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Synthesis and characterization of bulk metallic glasses prepared by laser direct deposition.

机译:激光直接沉积制备的块状金属玻璃的合成与表征。

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摘要

Fe-based and Zr-based metallic glasses have attracted extensive interest for structural applications due to their excellent glass forming ability, superior mechanical properties, unique thermal and corrosion properties. In this study, the feasibility of synthesizing metallic glasses with good ductility by laser direct deposition is explored. Both in-situ synthesis with elemental powder mixture and ex-situ synthesis with prealloyed powder are discussed. Microstructure and properties of laser direct deposited metallic glass composites are analyzed.;Synthesis of Fe-Cr-Mo-W-Mn-C-Si-B metallic glass composite with a large fraction of amorphous phase was accomplished using laser direct deposition. X-ray diffraction (XRD) and transmission electron microscopy investigations revealed the existence of amorphous structure. Microstructure analyses by optical microscopy and scanning electron microscopy (SEM) indicated the periodically repeated microstructures of amorphous and crystalline phases. Partially crystallized structure brought by laser reheating and remelting during subsequent laser scans aggregated in the overlapping area between each scan. XRD analysis showed that the crystalline particle embedded in the amorphous matrix was Cr 1.07Fe18.93 phase. No significant microstructural differences were found from the first to the last layer. Microhardness of the amorphous phase (HV0.2 1591) showed a much higher value than that of the crystalline phase (HV0.2 947). Macrohardness of the top layer had a value close to the microhardness of the amorphous region. Wear resistance property of deposited layers showed a significant improvement with the increased fraction of amorphous phase.;Zr65Al10Ni10Cu15 amorphous composites with a large fraction of amorphous phase were in-situ synthesized by laser direct deposition. X-ray diffraction confirmed the existence of both amorphous and crystalline phases. Laser parameters were optimized in order to increase the fraction of amorphous phase. The microstructure analysis by scanning electron microscopy revealed the deposited structure was composed of periodically repeated amorphous and crystalline phases. Overlapping regions with nanoparticles aggregated were crystallized by laser reheating and remelting processes during subsequent laser scans. Vickers microhardness of the amorphous region showed around 35% higher than that of crystalline region. Average hardness obtained by a Rockwell macrohardness tester was very close to the microhardness of the amorphous region. The compression test showed that the fracture strain of Zr65Al10Ni10Cu15 amorphous composites was enhanced from less than 2% to as high as 5.7%, compared with fully amorphous metallic glass. Differential scanning calorimetry test results further revealed the amorphous structure and glass transition temperature Tg was observed to be around 655K. In 3 mol/L NaCl solution, laser direct deposited amorphous composites exhibited distinctly improved corrosion resistance, compared with fully-crystallized samples.
机译:铁基和锆基金属玻璃因其出色的玻璃成型能力,卓越的机械性能,独特的热和腐蚀性能而引起了结构应用的广泛兴趣。在这项研究中,探索了通过激光直接沉积合成具有良好延展性的金属玻璃的可行性。讨论了元素粉末混合物的原位合成和预合金粉末的异位合成。分析了激光直接沉积的金属玻璃复合材料的微观结构和性能。;采用激光直接沉积法合成了具有大量非晶相的Fe-Cr-Mo-W-Mn-C-Si-B金属玻璃复合材料。 X射线衍射(XRD)和透射电子显微镜研究揭示了非晶结构的存在。通过光学显微镜和扫描电子显微镜(SEM)进行的微观结构分析表明,非晶相和结晶相的周期性重复组织。在随后的激光扫描过程中,由于激光再加热和重熔而带来的部分结晶结构聚集在每次扫描之间的重叠区域中。 XRD分析表明,包埋在非晶态基体中的晶体颗粒为Cr 1.07Fe18.93相。从第一层到最后一层没有发现明显的微观结构差异。非晶相(HV0.2 1591)的显微硬度值比结晶相(HV0.2 947)高得多。顶层的宏观硬度的值接近非晶态区域的显微硬度。随着非晶相分数的增加,沉积层的耐磨性能得到了显着改善。通过激光直接沉积原位合成了具有较大非晶相分数的Zr65Al10Ni10Cu15非晶复合材料。 X射线衍射证实了非晶相和结晶相的存在。优化激光参数以增加非晶相的比例。通过扫描电子显微镜的微观结构分析显示,沉积的结构由周期性重复的非晶相和结晶相组成。在随后的激光扫描过程中,通过激光再加热和重熔过程使纳米粒子聚集的重叠区域结晶。非晶区的维氏显微硬度比结晶区高约35%。通过Rockwell宏观硬度测试仪获得的平均硬度非常接近非晶区的显微硬度。压缩试验表明,与完全非晶态金属玻璃相比,Zr65Al10Ni10Cu15非晶态复合材料的断裂应变从不到2%提高到高达5.7%。差示扫描量热法测试结果进一步显示出非晶结构,并且观察到玻璃化转变温度Tg为约655K。与完全结晶的样品相比,在3 mol / L的NaCl溶液中,激光直接沉积的非晶态复合材料具有明显改善的耐腐蚀性。

著录项

  • 作者

    Ye, Xiaoyang.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Mechanical engineering.;Materials science.
  • 学位 M.S.M.E.
  • 年度 2014
  • 页码 85 p.
  • 总页数 85
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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