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Special Microstructures and twin features in Ti_(50)Ni_(50-x)(Pd,Au)_x at small hysteresis

机译:小滞后的Ti_(50)Ni_(50)Ni_(50)Ni_(50)Ni_(50-X)(Pd,Au)_x中的特殊组织和双胞胎特征

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The breaking of symmetry due to atomic displacements in the austenite-martensite phase transformation generally leads to their crystallographic incompatibility. Energy minimizing accommodation mechanisms such as martensite twinning have been recently shown to be a source of hysteresis and irreversible plastic deformation. Compatibility between the two phases can however be achieved by carefully tuning lattice parameters through composition change. A dramatic drop in hysteresis and novel microstructures such as a lowering of the amount of twin lamella are then observed. Related theoretical and simulation works also support the existence of such microstructures including peculiar self-accommodating configurations at near-compatibility. We present the transmission electron microscopy (TEM) study of these novel microstructures for the alloy systems Ti_(50)Ni_(50-x)Pd_x and Ti_(50)Ni_(50-x)Au_x where the composition was systemically tuned to approach perfect compatibility. High resolution imaging of the interface between austenite and martensite supplies evidences of compatibility at the atomic level.
机译:由于奥氏体 - 马氏体相变的原子位移而对对称性的破裂通常导致它们的结晶不相容性。最终最小化了诸如马氏体孪生之类的容纳机构的能量最小化是滞后和不可逆的塑性变形的源泉。然而,两相之间可以通过通过组成变化仔细调整晶格参数来实现两个相之间的兼容性。然后观察到滞后和新型微观结构的戏剧性下降,例如降低双薄片的量的降低。相关的理论和仿真工程还支持这种微观结构的存在,包括近兼容性的特殊的自我适应配置。我们介绍了这些新颖的微观结构的透射电子显微镜(TEM)研究,用于合金系统Ti_(50)Ni_(50-x)Pd_x和Ti_(50)Ni_(50)Ni_(50-x)Au_x,其中组合物系统地调整以接近完美兼容性。奥氏体与马氏体之间的界面的高分辨率成像提供原子水平兼容性的证据。

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