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首页> 外文期刊>Transactions of the Indian Institute of Metals >Role of Different Fractions of Nano-size SiC and Milling Time on the Microstructure and Mechanical Properties of Al-SiC Nanocomposites
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Role of Different Fractions of Nano-size SiC and Milling Time on the Microstructure and Mechanical Properties of Al-SiC Nanocomposites

机译:纳米SiC的不同组分和研磨时间对Al-SiC纳米复合材料的组织和力学性能的影响

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摘要

High energy ball milling was implemented to produce Al-matrix composites reinforced with 2.5, 5, 10, 15 and 20 wt% silicon carbide (SiC) nano-particles. In this regard, Scanning electron microscopy, X-ray diffraction and microhardness tests were applied to clarify the role of milling time and the percentage of nanometric SiC on structural evolutions and mechanical properties of the composites. An increase in the SiC proportion resulted in accelerating the milling process, leading to faster work hardening rate and fracture of the aluminum matrix. Thus, the crystallite size of Al in Al-20wt.%SiC composite reached a low of 20 nm after milling for 25 h and the microstrain trend experienced higher increasing rate in composites with higher amounts of SiC. Similarly, as a result of the rise in SiC percentage, there was a growth in the microhardness of composites. This phenomenon was mainly attributed to grain refinement, explained by Hall-Petch equation. On the other hand, inverse Hall-Petch behavior was observed for a ultra fine-grain sample, Al-20wt.%SiC milled for 25 h.
机译:实施高能球磨以生产用2.5、5、10、15和20 wt%的碳化硅(SiC)纳米颗粒增强的Al基复合材料。在这方面,应用扫描电子显微镜,X射线衍射和显微硬度测试来阐明研磨时间和纳米SiC百分比对复合材料结构演变和机械性能的作用。 SiC比例的增加导致铣削过程的加速,从而导致更快的加工硬化速率和铝基体的断裂。因此,在研磨20 h后,Al-20wt。%SiC复合材料中Al的微晶尺寸达到20 nm的低点,并且在SiC含量较高的复合材料中,微应变趋势出现了更高的增长率。同样,由于SiC百分比的增加,复合材料的显微硬度也有所提高。这种现象主要归因于晶粒细化,由Hall-Petch方程解释。另一方面,对于超细晶粒样品(研磨了25 h的Al-20wt。%SiC),观察到了逆Hall-Petch行为。

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