Thermodynamic and crystallographic properties of gamma radiated shape memory Cu-Al-Be alloy

被引:0
作者
Ş. Nevin Balo
Murat Eskil
机构
[1] University of Firat,Faculty of Science, Physics Department
[2] Aksaray University,Science and Literacy Faculty, Physics Department
来源
Applied Physics A | 2021年 / 127卷
关键词
Shape memory; Irradiation; Elastic strain energy; Microhardness;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of the different doses of γ irradiation on Cu–23.36Al–2.78Be (at.%) shape memory alloy (SMA) has been investigated in this study. The effect of irradiated dose on characteristic transition temperatures was determined by differential scanning calorimetry (DSC). The diffraction planes which depend on irradiation dose were analyzed by X-ray diffraction (XRD), and crystallite size was calculated for alloy samples. In order to observe changes in the structure with increasing irradiation dose, optical microscope investigations were performed. The transformation temperatures and activation energies decreased after irradiation, and some changes occurred in the forming latent gas. The sample of the heat treated but unirradiated alloy includes the β (DO3) structure as matrix phase at room temperature. With increasing irradiation dose, 18 R martensite structure is observed. Microhardness values and crystallite size values of the alloy samples changed significantly with increasing irradiation dose. The average crystallite size was found as 42.99 × 103 ± 18.71 nm for Cu–23.36Al–2.78Be (at.%) SMA. The thermal measurements showed a non-monotonous change on transition temperatures by the increase in applied dose value. Radiation hardening is about the beginning of spot defects in the metal structure. The basis of the mechanism is the interaction of the defects with movement of dislocations. Under the effect of radiation, very fast moving atomic particles strike the atoms that make up the crystal structure and force them out of their balanced position. As a result, atomic cavities and some defect atoms are formed in the lattice because of the gamma radiation.
引用
收藏
相关论文
共 152 条
[21]  
Refaei A(2010)Influence of neutron irradiation on the martensitic transformations and shape-memory effect in a TiNi alloy Mater. Res. 13 219-undefined
[22]  
Hosseinian R(2010)Thermoelastic properties on Cu–Zn–Al shape memory springs Mater. Sci. Eng. A 528 363-undefined
[23]  
Saint-Sulpice L(1997)Enhancement of fatigue life of Ni–Ti–Fe shape memory alloys by thermal cycling J. Phys. IV France 7 233-undefined
[24]  
Arbab-Chirani S(2008)Influence of composition and thermal treatments on the martensitic transition of Cu–Al–Mn Alloys C. R. Physique 9 370-undefined
[25]  
Calloch S(2004)Radiation aging of nonmetallic materials: specific aspects J. Alloys Compd. 364 171-undefined
[26]  
Manosa L(2003)Electron irradiation-induced evolution of the martensitic transformation characteristics in a CuZnAl shape memory alloy Mater. Sci. Eng. A 354 243-undefined
[27]  
Jurado M(1998)Change of entropy in the martensitic transformation and its dependence in Cu-based shape memory alloys Contin. Mech. Thermodyn. 10 179-undefined
[28]  
Gonzales-Comas A(2003)On the three phase mixtures in martensitic transformations of shape memory alloys: thermodynamical modelind and characteristic temperatures Mater. Lett. 57 2099-undefined
[29]  
Obrado E(2011)Irradiation-induced martensitic transformation of TiNi shape memory alloys J. Alloys Compd. 509 854-undefined
[30]  
Planes A(2013)Nanopowder synthesis of aluminum doped cadmium oxide via sol–gel calcination processing J. Therm. Anal. Calorim. 111 1255-undefined