Sustainable Production of Powder Metallurgy Aluminum Foams Sintered by Concentrated Solar Energy

被引:6
|
作者
Canadilla, Antonio [1 ]
Romero, Ana [2 ]
Rodriguez, Gloria P. [1 ]
机构
[1] Univ Castilla La Mancha UCLM, Inst Energy Res & Ind Applicat, ETS Ingn Ind, Ciudad Real 13071, Spain
[2] Univ Castilla La Mancha UCLM, Inst Appl Aeronaut Ind Res, Escuela Ingn Ind & Aeroespacial, Toledo 45071, Spain
关键词
concentrated solar energy; al foams; powder metallurgy; space holder; porosity; CELL ALUMINUM; DISSOLUTION PROCESS; ABSORPTION; TITANIUM; OPTIMIZATION; MANUFACTURE; COMPRESSION; METALS;
D O I
10.3390/met11101544
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Porous aluminum foams were successfully fabricated following the space-holder powder metallurgy method with a solar sintering stage. Al foams with porosities of 50, 60, and 70 vol.% were sintered in a low-cost Fresnel lens. Green parts were prepared using aluminum powder as the main metallic material and saccharose as a soluble space-holder. The dissolution stage was designed for each foam and required longer periods of time, between 8 and 32 h, as the design porosity increased. Brown parts were fully sintered by concentrated solar energy at a lower temperature (500 & DEG;C) and for shorter times (12-20 min) than those required by conventional sintering techniques (640 & DEG;C, similar to 9 h). The evaluation of density and the characterization of pore size and distribution in the sintered foams was carried out. All obtained foams were stable and presented a homogeneously distributed porosity, very close to the design porosity, with differences lower than 2.1 vol.%, and with approximately half being characterized as open porosity. Moreover, the solar sintered foams presented a high quality, and similar or even greater mechanical properties (such as compressive strength and impact energy absorption) than those achieved by conventional techniques. Foams with 50 vol.% of porosity exhibited the best mechanical behavior, in terms of impact-energy absorption (24.42 MJ/m(3)) and compressive strength (27.4 MPa).
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页数:18
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