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Low cycle fatigue behavior of 316LN stainless steel alloyed with varying nitrogen content. Part I: Cyclic deformation behavior
G. V. Prasad Reddy, R. Sandhya, , M. D. Mathew
Published in Springer Boston
2014
Volume: 45
   
Issue: 11
Pages: 5044 - 5056
Abstract
In this study, the influence of cyclic strain amplitude on the evolution of cyclic stress-strain response and the associated cyclic deformation mechanisms in 316LN stainless steel with varying nitrogen content (0.07 to 0.22 wt pct) is reported in the temperature range 773 K to 873 K (500 °C to 600 °C). Two mechanisms, namely dynamic strain aging and secondary cyclic hardening, are found to strongly influence the cyclic stress response. Deformation substructures associated with both the mechanisms showed planar mode of deformation. These mechanisms are observed to be operative over certain combinations of temperature and strain amplitude. For strain amplitudes >0.6 pct, wavy or mixed mode of deformation is noticed to suppress both the mechanisms. Cyclic stress-strain curves revealed both single and dual-slope behavior depending on the test temperature. Increase in nitrogen content is found to increase the tendency toward planar mode of deformation, while increase in strain amplitude leads to transition from planar slip bands to dislocation cell/wall structure formation, irrespective of the nitrogen content in 316LN stainless steel. © 2014 The Minerals, Metals & Materials Society and ASM International.
About the journal
JournalData powered by TypesetMetallurgical and Materials Transactions A: Physical Metallurgy and Materials Science
PublisherData powered by TypesetSpringer Boston
ISSN10735623
Open AccessNo
Concepts (11)
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    Nitrogen
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    Stainless steel
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    316LN STAINLESS STEELS
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    CYCLIC DEFORMATION BEHAVIOR
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    CYCLIC STRESS RESPONSE
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    Cyclic stress strain curves
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    CYCLIC STRESS-STRAIN RESPONSE
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    DEFORMATION SUBSTRUCTURES
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    LOW CYCLE FATIGUE BEHAVIOR
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    Structure formations
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    Deformation