Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10142004 | Materials Science and Engineering: A | 2018 | 37 Pages |
Abstract
This paper presents the results of an experimental study on evolution of the nanocrystalline microstructure in a mechanically alloyed Oxide dispersion strengthened (ODS) 18Cr ferritic steel powder during densification by spark plasma sintering (SPS) in the temperature range of 1273â¯K (1000â¯Â°C) to 1423â¯K (1150â¯Â°C). Systematic Electron Back-Scatter Diffraction analysis has been carried out to study the grain size distribution and texture as a function of consolidation temperatures. Based on the kinetics of the densification process and resultant microstructure/microtexture, a sintering temperature slightly above 1323â¯K (1050â¯Â°C) within a range of 50â¯K was found to be optimum. The 18Cr-ferritic steel powder consolidated at 1323â¯K (1050â¯Â°C) was also studied to understand the role of dispersoids on microstructure. The dispersoids exerted a profound influence on the strength as well as toughness of the steel by restricting the grain growth at high temperatures. Further, a signature of (1 1 0) grain cluster is observed during consolidation and its preferential growth with increase in sintering temperature is noticed which lead to the alignment of the (1 1 0) plane in the direction of applied pressure. The minimum creep rate of the consolidated steel under a load of 300â¯MPa was found to be 5E-7â¯hâ1 and 1E-4â¯hâ1 at 873 and 973â¯K (600 and 700â¯Â°C) respectively. The apparent activation energy for creep deformation was estimated as ~â¯402â¯kJ/mol, which is typical of lattice diffusion assisted general climb mechanism of dislocations over the barriers such as present dispersoids.
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Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
Manmath Kumar Dash, R. Mythili, Rahul Ravi, T. Sakthivel, Arup Dasgupta, S. Saroja, Srinivasa Rao Bakshi,