论文标题

使用2D光热超级分辨率重建的热量图检测,并加热

Thermographic detection of internal defects using 2D photothermal super resolution reconstruction with sequential laser heating

论文作者

Lecompagnon, Julien, Ahmadi, Samim, Hirsch, Philipp, Rupprecht, Christian, Ziegler, Mathias

论文摘要

热力学光热超级分辨率重建可以使内部缺陷/不均匀性低于经典限制,而经典限制受热波传播的扩散特性的控制。基于特殊采样策略的应用和随后在后处理中的数值优化步骤的结合,在检测一维缺陷/不均匀性结构中,热量超级分辨率已经证明是优于标准的热量表方法。在我们的工作中,我们报告了该方法有效检测和分辨出具有完全二维结构激光加热的缺陷横截面的能力的扩展。重建是使用本工作中提出的两种不同算法之一进行的。两种算法都利用凸优化的几个相干测量的组合,并利用缺陷/不均匀性的稀疏性质,这是大多数非损害性测试方案的典型情况。最后,每种算法的性能在重建质量和算法复杂性上进行了评级。提出的实验方法基于高功率激光器重复的空间结构加热。结果,可以获得二维稀疏缺陷/不均匀性图。此外,将获得的结果与传统的热量检查方法的结果进行了比较,该方法利用了均匀的照明。由于重建缺陷/不均匀性图的稀疏性质,该比较是定性进行的。

Thermographic photothermal super resolution reconstruction enables the resolution of internal defects/inhomogeneities below the classical limit which is governed by the diffusion properties of thermal wave propagation. Based on a combination of the application of special sampling strategies and a subsequent numerical optimization step in post-processing, thermographic super resolution has already proven to be superior to standard thermographic methods in the detection of one-dimensional defect/inhomogeneity structures. In our work, we report an extension of the capabilities of the method for efficient detection and resolution of defect cross sections with fully two-dimensional structured laser-based heating. The reconstruction is carried out using one of two different algorithms which are proposed within this work. Both algorithms utilize the combination of several coherent measurements using convex optimization and exploit the sparse nature of defects/inhomogeneities as is typical for most nondestructive testing scenarios. Finally, the performance of each algorithm is rated on reconstruction quality and algorithmic complexity. The presented experimental approach is based on repeated spatially structured heating by a high power laser. As a result, a two-dimensional sparse defect/inhomogeneity map can be obtained. In addition, the obtained results are compared with those of conventional thermographic inspection methods which make use of homogeneous illumination. Due to the sparse nature of the reconstructed defect/inhomogeneity map, this comparison is performed qualitatively.

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