit thermodynamischen Berechnungen (ThermoCalc) korreliert. Aus den Ergebnissen wird abgeleitet, unter welchen Bedingungen die Abkühlgeschwindigkeit die Korrosionsbeständigkeit beeinflusst.
Sensibilisierungsverhalten vom stickstofflegierten, austenitischen, nichtrostenden Stahl 1.4456
(2017)
Austenitische nichtrostende Stähle kommen seit vielen Jahren in den verschiedensten industriellen Zweigen zum Einsatz (Pharma-, Medizin- und Lebensmittelindustrie, Bauwesen, Energie- und Antriebstechnik). Druckaufgestickte nichtrostende Austenite mit ca. 19 Gew.-% Mangan und 0,8 Gew.-% Stickstoff, sind als nickelfreie Variante seit einigen Jahren großtechnisch auf dem Markt verfügbar. In diesen Stählen wird die austenitische Matrix ohne die Legierungszugabe von Nickel sichergestellt, während gleichzeitig die korrosive Beständigkeit und die mechanischen Eigenschaften verbessert werden. Wie bei allen nichtrostenden Stählen beeinflussen die chemische Zusammensetzung und die Wärmebehandlung entscheidend das Gefüge und die Eigenschaften. Durch Lösungsglühen, Abschrecken und gezieltes Kaltverfestigen können bei diesen Stählen hervorragende mechanische Kennwerte erreicht werden (Rm von 900 MPa bis 2.000 MPa, A5 > 50 %, Av > 350 J). In der Regel dient das Lösungsglühen der Beseitigung unerwünschter Ausscheidungsphasen (Cr2N, M23C6 und Sigma-Phase) und der homogenen Verteilung der Legierungselemente im Austenit, was auch die Voraussetzung für eine hohe Korrosionsbeständigkeit darstellt. Wird die homogene Verteilung der Legierungselemente (Cr, Mo und N) durch suboptimale Wärmebehandlungs-, Verarbeitungs- oder Einsatzbedingungen beeinträchtigt, kann die korrosive Beständigkeit nicht auf Dauer gewährleistet werden. Daher ist die genaue Kenntnis vom Sensibilisierungsverhalten dieser hochstickstofflegierten Stähle unerlässlich.
Am stickstofflegierten Werkstoff 1.4456 (X8CrMnMoN18-18-2) wird das Sensibilisierungsverhalten am lösungsgeglühten Zustand durch die gezielte Variation der Warmauslagerungsparameter untersucht. Dabei wird im Temperaturbereich von 500 °C bis 900 °C die Glühdauer systematisch variiert, um zu ermitteln, wann Ausscheidungen im Gefüge auftreten und ob diese die Korrosionsbeständigkeit beeinträchtigen. Die verschiedenen Sensibilisierungszustände werden mit dem EPR Verfahren, der KorroPad-Prüfung und dem REM vergleichend untersucht. Zur besseren Interpretation der experimentellen Ergebnisse werden auch thermodynamische Berechnungen genutzt, welche die Existenzbereiche der verschiedenen Ausscheidungsphasen vorhersagen. Damit kann die Veränderung der Korrosionsbeständigkeit mit dem Auftreten der verschiedenen Phasen korreliert und die Anwendbarkeit der experimentellen Methoden für stickstofflegierte Stähle nachgewiesen werden.
Bulk metallic glasses (BMG) are amorphous metal alloys known for their unique physical and mechanical properties. In the present study, the formation of femtosecond (fs) laser-induced periodic surface structures (LIPSS) on the Zr-based BMGs Zr46Cu46Al8, Zr61Cu25Al12Ti2, Zr52.5Cu17.9Al10Ni14.6Ti5 (Vit105) and Zr57Cu15.4Al10Ni12.6Nb5 (Vit106) was investigated as a function of their different chemical composition. For this purpose, LIPSS were generated on the sample surfaces in an air environment by fs-laser irradiation (λ = 1025 nm, τ = 300 fs, frep = 100 kHz). The surface topography was characterized by scanning electron microscopy and atomic force microscopy. Moreover, the impact of LIPSS formation on the structure and chemical surface composition was analyzed before and after fs-laser irradiation by X-ray diffraction and X-ray photoelectron spectroscopy as well as by transmission electron microscopy in combination with energy dispersive X-ray spectroscopy. Despite the different chemical composition of the investigated BMGs, the fs-laser irradiation resulted in almost similar properties of the generated LIPSS patterns. In the case of Zr61Cu25Al12Ti2, Vit105 and Vit106, the surface analysis revealed the preservation of the amorphous state of the materials during fs-laser irradiation. The study demonstrated the presence of a native oxide layer on all pristine BMGs. In addition, fs-laser irradiation results in the formation of laser-induced oxide layers of larger thickness consisting of an amorphous ZrAlCu-oxide. The precise laser-structuring of BMG surfaces on the nanoscale provides a versatile alternative to thermoplastic forming of BMG surfaces and is of particular interest for the engineering of functional material surfaces.
The Micro Structure of Traditional Brazilian Lime Plasters - The Custom House of Florianopolis
(2005)
Polyoxometalates (POMs) are inorganic cluster compounds that have been shown to possess a number of pharmacological properties, including antidiabetic, antibacterial, antiprotozoal, antiviral and anticancer activities. Their molecular mechanism of action is largely unknown. However, several studies indicate that many of their activities may be due to the inhibition of enzymes, in particular, of those enzymes that are accessible from the extracellular space and do not require the penetration of cell membranes. In this review, we describe the recent progress in the preparation and optimization of POMs, and an evaluation of their use as inhibitors of different families of enzymes. The next important steps in this area of research will be to gain a better understanding of the interactions of POMs with enzymes on a structural level through an X-ray crystallographic study of enzyme–POM complexes and the analysis of structure–activity relationships. Furthermore, POMs with increased stability and in vivo half-lives have to be prepared. Surface modification may allow the targeting of POM drugs at their sites of action.
Overview of different strengthening techniques applied on walls used in historical structures
(2012)
Water-repellent renders were studied in order to evaluate their suitability for restoration applications. Water repellent admixtures, such as powdered siloxane-based products and metal soaps (zinc and calcium stearates), were mixed with a pozzolana-lime binder similar to historical binders with hydraulic properties. The chemical-physical and structural properties, the effectiveness and the durability of the water-repellent mortars in different environmental conditions were studied. The influence of the water repellent admixtures was evaluated by FT-IR analyses, by testing the mechanical properties and the behaviour in presence of water. The durability of the water-repellent mortars was evaluated after the exposure to artificial weathering (UV-light and water) and to immersion/drying cycles in saturated sodium sulphate solution. The nature of the water-repellent admixtures influenced both the hydration reactions and the chemical-physical properties of the mortars resulting in different resistance to the weathering and to salt crystallization.
The German Federal Institute for Materials Research and Testing (BAM) has established a testing guideline to assess the suitability of geosynthetic or geocomposite drain (GCD) elements for final landfill cover systems. In an earlier paper the uniform procedure according to the BAM guideline for determining long-term water flow capacity was described, and the structural stability of drain cores under creep was investigated. The extrapolation of creep curves is permissible only when it can be shown, over the extrapolated period (at least 100 years), that oxidative aging does not invoke any relevant changes in the polyolefin material. This can be shown by measuring antioxidant depletion and mechanical degradation of the drain cores and filter/protection geotextiles in oven aging and water immersion tests. In this paper the results of such aging studies on three different GCD products are reported. Degradation of the tensile strength of HALS-stabilized polypropylene needle-punched nonwoven geotextiles (PP NWGTs) starts right from the beginning of the oven aging. This has to be taken into account for lifetime predictions based on residual tensile strength. The rate of oxidative degradation of NWGTs decreases significantly with increasing mass per area. Therefore the expected service life sets a limit on acceptable geotextile grammage. Antioxidant depletion in the drain cores, which are made of relatively thick PP strands or HDPE ribs, is about an order of magnitude slower than in filter and protection NWGTs, which are made of thin fibers. Service life values in excess of 100 years may be obtained for the products when the geotextiles and drain cores are properly stabilized and designed.
During the mineralisation of metal carbonates MCO3 (M = Ca, Sr, Ba, Mn, Cd, Pb) liquid-like amorphous intermediates emerge. These intermediates that form via a liquid/liquid phase separation behave like a classical emulsion and are stabilized electrostatically. The occurrence of these intermediates is attributed to the formation of highly hydrated networks whose stability is mainly based on weak interactions and the variability of the metal-containing pre-critical clusters. Their existence and compositional freedom are evidenced by electrospray ionization mass spectrometry (ESI-MS). Liquid intermediates in non-classical crystallisation pathways seem to be more common than assumed.
Bispidines for dual imaging
(2014)
The efficient transformation of the hexadentate bispidinol 1 into carbamate derivatives yields functional bispidines enabling convenient functionalization for targeted imaging. The BODIPY-substituted bispidine 3 combines a coordination site for metal ions, such as radioactive 64CuII, with a fluorescent unit. Product 3 was thoroughly characterized by standard analytical methods, single crystal X-ray diffraction, radiolabeling, and photophysical analysis. The luminescence of ligand 3 was found to be strongly dependent on metal ion coordination: CuII quenches the BODIPY fluorescence, whereas NiII and ZnII ions do not affect it. It follows that, in imaging applications with the positron emitter 64CuII, residues of its origin from enriched 64Ni and the decay products 64NiII and 64ZnII, efficiently restore the fluorescence of the ligand. This allows for monitoring of the emitted radiation as well as the fluorescence signal. The stability of the 64CuII–3 complex is investigated by transmetalation experiments with ZnII and NiII, using fluorescence and radioactivity detection, and the results confirm the high stability of 64CuII–3. In addition, metal complexes of ligand 3 with the lanthanide ions TbIII, EuIII, and NdIII are shown to exhibit emission of the BODIPY ligand and the lanthanide ion, thus enabling dual emission detection.
In order to investigate their microcracking behaviour, the microstructures of several β-eucryptite ceramics, obtained from glass precursor and cerammed to yield different grain sizes and microcrack densities, were characterized by laboratory and synchrotron x-ray refraction and tomography. Results were compared with those obtained from scanning electron microscopy (SEM). In SEM images, the characterized materials appeared fully dense but computed tomography showed the presence of pore clusters. Uniaxial tensile testing was performed on specimens while strain maps were recorded and analyzed by Digital Image Correlation (DIC). X-ray refraction techniques were applied on specimens before and after tensile testing to measure the amount of the internal specific surface (i.e., area per unit volume). X-ray refraction revealed that (a) the small grain size (SGS) material contained a large specific surface, originating from the grain boundaries and the interfaces of TiO2 precipitates; (b) the medium (MGS) and large grain size (LGS) materials possessed higher amounts of specific surface compared to SGS material due to microcracks, which decreased after tensile loading; (c) the precursor glass had negligible internal surface. The unexpected decrease in the internal surface of MGS and LGS after tensile testing is explained by the presence of compressive regions in the DIC strain maps and further by theoretical arguments. It is suggested that while some microcracks merge via propagation, more close mechanically, thereby explaining the observed X-ray refraction results. The mechanisms proposed would allow the development of a strain hardening route in ceramics.
3-Aminovinylquinoxalines are readily accessible from (hetero)aryl glyoxylic acids or heterocyclic π-nucleophiles by consecutive four- and fivecomponent syntheses in the sense of an activation-alkynylation-cyclocondensation-addition sequence or glyoxylation-alkynylation-cyclocondensation-addition sequence in good yields. The title compounds are highly fluorescent with pronounced emission solvatochromicity and protochromic fluorescence quenching. Time-resolved fluorescence spectroscopy furnishes radiative and nonradiative fluorescence decay rates in various solvent polarities. The electronic structure is corroborated by DFT and TD-DFT calculations rationalizing the observed spectroscopic effects.