首页 | 本学科首页   官方微博 | 高级检索  
     


Deformation and Plateau Region of Functionally Graded Aluminum Foam by Amount Combinations of Added Blowing Agent
Authors:Yoshihiko Hangai  Takao Utsunomiya  Osamu Kuwazuru  Soichiro Kitahara  Nobuhiro Yoshikawa
Affiliation:1.Graduate School of Science and Technology, Gunma University, Kiryuu 376-8515, Japan;2.Faculty of Engineering, Shibaura Institute of Technology, Tokyo 135-8548, Japan; ;3.Graduate School of Engineering, University of Fukui, Fukui 910-8507, Japan; ;4.Hokudai Co., Ltd., Abira 059-1434, Japan; ;5.Institute of Industrial Science, the University of Tokyo, Tokyo 153-8505, Japan;
Abstract:Recently, to further improve the performance of aluminum foam, functionally graded (FG) aluminum foams, whose pore structure varies with their position, have been developed. In this study, three types of FG aluminum foam of aluminum alloy die casting ADC12 with combinations of two different amounts of added blowing agent titanium(II) hydride (TiH2) powder were fabricated by a friction stir welding (FSW) route precursor foaming method. The combinations of 1.0–0 mass %, 0.4–0 mass %, and 0.2–0 mass % TiH2 were selected as the amounts of TiH2 relative to the mass of the volume stirred by FSW. The static compression tests of the fabricated FG aluminum foams were carried out. The deformation and fracture of FG aluminum foams fundamentally started in the high-porosity (with TiH2 addition) layer and shifted to the low-porosity (without TiH2 addition) layer. The first and second plateau regions in the relationship between compressive stress and strain independently appeared with the occurrence of deformations and fractures in the high- and low-porosity layers. It was shown that FG aluminum foams, whose plateau region varies in steps by the combination of amounts of added TiH2 (i.e., the combination of pore structures), can be fabricated.
Keywords:cellular materials   functionally graded materials   friction stir processing   pore structure   porosity   aluminum alloy die casting   foam
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号