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In-line particle holography with an astigmatic beam: setup self-calibration using an 'inverse problems' approach

机译:带散光光束的在线粒子全息照相术:使用“逆问题”方法进行自我校准

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摘要

The use of digital in-line holography for the characterization of confined flows in cylindrical geometry confinements (e.g., cylindrical pipe or cylindrical capillaries) is discussed. Due to cylindrical geometry of the walls, the illuminating laser wave can be strongly astigmatic, which renders the use of classical reconstruction techniques impossible. Contrary to plane wave holography setup, the diffraction pattern of the particles strongly depends on the axial distance of the latter to the entry face of the confinement structure. To address this reconstruction issue, we propose to use an "inverse problems" approach. This approach amounts to finding the best match (least squares solution) between a diffraction pattern model and the captured hologram. For this purpose, a direct imaging model for astigmatic holograms, based on the use of transfer matrices, is presented and validated by comparing experimental and simulated holograms. The accuracy of the "inverse problems" reconstruction is then used to calibrate the experimental setup adjustable parameters. Finally, the approach is tested through experimental astigmatic hologram reconstruction, thus paving the way to its use in pipe flow studies.
机译:讨论了使用数字在线全息术表征圆柱形几何形状限制区(例如,圆柱形管或圆柱形毛细管)中的受限流。由于墙壁的圆柱几何形状,照射的激光波可能会强烈散光,这使得无法使用经典的重建技术。与平面波全息照相设置相反,粒子的衍射图强烈取决于粒子到约束结构入射面的轴向距离。为了解决此重建问题,我们建议使用“逆问题”方法。这种方法相当于在衍射图样和捕获的全息图之间找到最佳匹配(最小二乘解)。为此,提出了基于转移矩阵的散光全息图直接成像模型,并通过比较实验全息图和模拟全息图进行了验证。然后使用“反问题”重构的精度来校准实验设置可调参数。最后,通过实验性像散全息图重建对该方法进行了测试,从而为在管道流动研究中的使用铺平了道路。

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