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用低体积分数纳米氮化钛颗粒增强整体纯镁以提高拉伸和压缩性能。

Reinforcing Low-Volume Fraction Nano-TiN Particulates to Monolithical, Pure Mg for Enhanced Tensile and Compressive Response.

作者信息

Meenashisundaram Ganesh Kumar, Nai Mui Hoon, Almajid Abdulhakim, Gupta Manoj

机构信息

Department of Mechanical Engineering, National University of Singapore, 9 Engineering Drive 1, Singapore 117576, Singapore.

Mechanical Engineering Department, College of Engineering, King Saud University, PO Box 800, Riyadh 11421, Saudi Arabia.

出版信息

Materials (Basel). 2016 Feb 26;9(3):134. doi: 10.3390/ma9030134.

Abstract

Novel Mg (0.58, 0.97, 1.98 and 2.5) vol. % TiN nanocomposites containing titanium nitride (TiN) nanoparticulates of ~20 nm size are successfully synthesized by a disintegrated melt deposition technique followed by hot extrusion. Microstructural characterization of Mg-TiN nanocomposites indicate significant grain refinement with Mg 2.5 vol. % TiN exhibiting a minimum grain size of ~11 μm. X-ray diffraction studies of Mg-TiN nanocomposites indicate that addition of up to 1.98 vol. % TiN nanoparticulates aids in modifying the strong basal texture of pure Mg. An attempt is made to study the effects of the type of titanium (metal or ceramic), size, and volume fraction addition of nanoparticulates on the microstructural and mechanical properties of pure magnesium. Among the major strengthening mechanisms contributing to the strength of Mg-Ti-based nanocomposites, Hall-Petch strengthening was found to play a vital role. The synthesized Mg-TiN nanocomposites exhibited superior tensile and compression properties indicating significant improvement in the fracture strain values of pure magnesium under loading. Under tensile and compression loading the presence of titanium (metal or ductile phase) nanoparticulates were found to contribute more towards the strengthening, whereas ceramics of titanium (brittle phases) contribute more towards the ductility of pure magnesium.

摘要

通过熔体破碎沉积技术随后进行热挤压,成功合成了新型的体积分数分别为0.58%、0.97%、1.98%和2.5%的含尺寸约为20nm氮化钛(TiN)纳米颗粒的Mg-TiN纳米复合材料。Mg-TiN纳米复合材料的微观结构表征表明,Mg 2.5体积%TiN具有显著的晶粒细化,其最小晶粒尺寸约为11μm。Mg-TiN纳米复合材料的X射线衍射研究表明,添加高达1.98体积%的TiN纳米颗粒有助于改变纯Mg的强基面织构。尝试研究钛的类型(金属或陶瓷)、纳米颗粒的尺寸和体积分数添加量对纯镁微观结构和力学性能的影响。在对Mg-Ti基纳米复合材料强度有贡献的主要强化机制中,发现Hall-Petch强化起了至关重要的作用。合成的Mg-TiN纳米复合材料表现出优异的拉伸和压缩性能,表明在加载下纯镁的断裂应变值有显著提高。在拉伸和压缩加载下,发现钛(金属或韧性相)纳米颗粒的存在对强化贡献更大,而钛的陶瓷(脆性相)对纯镁的延展性贡献更大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df91/5456740/2be541ed8de7/materials-09-00134-g001.jpg

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