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首页> 外文期刊>Journal of Materials Engineering and Performance >Effects of Nb Addition and Different Cooling Methods on Microstructures and Properties of Cu-Cr Alloys
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Effects of Nb Addition and Different Cooling Methods on Microstructures and Properties of Cu-Cr Alloys

机译:Nb加法和不同冷却方法对Cu-Cr合金微观结构和性能的影响

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摘要

The Cu-Cr-Nb alloys were prepared by vacuum induction melting with different cooling methods. The effects of niobium contents and different cooling methods on the microstructures and properties of these alloys were investigated. The microstructures were characterized by optical microscope, scanning electron microscope and transmission electron microscope. The electrical conductivity, hardness and the tensile strength of Cu-Cr-Nb alloys were tested as well. The results showed that the as-cast microstructures of Cu-Cr-Nb alloys consist of primary alpha phase dendritic and eutectic phase. With the addition of element Nb, the microstructures were refined and the secondary dendritic arm spacing obviously decreased. Compared with the furnace cooling, the homogeneous and refined microstructures were obtained by the graphite mold, and the hardness of the alloys is enhanced greatly. After the heat treatment, two reinforcing phases of Cr and Cr2Nb are precipitated from the copper matrix. The comprehensive properties were obtained when the Nb content is 0.4%. The Cu-1.2Cr-0.4Nb alloy performed by direct aging treatment without solution treatment exhibits the higher performance, the hardness and electrical conductivity are 143HB and 84%IACS, respectively. In addition, the tensile strength and the elastic limit of the Cu-1.2Cr-0.4Nb alloy can reach up to 413.0 and 238 MPa.
机译:通过用不同的冷却方法真空诱导熔融制备Cu-Cr-Nb合金。研究了铌含量和不同冷却方法对这些合金的微观结构和性质的影响。光学显微镜,扫描电子显微镜和透射电子显微镜的特征在于微观结构。测试Cu-Cr-Nb合金的电导率,硬度和拉伸强度。结果表明,Cu-Cr-Nb合金的铸型微观结构由初级α相树枝状和共晶相组成。随着元素Nb的加入,精细结构精制,次级树突臂间距明显降低。与炉冷却相比,通过石墨模具获得均匀和精细的微观结构,并且大大提高了合金的硬度。在热处理之后,从铜基质中沉淀出Cr和Cr2NB的两种增强阶段。当Nb含量为0.4%时获得综合性质。通过直接老化处理的Cu-1.2Cr-0.4NB合金,无溶液处理表现出更高的性能,硬度和导电性分别为143HB和84%IACS。另外,Cu-1.2Cr-0.4NB合金的拉伸强度和弹性极限可达413.0和238MPa。

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