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Nanoscale shape-memory alloys for ultrahigh mechanical damping

机译:用于超高机械阻尼的纳米形状记忆合金

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Shape memory alloys undergo reversible transformations between two distinct phases in response to changes in temperature or applied stress'. The creation and motion of the internal interfaces between these phases during such transformations dissipates energy, making these alloys effective mechanical damping materials(2,3). Although it has been shown that reversible phase transformations can occur in nanoscale volumes(4-9), it is not known whether these transformations have a sample size dependence. Here, we demonstrate that the two phases responsible for shape memory in Cu-Al-Ni alloys are more stable in nanoscale pillars than they are in the bulk. As a result, the pillars show a damping figure of merit that is substantially higher than any previously reported value for a bulk material, making them attractive for damping applications in nanoscale and microscale devices.
机译:形状记忆合金响应温度或施加的应力变化在两个不同的相之间经历可逆转变。在这种转变过程中,这些相之间的内部界面的产生和运动会耗散能量,使这些合金成为有效的机械阻尼材料(2,3)。尽管已经证明可逆相变可以在纳米级体积中发生(4-9),但尚不清楚这些相变是否与样本量有关。在这里,我们证明了负责Cu-Al-Ni合金形状记忆的两个相在纳米级柱体中比在整体中更稳定。结果,支柱显示出的阻尼品质因数大大高于先前报道的散装材料的值,从而使其对于纳米级和微米级设备的阻尼应用具有吸引力。

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