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Nanocrystalline AlNiCoFeCrTi High-Entropy Alloy Resulted from Mechanical Alloying and Annealing

机译:纳米晶alnicofecrofti高熵合金由机械合金化和退火产生

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This study reports the structural evolution of multi-component AlNiCoFeCrTi high-entropy alloy from elemental materials to nanocrystalline metastable solid solution during mechanical alloying (MA), and further, to equilibrium phases during subsequent thermal annealing. It was justified experimentally that shot-time mechanical milling of Al-Ni-Co-Fe-Cr-Ti powder mixture during 3 hours resulted in a single-phase nanocrystalline high-entropy alloy (HEA) with a structure of bcc solid solution. During thermal annealing of the bcc solid solution phase transformation take place, and grain growth of equilibrium phases occur. The phase composition of as-MA alloy transforms to fcc and bcc solid solutions with TiC precipitations’ when the MA powder was annealed at 1200 °C for 1 h. X-ray diffraction and electron microscopy data show that the nanocrystalline powder microstructure is retained in the alloy with no grain growth. The AlNiCoFeCrTi HEA exhibit 7.1 GPa and 9.2±0.3 GPa in Vickers hardness after mechanical alloying and after thermal annealing, respectively.
机译:本研究报告了在机械合金化(MA)和进一步的机械合金化(MA)期间从元素材料到纳米晶体稳定固溶体的多组分Alnicofecrofecropi高熵合金的结构演变,进一步,在随后的热退火期间均衡相位。它是合理的实验上在3小时期间铝镍 - 钴 - 铁 - 铬 - 钛粉末混合物的拍摄时间机械研磨导致具有的BCC固溶体的结构的单相纳米晶高熵合金(HEA)。在BCC固溶体的热退火过程中发生,发生平衡相的晶粒生长。当MA粉末在1200℃下退火1小时时,AS-MA合金的相对于FCC和BCC固溶体变换为FCC和BCC固溶体。 X射线衍射和电子显微镜数据表明,纳米晶体粉末微观结构保留在没有晶粒生长的合金中。在机械合金化和热退火后,AlnicofecrtiTi Hea展示7.1 GPA和9.2±0.3GPa在维氏硬度和热退火后。

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