15
Views
41
CrossRef citations to date
0
Altmetric
Articles

Discontinuously reinforced intermetallic matrix composites via XD synthesis

Pages 317-330 | Published online: 18 Jul 2013

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (2)

. (2013) Reflections on creep: a review of the mst archive. Materials Science and Technology 29:8, pages 893-899.
Read now

Articles from other publishers (39)

Li'na Gao, Shufeng Li, Lei Liu, Xinghua Ji, Xin Zhang, Bo Li, Shaolong Li, Xin Li, Wenge Chen & Deng Pan. (2023) Preparation and toughness mechanism of in-situ Ti3AlC2 enhanced and toughened TiAl3 matrix composites. Intermetallics 161, pages 107963.
Crossref
Zhen Lu, Dekai Liu, Wei Liu, Shaosong Jiang, Chengcheng Shi & Han Xiao. (2020) Preparation and properties of Nano-HfO2 reinforced NiAl intermetallics fabricated with powder metallurgy. Materials Science and Engineering: A 798, pages 140162.
Crossref
B. Amirian, HY. Li & J.D. Hogan. (2019) The mechanical response of a α2(Ti3Al) + γ(TiAl)-submicron grained Al2O3 cermet under dynamic compression: Modeling and experiment. Acta Materialia 181, pages 291-308.
Crossref
H.L. Zhao, F. Qiu, S.B. Jin & Q.C. Jiang. (2012) Effect of different strain rates on compression property and work-hardening behavior for the NiAl-matrix composite with 1.7wt.% NbB2 and NbxC. Materials Science and Engineering: A 534, pages 22-25.
Crossref
K. B. Povarova, A. A. Drozdov, N. K. Kazanskaya, A. E. Morozov & A. V. Antonova. (2011) Physicochemical approaches to designing NiAl-based alloys for high-temperature operation. Russian Metallurgy (Metally) 2011:3, pages 209-220.
Crossref
Hailong Zhao, Feng Qiu, Shenbao Jin & Qichuan Jiang. (2011) High room-temperature plastic and work-hardening effect of the NiAl-matrix composites reinforced by particulates. Intermetallics 19:3, pages 376-381.
Crossref
Taotao Ai. (2009) Fabrication and mechanical properties of Al2O3/TiAl composites. Journal of Wuhan University of Technology-Mater. Sci. Ed. 24:5, pages 732-735.
Crossref
Zidong Wang, Xuewen Wang, Qiangsong Wang, I Shih & J J Xu. (2009) Fabrication of a nanocomposite from in situ iron nanoparticle reinforced copper alloy . Nanotechnology 20:7, pages 075605.
Crossref
Ai Taotao. (2008) Microstructure and Mechanical Properties of In-situ Synthesized Al2O3/TiAl Composites. Chinese Journal of Aeronautics 21:6, pages 559-564.
Crossref
Z. Li & W. Gao. 2008. Developments in High Temperature Corrosion and Protection of Materials. Developments in High Temperature Corrosion and Protection of Materials 365 397 .
Gerhard Sauthoff. 2006. Materials Science and Technology. Materials Science and Technology.
Abdulhaqq A. Hamid, S. C. Jain, P. K. Ghosh & Subrata Ray. (2006) Characterization and tribological behavior of cast In-Situ Al (Mg,Mo)-Al2O3 (MoO3) composite. Metallurgical and Materials Transactions B 37:4, pages 519-529.
Crossref
Y. Chen & H.M. Wang. (2006) Microstructure and wear resistance of laser-melted TiC reinforced nickel aluminide dual-phase matrix in situ composite. Intermetallics 14:3, pages 325-331.
Crossref
Abdulhaqq A. Hamid, S. C. Jain, P. K. Ghosh & Subrata Ray. (2006) Processing, microstructure, and mechanical properties of cast In-Situ Al(Mg, Ti)-Al2O3(TiO2) composite. Metallurgical and Materials Transactions A 37:2, pages 469-480.
Crossref
Y. Chen & H.M. Wang. (2005) Laser melted TiC reinforced nickel aluminide matrix in situ composites. Journal of Alloys and Compounds 391:1-2, pages 49-54.
Crossref
Yue Yun-long, Gong Yan-sheng, Wu Hai-tao, Wang Chuan-bin & Zhang Lian-meng. (2004) Fabrication and mechanical properties of TiC/TiAl composites. Journal of Wuhan University of Technology-Mater. Sci. Ed. 19:1, pages 1-4.
Crossref
. 2004. Smithells Metals Reference Book. Smithells Metals Reference Book 38-1 38-38 .
K. Bhanu Sankara Rao. (2003) High temperature fatigue behaviour of intermetallics. Sadhana 28:3-4, pages 695-708.
Crossref
Erlin Zhang, Songyan Zeng & Bin Wang. (2002) Preparation and microstructure of in situ particle reinforced titanium matrix alloy. Journal of Materials Processing Technology 125-126, pages 103-109.
Crossref
Yoshihiko Takano, Masaru Yoshinaka, Ken Hirota & Osamu Yamaguchi. (2004) Mechanical Properties of CoAl Materials with the Combined Additions of ZrO 2 (3Y) and Al 2 O 3 . Journal of the American Ceramic Society 84:10, pages 2445-2447.
Crossref
G.H. Cao, Z.G. Liu, G.J. Shen & J.-M. Liu. (2001) Interface and precipitate investigation of a TiB2 particle reinforced NiAl in-situ composite. Intermetallics 9:8, pages 691-695.
Crossref
J.T. Guo, C.Y. Cui, Y.X. Chen, D.X. Li & H.Q. Ye. (2001) Microstructure, interface and mechanical property of the DS NiAl/Cr(Mo,Hf) composite. Intermetallics 9:4, pages 287-297.
Crossref
R.M. Wang, C.H. Tao, Y.F. Han & M.G. Yan. (1999) HREM study of the NiAlFeTiB2 composite fabricated by reaction compocasting. Materials Science and Engineering: A 265:1-2, pages 95-99.
Crossref
R.M. Wang, C.H. Tao, L. Chen & Y.F. Han. (1999) Microstructure and mechanical properties of NiAlCo–TiB2 composites. Materials Letters 38:1, pages 54-57.
Crossref
D.T. Jiang & J.T. Guo. (1998) Elevated temperature compressive behavior of in-situ multiphase composites NiAl/Cr(Mo)–TiC. Materials Science and Engineering: A 255:1-2, pages 154-161.
Crossref
M.V. Akdeniz & A.O. Mekhrabov. (1998) The effect of substitutional impurities on the evolution of Fe-Al diffusion layer. Acta Materialia 46:4, pages 1185-1192.
Crossref
Y.X. Lu, C.H. Tao, M.L. Xie & D.Z. Yang. (1997) Microstructure and compression properties of TiCp/NiAl(Fe) fabricated by reactive compocasting technique. Materials Letters 32:5-6, pages 365-368.
Crossref
N.Q. Wu, G.-X. Wang, W. Li, J.M. Wu & Z.Z. Li. (1997) Mechanically driven synthesis of nanophase composite powder. Materials Letters 32:4, pages 259-262.
Crossref
J. T. Guo & Z. P. Xing. (2011) Investigation of NiAl–TiB 2 in situ composites . Journal of Materials Research 12:4, pages 1083-1090.
Crossref
Z. P. Xing, Y. F. Han, J. T. Guo & L. G. Yu. (1997) Microstructure and mechanical behavior of the NiAl-TiC In situ composite. Metallurgical and Materials Transactions A 28:4, pages 1079-1087.
Crossref
Y.X. Lu, C.H. Tao & D.Z. Yang. (1996) Improvement in mechanical properties of NiAl matrix composites fabricated by reaction compocasting. Scripta Materialia 35:10, pages 1243-1246.
Crossref
M. Inoue, K. Suganuma & K. Niihara. (2011) Mechanical Behavior of Reactively Hot-Pressed Aluminide Matrix Composites. MRS Proceedings 460.
Crossref
T.J. Jewett, B. Ahrens & M. Dahms. (1996) Phase equilibria involving the τ-L12 and TiAl2 phases in the TiAlCr system. Intermetallics 4:7, pages 543-556.
Crossref
Gerhard Sauthoff. 1995. Intermetallics. Intermetallics 120 157 .
S. L. Kampe, P. Sadler, L. Christodoulou & D. E. Larsen. (1994) Room-Temperature strength and deformation of Tib2-reinforced near-γ titanium aluminides. Metallurgical and Materials Transactions A 25:10, pages 2181-2197.
Crossref
K. Makhlouf, A.K. Ghosh & R. Ray. (1994) Deformation behavior of γ-TiAl composites in the solid and mushy states. Materials Science and Engineering: A 184:1, pages 17-25.
Crossref
Jean-Pascal Lebrat, Arvind Varma & Paul J. McGinn. (2011) Mechanistic studies in combustion synthesis of Ni 3 Al and Ni 3 Al-matrix composites . Journal of Materials Research 9:5, pages 1184-1192.
Crossref
Z. P. Xing, J. T. Guo, J. Y. Dai, L. G. Yu, Z. Q. Hu, G. Y. An & Q. Y. Chen. (2011) Fracture Toughness and Microstructure of Nial-Based Composite with TiC Reinforcement. MRS Proceedings 364.
Crossref
K.S. Kumar & G. Bao. (1994) Intermetallic-matrix composites: An overview. Composites Science and Technology 52:2, pages 127-150.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.