High-Cycle Mechanical Fatigue Performance of Sputtered Nitinol

被引:5
|
作者
Gugat, J. L. [1 ]
Bechtold, C. [2 ]
Chluba, C. [1 ,2 ]
Quandt, E. [1 ]
de Miranda, R. Lima [2 ]
机构
[1] Christian Albrechts Univ Kiel, Dept Engn, Inst Mat Sci, Inorgan Funct Mat, Kaiserstr 2, D-24143 Kiel, Germany
[2] Acquandas GmbH, Kaiserstr 2, D-24143 Kiel, Germany
关键词
fatigue performance; finite element method; modeling and simulation; nitinol; sputter deposition; vascular implants; SHAPE-MEMORY ALLOYS; MODEL; BEHAVIOR; STRAIN; FILM; IMPLEMENTATION; COMPRESSION; RESISTANCE; ASYMMETRY; TENSION;
D O I
10.1007/s11665-020-04668-2
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This paper investigates the fatigue performance of Nitinol thin-film devices used in medical applications. Freestanding films are fabricated and structured by microsystem technology processes (magnetron sputtering, UV lithography and wet chemical etching). A test rig is developed to address the requirements of Nitinol thin-film samples in terms of force, stroke and precision and also allows the multiplication of test rigs due to its inexpensive components. Hence, several samples can be tested simultaneously at different parameters in order to obtain a thorough characterization within reasonable test duration. Finite element analysis (FEA) is used to derive maximum principle strains of test specimen during cycling loading. Therefore, a superelastic, multiaxial material model with two different kinetic transformation mechanisms being capable of considering tension/compression asymmetry and temperature effects is realized and implemented using the FEA software Comsol Multiphysics. Good agreement between simulation and experimental tensile tests is shown. An excellent fatigue resistance with a high fatigue safety limit of 1.75% pulsatile strain amplitude for mean strains up to 2.5% with sputtered Nitinol diamond specimen is observed.
引用
收藏
页码:1892 / 1900
页数:9
相关论文
共 50 条
  • [31] MICROMECHANICS OF AN EXTRUSION IN HIGH-CYCLE FATIGUE WITH CREEP
    LIN, TH
    LIN, SR
    WU, XQ
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1990, 57 (04): : 815 - 820
  • [32] Microstructural fracture mechanics in high-cycle fatigue
    de los Rios, ER
    Navarro, A
    HIGH CYCLE FATIGUE OF STRUCTURAL MATERIALS, 1997, : 157 - 166
  • [33] Specific features of high-cycle and ultra-high-cycle fatigue
    Lukás, P
    Kunz, L
    FATIGUE & FRACTURE OF ENGINEERING MATERIALS & STRUCTURES, 2002, 25 (8-9) : 747 - 753
  • [34] A brief review of multiaxial high-cycle fatigue
    Ding, Xiangqun
    He, Guoqiu
    Chen, Chengshu
    Zhu, Zhengyu
    Liu, Xiaoshan
    Crepeau, Paul N.
    METALLURGICAL AND MATERIALS TRANSACTIONS B-PROCESS METALLURGY AND MATERIALS PROCESSING SCIENCE, 2007, 38 (04): : 591 - 599
  • [35] MICROMECHANICS OF CRACK INITIATION IN HIGH-CYCLE FATIGUE
    LIN, TH
    ADVANCES IN APPLIED MECHANICS, VOL 29, 1992, 29 : 1 - 62
  • [36] High-cycle fatigue damage accumulation in paper
    Yoon Joo Na
    Sarah A. Paluskiewicz
    Christopher L. Muhlstein
    Communications Materials, 1
  • [37] Residual strength of GFRP at high-cycle fatigue
    Andersons, J
    Korsgaard, J
    MECHANICS OF COMPOSITE MATERIALS, 1999, 35 (05) : 395 - 402
  • [38] Modelling of anisotropic high-cycle fatigue of metals☆
    Kouhia, Reijo
    Ottosen, Niels Saabye
    Ristinmaa, Matti
    Ruiz, Arturo Rubio
    Holopainen, Sami
    Saksala, Timo
    EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2025, 111
  • [39] PREDICTING FATIGUE ENDURANCE STRENGTHS FOR HIGH-CYCLE AND LOW-CYCLE FATIGUE
    MISCHKE, CR
    JOURNAL OF MECHANICAL DESIGN-TRANSACTIONS OF THE ASME, 1982, 104 (03): : 653 - 660
  • [40] On the anelasticity and fatigue fracture entropy in high-cycle metal fatigue
    Liakat, M.
    Khonsari, M. M.
    MATERIALS & DESIGN, 2015, 82 : 18 - 27