定量测量用闪光脉冲热成像检测参数分析

M. Švantner, L. Muzika, A. Moskovchenko
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引用次数: 0

摘要

闪光脉冲热成像是一种检测材料表面不连续性或不均匀性的方法。它是基于被检测样品的短脉冲激励和热响应分析。它基本上是一种指示性方法,然而,也开发了用于评估缺陷可检测性、缺陷深度或涂层厚度的定量程序。一般来说,定量评价对测量过程的准确性有较高的要求。这一贡献集中在热成像数据记录参数的分析上。分析了样品热响应记录与激励源同步的影响。在平底孔样品上演示了使用热像仪和基于冷却探测器的热像仪记录的差异。结果表明,高水平的同步是定量评价闪烁脉冲热成像的关键。实验还表明,基于冷却量子探测器的热像仪在冷却过程测量中具有更好的温度响应,可以产生更高的灵敏度和更低的噪声记录。因此,它应该用于任何定量的闪光脉冲热成像测量,即使一个热测量探测器类型的相机将满足帧率的要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
analysis of flash pulse thermographic inspection parameters for quantitative measurement
Flash-pulse thermography is a method for the detection of discontinuities or inhomogeneities in materials at their surface. It is based on excitation of inspected samples by a short pulse and analysis of its thermal response. It is basically an indicative method, however, quantitative procedures for an evaluation of defects detectability, defects depths or a thickness of coatings are also developed. The quantitative evaluation has, in general, higher demands on the accuracy of a measurement procedure. This contribution is focused on the analysis of parameters of recording of thermographic data. The influence of synchronization of a sample thermal response recording with an excitation source is analyzed. Differences between recording using a bolometric thermographic camera and a cooled detector based thermographic camera are demonstrated on flat-bottom hole samples. The results show that a high-level synchronization is crucial for the quantitative evaluation of flash-pulse thermography. It is also shown that the cooled quantum detector based thermographic cameras have better temperature response in the case of cooling process measurement and can produce higher sensitivity and lower noise records. Thus, it should be used for any quantitative flash-pulse thermography measurement, even if a bolometric detector type camera would satisfied framerates requirements.
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