4.7 Article

Influence of additives on the impact toughness of Al-10.8% Si near-eutectic cast alloys

期刊

MATERIALS & DESIGN
卷 30, 期 10, 页码 4218-4229

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.matdes.2009.04.041

关键词

Near-eutectic Al-Si alloys; Microstructure; Impact properties; Ductility index

资金

  1. Natural Sciences and Engineering Research Council of Canada (NSERC)
  2. GM Powertrain Group
  3. Corporativo Nemak

向作者/读者索取更多资源

This article investigates the effects of melt treatment and addition of alloying elements on the impact toughness of as-cast and heat-treated Al-10.8% Si near-eutectic alloys. Increasingly precise impact behaviors are discussed in the context of differentiating between initiation and propagation energies, including the ductility index, which is the ratio of the propagation to initiation energies; total energy as a useful measure is also discussed. Details concerning the evaluation of tensile properties are reported in a separate article [Mohamed AMA, Samuel FH, Samuel AM, Doty HW. Influence of additives on the microstructure and tensile properties of near-eutectic Al-10.8%Si cast alloy. Mater Des, in press]. The concentration of elements in the alloys was changed to the following range: Fe 0.5-1 wt%, Mn 0.5-1 wt%, Cu 2.25-3.25 wt%. and Mg 0.3-0.5 wt%, while the impact toughness upon artificial aging in a temperature range of 155-240 degrees C for 5 h was also investigated. The results indicate that the morphology of fibrous Si in Sr-modified alloys enhances toughness because of its profound effect on crack initiation and crack propagation resistance. The combined addition of modifier and grain refiner leads to a 33% increase in the impact strength compared to the untreated alloy. In alloys containing high levels of iron, such as the RF2 (similar to 1% Fe. similar to 1% Mn) and RF4 (similar to 1% Fe, similar to 0.5% Mn) alloys, the addition of iron leads to an increased precipitation of sludge or beta-Fe platelets, respectively; these particles also act as crack initiation sites and reduce the impact properties noticeably. In alloys already containing high levels of copper, such as the RC2 (similar to 3.25% Cu, similar to 0.3% Mg) and RC5(similar to 0.3.25% Cu, similar to 0.5% Mg) alloys, increasing the copper level towers the impact properties significantly, in view of the fact that the fracture behavior is now predominantly influenced by the Al2Cu phase rather than by the Si particles. The average crack propagation speed of impact-tested samples shows a good inverse relationship to impact energy. Crack propagation speed can thus provide a qualitative estimation of the impact energy expected for special alloy conditions. (C) 2009 Elsevier Ltd. All rights reserved.

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