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http://dx.doi.org/10.4150/KPMI.2015.22.2.100

Fabrication of Fe-Cr-Al Porous Metal with Sintering Temperature and Times  

Koo, Bon-Uk (School of Materials Science and Engineering, University of Ulsan)
Lee, Su-In (KISWEL R&D Center)
Park, Dahee (Powder Technology Department, Korea Institute of Materials Science (KIMS))
Yun, Jung-Yeul (Powder Technology Department, Korea Institute of Materials Science (KIMS))
Kim, Byoung-Kee (School of Materials Science and Engineering, University of Ulsan)
Publication Information
Journal of Powder Materials / v.22, no.2, 2015 , pp. 100-104 More about this Journal
Abstract
The porous metals are known as relatively excellent characteristic such as large surface area, light, lower heat capacity, high toughness and permeability. The Fe-Cr-Al alloys have high corrosion resistance, heat resistance and chemical stability for high temperature applications. And then many researches are developed the Fe-Cr-Al porous metals for exhaust gas filter, hydrogen reformer catalyst support and chemical filter. In this study, the Fe-Cr-Al porous metals are developed with Fe-22Cr-6Al(wt) powder using powder compaction method. The mean size of Fe-22Cr-6Al(wt) powders is about $42.69{\mu}m$. In order to control pore size and porosity, Fe-Cr-Al powders are sintered at $1200{\sim}1450^{\circ}C$ and different sintering maintenance as 1~4 hours. The powders are pressed on disk shapes of 3 mm thickness using uniaxial press machine and sintered in high vacuum condition. The pore properties are evaluated using capillary flow porometer. As sintering temperature increased, relative density is increased from 73% to 96% and porosity, pore size are decreased from 27 to 3.3%, from 3.1 to $1.8{\mu}m$ respectively. When the sintering time is increased, the relative density is also increased from 76.5% to 84.7% and porosity, pore size are decreased from 23.5% to 15.3%, from 2.7 to $2.08{\mu}m$ respectively.
Keywords
Porous metal; Fe-Cr-Al alloy; Sintering Temperature; Porosity; Pore size;
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Times Cited By KSCI : 3  (Citation Analysis)
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