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Microstructural Refinement in a Commercial Aluminum Alloy Processed by ECAP using a Die Channel Angle of 110 Degrees

机译:使用110度的模具频道角度加工的商用铝合金中的微观结构改进

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The properties of ultra-fine grained materials are superior to those of corresponding conventional coarse grained materials, being significantly improved as a result of grain refinement. Equal channel angular pressing (ECAP) is an efficient method for modifying the microstructure by refining grain size via severe plastic deformation (SPD) in producing ultra-fine grained materials (UFG) and nanomaterials (NM). The grain sizes produced by ECAP processing are typically in the submicrometer range and this leads to high strength at ambient temperatures. ECAP is performed by pressing test samples through a die containing two channels, equal in cross-section and intersecting at a certain angle. The billet experiences simple shear deformation at the intersection, without any precipitous change in the cross-section area because the die prevents lateral expansion and therefore the billet can be pressed more than once and it can be rotated around its pressing axis during subsequent passes. After ECAP significant grain refinement occurs together with dislocation strengthening, resulting in a considerable enhancement in the strength of the alloys. A commercial AlMgSi alloy (AA6063) was investigated in this study. The specimens were processed for a number of passes up to nine, using a die channel angle of 110°, applying the ECAP route Bc After ECAP, samples were cut from each specimen and prepared for metallographic analysis. The microstructure of the ECAP-ed and as-received material was investigated using optical (OLYMPUS - BX60M) and SEM microscopy (TESCAN VEGA II - XMU). It was determined that for the as-received material the microstructure shows a rough appearance, with large grains of dendritic or seaweed aspect and with a secondary phase at grain boundaries (continuous casting structure). For the ECAP processed samples, the microstructure shows a finished aspect, with refined, elongated grains, also with crumbled and uniformly distributed second phase particles after a typical ECAP texture.
机译:超细颗粒材料的性质优于相应的常规粗粒材料,由于晶粒细化而显着提高。等于沟道角压(ECAP)是通过通过严重塑性变形(SPD)在生产超细颗粒(UFG)和纳米材料(NM)中通过精制晶粒尺寸来改变微观结构的有效方法。通过ECAP处理产生的晶粒尺寸通常在潜置尺寸范围内,这导致环境温度的高强度。通过将测试样品通过包含两个通道的模具按压测试样品来执行ECAP,以横截面相等并以一定角度交叉。坯料在交叉点处经历简单的剪切变形,而没有在横截面区域的任何陡峭变化,因为模具防止横向膨胀,因此坯料可以按下距离一次,并且在随后的通过期间可以围绕其按压轴旋转。在ECAP显着的晶粒细化之后,与位错强化一起发生,导致合金强度的显着增强。在本研究中研究了商业Almgsi合金(AA6063)。使用110°的模频沟道角度处理样品,该样品高达九个,施加ECAP路线BC在ECAP之后,从每个样品中切割样品并为金相分析制备。使用光学(Olympus - BX60M)和SEM显微镜(Tescan Vega II-XMU)研究了ECAP-ED和接收材料的微观结构。确定对于接收的材料,微观结构显示出粗糙的外观,具有大颗粒状或海藻方面的晶粒,并且在晶界(连续铸造结构)处具有二次相。对于ECAP加工样品,微结构显示成品方面,其具有精制的细长晶粒,并且在典型的ECAP纹理之后也具有碎和均匀分布的第二相颗粒。

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