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Effect of the Holding Time during Solution Heat Treatment on Intergranular Corrosion of Unstabilized Austenitic Stainless Steels
Eun-Jong Oh, Dong-Hwa Lee, Sung-Woo Cho, Yun-Il Choi, Ki-Woo Nam
J Weld Join. 2020;38(3):278-288.   Published online 2020 June 2    DOI: https://doi.org/10.5781/JWJ.2020.38.3.7

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Effect of the Holding Time during Solution Heat Treatment on Intergranular Corrosion of Unstabilized Austenitic Stainless Steels
Journal of Welding and Joining. 2020;38(3):278-288   Crossref logo
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Sensitization and Testing for Intergranular Corrosion
Corrosion of Austenitic Stainless Steels. 2002;117-138   Crossref logo
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Proper Heat Treatment to Reduce Intergranular Corrosion Susceptibility of Austenitic 304 and Ferritic 430 Stainless Steels
Key Engineering Materials. 2013;545:143-147   Crossref logo
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The time-factor in potentiostatic studies of intergranular corrosion of austenitic stainless steels
Corrosion Science. 1969;9(1):53-56   Crossref logo
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Predicting the intergranular corrosion of austenitic stainless steels
Corrosion Science. 1968;8(1):9-18   Crossref logo
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Mechanism of intergranular corrosion of austenitic stainless steels—literature review
Wear. 1972;19(3):355   Crossref logo
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A new aspect on intergranular hydrogen embrittlement mechanism of solution annealed types 304, 316 and 310 austenitic stainless steels
Corrosion Science. 2009;51(9):1894-1900   Crossref logo
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High Temperature Corrosion of Austenitic Stainless Steels
Corrosion of Austenitic Stainless Steels. 2002;265-286   Crossref logo
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Pitting, Crevice and Intergranular Corrosion Resistance of Titanium Modified Austenitic Stainless Steels
Key Engineering Materials. 1991;20-28:3203-3212   Crossref logo
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Effect of cyclic heat treatment process on the pitting corrosion resistance of EN‐1.4405 martensitic, EN‐1.4404 austenitic, and EN‐1.4539 austenitic stainless steels in chloride‐sulfate solution
Engineering Reports. 2020;2(1):   Crossref logo
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