期刊文献+

ECAP制备TWIP钢的力学性能研究 被引量:3

Investigation on Mechanical Properties of TWIP Steel Using ECAP
原文传递
导出
摘要 采用ECAP方法对TWIP钢(30Mn-3Si-3Al)试样进行一道次等径角挤压(ECAP)变形,对比研究原始态、一道次挤压态、ECAP1P+850℃×1 h(空冷)处理和ECAP1P+1 000℃×1 h空冷处理后的微观结构及力学性能。试验结果表明:在变形过程中,形变孪晶的相互形变阻力和位错在形变孪晶界的大量塞积,使TWIP钢表现出很高的加工硬化率。试样经ECAP1P+1 000℃×1 h空冷处理,与原始态相比在强度不变的情况下塑性有一定提高。同时,退火后晶粒的长大增加了位错沿孪晶界方向的剪切通道长度,增强了位错储存能力,从而表现出更高的塑性和加工硬化能力。试样经ECAP1P+850℃×1 h空冷处理后晶粒尺寸较小,增加了阻碍位错运动的有效界面,从而同样表现出很高的加工硬化能力。 After adopting the deformation of a TWIP steel sample steel (30Mn-3Si-3AI) during equal channel angular pressing (ECAP), a comparative study on microstructures and the mechanical properties of the original state, the one pass pressing state, the ECAP1P+850℃× 1 h/A. C state and the ECAP1P-k 1000 ℃ × 1 h/A. C state was carried out. The results of the experiment reveal that: during the deformation, because of the large amount of obstruction of mutual deformation resistance forces and dislocations of deformation twins in the deformation area, the TWIP steel shows a high degree of work-hardness for processing. After the air-cooling treatment of ECAP1P+ 1 000 ℃ ×1 h, the plasticity is improved. At the same time, the growing of grains is increased the length of shear channel of dislocation to the direction of the area of twins, and strengthened the storage ability of dislocation, thus shows an even higher degree of plasticity and the work-hardness ability during processing. After the air-cooling treatment of ECAPIP+850 ℃ × 1 h, because the small grain increases the resistance of the dislocation, the workhardness ability is improved.
出处 《钢铁研究学报》 CAS CSCD 北大核心 2011年第1期47-51,57,共6页 Journal of Iron and Steel Research
关键词 TWIP钢 等径角挤压变形 加工硬化 twinning induced plastic (TWIP) steel equal channel angular pressing (ECAP) work-hardness
  • 相关文献

参考文献10

  • 1Valiev R Z, Langdon T G. Principles of Equal-Channel Angular Pressing as a Processing Tool for Grain Refinement[J].Prog Mater Sci,2006,51:881.
  • 2Huang C X, Gao Y L, Yang G, et al. Bulk Nanocrystalline Stainless Steel Fabricated by Equal Channel Angular Pressing [J]. J Mater Res,2006,21:1687.
  • 3Grassel O, Kruger L, Frommeyer G, et al. High Strength Fe-Mn-(AI,Si) TRIP/TWIP Steels Development-Properties- Application [J]. Plasticity, 2000,16: 1391.
  • 4Iwahashi Y N, Wang J T, Horita Z J, et al. Principle of Equal Channel Angular Pressing for the Processing of Ultrafine- Grained Materias [J]. Seripta Mater, 1996,13 : 143.
  • 5Chinh N Q, Horvdth G, Horita Z, et al. A New Constitutive Relationship for the Homogeneous Deformation of Metals Over a Wide Range of Strain [J]. Acta Materialia, 2004,52 (12) : 3555.
  • 6黄崇湘,吴世丁,李广义,刘腾,姜传斌,李守新.循环形变对超细晶铜室温拉伸行为的影响[J].金属学报,2004,40(11):1165-1169. 被引量:6
  • 7Kocks U F, Mecking H. Physics and Phenomenology of Strain Hardening: the FCC Case [J]. Prog Mater Sci,2003, 48:171.
  • 8William D, Callister J. Fundamentals of Materials Science and Engineering [M]. New York: John Wiley and Sons Inc, 2001,64.
  • 9Christian J W, Mahajan S. Deformation Twinning [J]. Prog Mater Sci, 1995,39 : 1.
  • 10Kocks U F. Laws for Work-Hardening and Low-Temperature Creep[J]. J Eng Tech Trans ASME,1976,98:76.

二级参考文献19

  • 1[6]Thiele E, Holste C, Klemm R. Z Metallkd, 2002; 93:730
  • 2[7]Mughrabi H, Hoppel H W. Mater Res Soc Symp Proc,2000; 634:B2.1
  • 3[8]Agnew S R, Weertman J R. Mater Sci Eng, 1998; A244:145
  • 4[9]Hoppel H W, Zhou Z M, Mughrabi H, Valiev R Z. Philos Mag A, 2002; 82:1781
  • 5[10]Jia D, Wang Y M, Ramesh K T, Ma E, Zhu Y T, Valiev R Z. Appl Phys Lett, 2001; 79:611
  • 6[11]Champion Y, Langlois C, Guerin-Mailly S, Langlois P,Bonnentien J, Hytch M J. Science, 2003; 300: 310
  • 7[12]Valiev R Z, Kozlov E V, Ivanov Y F, Lian J, Nazarov A A, Baudelet B. Acta Metall Mater, 1994; 42:2467
  • 8[13]Wu S D, Wang Z G, Jiang C B, Li G Y. Philos Mag Lett,2002; 82:559
  • 9[14]Wu S D, Wang Z G, Jiang C B, Li G Y, Alexandrove I V,Valiev R Z. Scr Mater, 2003; 48:1605
  • 10[15]Wu S D, Wang Z G, Li G Y, Alexandrove I V, Valiev R Z. Acta Metall Sin, 1999; 35:960(吴世丁, 王中光, 李广义, Alexandrove I V, Valiev R Z. 金属学报, 1999; 35: 960)

共引文献5

同被引文献39

  • 1郝南海,王全聪.等径侧向挤压变形均匀程度的有限元分析[J].中国有色金属学报,2001,11(z2):230-233. 被引量:20
  • 2Valiev R Z, Islamgaliev R K, Alexandrov I V. Bulk Nanao- structured Materials From Severe Plastic Deformation [J]. Process in Materials Science, 2000,45 103.
  • 3Iwahash Y, Horita Z, Nemeto M, et al. The Process of Grain Refinement in Equal-Channel Angular Pressing [J]. Acta Ma- terialia, 1998,46(9) 3317.
  • 4Hiroyuki Watanabea, Toshiji Mukaia, Koiehi Ishikawaa, et al. Low Temperature Superplasticity of a Fine-Grained ZK60 Magnesium Alloy Processed by Equal-Channel-Angular Extru- sion [J] Seripta Materialia, 2002,46(12) : 851.
  • 5Torre F D, Lapovok R, Sandlin J, et al. Microstructures and Properties of Copper Processed by Equal Channel Angular Ex trusion for 1-16 Passes [J]. Acta Materialia,2004,52(16): 4819.
  • 6Segal V M. Materials Processing by Simple Shear [J]. Materi- als Science and Engineering, 1995,197A: 157.
  • 7Iwahashi Y, WANG J, Horita Z, et al. Principle of Equal- Channel Angular Pressing [J] Scripta Materialia,1996,35..143.
  • 8Dupuy L, Raueh E F. Deformation Paths Related to Equal Channel Angular Extrusion [J]. Materials Science and Engi- neering, 2002,337A:241.
  • 9LI Qiang, XU Yonbo, LAI Zu-han, et al. A Model of Dy namic Reerystallization in Alloys During High Strain Plastic Deformation [J]. Journal of Materials Science and Technolo- gy,1999,15(5) ..435.
  • 10王允俊.纯铜经等径转角挤型之低温退火和机械性质[D].台湾:中山大学,2001.

引证文献3

二级引证文献9

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