Kink Formation through Creep Deformation and Possibility of Kink Strengthening in Ti3SiC2-MAX Phase

Daiki Matsui, K. Morita, D. Terada, Kento Ikeda, S. Miura
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引用次数: 1

Abstract

Kink formation and kink strengthening mechanisms were examined in the polycrystalline Ti 3 SiC 2 – MAX phase prepared by a spark – plasma – sintering technique. The creep behavior tested by compression at 1200 ℃ showed two deformation regions depending on the applied stresses; at lower stresses of <120MPa, the stress exponent n exhibited ≈ 1.8, whereas at higher stresses, it exhibited n ≥ 6.0. The creep behavior can be ascribed to grain boundary sliding mechanism for the lower stresses with n ≈ 1.8 and dislocation – related creep mechanisms for the higher stresses with n ≥ 6.0. The kink bands were frequently observed to form in the grains deformed only at the higher stresses when its basal plane inclined by about 10 – 20° against the compressive axis. This suggests that the kink bands might be formed only when two factors of the large stresses acting on the basal plane and the resultant dislocation activities were satis fi ed. Nanoindentation tests conducted around the formed kink boundaries showed that the hardness increased linearly with decreasing in the distance from the kink boundaries and showed higher values around the kink boundaries. Since the kink boundaries blocked the slip line caused by the nanoindentation, those become a resistance against the dislocation motion caused by the indentation deformation. This suggests that the kink boundaries would be contributed to improve the mechanical properties of the Ti 3 SiC 2 – MAX phase. [ doi:10.2320 / jinstmet.J2021031 ]
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Ti3SiC2-MAX相蠕变中扭结形成及扭结强化的可能性
研究了用火花等离子烧结法制备的ti3sic2 - MAX多晶相的扭结形成和扭结强化机理。1200℃下的压缩蠕变表现为两个变形区;在<120MPa的低应力下,应力指数n≈1.8,在高应力下,应力指数n≥6.0。当n≈1.8时,其蠕变行为为晶界滑动机制,当n≥6.0时,其蠕变行为为位错蠕变机制。在高应力条件下,当基面与压轴倾斜约10 ~ 20°时,晶粒中经常出现扭结带。这表明,只有当基面上的大应力和由此产生的位错活度同时满足两个因素时,才有可能形成扭结带。在形成的扭结边界周围进行的纳米压痕测试表明,硬度随距离扭结边界的减小而线性增加,在扭结边界附近的硬度值更高。由于扭结边界阻塞了由纳米压痕引起的滑移线,这些边界成为抵抗由压痕变形引起的位错运动的阻力。这表明扭结边界有助于改善ti3sic2 - MAX相的力学性能。[doi:10.2320 / jinstmet.]J2021031]
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