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The influence of isothermal ageing on microstructure, sensitisation and pitting corrosion resistance of the lean duplex stainless steel (LDSS) X2CrNiN23-4 was investigated with various electrochemical methods. The aging at 600 °C (from 0.1 h up to 20 h) lead to the formation of precipitations at the ferrite-ferrite (α/α) and ferrite-austenite (α/γ) grain boundaries, inducing sensitisation due to chromium depletion. The degree of sensitisation was evaluated with the double loop electrochemical potentiokinetic reactivation method (DL-EPR) according to ASTM G108 and correlated with critical pitting potentials (Epit) as well as critical pitting temperature (CPT) measured in an electrolyte according to ASTM G48 using electrochemical noise. Up to an ageing time of 1 h, the sensitisation did rise significantly, stabilising at a nearly constant level with a slight drop at 20 h. This behaviour correlated perfectly with the potentiodynamically determined pitting potentials Epit and sensitisation. The CPT showed a higher sensitivity at short ageing times compared to the DL-EPR and Epit. Finally, the KorroPad method was applied to visualise the sensitisation induced reduction of pitting corrosion resistance. The “KorroPad” is an agar-based gel-electrolyte containing 0.1 mol/l sodium chloride (NaCl) and 0.1 mol/l potassium ferricyanide III (K3[Fe(CN)6]), invented at the Federal Institute of Materials Research and Testing in Berlin (Germany) to detect surfaces of stainless steel prone to pitting corrosion. The standard configuration of the KorroPad showed no differentiation for the various aging conditions. Increasing the concentration of both NaCl and potassium ferrocyanide III to 0.5 M shifts the detection limit of the KorroPad method to stainless steels with higher corrosion resistance, producing the same trends detected by standard electrochemical pitting corrosion values (Epit, CPT) and sensitisation (DL-EPR). By that, the KorroPad method was successfully adjusted to the lean-duplex stainless steel X2CrNiN23-4, enabling short-time testing to detect sensitization.
Quenching and partitioning (Q&P) heat Treatment increases the deformability of high-strength martensitic steels. Therefore, it is necessary to have some metastable austenite in the microstructure, which transforms in martensite during plastic deformation (TRIP effect). The austenitic-martensitic microstructure is gained by an increased austenitization temperature, water quenching and additional partitioning. The partitioning enables local carbon diffusion, which stabilizes retained austenite and leads to partial reversion of martensite to austenite. The influence of partitioning time was studied for the martensitic stainless steel AISI 420 (X46Cr13, 1.4034). In line with these efforts, metallographic, XRD and EBSD measurements were performed to characterize the microstructural evolution. The mechanical properties were tested using tension and compression loading. Additional corrosion investigations showed the benefits of Q&P heat treatment compared to conventional tempering. The reversion of austenite by the partitioning treatment was verified with EBSD and XRD. Furthermore, the results of the mechanical and corrosion testing showed improved properties due to the Q&P heat treatment.
The novel heat treatment concept of “Quenching and Partitioning” (Q&P) enables producing low alloyed martensitic steels with high strength and formability. Therefore austenite, retaining from a quenching temperature between Mf and Ms, is stabilised by carbon diffusion. This stabilised austenite transforms in martensite (TRIP effect) under mechanical loading. Current investigations on the Q&P heat treatment of martensitic stainless steels reveal a further enhancement of mechanical properties due to higher amounts of austenite. Thus a tensile strength of 1.800 MPa and a maximum elongation of 20 % are possible, while mechanical properties under compression are much higher due to a distinct SD effect.
The presentation aims to gain a further understanding of the Q&P heat treatment and the resulting mechanical properties for the steel X46Cr13, especially the mechanical behaviour under dynamic mechanical loading condition. Results of drop work and Split Hopkinson Pressure Bar test confirms the findings of quasi static compression test. Furthermore, Charpy impact tests show higher impact toughness compared to the common heat treatment of quenching and tempering (Q&T). Complementary investigations indicate a higher corrosion resistance of Q&P compared to Q&T.
Das innovative Wärmebehandlungskonzept des „Quenching and Partitioning“ (Q&P) ermöglicht die Herstellung hochfester, martensitischer Stähle mit hoher Verformbarkeit und Duktilität. Dabei wird Restaustenit im Prozessabschnitt des Partitionierens durch Kohlenstoffdiffusion stabilisiert. Dies ermöglicht die dehnungsinduzierte Phasenumwandlung von Austenit in Martensit und erhöht die Verformbarkeit, ohne dabei die Festigkeit zu reduzieren. Bisher wenig erforscht ist die Anwendung des Q&P-Prozesses bei korrosionsbeständigen Stählen. Die vorliegende Arbeit ergänzt erste Untersuchungen von YUANG und RAABE um wichtige werkstofftechnische Kennwerte sowie um die erreichbare Korrosionsbeständigkeit. Es konnte gezeigt werden, dass im Vergleich zur standardmäßig angewandten Wärmebehandlung die mechanischen und korrosiven Eigenschaften enorm durch den Q&P-Prozess gesteigert werden.
In diesem Vortrag werden Ergebnisse des gleichnamigen AiF Forschungsvorhabens gezeigt, die einen deutlichen Einfluss verschiedener Schleifmittel auf die Korrosionsbeständigkeit von damit geschliffenen nichtrostender Stahloberflächen belegen. Es konnten ein signifikanter Einfluss durch die Verwendung von Granulatschleifbändern festgestellt werden, der die Korrosionsbeständigkeit der Oberflächen drastisch reduziert. Grund sind auf der Oberfläche zurückbleibende Materialaufplattungen von Eigenmaterial aus dem Schleifprozess. Es wurden unterschiedliche Korrosionsuntersuchungen durchgeführt und mittels Oberflächenanalytik untermauert.
Anlauffarben, die beim Schweißprozess entehen machen den nichtrostenden Stahl korrosionsanfällig und müssen entfernt werden. Dafür haben sich in der Praxis unterschiedliche Methoden etabliert. Im Vortrag werden verschiedene Nachbehandlungsverfahren verglichen. Die erreichte Korrosionsbeständigkeit wird mit verschiedenen Methoden bestimmt und die Ergebnisse gegenübergestellt.