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首页> 外文期刊>Intermetallics >In-situ synthesis of Zr-based bulk metallic glass composites with periodic amorphous-crystalline microstructure for improved ductility via laser direct deposition
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In-situ synthesis of Zr-based bulk metallic glass composites with periodic amorphous-crystalline microstructure for improved ductility via laser direct deposition

机译:原位合成ZR基体金属玻璃复合材料,具有周期性非晶晶微观结构,通过激光直接沉积改善延展性

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摘要

In this paper, design and synthesis of in-situ ZrCuNiAl bulk metallic glass composites (BMGC) from premixed metal powders were achieved using laser direct deposition (LDD). The temperature fields and heating/cooling rates in single-track BMGC were simulated through a validated LDD model, which provided insights for microstructure evolution. Through a proper selection of LDD parameters and precise control of premixed composition, a periodic amorphous-crystalline microstructure was obtained alternatively in the fusion zone (FZ) and heat affected zone (HAZ). In addition to HAZ, composite phase nature was also achieved in FZ where about 4.7 vol% crystals with a size of 100-1000 nm were uniformly formed in the amorphous matrix. Vickers microhardness revealed a higher hardness of 620 HV0.2 in FZ than 450 HV0.2 in HAZ. An optimized overlapping ratio of adjacent tracks at 58 vol% led to 89 vol% FZ in the bulk structure, which resulted in an overall macrohardness of 604 HV. Nanoindentation tests were performed to study the deformation behavior at the micron/sub-micron length scale. The depth-sensing indentation stress-strain data in FZ and HAZ were accurately predicted with an iterative numerical algorithm using finite-element modeling. A correction factor was proposed in this algorithm, which corrected the overestimation of experimental stress by minimizing the difference between experimental and numerical load-depth data. With the composite microstructure, an indentation strain of more than 13% was obtained in both zones.
机译:在本文中,使用激光直接沉积(LDD)实现了来自预混合金属粉末的原位Zrcunial金属玻璃复合材料(BMGC)的设计和合成。通过经过验证的LDD模型模拟单轨BMGC中的温度场和加热/冷却速率,这为微观结构演变提供了见解。 Through a proper selection of LDD parameters and precise control of premixed composition, a periodic amorphous-crystalline microstructure was obtained alternatively in the fusion zone (FZ) and heat affected zone (HAZ).除了HAZ,在FZ中还达到了复合相性质,其中尺寸在非晶基质中均匀地形成约4.7Vol%的晶体。维克斯微硬度揭示了在FZ中的620 HV0.2的硬度,在HAZ中的450 HV0.2。在58体积%的相邻轨道的优化重叠比率在散装结构中导致89体积%的FZ,导致604HV的总致癌性。进行纳米狭窄试验以研究微米/亚微米长度尺度的变形行为。使用有限元建模的迭代数值算法精确地预测FZ和HAZ中的深度感测压痕应变数据。本算法中提出了一种校正因子,通过最小化实验和数值负载深度数据之间的差异来校正实验应力的高度估计。通过复合微观结构,在两个区域中获得超过13%的压痕菌株。

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