领域:新材料产业 学校:中南大学职称:
...
具体了解该专家信息,请致电:027-87555799 邮箱 haizhi@uipplus.com
Investigation of high-cycle fatigue and fatigue crack propagation characteristic in 5083-O aluminum alloy,International Journal of Fatigue,Volume 126,2019,Pages 357-368 |
||||||
High-temperature pre-sintering: A new strategy to improve the properties of h-BN/CuSn10 matrix composites,Journal of Alloys and Compounds,2019,152325 |
||||||
Microstructure refinement, characterization of tensile behavior and aging resistance of Zr-modified SAC105 solder alloy[J]. Journal of Materials Science Materials in Electronics, 2019, 30(8) |
||||||
Double-shell structure of Al3(Zr,Sc) precipitate induced by thermomechanical treatment of Al–Zr–Sc alloy cable,Journal of Rare Earths,Volume 37, Issue 6,2019,Pages 668-672 |
||||||
Microstructure, mechanical properties, and interfacial reaction with Cu substrate of Zr-modified SAC305 solder alloy,Journal of Alloys and Compounds,Volume 781,2019,Pages 633-643 |
||||||
Relationship between electrical resistivity and Al3(Zr,Sc) core–shell dispersoids of Al–Zr–Sc electrical transmission cable: Modeling and experimental results,Electric Power Systems Research,Volume 168,2019,Pages 1-7 |
||||||
Comparative study of Sc and Er addition on microstructure, mechanical properties, and electrical conductivity of Al-0.2Zr-based alloy cables,Materials Characterization,Volume 145,2018,Pages 126-134 |
||||||
Comparative study of IN600 superalloy produced by two powder metallurgy technologies: Argon Atomizing and Plasma Rotating Electrode Process,Vacuum,Volume 156,2018,Pages 302-309 |
||||||
Influence of deformation and annealing on electrical conductivity, mechanical properties and texture of Al-Mg-Si alloy cables,Materials Science and Engineering: A,Volume 710,2018,Pages 27-37 |
||||||
Surface modification of h-BN and its influence on the mechanical properties of CuSn10/h-BN composites,Journal of Alloys and Compounds,Volume 723,2017,Pages 345-353 |
||||||
Low-temperature creep behavior and microstructural evolution of 8030 aluminum cables,Materials Characterization,Volume 130,2017,Pages 181-187 |
||||||
Effect of scandium micro-alloying on the creep resistance properties of Al-0.7Fe alloy cables,Materials Science and Engineering: A,Volume 699,2017,Pages 194-200 |
||||||
Investigating the influence of ZnO nanowires on the interfacial micro-mechanical behavior of carbon fiber/epoxy microdroplet structures using micro-Raman spectroscopy. Journal of Materials Science, 2017, Pages 3992-4001 |
||||||
Influence of Ce addition on Sn-3.0Ag-0.5Cu solder joints: Thermal behavior, microstructure and mechanical properties,Journal of Alloys and Compounds,Volume 698,2017,Pages 317-328 |
||||||
Semi-quantitative evaluation of texture components and anisotropy of the yield strength in 2524 T3 alloy sheets,Materials Science and Engineering: A,Volume 675,2016,Pages 386-395 |
||||||
Effects of heating rate during solid-solution treatment on microstructure and fatigue properties of AA2524 T3 Al–Cu–Mg sheet Materials & Design Volume 104, 15 August 2016, Pages 116–125 |
||||||
Influence of electric field on microstructure and mechanical properties of an Al-Cu-Li alloy during ageing Materials & Design Volume 98, 15 May 2016, Pages 79–87 | ||||||
Effect of grain sine on the fatigue crack growth behavior of 2524 T3 aluminum alloy Archives of Civil and Mechanical Engineering Volume 16, Issue 3, May 2016, Pages 304–312 | ||||||
Preparation of nickel-coated titanium carbide particulates and their use in the production of reinforced iron matrix composites Materials & Design Volume 52, December 2013, Pages 572–579 |
||||||
应力电场耦合作用对2524铝合金时效动力学影响 稀有金属材料科学与工程 2015.04 V44 No4 | ||||||
粉末冶金TA15钛合金的高温塑性变形行为 粉末冶金材料科学与工程 2013年05期 |
||||||
TA15钛合金的高温蠕变行为 粉末冶金材料科学与工程 2014年02期 | ||||||
应力-电场耦合时效对2524铝合金微观组织的影响 中南大学学报2014年05期 | ||||||
M42 高速钢/X32 弹簧钢电子束焊接温度场的数值模拟与实验研究 粉末冶金材料科学与工程 2015 年 8 月 |
||||||
国家专利 | ||||||
一种适用于电子封装的高尺寸稳定性Sn-Ag-Cu焊料(zl201610290805.3)
一种适用于电子封装的高电导高可靠性Ce-Sn-Ag-Cu焊料(zl201610288123.9)
一种高耐磨铜基材料及其制备方法(zl201610997097.7)
一种可热处理强化的高强高韧铸造铝合金及其制备方法(zl201611247166.9)
一种Al-Mg-Si-Cu-Pr-Nd 稀土铝合金电缆材料及其制备方法(zl201611257418.6)
一种制备铜石墨烯-复合材料方法 (zl201610994624.9)
一种含Hf和Ce的高电导率抗蠕变铝合金电缆导体及制备方法(zl201210249817)
|