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Low-Cycle Fatigue of Ultra-Fine-Grained Cryomilled 5083 Aluminum Alloy

机译:超细晶粒冷铣削5083铝合金的低循环疲劳

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摘要

The cyclic deformation behavior of cryomilled (CM) AA5083 alloys was compared to that of conventional AA5083-H131. The materials studied were a 100 pct CM alloy with a Gaussian grain size average of 315 nm and an alloy created by mixing 85 pct CM powder with 15 pct unmilled powder before consolidation to fabricate a plate with a bimodal grain size distribution with peak averages at 240 nm and 1.8 μm. Although the ultra-fine-grain (UFG) alloys exhibited considerably higher tensile strengths than those of the conventional material, the results from plastic-strain-controlled low-cycle fatigue tests demonstrate that all three materials exhibit identical fatigue lives across a range of plastic strain amplitudes. The CM materials exhibited softening during the first cycle, similar to other alloys produced by conventional powder metallurgy, followed by continual hardening to saturation before failure. The results reported in this study show that fatigue deformation in the CM material is accompanied by slight grain growth, pinning of dislocations at the grain boundaries, and grain rotation to produce macroscopic slip bands that localize strain, creating a single dominant fatigue crack. In contrast, the conventional alloy exhibits a cell structure and more diffuse fatigue damage accumulation.
机译:将低温铣削(CM)AA5083合金的循环变形行为与常规AA5083-H131的循环变形行为进行了比较。所研究的材料是高斯晶粒平均尺寸为315 nm的100 pct CM合金,以及在固结之前将85 pct CM粉与15 pct未磨粉混合而制成的合金,以制造具有峰峰值平均为240的双峰晶粒分布的板nm和1.8μm。尽管超细晶粒(UFG)合金的拉伸强度比常规材料高得多,但塑料应变控制的低周疲劳试验的结果表明,这三种材料在一系列塑料中均表现出相同的疲劳寿命应变幅度。 CM材料在第一个循环中表现出软化,类似于通过常规粉末冶金法生产的其他合金,随后在淬火前连续硬化至饱和。这项研究报告的结果表明,CM材料的疲劳变形伴随有轻微的晶粒长大,晶粒边界处的位错钉扎以及晶粒旋转,从而产生了宏观的滑移带,该滑移带局部化了应变,从而形成了一个主要的疲劳裂纹。相反,常规合金表现出孔结构并且具有更多的扩散疲劳损伤累积。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2009年第11期|2622-2630|共9页
  • 作者单位

    Department of Materials Science and Engineering The Ohio State University Columbus OH 43210 USA;

    Department of Chemical Engineering and Materials Science University of California Davis CA 95616 USA;

    Department of Chemical Engineering and Materials Science University of California Davis CA 95616 USA;

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