SlideShare a Scribd company logo
1 of 1
Download to read offline
Stability of expanded austenite, generated by ion carburizing and ion nitriding of AISI
316L SS, under high temperature and high energy pulsed ion beam irradiation
J. García Molleja a,
⁎, M. Milanese b
, M. Piccoli c
, R. Moroso b
, J. Niedbalski b
, L. Nosei d
, J. Bürgi a
,
E. Bemporad c
, J. Feugeas a
a
Instituto de Física Rosario (CONICET-UNR), Bvrd. 27 de Febrero 210 Bis, S2000EZP Rosario, Argentina
b
Instituto de Física Arroyo Seco (CONICET-UNCPBA), Pinto 399, B7000GHG Tandil, Argentina
c
Dipartimento di Ingegneria Meccanica e Industriale (Università Roma Tre), Via della Vasca Navale 79, 00146 Rome, Italy
d
Instituto de Mecánica Aplicada y Estructuras (FCEIyA-UNR), Berutti y Riobamba, S2000EKD Rosario, Argentina
a b s t r a c ta r t i c l e i n f o
Article history:
Received 29 June 2012
Accepted in revised form 19 December 2012
Available online 6 January 2013
Keywords:
Ion carburizing
Expanded austenite
Plasma focus
Crystalline stability
Expanded austenite can be generated on austenitic stainless steels either by ion carburizing or ion nitriding.
In both cases the resulting fcc crystal structure, supersaturated with nitrogen or carbon, is strongly hardened
with improved wear-resistance, while maintaining the original resistance to corrosion. In this work, we have
studied the stability of expanded austenite, generated by ion nitriding and ion carburizing on AISI 316L SS
with N and C, under: a—high temperature (225 °C – 504 °C), and b—under irradiation with high energy
(30 keV – 500 keV), high fluence (~1015
cm−2
), short duration (~400 ns) light (deuterium and helium) ion
beams. It was found that expanded austenite is stable below 325 °C. Between 325 °C and 504 °C expanded
austenite lattice parameter presents gradual reduction with increasing temperature. We observed microstructural
changes related only to the temperature treatment. We did not observe any microstructure change due to the
duration of the heat treatment. Over 504 °C, the lattice parameter returns to the material's austenite original
parameter. On the other hand, when irradiated with pulsed ion beams, a gradual reduction of the lattice parameter
corresponding to the expanded austenite with the number of pulses was observed. This behavior can be explained
through the thermal shock induced on the surface by each beam, consisting in fast heating followed by fast cooling
that induces the gradual exo-diffusion of N (or C). Nevertheless, after 20 ion pulses, a final lattice parameter slightly
higher than the corresponding to the original austenite was found as stable limit. This residual expansion can be
attributed to partial amorphization of the first few micrometers that induces stresses on the crystals of austenite
which are closer to the surface layers.
© 2013 Elsevier B.V. All rights reserved.
1. Introduction
Austenitic stainless steels, like AISI 316L grade, have been applied
fluently for industrial purposes. Principal applications are: tools and
home cutlery, tanks, pipes in food industry and tools and implements
in surgery, among others. These uses are motivated by the excellent
properties that austenitic stainless steels have, like good corrosion
resistance to chloride pitting, great hygiene-cleanliness factor, of
easy transformation, good welding properties, no hardening by heat
treatment, and resistant to high and low temperatures. Nevertheless,
they do not have important mechanical properties principally show-
ing low hardness and poor wear resistance. More recently, a method
has been found for wear and hardness improvements by the develop-
ment of expanded austenite (called EA, S, m, S′, ε′ or γ phase) on
surface, without the loss of resistance to corrosion [1–4]. This phase
is the result of nitrogen or carbon atoms entering in an fcc crystalline
structure until the colossal supersaturation is reached [5] when a high
number of these atoms occupy the fcc interstitial sites, presumably
the octahedral ones. The consequence is the deformation of crystal-
line structure by compressive strains and high density of stacking
faults that induce the lattice parameter growth. Other authors [6,7]
support that EA is not an fcc structure but an fct, bct or trigonal struc-
ture. Nevertheless, in reference [8] it has been shown that EA has an
fcc structure when strains are suppressed.
Ion nitriding [9] and carburizing [10] are techniques based on
surface modification that are applied to obtain EA through nitrogen or
carbon diffusion in the lattice of austenite, respectively. Indeed, low
pressure cold plasma allows forming a thick EA case without nitride
or carbide precipitation, conferring hardness and wear resistances to
surfaces of austenitic stainless steels, well above the original material.
In this paper, we have studied the stability of the EA, developed
either by ion nitriding and ion carburizing, under high temperature
and by the incidence of high energy, high fluence rate, short duration
pulsed ion beams generated in plasma focus discharges.
Surface & Coatings Technology 218 (2013) 142–151
⁎ Corresponding author. Tel.: +54 341 4853222; fax: +54 341 4821772.
E-mail address: garciamolleja@ifir-conicet.gov.ar (J. García Molleja).
0257-8972/$ – see front matter © 2013 Elsevier B.V. All rights reserved.
http://dx.doi.org/10.1016/j.surfcoat.2012.12.043
Contents lists available at SciVerse ScienceDirect
Surface & Coatings Technology
journal homepage: www.elsevier.com/locate/surfcoat

More Related Content

What's hot

Metallurgical and mechanical behavior of brazed thin alloys sheets assemblies
Metallurgical and mechanical behavior of brazed thin alloys sheets assembliesMetallurgical and mechanical behavior of brazed thin alloys sheets assemblies
Metallurgical and mechanical behavior of brazed thin alloys sheets assemblies
International Multispeciality Journal of Health
 
Fyp mmc final (1)
Fyp mmc final (1)Fyp mmc final (1)
Fyp mmc final (1)
MuhammadAliArif5
 

What's hot (7)

Metallurgical and mechanical behavior of brazed thin alloys sheets assemblies
Metallurgical and mechanical behavior of brazed thin alloys sheets assembliesMetallurgical and mechanical behavior of brazed thin alloys sheets assemblies
Metallurgical and mechanical behavior of brazed thin alloys sheets assemblies
 
Cm33537542
Cm33537542Cm33537542
Cm33537542
 
Lecture bainite, bainitic alloys and bulk nanocrystalline steel
Lecture  bainite, bainitic alloys and bulk nanocrystalline steelLecture  bainite, bainitic alloys and bulk nanocrystalline steel
Lecture bainite, bainitic alloys and bulk nanocrystalline steel
 
Fyp mmc final (1)
Fyp mmc final (1)Fyp mmc final (1)
Fyp mmc final (1)
 
Ch 27.9 elastomer, cearmic & composite
Ch 27.9 elastomer, cearmic & compositeCh 27.9 elastomer, cearmic & composite
Ch 27.9 elastomer, cearmic & composite
 
Ch06
Ch06Ch06
Ch06
 
Lecture 09
Lecture 09Lecture 09
Lecture 09
 

Similar to Stability of expanded austenite, generated by ion carburizing and ion nitriding of AISI 316L SS, under high temperature and high energy pulsed ion beam irradiation

Microstructural characterization and elastoplastic behaviour of high strengt
Microstructural characterization and elastoplastic behaviour of high strengtMicrostructural characterization and elastoplastic behaviour of high strengt
Microstructural characterization and elastoplastic behaviour of high strengt
IAEME Publication
 
Nitrocarburizing of austenitic stainless steels paper presentation
Nitrocarburizing of austenitic stainless steels  paper presentationNitrocarburizing of austenitic stainless steels  paper presentation
Nitrocarburizing of austenitic stainless steels paper presentation
Rhushikesh Mane
 
2016 MRS Fall meeting-Guiqiu Zheng ES5.13.04
2016 MRS Fall meeting-Guiqiu Zheng ES5.13.042016 MRS Fall meeting-Guiqiu Zheng ES5.13.04
2016 MRS Fall meeting-Guiqiu Zheng ES5.13.04
Guiqiu (Tony) Zheng
 
Solidification on Peritectic point.pdf
Solidification on Peritectic point.pdfSolidification on Peritectic point.pdf
Solidification on Peritectic point.pdf
saifulislam955144
 
Characterization of corrosion of x70 pipeline steel in thin electrolyte layer
Characterization of corrosion of x70 pipeline steel in thin electrolyte layerCharacterization of corrosion of x70 pipeline steel in thin electrolyte layer
Characterization of corrosion of x70 pipeline steel in thin electrolyte layer
A X.S
 

Similar to Stability of expanded austenite, generated by ion carburizing and ion nitriding of AISI 316L SS, under high temperature and high energy pulsed ion beam irradiation (20)

Characterization of expanded austenite developed on AISI 316L stainless steel...
Characterization of expanded austenite developed on AISI 316L stainless steel...Characterization of expanded austenite developed on AISI 316L stainless steel...
Characterization of expanded austenite developed on AISI 316L stainless steel...
 
Expanded austenite stability under pulsed high energy light ion beams irradia...
Expanded austenite stability under pulsed high energy light ion beams irradia...Expanded austenite stability under pulsed high energy light ion beams irradia...
Expanded austenite stability under pulsed high energy light ion beams irradia...
 
Microstructural characterization and elastoplastic behaviour of high strengt
Microstructural characterization and elastoplastic behaviour of high strengtMicrostructural characterization and elastoplastic behaviour of high strengt
Microstructural characterization and elastoplastic behaviour of high strengt
 
Nitrocarburizing of austenitic stainless steels paper presentation
Nitrocarburizing of austenitic stainless steels  paper presentationNitrocarburizing of austenitic stainless steels  paper presentation
Nitrocarburizing of austenitic stainless steels paper presentation
 
Icommet 2020
Icommet 2020Icommet 2020
Icommet 2020
 
2016 MRS Fall meeting-Guiqiu Zheng ES5.13.04
2016 MRS Fall meeting-Guiqiu Zheng ES5.13.042016 MRS Fall meeting-Guiqiu Zheng ES5.13.04
2016 MRS Fall meeting-Guiqiu Zheng ES5.13.04
 
Iron carbon phase
Iron carbon phaseIron carbon phase
Iron carbon phase
 
Fe c
Fe cFe c
Fe c
 
Iron carbon phase
Iron carbon phaseIron carbon phase
Iron carbon phase
 
Design of steels for high speed machining
Design of steels for high speed machiningDesign of steels for high speed machining
Design of steels for high speed machining
 
IRJET - Advances in Perovskite Solar Cells
IRJET - Advances in Perovskite Solar CellsIRJET - Advances in Perovskite Solar Cells
IRJET - Advances in Perovskite Solar Cells
 
Solidification on Peritectic point.pdf
Solidification on Peritectic point.pdfSolidification on Peritectic point.pdf
Solidification on Peritectic point.pdf
 
Diagram fe c (2)
Diagram fe c (2)Diagram fe c (2)
Diagram fe c (2)
 
30320130403001
3032013040300130320130403001
30320130403001
 
L7_Fe-C_ Diagram MICRO STRUCTURE.pdf
L7_Fe-C_ Diagram MICRO STRUCTURE.pdfL7_Fe-C_ Diagram MICRO STRUCTURE.pdf
L7_Fe-C_ Diagram MICRO STRUCTURE.pdf
 
D. mercier
D. mercierD. mercier
D. mercier
 
INVESTIGATION OF OXIDATION RESISTANCE OF NI- TI ELECTROCHEMICAL CODEPOSITION ...
INVESTIGATION OF OXIDATION RESISTANCE OF NI- TI ELECTROCHEMICAL CODEPOSITION ...INVESTIGATION OF OXIDATION RESISTANCE OF NI- TI ELECTROCHEMICAL CODEPOSITION ...
INVESTIGATION OF OXIDATION RESISTANCE OF NI- TI ELECTROCHEMICAL CODEPOSITION ...
 
Characterization of corrosion of x70 pipeline steel in thin electrolyte layer
Characterization of corrosion of x70 pipeline steel in thin electrolyte layerCharacterization of corrosion of x70 pipeline steel in thin electrolyte layer
Characterization of corrosion of x70 pipeline steel in thin electrolyte layer
 
Behavior of nitrided and carburized AISI 904L stainless steel under severe li...
Behavior of nitrided and carburized AISI 904L stainless steel under severe li...Behavior of nitrided and carburized AISI 904L stainless steel under severe li...
Behavior of nitrided and carburized AISI 904L stainless steel under severe li...
 
Mse11 27 012062
Mse11 27 012062Mse11 27 012062
Mse11 27 012062
 

More from Javier García Molleja

More from Javier García Molleja (20)

Highly thermal conductive Boron Nitride/Polyrotaxane encapsulated PEG-based ...
Highly thermal conductive Boron Nitride/Polyrotaxane encapsulated  PEG-based ...Highly thermal conductive Boron Nitride/Polyrotaxane encapsulated  PEG-based ...
Highly thermal conductive Boron Nitride/Polyrotaxane encapsulated PEG-based ...
 
PLA aerogel as a universal support for the typical organic phase change ener...
PLA aerogel as a universal support for the typical organic phase change  ener...PLA aerogel as a universal support for the typical organic phase change  ener...
PLA aerogel as a universal support for the typical organic phase change ener...
 
Graphene Functionalization of Polyrotaxane-Encapsulated PEG-Based PCMs: Fabri...
Graphene Functionalization of Polyrotaxane-Encapsulated PEG-Based PCMs: Fabri...Graphene Functionalization of Polyrotaxane-Encapsulated PEG-Based PCMs: Fabri...
Graphene Functionalization of Polyrotaxane-Encapsulated PEG-Based PCMs: Fabri...
 
Unveiling the structure, chemistry, and formation mechanism of an in-situ pho...
Unveiling the structure, chemistry, and formation mechanism of an in-situ pho...Unveiling the structure, chemistry, and formation mechanism of an in-situ pho...
Unveiling the structure, chemistry, and formation mechanism of an in-situ pho...
 
El rol de la tomografía en la industria: aplicaciones aeronáuticas y en el se...
El rol de la tomografía en la industria: aplicaciones aeronáuticas y en el se...El rol de la tomografía en la industria: aplicaciones aeronáuticas y en el se...
El rol de la tomografía en la industria: aplicaciones aeronáuticas y en el se...
 
How to make a manual binary segmentation for an XCT reconstructed volume with...
How to make a manual binary segmentation for an XCT reconstructed volume with...How to make a manual binary segmentation for an XCT reconstructed volume with...
How to make a manual binary segmentation for an XCT reconstructed volume with...
 
Una introducción a la Tomografía Computarizada de Rayos X
Una introducción a la Tomografía Computarizada de Rayos XUna introducción a la Tomografía Computarizada de Rayos X
Una introducción a la Tomografía Computarizada de Rayos X
 
Unidad 8: física cuántica
Unidad 8: física cuánticaUnidad 8: física cuántica
Unidad 8: física cuántica
 
Unidad 7: fuerzas a distancia
Unidad 7: fuerzas a distanciaUnidad 7: fuerzas a distancia
Unidad 7: fuerzas a distancia
 
Unidad 6: movimiento rotacional
Unidad 6: movimiento rotacionalUnidad 6: movimiento rotacional
Unidad 6: movimiento rotacional
 
Unit 5: Impulse and momentum
Unit 5: Impulse and momentumUnit 5: Impulse and momentum
Unit 5: Impulse and momentum
 
Unidad 5: impulso y cantidad de movimiento
Unidad 5: impulso y cantidad de movimientoUnidad 5: impulso y cantidad de movimiento
Unidad 5: impulso y cantidad de movimiento
 
How to manually equalize the histograms of two (or more) subvolumes, measured...
How to manually equalize the histograms of two (or more) subvolumes, measured...How to manually equalize the histograms of two (or more) subvolumes, measured...
How to manually equalize the histograms of two (or more) subvolumes, measured...
 
Unidad 4: trabajo, energía y potencia
Unidad 4: trabajo, energía y potenciaUnidad 4: trabajo, energía y potencia
Unidad 4: trabajo, energía y potencia
 
Unidad 3: dinámica
Unidad 3: dinámicaUnidad 3: dinámica
Unidad 3: dinámica
 
Unidad 2: cinemática
Unidad 2: cinemáticaUnidad 2: cinemática
Unidad 2: cinemática
 
Unidad 1: descripción del mundo físico
Unidad 1: descripción del mundo físicoUnidad 1: descripción del mundo físico
Unidad 1: descripción del mundo físico
 
Unit 1: Description of the physical world
Unit 1: Description of the physical worldUnit 1: Description of the physical world
Unit 1: Description of the physical world
 
How to concatenate two (or more) subvolumes, measured with XCT, using ImageJ
How to concatenate two (or more) subvolumes, measured with XCT, using ImageJHow to concatenate two (or more) subvolumes, measured with XCT, using ImageJ
How to concatenate two (or more) subvolumes, measured with XCT, using ImageJ
 
How to make a mask for an XCT reconstructed volume with ImageJ
How to make a mask for an XCT reconstructed volume with ImageJHow to make a mask for an XCT reconstructed volume with ImageJ
How to make a mask for an XCT reconstructed volume with ImageJ
 

Recently uploaded

Breaking Down the Flutterwave Scandal What You Need to Know.pdf
Breaking Down the Flutterwave Scandal What You Need to Know.pdfBreaking Down the Flutterwave Scandal What You Need to Know.pdf
Breaking Down the Flutterwave Scandal What You Need to Know.pdf
UK Journal
 
Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...
Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...
Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...
panagenda
 

Recently uploaded (20)

State of the Smart Building Startup Landscape 2024!
State of the Smart Building Startup Landscape 2024!State of the Smart Building Startup Landscape 2024!
State of the Smart Building Startup Landscape 2024!
 
The Value of Certifying Products for FDO _ Paul at FIDO Alliance.pdf
The Value of Certifying Products for FDO _ Paul at FIDO Alliance.pdfThe Value of Certifying Products for FDO _ Paul at FIDO Alliance.pdf
The Value of Certifying Products for FDO _ Paul at FIDO Alliance.pdf
 
ERP Contender Series: Acumatica vs. Sage Intacct
ERP Contender Series: Acumatica vs. Sage IntacctERP Contender Series: Acumatica vs. Sage Intacct
ERP Contender Series: Acumatica vs. Sage Intacct
 
The Metaverse: Are We There Yet?
The  Metaverse:    Are   We  There  Yet?The  Metaverse:    Are   We  There  Yet?
The Metaverse: Are We There Yet?
 
Breaking Down the Flutterwave Scandal What You Need to Know.pdf
Breaking Down the Flutterwave Scandal What You Need to Know.pdfBreaking Down the Flutterwave Scandal What You Need to Know.pdf
Breaking Down the Flutterwave Scandal What You Need to Know.pdf
 
Behind the Scenes From the Manager's Chair: Decoding the Secrets of Successfu...
Behind the Scenes From the Manager's Chair: Decoding the Secrets of Successfu...Behind the Scenes From the Manager's Chair: Decoding the Secrets of Successfu...
Behind the Scenes From the Manager's Chair: Decoding the Secrets of Successfu...
 
Using IESVE for Room Loads Analysis - UK & Ireland
Using IESVE for Room Loads Analysis - UK & IrelandUsing IESVE for Room Loads Analysis - UK & Ireland
Using IESVE for Room Loads Analysis - UK & Ireland
 
Integrating Telephony Systems with Salesforce: Insights and Considerations, B...
Integrating Telephony Systems with Salesforce: Insights and Considerations, B...Integrating Telephony Systems with Salesforce: Insights and Considerations, B...
Integrating Telephony Systems with Salesforce: Insights and Considerations, B...
 
AI presentation and introduction - Retrieval Augmented Generation RAG 101
AI presentation and introduction - Retrieval Augmented Generation RAG 101AI presentation and introduction - Retrieval Augmented Generation RAG 101
AI presentation and introduction - Retrieval Augmented Generation RAG 101
 
How we scaled to 80K users by doing nothing!.pdf
How we scaled to 80K users by doing nothing!.pdfHow we scaled to 80K users by doing nothing!.pdf
How we scaled to 80K users by doing nothing!.pdf
 
Designing for Hardware Accessibility at Comcast
Designing for Hardware Accessibility at ComcastDesigning for Hardware Accessibility at Comcast
Designing for Hardware Accessibility at Comcast
 
Your enemies use GenAI too - staying ahead of fraud with Neo4j
Your enemies use GenAI too - staying ahead of fraud with Neo4jYour enemies use GenAI too - staying ahead of fraud with Neo4j
Your enemies use GenAI too - staying ahead of fraud with Neo4j
 
Syngulon - Selection technology May 2024.pdf
Syngulon - Selection technology May 2024.pdfSyngulon - Selection technology May 2024.pdf
Syngulon - Selection technology May 2024.pdf
 
Extensible Python: Robustness through Addition - PyCon 2024
Extensible Python: Robustness through Addition - PyCon 2024Extensible Python: Robustness through Addition - PyCon 2024
Extensible Python: Robustness through Addition - PyCon 2024
 
ASRock Industrial FDO Solutions in Action for Industrial Edge AI _ Kenny at A...
ASRock Industrial FDO Solutions in Action for Industrial Edge AI _ Kenny at A...ASRock Industrial FDO Solutions in Action for Industrial Edge AI _ Kenny at A...
ASRock Industrial FDO Solutions in Action for Industrial Edge AI _ Kenny at A...
 
WSO2CONMay2024OpenSourceConferenceDebrief.pptx
WSO2CONMay2024OpenSourceConferenceDebrief.pptxWSO2CONMay2024OpenSourceConferenceDebrief.pptx
WSO2CONMay2024OpenSourceConferenceDebrief.pptx
 
PLAI - Acceleration Program for Generative A.I. Startups
PLAI - Acceleration Program for Generative A.I. StartupsPLAI - Acceleration Program for Generative A.I. Startups
PLAI - Acceleration Program for Generative A.I. Startups
 
Secure Zero Touch enabled Edge compute with Dell NativeEdge via FDO _ Brad at...
Secure Zero Touch enabled Edge compute with Dell NativeEdge via FDO _ Brad at...Secure Zero Touch enabled Edge compute with Dell NativeEdge via FDO _ Brad at...
Secure Zero Touch enabled Edge compute with Dell NativeEdge via FDO _ Brad at...
 
Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...
Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...
Easier, Faster, and More Powerful – Alles Neu macht der Mai -Wir durchleuchte...
 
Oauth 2.0 Introduction and Flows with MuleSoft
Oauth 2.0 Introduction and Flows with MuleSoftOauth 2.0 Introduction and Flows with MuleSoft
Oauth 2.0 Introduction and Flows with MuleSoft
 

Stability of expanded austenite, generated by ion carburizing and ion nitriding of AISI 316L SS, under high temperature and high energy pulsed ion beam irradiation

  • 1. Stability of expanded austenite, generated by ion carburizing and ion nitriding of AISI 316L SS, under high temperature and high energy pulsed ion beam irradiation J. García Molleja a, ⁎, M. Milanese b , M. Piccoli c , R. Moroso b , J. Niedbalski b , L. Nosei d , J. Bürgi a , E. Bemporad c , J. Feugeas a a Instituto de Física Rosario (CONICET-UNR), Bvrd. 27 de Febrero 210 Bis, S2000EZP Rosario, Argentina b Instituto de Física Arroyo Seco (CONICET-UNCPBA), Pinto 399, B7000GHG Tandil, Argentina c Dipartimento di Ingegneria Meccanica e Industriale (Università Roma Tre), Via della Vasca Navale 79, 00146 Rome, Italy d Instituto de Mecánica Aplicada y Estructuras (FCEIyA-UNR), Berutti y Riobamba, S2000EKD Rosario, Argentina a b s t r a c ta r t i c l e i n f o Article history: Received 29 June 2012 Accepted in revised form 19 December 2012 Available online 6 January 2013 Keywords: Ion carburizing Expanded austenite Plasma focus Crystalline stability Expanded austenite can be generated on austenitic stainless steels either by ion carburizing or ion nitriding. In both cases the resulting fcc crystal structure, supersaturated with nitrogen or carbon, is strongly hardened with improved wear-resistance, while maintaining the original resistance to corrosion. In this work, we have studied the stability of expanded austenite, generated by ion nitriding and ion carburizing on AISI 316L SS with N and C, under: a—high temperature (225 °C – 504 °C), and b—under irradiation with high energy (30 keV – 500 keV), high fluence (~1015 cm−2 ), short duration (~400 ns) light (deuterium and helium) ion beams. It was found that expanded austenite is stable below 325 °C. Between 325 °C and 504 °C expanded austenite lattice parameter presents gradual reduction with increasing temperature. We observed microstructural changes related only to the temperature treatment. We did not observe any microstructure change due to the duration of the heat treatment. Over 504 °C, the lattice parameter returns to the material's austenite original parameter. On the other hand, when irradiated with pulsed ion beams, a gradual reduction of the lattice parameter corresponding to the expanded austenite with the number of pulses was observed. This behavior can be explained through the thermal shock induced on the surface by each beam, consisting in fast heating followed by fast cooling that induces the gradual exo-diffusion of N (or C). Nevertheless, after 20 ion pulses, a final lattice parameter slightly higher than the corresponding to the original austenite was found as stable limit. This residual expansion can be attributed to partial amorphization of the first few micrometers that induces stresses on the crystals of austenite which are closer to the surface layers. © 2013 Elsevier B.V. All rights reserved. 1. Introduction Austenitic stainless steels, like AISI 316L grade, have been applied fluently for industrial purposes. Principal applications are: tools and home cutlery, tanks, pipes in food industry and tools and implements in surgery, among others. These uses are motivated by the excellent properties that austenitic stainless steels have, like good corrosion resistance to chloride pitting, great hygiene-cleanliness factor, of easy transformation, good welding properties, no hardening by heat treatment, and resistant to high and low temperatures. Nevertheless, they do not have important mechanical properties principally show- ing low hardness and poor wear resistance. More recently, a method has been found for wear and hardness improvements by the develop- ment of expanded austenite (called EA, S, m, S′, ε′ or γ phase) on surface, without the loss of resistance to corrosion [1–4]. This phase is the result of nitrogen or carbon atoms entering in an fcc crystalline structure until the colossal supersaturation is reached [5] when a high number of these atoms occupy the fcc interstitial sites, presumably the octahedral ones. The consequence is the deformation of crystal- line structure by compressive strains and high density of stacking faults that induce the lattice parameter growth. Other authors [6,7] support that EA is not an fcc structure but an fct, bct or trigonal struc- ture. Nevertheless, in reference [8] it has been shown that EA has an fcc structure when strains are suppressed. Ion nitriding [9] and carburizing [10] are techniques based on surface modification that are applied to obtain EA through nitrogen or carbon diffusion in the lattice of austenite, respectively. Indeed, low pressure cold plasma allows forming a thick EA case without nitride or carbide precipitation, conferring hardness and wear resistances to surfaces of austenitic stainless steels, well above the original material. In this paper, we have studied the stability of the EA, developed either by ion nitriding and ion carburizing, under high temperature and by the incidence of high energy, high fluence rate, short duration pulsed ion beams generated in plasma focus discharges. Surface & Coatings Technology 218 (2013) 142–151 ⁎ Corresponding author. Tel.: +54 341 4853222; fax: +54 341 4821772. E-mail address: garciamolleja@ifir-conicet.gov.ar (J. García Molleja). 0257-8972/$ – see front matter © 2013 Elsevier B.V. All rights reserved. http://dx.doi.org/10.1016/j.surfcoat.2012.12.043 Contents lists available at SciVerse ScienceDirect Surface & Coatings Technology journal homepage: www.elsevier.com/locate/surfcoat