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(CuMnNi)_(100-x)Al_(x)高熵铜合金的显微组织、力学与摩擦学性能研究 被引量:4
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作者 柏伟 张爱军 +2 位作者 孟军虎 韩杰胜 吴有智 《摩擦学学报》 EI CAS CSCD 北大核心 2021年第5期609-618,共10页
针对工业领域对新型高强高耐磨金属材料的需求,制备了(CuMnNi)_(100-x)Al_(x)(x=0,5,10,15)系列高熵铜合金,研究了Al含量对高熵铜合金的物相组成、显微组织、力学性能和摩擦磨损性能的影响.结果表明:CuMnNi高熵合金仅由面心立方结构(FCC... 针对工业领域对新型高强高耐磨金属材料的需求,制备了(CuMnNi)_(100-x)Al_(x)(x=0,5,10,15)系列高熵铜合金,研究了Al含量对高熵铜合金的物相组成、显微组织、力学性能和摩擦磨损性能的影响.结果表明:CuMnNi高熵合金仅由面心立方结构(FCC)的高熵固溶体相组成,Al元素的添加对合金基体FCC相产生了强烈的固溶强化作用,并促进了体心立方(BCC)相形成.FCC相具有良好的塑性和韧性,而BCC相具有高强度和高硬度,两者共同作用使(CuMnNi)_(100-x)Al_(x)系列高熵铜合金的强度随Al含量增加而提高,而塑性和韧性不断降低.其中,(CuMnNi)_(90)Al_(10)高熵铜合金中FCC相和BCC相的含量达到最佳匹配,使其具有优异的综合力学性能.室温下,得益于优异的力学性能和硬质BCC相良好的抗磨作用,(CuMnNi)_(90)Al_(10)高熵铜合金的耐磨性优于常规耐磨铝青铜C6161,磨粒磨损为其主要磨损机制. 展开更多
关键词 高熵铜合金 (CuMnNi)_(100-x)Al_(x) 显微组织 力学性能 摩擦学性能
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Modifying element diffusion pathway by transition layer structure in high-entropy alloy particle reinforced Cu matrix composites 被引量:2
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作者 Hao-yang YU Wei FANG +2 位作者 Ruo-bin CHANG Pu-guang JI Qing-zhou WANG 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2019年第11期2331-2339,共9页
The Al0.3CoCrFeNi high-entropy alloy(HEA)particles reinforced Cu matrix composites(CMCs)were fabricated by mechanical alloying and sintering.Transition layer structure was obtained by multi-step ball milling to invest... The Al0.3CoCrFeNi high-entropy alloy(HEA)particles reinforced Cu matrix composites(CMCs)were fabricated by mechanical alloying and sintering.Transition layer structure was obtained by multi-step ball milling to investigate the related influence on element diffusion behavior and wear properties of CMCs.The results indicate that a new Cu transition layer is generated,and the thickness is about 5μm.Cr element diffuses into the interface via the transition layer,which forms the complex oxide.Because of the structure of Cu transition layer,the diffusion rates of Ni,Co and Fe increase,especially the Ni element.The wear resistance of CMCs is improved by 30%,which is due to the improvement of interface bonding strength,compared with the CMCs without transition layer.This method is applicable to the development of advanced HEA reinforced metallic matrix composites. 展开更多
关键词 high-entropy alloy copper-matrix composites transition layer structure diffusion WEAR
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