2006
DOI: 10.1016/j.fusengdes.2005.08.069
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General properties on compatibility between Be–Ti alloy and SS 316LN

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Cited by 11 publications
(3 citation statements)
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“…So the main microstructure of brazed weld is (Fe, Zn) + Fe 3 Zn 7 , β-CuZn, β-CuZn + Ti 2 Zn 3 . The Ti side reaction layer in area III increased with the increase of power, and the reaction layer is 220 μm at 720 W. The IMC layer of Ti side region mixes thoroughly in the molten by convection currents and the Marangoni effect [27]. In the previous study, it was found that the Cu-Ti interface microstructure was mainly Ti 2 Zn 3 + Ti 3 Cu 4 [28], which completely avoided the formation of Ti-Fe IMCs.…”
Section: Resultsmentioning
confidence: 99%
“…So the main microstructure of brazed weld is (Fe, Zn) + Fe 3 Zn 7 , β-CuZn, β-CuZn + Ti 2 Zn 3 . The Ti side reaction layer in area III increased with the increase of power, and the reaction layer is 220 μm at 720 W. The IMC layer of Ti side region mixes thoroughly in the molten by convection currents and the Marangoni effect [27]. In the previous study, it was found that the Cu-Ti interface microstructure was mainly Ti 2 Zn 3 + Ti 3 Cu 4 [28], which completely avoided the formation of Ti-Fe IMCs.…”
Section: Resultsmentioning
confidence: 99%
“…The configuration and preparation of the capsule for compatibility tests were described in the previous paper [7]. Diffusion couples for the compatibility tests consisted of Be-3at.%Ti/F82H, Be5at.%Ti/F82H or Be-7at.%Ti/F82H.…”
Section: Procedures For Compatibility Testsmentioning
confidence: 99%
“…In previous papers, compatibility of Be and Be-Ti alloys with SS316LN was evaluated [6,7]. The thickness of the reaction layer between BeTi and SS316LN was smaller than that between Be and SS 316LN.…”
Section: Introductionmentioning
confidence: 99%