Passive film properties of type 304L stainless steel in nitric acid medium are investigated in both ex situ and in situ conditions. Ex situ results revealed that variation in passive film morphology occurs depending upon the concentration and time of immersion. In situ surface morphological investigation showed formation of platelet like structures at lower concentrations (0.1 M, 0.5 M), and towards higher concentration (0.6 M, 1 M) the platelet like structures got agglomerated, homogenized and started depleting from the surface leading to opening up of oxide boundaries. Compositional analysis of the passive film revealed duplex nature at lower concentration consisting of hydroxide and oxide layer, and with increasing concentration oxide la...
Three different oxygen species, O, OH, and HO, are introduced into the deconvolution of the oxygen p...
A new measurement protocol was used for microscopic chemical analysis of surface oxide films with la...
Thesis (Ph.D.), School of Mechanical and Materials Engineering, Washington State Universit
The passive films play an important role in corrosion and stress corrosion cracking of austenitic st...
An examination has been carried out of the secondary passive film on Type 304 stainless steel in 0.5...
This report deals with the structure of the passive film formed on stainless steels during immersion...
The purpose of this paper is to provide a syntheses of experimental results regarding films formed o...
Passive films spontaneously formed on stainless steels surfaces play an essential role in Stress Cor...
The compositions of the passive film formed on stainless steel and the metallic phase below the film...
In this study, the structure and composition of primary and secondary passive films formed on AM355 ...
Depth profiles of the passive films on stainless steel were based on analysis with the non destructi...
The effect of surface strain on the passive film evolution of SAF 2507 super duplex stainless steel ...
This paper deals with the structure and composition of the passive film formed on the surface of two...
The evolution of the surface of a conventional stainless steel (AISI 316L) immersed in aqueous mediu...
Austenitic stainless steels type 304L and 316L are largely used as structural materials for equipmen...
Three different oxygen species, O, OH, and HO, are introduced into the deconvolution of the oxygen p...
A new measurement protocol was used for microscopic chemical analysis of surface oxide films with la...
Thesis (Ph.D.), School of Mechanical and Materials Engineering, Washington State Universit
The passive films play an important role in corrosion and stress corrosion cracking of austenitic st...
An examination has been carried out of the secondary passive film on Type 304 stainless steel in 0.5...
This report deals with the structure of the passive film formed on stainless steels during immersion...
The purpose of this paper is to provide a syntheses of experimental results regarding films formed o...
Passive films spontaneously formed on stainless steels surfaces play an essential role in Stress Cor...
The compositions of the passive film formed on stainless steel and the metallic phase below the film...
In this study, the structure and composition of primary and secondary passive films formed on AM355 ...
Depth profiles of the passive films on stainless steel were based on analysis with the non destructi...
The effect of surface strain on the passive film evolution of SAF 2507 super duplex stainless steel ...
This paper deals with the structure and composition of the passive film formed on the surface of two...
The evolution of the surface of a conventional stainless steel (AISI 316L) immersed in aqueous mediu...
Austenitic stainless steels type 304L and 316L are largely used as structural materials for equipmen...
Three different oxygen species, O, OH, and HO, are introduced into the deconvolution of the oxygen p...
A new measurement protocol was used for microscopic chemical analysis of surface oxide films with la...
Thesis (Ph.D.), School of Mechanical and Materials Engineering, Washington State Universit