Some aspects of workability studies on P/M sintered high strength 4% Titanium carbide composite steel preforms during cold upsetting

被引:0
作者
Narayanasamy R. [1 ]
Senthilkumar V. [2 ]
Pandey K.S. [3 ]
机构
[1] Department of Production Engineering, National Institute of Technology, Tiruchirappalli 620 015, Tamil Nadu
[2] Department of Mechanical Engineering, Jayaram College of Engg. and Tech., Tiruchirappalli 621 014, Tamil Nadu
[3] Department of Metallurgical Engineering, National Institute of Technology, Tiruchirapalli 620 015, Tamil Nadu
来源
Int. J. Mech. Mater. Des. | 2006年 / 1卷 / 39-57期
关键词
Formability stress index; Plane stress; Relative density; Stress ratio parameter; Triaxial stress; Workability;
D O I
10.1007/s10999-006-9012-0
中图分类号
学科分类号
摘要
Workability is concerned with the extent to which a material can be deformed in a specific metal working process without the initiation of cracks. Ductile fracture is the most common failure in bulk forming process. The formability is a complicated phenomenon which depends on the friction between the preform and the die surface in cold upsetting. A complete experimental investigation on the workability behavior of the steel composite of 4%TiC was performed under different stress states, namely, plane and triaxial stress state conditions. Cold upsetting of the Fe-1.0%C-4%Ti steel composite preforms was carried out applying different lubricants, namely, graphite, zinc stearate and molybdenum disulphide, and without lubricant, and the formability behaviour of the same under plane and triaxial stress state conditions was determined. The curves plotted for different preforms were analysed and relationship was established between the axial strain and the formability stress index under plane and triaxial state conditions. A relationship between the relative density and the axial strain was also established. Various stress ratio parameters, namely, (σθ/σeff), (σm/ σeff) and (σz/σeff), under plane and triaxial stress state conditions were determined empirically as a function of the relative density. An attempt is also made to study the variation of slope of the relative density versus stress ratio parameters under plane and triaxial stress conditions with respect to the relative density to identify the pore closure mechanism. © Springer Science+Business Media, Inc. 2007.
引用
收藏
页码:39 / 57
页数:18
相关论文
共 21 条
  • [1] Abdel-Rahman M., El-Sheikh M.N., Workability in forging of powder metallurgy compacts, J. Mater. Process. Technol, 54, pp. 97-102, (1995)
  • [2] Donachie S.J., Church N.L., Effect of composition, temperature and crystal structure on the flow stress of P/M forged performs. The Int, J. Powder Metall. Powder Technol, 10, 1, pp. 59-66, (1974)
  • [3] Doraivelu S.M., Gegel H.L., Gunasekaran J.S., Malas J.C., Morugan J.T., A new yield function for compressible P/M materials, Int. J. Mech. Sci, 26, 9-10, pp. 527-535, (1984)
  • [4] Dower J., Miles G.I., High velocity extrusion forging of billets compacted from iron and steel powders, Powder Metall, 13, 26, pp. 85-99, (1970)
  • [5] Durdaller C., Powders for Forging, Source Book on Powder Metallurgy, Bradbury, pp. 161-163, (1979)
  • [6] Green R.J., A plasticity theory for porous solids, Int. J. Mech. Sci, 14, pp. 215-224, (1972)
  • [7] Jones P., Densification Strategies for high endurance P/M compacts, Int. J. Powder Metall, 33, 3, pp. 37-43, (1997)
  • [8] Kim K.T., Yang H.C., Hong S.T., Densification behaviour of Titanium alloy powder compacts at high temperature, Powder Metall, 44, 1, pp. 34-35, (2001)
  • [9] Ko D.-C., Kim B.-M., Choi J.-C., Prediction of surface fracture initiation in the axisymmetric extrusion and simple upsetting of an aluminium alloys, J. Mater. Process. Technol, 62, pp. 166-174, (1996)
  • [10] Majumdar P., Davies T.J., Porosity and densification of P/M forging performs, Int. J. Powder Metall, 15, 2, pp. 103-112, (1979)