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(Reference retrieved automatically from Web of Science through information on FAPESP grant and its corresponding number as mentioned in the publication by the authors.)

Development and microstructure characterization of single and duplex nitriding of UNS S31803 duplex stainless steel

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Author(s):
Tschiptschin, A. P. [1] ; Varela, L. B. [1] ; Pinedo, C. E. [2] ; Li, X. Y. [3] ; Dong, H. [3]
Total Authors: 5
Affiliation:
[1] Univ Sao Paulo, Dept Met & Mat Engn, Av Prof Mello Moraes 2463, BR-05508030 Sao Paulo, SP - Brazil
[2] Heat Tech Technol Heat Treatment & Surface Engn L, Av Joao 23 1160, BR-08830000 Mogi Das Cruzes, SP - Brazil
[3] Univ Birmingham, Sch Met & Mat, Coll Engn & Phys Sci, Birmingham B15 2TT, W Midlands - England
Total Affiliations: 3
Document type: Journal article
Source: SURFACE & COATINGS TECHNOLOGY; v. 327, p. 83-92, OCT 25 2017.
Web of Science Citations: 8
Abstract

In this work, the development of a duplex nitriding (DN) surface treatment combining High Temperature Gas Ni-triding (HTGN) and Low Temperature Plasma Nitriding (LTPN) is reported. The microstructure and hardness variation of the duplex treated steel is compared with the properties obtained during single HTGN and single LTPN of UNS S31803 stainless steel. Single LTPN of UNS S31803 was carried out in an Active Screen Plasma Nitriding reactor, at 400 degrees C for 20 h, in a 75% N2 + 25% H-2 atmosphere. Single HTGN of UNS 531803 was carried out at 1200 degrees C, under a 0.1 MPa high purity N-2 gas atmosphere, during 8 h.The developed duplex nitriding (DN) surface treatment consists of a combination of both, HTGN and LTPN treatments, carried out in the same conditions described above. The microstructure of the as received material was composed by ferrite and austenitic stringers, aligned in the rolling direction. The results showed that LTPN of the UNS S31803 duplex stainless steel promotes the formation of a duplex modulated structure composed by 2.5 mu m thick, 1510 +/- 52 HV hard, expanded ferrite (alpha N) regions, and 3.0 mu m thick, 1360 +/- 81 HV hard, expanded austenite (gamma(N)) regions on ferrite and austenite grains, respectively. Intense coherent epsilon-Fe3N nitride precipitation inside expanded ferrite was observed. epsilon-Fe3N nitrides precipitated with an orientation relationship {[}111] ot alpha(N)//{[}120] epsilon-Fe3N, leading to increased microhardness of the expanded ferrite regions. After the first step of the duplex nitriding treatment (HTGN) a 550 mu m thick, 330 HV hard, nitrogen rich, fully austenitic layer formed at the surface of the specimens, by transformation of ferrite stringers into austenite. The second nitriding step (LTPN) led to the formation of a homogeneous expanded austenite layer, 1227 +/- 78 HV on top of the thick fully austenitic layer, formed during the first step. The duplex treatment resulted in a more homogeneous, precipitate-free, microstructure and a better transition between the mechanical properties of the hardened outermost layer and the softer substrate. (C) 2017 Elsevier B.V. All rights reserved. (AU)

FAPESP's process: 12/50890-0 - Improvement of surface properties of stainless steel used in the oil and gas industries through plasma assisted thermochemical treatment
Grantee:Andre Paulo Tschiptschin
Support Opportunities: Regular Research Grants