期刊文献+

Fabrication of(TiB/Ti)-TiAl composites with a controlled laminated architecture and enhanced mechanical properties 被引量:3

原文传递
导出
摘要 The(TiB/Ti)-TiAl composites with a laminated structure composing of alternating TiB/Ti composite layers,α_(2)-Ti_(3)Al interfacial reaction layers of andγ-TiAl layers were successfully pre pared by spark plasma sintering of alternately stacked Tib_(2)/Ti powder layers and TiAl powder layers.And the influence of thickness ratio of Tib_(2)/Ti powder layers to TiAl powder layers on microstructure evolution and mechanical properties of the re sulting(TiB/Ti)-TiAl laminated composites were investigated systemically.The results showed that the thickening ofα_(2)-Ti_(3)Al layers which originated from the reaction of Ti and TiAl was significantly hindered by introducing Tib_(2)particles into starting Ti powders.As the thickness ratio of Tib_(2)/Ti powder layers to TiAl powder layers increased,the bending fracture strength and fracture toughness at room temperature of the final(TiB/Ti)-TiAl laminated composites were remarkably improved,especially for the(TiB/Ti)-TiAl composites prepared by Tib_(2)/Ti powder layers with thickness of 800μm and TiAl powder layers with thickness of 400μm,whose fracture toughness and bending strength were up to 51.2 MPa·m^(1/2)and 1456 MPa,respectively,293%and 108%higher than that of the monolithic TiAl alloys in the present work.This was attributed to the addition of high-performance network TiB/Ti composite layers.Moreover,it was noteworthy that the ultimate tensile strength at 700℃of(TiB/Ti)-TiAl composites fabricated by 400μm thick Tib_(2)/Ti powder layers and 400μm thick TiAl powder layers was as high as that at 550℃of network TiB/Ti composites.This means the service temperature of(TiB/Ti)-TiAl laminated composites was likely raised by 150℃,meanwhile a good combination of high strength and high toughness at ambient tempe rature could be maintained.Finally,the fracture mechanism of(TiB/Ti)-TiAl laminated composites was proposed.
出处 《Journal of Materials Science & Technology》 SCIE EI CAS CSCD 2021年第3期221-233,共13页 材料科学技术(英文版)
基金 the National Natural Science Foundation of China(Grant Nos:51971079,51771064 and 51401068)。
  • 相关文献

参考文献1

二级参考文献38

  • 1A. Lasalmonie, lntermetallics 14 (2006) 1123-1129.
  • 2A.S. Ramos, M.T. Vieira, M,E Vieira, E Viana, Mater. Sci. Forum 514-516 (2006) 483 -489.
  • 3Y. Wu, D.Z. Yang, G.M. Song, Intermetallics 8 (2000) 629-632.
  • 4A.P. Wu, G.S. Zou, J.L Rerl, H.J. Zhang, G.Q. Wang, X. Liu, M.R. Xie, Intermetallics 10 (2002) 647-652.
  • 5L.J. Tan, Z,K. Yao, W. Zhou, H.Z. Guo, Y. Zhao, Aerosp. Sci. Technol. 14 (2010) 302-306.
  • 6G.S. Zou, E.H. Xie, H.L Bai, A.P. Wu, Q. Wang, J,L Ren, Mater. Sci. Eng. A 499 (2009) 101-105.
  • 7C.H. Cadden, N.Y.C. Yang, T.H. Headley, Weld. J. 76 (1997) 316-325.
  • 8R.K. Shiue, S.K. Wu, Y.T. Chert, lntermetallics 18 (2010) 107-114.
  • 9S.L Shu, E Qiu, C.Z. Tong, X.N. 5han, Q.C. Jiang, J. Alloy. Compd. 617 (2014) 302-305.
  • 10H.R Xiong, J.Y. Mao, B.Q. Chen, Q. Wang, S.B. Wu, X.H. Li,J. Mater. Eng. 10 (2013) 1-12 (in Chinese).

共引文献12

同被引文献13

引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部