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Digital detection method design of the optic error of the beam expander

机译:扩束镜光学误差的数字检测方法设计

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The beam expander is a device used for extending the action radius of the optical system by removing the optical axis parallel. It is usually composed by a pair of plane mirror or two total reflection prism which is installed parallel. However, limited by manufacturing and installation progress, optical axis parallelism errors can be generated while it is hardly to guarantee the two plane mirror or the two total reflection prism installed completely parallel to each other. To detect the optical axis parallelism error of the beam expander quantitatively, a digital optical axis parallelism error detection method for the beam expander is designed taking advantage of the CCD technology and the Image processing technology. In this method, the reticule of the collimator is regarded as the target at infinity. Firstly, the reticule of the collimator images on the CCD camera directly. Keep the pose of the CCD camera unchanged. Then the parallel optical beam is shifted into the beam expander detected by removing of the pentaprism, and the reticule of the collimator images on the same CCD camera again. The location of the collimator reticule center image on the CCD camera is determined respectively through the corresponding image processing. The error of the beam expander is calculated by comparing the coordinate of the collimator reticule center image. An experiment platform is set up based on and the feasibility of this method is verified that the accuracy of the detection method is less than 3"; this method has the advantage of simple operation, high practicality and high accuracy.
机译:扩束器是用于通过去除平行的光轴来扩展光学系统的作用半径的装置。它通常由一对平行安装的平面镜或两个全反射棱镜组成。然而,受制造和安装进度的限制,当很难保证两个平面镜或两个全反射棱镜安装成彼此完全平行时,会产生光轴平行度误差。为了定量检测扩束器的光轴平行度误差,利用CCD技术和图像处理技术设计了一种用于扩束器的数字光轴平行度误差检测方法。在这种方法中,准直仪的网版被认为是无穷远处的目标。首先,将准直仪图像的标线直接放在CCD相机上。保持CCD相机的姿势不变。然后,平行光束被移入通过去除五棱镜而检测到的扩束器中,并且再次在同一台CCD摄像机上对准了准直仪图像。通过相应的图像处理分别确定准直仪中心图像在CCD相机上的位置。通过比较准直仪网状中心图像的坐标来计算扩束器的误差。在此基础上建立了实验平台,验证了该方法的可行性,检测方法的准确度小于3”;该方法操作简单,实用性强,准确性高。

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