Acta Metallurgica Sinica (English Letters) ›› 2019, Vol. 32 ›› Issue (4): 433-442.DOI: 10.1007/s40195-018-0792-7
Special Issue: 2019年镁合金专辑; 2019年腐蚀专辑-2
• Orginal Article • Previous Articles Next Articles
Shuang Yu1,3, Rui-Ling Jia1(), Tao Zhang2, Fu-Hui Wang2, Jian Hou3, Hui-Xia Zhang3
Received:
2018-05-02
Revised:
2018-06-16
Online:
2019-04-10
Published:
2019-04-19
Contact:
Jia Rui-Ling
About author:
Dr. Kun-Kun Deng was born in 1983 and was awarded Ph. D in Harbin University of Technology in 2011. After graduation, he worked in the College of Materials Science and Engineering, Taiyuan University of Technology. At the same time, he continued his research work on the design, fabrication and processing of advanced Mg-based material in. Now, he is the vice chairman of Youth Committee in Magnesium Alloy Branch of Chinese Materials Research Society. He was denoted as young academic pacemaker of Shanxi Province in 2018. He has held two projects of National Nature Science Foundation of China, one project of Specialized Research Fund for the Doctoral Program of Higher Education, one Project of International Cooperation in Shanxi and two projects of Natural Science Foundation of Shanxi. He has published more than 60 articles. The time cited is more than 840 (without selfcitations), and the H-index is 22. In addition, he has published one academic monograph and acquired eight Chinese patents.
Shuang Yu, Rui-Ling Jia, Tao Zhang, Fu-Hui Wang, Jian Hou, Hui-Xia Zhang. Effect of Different Scale Precipitates on Corrosion Behavior of Mg- 10Gd-3Y-0.4Zr Alloy[J]. Acta Metallurgica Sinica (English Letters), 2019, 32(4): 433-442.
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Fig. 3 β′ phase in GW103K alloy after aging at 498 K for 193 h: a TEM image; b SAED pattern; c high-resolution TEM image taken along 〈0001〉Mg zone; d the corresponding FT patterns. The ring indicates the mask location used for inverse fast FT (FFT) and processed image after inverse FFT corresponding to c
Material | Ecorr (vs. SCE) | Icorr (A/cm2) | βa (V/dec) | βc (V/dec) | Rp (Ω cm2) |
---|---|---|---|---|---|
GW103K-F | -?1.389 | 1.78E-4 | 0.125 | -?0.267 | 573.453 |
GW103K-T4 | -?1.429 | 1.04E-4 | 0.116 | -?0.253 | 894.756 |
GW103K-T6-193 h | -?1.449 | 7.21E-5 | 0.112 | -?0.247 | 1145.033 |
Table 1 Electrochemical parameters obtained from potentiodynamic polarization curves
Material | Ecorr (vs. SCE) | Icorr (A/cm2) | βa (V/dec) | βc (V/dec) | Rp (Ω cm2) |
---|---|---|---|---|---|
GW103K-F | -?1.389 | 1.78E-4 | 0.125 | -?0.267 | 573.453 |
GW103K-T4 | -?1.429 | 1.04E-4 | 0.116 | -?0.253 | 894.756 |
GW103K-T6-193 h | -?1.449 | 7.21E-5 | 0.112 | -?0.247 | 1145.033 |
Fig. 5 Corrosion morphologies of GW103K alloys in different conditions after immersion in 3.5 wt% NaCl solution for 10 min: a as-cast; b T4 treatment; c T6 treatment; dmetallographic image of T6-treated alloy immersed in 3.5 wt% NaCl solution for 30 min
Fig. 6 a HAADF image showing morphologies of β′ phases; b HAADF image showing corrosion morphologies of β′ phases after immersion in 1 mol/L NaCl solution for 15 min; cSEM image showing corrosion morphology of alloy after immersion in 3.5 wt% NaCl solution for 2 h for GW103K alloy in T6 condition
Fig. 7 AFM surface topographies a, d; 3D potential maps b, e; and potential profile of skeleton-like phases c, f in as-cast GW103K alloy a-c and GW103K alloy after aging treatment d-f
Fig. 8 Morphologies and potential map of β′ phase in t GW103K alloy after 193-h aging treatment: a HRTEM image; b AFM surface topography; c two-dimensional potential map; d line profile analysis corresponding to the line L3 shown in c
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