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Effects of Fe intermetallics on the machinability of heat-treated Al-(7-11)% Si alloys

机译:Fe金属间化合物对热处理的Al-(7-11)%Si合金可切削性的影响

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The need for bridging the divide between the casting process and the machining process provides a strong motivation for examining the various aspects affecting the machinability of Al-Si casting alloys, given that these alloys constitute about 85% of all aluminum castings produced. Strontium-modified, grain-refined, T6 heat-treated 396 alloys (containing ~11% Si), and B319.2 and A356.2 alloys (containing ~7% Si) were selected, with a view to studying their machinability characteristics. Three 396 alloy compositions were selected (M1, M3, M4) such that different iron intermetallic phases were obtained in each case. Drilling and tapping operations were both carried out using a Makino A88E machine under fixed machining conditions. The machinability criteria relates to forces and moment analysis as well as to tool life, chip configuration, and built-up edge (BUE) evolution. The effects of Fe-intermetallics (α-Fe, β-Fe, and sludge) on the machining characteristics of these alloys were investigated and a comparison was made between the three 396 alloys in terms of mean total drilling forces, mean total tapping forces, tool life, and chip configuration. The results demonstrate that the presence of sludge has a significant effect on cutting forces and tool life. The tool life of the 396-M3 alloy (containing sludge) decreased by 50% compared to the base alloy 396-M1 (containingα-Fe intermetallics). Increasing the Fe-content from 0.5% to 1% in the Ml alloy (i.e., M4 alloy) produces a distinct improvement in the alloy machinability in terms of cutting forces and tool life. The addition of Fe and Mn appears to have no discernible effect on the built-up-edge (BUE) width and chip configuration as compared to the base alloy. The dominant type of wear which leads to drill failure and breakage is outer corner wear; there is, however, no evidence of crater-wear. Fan-shaped chips were obtained during machining of the 396, B319.2 and A356.2 alloys, where the latter alloy yielded the largest chips. As far as the alloy Si content was concerned, it was found that the 396 alloys produce drilling results similar to those of the B319.2 and A356.2 alloys, in terms of the number of holes drilled (cf. 2160 with 2100 and 2285 holes drilled in the B319.2, and A356.2 alloys, respectively). During tapping tests, however, the B319.2 alloy yielded the longest tool life, i.e., more than twice that of 396 alloy and four-and-half-times that of the A356.2 alloy.
机译:弥合铸造工艺和机加工工艺之间的鸿沟的需求,为检验影响Al-Si铸造合金可加工性的各个方面提供了强大的动力,因为这些合金约占所生产的所有铝铸件的85%。为了研究其可切削性,选择了锶改性的,晶粒细化的,T6热处理过的396合金(含Si约11%)和B319.2和A356.2合金(含Si约7%)。选择了三种396种合金成分(M1,M3,M4),以便在每种情况下获得不同的铁金属间相。钻孔和攻丝操作均使用Makino A88E机器在固定的加工条件下进行。可加工性标准涉及力和力矩分析以及刀具寿命,切屑配置和积屑瘤(BUE)演变。研究了铁金属间化合物(α-Fe,β-Fe和污泥)对这些合金的加工性能的影响,并比较了三种396种合金的平均总钻削力,平均总攻丝力,刀具寿命和切屑配置。结果表明,污泥的存在对切削力和工具寿命有重大影响。与基础合金396-M1(包含α-Fe金属间化合物)相比,396-M3合金(包含污泥)的工具寿命降低了50%。将M1合金(即M4合金)中的Fe含量从0.5%增加到1%,可在切削力和刀具寿命方面显着改善合金的切削性。与基础合金相比,Fe和Mn的添加似乎对堆焊边缘(BUE)宽度和切屑构型没有明显影响。导致钻头故障和破损的主要磨损类型是外角磨损。但是,没有火山口磨损的迹象。在396,B319.2和A356.2合金的机加工过程中获得了扇形切屑,其中后者合金产生的切屑最大。就硅含量而言,就钻孔数量而言,发现396种合金产生的钻孔结果与B319.2和A356.2合金相似(参见2160、2100和2285)分别在B319.2和A356.2合金中钻孔)。但是,在攻丝测试中,B319.2合金的刀具寿命最长,即是396合金的两倍以上,是A356.2合金的四分之一。

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