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論文

Stress and plastic strain partitioning behaviors and those contributions to martensitic transformation of retained austenite in medium manganese and transformation-induced plasticity-aided bainitic ferrite steels

北條 智彦*; 小山 元道*; 熊井 麦弥*; Zhou, Y.*; 柴山 由樹; 城 鮎美*; 菖蒲 敬久; 齋藤 寛之*; 味戸 沙耶*; 秋山 英二*

ISIJ International, 65(2), p.284 - 296, 2025/02

 被引用回数:0 パーセンタイル:0.00(Metallurgy & Metallurgical Engineering)

Stress and plastic strain distributions and those partitioning behaviors of ferrite and retained austenite were investigated in the medium manganese (Mn) and the transformation-induced plasticity-aided bainitic ferrite (TBF) steels, and the martensitic transformation behaviors of retained austenite during Luders elongation and work hardening were analyzed using synchrotron X-ray diffraction at SPring-8. The stress and plastic strain of retained austenite and volume fraction of retained austenite were remarkably changed during Luders deformation in the medium Mn steel, implying that the medium Mn steel possessed inhomogeneous deformation at the parallel part of the tensile specimen. On the other hand, the distributions of the stress, plastic strain and volume fraction of retained austenite were homogeneous and the homogeneous deformation occurred at the parallel part of the tensile specimen at the plastic deformation regime with work hardening in the medium Mn and TBF steels. The martensitic transformation of retained austenite at uders deformation in the medium Mn steel was possessed owing to the application of high stress and preferential deformation at retained austenite, resulting in a significant increase in the plastic deformation and reduction of stress in the retained austenite. The martensitic transformation of retained austenite at the plastic deformation regime with work hardening was induced by the high dislocation density and newly applied plastic deformation in retained austenite in the medium Mn steel whereas the TBF steel possessed gradual transformation of retained austenite which is applied high tensile stress and moderate plastic deformation.

論文

Work hardening behavior of dual phase copper-iron alloy at low temperature

山下 享介*; 古賀 紀光*; 川崎 卓郎; 諸岡 聡; 友野 翔平*; 梅澤 修*; Harjo, S.

Materials Science & Engineering A, 819, p.141509_1 - 141509_10, 2021/07

 被引用回数:38 パーセンタイル:87.03(Nanoscience & Nanotechnology)

In-situ neutron diffraction measurements were performed on a cold-rolled copper-iron (Cu-Fe) alloy during tensile tests at 293 K and 150 K. The roles of Cu and Fe on the deformation behavior of alloys were discussed and clarified. The strength and work-hardening rate of the alloy increased with decreasing test temperature. Furthermore, the phase stress of Fe increased considerably with decreasing test temperature; however, the response of this stress to the applied true stress exhibited no dependence on the temperature. The phase stresses of Cu changed only slightly with decreasing test temperature. However, the Cu phase stress response to the applied true stress increased with decreasing test temperature, indicating an increase in the work-hardening rate. The strengthening of Fe and the increase in the work-hardening of Cu contributed to an increase in the strength and work-hardening rate of the Cu-Fe alloy at low temperatures.

論文

Ti-Ni系形状記憶合金の変形挙動に及ぼす中性子照射の影響

星屋 泰二; 田昭 治*; 安藤 弘栄

日本金属学会誌, 56(7), p.741 - 746, 1992/00

中性子照射したTi-Ni系形状記憶合金の673K以下の温度における高温変形挙動さらには照射後に473,523,573Kで焼鈍した際の変形挙動を引張試験及び硬度試験を用いて調べた。中性子照射によって照射誘起超弾性など特異な変形挙動が生じた。これらは523K以上の温度における照射後焼鈍によって完全に回復した。この原因としては、照射によって生成した空孔などの欠陥移動が熱振動で助長され規則化過程を促進するためである。照射中のTi-Ni系形状記憶合金では、二つの相反する過程が競合して起きる。すなわち、照射誘起不規則と空孔移動によって促進される規則化である。これらの過程は照射温度と照射フルエンスに依存する。

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