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Processing and characterisation of carbon nanotube-reinforced magnesium alloy composite foams by rapid microwave sintering

机译:快速微波烧结法制备碳纳米管增强镁合金复合泡沫及其表征

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摘要

The present study proposes an efficient processing scheme for fabricating carbon nanotubes (CNTs)-reinforced magnesium (Mg) alloy AZ61 composite foams with enhanced compressive and energy absorption properties. The scheme combines powder metallurgy, rapid microwave (MW) sintering, and pore wall reinforcement to overcome the low strength, non-uniform pore structure, prolonged sintering process, and high production cost associated with conventional unreinforced Mg-based foams. In the proposed scheme, a dual-stage mixing method is used to homogeneously disperse and incorporate CNTs into the matrix for strength enhancement, and susceptor role, and carbamide granules are used to control the pore size and porosity fractions. In addition, MW sintering is used to rapidly consolidate the samples in 20 min through the synergy between an external and an internal susceptor (i.e. CNTs), which facilitates uniform and volumetric heating of the entire samples. Thus, sample oxidation and the formation of deleterious secondary phases are minimised, while up to 69% energy is saved. Experimental results show that the dispersion and incorporation of CNTs into the matrix, via the present processing scheme, clearly enhance the compressive and energy absorption properties of the composite foams, as compared with the unreinforced foams. The proposed processing scheme is a rapid and energy-saving efficient technique, which can be used to fabricate high quality Mg alloy composite foams with improved compression and energy absorption properties.
机译:本研究提出了一种用于制造碳纳米管(CNTs)增强的镁(Mg)合金AZ61复合泡沫的有效处理方案,该泡沫具有增强的压缩和能量吸收特性。该方案结合了粉末冶金,快速微波(MW)烧结和孔壁增强技术,以克服低强度,不均匀的孔结构,延长的烧结过程以及与传统的非增强型镁基泡沫塑料相关的高生产成本。在所提出的方案中,采用两阶段混合方法将碳纳米管均匀分散并掺入基体中以增强强度和感受器作用,并使用尿素颗粒来控制孔径和孔隙率。另外,MW烧结用于通过外部和内部感受器(即CNT)之间的协同作用在20分钟内快速合并样品,这有利于整个样品的均匀和体积加热。因此,样品的氧化和有害的第二相的形成被最小化,同时节省了高达69%的能量。实验结果表明,与未增强的泡沫相比,通过本发明的处理方案,CNT的分散和结合到基质中明显增强了复合泡沫的压缩和能量吸收性能。所提出的加工方案是一种快速且节能高效的技术,可用于制造具有改善的压缩和能量吸收性能的高质量镁合金复合泡沫。

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