WO2023273217A1 - 镜片测量设备的光轴校准系统以及方法 - Google Patents

镜片测量设备的光轴校准系统以及方法 Download PDF

Info

Publication number
WO2023273217A1
WO2023273217A1 PCT/CN2021/139562 CN2021139562W WO2023273217A1 WO 2023273217 A1 WO2023273217 A1 WO 2023273217A1 CN 2021139562 W CN2021139562 W CN 2021139562W WO 2023273217 A1 WO2023273217 A1 WO 2023273217A1
Authority
WO
WIPO (PCT)
Prior art keywords
lens
camera
optical axis
tooling
sensor surface
Prior art date
Application number
PCT/CN2021/139562
Other languages
English (en)
French (fr)
Inventor
赵连军
刘希琛
刘家秀
陈昌博
刘菲菲
Original Assignee
歌尔股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 歌尔股份有限公司 filed Critical 歌尔股份有限公司
Publication of WO2023273217A1 publication Critical patent/WO2023273217A1/zh

Links

Images

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M11/00Testing of optical apparatus; Testing structures by optical methods not otherwise provided for
    • G01M11/02Testing optical properties
    • G01M11/0207Details of measuring devices
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M11/00Testing of optical apparatus; Testing structures by optical methods not otherwise provided for
    • G01M11/02Testing optical properties
    • G01M11/0221Testing optical properties by determining the optical axis or position of lenses

Definitions

  • the present invention relates to the field of optical axis calibration technology and optical measurement and testing, and more specifically, to an optical axis calibration system and method for measuring VR/AR lens equipment.
  • VR/AR lenses are an important part of VR/AR products, and the calibration of VR/AR lens measurement equipment affects the measurement accuracy of the equipment for lenses.
  • the calibration of the optical axis of VR/AR lens measuring equipment is one of the important tasks of the operator, and the camera is mainly used in the optical system to collect image information for analysis and measurement.
  • the coincidence calibration of the optical axis of the camera and the optical axis of the lens is more important, but In the measurement process, the calibration of the camera optical axis and the optical axis of the lens is rarely performed. If the optical axis of the camera does not coincide with the optical axis of the lens, the image information collected by the camera will be inaccurate, which will cause a large deviation in the measurement of the VR/AR lens.
  • the present invention provides an optical axis calibration system and method for measuring VR/AR lens equipment
  • the object of the present invention is to provide an optical axis calibration system and method for lens measuring equipment, to solve the problem of inaccurate measurement of lenses due to misalignment of the optical axis of the camera and the optical axis of the lens in the lens measuring equipment .
  • the present invention provides an optical axis calibration system for lens measuring equipment, which includes a camera, lens tooling, an aperture diaphragm assembled with the lens tooling, a tooling bracket for fixing the lens tooling, and a platform base.
  • the lens tooling Set on the platform base through the tooling bracket, wherein,
  • a lens carrying part and a stop carrying part are arranged on the lens tooling, wherein the lens carrying part is used to carry the lens to be measured, and a through hole is arranged in the central area of the lens carrying part, and the lens tooling Assembling the aperture diaphragm with the aperture diaphragm through the diaphragm carrying part;
  • a light transmission hole is provided on the aperture stop, and a light source is provided on the platform base, wherein,
  • the light source passes through the through hole, through the lens carried by the lens tooling, and through the light transmission hole of the aperture stop to the camera.
  • a preferred solution is that the lens tooling is fixed on the tooling bracket through a fixing knob, and the distance between the lens tooling and the light source is adjusted through the fixing knob, wherein,
  • the distance between the lens tooling and the light source is less than or equal to one focal length of the lens.
  • the light-transmitting hole is a light-transmitting hole with an adjustable aperture.
  • a preferred solution is that a display is provided on the platform base, and the light source is provided on the display.
  • a preferred solution is to further include a camera bracket, wherein the camera bracket is used to fix the camera.
  • the present invention also provides a method for calibrating the optical axis of a lens measuring device, which uses the optical axis calibration system of the above-mentioned lens measuring device for calibration, and the method for calibrating the optical axis includes:
  • the optical axis of the camera coincides with the optical axis of the lens
  • the optical axis of the camera does not coincide with the optical axis of the lens
  • adjusting the relative position of the camera and the lens until the diffuse spot is located at the center of the interface of the camera includes the following:
  • the relative position of the camera and the lens so that the diffused light spot is located at the central position of the sensor surface of the camera, then the The optical axis of the camera coincides with the optical axis of the lens.
  • the preferred solution is that, according to the distance between the central position of the diffused light spot and the central position of the sensor surface, the relative position of the camera and the lens is adjusted so that the diffused light spot is located at the center of the camera.
  • the center position of the sensor surface including:
  • the optical axis of the camera coincides with the optical axis of the lens.
  • adjusting the relative position of the camera and the lens until the diffuse spot is located at the center of the interface of the camera includes the following:
  • the center of the diffused light spot coincides with the center of the reticle, and then the optical axis of the camera coincides with the optical axis of the lens.
  • a preferred solution is that during the process of placing the lens to be measured in the lens tooling, the optical axis of the lens and the central axis of the lens tooling maintain a preset mechanical tolerance;
  • the central axis of the aperture stop and the central axis of the lens tooling maintain a preset mechanical tolerance.
  • the optical axis calibration system and method of the lens measuring equipment provided by the present invention simulate the exit pupil of the VR/AR lens through the aperture stop, and align the optical axis of the lens with the central axis of the aperture stop through the lens tooling.
  • Alignment that is: the exit pupil and optical axis of the VR/AR lens can be replaced by the aperture diaphragm, and the aperture diaphragm is illuminated by the light source below the aperture diaphragm.
  • the aperture diaphragm is located at a finite distance from the object side of the camera, and a Diffuse spot, by moving the relative position of the camera and the lens, the center of the diffuse spot is located at the sensor center of the camera, then the optical axis of the camera coincides with the optical axis of the lens. Problems that lead to inaccurate measurement of lenses.
  • FIG. 1 is a schematic diagram of a lens tooling structure according to an embodiment of the present invention
  • FIG. 2 is a schematic structural diagram of an aperture stop according to an embodiment of the present invention.
  • Fig. 3 is a schematic diagram of the assembly structure of lens tooling and aperture stop according to an embodiment of the present invention.
  • FIG. 4 is a schematic diagram of an optical axis calibration system of a lens measuring device according to an embodiment of the present invention.
  • FIG. 5 is a schematic diagram of an optical axis calibration method of a lens measuring device according to an embodiment of the present invention.
  • the reference signs include: 1. Display, 2. Lens, 3. Tooling bracket, 4. Fixing knob, 5. Lens tooling, 6. Aperture stop, 7. Camera lens, 8. Camera, 9. Optical axis of lens , 10. Camera optical axis, 11. Sensor surface, 12. Chief ray, 13. Bright block, 14. Platform base, 51. Lens bearing part, 52. Through hole, 53. Aperture stop bearing part, 61. Light transmission hole.
  • the present invention provides an optical axis calibration system and method of the lens measuring equipment to solve the above problems .
  • FIG. 1 to Fig. 4 illustrate the structure of the optical axis calibration system of the lens measuring device from different angles respectively.
  • Fig. 1 shows a lens tooling structure according to an embodiment of the present invention
  • Fig. 2 shows a schematic diagram of an aperture stop structure according to an embodiment of the present invention
  • Fig. 3 shows a lens tooling and an aperture stop according to an embodiment of the present invention Diaphragm assembly structure
  • FIG. 4 shows an optical axis calibration system of a lens measuring device according to an embodiment of the present invention.
  • the present invention provides an optical axis calibration system for lens measuring equipment, including a camera 8, a lens tooling 5, an aperture stop 6 assembled with the lens tooling 5, and a lens tooling 5 for fixing
  • the tooling bracket 3 and the platform base 14, the lens tooling 5 is arranged on the platform base 15 through the tooling bracket 3.
  • the lens tooling 5 is provided with a lens carrying part 51 and a diaphragm carrying part 53, wherein the lens carrying part 51 is used to carry the lens 2 to be measured, and a through hole 52 is provided in the central area of the lens carrying part 51, the lens
  • the tooling 5 is assembled with the aperture stop 6 through the stop bearing part 53; the aperture stop 6 is provided with a light-transmitting hole 61, wherein the optical axis 9 of the lens, the central axis of the lens tooling and the central axis of the aperture stop 6 coincide with each other .
  • the lens tooling 5 is fixed on the tooling bracket 3 through the fixing knob 4, and the distance between the lens tooling 3 and the light source is adjusted through the fixing knob 4, wherein the distance between the lens tooling 5 and the light source It is less than or equal to one focal length of the lens 2; that is, the distance between the lens 2 and the light source in the lens tooling 5 is less than or equal to one focal length of the lens 2.
  • the aperture stop 6 is used to simulate the exit pupil of the VR/AR lens.
  • the apertures of the light transmission holes 61 of the aperture stop 6 have different sizes, and the light transmission holes are light transmission holes with adjustable apertures. Align the optical axis 9 of the lens with the optical axis 12 (central axis) of the aperture stop through the lens tooling 5, so that the exit pupil and the optical axis of the VR/AR lens can be replaced by the aperture stop 6.
  • a light source is arranged on the platform base 14, and a display 1 is arranged on the platform base 14, and the light source is arranged on the display.
  • the light source passes through the through hole 51 , the lens 2 carried by the lens tooling 5 , and the light transmission hole 61 of the aperture stop 6 to the camera 8 .
  • the optical axis calibration system of the lens measuring equipment also includes a camera bracket, wherein the camera bracket is used to fix the camera 8.
  • the bright block 13 shown on the display 1 illuminates the aperture stop 6 through the lens 2, and a diffuse spot will appear on the sensor surface 11 of the camera 8.
  • the chief ray 12 (the optical axis of the aperture diaphragm) emitted by the center of the aperture diaphragm determines the position of the center of the diffuse spot on the sensor surface 11, and the center of the diffuse spot and the sensor surface of the camera
  • the chief ray emitted from the center of the aperture diaphragm coincides with the camera optical axis, that is, the camera optical axis 10 coincides with the lens optical axis 9 .
  • the present invention also provides a method for calibrating the optical axis of the lens measuring device.
  • FIG. 5 shows a schematic diagram of the method for calibrating the optical axis of the lens measuring device according to an embodiment of the present invention.
  • the optical axis calibration method of the lens measuring equipment includes:
  • S510 Place the lens in the lens tooling, and assemble the lens tooling with the aperture stop, wherein the optical axis of the lens coincides with the central axis of the aperture stop;
  • S520 Fix the assembled lens tooling and aperture stop within a preset distance from a light source, wherein the distance between the lens of the lens tooling and the light source is less than or equal to one focal length of the lens;
  • S540 Determine whether the optical axis of the camera coincides with the optical axis of the lens according to the position of the diffused light spot on the sensor surface of the camera;
  • S570 Adjust the relative position of the camera and the lens until the diffused light spot is located at the center of the sensor surface of the camera.
  • the central axis of the aperture stop is aligned with the optical axis of the lens, and in step S510, the lens is placed in the lens tooling, and the positions of the optical axis of the lens and the central axis of the tooling are kept within a certain mechanical tolerance; Then the aperture stop is placed on the surface of the lens tooling, and the central axis of the aperture stop and the center axis of the lens tooling are kept within a certain mechanical tolerance; in this way, the central axis of the aperture stop and the optical axis of the lens are kept within a certain mechanical tolerance Inside, that is: the optical axis of the lens coincides with the central axis of the aperture stop.
  • how to adjust the relative position between the camera and the lens until the diffuse spot is located at the center of the interface of the camera includes two methods: image observation and algorithm calculation. Both ways are detailed below:
  • the first algorithm calculates:
  • step S570 the adjustment of the relative position between the camera and the lens until the diffuse spot is located at the center of the interface of the camera includes the following steps:
  • S573 Acquire the distance between the central position of the diffused light spot and the central position of the sensor surface according to the central position of the diffused light spot and the central position of the sensor surface;
  • step S574 the relative position between the camera and the lens is adjusted according to the distance between the central position of the diffused light spot and the central position of the sensor surface, so that the diffused light spot is located at the center of the camera.
  • the center position of the sensor surface including:
  • the second image observation method is a first image observation method
  • step S570 the adjustment of the relative position between the camera and the lens until the diffuse spot is located at the center of the interface of the camera includes the following steps:
  • Step 1 displaying a crosshair on the interface of the camera, wherein the center of the crosshair is the center of the sensor surface of the camera;
  • Step 2 Through the relative position of the camera and the lens, the center of the diffused spot coincides with the center of the reticle, then the optical axis of the camera coincides with the optical axis of the lens.
  • the above two manners may be selected according to actual conditions in a specific application, and are not limited to a certain manner.
  • the basic principle and implementation process of the optical axis calibration provided by the present invention are as follows: the lens 2, the lens tooling 5, and the aperture stop 6 are placed in the tooling bracket 3, and fixed by the fixing knob 4, and the light source is set within one focal length of the lens 2 , the light source illuminates the aperture stop 6 through the lens 2, and a diffuse spot will appear on the sensor surface 11 of the camera 8.
  • the chief ray 12 emitted from the center of the aperture stop determines the center of the diffuse spot At the position on the sensor surface 11, when the center of the diffuse spot is adjusted to coincide with the center of the camera sensor surface 11, the chief ray 12 emitted from the center of the aperture stop coincides with the optical axis of the camera, that is, the optical axis 10 of the camera coincides with the optical axis 9 of the lens .
  • the optical axis calibration system and method of the lens measuring equipment provided by the present invention simulate the exit pupil of the VR/AR lens through the aperture stop, and align the optical axis of the lens with the center of the aperture stop through the lens tooling.
  • Axis alignment that is, the exit pupil and optical axis of the VR/AR lens can be replaced by the aperture diaphragm, and the aperture diaphragm is illuminated by the light source below the aperture diaphragm.
  • the aperture diaphragm is located at a finite distance from the camera object, and the camera sensor surface will appear A diffuse spot, by moving the relative position of the camera and the lens, so that the center of the diffuse spot is located at the sensor center of the camera, the optical axis of the camera coincides with the optical axis of the lens, so that the optical axis of the camera and the optical axis of the lens do not coincide in the lens measuring equipment, This leads to the problem of inaccurate measurement of the lens.
  • optical axis calibration system and method of the lens measuring device according to the present invention are described above by way of example with reference to the accompanying drawings. However, those skilled in the art should understand that various improvements can be made to the optical axis calibration system and method of the lens measuring device proposed in the present invention without departing from the content of the present invention. Therefore, the protection scope of the present invention should be determined by the contents of the appended claims.

Landscapes

  • Chemical & Material Sciences (AREA)
  • Analytical Chemistry (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Lens Barrels (AREA)
  • Testing Of Optical Devices Or Fibers (AREA)

Abstract

本发明提供一种镜片测量设备的光轴校准系统以及方法,其中的系统包括相机、镜片工装、孔径光阑、工装支架以及平台底座,镜片工装通过所述工装支架设置在所述平台底座上,在所述镜片工装上设置有镜片承载部和光阑承载部,所述镜片承载部用于承载待测量的镜片,并且在所述镜片承载部的中心区域设置有通孔,所述镜片工装通过所述光阑承载部与所述孔径光阑相互装配;在所述孔径光阑上设置有透光孔,在所述平台底座上设置有光源,所述光源穿过所述通孔、透过所述镜片工装承载的镜片,以及穿过所述孔径光阑的透光孔射到所述相机。利用本发明,能够解决由于镜片测量设备中相机光轴与镜片光轴不重合,而导致对镜片的测量不准确的问题。

Description

镜片测量设备的光轴校准系统以及方法 技术领域
本发明涉及光轴校准技术及光学测量测试领域,更为具体地,涉及一种测量VR/AR镜片设备的光轴校准系统以及方法。
背景技术
VR/AR镜片是VR/AR产品的重要组成部分,VR/AR镜片测量设备的校准影响着设备对镜片的测量精度。VR/AR镜片测量设备光轴的校准是操作人员的重要工作之一,而相机在光学系统中主要用来采集图像信息进行分析测量,相机光轴与镜片光轴的重合校准更为重要,但在测量过程中,很少会进行相机光轴与镜片光轴的校准。如果相机光轴与镜片光轴不重合,那么相机采集的图像信息不准确,从而对VR/AR镜片的测量造成较大的偏差。
为解决上述问题,本发明提供一种测量VR/AR镜片设备的光轴校准系统以及方法
发明内容
鉴于上述问题,本发明的目的是提供一种镜片测量设备的光轴校准系统以及方法,以解决由于镜片测量设备中相机光轴与镜片光轴不重合,而导致对镜片的测量不准确的问题。
本发明提供一种镜片测量设备的光轴校准系统,包括相机、镜片工装、与所述镜片工装相互装配的孔径光阑、用于固定所述镜片工装的工装支架以及平台底座,所述镜片工装通过所述工装支架设置在所述平台底座上,其中,
在所述镜片工装上设置有镜片承载部和光阑承载部,其中,所述镜片承载部用于承载待测量的镜片,并且在所述镜片承载部的中心区域设置有通孔,所述镜片工装通过所述光阑承载部与所述孔径光阑相互装配;
在所述孔径光阑上设置有透光孔,在所述平台底座上设置有光源,其中,
所述光源穿过所述通孔、透过所述镜片工装承载的镜片,以及穿过所述孔径光阑的透光孔射到所述相机。
此外,优选的方案是,所述镜片工装通过固定旋钮固定在所述工装支架上,通过所述固定旋钮调节所述镜片工装与所述光源的距离,其中,
所述镜片工装与所述光源的距离小于等于所述镜片的一倍焦距。
此外,优选的方案是,所述透光孔为孔径可调节的透光孔。
此外,优选的方案是,在所述平台底座上设置有显示器,所述光源设置在所述显示器上。
此外,优选的方案是,还包括相机支架,其中,所述相机支架用于固定所述相机。
本发明还一种镜片测量设备的光轴校准方法,采用上述镜片测量设备的光轴校准系统进行校准,所述光轴校准方法,包括:
将镜片放置在镜片工装中,并将所述镜片工装与孔径光阑装配在一起,其中,所述镜片的光轴与所述孔径光阑的中心轴重合;
将装配在一起的所述镜片工装与孔径光阑固定在距离光源的预设范围内,其中,所述镜片工装的镜片与所述光源的距离小于等于所述镜片的一倍焦距;
当所述光源透过所述镜片工装的镜片,并穿过所述孔径光阑的透光孔射到所述相机,在所述相机的界面上形成弥散光斑;
根据所述弥散光斑在所述相机的sensor面的位置判断相机光轴与镜片光轴是否重合;
若所述弥散光斑位于所述相机的sensor面的中心位置,则所述相机光轴与镜片光轴重合;
若所述弥散光斑位于所述相机的sensor面的非中心位置,则所述相机光轴与镜片光轴不重合;
通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的sensor面的中心位置。
此外,优选的方案是,所述通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的界面的中心位置,包括如下:
通过算法拟合弥散光斑的圆形轮廓,获取所述弥散光斑的中心位置;
根据所述相机的sensor面的像素数,获取所述sensor面的中心位置;
根据所述弥散光斑的中心位置、所述sensor面的中心位置,获取所述弥散光斑的中心位置与所述sensor面的中心位置的距离;
根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机与所述镜片的相对位置,使所述弥散光斑位于所述相机的sensor面的中心位置,则所述相机光轴与镜片光轴重合。
此外,优选的方案是,所述根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机与所述镜片的相对位置,使所述弥散光斑位于所述相机的sensor面的中心位置,包括:
根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机的位置或者调节所述镜片的位置,使所述弥散光斑在所述sensor面内移动;
当所述弥散光斑中心位置与所述sensor中心位置的距离在3个像素之内,则所述相机光轴与镜片光轴重合。
此外,优选的方案是,所述通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的界面的中心位置,包括如下:
在所述相机的界面上显示十字标线,其中,所述十字标线的中心为所述相机的sensor面的中心;
通过所述相机与所述镜片的相对位置,使所述弥散光斑的中心与所述十字标线的中心重合,则所述相机光轴与镜片光轴重合。
此外,优选的方案是,在将所述将待测量的镜片放置在镜片工装中的过程中,所述镜片的光轴与所述镜片工装的中心轴保持预设的机械公差;
在将所述镜片工装与孔径光阑装配在一起的过程中,所述孔径光阑的中心轴与所述镜片工装的中心轴保持预设的机械公差。
从上面的技术方案可知,本发明提供的镜片测量设备的光轴校准系统以及方法,通过孔径光阑来模拟VR/AR镜片的出瞳,通过镜片工装将镜片光轴与孔径光阑的中心轴对齐,即:VR/AR镜片的出瞳和光轴都可以用孔径光阑来代替,通过孔径光阑下方的光源照亮孔径光阑,孔径光阑位于相机物方有 限远,相机sensor面会出现一个弥散斑,通过移动相机与镜片的相对位置,使弥散光斑的中心位于相机的sensor中心,则相机光轴与镜片光轴重合,从而由于镜片测量设备中相机光轴与镜片光轴不重合,而导致对镜片的测量不准确的问题。
为了实现上述以及相关目的,本发明的一个或多个方面包括后面将详细说明的特征。下面的说明以及附图详细说明了本发明的某些示例性方面。然而,这些方面指示的仅仅是可使用本发明的原理的各种方式中的一些方式。此外,本发明旨在包括所有这些方面以及它们的等同物。
附图说明
通过参考以下结合附图的说明,并且随着对本发明的更全面理解,本发明的其它目的及结果将更加明白及易于理解。在附图中:
图1为根据本发明实施例的镜片工装结构示意图;
图2为根据本发明实施例的孔径光阑结构示意图;
图3为根据本发明实施例的镜片工装与孔径光阑装配结构示意图;
图4为根据本发明实施例的镜片测量设备的光轴校准系统示意图;
图5为根据本发明实施例的镜片测量设备的光轴校准方法示意图。
其中的附图标记包括:1、显示器,2、镜片,3、工装支架,4、固定旋钮,5、镜片工装,6、孔径光阑,7、相机镜片,8、相机,9、镜片光轴,10、相机光轴,11、sensor面,12、主光线,13、亮块,14、平台底座,51、镜片承载部,52、通孔,53、孔径光阑承载部,61、透光孔。
在所有附图中相同的标号指示相似或相应的特征或功能。
具体实施方式
在下面的描述中,出于说明的目的,为了提供对一个或多个实施例的全面理解,阐述了许多具体细节。然而,很明显,也可以在没有这些具体细节的情况下实现这些实施例。
针对前述提出的由于镜片测量设备中相机光轴与镜片光轴不重合,而导致对镜片的测量不准确的问题,本发明提供一种镜片测量设备的光轴校准系 统以及方法,从而解决上述问题。
以下将结合附图对本发明的具体实施例进行详细描述。
为了说明本发明提供的镜片测量设备的光轴校准系统的结构,图1至图4分别从不同角度对镜片测量设备的光轴校准系统的结构进行了示例性标示。具体地,图1示出了根据本发明实施例的镜片工装结构;图2示出了根据本发明实施例的孔径光阑结构示意图;图3示出了根据本发明实施例的镜片工装与孔径光阑装配结构;图4示出了根据本发明实施例的镜片测量设备的光轴校准系统。
如图1至图4共同所示,本发明提供一种镜片测量设备的光轴校准系统,包括相机8、镜片工装5、与镜片工装5相互装配的孔径光阑6、用于固定镜片工装5的工装支架3以及平台底座14,镜片工装5通过工装支架3设置在平台底座15上。
其中,在镜片工装5上设置有镜片承载部51和光阑承载部53,其中,镜片承载51部用于承载待测量的镜片2,并且在镜片承载部51的中心区域设置有通孔52,镜片工装5通过光阑承载部53与孔径光阑6相互装配;在孔径光阑6上设置有透光孔61,其中,镜片光轴9、镜片工装中心轴以及孔径光阑6的中心轴相互重合。
其中,镜片工装5通过固定旋钮4固定在所述工装支架3上,通过所述固定旋钮4调节所述镜片工装3与所述光源的距离,其中,所述镜片工装5与所述光源的距离小于等于所述镜片2的一倍焦距;即:镜片工装5中镜片2与光源的距离小于等于所述镜片2的一倍焦距。
在本发明的实施例中,孔径光阑6来模拟VR/AR镜片的出瞳,孔径光阑6的透光孔61的孔径具有不同的尺寸大小,透光孔为孔径可调节的透光孔;通过镜片工装5将镜片光轴9与孔径光阑光轴12(中心轴)对齐,这样,VR/AR镜片的出瞳和光轴都可以用孔径光阑6来代替。
其中,在平台底座14上设置有光源,在平台底座14上设置有显示器1,光源设置在所述显示器上,在本发明的实施例中,显示器上有亮块13,亮块13就是光源的一种。光源穿过通孔51、以及透过镜片工装5承载的镜片2,以及穿过孔径光阑6的透光孔61射到相机8。
其中,镜片测量设备的光轴校准系统还包括相机支架,其中,所述相机 支架用于固定所述相机8。
在本发明的实施例中,显示器1显示的亮块13通过镜片2照亮孔径光阑6,在相机8的sensor面11会出现一个弥散光斑,通过移动相机8与镜片2的相对位置,根据有限远成像原理以及光阑对光束的限制原理,孔径光阑中心发出的主光线12(孔径光阑光轴)决定着弥散光斑中心在sensor面11上的位置,弥散光斑的中心与相机sensor面11的中心调节重合时,孔径光阑中心发出的主光线与相机光轴重合,也即相机光轴10与镜片光轴9重合。
与上述系统相对应,本发明还提供一种镜片测量设备的光轴校准方法,图5示出了根据本发明实施例的镜片测量设备的光轴校准方法示意图。
如图5所示,本发明提供的镜片测量设备的光轴校准方法,包括:
S510:将镜片放置在镜片工装中,并将所述镜片工装与孔径光阑装配在一起,其中,所述镜片光轴与所述孔径光阑的中心轴重合;
S520:将装配在一起的所述镜片工装与孔径光阑固定在距离光源的预设范围内,其中,所述镜片工装的镜片与所述光源的距离小于等于所述镜片的一倍焦距;
S530:当所述光源透过所述镜片工装的镜片,并穿过所述孔径光阑的透光孔射到所述相机,在所述相机的界面上形成弥散光斑;
S540:根据所述弥散光斑在所述相机的sensor面的位置判断相机光轴与镜片光轴是否重合;
S550:若所述弥散光斑位于所述相机的sensor面的中心位置,则所述相机光轴与镜片光轴重合;
S560:若所述弥散光斑位于所述相机的sensor面的非中心位置,则所述相机光轴与镜片光轴不重合;
S570:通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的sensor面的中心位置。
在本发明的实施例中,将孔径光阑中心轴与镜片光轴对齐,在步骤S510中,将镜片放置在镜片工装中,镜片光轴与工装中心轴位置保持在一定的机械公差之内;然后将孔径光阑置于镜片工装表面,孔径光阑中心轴与镜片工装中心轴位置保持在一定的机械公差之内;这样,孔径光阑的中心轴与镜片光轴保持在一定的机械公差之内,即:镜片光轴与所述孔径光阑的中心轴重 合。
在本发明的实施例中,如何调节相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的界面的中心位置,包括两种方式:图像观察方式和通过算法计算。下面将详细说明两种方式:
第一种算法计算:
在步骤S570中,所述通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的界面的中心位置,包括如下:
S571:通过算法拟合弥散光斑的圆形轮廓,获取所述弥散光斑的中心位置;
S572:根据所述相机的sensor面的像素数,获取所述sensor面的中心位置;
S573:根据所述弥散光斑的中心位置、所述sensor面的中心位置,获取所述弥散光斑的中心位置与所述sensor面的中心位置的距离;
S574:根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机与所述镜片的相对位置,使所述弥散光斑位于所述相机的sensor面的中心位置,则所述相机光轴与镜片光轴重合。
其中,在步骤S574中,所述根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机与所述镜片的相对位置,使所述弥散光斑位于所述相机的sensor面的中心位置,包括:
S5741:根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机的位置或者调节所述镜片的位置,使所述弥散光斑在所述sensor面内移动;
S5742:当所述弥散光斑中心位置与所述sensor中心位置的距离在3个像素之内,则所述相机光轴与镜片光轴重合。
第二种图像观察方式:
在步骤S570中,所述通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的界面的中心位置,包括如下:
步骤一:在所述相机的界面上显示十字标线,其中,所述十字标线的中心为所述相机的sensor面的中心;
步骤二:通过所述相机与所述镜片的相对位置,使所述弥散光斑的中心 与所述十字标线的中心重合,则所述相机光轴与镜片光轴重合。
在本发明的实施例中,在具体应用中上述两种方式可以根据实际情况进行选择,不并局限于某一种方式。
本发明提供的光轴校准基本原理以及实施过程如下:将镜片2、镜片工装5、孔径光阑6置于工装支架3中,并通过固定旋钮4固定,光源设置镜片2的一倍焦距之内,光源通过镜片2照亮孔径光阑6,在相机8的sensor面11会出现一个弥散光斑,通过移动相机8与镜片2的相对位置,孔径光阑中心发出的主光线12决定着弥散光斑中心在sensor面11上的位置,弥散光斑的中心与相机sensor面11的中心调节重合时,孔径光阑中心发出的主光线12与相机光轴重合,也即相机光轴10与镜片光轴9重合。
通过上述实施方式可以看出,本发明提供的镜片测量设备的光轴校准系统以及方法,通过孔径光阑来模拟VR/AR镜片的出瞳,通过镜片工装将镜片光轴与孔径光阑的中心轴对齐,即:VR/AR镜片的出瞳和光轴都可以用孔径光阑来代替,通过孔径光阑下方的光源照亮孔径光阑,孔径光阑位于相机物方有限远,相机sensor面会出现一个弥散斑,通过移动相机与镜片的相对位置,使弥散光斑的中心位于相机的sensor中心,则相机光轴与镜片光轴重合,从而由于镜片测量设备中相机光轴与镜片光轴不重合,而导致对镜片的测量不准确的问题。
如上参照附图以示例的方式描述了根据本发明提出的镜片测量设备的光轴校准系统以及方法。但是,本领域技术人员应当理解,对于上述本发明所提出的镜片测量设备的光轴校准系统以及方法,还可以在不脱离本发明内容的基础上做出各种改进。因此,本发明的保护范围应当由所附的权利要求书的内容确定。

Claims (10)

  1. 一种镜片测量设备的光轴校准系统,其特征在于,包括相机、镜片工装、与所述镜片工装相互装配的孔径光阑、用于固定所述镜片工装的工装支架以及平台底座,所述镜片工装通过所述工装支架设置在所述平台底座上,其中,
    在所述镜片工装上设置有镜片承载部和光阑承载部,其中,所述镜片承载部用于承载待测量的镜片,并且在所述镜片承载部的中心区域设置有通孔,所述镜片工装通过所述光阑承载部与所述孔径光阑相互装配;
    在所述孔径光阑上设置有透光孔,在所述平台底座上设置有光源,其中,
    所述光源穿过所述通孔、透过所述镜片工装承载的镜片,以及穿过所述孔径光阑的透光孔射到所述相机。
  2. 如权利要求1所述的镜片测量设备的光轴校准系统,其特征在于,
    所述镜片工装通过固定旋钮固定在所述工装支架上,通过所述固定旋钮调节所述镜片工装与所述光源的距离,其中,
    所述镜片工装与所述光源的距离小于等于所述镜片的一倍焦距。
  3. 如权利要求1所述的镜片测量设备的光轴校准系统,其特征在于,
    所述透光孔为孔径可调节的透光孔。
  4. 如权利要求1所述的镜片测量设备的光轴校准系统,其特征在于,
    在所述平台底座上设置有显示器,所述光源设置在所述显示器上。
  5. 如权利要求1所述的镜片测量设备的光轴校准系统,其特征在于,
    还包括相机支架,其中,所述相机支架用于固定所述相机。
  6. 一种镜片测量设备的光轴校准方法,采用上述权利要求1-5任一项所述的镜片测量设备的光轴校准系统进行校准,其特征在于,所述光轴校准方法,包括:
    将镜片放置在镜片工装中,并将所述镜片工装与孔径光阑装配在一起,其中,所述镜片光轴与所述孔径光阑的中心轴重合;
    将装配在一起的所述镜片工装与孔径光阑固定在距离光源的预设范围内,其中,所述镜片工装的镜片与所述光源的距离小于等于所述镜片的一倍焦距;
    当所述光源透过所述镜片工装的镜片,并穿过所述孔径光阑的透光孔射到所述相机,在所述相机的界面上形成弥散光斑;
    根据所述弥散光斑在所述相机的sensor面的位置判断相机光轴与镜片光轴是否重合;
    若所述弥散光斑位于所述相机的sensor面的中心位置,则所述相机光轴与镜片光轴重合;
    若所述弥散光斑位于所述相机的sensor面的非中心位置,则所述相机光轴与镜片光轴不重合;
    通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的sensor面的中心位置。
  7. 如权利要求6所述的镜片测量设备的光轴校准方法,其特征在于,
    所述通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的界面的中心位置,包括如下:
    通过算法拟合弥散光斑的圆形轮廓,获取所述弥散光斑的中心位置;
    根据所述相机的sensor面的像素数,获取所述sensor面的中心位置;
    根据所述弥散光斑的中心位置、所述sensor面的中心位置,获取所述弥散光斑的中心位置与所述sensor面的中心位置的距离;
    根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机与所述镜片的相对位置,使所述弥散光斑位于所述相机的sensor面的中心位置,则所述相机光轴与镜片光轴重合。
  8. 如权利要求7所述的镜片测量设备的光轴校准方法,其特征在于,
    所述根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机与所述镜片的相对位置,使所述弥散光斑位于所述相机的sensor 面的中心位置,包括:
    根据所述弥散光斑的中心位置与所述sensor面的中心位置的距离,调节所述相机的位置或者调节所述镜片的位置,使所述弥散光斑在所述sensor面内移动;
    当所述弥散光斑中心位置与所述sensor中心位置的距离在3个像素之内,则所述相机光轴与镜片光轴重合。
  9. 如权利要求6所述的镜片测量设备的光轴校准方法,其特征在于,
    所述通过调节所述相机与所述镜片的相对位置,直至所述弥散光斑位于所述相机的界面的中心位置,包括如下:
    在所述相机的界面上显示十字标线,其中,所述十字标线的中心为所述相机的sensor面的中心;
    通过所述相机与所述镜片的相对位置,使所述弥散光斑的中心与所述十字标线的中心重合,则所述相机光轴与镜片光轴重合。
  10. 如权利要求6所述的镜片测量设备的光轴校准方法,其特征在于,
    在将所述将待测量的镜片放置在镜片工装中的过程中,所述镜片的光轴与所述镜片工装的中心轴保持预设的机械公差;
    在将所述镜片工装与孔径光阑装配在一起的过程中,所述孔径光阑的中心轴与所述镜片工装的中心轴保持预设的机械公差。
PCT/CN2021/139562 2021-06-30 2021-12-20 镜片测量设备的光轴校准系统以及方法 WO2023273217A1 (zh)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN202110740185.X 2021-06-30
CN202110740185.XA CN113551879B (zh) 2021-06-30 2021-06-30 镜片测量设备的光轴校准系统以及方法

Publications (1)

Publication Number Publication Date
WO2023273217A1 true WO2023273217A1 (zh) 2023-01-05

Family

ID=78131160

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2021/139562 WO2023273217A1 (zh) 2021-06-30 2021-12-20 镜片测量设备的光轴校准系统以及方法

Country Status (2)

Country Link
CN (1) CN113551879B (zh)
WO (1) WO2023273217A1 (zh)

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113551879B (zh) * 2021-06-30 2024-04-26 歌尔股份有限公司 镜片测量设备的光轴校准系统以及方法
CN114264242B (zh) * 2021-12-22 2024-06-04 江西联益光学有限公司 一种镜片测量设备及其测量方法
CN114486186A (zh) * 2021-12-27 2022-05-13 歌尔股份有限公司 一种镜头的有效焦距的检测设备和方法

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103954434A (zh) * 2014-04-16 2014-07-30 青岛歌尔声学科技有限公司 一种光轴校准治具、系统及方法
WO2017134275A1 (en) * 2016-02-05 2017-08-10 Eidgenossische Technische Hochschule Zurich Methods and systems for determining an optical axis and/or physical properties of a lens and use of the same in virtual imaging and head-mounted displays
CN107884160A (zh) * 2017-09-25 2018-04-06 杭州浙大三色仪器有限公司 虚拟图像光电测量仪
CN108287397A (zh) * 2018-01-15 2018-07-17 歌尔股份有限公司 头戴显示设备的光轴校准方法
CN109752168A (zh) * 2019-01-03 2019-05-14 深圳市亿境虚拟现实技术有限公司 一种用于虚拟现实设备的光学镜片检测装置
CN113551879A (zh) * 2021-06-30 2021-10-26 歌尔股份有限公司 镜片测量设备的光轴校准系统以及方法

Family Cites Families (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3624288B2 (ja) * 2001-09-17 2005-03-02 株式会社日立製作所 店舗管理システム
JP2009257995A (ja) * 2008-04-18 2009-11-05 Olympus Corp レンズ検査装置及びレンズ検査方法
CN106124169A (zh) * 2016-06-29 2016-11-16 南京睿悦信息技术有限公司 一种vr头盔设备视场角测量方法
CN108257183B (zh) * 2017-12-20 2021-02-23 歌尔光学科技有限公司 一种相机镜头光轴校准方法和装置
CN110031189B (zh) * 2019-04-17 2020-10-09 大族激光科技产业集团股份有限公司 一种光轴定位装置与方法
CN111220095B (zh) * 2019-12-06 2021-08-03 凌云光技术股份有限公司 一种用于高精度检测发散光束光轴垂直度的方法及装置
CN212206548U (zh) * 2020-03-31 2020-12-22 歌尔光学科技有限公司 光学镜头mtf测试装置
CN111929038B (zh) * 2020-08-20 2021-01-22 歌尔光学科技有限公司 微镜片的测试装置、方法、测试设备及计算机存储介质

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103954434A (zh) * 2014-04-16 2014-07-30 青岛歌尔声学科技有限公司 一种光轴校准治具、系统及方法
WO2017134275A1 (en) * 2016-02-05 2017-08-10 Eidgenossische Technische Hochschule Zurich Methods and systems for determining an optical axis and/or physical properties of a lens and use of the same in virtual imaging and head-mounted displays
CN107884160A (zh) * 2017-09-25 2018-04-06 杭州浙大三色仪器有限公司 虚拟图像光电测量仪
CN108287397A (zh) * 2018-01-15 2018-07-17 歌尔股份有限公司 头戴显示设备的光轴校准方法
CN109752168A (zh) * 2019-01-03 2019-05-14 深圳市亿境虚拟现实技术有限公司 一种用于虚拟现实设备的光学镜片检测装置
CN113551879A (zh) * 2021-06-30 2021-10-26 歌尔股份有限公司 镜片测量设备的光轴校准系统以及方法

Also Published As

Publication number Publication date
CN113551879A (zh) 2021-10-26
CN113551879B (zh) 2024-04-26

Similar Documents

Publication Publication Date Title
WO2023273217A1 (zh) 镜片测量设备的光轴校准系统以及方法
US5855074A (en) Methods and apparatus for measuring and mapping opthalmic elements
US9644960B2 (en) Laser beam horizontal trueness testing device and corresponding method
US10379387B2 (en) Method and device for checking refractive power distribution and centering
US10942087B2 (en) Apparatus for detecting a modulation transfer function and centering of an optical system
CN103857478A (zh) 轧机以及用于确定多机座轧机中的轧机机座的轧制孔型或引导机座的引导孔型的装置和方法
CN111665025A (zh) 一种屈光度测量装置、测量系统和屈光度测量方法
CN210354649U (zh) 一种验光镜片箱自动校准装置
CN103606155B (zh) 摄像机视场标定方法和装置
JPH0365623A (ja) 投影露光方法及びその装置
CN111678677B (zh) 一种测量装置和光学参数测量方法
US5212507A (en) Apparatus for measuring cornea shape
CN117190862A (zh) 一种检测光纤夹具夹持光纤位置的方法
US6346981B1 (en) Lens testing device
US20140320672A1 (en) Method and Apparatus for Measuring Flange Back Focus and Calibrating Track Length Scales of Photographic Objective Lenses
CN109387488A (zh) 一种光学玻璃折射率的快速测量方法及仪器
CN210513624U (zh) 基于前置集束照明用于标定光学系统焦面的装置
JP2024504839A (ja) アフォーカル光学系の変調伝達関数を測定するための測定装置及び方法
JPH11337320A (ja) 眼内レンズ用自動投影機検査装置およびそれを用いた眼内レンズ検査方法
US2624237A (en) Lens testing instrument
CN112815932B (zh) 基座检核方法及基座与控制点对中的检核方法
CN116893006A (zh) 一种强光手电筒在线检测装置和方法
CN221198879U (zh) 用于环境监测系统的光学组件校准装置
JP3167870B2 (ja) 非球面レンズの偏心測定装置およびその偏心測定方法
CN117129190A (zh) 一种近眼显示检测镜头与相机安装位置测量装置及方法

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 21948142

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 21948142

Country of ref document: EP

Kind code of ref document: A1