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Metallurgical structure of A356 aluminum alloy solidified under mechanical vibration: An investigation of alternative semi-solid casting routes

机译:机械振动下凝固的A356铝合金的冶金组织:替代半固态铸造路线的研究

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摘要

This study investigated the effects of mechanical vibration during solidification on the metallurgical structure of hypoeutectic aluminum-silicon A356. A series of casting trials were conducted. Emphasis was placed on the morphological changes of the primary aluminum phase of the as-cast alloy, which was subjected to different levels of mechanical vibration at various values of pouring temperature and solid fraction. It was found that the average grain size of the primary phase became relatively finer and more globular as the degree of vibration increased. This suggested that during the solidification process, dendrites that formed normally in the liquid alloy were subsequently disturbed and fragmented by the mechanical vibration introduced into the melt. This effect was enhanced when the vibration was introduced into an alloy with a larger solid fraction, as was observed with solidification at lower pouring temperatures. In addition to the macrostructure examination, semi-solid properties were also assessed and reported using the Rheocasting Quality Index. It was shown that the introduction of mechanical vibration into the A356 melt with adequate solid fraction prior to complete solidification successfully resulted in an as-cast structure featuring semi-solid morphology.
机译:本研究研究了凝固过程中机械振动对亚共晶铝硅A356的冶金组织的影响。进行了一系列铸造试验。重点放在铸态合金的初生铝相的形态变化上,在不同的浇铸温度和固含量下,铝相受到不同水平的机械振动。已发现,随着振动程度的增加,初生相的平均晶粒尺寸变得相对更细,呈球形。这表明在凝固过程中,正常情况下在液态合金中形成的树枝状晶体随后会受到引入熔体中的机械振动的干扰和破碎。当在较低浇铸温度下通过凝固观察到,当将振动引入具有更大固相分数的合金中时,这种效果得到了增强。除宏观结构检查外,还使用流变铸造质量指数评估和报告了半固态特性。结果表明,在完全固化之前,将机械振动引入到具有足够固形分的A356熔体中,成功地形成了具有半固态形态的铸态结构。

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  • 来源
    《Materials & design》 |2009年第9期|3925-3930|共6页
  • 作者单位

    Metallurgical Engineering Program, Faculty of Engineering, King Mongkut's University of Technology Thonburi, 126 Prachautit Road, Thonburi, Bangmod, Bangkok 10140, Thailand;

    Metallurgical Engineering Program, Faculty of Engineering, King Mongkut's University of Technology Thonburi, 126 Prachautit Road, Thonburi, Bangmod, Bangkok 10140, Thailand;

    Foundry Engineering Research and Development Unit, National Metal and Materials Technology Center, Thailand Science Park, Pathumthani 12120, Thailand;

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