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Development of an Off-Axis Digital Holographic Microscope for Large Scale Measurement in Fluid Mechanics

机译:流体力学大规模测量轴外数字全息显微镜的研制

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Holographic particle image velocimetry is a promising technique to probe and characterize complex flow dynamics since it is a truly three-dimensional (3D) three-component measurement technique. The technique simply records the coherent light scattered by small seeding particles that are assumed to faithfully follow the flow and uses it to reconstruct the event afterward. Reconstruction of the event is usually performed using a digital video microscope mounted on a 3D translation stage. The microscope records the intensity only which consequently results in loss of phase information. The objective of this paper is to develop and apply digital holographic microscopy with the aim to recover the phase information. Digital holographic microscopy has immense potentials in microscale solid and fluid measurements as it offers the possibility of digital wavefront processing by manipulating amplitude and phase of the recorded holograms. In this paper, we have developed an off-axis digital holographic microscope to capture both amplitude and phase of the reconstructed object simultaneously. This inherently solves twin image problem in the recorded digital holograms. The microscope was integrated into the reconstruction system and was successfully used to digitize holographic images of 10 μm polystyrene spheres and 1 μm olive oil droplets. The spatial resolution of the system is 0.63 μm, and the field of view is 1250 × 625 μm~2. A 3D holographic reconstruction using a k-space analysis (wave-vector) of the optical field is applied to numerically refocus the images. Another potential application includes digital wavefront processing to compensate for aberration in the images.
机译:全息粒子图像速度是探测和表征复杂流动动态的有希望的技术,因为它是真正的三维(3D)三分测量技术。该技术简单地记录了由小播种粒子散射的相干光,假设忠实地遵循流量,并使用它以后重建事件。通常使用安装在3D翻译级上的数字视频显微镜进行事件的重建。显微镜仅记录强度,从而导致丢失相信息。本文的目的是开发和应用数字全息显微镜,旨在恢复相位信息。数字全息显微具有微尺度固体和流体测量巨大潜力,因为它提供数字波面处理通过操作记录的全息图的振幅和相位的可能性。在本文中,我们开发了一个轴外数字全息显微镜,以同时捕获重建物体的两个幅度和相位。这本身地解决了记录的数字全息图中的双图像问题。显微镜集成到重建系统中,并成功地用于将10μm聚苯乙烯球的全息图像数字化为1μm橄榄油液滴。系统的空间分辨率为0.63μm,视场是1250×625μm〜2。使用光场的k空间分析(波矢量)的3D全息重建被应用于数值重新焦点图像。另一个潜在应用包括数字波前处理以补偿图像中的像差。

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