A Study on Residual Stress Analysis of Autofrettaged Thick-walled Cylinders

자긴가공된 후육실린더의 잔류응력 해석에 관한 연구

  • Kim, Jae-Hoon (Department of Mechanical Design Engineering, Chungnam National Univ.) ;
  • Shim, Woo-Sung (Department of Mechanical Design Engineering, Chungnam National Univ.) ;
  • Lee, Young-Shin (Department of Mechanical Design Engineering, Chungnam National Univ.) ;
  • Cha, Ki-Up (Propulsive Group, Agency of Defense Development) ;
  • Hong, Suck-Kyun (Propulsive Group, Agency of Defense Development)
  • Published : 2009.12.01

Abstract

Thick-walled cylinders, such as a cannon or nuclear reactor, are autofrettaged to induce advantageous residual stresses into pressure vessels and to increase operating pressure and the fatigue lifetimes. As the autofrettage level increases, the magnitude of compressive residual stress at the bore also increases. However, the Bauschinger effect reduces the compressive residual stresses as a result of prior tensile plastic strain, and decreases the beneficial autofrettage effect. The purpose of the present paper is to predict the accurate residual stress of SNCM8 high strength steel using the Kendall model which was adopted by ASME Code. The uniaxial Bauschinger effect test was performed to decide BEF, then this constant was used in calculation. There were some differences between theoretical solution and modified solution.

Keywords

References

  1. Park, J. H. and Lee, Y. S., 'Machining Analysis of the Autofrettaged Compound Cylinder,' Trans. of the KSME, Vol. 7, No.7, pp. 800-807, 2007
  2. Huang, X. P. and Cui, W. C., 'Effect of Bauschinger effect and Yield Criterion on Residual Stress Distribution of Autofrettaged Tube,' Journal of Pressure Vessel Technology, Vol. 128, No.2, pp. 212- 216,2006 https://doi.org/10.1115/1.2172621
  3. Koh, S. K., Song, W. J., Seo, K. S. and Choi, H. S., 'Autofrettage of Fuel Injection Pipe for Disel Engine,' Proc. of the KSME Autumn Conference, pp. 1823-1828,2007
  4. Hill, R., 'The Mathematical Theory of Plasticity,' Oxford University Press, pp. 114-127, 1950
  5. Bauschinger, J., 'Ueber die Veranderung der Elasticitatagrenze und dea Elasticitamoduls Verschiadener Metalle,' Zivilingenieur, pp. 289-348, 1881
  6. Milligan, R. V., Koo, W. H. and Davidson, T. E., 'The Bauschinger Effect in a High-Strength Steel,' ASME Journal of Basic Engineering, Vol. 88, No.2, pp. 480- 488, 1966 https://doi.org/10.1115/1.3645883
  7. Toriano, E., Parker, A. P. and Underwood, J. H., 'Experimental Data, Numerical Fit and Fatigue Life Calculations Relating to the Bauschinger Effect in High-Strength Armament Steels,' Journal of Pressure Vessel Technology, Vol. 125, No.3, pp. 330-334, 2003 https://doi.org/10.1115/1.1593072
  8. Perry, J., Pearl, M., Shneck, R. and Haroush, S., 'The Influence of the Bauschinger Effect on the Yield Stress, Young's Modulus, and Poisson's Ratio of a Gun Barrel Steel,' Jounal of Pressure Vessel Technology, Vol. 128, No.2, pp. 179-184,2006 https://doi.org/10.1115/1.2172962
  9. Timoshenko, S. P. and Goodier, J. N., 'Theory of Elasticity,' McGraw-Hill, 1970
  10. Majzoobi, G. H., Farrahi, G. H. and Mahmoudi, A. H., 'A Finite Element simulation and an experimental study of autofrettage for strain hardened thick-walled cylinders,' Materials Science and Engineering A, Vol. 359, No. 1-2, pp. 326-331, 2003 https://doi.org/10.1016/S0921-5093(03)00398-8
  11. Park K. S. and Chugn I. S, 'Thinking about the Baushinger effect,' Journal of Korean Institute of Metals and Materials, Vol. 20, No.9, pp. 794-801, 1982
  12. ASME, 'Boiler and Pressure Vessel Code, Section VIII, Division 3, Appendix D,' 2001
  13. Habbit, Karlsson and Sorensen, Inc., 'ABAQUS version 6.6 User Manual,' 2004