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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Refinement of intermetallic compounds and aluminum matrix in 3xxx aluminum alloys solidified by an electromagnetic vibration technique
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Refinement of intermetallic compounds and aluminum matrix in 3xxx aluminum alloys solidified by an electromagnetic vibration technique

机译:通过电磁振动技术精炼3xxx铝合金中的金属间化合物和铝基体

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The industrial 3xxx aluminum alloy was solidified in a superconducting magnet, in which electromagnetic vibration (EMV) was imposed throughout the entire solidification process. The microstructure was examined as a function of vibration frequency. It is revealed that the microstructure contains intermetallic compounds and aluminum solid solution (Al_(ss)) regardless of solidification condition. For both structures, quantitative characterization shows that their average grain sizes decrease to minima when vibration frequency,/, increases and further increases of f leads to an increase of average grain sizes. Moreover, the general uniformity of intermetallic compound becomes poor when / goes beyond 1000 Hz. The microstructure transition behavior can be elucidated when considering the electrical resistivities of phases, i.e., Al_(ss), intermetallic compounds and remaining liquid that coexist in mushy zone. The different electrical resistivities of these phases produce different Lorentz forces and thus lead to different vibration amplitudes and eventually generate uncoupled movement between the leading phase and sluggish phase during vibration. The microstructure transition can be clarified when the distance covered by the leading phase is revealed as a function of frequency. The morphological appearance of intermetallic compounds is dependent on f in EMV processing; however, their phase species and volume proportion are independent of processing conditions.
机译:工业3xxx铝合金在超导磁体中凝固,在整个凝固过程中施加电磁振动(EMV)。检验了微结构与振动频率的关系。结果表明,无论凝固条件如何,组织都包含金属间化合物和铝固溶体(Al_(ss))。对于这两种结构,定量表征表明,当振动频率增加时,它们的平均晶粒尺寸减小到最小,而f的进一步增加导致平均晶粒尺寸增加。此外,当/超过1000Hz时,金属间化合物的总体均匀性变差。当考虑相的电阻率,即Al_(ss),金属间化合物和在糊状区中共存的剩余液体时,可以阐明微观结构的转变行为。这些相的不同电阻率会产生不同的洛伦兹力,从而导致不同的振动幅度,并最终在振动过程中在超前相和缓慢相之间产生不耦合的运动。当超前阶段所覆盖的距离显示为频率的函数时,可以明确微观结构的转变。金属间化合物的形态学外观取决于EMV加工中的f。然而,它们的相种类和体积比例与加工条件无关。

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