The grain size-dependent control of the phase composition in ion-plasma treated 316L stainless steel

被引:1
作者
Moskvina, V. A. [1 ]
Astafurova, E. G. [1 ]
Ramazanov, K. N. [2 ]
Esipov, R. S. [2 ]
Maier, G. G. [1 ]
Astafurov, S., V [1 ]
Panchenko, M. Yu [1 ]
Reunova, K. A. [1 ]
Melnikov, E., V [1 ]
Smirnov, A., I [3 ]
机构
[1] Inst Strength Phys & Mat Sci SB RAS, 2-4 Akad Sky Ave, Tomsk 634055, Russia
[2] Ufa State Aviat Tech Univ, 12 K Marks Ave, Ufa 450008, Russia
[3] Novosibirsk State Tech Univ, 20 K Marks Ave, Novosibirsk 630073, Russia
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2021年 / 823卷
关键词
Austenitic stainless steel; Grain size; Ion-plasma treatment; Composite layer; Solid-solution strengthening; Precipitation hardening; GLOW-DISCHARGE; FE-CR; NITROGEN; MICROSTRUCTURE; STABILITY; FRACTURE; ALLOYS; LAYERS;
D O I
10.1016/j.msea.2021.141777
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
We study the influence of different grain size (density of grain boundaries) on the way of phase transformations in the surface layers of 316 L-type austenitic stainless steel under ion-plasma treatment. Using thermomechanical treatments, we fabricated a series of specimens possessing a single-phase austenitic structure, close density of the defects of the crystal lattice and different grain sizes (fine-grained with d approximate to 3-6 mu m and coarse-grained with d approximate to 55 mu m). These specimens were subjected to ion-plasma surface treatment at 550 +/- 10 degrees C in N2+C2H2+Ar gases mixture to provoke a precipitation hardening. Although fine-grained and coarse-grained specimens possess similar penetration depth of interstitial atoms (N, C) under ion-plasma treatment (approximate to 40-48 mu m), the distribution of interstitials and phase composition are different in them. After ion-plasma treatment, specimens with low density of grain boundaries (coarse-grained structure) maintain a high level of N, C atoms in the solid solution of austenite (a = 0.3653-0.3674 nm) with a strip-like arrangement of Fe4(N,C) particles within grains, while precipitation of Cr(N,C) phase is suppressed. For these specimens, tensile diagrams have the extended linear stages typical of nitrogen-bearing austenitic steels, and the loss of ductility assisted with ion-plasma treatment is the smallest among studied specimens. Ion-plasma treated specimens with high density of grain boundaries (finegrained structure) are prone to a decomposition of Fe-gamma N,C phase with the formation of grain-boundary and intragranular Cr(N,C) and Fe-alpha phases and partial preservation of a solid-solution strengthening of austenite (a = 0.3597-0.3622 nm). Precipitation hardening is more characteristic of these specimens and their flow curves are parabolic. The complex fracture mode of the specimens subjected to ion-plasma treatment is caused by the surface solid-solution strengthening and precipitation hardening. In the surface-hardened region (where the concentrations of N, C atoms are the highest), brittle quasi-cleavage fracture occurs due to the presence of Febased and Cr-based precipitates and austenite oversaturated with interstitials.
引用
收藏
页数:14
相关论文
共 50 条
[21]   Ni coating on 316L stainless steel using cage plasma treatment: Feasibility and swelling studies [J].
Morell-Pacheco, Andres ;
Kim, Hyosim ;
Wang, Tianyao ;
Shiau, Ching-Heng ;
Balerio, Robert ;
Gabriel, Adam ;
Shao, Lin .
JOURNAL OF NUCLEAR MATERIALS, 2020, 540
[22]   Modeling of the lattice rotations induced by plasma nitriding of 316L polycrystalline stainless steel [J].
Stinville, J. C. ;
Cormier, J. ;
Templier, C. ;
Villechaise, P. .
ACTA MATERIALIA, 2015, 83 :10-16
[23]   ELASTIC MODULUS OF S PHASE IN KOLSTERIZED 316L STAINLESS STEEL [J].
Balijepalli, S. K. ;
Colantoni, I. ;
Donnini, R. ;
Kaciulis, S. ;
Lucci, M. ;
Montanari, R. ;
Ucciardello, N. ;
Varone, A. .
METALLURGIA ITALIANA, 2013, (01) :42-47
[24]   Characterization of Mechanical Properties and Grain Size of Stainless Steel 316L via Metal Powder Injection Molding [J].
Hwang, In-Seok ;
So, Tae-Yeong ;
Lee, Do-Hoon ;
Shin, Chang-Seop .
MATERIALS, 2023, 16 (06)
[25]   Influence of the microstructure on the corrosion resistance of plasma-nitrided austenitic stainless steel 304L and 316L [J].
Biehler, J. ;
Hoche, H. ;
Oechsner, M. ;
Kaestner, P. ;
Bunk, K. ;
Braeuer, G. .
MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 2014, 45 (10) :930-946
[26]   Phase transformation of 316L stainless steel from wire to fiber [J].
Shyr, Tien-Wei ;
Shie, Jing-Wen ;
Huang, Shih-Ju ;
Yang, Shun-Tung ;
Hwang, Weng-Sing .
MATERIALS CHEMISTRY AND PHYSICS, 2010, 122 (01) :273-277
[27]   Effect of grain size and its uniformity on corrosion resistance of rolled 316L stainless steel by EBSD and TEM [J].
Fu, Xiaoqian ;
Ji, Yucheng ;
Cheng, Xuequn ;
Dong, Chaofang ;
Fan, Yi ;
Li, Xiaogang .
MATERIALS TODAY COMMUNICATIONS, 2020, 25
[28]   Structure control of 316L stainless steel through an additive manufacturing [J].
Kuzminova, Yu O. ;
Firsov, D. G. ;
Konev, S. D. ;
Dudin, A. A. ;
Dagesyan, S. A. ;
Akhatov, I. Sh ;
Evlashin, S. A. .
LETTERS ON MATERIALS, 2019, 9 (04) :551-555
[29]   Plasma Nitrocarburizing of AISI 316L Austenitic Stainless Steel: a First Step for Treatment of Components with Complex Geometries [J].
Jafarpour, Saeed ;
Dalke, Anke ;
Biermann, Horst .
HTM-JOURNAL OF HEAT TREATMENT AND MATERIALS, 2020, 75 (05) :309-326
[30]   Formation of nano martensite grain with specific angle grain boundary during the drawing process of 316L stainless steel [J].
Li, Qiang ;
Zhou, Lichu ;
Pan, Yijie ;
Ma, Jinfeng ;
Zhou, Xuefeng ;
Jiang, Hongbin ;
Xie, Zonghan ;
Fang, Feng .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2024, 897