At the Technical University of Denmark (DTU) a new concept of Z–phase strengthened 12% Cr steels has been evolved. However, test steels based on the Z-phase strengthening concept has been found to possess poor impact toughness and they show creep instabilities in the form of accelerated creep strain accumulation in restricted time periods. The research in the project focused on investigations of modified heat treatments, which could improve the impact toughness of the steels, and on detailed microstructure investigations aimed on understanding reasons for the poor toughness and creep instability.
A number of low C 12%CrWCoCu test steels were studied by light microscopy, in-situ synchrotron XRD, dilatometric, transmission electron microscopy, and atom probe tomography investigations, and by ThermoCalc modelling. The candidate C.R. Das from IGCAR learned these techniques during his stay at DTU (electron microscopy) and during visits to the BESSY facilities in Berlin, Germany (Synchroton XRD), TU Rostock, Germany (Dilatometry) and TU Aachen, Germany (Atom Probe Tomography).
The normal heat treatment of such steels consists of austenitization at 1050-1150C with cooling in air. This results in martensitic transformation leading to high hardness and brittleness. Thus, the steels are tempered at 600-750C in order to restore ductility and toughness and to activate precipitation hardening. Transmission electron microscopy observations revealed segregation of W during tempering at the prior austenite grain boundaries (PAGB) and other boundaries followed by formation of intermetallic Laves phase and growth of austenite. This leads to reduced toughness of the steels.
The gathered information was used to design a new 12%Cr Z-phase strengthened allow with balanced additions of carbon and W in order to achieve good creep properties high toughness and weldability without post weld heat treatment. The proposed steel was produced in the RFCS CRESTA II project, and improved toughness was confirmed.
The Z7 steel is now being upscaled and the weldability without PWHT is being demonstrated inb the CRESTA II. The steel is a candidate alloy for waterwall application in the boiler of A-USC power plants, where it could replace large quantity of expensive Nickel base alloy.
Results from the work was presented at the14th International Conference on Creep and Fracture of Engineering Materials and Structures, Creep 2017, Saint Petersburg, Russia, 19-21 June 2017.
Further presentation of the results will be made in high impact scientific journals. However, the understanding of the results was developed too late for this to happen inside the project period.