Grain growth and strengthening mechanisms of ultrafine-grained CoCrFeNiMn high entropy alloy matrix nanocomposites fabricated by powder metallurgy

2020 ◽  
Vol 819 ◽  
pp. 152937 ◽  
Author(s):  
Yuehuang Xie ◽  
Yifei Luo ◽  
Tian Xia ◽  
Wei Zeng ◽  
Jun Wang ◽  
...  
2021 ◽  
Vol 809 ◽  
pp. 140922
Author(s):  
Qing Liu ◽  
Guofeng Wang ◽  
Yongkang Liu ◽  
Xiaochong Sui ◽  
Yuqing Chen ◽  
...  

2017 ◽  
Vol 125 ◽  
pp. 58-68 ◽  
Author(s):  
Ramya Sree Ganji ◽  
P. Sai Karthik ◽  
K. Bhanu Sankara Rao ◽  
Koteswararao V. Rajulapati

2020 ◽  
Vol 278 ◽  
pp. 128405
Author(s):  
Ruizhi Jian ◽  
Lu Wang ◽  
Shangcheng Zhou ◽  
Yichao Zhu ◽  
Yao-Jian Liang ◽  
...  

Author(s):  
Lavanya Raman ◽  
Ameey Anupam ◽  
G. Karthick ◽  
Christopher C. Berndt ◽  
Andrew Siao Ming Ang ◽  
...  

Crystals ◽  
2021 ◽  
Vol 11 (5) ◽  
pp. 540
Author(s):  
Mohamed Ali Hassan ◽  
Hossam M. Yehia ◽  
Ahmed S. A. Mohamed ◽  
Ahmed Essa El-Nikhaily ◽  
Omayma A. Elkady

To improve the AlCoCrFeNi high entropy alloys’ (HEAs’) toughness, it was coated with different amounts of Cu then fabricated by the powder metallurgy technique. Mechanical alloying of equiatomic AlCoCrFeNi HEAs for 25 h preceded the coating process. The established powder samples were sintered at different temperatures in a vacuum furnace. The HEAs samples sintered at 950˚C exhibit the highest relative density. The AlCoCrFeNi HEAs model sample was not successfully produced by the applied method due to the low melting point of aluminum. The Al element’s problem disappeared due to encapsulating it with a copper layer during the coating process. Because the atomic radius of the copper metal (0.1278 nm) is less than the atomic radius of the aluminum metal (0.1431 nm) and nearly equal to the rest of the other elements (Co, Cr, Fe, and Ni), the crystal size powder and fabricated samples decreased by increasing the content of the Cu wt%. On the other hand, the lattice strain increased. The microstructure revealed that the complete diffusion between the different elements to form high entropy alloy material was not achieved. A dramatic decrease in the produced samples’ hardness was observed where it decreased from 403 HV at 5 wt% Cu to 191 HV at 20 wt% Cu. On the contrary, the compressive strength increased from 400.034 MPa at 5 wt% Cu to 599.527 MPa at 15 wt% Cu with a 49.86% increment. This increment in the compressive strength may be due to precipitating the copper metal on the particles’ surface in the nano-size, reducing the dislocations’ motion, increasing the stiffness of produced materials. The formability and toughness of the fabricated materials improved by increasing the copper’s content. The thermal expansion has increased gradually by increasing the Cu wt%.


2020 ◽  
pp. 158037
Author(s):  
Gang Chen ◽  
Tao Luo ◽  
Shucheng Shen ◽  
Jixiang Zheng ◽  
Xiaotian Tang ◽  
...  

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