• Title/Summary/Keyword: Matensite transformation

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Effect of Isochronic Aging on Transformation Behavior in Ti-50.85at%Ni Alloy (Ti-50.85atNi 합금의 변태거동 및 형상기억특성 미치는 시효처리의 영향)

  • Kim, J.I.;Sung, J.H.;Kim, Y.H.;Lee, J.H.;Miyazaki, S.
    • Journal of the Korean Society for Heat Treatment
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    • v.22 no.2
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    • pp.101-107
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    • 2009
  • Effect of isochronic aging on transformation behavior of Ti-50.85at%Ni alloy were investigated by differential scanning calorimeter (DSC). The martensitic transformation temperature increases with increasing annealing temperature until reaching a maximum, and then decreases with further increasing annealing temperature. This can be rationalized by interaction between the distribution of $Ti_3Ni_4$ precipitates and Ni content in the matrix. The R-phase transformation temperature increases with increasing annealing temperature until reaching a maximum, and then decreases with a further increase of annealing temperature. This is attributed to the change of Ni content in the matrix caused by precipitation of $Ti_3Ni_4$. The occurrence of the multiple-stage martensitic and R-phase transformation is attributed to precipitation-induced inhomogeneity of the matrix, both in terms of composition and of internal stress fields.

Spalling of the Oxide Scales Foemed on Stainless Steels During Cooling

  • Saeki, Isao;Ogama, Tetsuro;Furuichi, Ryusaburo;Kikkawa, Shinichi
    • Corrosion Science and Technology
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    • v.2 no.5
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    • pp.225-232
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    • 2003
  • High temperature oxidation of SUS430 and SUS304 stainless steels in 16.7 kPa $O_2$ - 20.3 kPa $H_2O$ - balanced N2 atmosphere at 1273 K was studied focused on the scale spalling during cooling after an isothermal oxidation. Spalling of the oxide scale during cooling occurred only for SUS304 stainless steel. The oxide scale was composed of two layers and they detached at the interface between them. The reason for the spalling could not be explained only by thermal stresses applied to the specimen during heating and cooling. A new mechanism for scale spalling was proposed based on combination of thermal stresses and thermal shock caused by a fast Martensite transformation of substrate metal.