Enhancement of the discharge performance of Al-0.5Mg-0.1Sn-0.05Ga (wt.%) anode for Al-air battery by directional solidification technique and subsequent rolling process

The corrosion behavior and discharge characteristics of Al-0.5Mg-0.1Sn-0.05Ga (wt.%) alloys with different grain sizes in 4 M NaOH solution were investigated by collecting hydrogen, electrochemical measurement, discharge test, and microstructure analysis. The results reveal that the coarse-grained m...

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Veröffentlicht in:Journal of alloys and compounds 2020-06, Vol.827, p.154272, Article 154272
Hauptverfasser: Wu, Zibin, Zhang, Haitao, Zou, Jing, Shen, Xiaodong, Qin, Ke, Ban, Chunyan, Cui, Jianzhong, Nagaumi, Hiromi
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Sprache:eng
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Zusammenfassung:The corrosion behavior and discharge characteristics of Al-0.5Mg-0.1Sn-0.05Ga (wt.%) alloys with different grain sizes in 4 M NaOH solution were investigated by collecting hydrogen, electrochemical measurement, discharge test, and microstructure analysis. The results reveal that the coarse-grained microstructure has a lower corrosion rate than the fine-grained one. As the annealing temperature increases, the grain size becomes larger, and more Sn-rich phases are solid-dissolved into the matrix, which results in less hydrogen evolution corrosion. The coarse-grained sample (6532 μm) produced by the directional solidification technique in combination with the rolling process and subsequent annealing at 600 °C has outstanding discharge performance. Its peak energy density reaches approximately 3743.9 Wh·kg−1 (at 40 mA cm−2), which exceeds the reported Al–Mg–Sn–In/Bi, Al–Mg-Ga-Sn-In, Al–Zn–In, Al–Bi–Pb-Ga, and Al–Sn/In/Ga anodes. Also, the anode efficiency and peak energy density of the sample at 40 mA cm−2 is 23.4% and 33.2% higher than that of the as-cast ones, respectively. •Discharge properties of Al–Mg–Sn-Ga anodes were investigated.•Self-corrosion rate (SCR) = 7.9d −1/2 + 0.08 (d is the average grain size).•Peak energy density of the anode reaches about 3743.9 Wh·kg−1 (at 40 mA cm−2).
ISSN:0925-8388
1873-4669
DOI:10.1016/j.jallcom.2020.154272