Effect of Sn addition on the separation and purification of primary Si from solidification of Al-30Si melt under electromagnetic stirring
首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Effect of Sn addition on the separation and purification of primary Si from solidification of Al-30Si melt under electromagnetic stirring
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Effect of Sn addition on the separation and purification of primary Si from solidification of Al-30Si melt under electromagnetic stirring

机译:电磁搅拌下Al-30si熔体凝固初级Si分离和纯化的影响

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AbstractIn the present work, the effect of Sn addition on the separation and purification of primary Si from solidification of Al-30Si melt under rotating magnetic field (RMF) was investigated. The results revealed that the as-cast solidification microstructure of ternary Al-30Si-Sn alloy is composed of the primary Si phase, eutectic α-Al+Si, and eutectic α-Al+β-Sn structure. The application of RMF can separate the primary Si from solidification of Al-30Si-Sn melt, consequently forming a Si-rich layer on the periphery of the ingot. The atomic fraction of primary Si in Si-rich layer increases with increasing Sn content because the addition of Sn can enlarge the crystallization temperature range of the primary Si phase. The content of non-metallic B in primary Si increases due to the increasing segregation coefficient of B with the increasing Sn content. However, the contents of typical metallic impurities (Fe and Ca) exhibit an opposite trend, which may be attributed to the back-diffusion of impurities suppressed by the addition of Sn.Highlights?The Sn addition effectively promotes the electromagnetic separation of primary Si.?Microstructural evolution of Al-30Si-Sn alloy was clarified by synchrotron radiation.?The addition of Sn can inhibit the back-diffusion to improve the removal of impurity.]]>
机译:<![CDATA [ 抽象 在本作的工作中,Sn添加对原发性Si的分离和纯化的影响研究了旋转磁场(RMF)下的30SI熔体。结果表明,三元Al-30Si-Sn合金的铸型凝固微观结构由伯Si相,共晶α-Al + Si和共晶α-Al +β-Sn结构组成。 RMF的应用可以将初级Si与Al-30Si-Sn熔体的凝固分离,从而在铸锭的周边上形成富含Si的层。富含Si的层中初级Si的原子分数随着SN含量的增加而增加,因为加入Sn可以扩大初级Si相的结晶温度范围。由于B的增加的Sn含量增加,初级Si中的非金属B中的含量增加。然而,典型的金属杂质(Fe和Ca)的含量表现出相反的趋势,这可能归因于通过添加Sn的抑制杂质的后扩散。 亮点 SN添加有效促进原发性Si的电磁分离。 < / ce:list-item> al的微观结构演变通过同步辐射澄清-30Si-Sn合金。 添加Sn可以抑制背部扩散以改善杂质的去除。 ]]>

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