个人信息Personal Information
教授
博士生导师
硕士生导师
任职 : 大连理工大学宁波研究院
性别:男
毕业院校:清华大学
学位:博士
所在单位:材料科学与工程学院
学科:材料加工工程
办公地点:辽宁省凝固控制与数字化制备技术重点实验室/大连理工大学铸造中心401
联系方式:0411-84709500
电子邮箱:eyguo@dlut.edu.cn
Microstructure evolution, electrical conductivity and mechanical properties of dual-scale Cu5Zr/ZrB2 particulate reinforced copper matrix composites
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论文类型:期刊论文
发表时间:2019-08-05
发表刊物:MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING
收录刊物:SCIE、EI
卷号:762
ISSN号:0921-5093
关键字:Copper matrix composite; In-situ reaction; Cryorolling; Nanotwins; Elevated temperature tensile properties
摘要:Cu-0.3 wt% Zr alloys incorporated with varying ZrB2 levels were prepared by adjusting Zr/B addition rates via in-situ synthesis. Micro-scale ZrB2 particles formed through in-situ reactions between Zr and B in copper melt and nano-scale Cu5Zr precipitates formed upon aging treatment. The composites thus produced exhibited desired combination of mechanical properties and electrical conductivity. This paper investigates the effects of cryorolling and aging treatment on the microstructures and properties of the composites. Compared with traditional rolling process, the ultimate tensile strength of cryorolled Cu-0.3Zr-1ZrB(2) composites increased from 541.9 MPa to 599.6 MPa without sacrificing too much electrical conductivity. The contributions of different strengthening mechanisms due to the dual-scale particles, twins, and dislocations were quantitatively calculated and the results showed good agreement with the experimentally measured data. Also revealed in this work is that the mechanical performance of Cu-0.3Zr-xZrB(2) composites is relatively superior with respect to Cu-0.3Zr at 573 K, indicating that ZrB2 is in favor of enhancing the resistance to thermo-softening.