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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Stress relaxation behavior of Fe-Co-Si-B-Nb metallic glassy alloys in their supercooled-liquid state
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Stress relaxation behavior of Fe-Co-Si-B-Nb metallic glassy alloys in their supercooled-liquid state

机译:Fe-Co-Si-B-Nb金属玻璃态合金在过冷液态时的应力松弛行为

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Iron-based metallic glasses have attracted much attention for use as microscale components in many devices because they provide unique processability with nanoscale precision. Fe-based metallic glasses, however, do not have enough resistance against crystallization, and therefore their incubation time for crystallization is too short. To prevent crystallization, the processing temperature cannot be set too high within the supercooled-liquid region, and high processing speeds are required. Taking this into consideration, the viscoelastic properties were observed during the viscous-flow microprocessing of a single metallic glassy particle of [(Fe_(0.5)Co_(0.5))_(0.75)Si_(0.05)B_(0.2)]_(96)Nb_4 metallic glass to identify its relaxation behavior of on the micrometer scale during a compressive test at 833 K. The relaxation behavior is found to be well described by the Kohlrausch-Williams-Watt model. The dependence of the ratio of the viscosity to the modulus of rigidity on the compressive speed during deformation was also investigated by constructing the master curve describing the behavior of the elasticity and viscosity fractions versus the apparent relaxation time. At a compressive strain rate of 4.5 × 10~2 s~(-1), the Fe-based metallic supercooled liquid behaved as a viscoelastic fluid, although at a compressive strain rate of 4.5 × 10~(-3) s~(-1), its behavior was almost viscous. From the master curve, it can be concluded that the effect of the compressive speed on the ratio of the viscosity to the modulus of rigidity can clearly be observed, and the viscous-flow behavior of a [(Fe_(0.5)Co_(0.5))_(0.75)Si_(0.05)B_(0.2)]_(96)Nb_4 metallic supercooled liquid can be predicted at any processing speed.
机译:铁基金属玻璃在许多设备中用作微米级组件备受关注,因为它们提供了具有纳米级精度的独特加工性能。然而,铁基金属玻璃没有足够的抗结晶性,因此它们的结晶保温时间太短。为了防止结晶,在过冷液体区域内不能将处理温度设定得太高,并且需要高处理速度。考虑到这一点,在[[Fe_(0.5)Co_(0.5))_(0.75)Si_(0.05)B_(0.2)] _(96)的单个金属玻璃状颗粒的粘流微处理过程中观察到了粘弹性。 (Nb_4)金属玻璃,以在833 K的压缩试验中确定其微米级的松弛行为。Kohlrausch-Williams-Watt模型很好地描述了该松弛行为。还通过构建描述弹性和粘度分数与表观松弛时间行为的主曲线,研究了粘度与刚度模量之比与变形期间压缩速度的关系。在4.5×10〜2 s〜(-1)的压缩应变速率下,铁基金属过冷液体表现为粘弹性流体。 1),其行为几乎是粘性的。从主曲线可以得出结论,可以清楚地观察到压缩速度对粘度与刚性模量之比的影响,以及[(Fe_(0.5)Co_(0.5) )_(0.75)Si_(0.05)B_(0.2)] _(96)Nb_4可以在任何处理速度下预测金属过冷液体。

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