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Hot Deformation Behavior of 6063 Aluminum Alloy Studied Using Processing Maps and Microstructural Analysis

机译:6063铝合金的热变形行为使用加工地图研究和微观结构分析

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Isothermal hot compression tests were conducted on the 6063 aluminum alloy using a Gleeble-3810 thermal simulator at four different strain rates (0.01, 0.1, 1, and 10 s(-1)) and five different temperatures (300, 350, 400, 450, and 500 degrees C). Based on the constitutive relationship to process the experimental data, processing maps were produced to evaluate the efficiency of power dissipation (Ti) and identify regimes with flow instability. Processing maps were produced for two regions with relatively high 11 at a strain of 0.6, namely (300-320)degrees C/(0.01-0.02) s(-1) and (400-500)degrees C/(0.01-1) s(-1). There were also two unstable regions at (300-325)degrees C/(0.06-1.5) s(-1) and (350-500)degrees C/(3-10) s(-1). The microstructures observed by optical microscopy and electron back-scattered diffraction maps indicated that the deformed samples only underwent dynamic recovery under deformation conditions of (300-320)degrees C/(0.01-0.02) s(-1), while at 500 degrees C/0.01 s(-1) the samples showed a high degree of dynamic recrystallization and then produced new equiaxed fine grains. At high strain rates, the precipitates had a pinning effect on dislocations, leading to stress concentration. Local plastic deformation occurred, resulting in thermoplastic instability. Therefore, the optimum processing conditions for the 6063 aluminum alloy determined from true stress-strain curves, processing maps, and microstructural analysis were 500 degrees C/0.01 s(-1).
机译:在6063铝合金上使用GLEEBLE-3810热模拟器在四种不同的应变率(0.01,0.1,1和10 s(-1))和五种不同温度(300,350,400,450和500℃)。基于要处理实验数据的本构关系,产生处理地图以评估功率耗散(TI)的效率并识别具有流动不稳定性的制度。在0.6的菌株下为两个区域产生处理地图,即0.6,即(300-320)℃/(0.01-0.02)(-1)和(400-500)℃/(0.01-1) s(-1)。在(300-325)℃/(0.06-1.5)S(-1)和(350-500)℃/(3-10)S(-1)中也有两个不稳定的区域。通过光学显微镜和电子背散射衍射图观察的微观结构表明,变形样品仅在(300-320)℃/(0.01-0.02)S(-1)的变形条件下进行动态恢复,而在500摄氏度下/0.01 s(-1)样品显示出高度的动态再结晶,然后产生新的等轴细粒。在高应变率下,沉淀物对位错有钉扎效应,导致应力浓度。发生局部塑性变形,导致热塑性不稳定性。因此,从真菌应变曲线,处理图和微结构分析确定的6063铝合金的最佳处理条件为500℃/ 0.01秒(-1)。

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