Effect of laser welding on deformation mechanisms in irradiated austenitic stainless steel

In this work, deformation mechanism of a laser weld on neutron irradiated AISI 304L stainless steel was studied by in-situ microcompression test at room temperature. The deformation-induced austenite-to-martensite phase transformation occurs in {101}-oriented grains in the irradiated base metal, whi...

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Veröffentlicht in:Journal of nuclear materials 2019-11, Vol.528 (C)
Hauptverfasser: Mao, Keyou S., Sun, Cheng, Liu, Xiang, Qu, Haozheng J., French, Aaron J., Freyer, Paula D., Garner, Frank A., Shao, Lin, Wharry, Janelle P.
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Sprache:eng
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Zusammenfassung:In this work, deformation mechanism of a laser weld on neutron irradiated AISI 304L stainless steel was studied by in-situ microcompression test at room temperature. The deformation-induced austenite-to-martensite phase transformation occurs in {101}-oriented grains in the irradiated base metal, while deformation twinning prevails in {101}-oriented grains in the weld heat affected zone (HAZ). A high number density of irradiation-induced voids in the base metal provide sufficient nucleation sites for the austenite-to-martensite phase transformation under compression at room temperature. A deformation map is established to predict critical twinning stress for face-centered cubic (fcc) metals and alloys. Our study suggests that irradiation can tailor the deformation-induced phase transformation in austenitic stainless steels.
ISSN:0022-3115
1873-4820