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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Enhanced load transfer by designing mechanical interfacial bonding in carbon nanotube reinforced aluminum composites
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Enhanced load transfer by designing mechanical interfacial bonding in carbon nanotube reinforced aluminum composites

机译:通过在碳纳米管增强铝合金复合材料中设计机械界面键合来提高负载转移

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The interfacial native oxide layer always acts as barriers preventing effective interfacial bonding and load transfer in carbon nanotube reinforced aluminum (CNT/Al) composites. In this work, annealingcontrolled reaction between the interfacial native oxide layer and Mg element was attempted to improve interfacial bonding in CNT/AleMg composite, and mechanical interfacial bonding featured with direct CNT-Al contact and well-reserved CNTs was achieved in the 1 h annealed composite. For the 2 h annealed composite, chemical interfacial bonding featured with interfacial aluminum carbide (Al4C3) was established due to progressive interfacial reaction. Further tensile tests and numerical analysis revealed that, owing to barrier-free load path and increased interfacial friction stress, the mechanical interfacial bonding significantly enhanced CNT load transfer effect from 30.9 MPa to 59.4 MPa, which was close to shear-lag model prediction of 59.9 MPa. While, the chemical interfacial bonding led to a combined strengthening effect of 58.8 MPa from CNT-Al4C3 hybrid as a comprised outcome of Al4C3 strengthening and CNT damage. Thus, the design of mechanical interfacial bonding should be a superior strategy for improving interfacial bonding and enhancing mechanical performance in CNT/Al composites, considering its effective protection of CNT structure integrity and suppressed formation of hydrolysable Al4C3 phase. (c) 2019 Elsevier Ltd. All rights reserved.
机译:界面天然氧化物层始终充当屏障,防止碳纳米管增强铝(CNT / Al)复合材料中有效界面粘合和负载转移。在这项工作中,试图在CNT / Alemg复合材料中改善界面天然氧化物层和Mg元素之间的反应,以改善CNT / Alemg复合材料中的界面键合,并在1小时内实现具有直接CNT-Al接触和保留良好的CNT的机械界面键合合成的。对于2小时退火复合材料,由于渐进式界面反应,建立了具有界面碳化铝(AL4C3)的化学界面键合。进一步的拉伸试验和数值分析表明,由于无阻挡载荷路径和增加的界面摩擦应力,机械界面键合显着增强了30.9MPa至59.4MPa的CNT载荷转移效果,这接近剪切滞后模型预测为59.9 MPA。虽然,化学界面键合导致CNT-Al4C3杂交的58.8MPa的组合强化效果,作为Al4C3强化和CNT损伤的包含结果。因此,考虑其有效保护CNT结构完整性和抑制水解AL4C3相的有效保护,应为改善界面粘合和提高CNT / Al复合材料的机械性能的优异策略。 (c)2019年elestvier有限公司保留所有权利。

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