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NbC含量和烧结温度对TiN_(0.3)-NbC复合材料微观结构与性能的影响 被引量:1
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作者 邹芹 张扬 +2 位作者 李艳国 罗永安 王蕾 《硬质合金》 CAS 2021年第6期387-394,共8页
NbC和TiN_(x)都具有岩盐结构(NaCl结构),且均有着优异的力学性能,但是存在着难以烧结和脆性大的问题。本文利用放电等离子烧结(SPS)的方式,探究了不同含量(0%~40%,质量分数)的NbC和不同的烧结温度(1300~1600℃)对TiN_(0.3)-NbC复合材料... NbC和TiN_(x)都具有岩盐结构(NaCl结构),且均有着优异的力学性能,但是存在着难以烧结和脆性大的问题。本文利用放电等离子烧结(SPS)的方式,探究了不同含量(0%~40%,质量分数)的NbC和不同的烧结温度(1300~1600℃)对TiN_(0.3)-NbC复合材料微观结构与性能的影响。分析发现,复合烧结过程中,TiN_(0.3)与NbC相互扩散形成了单相(Ti,Nb)(N,C)_(x)型固溶体。实验结果表明,当烧结温度为1600℃时,随着NbC含量的增加,TiN_(0.3)-NbC复合材料的硬度和韧性都呈先上升后下降的趋势,NbC含量为30%时,硬度和韧性同时达到最大值,分别为22.4 GPa和7.39 MPa·m^(1/2)。另外,随着烧结温度的提高,1600℃时,TiN_(0.3)-15%NbC复合材料的韧性达到了7.68 MPa·m^(1/2),而在1500℃时,TiN_(0.3)-15%NbC复合材料的硬度最大,为22.39 GPa。 展开更多
关键词 nbc复合材料 TiN_(0.3) 烧结参数 扩散 微观结构 性能
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Preparation of in-situ Cu/NbC nanocomposite and its functionally graded behavior for electrical contact applications
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作者 S.GHOLAMI SHIRI P.ABACHI +1 位作者 K.POURAZARANG M.MOHAMMADI RAHVARD 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2015年第3期863-872,共10页
Cu&ndash;15%NbC (volume fraction) powder was synthesized using the starting powders of Cu, Nb and graphite in a high energy vibratory disc mill for 7 h of milling under argon atmosphere. A composite sample and a C... Cu&ndash;15%NbC (volume fraction) powder was synthesized using the starting powders of Cu, Nb and graphite in a high energy vibratory disc mill for 7 h of milling under argon atmosphere. A composite sample and a Cu/NbC functionally graded material (FGM) sample were produced by using the two-step press and sintering at 900 &deg;C for 1 h under vacuum. The microstructure and physical and mechanical properties of the specimens were investigated. The field emission scanning electron microscopy, energy dispersive X-ray and X-ray diffraction analysis confirmed the synthesis of the nanostructure matrix of 18&ndash;27 nm with the nanoparticles reinforcement of 42 nm after sintering, verifying the thermal stability of this composite at high temperature. The hardness of Cu&ndash;15%NbC was five times greater than that of the pure Cu specimen. The volume reduction of the sample after the wear test decreased in comparison with the pure Cu specimen. The electrical conductivity of the composite specimen decreased to 36.68% IACS. The FGM specimen exhibited high electrical conductivity corresponding to 75.83% IACS with the same hardness and wear properties as those of the composite sample on the composite surface. Thus, Cu/NbC FGM with good mechanical and electrical properties can be a good candidate for electrical contact applications. 展开更多
关键词 Cu/nbc nanocomposite in-situ composite mechanical alloying electrical contact wear behavior
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