TY - JOUR
T1 - Effect of Grain Boundary Structure on Weld Decay of Austenitic Stainless Steel (Part 2) Grain Boundary Structure and Carbide Precipitation in Type 304 Stainless Steel Weld Heat Affected Zone
AU - Kokawa, Hiroyuki
AU - Kuwana, Takeshi
PY - 1991/1/1
Y1 - 1991/1/1
N2 - Grain boundary carbide precipitation in weld heat affected zone of type 304 and 3041. austenitic stainless steels was observed using transmission electron microscope to make clear the effects of grain boundary misorientation and structure on carbide precipitation at grain boundaries in stainless steel welds from a crystallographic viewpoint. Grain boundary carbides were detected in grain boundary precipitation region of the 304 steel weld heat affected zone. In that region, some grain boundaries had carbide precipitates, but some were precipitation-free. Kikuchi line analyses showed that grain boundaries with ordered atomic structures had no carbide precipitates. This tendency was valid in 304L steel weld, although grain boundary carbide precipitates were finer in 304L steel than in 304 steel. These facts have suggested that grain boundary precipitation and corrosion in stainless steel weld heat affected zone depend sensitively on crystallographic character of grain boundary.
AB - Grain boundary carbide precipitation in weld heat affected zone of type 304 and 3041. austenitic stainless steels was observed using transmission electron microscope to make clear the effects of grain boundary misorientation and structure on carbide precipitation at grain boundaries in stainless steel welds from a crystallographic viewpoint. Grain boundary carbides were detected in grain boundary precipitation region of the 304 steel weld heat affected zone. In that region, some grain boundaries had carbide precipitates, but some were precipitation-free. Kikuchi line analyses showed that grain boundaries with ordered atomic structures had no carbide precipitates. This tendency was valid in 304L steel weld, although grain boundary carbide precipitates were finer in 304L steel than in 304 steel. These facts have suggested that grain boundary precipitation and corrosion in stainless steel weld heat affected zone depend sensitively on crystallographic character of grain boundary.
KW - Grain boundary carbide
KW - Grain boundary corrosion
KW - Grain boundary structure
KW - Kikuchi line analysis
KW - Stainless steel
KW - Transmission electron microscopy
KW - Weld decay
KW - Weld heat affected zone
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U2 - 10.2207/qjjws.9.264
DO - 10.2207/qjjws.9.264
M3 - Article
AN - SCOPUS:85007670860
SN - 0288-4771
VL - 9
SP - 264
EP - 269
JO - Yosetsu Gakkai Ronbunshu/Quarterly Journal of the Japan Welding Society
JF - Yosetsu Gakkai Ronbunshu/Quarterly Journal of the Japan Welding Society
IS - 2
ER -