DOI QR코드

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Variability in mechanical properties and microstructure characterization of CuAlBe shape memory alloys for vibration mitigation

  • 투고 : 2007.07.06
  • 심사 : 2007.10.04
  • 발행 : 2008.03.25

초록

Shape memory alloys (SMA) have been emphasized, studied and understood in the controlled world of the laboratory. Any attempt to implement one of these alloys in engineered products requires a jump from the controlled world of the laboratory to the actual environment of the application. The first step is to move from single grain specimens to multigrain samples. One works with a material for which any stock is different from that previously available. This paper reviews the milestones in the familiarization process the authors had to overcome during their cooperation within a project funded by the European Union. The main items cover transformation temperatures, thermal treatment and properties understanding.

키워드

참고문헌

  1. Andrawes, B. and DesRoches, R. (2007),"Effect of hysteretic properties of superelastic shape memory alloys on the seismic performance of structures", J. Struct. Control Health Monitor, 14(2), 301-320. https://doi.org/10.1002/stc.159
  2. Auricchio, F., Faravelli, L., Magonette, G. and Torra, V. (eds.) (2001), Shape Memory Alloys: Advances in Modelling and Applications, CIMNE, Barcelona.
  3. Casciati, F. and Faravelli, L. (2004), Experimental characterization of a cu-based shape memory alloy toward its exploitations in passive control devices", Journal de Physique IV, 115, 299-306. https://doi.org/10.1051/jp4:2004115035
  4. Casciati, F., Casciati, S. and Faravelli, L. (2007),"Fatigue characterization of a Cu-based shape memory alloy", EUROMECH Colloquium 478,"Non-equilibrium dynamical phenomena in inhomogeneous solids", 13-16 June 2006, Tallinn, Estonia, Publ Proceedings of the Estonian Academy of Sciences - Physics Mathematics, 56(2), 207-217.
  5. Casciati, S. and Faravelli, L. (2003),"Thermo-mechanic properties of a Cu-Based shape memory alloy", Proceedings SMART03, Poland.
  6. Casciati, S. and Faravelli, L. (2006),"Fatigue tests of a Cu-based shape memory alloy", Proc. Fourth World Conference on Structural Control and Monitoring (4WCSCM), 11-13 July 2006, San Diego, California, U.S.A.
  7. Casciati, S. and Faravelli, L. (2007),"Structural components in shape memory alloy for localized energy dissipation", Computer & Structures, accepted for publication.
  8. Casciati, S. (2007),"Thermal treatment optimization for Cu-based shape memory alloys", Proceedings First International Conference on Self-healing Materials, Noordwijk, the Netherlands.
  9. Evard, M.E., Volkov, A.E. and Bobeleva, O.V. (2005),"An approach for modelling fracture of shape memory alloy parts", Smart Struct. Sys., 2(4), 357-363.
  10. Hautcoeur, A. (2006), personal communication, September.
  11. Sutou, Y., Omori, T., Koeda, N., Kainuma, R. and Ishida, K. (2006),"Effects of grain size and texture on damping properties of Cu-Al-Mn-based shape memory alloys", Materials Science and Engineering: A, Volumes 438- 440, 25 November 2006, 743-746. https://doi.org/10.1016/j.msea.2006.02.085
  12. Torra, V. (2006), personal communication.
  13. Torra, V. (2007), personal communication.
  14. van der Eijk, C., Olsen, J.S. and Zhang, Z. (2007),"Investigation of the pseudo-elastic behaviour in two commercial NiTi alloys: Experiments and modelling", EUROMECH Colloquium 478,"Non-equilibrium Dynamical Phenomena in Inhomogeneous Solids", 13-16 June 2006, Tallinn, Estonia, Publ.: Proceedings of the Estonian Academy of Sciences. Physics & Mathematics, 56(2), 197-206.
  15. van der Eijk, C., Olsen, J. S. and Zhang, Z. (2006),"Fitness for purpose evaluation of two NiTi alloys for seismic damping", Proc. Fourth World Conference on Structural Control and Monitoring (4WCSCM), 11-13 July 2006, San Diego, California, U.S.A.

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