Strengthening mechanisms in CrMoNbTiW refractory high entropy alloy

Author(s):  
Lavanya Raman ◽  
Ameey Anupam ◽  
G. Karthick ◽  
Christopher C. Berndt ◽  
Andrew Siao Ming Ang ◽  
...  
2016 ◽  
Vol 107 ◽  
pp. 59-71 ◽  
Author(s):  
Zhiqiang Fu ◽  
Weiping Chen ◽  
Haiming Wen ◽  
Dalong Zhang ◽  
Zhen Chen ◽  
...  

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

2018 ◽  
Vol 725 ◽  
pp. 196-206 ◽  
Author(s):  
Hamed Shahmir ◽  
Mahmoud Nili-Ahmadabadi ◽  
Ahad Shafiee ◽  
Mariusz Andrzejczuk ◽  
Małgorzata Lewandowska ◽  
...  

2018 ◽  
Vol 4 (10) ◽  
pp. eaat8712 ◽  
Author(s):  
Zhiqiang Fu ◽  
Lin Jiang ◽  
Jenna L. Wardini ◽  
Benjamin E. MacDonald ◽  
Haiming Wen ◽  
...  

High-entropy alloys (HEAs) are a class of metallic materials that have revolutionized alloy design. They are known for their high compressive strengths, often greater than 1 GPa; however, the tensile strengths of most reported HEAs are limited. Here, we report a strategy for the design and fabrication of HEAs that can achieve ultrahigh tensile strengths. The proposed strategy involves the introduction of a high density of hierarchical intragranular nanoprecipitates. To establish the validity of this strategy, we designed and fabricated a bulk Fe25Co25Ni25Al10Ti15 HEA to consist of a principal face-centered cubic (fcc) phase containing hierarchical intragranular nanoprecipitates. Our results show that precipitation strengthening, as one of the main strengthening mechanisms, contributes to a tensile yield strength (σ0.2) of ~1.86 GPa and an ultimate tensile strength of ~2.52 GPa at room temperature, which heretofore represents the highest strength reported for an HEA with an appreciable failure strain of ~5.2%.


2020 ◽  
Vol 159 ◽  
pp. 110037
Author(s):  
Yangchuan Cai ◽  
Lisong Zhu ◽  
Yan Cui ◽  
Keping Geng ◽  
Sunusi Marwana Manladan ◽  
...  

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