Structure and phase composition formation of cast aluminum matrix composites during multiple remelting

IF 0.6 4区 材料科学 Q4 METALLURGY & METALLURGICAL ENGINEERING Russian Journal of Non-Ferrous Metals Pub Date : 2022-10-20 DOI:10.17073/0022-3438-2021-5-46-54
E. Prusov, V. Deev, A. Aborkin, A. Panfilov, A. Kireev
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Abstract

The lack of understanding as to the nature of interfacial interaction between reinforcing particles and the matrix alloy during repeated remelting of cast composite materials is one of the problems hindering the expansion of their industrial application. This research is aimed at establishing the effect of repeated remelting of AK12 + 10 vol.% SiC aluminum matrix composites on the retention and chemical stability of silicon carbide reinforcing particles. It is shown that an increase in the number of remelting iterations is not accompanied by any new phases appearing at the interfaces between particles and the matrix, which indicates the stability of the SiC reinforcing phase in aluminumsilicon melts under the considered temperature-time and concentration conditions. Repeated remelting of aluminum matrix composites with silicon carbide shifts the particle distribution uniformity towards a more uniform distribution degree (on average 0.81046 at the first remelting iteration, 0.6901 at the second one and 0.5609 at the third one) and slightly reduces their average sizes (from 70.74 μm at the first iteration to 65.76 μm at the second one and 61.21 μm at the third one), apparently due to particle fragmentation that leads to an increase in the quantity of finer particles. At the same time, the share of the area occupied by particles in the section regions under consideration remains practically unchanged (10.9293, 10.9607 and 11.6483 % at the first, second and third remelting iterations, respectively). In the course of repeated remelting of Al–SiC aluminum matrix composites, processes of reinforcing particle redistribution occur that lead to the destruction of agglomerates even without intensive mixing with an impeller. Due to this, the uniformity of particle distribution in the structure of secondary aluminum matrix composite ingots can be significantly improved.
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铸铝基复合材料多次重熔过程中组织与相组成的形成
在铸态复合材料反复重熔过程中,对增强颗粒与基体合金界面相互作用的性质缺乏认识是阻碍其工业应用扩大的问题之一。本研究旨在确定AK12 + 10 vol.% SiC铝基复合材料反复重熔对碳化硅增强颗粒的保留和化学稳定性的影响。结果表明,随着重熔次数的增加,颗粒与基体界面处未出现新相,表明在一定的温度-时间和浓度条件下,铝硅熔体中SiC增强相具有一定的稳定性。铝基碳化硅复合材料的多次重熔使颗粒分布均匀性趋于均匀(第一次重熔平均为0.81046 μm,第二次重熔平均为0.6901 μm,第三次重熔平均为0.5609 μm),颗粒平均尺寸略有减小(从第一次重熔的70.74 μm减小到第二次重熔的65.76 μm,第三次重熔的61.21 μm)。显然,由于颗粒破碎,导致更细颗粒的数量增加。同时,所考虑的截面区域中粒子所占的面积份额基本保持不变(在第一次、第二次和第三次重熔时分别为10.9293、10.9607和11.6483%)。在Al-SiC铝基复合材料的重复重熔过程中,即使没有叶轮的强烈混合,也会发生增强颗粒重分布过程,导致团聚体的破坏。因此,可以显著提高二次铝基复合材料铸锭组织中颗粒分布的均匀性。
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来源期刊
Russian Journal of Non-Ferrous Metals
Russian Journal of Non-Ferrous Metals METALLURGY & METALLURGICAL ENGINEERING-
CiteScore
1.90
自引率
12.50%
发文量
59
审稿时长
3 months
期刊介绍: Russian Journal of Non-Ferrous Metals is a journal the main goal of which is to achieve new knowledge in the following topics: extraction metallurgy, hydro- and pirometallurgy, casting, plastic deformation, metallography and heat treatment, powder metallurgy and composites, self-propagating high-temperature synthesis, surface engineering and advanced protected coatings, environments, and energy capacity in non-ferrous metallurgy.
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