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Microstructural thermal stability of CNT-reinforced composites processed by severe plastic deformation

机译:严重塑性变形加工的CNT增强复合材料的微结构热稳定性

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The microstructural thermal stability and mechanical properties of carbon nanotube (CNT)-reinforced Ni matrix composites processed by high pressure torsion (HPT) are investigated. A structural assessment of the CNTs at the different processing steps was performed by means of Raman spectroscopy, not detecting any significant modification of the CNT structure throughout the whole procedure. After deformation, the composites showed a maximum fivefold increase in hardness, related to their microstructure and resembling a Hall-Petch behavior. In order to study the thermal stability, an annealing was made at a homologous temperature of 0.33, which exceeds the grain growth onset temperature for this type of composites. The presence of CNTs helped stabilize the microstructure by pinning the grain boundaries during HPT. This stabilization translated into a significant increase in hardness and remained, to a certain degree, after the thermal treatment. Our results highlight the feasibility of obtaining CNT-reinforced composites by this means, improving the properties without compromising the structural features of the reinforcement and increasing their distribution within the matrix.
机译:研究了高压扭转(HPT)处理的碳纳米管(CNT)增强Ni基复合材料的微观结构热稳定性和力学性能。通过拉曼光谱法在不同的处理步骤中对CNT进行结构评估,未在整个过程中检测到CNT结构的任何显着改变。变形后,复合材料的硬度最高增加了五倍,这与它们的微观结构有关,并且类似于霍尔-帕奇行为。为了研究热稳定性,在0.33的同源温度下进行了退火,该温度超过了此类复合材料的晶粒生长开始温度。 CNT的存在通过在HPT中固定晶界来帮助稳定微观结构。这种稳定化转化为硬度的显着提高,并在热处理后保持一定程度。我们的结果突出了通过这种方法获得CNT增强复合材料,改善性能而不损害增强材料的结构特征以及增加其在基体内的分布的可行性。

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