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Combustion of Al-Ni Precursor Al3Ni Foam Manufacture of Composite Structure with Hollow Pipe and Filling of Foam and Investigation of Pore Condition

Al-Ni 전구체의 연소합성 발포에 의한 Al3Ni 폼과 할로우 파이프의 복합구조체 제작 및 폼의 충진성과 기공상태 조사

  • Han, Chang-Suk (Dept. of ICT Automotive Engineering, Hoseo University) ;
  • Jin, Sung-Yooun (Dept. of ICT Automotive Engineering, Hoseo University) ;
  • Kwon, Hyuk-Ku (Dept. of Environmental Engineering, Hoseo University)
  • 한창석 (호서대학교 자동차ICT공학과) ;
  • 진성윤 (호서대학교 자동차ICT공학과) ;
  • 권혁구 (호서대학교 환경공학과)
  • Received : 2019.07.26
  • Accepted : 2019.09.10
  • Published : 2019.10.27

Abstract

In order to develop a process for manufacturing a composite structure of an intermetallic compound foam and a hollow material, the firing and pore form of the Al-Ni precursor in a steel pipe are investigated. When the Al-Ni precursor is foamed in a hollow pipe, if the temperature distribution inside the precursor is uneven, the pore shape distribution becomes uneven. In free foaming, no anisotropy is observed in the foaming direction and the pore shape is isotropic. However, in the hollow pipe, the pipe expands in the pipe axis direction and fills the pipe. The interfacial adhesion between $Al_3Ni$ foam and steel pipe is excellent, and interfacial pore and reaction layer are not observed by SEM. In free foaming, the porosity is 90 %, but it decreases to about 80 % in the foam in the pipe. In the pipe foaming, most of the pore shape appears elongated in the pipe direction in the vicinity of the pipe, and this tendency is more remarkable when the inside pipe diameter is small. It can be seen that the pore size of the foam sample in the pipe is larger than that of free foam, because coarse pores remain after solidification of the foam because the shape of the foam is supported by the pipe. The vertical/horizontal length ratio expands along the pipe axis direction by foaming in the pipe, and therefore circularity is reduced.

Keywords

References

  1. J. Banhart, Adv. Eng. Mater., 8, 781 (2006). https://doi.org/10.1002/adem.200600071
  2. Y. Liu, X. He, H. Tang and B. Huang, Int. J. of Mater. Res., 102, 1174 (2011). https://doi.org/10.3139/146.110565
  3. H. C. Yeom, D. J. Moon, K. Y. Lee and S. W. Kim, J. Nanosci. Nanotechnol., 15, 5167 (2015). https://doi.org/10.1166/jnn.2015.10414
  4. G. Liu, L. Chen, J. Yu, N. Feng, J. Meng, F. Fang, L. Wang, W. Lei and G. Hui, Appl. Catal., A, 568, 157 (2018). https://doi.org/10.1016/j.apcata.2018.10.003
  5. L. C Wang, X. H. You, F. Wang and J. G. Wu, Mater. Sci. Forum, 704-705, 941 (2011). https://doi.org/10.4028/www.scientific.net/MSF.704-705.941
  6. L. Wang, G. Yao, Y. Liu and G. Zu, Adv. Eng. Mater., 12, 50 (2010). https://doi.org/10.1002/adem.200900195
  7. J. Liu, S. Yu, Y. Song, X. Zhu, M. Wei, Y. Luo and Y. Liu, J. Alloys Compd., 476, 466 (2009). https://doi.org/10.1016/j.jallcom.2008.09.007
  8. M. Nosko, F. Simancik, K. Izdinsky, P. Svec and R. Florek, Mater. Lett., 65, 1378 (2011). https://doi.org/10.1016/j.matlet.2011.02.007
  9. K. C. Patil, S. T. Aruna and S. Ekambaram, Curr. Opin. Solid State Mater. Sci., 2, 158 (1997). https://doi.org/10.1016/S1359-0286(97)80060-5
  10. L. E. Vardumyan, H. L. Khachatryan, A. B. Harutyunyan and S. L. Kharatyan, J. Alloys Compd., 454, 389 (2008). https://doi.org/10.1016/j.jallcom.2006.12.114
  11. J. Banhart, Prog. Mater. Sci., 46, 559 (2001). https://doi.org/10.1016/S0079-6425(00)00002-5
  12. R. Kretz, K. Hausberger and B. Gotzinger, Adv. Eng. Mater., 4, 781 (2002). https://doi.org/10.1002/1527-2648(20021014)4:10<781::AID-ADEM781>3.0.CO;2-U
  13. H. W. Seeliger, Adv. Eng. Mater., 4, 753 (2002). https://doi.org/10.1002/1527-2648(20021014)4:10<753::AID-ADEM753>3.0.CO;2-Y
  14. V. Gergely and T. W. Clyne, Acta Mater., 52, 3047 (2004). https://doi.org/10.1016/j.actamat.2004.03.007