Characterising fatigue crack in an aluminium plate using guided elastic waves

被引:0
|
作者
Zhou, Chao [1 ]
Su, Zhongqing [1 ]
Cheng, Li [1 ]
机构
[1] Hong Kong Polytech Univ, Dept Mech Engn, Hong Kong, Hong Kong, Peoples R China
来源
SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2011 | 2011年 / 7981卷
关键词
fatigue crack; acousto-ultrasonic waves; nonlinear wave characteristics; structural health monitoring;
D O I
10.1117/12.879894
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Integrity of in-service engineering structures is prone to fatigue damage over their lifespan. Majority of the currently existing elastic-wave-based damage identification techniques have been developed and validated for damage at macroscopic levels, by canvassing linear properties of elastic waves such as attenuation, transmission, reflection and mode conversion. However the real damage in engineering structures often initiates from fatigue crack, presenting highly nonlinear characteristics under cyclic loads. It is of great significance but vast challenge to detect fatigue damage of small dimension at its initial stage. In this study, traditional elastic-wave-based damage identification techniques were first employed with an attempt to detect fatigue crack initiated from a notch in an aluminium plate with the assistance of a signal correlation analysis, to observe the deficiency of the approach. Then the higher-order harmonic wave generation was used to exploit the nonlinear characteristics of acousto-ultrasonic waves (Lamb waves), whereby the fatigue damage was characterised. Results show that nonlinear characteristics of acousto-ultrasonic waves can facilitate more effective detection of fatigue damage than linear signal features such as wave reflection, transmission or mode conversion.
引用
收藏
页数:7
相关论文
共 50 条
  • [1] Monitoring of fatigue crack growth using guided ultrasonic waves
    Masserey, B.
    Kostson, E.
    Fromme, P.
    SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2010, 2010, 7647
  • [2] Structural health monitoring of fatigue crack growth in plate structures with ultrasonic guided waves
    Cho, Hwanjeong
    Lissenden, Cliff J.
    STRUCTURAL HEALTH MONITORING-AN INTERNATIONAL JOURNAL, 2012, 11 (04): : 393 - 404
  • [3] Influence of asphalt on fatigue crack monitoring in steel bridge decks using guided waves
    Pahlavan, Lotfollah
    Mota, Mariana M.
    Blacquiere, Gerrit
    CONSTRUCTION AND BUILDING MATERIALS, 2016, 120 : 593 - 604
  • [4] Active Monitoring of Fatigue Crack in the Weld Zone of Bogie Frames Using Ultrasonic Guided Waves
    Yan, Jiajia
    Jin, Hashen
    Sun, Hu
    Qing, Xinlin
    SENSORS, 2019, 19 (15)
  • [5] Fatigue crack detection in pipes with multiple mode nonlinear guided waves
    Guan, Ruiqi
    Lu, Ye
    Wang, Kai
    Su, Zhongqing
    STRUCTURAL HEALTH MONITORING-AN INTERNATIONAL JOURNAL, 2019, 18 (01): : 180 - 192
  • [6] Noncontact monitoring of fatigue crack growth using high frequency guided waves
    Masserey, B.
    Fromme, P.
    SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2014, 2014, 9061
  • [7] Fatigue crack sizing in steel bridge decks using ultrasonic guided waves
    Pahlavan, Lotfollah
    Blacquiere, Gerrit
    NDT & E INTERNATIONAL, 2016, 77 : 49 - 62
  • [8] In-situ monitoring of fatigue crack growth using high frequency guided waves
    Masserey, B.
    Fromme, P.
    NDT & E INTERNATIONAL, 2015, 71 : 1 - 7
  • [9] Fatigue Crack Detection Using Guided Waves and Probability-Based Imaging Approach
    Lu, M.
    Lu, X.
    Zhou, L.
    Su, Z.
    Ye, L.
    Li, F.
    STRUCTURAL HEALTH MONITORING 2011: CONDITION-BASED MAINTENANCE AND INTELLIGENT STRUCTURES, VOL 1, 2011, : 282 - +
  • [10] Residual stress effects of a fatigue crack on guided lamb waves
    Martinez, M.
    Pant, S.
    Yanishevsky, M.
    Backman, D.
    SMART MATERIALS AND STRUCTURES, 2017, 26 (11)