CNTs reinforced Al-based composites produced via modified flake powder metallurgy

被引:0
作者
B. Sadeghi
P. Cavaliere
机构
[1] Slovak Academy of Sciences,Centre of Excellence for Advanced Materials Application
[2] University of Salento,Department of Innovation Engineering
来源
Journal of Materials Science | 2022年 / 57卷
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摘要
The bimodal Al–Mg alloy structure reinforced with carbon nanotubes was evaluated after the composites production through a modified flake metallurgy technique followed by hot extrusion. The obtained bimodal microstructure of the matrix allowed to identify the microstructural mechanisms, leading to high strength, uniform elongation and strain hardening ability of the produced composites. The effect of the reinforcing phases percentages on the dislocations mechanisms evolution was evaluated through stress relaxation tests, leading to the underlying of the effect of reinforcing phases on the modification of the interphase influence zone. The results revealed that the deformation mechanism for unreinforced Al–Mg materials was forest dislocation cutting, whereas for CNT reinforcing Al–Mg composite was grain boundary and interface mediated straining. In fact, for Al–Mg/CNT composite, a task allocation occurred during the deformation process, namely at the early deformation stage by forest dislocation cutting and afterward at later deformation stage by dislocation/grain boundary/interface interaction.
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页码:2550 / 2566
页数:16
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共 315 条
[31]  
Kim W(2012)An extended finite element method (XFEM) study on the effect of reinforcing particles on the crack propagation behavior in a metal–matrix composite Int J Fatigue 44 533-570
[32]  
Wu C(2020)High strength and high ductility copper matrix composite reinforced by graded distribution of carbon nanotubes Composites A 138 1993-8206
[33]  
Ma WX(2017)Balanced strength and ductility in CNT/Al composites achieved by flake powder metallurgy via shift-speed ball milling Composites A 96 7403-3554
[34]  
Chen YP(2011)An analysis of the factors affecting strengthening in carbon nanotube reinforced aluminum composites Carbon 49 2397-255
[35]  
Li Y(2012)The use of flake powder metallurgy to produce carbon nanotube (CNT)/aluminum composites with a homogenous CNT distribution Carbon 50 3015-45
[36]  
Chen Y(2008)Dynamic observations of deformation in an ultrafine-grained Al–Mg alloy with bimodal grain structure J Mater Sci 43 297-22
[37]  
Li J(2006)Modeling the constitutive response of bimodal metals Metall Mater Trans A 37 931-81
[38]  
Sadeghi B(2006)Strain rate dependence of properties of cryomilled bimodal 5083 Al alloys Acta Mater 54 549-481
[39]  
Cavaliere P(2003)Al–Mg alloy engineered with bimodal grain size for high strength and increased ductility Scripta Mater 49 8202-815
[40]  
Nosko M(2018)Effect of processing parameters on microstructural and mechanical properties of aluminum–SiO2 nanocomposites produced by spark plasma sintering Int J Mater Res 11 1524-33