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A novel in situ calibration of object distance of an imaging lens based on optical refraction and two-dimensional DIC

机译:基于光学折射和二维DIC的成像镜头物距新原位校准

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The strain results of two-dimensional digital image correlation (2D-DIC) are known to be markedly affected by out-of-plane motion in practical measurements. To correct strain results, it is necessary to measure the object distance of the camera imaging lens. Due to the difficulty of conventional calibration using a translation stage, a novel in situ calibration based on optical refraction is proposed herein to determine the object distance. In our calibration, recorded images show a radial outward displacement field when a glass plate is placed in front of a planar specimen. This study presents a formula derivation of the displacement and strain distributions theoretical model. Based on the strain model and the calculated strain fields obtained using a 2D-DIC algorithm, the object distance can be obtained with a high measurement accuracy. Experiments were conducted to verify the validity and reliability of the proposed calibration. Comparison results between a conventional translation calibration and the proposed calibration indicate that the proposed calibration can reach a measurement accuracy of 0.19% (1.2 mm in this paper). This experiment demonstrates that the proposed calibration is an easily implemented method for the in situ computation of the object distance of an imaging lens.
机译:众所周知,在实际测量中,二维数字图像相关性(2D-DIC)的应变结果会受到平面外运动的明显影响。为了校正应变结果,必须测量照相机成像镜头的物距。由于使用平移台进行常规校准的困难,因此本文提出了一种基于光学折射的新颖的原位校准来确定物距。在我们的校准中,当将玻璃板放置在平面样本的前面时,记录的图像显示径向向外位移场。本研究提出了位移和应变分布理论模型的公式推导。基于应变模型和使用2D-DIC算法获得的计算出的应变场,可以以高测量精度获得物距。进行实验以验证所提出校准的有效性和可靠性。常规平移校准和建议的校准之间的比较结果表明,建议的校准可以达到0.19%(本文为1.2 mm)的测量精度。该实验表明,提出的校准是一种用于成像透镜物距的原位计算的简便实施方法。

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