Deformation behavior of HCP Ti-Al alloy single crystals

被引:166
作者
J. C. Williams
R. G. Baggerly
N. E. Paton
机构
[1] The Ohio State University,
[2] Howmet Corporation,undefined
关键词
Material Transaction; Slip System; Slip Band; Resolve Shear Stress; Critically Resolve Shear Stress;
D O I
10.1007/s11661-002-0153-y
中图分类号
学科分类号
摘要
Single crystals of Ti-Al alloys containing 1.4, 2.9, 5, and 6.6 pct Al (by weight) were oriented for 〈a〉 slip on either basal or prism planes or loaded parallel along the c-axis to enforce a nonbasal deformation mode. Most of the tests were conducted in compression and at temperatures between 77 and 1000 K. Trace analysis of prepolished surfaces enabled identification of the twin or slip systems primarily responsible for deformation. Increasing the deformation temperature, Al content, or both, acted to inhibit secondary twin and slip systems, thereby increasing the tendency toward strain accommodation by a single slip system having the highest resolved stress. In the crystals oriented for basal slip, transitions from twinning to multiple slip and, finally, to basal slip occurred with increasing temperature in the lower-Al-content alloys, whereas for Ti-6.6 pct Al, only basal slip was observed at all temperatures tested. A comparison of the critically resolved shear stress (CRSS) values for basal and prism slip as a function of Al content shows that prism slip is favored at room temperature in pure Ti, but the stress to activate these two systems becomes essentially equal in the Ti-6.6 pct Al crystals over a wide range of temperatures.
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页码:837 / 850
页数:13
相关论文
共 29 条
[1]  
Lee D.(1966)undefined Trans. AIME 236 1696-1704
[2]  
Backofen W.A.(1968)undefined Trans. ASM 61 283-92
[3]  
Fager D.N.(1970)undefined Metall. Trans. 1 2839-47
[4]  
Spurr W.F.(1966)undefined TMS-AIME 236 1558-65
[5]  
Paton N.E.(1968)undefined TMS-AIME 242 648-53
[6]  
Backofen W.A.(1966)undefined Trans. ASM 59 171-84
[7]  
Levine E.D.(1974)undefined Acta. Met. 22 1359-72
[8]  
Evans K.R.(1967)undefined Met. Rev. 12 169-94
[9]  
Orava R.N.(1968)undefined Phys. Status Solidi 25 K1-K3
[10]  
Sakai T.(1973)undefined Titanium Sci. Technol. II 1187-97