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Microstructural evolution and formation of nanocrystalline intermetallic compound during surface mechanical attrition treatment of cobalt

机译:钴表面机械磨损处理过程中纳米晶金属间化合物的微观结构演变和形成

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摘要

Nanocrystalline intermetallic Co 3Fe 7 was produced on the surface of cobalt via surface mechanical attrition (SMA). Deformation-induced diffusion entailed the formation of a series of solid solutions. Phase transitions occurred depending on the atomic fraction of Fe in the surface solid solutions: from hexagonal close-packed (<4% Fe) to face-centered cubic (fcc) (4-11% Fe), and from fcc to body-centered cubic (>11% Fe). Nanoscale compositional probing suggested significantly higher Fe contents at grain boundaries and triple junctions than grain interiors. Short-circuit diffusion along grain boundaries and triple junctions dominate in the nanocrystalline intermetallic compound. Stacking faults contribute significantly to diffusion. Diffusion enhancement due to high-rate deformation in SMA was analyzed by regarding dislocations as solute-pumping channels, and the creation of excess vacancies. Non-equilibrium, atomic level alloying can then be ascribed to deformation-induced intermixing of constituent species. The formation mechanism of nanocrystalline intermetallic grains on the SMA surface can be thought of as a consequence of numerous nucleation events and limited growth.
机译:通过表面机械磨损(SMA)在钴表面生成了纳米晶金属间化合物Co 3Fe 7。形变引起的扩散需要形成一系列固溶体。相变的发生取决于表面固溶体中Fe的原子分数:从六方密堆积(<4%Fe)到面心立方(fcc)(4-11%Fe),以及从fcc到体心立方(铁含量> 11%)。纳米级成分探测表明,在晶界和三重结处的铁含量明显高于晶粒内部。沿着晶界和三重结的短路扩散在纳米晶金属间化合物中占主导地位。堆垛层错大大促进了扩散。通过将位错视为溶质泵化通道并产生过多的空位,分析了由于SMA中高速率变形而引起的扩散增强。然后,非平衡原子级合金化可归因于变形引起的成分混合。可以认为,由于大量成核事件和有限的生长,在SMA表面形成纳米晶金属间化合物晶粒的机理。

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