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The Exceptional Strong Face-centered Cubic Phase and Semi-coherent Phase Boundary in a Eutectic Dual-phase High Entropy Alloy AlCoCrFeNi

机译:共晶双相高熵合金AlcoCrfeni的特殊强面对方立方相和半相干相边界

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Second phase strengthening has been applied to high entropy alloys (HEAs) for optimizing mechanical properties. In this study, by conducting mechanical testing of a eutectic dual-phase AlCoCrFeNi HEA with homogenous distribution of body-centered cubic (BCC) and face-centered cubic (FCC) lamellar phases inside a transmission electron microscope, we found that although BCC was truly the hard phase, decreasing the proportion of BCC phase in fact increased the strength due to the existence of chemically disordered semi-coherent phase boundaries, which acted as potent impediments to dislocation motion resulting in dense dislocation storage in FCC phases. Moreover, the difficulty in dislocation glide caused massive cross-slip, and the interaction between primary slip arrays and cross-slip systems during deformation increased the rate of dislocation accumulation by forming dislocation substructures, thus making the FCC phases exceptionally strong. Our findings not only revealed the underlying strengthening mechanism of eutectic dual-phase AlCoCrFeNi HEAs, but also shed light on new ways in further optimizing the mechanical properties of HEAs.
机译:第二相加强已应用于高熵合金(HEA)以优化机械性能。在这项研究中,通过在透射电子显微镜内具有均匀的双相Alcocro Hea的机械测试,具有身体中心立方(BCC)和面为中心的立方(FCC)层状相的均匀分布,我们发现虽然BCC真的是真的硬相,降低了BCC阶段的比例,实际上增加了由于化学无序的半相干相界引起的强度,这作用于脱位运动的有效障碍导致FCC阶段的致密脱位储存。此外,位错滑动的难度引起了大量的滑动,并且通过形成脱位子结构来增加初级滑阵阵列和交叉系统之间的相互作用增加了脱位累积速率,从而使FCC相位出差。我们的发现不仅揭示了共晶双相Alcocrofeni Heas的潜在增强机制,而且还在进一步优化HEA的机械性能方面阐明了新的方式。

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