Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution

© 2018 Trans Tech Publications, Switzerland. Zn-Mg alloys containing up to 5.28 wt.%Mg were prepared by gravity casting. Light and scanning electron microscopy with energy-dispersive X-ray spectrometry were used to characterize their as-cast microstructure as compared to that of pure zinc. The alloy...

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Main Authors: Sankum Nusen, Sunsanee Komboonchoo, Noppadol Yottawee, Torranin Chairuangsri
Format: Book Series
Published: 2018
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http://cmuir.cmu.ac.th/jspui/handle/6653943832/62749
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Institution: Chiang Mai University
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spelling th-cmuir.6653943832-627492018-11-29T07:58:20Z Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution Sankum Nusen Sunsanee Komboonchoo Noppadol Yottawee Torranin Chairuangsri Materials Science Physics and Astronomy © 2018 Trans Tech Publications, Switzerland. Zn-Mg alloys containing up to 5.28 wt.%Mg were prepared by gravity casting. Light and scanning electron microscopy with energy-dispersive X-ray spectrometry were used to characterize their as-cast microstructure as compared to that of pure zinc. The alloy with 3.60 wt.%Mg was found to be eutectic. Phase identification by X-ray diffractometry suggested that the eutectic Mg-rich phase wasMg2 Zn11 with two types of intermetallic compounds, including Mg2 Zn11 and MgZn2, present in the alloy with 5.28 wt.%Mg. The microhardness increased with increasing Mg content from 41 HV for pure zinc to 266 HV for the alloy with 5.28 wt.%Mg. The electrochemical behavior of the alloys was studied by potentiodynamic polarization test at room temperature using 8.5 M KOH solution as electrolyte. Hydrogen evolution was generally postponed for the cases of Zn-Mg alloys as compared to pure zinc. The corrosion potential (Ecorr) was not significantly affected by Mg addition into Zn, while the corrosion current density (icorr) was significantly increased, especially for the case of the alloy with 3.60 wt.%Mg, as compared to that of pure zinc. It can be proposed that, due to its relatively higher hydrogen overpotential and uniform corrosion in KOH solution, the eutectic alloy with 3.60 wt.%Mg can be an alternative to pure zinc for use as anode in applications related to alkaline electrolyte. 2018-11-29T07:46:59Z 2018-11-29T07:46:59Z 2018-01-01 Book Series 16629779 2-s2.0-85055436039 10.4028/www.scientific.net/SSP.283.107 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85055436039&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/62749
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Materials Science
Physics and Astronomy
spellingShingle Materials Science
Physics and Astronomy
Sankum Nusen
Sunsanee Komboonchoo
Noppadol Yottawee
Torranin Chairuangsri
Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution
description © 2018 Trans Tech Publications, Switzerland. Zn-Mg alloys containing up to 5.28 wt.%Mg were prepared by gravity casting. Light and scanning electron microscopy with energy-dispersive X-ray spectrometry were used to characterize their as-cast microstructure as compared to that of pure zinc. The alloy with 3.60 wt.%Mg was found to be eutectic. Phase identification by X-ray diffractometry suggested that the eutectic Mg-rich phase wasMg2 Zn11 with two types of intermetallic compounds, including Mg2 Zn11 and MgZn2, present in the alloy with 5.28 wt.%Mg. The microhardness increased with increasing Mg content from 41 HV for pure zinc to 266 HV for the alloy with 5.28 wt.%Mg. The electrochemical behavior of the alloys was studied by potentiodynamic polarization test at room temperature using 8.5 M KOH solution as electrolyte. Hydrogen evolution was generally postponed for the cases of Zn-Mg alloys as compared to pure zinc. The corrosion potential (Ecorr) was not significantly affected by Mg addition into Zn, while the corrosion current density (icorr) was significantly increased, especially for the case of the alloy with 3.60 wt.%Mg, as compared to that of pure zinc. It can be proposed that, due to its relatively higher hydrogen overpotential and uniform corrosion in KOH solution, the eutectic alloy with 3.60 wt.%Mg can be an alternative to pure zinc for use as anode in applications related to alkaline electrolyte.
format Book Series
author Sankum Nusen
Sunsanee Komboonchoo
Noppadol Yottawee
Torranin Chairuangsri
author_facet Sankum Nusen
Sunsanee Komboonchoo
Noppadol Yottawee
Torranin Chairuangsri
author_sort Sankum Nusen
title Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution
title_short Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution
title_full Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution
title_fullStr Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution
title_full_unstemmed Microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution
title_sort microscopy and microanalysis of zinc-magnesium alloys related to their microhardness and electrochemical behavior in koh solution
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85055436039&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/62749
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