In this study, in order to obtain a functionally graded material, NiTi strips were annealed at 350°C, 450°C and 550°C in a furnace using an assembly that allowed a temperature gradient along them, and their transformation temperatures were studied by Differential Scanning Calorimetry (DSC). Furthermore, the strips were bent at both ends and dipped into a water bath at room temperature which was then heated to 61°C in order to observe the influence of the gradient annealing on their strain recovery. It was found that the strips’ coolest regions presented the greatest strain recovery, particularly the strips annealed at 350°C and 450°C, although any strip exhibited a full strain recovery, due to plastic deformation during bending. These results, together with the DSC analysis at both regions (coolest and hottest), allow us to conclude that the graded annealing was successful for the intended functional gradient, as a gradient of transformation temperatures along the strips has been obtained, despite the primitive assembly, thus presenting an interesting result for a first approach. Further tests will be performed with a new experimental procedure especially designed for this purpose.
Información de la revista
Acceso a texto completo
Functionally graded NiTi shape memory alloys
Visitas
1397
F.E. Ferreira
, A.R. Alves, J.P. Oliveira, F.M. Braz Fernandes
Autor para correspondencia
CENIMAT – Centro de Investigação de Materiais, Faculdade de Ciências e Tecnologia – Universidade Nova de Lisboa, Campus de Caparica, 2829-516 Caparica, Portugal
Este artículo ha recibido
Información del artículo
Abstract
Keywords:
NiTi shape memory alloys
functionally graded materials
heat treatments
El Texto completo está disponible en PDF
References
[1]
K. Otsuka, X. Ren.
Prog. Mater. Sci., 50 (2005), pp. 511
[2]
W. Huang.
Mater. Des., 23 (2002), pp. 11
[3]
D.C. Lagoudas.
Shape Memory Alloys: Modeling and Engineering Applications.
Springer, (2008),
[4]
A. Guion, C. Hanna, P. Hutapea, Kim Jinho, N. Heulitt.
Aircr. Eng., 80 (2008), pp. 839
[5]
D.C. Lagoudas, D. Harti.
Aerospace Engineering Department.
Texas A & M University, (2007),
[6]
K.T. Tan, W.K. Yeo, A.Y.N. Soa, S.A. Meguid.
Mater. Des., 31 (2010), pp. 1284
[7]
Johnsons Medical. Nitinol;1; - Shape Memory
, 2015.(accessed 29.06.2015).
[8]
A. Mahmud, Y. Liu, T. Nam.
Smart Mater. Struct., 17 (2008), pp. 1
[9]
J.A. Shaw, S. Kyriakides.
J. Mech. Phys. Solids., 43 (1995), pp. 1243
[10]
G. Tan, Y. Liu, P. Sittner, M. Saunders.
Scr. Mater., 50 (2004), pp. 193
[11]
M.F. Razali, A.S. Mahmud.
J. Alloys Compd., 618 (2015), pp. 182
[12]
A.S. Mahamud, Y. Liu, T.H. Nam.
Phys. Scr., (2007), pp. 222
[13]
Q. Meng, Y. Liu, H. Yang, B.S. Shariat, T. Nam.
Acta Mater, 60 (2012), pp. 1658
[14]
B.S. Shariat, Y. Liu, G. Rio.
Mater. Des., 50 (2013), pp. 879
[15]
Q. Meng, H. Yang, Y. Liu, T. Nam, D. Favier.
J. Alloys Compd., 577 (2013), pp. S245
Copyright © 2017. Portuguese Society of Materials (SPM)