TY - CONF A1 - Rosemann, Paul A1 - Müller, C. A1 - Kauss, N. A1 - Halle, T. T1 - Einfluss der Wärmebehandlung auf Mikrostruktur und Korrosionsverhalten kohlenstoffhaltiger nichtrostender Stähle N2 - Das Korrosionsverhalten von kohlenstoffhaltigen martensitischen nichtrostenden Stählen variiert in Abhängigkeit der Wärmebehandlung (WB) und der damit eingestellten Mikrostruktur deutlich stärker als bei kohlenstoffarmen ferritischen und austenitischen nichtrostenden Stählen. Bei erhöhtem Kohlenstoffgehalt bestimmt die diffusionsgesteuerte Bildung und Auflösung von Chromkarbiden die Verteilung von Chrom und Kohlenstoff im Gefüge. Bisher lag der Fokus von Forschungsarbeiten zum Einfluss der WB auf dem Anlassen im allgemein bekannten Sensibilisierungsbereich dieser Werkstoffgruppe zwischen 200 °C und 700 °C und der dort auftretenden Chromverarmung. Mit der gezielten WB des X46Cr13 (1.4034) wird gezeigt, dass Temperatur und Dauer beim Austenitisieren sowie die anschließende Abkühlung beim Härten das Korrosionsverhalten schon vor dem Anlassen signifikant beeinflussen. Auf der Basis von thermodynamischen Berechnungen wurden definierte WB ausgewählt, um gezielt unterschiedliche Volumengehalte von Chromkarbiden im Gefüge und somit auch unterschiedliche Chrom bzw. Kohlenstoffgehalte im Mischkristall zu erzeugen. Anschließend wurden die resultierenden Gefügezustände hinsichtlich Chromkarbidanteil und Härte verglichen und das Korrosionsverhalten mit der elektrochemisch potentiodynamischen Reaktivierung (EPR) sowie durch einen Schnelltest mit der KorroPad-Prüfung untersucht. Dabei konnte ein direkter Zusammenhang zwischen WB, Mikrostrukturänderungen und Korrosionsverhalten festgestellt werden. Mit steigender Austenitisierungstemperatur wird der Anteil an Chromkarbiden reduziert und der Kohlenstoff- und Chromgehalt der Matrix erhöht, bis eine vollständige Auflösung der Chromkarbide gegeben und die chemische Nennzusammensetzung der Legierung im Mischkristall erreicht ist. In der direkten Folge wird die Ausbildung der für nichtrostende Stähle charakteristischen Passivschicht erleichtert und das Lochkorrosionsverhalten verbessert. Die Abkühlrate hat neben den Austenitisierungsparametern ebenfalls einen großen Einfluss auf das Korrosionsverhalten. So führt eine langsame Abkühlung an Luft zu einer Chromverarmung im Gefüge, die eine deutlich erhöhte Lochkorrosionsanfälligkeit zur Folge hat. In Abhängigkeit der WB von kohlenstoffhaltigen nichtrostenden Stählen können Mikrostruktur, Härte und Korrosionsbeständigkeit in einem weiten Bereich variieren. T2 - 20. Werkstofftechnisches Kolloquium CY - Chemnitz, Germany DA - 14.03.2018 KW - Nichtrostender Stahl KW - Wärmebehandlung KW - EPR KW - KorroPad KW - Korrosionsbeständigkeit KW - ThermoCalc KW - Sensibilisierung KW - Martensitischer nichtrostender Stahl KW - Passivschicht PY - 2018 SN - 978-3-00-058901-0 SN - 1439-1597 VL - 72 SP - 711 EP - 720 PB - Eigenverlag CY - Chemnitz AN - OPUS4-44559 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kauss, N. A1 - Rosemann, Paul 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 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 chromi-um 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 hard-ening accelerates the precipitation rate, while ageing at 600 °C reduces the corrosion resistance due to chromium depletion. T2 - 20. Werkstofftechnischen Kolloquium CY - Chemnitz, Germany DA - 14.03.2018 KW - Corrosion KW - Heat treatment KW - Stainless steel KW - Corrosion resistance KW - EPR KW - Corrosion testing PY - 2018 AN - OPUS4-44553 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Rosemann, Paul A1 - Kauss, N. T1 - Visualisierung werkstoffbedingter Lochkorrosionsanfälligkeit durch die KorroPad-Prüfung N2 - Mit der KorroPad-Prüfung können lochkorrosionsanfällige Oberflächenbereiche einfach, schnell und kostengünstig nachgewiesen werden. Das KorroPad ist damit für Hersteller, Verarbeiter, Anwender und Forscher eine interessante Alternative zu zeitintensiven Auslagerungsversuchen und elektrochemischen Untersuchungsmethoden, die normalerweise bei der Charakterisierung nichtrostender Stähle zur Anwendung kommen. Mit der KorroPad-Prüfung können auch werkstoff- und gefügebedingte Einflussfaktoren sichtbar gemacht werden, die Lochkorrosionsanfälligkeit verursachen. Um dies zu veranschaulichen, wird die Nachweisgrenze des KorroPads an Referenzlegierungen mit abgestuftem Chromgehalt aufgezeigt. Darauf aufbauend wird dargestellt, wie die Sensibilisierung nichtrostender Stähle durch Chromverarmung mit einer gezielten Verschärfung der KorroPad-Prüfung nachgewiesen werden kann. T2 - 20. Werkstofftechnisches Kolloquium CY - Chemnitz, Germany DA - 14.03.2018 KW - KorroPad KW - Korrosion KW - Nichtrostender Stahl KW - Lochkorrosion KW - Korrosionsbeständigkeit KW - Korrosionsschutz KW - Passivschicht PY - 2018 SN - 978-3-00-058901-0 SN - 1439-1597 VL - 72 SP - 67 EP - 73 PB - Eigenverlag CY - Chemnitz AN - OPUS4-44557 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kauss, N. A1 - Rosemann, Paul 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 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 chromi-um 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 hard-ening accelerates the precipitation rate, while ageing at 600 °C reduces the corrosion resistance due to chromium depletion. T2 - 20. Werkstofftechnisches Kolloquium CY - Chemnitz, Germany DA - 14.03.2018 KW - Corrosion KW - Corrosion resistance KW - Corrosion testing KW - EPR KW - Heat treatment KW - Stainless steel PY - 2018 SN - 978-3-00-058901-0 SN - 1439-1597 VL - 72 SP - 277 EP - 284 PB - Eigenverlag CY - Chemnitz AN - OPUS4-44558 LA - eng 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 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 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:b43-452482 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 - Heyn, A. A1 - Rosemann, Paul T1 - How to Detect Sensitivity on Aged Lean-Duplex Stainless Steel With Electrochemical Methods N2 - 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. T2 - Electrochemical Methods in Corrosion Research 2018 CY - Cambridge, UK DA - 22.07.2018 KW - Corrosion testing KW - Duplex stainless steels KW - Corrosion KW - KorroPad KW - Pitting corrosion KW - EPR KW - Electrochemical noise KW - Stainless steel PY - 2018 AN - OPUS4-45615 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Rosemann, Paul A1 - Kauss, N. T1 - Visualisierung werkstoffbedingter Lochkorrosionsanfälligkeit durch die KorroPad-Prüfung N2 - Mit der KorroPad-Prüfung können lochkorrosionsanfällige Oberflächen einfach, schnell und kostengünstig nachgewiesen werden. Das KorroPad ist damit für Hersteller, Verarbeiter, Anwender und Forscher eine interessante Alternative zu zeitintensiven Auslagerungsversuchen und elektrochemischen Untersuchungsmethoden, die normalerweise bei der Charakterisierung nichtrostender Stähle zur Anwendung kommen. Mit der KorroPad-Prüfung können aber auch werkstoff und gefügebedingte Einflussfaktoren sichtbar gemacht werden, die Lochkorrosionsanfälligkeit verursachen. Um dies zu veranschaulichen, wird die Nachweisgrenze des KorroPads an Referenzlegierungen mit abgestuftem Chromgehalt aufgezeigt. Darauf aufbauend wird dargestellt, wie die Sensibilisierung nichtrostender Stähle durch Chromverarmung mit einer gezielten Verschärfung der KorroPad-Prüfung nachgewiesen werden kann. KW - Korrosion KW - Nichtrostender Stahl KW - KorroPad KW - Passivschicht KW - Lochkorrosion KW - EPR KW - Korrosionsschnelltest KW - Qualitätssicherung PY - 2018 UR - https://www.wotech-technical-media.de/womag/autoren/Rosemann_Paul.php U6 - https://doi.org/10.7395/2018/Rosemann1 IS - 7-8 SP - 1 EP - 5 PB - WOMAG AN - OPUS4-45688 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Rosemann, Paul A1 - Kauss, N. T1 - Visualisierung werkstoffbedingter Lochkorrosionsanfälligkeit durch die KorroPad-Prüfung N2 - Mit der KorroPad-Prüfung können lochkorrosionsanfällige Oberflächen einfach, schnell und kostengünstig nachgewiesen werden. Das KorroPad ist damit für Hersteller, Verarbeiter, Anwender und Forscher eine interessante Alternative zu zeitintensiven Auslagerungsversuchen und elektrochemischen Untersuchungsmethoden, die normalerweise bei der Charakterisierung nichtrostender Stähle zur Anwendung kommen. Mit der KorroPad-Prüfung können aber auch werkstoff- und gefügebedingte Einflussfaktoren sichtbar gemacht werden, die Lochkorrosionsanfälligkeit verursachen. Um dies zu veranschaulichen, wird die Nachweisgrenze des Korro-Pads an Referenzlegierungen mit abgestuftem Chromgehalt aufgezeigt. Darauf aufbauend wird dargestellt, wie die Sensibilisierung nichtrostender Stähle durch Chromverarmung mit einer gezielten Verschärfung der KorroPad-Prüfung nachgewiesen werden kann. KW - Korrosion KW - Nichtrostender Stahl KW - KorroPad KW - Korrosionsschnelltest KW - Passivschicht KW - EPR KW - Qualitätssicherung PY - 2018 SN - 2195-5905 IS - 7-8 SP - 18 EP - 20 PB - WOMAG CY - Waldshut-Tiengen AN - OPUS4-45689 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Rosemann, Paul A1 - Kauss, N. A1 - Müller, C. A1 - Halle, T. T1 - Heat treatment and corrosion resistance of cutlery N2 - Hardness and pitting corrosion resistance are the major quality criteria of cutlery. Both are achieved by the heat treatment (austenitization, quenching and tempering) of the normally used martensitic stainless steels. The established quality control method regarding the pitting corrosion resistance is an alternating immersion test in 1 % NaCl solution at 60 °C according to DIN EN ISO 8442. This standard test shows a high deviation, which limits any optimization of the heat treatment process. New approaches for corrosion testing of martensitic stainless-steels were developed and used in the last years to connect the weak pitting corrosion resistance of martensitic stainless-steels with the phenomenon of chromium depletion. The tempering temperatures used in the industrial heat treatment of cutlery are too low to explain the appearance of chromium depletion. For this reason, a systematic investigation of three heat treatment parameters (austenitization time, cooling speed and tempering temperature) were performed on the martensitic stainless-steels X50CrMoV15 (1.4116) to detect their contribution to chromium depletion. The electrochemical potentiodynamic reactivation (EPR), which is very sensitive to any change of the microstructure, was used to quantify the degree of chromium depletion. The KorroPad indicator-test was applied to correlate low pitting corrosion resistance to the presence of chromium depletion. The results of all investigations allow conclusions about the very small process window, which is necessary to achieve cutlery with high pitting corrosion resistance. T2 - EUROCORR 2018 CY - Krakow, Poland DA - 09.09.2018 KW - Corrosion KW - KorroPad KW - Stainless steel KW - Corrosion resistance KW - Heat treatment KW - EPR KW - Pitting corrosion KW - Martensitic stainless steels KW - REM PY - 2018 AN - OPUS4-45952 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Rosemann, Paul A1 - Kauss, N. T1 - Visualization of material-related susceptibility to pitting corrosion with the “KorroPad” indicator test N2 - The KorroPad indicator test was invented at the Federal Institute for Materials Research and Testing to detect stainless-steel surfaces susceptible to pitting corrosion. The KorroPad indicator test is thus an interesting alternative for manufacturers, processors, users and researchers to time consuming exposition experiments and complex electrochemical investigations, which are normally used to reveal surface-related processing errors resulting in reduced pitting corrosion resistance. Furthermore, the KorroPad indicator test can be used to visualize alloy- and microstructure-related factors causing susceptibility to pitting corrosion. The detection limit of the KorroPad indicator test was characterized in this work using reference alloys with different chromium content (5 % to 18 %). The alloy-specific detection limit was shifted successfully to higher chromium content by increasing the concentrations of NaCl and K3[Fe(CN)6]. The modified KorroPads can now be used to establish an alloy-specific quality control regarding the pitting corrosion resistance of different stainless steel grades. T2 - EUROCORR CY - Krakow, Poland DA - 09.09.2018 KW - Corrosion KW - KorroPad KW - Stainless steel KW - Corrosion resistance KW - Corrosion testing KW - Pitting corrosion PY - 2018 AN - OPUS4-45953 LA - deu 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 - 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 -