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Tensile and Microstructural Behaviors of Austenitic Stainless Steel GTA Welds for Cryogenic Application
Woosung Yang, Woong Kil, Byungrok Moon, Hyunbin Nam, Namhyun Kang
J Weld Join. 2020;38(4):400-408.   Published online 2020 July 23    DOI: https://doi.org/10.5781/JWJ.2020.38.4.10

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Tensile and Microstructural Behaviors of Austenitic Stainless Steel GTA Welds for Cryogenic Application
Journal of Welding and Joining. 2020;38(4):400-408   Crossref logo
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Microstructural characterization of dissimilar welds between Incoloy 800H and 321 Austenitic Stainless Steel
Materials Characterization. 2015;102:180-188   Crossref logo
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Toughness and hydrogen compatibility of austenitic stainless steel welds at cryogenic temperatures
International Journal of Hydrogen Energy. 2007;32(16):4081-4088   Crossref logo
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Effect of Electrode Force on Tensile Shear and Nugget Size of Austenitic Stainless Steel Grade 304 Welds Using Resistance Spot Welding
Applied Mechanics and Materials. 2011;52-54:2176-2180   Crossref logo
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Microstructural origin of the skeletal ferrite morphology of austenitic stainless steel welds
Metallurgical Transactions A. 1983;14(7):1271-1281   Crossref logo
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Numeric ultrasonic image processing method: application to non-destructive testing of stainless austenitic steel welds. (In French)
NDT International. 1990;23(3):167   Crossref logo
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Investigation on Mechanical Behaviors of Cold Stretched and Cryogenic Stretched Austenitic Stainless Steel Pressure Vessels
Procedia Engineering. 2015;130:628-637   Crossref logo
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Microstructural evolutions in dissimilar welds between AISI 310 austenitic stainless steel and Inconel 657
Journal of Materials Science. 2010;45(10):2564-2573   Crossref logo
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Microstructural features of dissimilar welds between 316LN austenitic stainless steel and alloy 800
Materials Science and Engineering: A. 2000;292(1):74-82   Crossref logo
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Austenitic solidification mode in austenitic stainless steel welds
Metallurgical Transactions A. 1979;10(8):1173-1181   Crossref logo
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