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Heat treatment of Al-Si-Cu-Mg casting alloys

机译:Al-Si-Cu-Mg铸造合金的热处理

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摘要

Environmental savings can be made by increasing the use of aluminium alloys in the automotive industry as the vehicles can be made lighter. Increasing the knowledge about the heat treatment process is one task in the direction towards this goal. The aim of this work is to investigate and model the heat treatment process for Al-Si casting alloys. Three alloys containing Mg and/or Cu were cast using the gradient solidification technique to achieve three different coarsenesses of the microstructure and a low amount of defects. Solution treatment was studied by measuring the concentration of Mg, Cu and Si in the α-Al matrix using wavelength dispersive spectroscopy (WDS) after various times at a solution treatment temperature. A diffusion based model was developed which estimates the time needed to obtain a high and homogenous concentration of alloying elements for different alloys, temperatures and coarsenesses of the microstructure. It was shown that the yield strength after artificial ageing is weakly dependent on the coarseness of the microstructure when the solution treatment time is adjusted to achieve complete dissolution and homogenisation. The shape and position of ageing curves (yield strength versus ageing time) was investigated empirically in this work and by studying the literature in order to differentiate the mechanisms involved. A diffusion based model for prediction of the yield strength after different ageing times was developed for Al-Si-Mg alloys. The model was validated using data available in the literature. For Al-Si-Cu-Mg alloys further studies regarding the mechanisms involved need to be performed. Changes in the microstructure during a heat treatment process influence the plastic deformation behaviour. The Hollomon equation describes the plastic deformation of alloys containing shearable precipitates well, while the Ludwigson equation is needed when a supersaturated solid solution is present. When non-coherent precipitates are present, none of the equations describe the plastic deformation well. The evolution of the storage rate and recovery rate of dislocations was studied and coupled to the evolution of the microstructure using the Kocks-Mecking strain hardening theory.
机译:可以通过在汽车工业中增加铝合金的使用来节省环境,因为汽车可以制造得更轻。朝着这个目标的方向增加对热处理工艺的了解是一项任务。这项工作的目的是研究和模拟Al-Si铸造合金的热处理工艺。使用梯度凝固技术铸造了三种含Mg和/或Cu的合金,以实现三种不同的微观组织粗糙度和少量缺陷。通过在固溶处理温度下不同时间后使用波长色散光谱法(WDS)测量α-Al基体中Mg,Cu和Si的浓度来研究固溶处理。建立了一个基于扩散的模型,该模型估计了获得不同合金,不同温度和不同粗糙度的合金元素所需的高均质合金元素浓度所需的时间。结果表明,当调节固溶处理时间以实现完全溶解和均质化时,人工时效后的屈服强度几乎不依赖于微观结构的粗糙度。在这项工作中并通过研究文献以经验方式研究了老化曲线的形状和位置(屈服强度与老化时间),以区分所涉及的机理。针对Al-Si-Mg合金,开发了一种基于扩散的模型来预测不同时效时间后的屈服强度。使用文献中可用的数据验证了该模型。对于Al-Si-Cu-Mg合金,需要进一步研究所涉及的机理。热处理过程中微观结构的变化会影响塑性变形行为。 Hollomon方程很好地描述了含有可剪切析出物的合金的塑性变形,而当存在过饱和固溶体时,则需要Ludwigson方程。当存在不连贯的沉淀物时,这些方程式都无法很好地描述塑性变形。使用Kocks-Mecking应变硬化理论研究了位错的储存速率和恢复速率的演变,并将其与微观结构的演变耦合。

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  • 作者

    Sjölander, Emma;

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  • 年度 2011
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  • 原文格式 PDF
  • 正文语种 eng
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