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首页> 外文期刊>International journal of automation technology >Three-dimensional reconstruction by time-domain optical coherence tomography microscope with improved measurement range
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Three-dimensional reconstruction by time-domain optical coherence tomography microscope with improved measurement range

机译:时域光学相干断层扫描显微镜三维重建,测量范围更广

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The objective of this research was to develop a threedimensional (3D) reconstruction system based on a time-domain optical coherence tomography (OCT) microscope. One of the critical drawbacks of OCT microscopes is that their axial measurement ranges are typically limited by their depths of field (DOFs), which are determined by the numerical apertures of their objective lenses and the central wavelengths of their light sources. If a low-coherence interference fringe is far outside the DOF, the measurement accuracy inevitably decreases, regardless of how welladjusted the reference mirror is. To address this issue and improve the axial measurement range of the OCT microscope in this study, an object-scanning measurement scheme involving a Linnik interferometer was developed. To calibrate the system in the proposed technique, image post-processing is performed for a well-conditioned state to ensure that a low-coherence interference fringe is generated within the DOF, enabling 3D objects with high-aspect-ratio structures to be scanned along the axial direction. During objectscanning, this state is always monitored and is corrected by adjusting the reference mirror. By using this method, the axial measurement range can be improved up to the working distance (WD) of the objective lens without compromising the measurement accuracy. The WD is typically longer than 10 mm, while the DOF of the microscope is around 0.01 mm in general, although it varies depending on the imaging system. In this report, the experimental setup of a 3D reconstruction system is presented, a series of experimental verifications is described, and the results are discussed. The axial measurement range was improved to at least 35 times that of a typical OCT microscope with identical imaging optics.
机译:这项研究的目的是开发基于时域光学相干断层扫描(OCT)显微镜的三维(3D)重建系统。 OCT显微镜的关键缺点之一是它们的轴向测量范围通常受到其景深(DOF)的限制,景深由其物镜的数值孔径和光源的中心波长确定。如果低相干干涉条纹远位于自由度之外,则无论参考镜的调整程度如何,测量精度都会不可避免地降低。为了解决此问题并在本研究中改善OCT显微镜的轴向测量范围,开发了一种涉及Linnik干涉仪的物体扫描测量方案。为了在提出的技术中校准系统,对条件良好的状态执行图像后处理,以确保在DOF内生成低相干干涉条纹,从而可以沿长宽比结构扫描3D对象轴向。在对象扫描过程中,始终监视此状态,并通过调整参考镜对其进行校正。通过使用这种方法,可以在不影响测量精度的情况下提高轴向测量范围,直至达到物镜的工作距离(WD)。 WD通常长于10毫米,而显微镜的自由度通常在0.01毫米左右,尽管它会随成像系统而变化。在此报告中,介绍了3D重建系统的实验装置,描述了一系列实验验证,并讨论了结果。轴向测量范围至少提高了具有相同成像光学器件的典型OCT显微镜的35倍。

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