Failure analysis of an austenitic stainless steel stud in seawater oil platform

2009 ◽  
Vol 16 (1) ◽  
pp. 552-557 ◽  
Author(s):  
S.S.M. Tavares ◽  
J.S. Corte ◽  
C.A.B. Menezes ◽  
L. Menezes ◽  
V. Moura ◽  
...  
2020 ◽  
Vol 108 ◽  
pp. 104337 ◽  
Author(s):  
N. Sreevidya ◽  
S. Abhijith ◽  
Shaju K. Albert ◽  
V. Vinod ◽  
Indranil Banerjee

2021 ◽  
Author(s):  
Jin Shi ◽  
Wen Liu ◽  
Xin Cheng

Abstract Currently, austenitic stainless steel has been widely used for the pressure boundary, including reactors, separators and storage tanks serviced in energy, petrochemical, chemical and food industries in view of its inherent corrosion resistance. However, the corrosion resistance may deteriorate under some circumstances such as field welding and inappropriate post-weld heat treatment. A steam-water separator serviced in a power plant was found cracking and a large amount of steam leaked outside. The cracking was located in the heat-affected zone (HAZ) of the joint on the head side of the pressure vessel. The material of the head was SUS 304 austenite stainless steel. Failure analysis was conducted to investigate the cause of cracking. The testing and measurement included chemical composition analysis, metallographic examination, fracture surface observation and deposit elements analysis. Results showed that the cracking was intergranular and stress corrosion cracking (SCC) was the primary cause of failure. During the fabrication of the separator, the HAZ of the joint was overheated by the thermal input of welding. Brittle carbides such as M23C6 precipitating at the grain boundary, resulted in a narrow belt lack of chromium nearby known as sensitization. The corrosion resistance of the austenite stainless-steel decreased obviously there, and cracking failure occurred rapidly under tensile stress. The influencing factors discussed in this paper mainly focused on material performance, post-weld heat treatment, and corrosivity of medium. Austenitic stainless steel containing stabilizing elements or with low C content was recommended for the new vessel design in order to avoid similar cracking failure.


Author(s):  
M.H. Abass ◽  
M.S. Alali ◽  
W.S. Abbas ◽  
A.A. Shehab

Purpose: This paper aims to investigate the impact of arc stud welding (ASW) process parameters on the microstructure and mechanical properties of AISI 316L stainless steel stud/plate joint. Design/methodology/approach: The weld performed using ASW machine. The influence of welding current and time on solidification mode and microstructure of the fusion zone (FZ) was investigated using optical microscope and scanning electron microscope (SEM). Microhardness and torque strength tests were utilised to evaluate the mechanical properties of the welding joint. Findings: The results showed that different solidification modes and microstructure were developed in the FZ. At 400 and 600 A welding currents with 0.2 s welding time, FZ microstructure characterised with single phase austenite or austenite as a primary phase. While with 800 A and 0.2 s, the microstructure consisted of ferrite as a primary phase. Highest hardness and maximum torque strength were recorded with 800 A. Solidification cracking was detected in the FZ at fully austenitic microstructure region. Research limitations/implications: The main challenge in this work was how to avoid the arc blow phenomenon, which is necessary to generate above 300 A. The formation of arc blow can affect negatively on mechanical and metallurgical properties of the weld. Practical implications: ASW of austenitic stainless steel are used in multiple industrial sectors such as heat exchangers, boilers, furnace, exhaust of nuclear power plant. Thus, controlling of solidification modes plays an important role in enhancing weld properties. Originality/value: Study the influence of welding current and time of ASW process on solidification modes, microstructure and mechanical properties of AISI 316 austenitic stainless steel stud/plate joint.


2016 ◽  
Vol 16 (2) ◽  
pp. 209-215 ◽  
Author(s):  
Mehdi Javidi ◽  
M. R. Nematollahi ◽  
M. M. Lalehparvar ◽  
A. Ghassemi

2015 ◽  
Vol 57 ◽  
pp. 164-170 ◽  
Author(s):  
Rongjuan Sui ◽  
Yan Liu ◽  
Weiqiang Wang ◽  
Yanpeng Qu ◽  
Chenggong Su ◽  
...  

2011 ◽  
Vol 291-294 ◽  
pp. 975-978
Author(s):  
Xian Liang Zhang ◽  
Rong Fa Chen ◽  
Liang Gang Dai ◽  
Tao Liu ◽  
Yi Pan

Tube and shell condenser is an important component of soybean softening equipment, and its structure is Q235B welding with 304 austenitic stainless steel pipes. During the using process of this product, it appears crack failure .In order to find the reason of crack failure, the welded joint was analyzed by SED, XRD, EDXRF and metallographic microscope in detail, and some improvement measures and solutions are put forward to avoid crack failure in this paper.


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