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兰州理工大学 [3]
金属研究所 [2]
上海应用物理研究所 [2]
宁波材料技术与工程研... [1]
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内容类型
期刊论文 [8]
会议论文 [1]
发表日期
2020 [9]
学科主题
Chemistry [1]
Electroche... [1]
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发表日期:2020
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Effect of Cr addition on microstructure and welding solidification cracking susceptibility of Co-Al-W based superalloys
期刊论文
JOURNAL OF MANUFACTURING PROCESSES, 2020, 卷号: 56, 页码: 820-829
作者:
Liu, Caiyun
;
Sun, Yuan
;
Wen, Mingyue
;
He, Tong
;
Yu, Jinjiang
收藏
  |  
浏览/下载:12/0
  |  
提交时间:2021/02/02
Cobalt-base superalloys
M6C carbides
Welding solidification cracking susceptibility
Solidification temperature range
Serrated grain boundary
Solidification sub-grain boundary
Effect of Cr addition on microstructure and welding solidification cracking susceptibility of Co-Al-W based superalloys
期刊论文
JOURNAL OF MANUFACTURING PROCESSES, 2020, 卷号: 56, 页码: 820-829
作者:
Liu, Caiyun
;
Sun, Yuan
;
Wen, Mingyue
;
He, Tong
;
Yu, Jinjiang
收藏
  |  
浏览/下载:16/0
  |  
提交时间:2021/02/02
Cobalt-base superalloys
M6C carbides
Welding solidification cracking susceptibility
Solidification temperature range
Serrated grain boundary
Solidification sub-grain boundary
Evolution of the mechanical properties of a cobalt-based alloy under thermal shocks
期刊论文
Materials and Design, 2020, 卷号: 188
作者:
Wen, Junxia
;
Che, Hongyan
;
Cao, Rui
;
Dong, Hao
;
Ye, Youxiong
收藏
  |  
浏览/下载:18/0
  |  
提交时间:2020/11/14
Carbides
Electronics packaging
Hot isostatic pressing
Mechanical properties
Microstructural evolution
Nanoindentation
Scanning electron microscopy
Sintering
Thermal fatigue
Thermal shock
Carbide particles
Cobalt base alloys
Cobalt based alloy
Energy dispersion spectrum
High stress concentration
Nanoindentation tests
Reduced modulus
Thermal fatigue cracks
Evolution of the mechanical properties of a cobalt-based alloy under thermal shocks
会议论文
作者:
Wen, Junxia
;
Che, Hongyan
;
Cao, Rui
;
Dong, Hao
;
Ye, Youxiong
收藏
  |  
浏览/下载:2/0
  |  
提交时间:2020/12/18
Carbides
Electronics packaging
Hot isostatic pressing
Mechanical properties
Microstructural evolution
Nanoindentation
Scanning electron microscopy
Sintering
Thermal fatigue
Thermal shockCarbide particles
Cobalt base alloys
Cobalt based alloy
Energy dispersion spectrum
High stress concentration
Nanoindentation tests
Reduced modulus
Thermal fatigue cracks
Nickel cobalt sulfide nanoparticles grown on titanium carbide MXenes for high-performance supercapacitor
期刊论文
ELECTROCHIMICA ACTA, 2020, 卷号: 332
作者:
He, Xingxing
;
Bi, Tiantian
;
Zheng, Xuan
;
Zhu, Weijun
;
Jiang, Jinlong
收藏
  |  
浏览/下载:6/0
  |  
提交时间:2020/06/02
Nickel cobalt sulfides
Ti3C2 MXene
Synergistic effect
Asymmetric supercapacitor
Bottom-up Design of Bimetallic Cobalt-Molybdenum Carbides/Oxides for Overall Water Splitting
期刊论文
CHEMISTRY-A EUROPEAN JOURNAL, 2020, 页码: 9
作者:
Liu, Rongji
;
Anjass, Montaha
;
Greiner, Simon
;
Liu, Si
;
Gao, Dandan
收藏
  |  
浏览/下载:10/0
  |  
提交时间:2020/03/24
Composites
Electrocatalysis
Polyoxometalates
Self-assembly
Water Splitting
Cobalt Nanoparticles Modified Single-Walled Titanium Carbonitride Nanotube Derived from Solid-Solid Separation for Oxygen Reduction Reaction in Alkaline Solution
期刊论文
ELECTROCATALYSIS, 2020, 卷号: 11, 期号: 6, 页码: 579-592
作者:
Rasaki, Sefiu Abolaji
;
Chen, Zhangwei
;
Shen, Hangjia
;
Guo, Haichuan
;
Thomas, Tiju
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  |  
浏览/下载:76/0
  |  
提交时间:2020/12/16
CATALYST
NITRIDE
CARBIDE
CO
ELECTROCATALYST
NANOCRYSTALS
ADSORPTION
STABILITY
EVOLUTION
EFFICIENT
Tuning the interfaces of Co-Co2C with sodium and its relation to the higher alcohol production in Fischer-Tropsch synthesis
期刊论文
JOURNAL OF MATERIALS SCIENCE, 2020, 卷号: 55, 期号: 21, 页码: 9037-9047
作者:
Liu, Y
;
He, S
;
Yang, RO
;
Sun, FF
;
Yang, YQ
收藏
  |  
浏览/下载:10/0
  |  
提交时间:2021/09/06
RAY-ABSORPTION SPECTROSCOPY
CATALYSTS
SYNGAS
CONVERSION
COBALT
OLEFINS
NANOPARTICLES
SELECTIVITY
Effects of cobalt carbide on Fischer-Tropsch synthesis with MnO supported Co-based catalysts
期刊论文
JOURNAL OF ENERGY CHEMISTRY, 2020, 卷号: 42, 页码: 227-232
作者:
Sun, FF
;
Yang, RO
;
Xia, ZM
;
Yang, YQ
;
Zhao, Z
收藏
  |  
浏览/下载:35/0
  |  
提交时间:2021/09/06
HIGHER ALCOHOLS
METHANE AROMATIZATION
CARBON-MONOXIDE
SELECTIVITY
CONVERSION
OLEFINS
SYNGAS
CELLULOSE
SODIUM
LA2O3
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