• Title/Summary/Keyword: 열응력유기손상

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Analysis of Thermo-Acoustic Emission from Damage in Composite Laminates under Thermal Cyclic Loading (열하중을 받는 복합재료 적층판의 손상에 대한 열-음향방출해석)

  • Kim, Young-Bok;Min, Dae-Hong;Lee, Deok-Bo;Choi, Nak-Sam
    • Journal of the Korean Society for Nondestructive Testing
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    • v.21 no.3
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    • pp.261-268
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    • 2001
  • An investigation on nondestructive evaluation of thermal stress-nduced damage in the composite laminates (3mm in thickness and $[+45_6/-45_6]_s$ lay-up angles) has been performed using the thermo-acoustic emission technique. Reduction of thermo-AE events due to repetitive thermal load cycles showed a Kaiser effect. An analysis of the thermo-AE behavior determined the stress free temperature of composite laminates. Fiber fracture and matrix cracks were observed using the optical microscopy, scanning electron microscopy and ultrasonic C-sean. Short-Time Fourier Transform of thermo-AE signals offered the time-frequency characteristics which might classily the thermo-AE as three different types to estimate the damage processes of the composites.

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Vibration-Based Nondestructive Evaluation of Thermal Stress-Induced Damage in Thin Composite Laminates (복합 적층 박판의 열응력 파손에 대한 진동 활용 비파괴평가)

  • Lee, Sung-Hyuk;Choi, Nak-Sam;Lee, Jong-Ki
    • Journal of the Korean Society for Nondestructive Testing
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    • v.19 no.5
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    • pp.347-355
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    • 1999
  • A feasibility investigation on vibration-based nondestructive evaluation of thermal stress-induced micro-failure in the free edge region of thin composite laminates(1mm thick) has been carried out. The failure occurrence and damage zone, which were predicted by the three-dimensional finite-element thermal stress analysis, were observed using the ultrasonic C-scan and optical microscopy. Analysis of the vibration spectrum measured from the laminate beam specimens by the vibration sweep test exhibited that the obvious decrease in resonancy frequency and some considerable increase in damping factor were associated with the micro-failure formation. The vibration technique utilizing short beam and high resonant frequency was found to be very sensitive to the thermal stress-induced damage in the thin laminates.

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