多壁碳纳米管增强铝-6061金属基复合材料的腐蚀研究

K. Preethi, T. Raju, H. A. Shivappa
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摘要

以碳纳米管为增强材料的金属基复合材料具有优异的材料性能和较高的强度。CNTs在Al基体中的均匀分布是增强材料性能的关键现象。通过球磨实现了增强剂的均匀分散。复合材料以低重量、高强度、更好的耐腐蚀性、高冲击强度、增强的刚度和韧性而闻名,这些优点无需维护,并且寿命长。在本研究中,采用高能球磨技术将Al-6061基体中的MWCNTs分散至2wt%。采用双冲模液压机制备了铝碳纳米管复合材料,并在马弗炉中烧结。通过粉末冶金工艺将不同wt%(0、1、1.5和2)的增强剂添加到基材中,并采用失重法和喷雾法分别进行24h、48h和72h的腐蚀研究。在本研究中,CNTs作为增强剂采用不同重量%的1、1.5、2和Al6061合金作为基体材料。采用粉末冶金工艺制备复合材料。采用球磨法制备碳纳米管均匀分散。根据ASTM E9标准制备各种成分的样品,并使用扫描电子显微镜(SEM)研究微观结构。分别在24、48、72小时的间隙进行观测,得到每天的质量损失数据。然后计算腐蚀速率。然后用扫描电镜对腐蚀试样进行分析。结果表明,随着MWCNTs wt%的增加,腐蚀速率降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Corrosion studies of aluminium-6061 metal matrix reinforced with multiwall carbon nanotubes composites
Development of Metal matrix composites using Carbon nanotubes as the reinforcement it possess excellent material properties with improved strength. The evenly distributed CNTs in the Al Matrix is the critical phenomenon in the enhancement of the properties. Through ball milling the uniform dispersion of the reinforcements is been achieved. The composites are known for the low weight, high strength, better corrosion resistant, high impact strength, enhanced stiffness and toughness which require negligible maintenance and survive for long durability. In the present work, high-energy ball milling is accomplished to disperse the MWCNTs up to 2wt% in an Al-6061 matrix. Al-CNT composite was prepared using Hydraulic press with double punch die and sintered in muffle furnace. The reinforcements were added to the base material with different wt% like0, 1, 1.5 and 2 through powder metallurgy procedure, the corrosion studies were conducted as per the Mass loss technique and using spray technique, over a period of 24hrs, 48hrs, and 72hrs. In this work the CNTs used as reinforcement with varying weight % of 1,1.5,2 and Al6061 alloy as a matrix material. The composites were fabricated through powder metallurgy route. Ball milling was done to get homogeneous dispersion of CNT’s. Samples prepared as per ASTM E9 standard for various compositions and investigated for microstructure using scanning Electron microscopy (SEM). The observations were made in the gaps of 24, 48,72hrs and obtained the mass loss data in each day. Later the corrosion rate was calculated. The corroded specimens were then analyzed using SEM. The results revealed that as the wt% of the MWCNTs was increased the Corrosion rate was found to be decreased.
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