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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >The Effect of Iron and Manganese on the Recrystallization Behavior of Hot-Rolled and Solution-Heat-Treated Aluminum Alloy 6013
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The Effect of Iron and Manganese on the Recrystallization Behavior of Hot-Rolled and Solution-Heat-Treated Aluminum Alloy 6013

机译:铁和锰对热轧和固溶热处理铝合金6013的再结晶行为的影响

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The influence of manganese and iron additions on the recrystallization behavior of a hot-rolled Al-Mg-Si-Cu alloy has been investigated. In the as-cast ingot, some manganese remains in supersaturated solid solution and, during the preheating step, precipitates as fine (0.1 to 0.3 #mu#m) dispersoids #alpha#-Al_(12)Mn_3Si and a(AlFeMnSi), depending on the local iron content. The presence of the dispersoids increases the alloy's resistance to recrystallization. The remaining manganese along with iron forms coarse (30 to 100 #mu#m) a(AlFeMnSi) phases in the interdendritic channels upon solidification. During rolling, these coarse phases are broken up and the matrix surrounding the phases is highly strained. The highly strained regions around the precipitates are preferential sites for the nucleation and growth of new, strain-free, recrystallized grains. Decreasing the iron content decreases the amount of coarse #alpha#(AlFeMnSi) constituent phase and increases the recrystallization resistance of the alloy for a given concentration of manganese. For iron-free alloys, coarse #alpha#-Al_(12)Mn_3Si phase forms during solidification. The increased recrystallization resistance is attributed to the lower probability for particle-stimulated recrystallization. Increasing the manganese content beyond what is normally found in 6013 increases the volume fraction of both the dispersoids and the coarse constituent phases. However, the increased volume fraction of the dispersoids in the iron-containing alloys more than compensates for the increase in volume fraction of coarse constituent particles, resulting in an increase in the recrystallization resistance with increased manganese content. In this research, alloys containing varying amounts of manganese and iron with levels of magnesium, silicon, and copper consistent with the nominal composition of 6013 were hot deformed and solution heat treated to produce microstructures ranging from frilly recrystallized to unrecrystallized.
机译:研究了锰和铁的添加对热轧Al-Mg-Si-Cu合金再结晶行为的影响。在铸锭中,一些锰保留在过饱和固溶体中,并且在预热步骤中,以细小(0.1至0.3#mu#m)的分散体#alpha#-Al_(12)Mn_3Si和a(AlFeMnSi)的形式沉淀。关于当地的铁含量。分散质的存在增加了合金的抗重结晶性。固化后,剩余的锰与铁一起在树枝状晶间的通道中形成粗相(30至100#μm)a(AlFeMnSi)相。在轧制过程中,这些粗相被破坏,相周围的基体高度应变。析出物周围的高应变区是新的,无应变的重结晶晶粒成核和生长的优先位置。对于给定的锰浓度,降低铁含量会降低粗#alpha#(AlFeMnSi)组成相的数量,并增加合金的抗再结晶性。对于无铁合金,在固化过程中会形成粗大的#alpha#-Al_(12)Mn_3Si相。增加的抗再结晶性归因于颗粒刺激的再结晶的可能性较低。将锰含量增加到超过6013年通常发现的水平会增加弥散相和粗大组成相的体积分数。然而,含铁合金中弥散体体积分数的增加可以弥补粗大成分颗粒体积分数的增加,从而随着锰含量的增加,抗再结晶性的提高。在这项研究中,对含有不同含量的锰和铁以及镁,硅和铜含量与6013标称成分一致的合金进行热变形并进行固溶热处理,以产生从起毛重结晶到未重结晶的微观结构。

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