碳纳米管(CNTs)在钛及其合金中的分散方法评价:文献综述

O. Ajiteru, T. Tshephe, A. M. Okoro, P. Olubambi, S. Lephuthing, M. Lesufi
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引用次数: 6

摘要

钛(Ti)及其合金用于反应器,生物医学,飞机,海军舰艇,航天器,装甲电镀等多个应用领域。这是由于它们具有优异的耐腐蚀性,抗疲劳性,高抗拉强度与重量比,以及它们承受中等高温而不蠕变的能力。然而,它们也有一定的局限性,包括耐磨性差、硬度低、杨氏模量和耐热性。为了改善这些性能,已经使用了各种增强剂,例如,陶瓷(TiB, TiB2, SiC, Al2O3和TiC)有助于增加刚度和稳定性,金属(例如钨,W)可以提高材料的硬度和抗拉强度。然而,另一方面,碳纳米管(CNTs)的出现显示出巨大的潜力,极大地增加了钛及其合金的性能和用途。由于在金属基复合材料(MMCs)中使用碳纳米管作为增强剂的主要问题是实现均匀分散,因此本研究旨在综述在Ti及其合金中分散碳纳米管的不同方法。通过文献综述,确定溶液球磨机(SBM)是一种很好的分散方法,但并非完全有效,研究人员还需要做更多的工作,以获得最佳的力学性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of the methods of dispersion of carbon nanotubes (CNTs) in titanium and its alloys: Literature review
Titanium (Ti) and its alloys are used in several areas of application such as reactors, biomedical, aircraft, naval ships, spacecraft, armor plating amongst others. This is due to their exceptional corrosion resistance, fatigue resistance, high tensile strength to weight ratio coupled with their ability to withstand moderately high temperatures without creep. However, they exhibit certain limitations, some of which include inferior wear resistance, low hardness, young's modulus and heat resistance. In an attempt to improve these properties, various reinforcements have been utilized for instance, ceramics (TiB, TiB2, SiC, Al2O3, and TiC) which helps to increase the stiffness and stability, metals (e.g. tungsten, W) that fosters the hardness and tensile strength of the material. However, the advent of carbon nanotubes (CNTs) on the other hand has shown to hold a great potential to tremendously augment the properties and use of Titanium and its alloys. Since the major problem associated with CNTs as reinforcement in metal matrix composites (MMCs) is achieving homogenous dispersion, this study aims at reviewing the different methods of dispersing CNTs in Ti and its alloy. The literature review carried out in this work has identified solution ball mill (SBM) as a good method of dispersion, although it's not completely effective and more work still needs to be done by researchers so as to obtain optimal mechanical properties from the process.
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