TY - JOUR
T1 - Functionally graded aluminum foam consisting of dissimilar aluminum alloys fabricated by sintering and dissolution process
AU - Hangai, Yoshihiko
AU - Morita, Tomoaki
AU - Utsunomiya, Takao
N1 - Funding Information:
The authors are grateful to Toyo Aluminium K.K., Japan, for providing the AC4CH alloy powder. Furthermore, the authors are grateful to The Salt Industry Center of Japan for providing the NaCl powder. This work was partly financially supported by JSPS KAKENHI Grant-in-Aid for Scientific Research (B) (No. 16H04534) and grants from the Salt Science Research Foundation (No. 1616).
Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2017/6/1
Y1 - 2017/6/1
N2 - Functionally graded (FG) aluminum (Al) foam, which consists of multilayers of different Al foams, is expected to exhibit higher functionality than ordinary uniform Al foam. In this study, uniform Al foams and two kinds of two-layered FG Al foams with different types of Al were fabricated by a sintering and dissolution process. From X-ray computed tomography (CT) inspection of the obtained foams, it was confirmed that NaCl was completely removed from the foams by dissolution. In addition, the FG Al foams in each layer had almost constant porosity (NaCl volume fraction, Vf) with seamless bonding between the layers. From the static compression tests of uniform foams, it was shown that the compression properties can be controlled by varying the type of Al, which is a similar tendency to the mechanical properties of the bulk materials. In addition, the compression properties can be controlled by varying Vf, regardless of the type of Al. From the static compression tests of FG Al foams, the foams exhibited multiple compression properties corresponding to the deformation of each layer for various Vf and different types of Al, which were similar to those of the corresponding uniform foams. In addition, the width of the plateau regions of FG Al foams can be controlled by controlling the height ratio between the layers. The advantage of varying the type of Al is that the mechanical properties of foams can be controlled without changing their geometric structures. Therefore, FG Al foams with various Vf and types of Al are expected to enable the optimum design of foams used for structural materials.
AB - Functionally graded (FG) aluminum (Al) foam, which consists of multilayers of different Al foams, is expected to exhibit higher functionality than ordinary uniform Al foam. In this study, uniform Al foams and two kinds of two-layered FG Al foams with different types of Al were fabricated by a sintering and dissolution process. From X-ray computed tomography (CT) inspection of the obtained foams, it was confirmed that NaCl was completely removed from the foams by dissolution. In addition, the FG Al foams in each layer had almost constant porosity (NaCl volume fraction, Vf) with seamless bonding between the layers. From the static compression tests of uniform foams, it was shown that the compression properties can be controlled by varying the type of Al, which is a similar tendency to the mechanical properties of the bulk materials. In addition, the compression properties can be controlled by varying Vf, regardless of the type of Al. From the static compression tests of FG Al foams, the foams exhibited multiple compression properties corresponding to the deformation of each layer for various Vf and different types of Al, which were similar to those of the corresponding uniform foams. In addition, the width of the plateau regions of FG Al foams can be controlled by controlling the height ratio between the layers. The advantage of varying the type of Al is that the mechanical properties of foams can be controlled without changing their geometric structures. Therefore, FG Al foams with various Vf and types of Al are expected to enable the optimum design of foams used for structural materials.
KW - Cellular materials
KW - Functionally graded materials
KW - Powder metallurgy
KW - Sintering
KW - X-ray computed tomography
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U2 - 10.1016/j.msea.2017.04.070
DO - 10.1016/j.msea.2017.04.070
M3 - Article
AN - SCOPUS:85018392342
SN - 0921-5093
VL - 696
SP - 544
EP - 551
JO - Materials Science & Engineering A: Structural Materials: Properties, Microstructure and Processing
JF - Materials Science & Engineering A: Structural Materials: Properties, Microstructure and Processing
ER -