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首页> 外文期刊>Composites. B, Engineering >Improving the high-cycle fatigue strength of heterogeneous carbon nanotube/Al-Cu-Mg composites through grain size design in ductile-zones
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Improving the high-cycle fatigue strength of heterogeneous carbon nanotube/Al-Cu-Mg composites through grain size design in ductile-zones

机译:通过晶粒区晶粒尺寸设计提高异烯碳纳米管/铝镁/ Al-Cu-Mg复合材料的高循环疲劳强度

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摘要

Heterogeneous structure consisting of brittle-zones (BZs) rich of carbon nanotubes (CNTs) and ductile-zones (DZs) free of CNTs, was an effective way to improve the strength-ductility of CNT reinforced Al (CNT/Al) composites. Two heterogeneous CNT/2009Al composites with coarse grain (CG, -2 mu m) DZs or ultra-fine grain (UFG, -500 nm) DZs were fabricated and achieved enhanced strength-ductility. However, the heterogeneous composite with CG DZs had a lower high-cycle fatigue strength as well as fatigue strength/tensile strength ratio than the uniform composite, while the heterogeneous composite with UFG DZs exhibited the increased fatigue strength and the same level of fatigue strength/tensile strength ratio compared to the uniform composite. It was found that the improved fatigue properties for the heterogeneous composite with the UFG DZs could attribute to two reasons. Firstly, the UFG for the DZs significantly increased the strength of DZs, which effectively reduced the strain localization in the DZs. Secondly, the dislocations piling up at the grain boundaries of the BZs, as well as the stress concentration at the boundaries between the DZs and BZs were relieved due to the coordinated micro-strain for the heterogeneous structure. This provided a simple strategy for the structural design of heterogeneous composites with high fatigue strength.
机译:由富含碳纳米管(CNT)和延展区(DZS)的脆性区(BZS)组成的异质结构是改善CNT增强Al(CNT / Al)复合材料的强度 - 延性的有效途径。制造具有粗晶粒(CG,-2μm)DZ或超细晶粒(UFG,-500nm)DZ的两个异质CNT / 2009A1或超细晶粒(UFG,-500nm),并实现增强的强度 - 延展性。然而,具有CG DZ的非均相复合材料具有较低的高循环疲劳强度以及疲劳强度/拉伸强度比,而均匀的复合材料具有均匀的复合材料,而具有UFG DZ的非均相复合材料表现出增加的疲劳强度和相同水平的疲劳强度/与均匀复合材料相比的拉伸强度比。发现通过UFG DZS改善非均相复合材料的疲劳性能可能归因于两个原因。首先,DZS的UFG显着提高了DZ的强度,这有效地降低了DZS中的应变定位。其次,由于非均相结构的协调的微菌株,抑制了在BZS的晶界,以及DZS和BZ之间的边界处的应力浓度的脱位。这为具有高疲劳强度的异质复合材料的结构设计提供了简单的策略。

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  • 来源
    《Composites. B, Engineering》 |2021年第1期|109094.1-109094.9|共9页
  • 作者单位

    Chinese Acad Sci Shi Changxu Innovat Ctr Adv Mat Inst Met Res 72 Wenhua Rd Shenyang 110016 Peoples R China|Univ Quebec Chicoutimi Dept Appl Sci Saguenay PQ G7H 2B1 Canada;

    Chinese Acad Sci Shi Changxu Innovat Ctr Adv Mat Inst Met Res 72 Wenhua Rd Shenyang 110016 Peoples R China;

    Univ Quebec Chicoutimi Dept Appl Sci Saguenay PQ G7H 2B1 Canada;

    Univ Quebec Chicoutimi Dept Appl Sci Saguenay PQ G7H 2B1 Canada;

    Chinese Acad Sci Shi Changxu Innovat Ctr Adv Mat Inst Met Res 72 Wenhua Rd Shenyang 110016 Peoples R China;

    Chinese Acad Sci Shi Changxu Innovat Ctr Adv Mat Inst Met Res 72 Wenhua Rd Shenyang 110016 Peoples R China;

    Chinese Acad Sci Shi Changxu Innovat Ctr Adv Mat Inst Met Res 72 Wenhua Rd Shenyang 110016 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Metal-matrix composites (MMCs); Carbon nanotube; Fatigue; Powder processing;

    机译:金属矩阵复合材料(MMC);碳纳米管;疲劳;粉末加工;

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