TY - CONF A1 - Dieck, S. A1 - Ecke, M. A1 - Fritsch, S. A1 - Rosemann, Paul A1 - Wagner, M. A1 - Halle, T. T1 - SD effect in martensitic stainless steel under Q&P heat treatment condition N2 - The quenching and partitioning (Q&P) heat treatment enables a higher deformability of high strength martensitic steels. The Q&P heat treatment was applied on the martensitic stainless steel 1.4034 (X46Cr13) to study the influence of partitioning time. Therefore, extensive characterizations of the mechanical properties, focussing on the materials behaviour under different mechanical load scenarios, were performed. A comprehensive analysis of the microstructural evolution was per-formed for different heat treatment and mechanical loading states. A complete solution of chromium carbides was detected to be a first requirement for successful Q&P heat treatment. The comparison of common quenching and tempering with the Q&P heat treatment verifies the extensively enhanced materials strength whereat the formability is still acceptable. The microstructural reason was detected to be an increasing aus-tenite fraction due to austenite reversion at subgrain boundaries of martensite besides the stabilising of retained austenite. Further a distinctive strength differential effect was observed. T2 - 11th European Symposium on Martensitic Transformations CY - Metz, France DA - 27.08.2018 KW - Martensitic stainless steels KW - Heat treatment KW - EBSD KW - Quenching and partitioning KW - TRIP PY - 2018 AN - OPUS4-45803 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Dieck, S. A1 - Ecke, M. A1 - Harnisch, K. A1 - Rosemann, Paul A1 - Halle, T. T1 - Gefüge- und Phasenanalyse biokompatibler Co-Cr-Mo-Legierung N2 - Co-Cr-Mo-Werkstoffe sind im Bereich der Biomaterialien weit verbreitet und werden für Endoprothesen eingesetzt. Deren Lebensdauer ist jedoch durch tribologische und korrosive Dauerbelastung begrenzt. Um die Anzahl operativer Eingriffe am Patienten zu minimieren, ist es notwendig den Werkstoff hinsichtlich Verschleißbeständigkeit und Korrosionsbeständigkeit zu optimieren. Hierfür ist ein umfassendes Verständnis der legierungsabhängigen Phasenbildung und –entwicklung während Herstellung und Wärmebehandlung notwendig. An einer speziellen Co-Cr-Mo Legierung werden verschiedene Untersuchungen zur Gefügecharakterisierung durchgeführt. Dabei werden die auftretenden Phasen thermodynamisch berechnet, mittels XRD nachgewiesen, die Phasenmorphologie durch EBSD analysiert, die Elementverteilung durch EDX-Analyse ermittelt und die Ergebnisse durch Farbätzen verifiziert. Das Ziel der Untersuchungen ist es, Optimierungspotentiale bei Herstellung und Wärmebehandlung zu identifizieren. T2 - Werkstoffwoche 2017 CY - Dresden, Germany DA - 27.09.2017 DA - 29.09.2017 KW - CoCrMo KW - Gefüge KW - ThermoCalc KW - EBSD KW - Farbätzen PY - 2017 AN - OPUS4-42832 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Dieck, S. A1 - Ecke, M. A1 - Rosemann, Paul A1 - Halle, T. T1 - Reversed austenite for enhancing ductility of martensitic stainless steel T2 - Proceedings of the International Conference on Martensitic Transformations: Chicago. The Minerals, Metals & Materials Series. N2 - 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. T2 - International Conference on Martensitic Transformations CY - Chicago, IL, USA DA - 09.07.2017 KW - Heat treatment KW - High ductility KW - Martensitic stainless steels KW - Quenching and partitioning KW - Transformation induced plasticity KW - KorroPad KW - EBSD KW - Mechanical testing PY - 2018 SN - 978-3-319-76968-4 DO - https://doi.org/10.1007/978-3-319-76968-4_19 SP - 123 EP - 128 PB - Springer AN - OPUS4-44689 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Dieck, S. A1 - Ecke, M. A1 - Rosemann, Paul A1 - Halle, T. T1 - Enhanced properties of martensitic stainless steel due to austenite reversion N2 - 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. T2 - 12th International Nordmetall Colloquium CY - Chemnitz, Germany DA - 05.12.2017 KW - Corrosion resistance KW - Heat treatment KW - Martensite KW - Quenching and partitioning KW - Stainless steel KW - KorroPad PY - 2017 AN - OPUS4-43339 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Dieck, S. A1 - Ecke, M. A1 - Rosemann, Paul A1 - Halle, T. T1 - Verbesserung der Eigenschaften vom martensitischen, nichtrostenden Stahl X46Cr13 durch Q&P-Wärmebehandlung T2 - Sommerkurs Werkstoffe und Fügen am Institut für Werkstoff- und Fügetechnik N2 - 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. T2 - Sommerkurs Werkstoffe und Fügen am Institut für Werkstoff- und Fügetechnik CY - Magdeburg, Germany DA - 08.09.2017 KW - Martensitischer nichtrostender Stahl KW - Wärmebehandlung KW - Q+P KW - Korrosion KW - KorroPad PY - 2017 SN - 978-3-944722-58-0 DO - https://doi.org/10.24352/UB.OVGU-2017-75 SP - 95 EP - 104 AN - OPUS4-41892 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Dieck, S. A1 - Rosemann, Paul A1 - Kromm, Arne A1 - Halle, T. T1 - Reversed austenite for enhancing ductility of martensitic stainless steel JF - IOP Conf. Series: Materials Science and Engineering N2 - The novel heat treatment concept, “quenching and partitioning” (Q&P) has been developed for high strength steels with enhanced formability. This heat treatment involves quenching of austenite to a temperature between martensite start and finish, to receive a several amount of retained austenite. During the subsequent annealing treatment, the so called partitioning, the retained austenite is stabilized due to carbon diffusion, which results in enhanced formability and strength regarding strain induced austenite to martensite transformation. In this study a Q&P heat treatment was applied to a Fe-0.45C-0.65Mn-0.34Si-13.95Cr stainless martensite. Thereby the initial quench end temperature and the partitioning time were varied to characterize their influence on microstructural evolution. The microstructural changes were analysed by dilatometer measurements, X-ray diffraction and scanning electron microscopy, including electron backscatter diffraction. Compression testing was made to examine the mechanical behaviour. It was found that an increasing partitioning time up to 30 min leads to an enhanced formability without loss in strength due to a higher amount of stabilized retained and reversed austenite as well as precipitation hardening. T2 - 19th Chemnitz Seminar on Materials Engineering – 19. Werkstofftechnisches Kolloquium CY - Chemnitz, Germany DA - 16.03.2017 KW - Quenching and partitioning KW - Martensitic stainless steels KW - Heat treatment KW - Transformation induced plasticity KW - High ductility PY - 2017 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-395328 DO - https://doi.org/10.1088/1757-899X/181/1/012034 SN - 1757-899X SN - 1757-8981 VL - 181 IS - Conference 1 SP - Article UNSP 012034, 1 EP - 8 PB - IOP Publishing CY - Bristol, UK AN - OPUS4-39532 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kauss, N. A1 - Halle, T. A1 - Rosemann, Paul T1 - Age-hardening behavior, microstructure and corrosion resistance of the copper alloyed stainless steel 1.4542 N2 - The copper alloyed stainless steel 1.4542 (X5CrNiCuNb16-4) is used in different areas due to its good mechanical properties and corrosion resistance. Strength and corrosion resistance can be adjusted by the heat treatment, which is of importance for the application of this alloy. The mechanical properties (strength and hardness) are attributed to the dispersive precipitation of the copper rich ε–Phase. The additional precipitation of chromium carbides can reduce the corrosion resistance. Different ageing states were produced to investigate the precipitation behaviour with various methods. Furthermore, the influence of cold-rolling on the precipitation behaviour was studied in comparison to a solution annealed state without deformation. The microstructure was studied by SEM and the variations of hardness and magnetic proportion were characterised. The electrochemical potentiodynamic reactivation (EPR) was used to determine the corrosion resistance and detect chromium depletion in all heat-treated states. The results show that a work hardening accelerates the precipitation rate, while ageing at 600 °C reduces the corrosion resistance due to chromium depletion. T2 - Materials Science and Engineering 2018 (MSE) CY - Darmstadt, Germany DA - 26.09.2018 KW - Corrosion KW - Corrosion resistance KW - Corrosion testing KW - EPR KW - Heat treatment KW - Martensitic stainless steels KW - REM KW - Stainless steel KW - ThermoCalc PY - 2018 AN - OPUS4-46094 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kauss, N. A1 - Halle, T. A1 - Rosemann, Paul T1 - Alterungsverhalten vom kupferaushärtenden martensitisch nichtrostenden Stahl 1.4542 T2 - Sommerkurs Werkstoffe und Fügen am Institut für Werkstoff- und Fügetechnik N2 - Der nichtrostende, aushärtbare Stahl 1.4542 (X5CrNiCuNb16-4) wird aufgrund der guten mechanischen Eigenschaften und der hohen Korrosionsbeständigkeit in einer Vielzahl von technischen Anwendungen eingesetzt. Das Verhältnis zwischen den mechanischen Eigenschaften und der Korrosionsbeständigkeit wird durch eine gezielte Wärmebehandlung eingestellt. Härte und Festigkeit werden durch die Bildung von fein verteilten Kupferausscheidungen bei der Warmauslagerung erreicht. Werden dabei auch Chromkarbide gebildet, reduziert sich gleichzeitig die Korrosionsbeständigkeit. Um den Einfluss der Warmauslagerung auf die Eigenschaften zu charakterisieren, wurden verschiedene Alterungszustände erzeugt und vergleichend untersucht. Dabei wurde außerdem der Einfluss einer starken Kaltumformung auf das Alterungsverhalten und die Korrosionsbeständigkeit untersucht. Zur Charakterisierung der Veränderungen wurden die Gefüge im REM untersucht und der magnetisierbare Anteil sowie die Vickershärte ermittelt. Zum Nachweis korrosionsanfälliger Zustände wurde die elektrochemisch potentiodynamische Reaktivierung (EPR) genutzt. Die Ergebnisse zeigen, dass die Kaltverfestigung die Ausscheidungskinetik beschleunigt und die Korrosionsbeständigkeit durch die Warmauslagerung bei 600 °C deutlich reduziert wird. T2 - 16. Sommerkurs Werkstoffe und Fügen CY - Magdeburg, Germany DA - 08.09.2017 KW - Nichtrostender Stahl KW - Wärmebehandlung KW - Korrosion KW - EPR KW - Kaltverfestigung PY - 2017 SN - 978-3-944722-58-0 DO - https://doi.org/10.24352/UB.OVGU-2017-75 SP - 87 EP - 94 AN - OPUS4-41891 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Kauss, N. A1 - Rosemann, Paul A1 - Halle, T. T1 - Age-hardening behaviour, microstructure and corrosion resistance of the copper alloyed stainless steel 1.4542 JF - IOP Conference Series: Materials Science and Engineering N2 - The copper alloyed stainless steel 1.4542 (X5CrNiCuNb16-4) is used in different areas due to its good mechanical properties and corrosion resistance. Strength and corrosion resistance can be adjusted by the heat treatment, which is of importance for the application of this alloy. The mechanical properties (strength and hardness) are attributed to the dispersive precipitation of the copper rich ε–Phase. The additional precipitation of chromium carbides can reduce the corrosion resistance. Different ageing states were produced to investigate the precipitation behaviour with various methods. Furthermore, the influence of cold-rolling on the precipitation behaviour was studied in comparison to a solution annealed state without deformation. The microstructure was studied by SEM and the variations of hardness and magnetic proportion were characterised. The electrochemical potentiodynamic reactivation (EPR) was used to determine the corrosion resistance and detect chromium depletion in all heattreated states. The results show that a work hardening accelerates the precipitation rate, while ageing at 600 °C reduces the corrosion resistance due to chromium depletion. T2 - WTK2018 CY - Chemnitz DA - 14.03.2018 KW - Corrosion KW - Corrosion resistance KW - Corrosion testing KW - EPR KW - Heat treatment KW - Stainless steel PY - 2018 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-452482 DO - https://doi.org/10.1088/1757-899X/373/1/012020 SN - 1757-899X SN - 1757-8981 VL - 373 SP - Article 012020, 1 EP - 9 PB - Institute of Physics CY - London AN - OPUS4-45248 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kauss, N. A1 - Rosemann, Paul A1 - Halle, T. T1 - Age-hardening behaviour, microstructure and corrosion resistance of the copper alloyed stainless steel 1.4542 N2 - The copper alloyed stainless steel 1.4542 (X5CrNiCuNb16-4) is used in different areas due to its good mechanical properties and corrosion resistance. Strength and corrosion re-sistance can be adjusted by the heat treatment, which is of importance for the application of this alloy. The mechanical properties (strength and hardness) are attributed to the dispersive precipitation of the copper rich ε–Phase. The additional precipitation of chromium carbides can reduce the corrosion resistance. Different ageing states were produced to investigate the precipitation behaviour with various methods. Furthermore, the influence of cold-rolling on the precipitation behaviour was studied in comparison to a solution annealed state without deformation. The microstructure was studied by SEM and the variations of hardness and magnetic proportion were characterised. The electrochemical potentiodynamic reactivation (EPR) was used to determine the corrosion resistance and detect chromium depletion in all heat-treated states. The results show that a work hardening accelerates the precipitation rate, while ageing at 600 °C reduces the corrosion re-sistance due to chromium depletion. T2 - EUROCORR 2018 CY - Krakow, Poland DA - 09.09.2018 KW - Corrosion KW - Stainless steel KW - Corrosion resistance KW - EPR KW - Corrosion testing KW - Heat treatment KW - ThermoCalc KW - REM KW - Martensitic stainless steels PY - 2018 AN - OPUS4-45955 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -