Austenitic stainless steels are extensively used in various applications requiring good corrosion resistance and formability. In the current study, the formation of nano/ ultrafine grained austenitic microstructure in a microalloyed AISI 304L stainless steel was investigated by the advanced thermomechanical process of reversion of strain-induced martensite. For this purpose, samples were subjected to heavy cold rolling to produce a nearly complete martensitic structure. Subsequently, a wide range of annealing temperatures (600 to 800°C) and times (1 to 240 min) were employed to assess the reversion behavior and to find the best annealing condition for the production of the nano/ultrafine grained austenitic microstructure. Microstructural ch...
Using repeated or cyclic annealing process a recrystallised ultrafine grained microstructure possess...
The current study applied thermomechanical processing (TMP) on 301 austenitic stainless steel to pro...
The present study aims to understand the evolution of Microstructure leading to nano/ultrafine grai...
Special thermomechanical treatment based on high degree deformation followed by reversion annealing ...
Eighty percent heavy cold thickness reduction and reversion transformation in the temperature range ...
AISI 304L austenitic stainless steel was cold rolled to 90% with and no inter-pass cooling to produc...
The mechanical properties and microstructural developments of 321 stainless steel during thermo-mech...
As-received hot-rolled commercial grade AISI 304L austenitic stainless steel plates were solution tr...
The development of ultrafine grained structures in 316L and 304-type austenitic stainless steels sub...
Nano/Submicron austenitic stainless steels increasingly attracted attention over last few years with...
In the present study AISI 304 stainless steel with different degrees of cold deformation and anneali...
The microstructural changes leading to nanocrystalline structure development and the respective tens...
Metastable austenitic stainless steel of type AISI 304L was cold rolled to 90% with and without inte...
The crystallographic orientation of cold-rolled 316L stainless steel is investigated during reversio...
This study unravels the microstructural mechanisms controlling the mechanical behaviour and austenit...
Using repeated or cyclic annealing process a recrystallised ultrafine grained microstructure possess...
The current study applied thermomechanical processing (TMP) on 301 austenitic stainless steel to pro...
The present study aims to understand the evolution of Microstructure leading to nano/ultrafine grai...
Special thermomechanical treatment based on high degree deformation followed by reversion annealing ...
Eighty percent heavy cold thickness reduction and reversion transformation in the temperature range ...
AISI 304L austenitic stainless steel was cold rolled to 90% with and no inter-pass cooling to produc...
The mechanical properties and microstructural developments of 321 stainless steel during thermo-mech...
As-received hot-rolled commercial grade AISI 304L austenitic stainless steel plates were solution tr...
The development of ultrafine grained structures in 316L and 304-type austenitic stainless steels sub...
Nano/Submicron austenitic stainless steels increasingly attracted attention over last few years with...
In the present study AISI 304 stainless steel with different degrees of cold deformation and anneali...
The microstructural changes leading to nanocrystalline structure development and the respective tens...
Metastable austenitic stainless steel of type AISI 304L was cold rolled to 90% with and without inte...
The crystallographic orientation of cold-rolled 316L stainless steel is investigated during reversio...
This study unravels the microstructural mechanisms controlling the mechanical behaviour and austenit...
Using repeated or cyclic annealing process a recrystallised ultrafine grained microstructure possess...
The current study applied thermomechanical processing (TMP) on 301 austenitic stainless steel to pro...
The present study aims to understand the evolution of Microstructure leading to nano/ultrafine grai...