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Surface Profiling and Core Evaluation of Aluminum Honeycomb Sandwich Aircraft Panels Using Multi-Frequency Eddy Current Testing

机译:使用多频涡流测试对铝制蜂窝夹层飞机面板进行表面轮廓分析和型芯评估

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Surface damage on honeycomb aircraft panels is often measured manually, and is therefore subject to variation based on inspection personnel. Eddy current testing (ECT) is sensitive to variations in probe-to-specimen spacing, or lift-off, and is thus promising for high-resolution profiling of surface damage on aluminum panels. Lower frequency testing also allows inspection through the face sheet, an advantage over optical 3D scanning methods. This paper presents results from the ECT inspection of surface damage on an approximately flat aluminum honeycomb aircraft panel, and compares the measurements to those taken using optical 3D scanning technology. An ECT C-Scan of the dented panel surface was obtained by attaching the probe to a robotic scanning apparatus. Data was taken simultaneously at four frequencies of 25, 100, 400 and 1600 kHz. A reference surface was then defined that approximated the original, undamaged panel surface, which also compensated for the effects of specimen tilt and thermal drift within the ECT instrument. Data was converted to lift-off using height calibration curves developed for each probe frequency. A damage region of 22,550 mm 2 area with dents ranging in depth from 0.13–1.01 mm was analyzed. The method was accurate at 1600 kHz to within 0.05 mm (2σ) when compared with 231 measurements taken via optical 3D scanning. Testing at 25 kHz revealed a 3.2 mm cell size within the honeycomb core, which was confirmed via destructive evaluation. As a result, ECT demonstrates potential for implementation as a method for rapid in-field aircraft panel surface damage assessment.
机译:蜂窝飞机面板上的表面损坏通常是手动测量的,因此视检查人员而定会有所变化。涡流测试(ECT)对探头到样品的间距或剥离的变化很敏感,因此有望对铝板上的表面损伤进行高分辨率分析。较低频率的测试还允许通过面板进行检查,这比光学3D扫描方法的优势。本文介绍了ECT检查大约平坦的铝蜂窝飞机面板表面损伤的结果,并将测量结果与使用光学3D扫描技术进行的测量结果进行了比较。通过将探针安装到自动扫描设备上,可以得到凹陷的面板表面的ECT C扫描图。在25、100、400和1600 kHz的四个频率下同时获取数据。然后定义一个参考表面,该表面近似于原始的,未损坏的面板表面,该表面也可以补偿ECT仪器内样品倾斜和热漂移的影响。使用针对每个探头频率制定的高度校准曲线将数据转换为提离。分析了22,550 mm 2面积的损伤区域,其凹痕深度范围为0.13–1.01 mm。与通过光学3D扫描进行的231次测量相比,该方法在1600 kHz时精确到0.05 mm(2σ)以内。在25 kHz的测试结果表明,蜂窝芯内的蜂窝孔尺寸为3.2 mm,这已通过破坏性评估得到了证实。结果,ECT展示了作为快速现场飞机面板表面损伤评估方法的实施潜力。

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