首页> 外文会议>Thermosense XXIX; Proceedings of SPIE-The International Society for Optical Engineering; vol.6541 >Detecting Low-Velocity Impact Damage in Composite Plates Using Infrared Thermography
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Detecting Low-Velocity Impact Damage in Composite Plates Using Infrared Thermography

机译:红外热成像技术检测复合材料板中的低速冲击损伤

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This research investigated low velocity impact damage in fiber-reinforced polymer (FRP) composites. Small-scale glass/epoxy laminates (approximately 210mm × 210mm × 2mm) were subjected to varying degrees of dynamic impact energies ranging from 5 to 20 J and infrared thermography inspections were performed on the damaged specimens. Three distinct damage modes were observed: penetration resulting in highly localized fiber rupture through the thickness of the composite; penetration/delamination in which localized fiber rupture was observed on the impacted surface and additional delamination occurred around the point of impact; and delamination/reverse side fiber rupture in which no visible damage occurred on the impacted surface but fiber rupture and delamination occurred beneath the surface. A modified lock-in thermography procedure was used in the nondestructive evaluation (NDE). Phase images were constructed by applying a least-squares sinusoidal curve fit to a series of thermal images collected over one cycle of sinusoidal heating. This method was shown to increase contrast for subsurface delaminations compared to raw thermal data. Finally, thermography results for FRP composite samples containing simulated damage (back-drilled holes) were compared with thermography results from impact-damaged samples.
机译:这项研究调查了纤维增强聚合物(FRP)复合材料的低速冲击损伤。对小型玻璃/环氧树脂层压板(约210mm×210mm×2mm)施加5到20 J范围的不同程度的动态冲击能量,并对损坏的样品进行红外热像仪检查。观察到三种不同的破坏模式:穿透导致纤维在复合材料整个厚度范围内高度局部断裂;穿透/分层,其中在受影响的表面上观察到局部纤维破裂,并且在撞击点附近发生了额外的分层;分层/反面纤维断裂,其中在受冲击的表面上没有可见的损坏发生,但在表面下方发生了纤维断裂和分层。在无损评估(NDE)中使用了改进的锁定式热成像程序。通过将最小二乘正弦曲线拟合应用于在一个正弦加热周期内收集的一系列热图像来构造相位图像。结果表明,与原始热数据相比,该方法可提高地下分层的对比度。最后,将含有模拟损伤(回钻孔)的FRP复合材料样品的热成像结果与冲击损坏的样品的热成像结果进行了比较。

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