Stress Corrosion Cracking Susceptibility of 316LN Grade Stainless Steel Weld Joint in Boiling Magnesium Chloride Hexahydrate Environment

被引:6
|
作者
Rajasekaran, R. [1 ]
Lakshminarayanan, A. K. [2 ]
Vasudevan, M. [3 ]
Raja, P. Vasantha [4 ]
机构
[1] Sri Sivasubramaniya Nadar Coll Engn, Dept Mech Engn, Chennai 603103, Tamil Nadu, India
[2] Sri Sivasubramaniya Nadar Coll Engn, Dept Mech Engn, Chennai 603110, Tamil Nadu, India
[3] Indira Gandhi Ctr Atom Res IGCAR, Mat Dev & Technol Div, Chennai 603102, Tamil Nadu, India
[4] Indira Gandhi Ctr Atom Res IGCAR, Adv Welding & Modelling Sect, Chennai 603102, Tamil Nadu, India
关键词
Stress corrosion cracking; 316LN austenitic stainless steel; Boiling MgCl(2 center dot)6H(2)O; Corrosion elongation curve; Transmission Electron Microscopy; Fractography; Dissolution of delta-ferrite; ALLOY; 600; PITTING CORROSION; FAILURE ANALYSIS; STRAIN-RATE; BEHAVIOR; 304-STAINLESS-STEEL; RESISTANCE; HYDROGEN; MICROSTRUCTURE;
D O I
10.1007/s12540-021-01162-9
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The 316LN Stainless Steel (SS) weld joints were fabricated using Tungsten Inert Gas (TIG) Welding and Activated Flux Tungsten Inert Gas (A-TIG) Welding techniques with suitable process parameters. Initially, basic mechanical properties were evaluated across weld joints. Further microstructural study of the base metal, TIG, and A-TIG joints were accomplished using Optical Microscopy (OM), Transmission Electron Microscopy (TEM), and Scanning Electron Microscopy (SEM) techniques. The microstructural characterization revealed higher grain size variations at the fusion zone of the A-TIG joint due to the slow cooling rate and reversed Marangoni convection effect. The Stress Corrosion Cracking (SCC) susceptibility of the TIG and A-TIG welded joints was assessed using five different loading/Stress conditions. The constant load boiling 45 wt% Magnesium Chloride Hexahydrate (MgCl(2 center dot)6H(2)O) solution as per ASTM G36-94 standard was used to evaluate the SCC susceptibility of the welded joints. The SCC (crack initiation and propagation) of the base metal and welded joints occurred by the anodic dissolution and Hydrogen Induced Cracking mechanisms. For the welded joints additionally, the dissolution of the delta-ferrite increased the crack growth rate. The A-TIG joint exhibited lesser SCC resistance than the TIG joint for the following major reasons: (i) Formation of the large dendrites (ii) Presence of the higher grain size variations at the fusion zone. Moreover, both welded joints showed lesser SCC resistance than the base metal due to the dissolution of the delta-ferrite and the residual stress formation. The fractographic studies for the base metal, TIG, and A-TIG joints revealed the brittle nature of transgranular SCC failure.
引用
收藏
页码:2778 / 2797
页数:20
相关论文
共 50 条
  • [1] Stress Corrosion Cracking Susceptibility of 316LN Grade Stainless Steel Weld Joint in Boiling Magnesium Chloride Hexahydrate Environment
    R. Rajasekaran
    A. K. Lakshminarayanan
    M. Vasudevan
    P. Vasantha Raja
    Metals and Materials International, 2022, 28 : 2778 - 2797
  • [2] Stress corrosion cracking of 316LN stainless steel with orthogonal scratches
    Xiong, Zhiheng
    Wang, Yunxin
    Yang, Bin
    Wang, Yanli
    JOURNAL OF MATERIALS RESEARCH AND TECHNOLOGY-JMR&T, 2023, 24 : 10040 - 10052
  • [3] Effect of Nitrogen on the Intergranular Stress Corrosion Cracking Resistance of 316LN Stainless Steel
    Toppo, Anita
    Shankar, Vani
    George, R. P.
    Philip, John
    CORROSION, 2020, 76 (06) : 591 - 600
  • [4] Effects of Corrosion Potential, Dissolved Oxygen, and Chloride on the Stress Corrosion Cracking Susceptibility of a 316NG Stainless Steel Weld Joint
    Wang, Jiamei
    Su, Haozhan
    Ajmand, Farzin
    Zhang, Lefu
    Chen, Kai
    CORROSION, 2019, 75 (08) : 946 - 959
  • [5] Stress corrosion cracking behavior at fusion boundary of cold worked 316LN stainless steel/Inconel 52 M weld joint in simulated primary water environment
    Sun, Wei
    Wu, Bin
    Ming, Hongliang
    Meng, Fanjiang
    Wang, Jianqiu
    Han, En-Hou
    CORROSION SCIENCE, 2025, 242
  • [6] Stress corrosion cracking of AISI 316LN stainless steel in ITER primary water conditions
    Lorenzetto, P
    Helie, M
    Molander, A
    JOURNAL OF NUCLEAR MATERIALS, 1996, 233 : 1387 - 1392
  • [7] Microstructure of nuclear grade 316LN stainless steel welded joint
    Li Z.
    Cui Z.
    Wang W.
    Yin J.
    Hanjie Xuebao/Transactions of the China Welding Institution, 2019, 40 (08): : 89 - 95
  • [8] Numerical simulation of creep behaviour of 316LN stainless steel weld joint
    Starvin, M. S.
    Ganesh, K. C.
    Vasudevan, M.
    MATERIALS TODAY-PROCEEDINGS, 2018, 5 (02) : 8193 - 8198
  • [9] Stress Corrosion Behaviors of 316LN Stainless Steel in a Simulated PWR Primary Water Environment
    Huang, Yong
    Wu, Weisong
    Cong, Shuo
    Ran, Guang
    Cen, Danxia
    Li, Ning
    MATERIALS, 2018, 11 (09)
  • [10] Corrosion Fatigue of AISI Type 316LN Stainless Steel and its Weld Metal
    Shaikh, H.
    Poonguzhali, A.
    Sivaibharasi, N.
    Dayal, R. K.
    Khatak, H. S.
    CORROSION, 2009, 65 (01) : 37 - 48