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Comparison of Fatigue Strength Criteria for TiNi/Al6061-T6 and TiNi/Al2024-T4 Shape Memory Alloy Composite

TiNi/Al6061-T6과 TiNi/Al2024-T4 형상기억복합재료에 대한 피로강도기준의 비교

  • 조영직 (동아대학교 대학원 기계공학과) ;
  • 박영철 (동아대학교 기계공학과)
  • Published : 2009.02.01

Abstract

This study produced a design curve and fatigue limit for a variation in volume ratio and reduction ratio of TiNi/Al composites. In many cases, stress-life curve does not indicate fatigue limit, so it was presented by probabilistic-stress-life curve. Goodman diagram was used to analyze the fatigue strength of materials with a finite life determined by repeated load and the fatigue strength of endurance limit with an infinite life. The fatigue experiment was conducted using the scenk-type plane bending specimen in same shape. The result of the fatigue test, which had been conducted under consistent stress amplitude, was examined. (i) The optimal condition for TiNi/Al in accordance with hot pressing (ii) Impacts of fatigue limit caused by a variation in reduction ratio and volume ratio of TiNi/Al composites (iii) Probability distribution for fatigue limit of TiNi/Al2024 and TiNi/Al6061.

Keywords

References

  1. Jean, R. D. and Hu, C. T., 1994, "Shape Memory Effect by Constant-stress Aging in Ti-50.5at.% Ni alloy," Journal of Material Science, Vol. 29, No. 2, pp. 449-455 https://doi.org/10.1007/BF01162505
  2. Lee, H. J., Hawong, J. S. and Shimamoto, A., 1999, "A Study on the Effect of Fracture Delay of Intelligent FRP by Transparent Photoelastic Experimental Method," Trans. of the KSME (A), Vol. 23, No. 11, pp. 1904-1911
  3. Attiaa, O., Kinlochb, A. J. and Matthewsa, F. L., 2003, "The Prediction of Fatigue Damage Growth in Impact-damaged Composite Skin/stringer Structures. Part I: Theoretical Modelling Studies," Composites Science and Technology, Vol. 63, No. 10, pp. 1463-1472 https://doi.org/10.1016/S0266-3538(03)00164-7
  4. Mahfuz, H., Majumdar, P., Saha, M., Shamery, F. and Jeelani, S., 2004, "Integral Manufacturing of Composite Skin-Stringer Assembly and Their Stability Analyses," Applied Composite Materials, Vol. 11, No. 3, pp. 155-171 https://doi.org/10.1023/B:ACMA.0000026585.37973.c8
  5. Taya, M. and Arsenault, R. J., 1989, Metal Matrix Composites: Thermomechanical Behavior, Elsevier Science Ltd.
  6. Taya, M., Furuya, Y., Yamada, Y., Watanabe, R., Shibata, S. and Mori, T., 1993, "Strengthening Mechanisms of TiNi Shape Memory Fiber/Al Matrix Composites," Proceedings of SPIE-the international society for optical engineering, Vol. 1916, pp. 373-383
  7. Furuya, Y., 1995, "Design and Experimental Verification of Intelligent Materials Using Shape Memory Alloy," Proceeding of the International Symposium on the Microsystems, Intelligent Materials and Pobots, Sendai, Japan, pp. 313-318
  8. Furuya, Y. and Taya, M., 1996, "Enhancement of High Temperature Mechanical Strength of TiNi Fiber/Al Composite Induced by Shape Memory Effect," Journal of the Japan Institute of Metals, Vol. 60, No. 12, pp. 1163-1172 https://doi.org/10.2320/jinstmet1952.60.12_1163
  9. Park, Y. C. and Furuya, Y., 1992, "Thermal Cyclic Deformation and Degradation of Shape Memory Effect in TiNi Alloy," Nondestr. Test. Eval., Vol. 4, No. 8, pp.541-554
  10. Lee, J. K., Park, Y. C., Ku, H. T., Park, D. S. and Lee, K. C., 2002, "Fracture Characteristic of TiNi/Al6061 Shape Memory Alloy Composite using Acoustic Emission Technique," Trans. of the KSME (A), Vol. 26, No. 2, pp. 275-282 https://doi.org/10.3795/KSME-A.2002.26.2.275
  11. Park, Y. C., Park, D. S., Lee, J. H. and Lee, G. C., 2002, "Fabrication and Characterization of TiNi Shape Memory Alloy Fiber Reinforced 6061 Aluminum Matrix Composite by Using Hot Press," Trans. of the KSME (A), Vol. 26, No. 7, pp. 1223-1231 https://doi.org/10.3795/KSME-A.2002.26.7.1223
  12. Park, Y. C., Lee, J. K. and Lee, G. C., 2004, "Development of On-line Monitoring System and AE Characterization of SMA Composite under Severe Conditions," Key Engineering Materials, Vols. 270-273, pp. 1839-1844 https://doi.org/10.4028/www.scientific.net/KEM.270-273.1839
  13. Lee, J. K., Park, Y. C., Lee, J. H, Lee, S. P. and Hur, K. D., 2004, "Nondestructive Evaluation and Fracture Mechanism of Smart Material," Key Engineering Materials, Vols. 261-263, pp. 1379-1384 https://doi.org/10.4028/www.scientific.net/KEM.261-263.1379
  14. Park, Y. C. and Lee, J. K., 2004, "Fabrication and AE Characteristics of TiNi/Al6061 Shape Memory Alloy Composite," KSME International Journal, Vol. 18, No. 3, pp. 453-459
  15. Park, Y. C., Lee, G. C. and Furuya, Y., 2004, "A Study on the Fabrication of TiNi/Al6061 Shape Memory Composite Material by Hot-press Method and its Mechanical Property," Materials Transactions, Vol. 45, No. 2, pp. 264-271 https://doi.org/10.2320/matertrans.45.264
  16. Park, Y. C., Lee, D. H. and Park, D. S., 2004, "The Development of Expert System for Strength Evaluation of TiNi Fiber Reinforced Al Matrix Composite," Trans. of the KSME (A), Vol. 28, No. 8, pp. 1099-1108 https://doi.org/10.3795/KSME-A.2004.28.8.1099
  17. Park, Y. C., Lee, J. K., Lee, G. C., Lee, S. P., Lee, J. H., Cho, Y. H. and Lee, J. B., 2006, "A Study on Fatigue Damage of Shape Memory Alloy Composite Using NDE Technique," International Journal of Modern Physics B, Vol. 20, Nos. 25-27, pp. 3775-3780 https://doi.org/10.1142/S0217979206040350
  18. Park, Y. C., Kang, J. H., Lee, J. K., Lee, G. C. and Furuya, Y., 2007, "Effect of Cold Rolling of Fatigue Crack Propagation of TiNi/Al6061 Shape Memory Composite," Smart Materials & Structures, Vol. 16, pp. 982-988 https://doi.org/10.1088/0964-1726/16/4/005
  19. Park, Y. C., Lee, J. K. and Lee, G. C., 2007, "Development of an Expert System for Evaluation of the Strength of Matrix Shape Memory Composites," Composite Structures, Vol. 77, pp. 241-248 https://doi.org/10.1016/j.compstruct.2005.07.004
  20. Hasegawa, M., Asano, T., Hashimoto, K., Lee, G. C., Park, Y. C., Okazaki, T. and Furuya, Y., 2006, "Fabrication of Multiferroic Composite Actuator Material by Combining Superelastic TiNi Filler and a Magnetostrictive Ni Matrix," Smart Materials & Structures, Vol. 15, pp. N124-N128 https://doi.org/10.1088/0964-1726/15/5/N04
  21. Murty, A. S. R., Gupta, U. C. and Krishna, R., 1995, "A New Approach to Fatigue Strength Distribution for Fatigue Reliability Evaluation," Int. J. Fatigue, Vol. 17, No. 2, pp. 85-89 https://doi.org/10.1016/0142-1123(95)95886-L
  22. Zheng, X. and Wei, J., 2005 "On the Prediction of P-S-N Curves of 45 Steel Notched Elements and Probability Distribution of Fatigue Life Under Variable Amplitude Loading from Tensile Properties," Int. J. Fatigue, Vol. 27, pp. 601-609 https://doi.org/10.1016/j.ijfatigue.2005.01.001
  23. Baek, S. H., Lee, K. Y., Mun, S. J., Cho, S. S. and Joo, W. S., 2005, "Fatigue Cumulative Damage and Life Prediction of Uncovered Freight Car Under Service Load using Rainflow Counting Method," Trans. of the KSAE, Vol. 13, No. 2, pp. 1-9
  24. Baek, S. H., Cho, S. S. and Joo, W. S., 2008, "Fatigue Life Prediction Based on the Rainflow Cycle Counting Method for the End Beam of a Freight Car Bogie," Int. J. Automotive Technology, Vol. 9, No. 1, pp. 95-101 https://doi.org/10.1007/s12239-008-0012-y
  25. JSME Standards S002, Standard Method of Statistical Fatigue Testing, The Japan Society of Mechanical Engineers
  26. Zako, M., Kurashiki, T. and Hanaki, S., 2001, "Statistical Method for Decision of S-N Curve with Fatigue Limit," J. Soc. Mat. Sci. (in Japanese), Vol. 50, No. 3, pp. 278-283 https://doi.org/10.2472/jsms.50.278
  27. Nishikawa, I., Nakayasu, H., Sugeta, A., Yokomaku, T., Yoshioka, S., Shuto, T., Shintani, T., Sakai, T. and Sakai, T., 2002, "Proposal of Standard Regression Method for S-N Curve Based on Fatigue Test Data for Metallic Materials," J. Soc. Mat. Sci. (in Japanese), Vol. 51, No. 1, pp. 54-60
  28. Oh, S. W., Yoon, H. K., Cha, Y. H. and Nam, K. W., 2002, Strength of Materials (in korean), Wonchang Publishing Ltd., pp. 182-185
  29. Goodman, J., 1899, Mechanics Applied to Engineering, Longmans, Green, and Co., London
  30. Wang, S., Dixon, M. W., Huey, C. O. and Chen, S., 2000, "The Clemson Limit Stress Diagram for Ductile Parts Subjected to Positive Mean Fatigue Loading," ASME J. Mech. Des., Vol. 122, pp. 143-146 https://doi.org/10.1115/1.533557
  31. Baek, S. H., Lee, K. Y., Cho, S. S., Jang, D. Y. and Joo, W. S., 2007, "An Experimental Investigation of Bending Fatigue Strength in Table Liner for Cement Mill," Trans. of the KSME (A), Vol. 31, No. 12, pp. 1214-1220 https://doi.org/10.3795/KSME-A.2007.31.12.1214

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