Erratum to “Ductility of an ultrastrong glass-crystal nano-dual-phase alloy in sub-micron” [Scripta Materialia 183 (2020) 17–21/ SMM-20-142]

2020 ◽  
Vol 188 ◽  
pp. 183
Author(s):  
Ge Wu ◽  
Jiayong Zhang ◽  
Chang Liu ◽  
Qing Wang ◽  
Jian Lu
Keyword(s):  
2021 ◽  
Vol 566 ◽  
pp. 120886
Author(s):  
Zengrui Wang ◽  
Rui Chen ◽  
Jianbing Qiang ◽  
Shuang Zhang ◽  
Yajun Zhao
Keyword(s):  

2020 ◽  
Vol 188 ◽  
pp. 290-295 ◽  
Author(s):  
Ge Wu ◽  
Ligang Sun ◽  
Linli Zhu ◽  
Chang Liu ◽  
Qing Wang ◽  
...  

2020 ◽  
Vol 183 ◽  
pp. 17-21 ◽  
Author(s):  
Ge Wu ◽  
Jiayong Zhang ◽  
Chang Liu ◽  
Qing Wang ◽  
Jian Lu
Keyword(s):  

Author(s):  
L.J. Chen ◽  
H.C. Cheng ◽  
J.R. Gong ◽  
J.G. Yang

For fuel savings as well as energy and resource requirement, high strength low alloy steels (HSLA) are of particular interest to automobile industry because of the potential weight reduction which can be achieved by using thinner section of these steels to carry the same load and thus to improve the fuel mileage. Dual phase treatment has been utilized to obtain superior strength and ductility combinations compared to the HSLA of identical composition. Recently, cooling rate following heat treatment was found to be important to the tensile properties of the dual phase steels. In this paper, we report the results of the investigation of cooling rate on the microstructures and mechanical properties of several vanadium HSLA steels.The steels with composition (in weight percent) listed below were supplied by China Steel Corporation: 1. low V steel (0.11C, 0.65Si, 1.63Mn, 0.015P, 0.008S, 0.084Aℓ, 0.004V), 2. 0.059V steel (0.13C, 0.62S1, 1.59Mn, 0.012P, 0.008S, 0.065Aℓ, 0.059V), 3. 0.10V steel (0.11C, 0.58Si, 1.58Mn, 0.017P, 0.008S, 0.068Aℓ, 0.10V).


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