Impact monitoring of CFRP composites with acoustic emission and laser Doppler vibrometry

被引:1
|
作者
Grigg, S. [1 ]
Almudaihesh, F. [1 ]
Roberts, M. [1 ]
Pullin, R. [1 ]
机构
[1] Cardiff Univ, Cardiff Sch Engn, Cardiff, Wales
来源
ENGINEERING RESEARCH EXPRESS | 2021年 / 3卷 / 01期
关键词
acoustic emission; laser Doppler vibrometry; composites; impact; LOW-VELOCITY IMPACT; LAMINATED COMPOSITES; DAMAGE; WAVES;
D O I
10.1088/2631-8695/abde8b
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The use of Acoustic Emission (AE) to detect impacts is of interest within industries where vital components are prone to impact damage, in particular where Carbon Fibre Reinforced Polymers (CFRP) are used, as damage can often go un-noticed within them. For AE monitoring of impacts piezoelectric sensors are used to detect the ultrasonic wave produced by an impact. Classification is also possible of these waves enabling a distinction between damaging and non-damaging impacts. These sensors do however have resonance, so do not give an accurate picture of how the waves propagate, better knowledge would enable better selection of sensors. Laser Doppler Vibrometry is a non-contact and non-resonant method of analysing the surface displacement on a structure. In this study, a vibrometer was used to monitor CFRP plates during impact to assess its applicability for distinguishing between damaging and non-damaging impacts, compared with a surface mounted AE sensor. The vibrometer was able to detect both low frequency flexural modes due to the impact process and the higher frequency extensional modes, initiated by damage. When compared to the AE sensor the vibrometer was comparable in its results, and unlike the sensor, not susceptible to resonance or decoupling. For the tested material the vibrometer identified frequencies greater than 20 kHz to be associated with damaging impacts.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Monitoring a model cable-stay bridge structure by acoustic emission and laser Doppler vibrometry
    Kordatou, T. Z.
    Mpalaskas, A. C.
    Tragazikis, I. K.
    Matikas, T. E.
    SMART STRUCTURES AND NDE FOR INDUSTRY 4.0, SMART CITIES, AND ENERGY SYSTEMS, 2020, 11382
  • [2] Load/unload measurements using laser doppler vibrometry and acoustic emission
    Weissner, S
    Talke, FE
    TRIBOLOGY INTERNATIONAL, 2000, 33 (5-6) : 367 - 372
  • [3] Laser Doppler vibrometry for interoperative monitoring
    Foth, HJ
    LASERS IN SURGERY: ADVANCED CHARACTERIZATION, THERAPEUTICS, AND SYSTEMS VIII, PROCEEDINGS OF, 1998, 3245 : 217 - 226
  • [4] Studying Stability of CFRP Composites to Low-Energy Impact Damage by Laser Vibrometry
    V. Yu. Shpil’noi
    V. P. Vavilov
    D. A. Derusova
    V. A. Krasnoveikin
    Russian Journal of Nondestructive Testing, 2019, 55 : 639 - 647
  • [5] Studying Stability of CFRP Composites to Low-Energy Impact Damage by Laser Vibrometry
    Shpil'noi, V. Yu
    Vavilov, V. P.
    Derusova, D. A.
    Krasnoveikin, V. A.
    RUSSIAN JOURNAL OF NONDESTRUCTIVE TESTING, 2019, 55 (09) : 639 - 647
  • [6] Online vibration monitoring using laser vibrometer and acoustic emission techniques in robotic milling CFRP composites
    Chen, Yajie
    Wang, Guanbo
    Tan, Mingbo
    Wen, Zilei
    Li, Maojun
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART B-JOURNAL OF ENGINEERING MANUFACTURE, 2024,
  • [7] Acoustic Emission Monitoring of Unstable Damage Growth in CFRP Composites under Tension
    Mills-Dadson, B.
    Tran, D.
    Asamene, K.
    Whitlow, T.
    Sundaresan, M.
    43RD REVIEW OF PROGRESS IN QUANTITATIVE NONDESTRUCTIVE EVALUATION, 2017, 1806
  • [8] LASER DOPPLER VIBROMETRY
    不详
    HEWLETT-PACKARD JOURNAL, 1989, 40 (05): : 82 - 83
  • [9] Investigation of Dynamic Characteristics of Carbon Composites by Laser Doppler Vibrometry
    Krasnoveikin, Vladimir A.
    Konovalenko, Ivan S.
    MECHANICS, RESOURCE AND DIAGNOSTICS OF MATERIALS AND STRUCTURES (MRDMS-2018), 2018, 2053
  • [10] A Review of Laser Doppler Vibrometry for Structural Health Monitoring Applications
    Staszewski, Wieslaw J.
    bin Jenal, Ruztamreen
    Klepka, Andrzej
    Szwedo, Mariusz
    Uhl, Tadeusz
    STRUCTURAL HEALTH MONITORING II, 2012, 518 : 1 - +