Environmental fatigue of superelastic NiTi wire with two surface finishes

被引:15
作者
Racek, Jan [1 ]
Sittner, Petr [1 ,2 ]
机构
[1] CAS, Inst Phys, Na Slovance 2, Prague 18221, Czech Republic
[2] CAS, Nucl Phys Inst, Husinec Rez, Czech Republic
关键词
Nitinol; Shape memory alloy; Martensitic transformation; Surface damage; Electrochemical corrosion tests; Environmental fatigue tests; SHAPE-MEMORY ALLOY; CORROSION; TITANIUM; FRACTURE; STENT; SUSCEPTIBILITY; TRANSFORMATION; MECHANISM; BEHAVIOR; FAILURE;
D O I
10.1016/j.jmbbm.2020.104028
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Surface finish of NiTi is widely perceived to affect its biocompatibility and corrosion fatigue performance. The aim of this work was to find out, whether a carefully engineered surface oxide shows any beneficial effect over electropolished surface on the fatigue performance of superelastic NiTi wire mechanically cycled in simulated biofluid. Series of corrosion and environmental fatigue tensile tests was performed on superelastic NiTi wire with two different surface finishes frequently used in medical device industry. Open Circuit Potential reflecting the activity of chemical reactions on the surface of the wire cycled in electrochemical cell was continuously monitored during the fatigue tests. Microcracks at the surface of the fatigued NiTi wires were characterized by SEM and TEM. It was found that the carefully engineered 70 nm thick TiO2 oxide provides the NiTi wire with similar level of protection against the static corrosion as the less than 10 nm thin natural oxide on the electropolished wire and that it does not have any positive effect on its performance in environmental fatigue tests, whatsoever. On the contrary, the wire covered by the carefully engineered 70 nm thick TiO2 oxide displayed systematically poorer fatigue performance upon tensile cycling under specific critical loading conditions (strain amplitude <0.5% at large mean strains 1-7%).
引用
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页数:15
相关论文
共 57 条
[1]   Corrosion fatigue of biomedical metallic alloys: Mechanisms and mitigation [J].
Antunes, Renato Altobelli ;
Lopes de Oliveira, Mara Cristina .
ACTA BIOMATERIALIA, 2012, 8 (03) :937-962
[2]   The Role of Parent Phase Compliance on the Fatigue Lifetime of Ni-Ti [J].
Bonsignore, Craig ;
Shamini, Ali ;
Duerig, Tom .
SHAPE MEMORY AND SUPERELASTICITY, 2019, 5 (04) :407-414
[3]   Susceptibility to stress corrosion cracking of NiTi laser weldment in Hanks' solution [J].
Chan, C. W. ;
Man, H. C. ;
Yue, T. M. .
CORROSION SCIENCE, 2012, 57 :260-269
[4]  
Chan C.W., 2000, SURF COATING TECHNOL, V320, P574
[5]   Straightforward Downsizing of Inclusions in NiTi Alloys: A New Generation of SMA Wires with Outstanding Fatigue Life [J].
Coda A. ;
Cadelli A. ;
Zanella M. ;
Fumagalli L. .
Shape Memory and Superelasticity, 2018, 4 (01) :41-47
[6]   Microstructure changes during non-conventional heat treatment of thin Ni-Ti wires by pulsed electric current studied by transmission electron microscopy [J].
Delville, R. ;
Malard, B. ;
Pilch, J. ;
Sittner, P. ;
Schryvers, D. .
ACTA MATERIALIA, 2010, 58 (13) :4503-4515
[7]   An overview of nitinol medical applications [J].
Duerig, T ;
Pelton, A ;
Stöckel, D .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1999, 273 :149-160
[8]   An overview of superelastic stent design [J].
Duerig, TW ;
Tolomeo, DE ;
Wholey, M .
MINIMALLY INVASIVE THERAPY & ALLIED TECHNOLOGIES, 2000, 9 (3-4) :235-246
[9]   Structural and functional fatigue of NiTi shape memory alloys [J].
Eggeler, G ;
Hornbogen, E ;
Yawny, A ;
Heckmann, A ;
Wagner, M .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2004, 378 (1-2) :24-33
[10]   Effect of thermomechanical pre-treatment on short- and long-term Ni release from biomedical NiTi [J].
Freiberg, Katharina E. ;
Bremer-Streck, Sibylle ;
Kiehntopf, Michael ;
Rettenmayr, Markus ;
Undisz, Andreas .
ACTA BIOMATERIALIA, 2014, 10 (05) :2290-2295