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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Face centered cubic titanium in high pressure torsion processed carbon nanotubes reinforced titanium composites
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Face centered cubic titanium in high pressure torsion processed carbon nanotubes reinforced titanium composites

机译:高压扭转加工碳纳米管加固钛复合材料的面向中心立方钛

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摘要

Carbon nanotube reinforced titanium (CNT/Ti) composites with high tensile strength (872 +/- 5 MPa) were synthesized by the high pressure torsion process (HPT). C-s-corrected high resolution transmission electron microscopy (TEM) revealed face centered cubic titanium (FCC-Ti) distributed in the grains and at the grain boundaries of a hexagonal close packed titanium (HCP-Ti) matrix, with an orientation relationship of [0002](HCP)//[11 (1) over bar](FCC) and {2 (11) over bar0}(HCP)//{011}(FCC) between FCC-Ti and HCP-Ti. The phase transformation from a HCP-Ti structure to a FCC-Ti structure in the CNT/Ti composites during the HPT process made a significant impact on the mechanical properties. Combining experimental results with density functional theory calculations, the stability of FCC-Ti and HCP-Ti under external pressure were analyzed. Moreover, the nucleation and growth mechanisms of FCC-Ti phase in HCP-Ti matrix were identified. The results showed that the stress-induced phase transformation from HCP-Ti to FCC-Ti in the CNT/Ti composites during the HPT process is associated with the source of Shockley partial dislocations. This work helps to the better understanding of the phase transformation mechanism from a HCP-Ti structure to a FCC-Ti structure in CNT/Ti composites. (C) 2019 Elsevier B.V. All rights reserved.
机译:碳纳米管增强的钛(CNT / Ti)的具有高拉伸强度(872 +/- 5兆帕)复合材料是由高压扭转过程(HPT)合成。 CS校正的高分辨率透射电子显微镜(TEM)揭示了分布在晶粒中的面为中心的立方钛(FCC-TI),并以六边形关闭填充钛(HCP-TI)基质的晶界,具有[0002的方向关系(HCP)// [11(1)上方的条形图(FCC)和FCC-TI和HCP-TI之间的BAR0}(HCP)// {011}(FCC))。在HPT工艺期间,从HCP-TI结构到CNT / Ti复合材料中的FCC-TI结构的相变对机械性能产生了重大影响。将实验结果与密度泛函理论计算相结合,分析了FCC-Ti和HCP-Ti在外部压力下的稳定性。此外,鉴定了HCP-Ti基质中FCC-TI相中的成核和生长机制。结果表明,从HCP-Ti系的应力诱导相变到FCC钛在CNT / Ti的复合材料在HPT过程与Shockley不全位错的源相关联。该作品有助于更好地理解从HCP-TI结构到CNT / TI复合材料中的FCC-TI结构的相变机制。 (c)2019 Elsevier B.v.保留所有权利。

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