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Machinability aspects of heat-treated Al-(6-11)% Si cast alloys: Role of intermetallics and free-cutting elements.

机译:热处理的Al-(6-11)%Si铸造合金的可加工性方面:金属间化合物和易切削元素的作用。

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摘要

This study was conducted with the intention of investigating a new experimental alloy belonging to the Al-Si near-eutectic cast alloy group, containing about 10.8%Si, namely the 396 alloy. In the light of the above, the main purpose of the work is to report on the changes in the machinability criteria resulting from the effects of Fe-intermetallics, namely alpha-Fe, beta-Fe, and sludge; the effects of two levels of Cu, namely 2.25% and 3.5%; and the effects of two levels of Mg, namely 0.3 and 0.6%. In addition to the preceding, the effects of Mg-free alloys and Sr-modification on these same alloys were also investigated together with the effects of free-cutting elements, specifically Sn, Bi, and Pb. Thus, a specific T6 heat treatment was selected to establish the hardness level for the alloys investigated within the range of 110+/-10 BHN, conforming to most of the required hardness levels in the commercial application of aluminum alloys.;The increase in the levels of Cu and/or Mg in the 396-T6 alloy has a detrimental effect on drill life. Such an effect may be attributed to the formation of large amounts of the coarse blocklike Al2Cu phase, together with the formation of thick plates of the Al-Si-Cu-Mg phase. The Mg-free experimental alloy displays the lowest cutting force and moment in addition to producing the highest number of holes in the alloys studied. This observation may be explained by the cooperative precipitation of the Al 2Cu, Mg2Si, Al2CuMg, and Al5Si 6Cu2Mg8 hardening phases in Mg-containing alloys which confer greater strength on the alloy than would be the case with the precipitation of only the Al2Cu phase in the Mg-free alloy. A comparison of the non-modified alloy and the Sr-modified alloy (containing the same level of Mg and Cu additions) in terms of the number of holes drilled, reveals that the morphology of Si particles has a noticeable effect in governing the tool life of near-eutectic Al-Si alloys.;The addition of small but effective amounts of free-machining elements to Al-Si casting alloys significantly improves the machinability of these alloys. The Sn-containing alloy has a beneficial effect on tool life for both carbide drills and HSS taps. On the other hand, the Bi-containing alloys lead to a noticeable coarsening of the eutectic Si particles resulting in a deterioration of tool life. The simultaneous addition of smaller amounts of two or more elements insoluble in aluminum has a greater effect on machinability in terms of reducing the drilling force and moment than individual additions of each element. The addition of Pb, Bi, and Sn appears to have no significant effect on the formation of built-up edge (BUE) or on chip configuration except that the Bi-containing alloy shows a slightly lower tendency to BUE formation, and it also produces finer fan-shaped chips than those observed in the Bi-free alloy.;A visual examination of the chips reveals that the fan shape is by far the predominant form during the drilling of the alloys studied, and also that it is considered to be the ideal chip type for most drilling applications. The chip breakability of alloys containing the Al2Cu phase was superior to that of alloys containing Mg2Si. Thus, combined additions of Cu and Mg are expected to further refine the size of the chips produced. (Abstract shortened by UMI.);The results demonstrate that the presence of sludge in the form of hard spots has a significant effect on cutting forces and tool life, in that it decreases drill life by 50% compared to the base alloy. The formation of the alpha-Fe phase in the M1 base alloy has a beneficial effect on tool life in that this alloy produces the highest number of holes drilled compared to alloys containing sludge or beta-Fe; this result may be explained by the fact that the formation of the alpha-Fe intermetallic with its rounded Chinese script morphology and its presence within alpha-Al dendrites is expected to improve matrix homogeneity via hardening of the soft alpha-Al dendrites. Increasing the Fe-content from 0.5% to 1% in the 396-T6 alloy containing 0.5%Mn produces a distinct improvement in alloy machinability in terms of cutting force and tool life. In tapping tests, it was found that high-speed steel (HSS) tools are considerably more sensitive to the Fe-intermetallic phases than the carbide tools used for drilling. The addition of Fe and/or Mn appears to have no discernible effect on the built-up edge area (BUE) and chip configuration compared to the base alloy.
机译:进行这项研究的目的是研究一种新的属于Al-Si近共晶铸造合金组的实验合金,其中含有约10.8%的Si,即396合金。鉴于上述情况,这项工作的主要目的是报告由于铁金属间化合物(即α-Fe,β-Fe和污泥)的影响而导致的可加工性标准的变化;两种Cu含量的影响,即2.25%和3.5%; Mg的两个水平的影响,分别为0.3%和0.6%。除上述内容外,还研究了无镁合金和Sr改性对这些相同合金的影响,以及自由切削元素(特别是Sn,Bi和Pb)的影响。因此,选择了特定的T6热处理来确定所研究合金的硬度水平在110 +/- 10 BHN范围内,符合铝合金在商业应用中所需的大多数硬度水平。 396-T6合金中的铜和/或镁含量对钻头寿命有不利影响。这种效果可以归因于大量的块状粗大的Al 2 Cu相的形成,以及Al-Si-Cu-Mg相的厚板的形成。无镁的实验合金除了在所研究的合金中产生最大数量的孔之外,还显示出最低的切削力和力矩。可以通过在含Mg合金中Al 2Cu,Mg2Si,Al2CuMg和Al5Si 6Cu2Mg8硬化相的协同析出来解释这种观察,与仅在Al2Cu相中析出的情况相比,该硬化相赋予合金更大的强度。无镁合金。比较未改性合金和Sr改性合金(包含相同含量的Mg和Cu)的钻孔数量,发现Si颗粒的形态在控制刀具寿命方面具有显着效果;向Al-Si铸造合金中添加少量但有效量的自由加工元素可显着改善这些合金的切削性能。含锡合金对硬质合金钻头和高速钢攻丝机的刀具寿命都有有益的影响。另一方面,含Bi的合金导致共晶Si颗粒的明显变粗,导致工具寿命的劣化。与降低每种元素的单独添加量相比,同时添加少量的两种或更多种不溶于铝的元素对切削加工性的影响更大,因为它们在降低钻孔力和力矩的方面。 Pb,Bi和Sn的添加似乎对堆积边缘(BUE)的形成或切屑构型没有显着影响,除了含Bi的合金表现出稍低的BUE形成趋势外,它还会产生比无铋合金中观察到的更细的扇形切屑。;对切屑的目视检查显示,在研究的合金钻削过程中,扇形是迄今为止的主要形状,也被认为是适用于大多数钻孔应用的理想切屑类型。含有Al2Cu相的合金的切屑断裂性优于含有Mg2Si的合金。因此,预期Cu和Mg的组合添加将进一步细化所生产的切屑的尺寸。 (摘要由UMI缩短。);结果表明,以硬点形式存在的油泥对切削力和刀具寿命具有显着影响,因为与基础合金相比,它会使钻头寿命降低50%。 M1基合金中α-Fe相的形成对刀具寿命具有有益的影响,因为与含油泥或β-Fe的合金相比,该合金产生的钻孔数量最多。该结果可以通过以下事实来解释,即具有圆润的中文字形形态的α-Fe金属间化合物的形成及其在α-Al树枝状晶体中的存在可望通过硬化软的α-Al树枝状晶体来改善基体均匀性。将含有0.5%Mn的396-T6合金中的Fe含量从0.5%增加到1%,就切削力和刀具寿命而言,在合金切削性能方面产生了明显的改善。在攻丝测试中,发现高速钢(HSS)工具对金属间铁相的敏感性比用于钻孔的硬质合金工具高得多。与基础合金相比,添加铁和/或锰似乎对堆积边缘区域(BUE)和切屑构型没有明显影响。

著录项

  • 作者

    Zedan, Yasser.;

  • 作者单位

    Universite du Quebec a Chicoutimi (Canada).;

  • 授予单位 Universite du Quebec a Chicoutimi (Canada).;
  • 学科 Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 217 p.
  • 总页数 217
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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