Thermal stability and thermal property characterisation of Fe–14.4Cr–15.4Ni–2.4Mo–2.36Mn–0.25Ti–1.02Si–0.042C–0.04P–0.005B (mass%) austenitic stainless steel (Alloy D9I)

2013 ◽  
Vol 255 ◽  
pp. 86-96 ◽  
Author(s):  
Haraprasanna Tripathy ◽  
S. Raju ◽  
Arun Kumar Rai ◽  
G. Panneerselvam ◽  
T. Jayakumar
2005 ◽  
Vol 347 (1-2) ◽  
pp. 20-30 ◽  
Author(s):  
Aritra Banerjee ◽  
S. Raju ◽  
R. Divakar ◽  
E. Mohandas ◽  
G. Panneerselvam ◽  
...  

Alloy Digest ◽  
2001 ◽  
Vol 50 (2) ◽  

Abstract Allegheny Ludlum alloy AL 610 is an austenitic stainless steel alloy with a special composition including high silicon to specifically resist high concentrations of nitric acid. This datasheet provides information on composition, physical properties, hardness, and tensile properties. It also includes information on corrosion resistance as well as joining. Filing Code: SS-819. Producer or source: Allegheny Ludlum Corporation.


2011 ◽  
Vol 172-174 ◽  
pp. 331-337 ◽  
Author(s):  
Julie D. Tucker ◽  
George A. Young Jr. ◽  
Daniel R. Eno

Duplex stainless steels are desirable for use in power generation systems due to their attractive combination of strength, corrosion resistance, and cost. However, thermal embrittlement at intermediate temperatures (~475°C) via α-α' phase separation limits upper service temperatures for many applications. The development of low Cr and Ni equivalent lean grade alloys potentially increases the upper service temperature of these alloys by delaying the onset of α-α' phase separation. The present work assesses the thermal stability of a relatively new lean grade of duplex stainless steel, alloy 2003. In this paper, alloy 2003 has been compared to the most widely used duplex alloy, 2205, through a series of isothermal agings between 260°C and 538°C for times between 1 and 10,000 hours. The thermal stability of these alloys was primarily characterized by changes in microhardness. The microhardness data were fit to a JMA-type equation to quantify embrittlement rates and predict microstructural changes out to 50 years. Additionally, as-received specimens were characterized with the scanning electron microprobe to quantify the chemistry within the ferrite grains relative to the bulk material. Alloy 2003 was shown to be much more resistant to thermal embrittlement than alloy 2205. For 50 years of service at 288°C, it is predicted that alloy 2003 components will have a change in microhardness of about 25 HK where alloy 2205 components would increase approximately 175 HK, which indicates significant embrittlement. These findings show that lean grade alloys will have a greater service temperature range than standard grades. However, additional data, characterization, and modeling are needed to better predict embrittlement kinetics over component lifetimes.


2010 ◽  
Vol 407 (3) ◽  
pp. 165-170 ◽  
Author(s):  
C. Meikandamurthy ◽  
Hemant Kumar ◽  
Gopa Chakraborty ◽  
S.K. Albert ◽  
V. Ramakrishnan ◽  
...  

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