A camera module flare device, method and electronic device
Through the automated driving of the base, lifting mechanism, and swing mechanism, the fully automated Flare test of the camera module is realized, which solves the problems of poor stability and low efficiency in the existing technology and improves the stability and efficiency of the test.
Patent Information
- Application Number
- CN202210276461.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-03-21
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2042-03-21
AI Technical Summary
Existing camera module testing technology suffers from poor stability and low testing efficiency. In particular, Flare testing cannot be automated, and reliance on manual adjustments leads to long testing cycles and difficulty in management.
The Flare equipment includes a base, lifting mechanism and swing mechanism. The first direct-drive synchronous wheel structure and the reduction motor drive the rotating base and the swing arm to realize the automatic rotation and swing test of the camera module. Combined with the position adjustment of the strong point light source, the fully automated Flare test is realized.
It improves the stability and efficiency of the camera module Flare test, reduces manual intervention, and improves the accuracy and speed of the test.
Smart Images

Figure CN114710656B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of camera module testing, and in particular relates to a Flare device, method and electronic equipment for a camera module. Background Art
[0002] A camera lens is composed of multiple lenses made of materials such as glass or plastic. The lens surfaces reflect some of the incident light. When strong light enters the lens, the light reflected from the surfaces of each lens is reflected multiple times within the lens and the camera, creating "glare," or flare. Flare testing is an essential step in the camera module manufacturing process.
[0003] Currently, existing camera module testing technologies are often limited by equipment structure issues and cannot meet module automated testing requirements for stray light and ghosting. Existing Flare testing can only be done by manually adjusting different scenes and repeatedly switching equipment to complete module ghosting and stray light testing requirements. This is labor-intensive and time-consuming, and relies on manual experience to adjust the position of strong point light sources and camera modules, resulting in poor test stability, low test efficiency, long product testing cycles, and difficulty in management.
[0004] In summary, the existing camera module testing technology has technical problems such as poor stability and low testing efficiency. Summary of the Invention
[0005] The technical problem to be solved by the present invention is poor stability and low testing efficiency.
[0006] In order to solve the above technical problems, the present invention provides a Flare device for a camera module, the device comprising: a base, a lifting mechanism, a swing mechanism and a bearing platform, the lifting mechanism comprising a first direct-drive synchronous wheel structure, a fastening seat, a rotating seat and an adjustment platform, the first direct-drive synchronous wheel structure is installed on the fastening seat, the fastening seat is fixed to the base, the rotating seat is movably installed on the fastening seat, the rotating seat and the first direct-drive synchronous wheel structure are connected by a first transmission belt, so that the first direct-drive synchronous wheel structure drives the first transmission belt to drive the rotating seat to rotate; the adjustment platform can The disassembled device is installed on the rotating seat, and the rotating seat is located between the adjustment platform and the fastening seat; the swing mechanism includes a support platform, a reduction motor, a second direct-drive synchronous wheel structure and a swing arm, and the support platform is fixed to the base; the reduction motor is installed on the support platform; the reduction motor is connected to the second direct-drive synchronous wheel structure; the swing arm is connected to the second direct-drive synchronous wheel structure, so that the reduction motor drives the second direct-drive synchronous wheel structure to drive the swing arm to swing; the bearing platform is connected to the swing arm, and the bearing platform is located between the swing arm and the adjustment platform.
[0007] Furthermore, the rotating seat and the adjusting platform are detachably connected via bolts.
[0008] Furthermore, the swing mechanism further includes: a vertical correction rod, the vertical correction rod is mounted on the support platform, the vertical correction rod and the support platform are perpendicular to each other, and the length of the vertical correction rod is smaller than the length of the swing arm.
[0009] Furthermore, the swing arm is provided with a clamping groove; the supporting platform is clamped in the clamping groove.
[0010] Furthermore, the reduction motor and the second direct-drive synchronous wheel structure are connected via a second transmission belt.
[0011] Furthermore, the second direct-drive synchronous wheel structure is parallel to the swing arm, and the second direct-drive synchronous wheel structure and the swing arm are fixedly connected via a connecting shaft, and the second direct-drive synchronous wheel structure drives the swing arm to swing via the connecting shaft.
[0012] Furthermore, the swing arm is located between the reduction motor and the supporting platform.
[0013] According to another aspect of the present invention, the present invention also provides a Flare method for a camera module, the method comprising: loading a test object onto an adjustment table and placing a strong point light source on a carrier table, the test object comprising a camera module; driving a rotating seat by a first direct-drive synchronous wheel structure to drive the adjustment table to perform a rotation test within a rotation test angle range, the rotation test angle range being 0° to 360°; driving a second direct-drive synchronous wheel structure by a reduction motor to drive a swing arm to perform a swing test within a swing test angle range, the swing test angle range being 0° to 180°.
[0014] According to another aspect of the present invention, the present invention also provides an electronic device for a camera module Flare, comprising a memory, a processor, and a computer program stored in the memory and runnable on the processor, wherein the processor implements the following steps when executing the program: loading a test object onto an adjustment table and placing a strong point light source on a carrier table, wherein the test object includes a camera module; driving a rotating seat by a first direct-drive synchronous wheel structure to drive the adjustment table to perform a rotation test within a rotation test angle range, wherein the rotation test angle range is 0° to 360°; driving a second direct-drive synchronous wheel structure by a reduction motor to drive a swing arm to perform a swing test within a swing test angle range, wherein the swing test angle range is 0° to 180°.
[0015] According to another aspect of the present invention, the present invention also provides a computer-readable storage medium for a camera module Flare, on which a computer program is stored, and when the program is executed by a processor, the following steps are implemented: loading a test object onto an adjustment table and placing a strong point light source on a carrier table, wherein the test object includes a camera module; driving a rotating seat by a first direct-drive synchronous wheel structure to drive the adjustment table to perform a rotation test within a rotation test angle range, wherein the rotation test angle range is 0° to 360°; driving a second direct-drive synchronous wheel structure by a reduction motor to drive a swing arm to perform a swing test within a swing test angle range, wherein the swing test angle range is 0° to 180°.
[0016] Beneficial effects:
[0017] The present invention provides a Flare device for a camera module, which is installed on a fastening seat through a first direct-drive synchronous wheel structure in a lifting mechanism, the fastening seat is fixed to a base, and a rotating seat is movably installed on the fastening seat. The rotating seat and the first direct-drive synchronous wheel structure are connected by a first transmission belt, so that the first direct-drive synchronous wheel structure drives the first transmission belt to drive the rotating seat to rotate. The adjustment platform is detachably installed on the rotating seat, and the rotating seat is located between the adjustment platform and the fastening seat. The support platform in the swing mechanism is fixed to the base, and the reduction motor is installed on the support platform. The reduction motor is connected to the second direct-drive synchronous wheel structure, and the swing arm is connected to the second direct-drive synchronous wheel structure, so that the reduction motor drives the second direct-drive synchronous wheel structure to drive the swing arm to swing. The bearing platform is connected to the swing arm, and the bearing platform is located between the swing arm and the adjustment platform. In this way, when the camera module needs to be tested for Flare, the camera module is placed on the adjustment table, the first direct-drive synchronous wheel structure is rotated so that the adjustment table drives the camera module to rotate to the required angle position, and then a strong point light source is placed on the carrier installed on the swing arm. The second direct-drive synchronous wheel structure is driven by the reduction motor to drive the swing arm to swing, thereby achieving the Flare test of the camera module. This can then improve the stability of the test and improve the test efficiency. Thus, the technical effect of improving the stability of the test and improving the test efficiency is achieved. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0019] Figure 1 A schematic diagram of a Flare device for a camera module provided in an embodiment of the present invention Figure 1 ;
[0020] Figure 2 A schematic diagram of a Flare device for a camera module provided in an embodiment of the present invention Figure 2 ;
[0021] Figure 3 A schematic diagram of a Flare device for a camera module provided in an embodiment of the present invention Figure 3 ;
[0022] Figure 4 A schematic diagram of a Flare device for a camera module provided in an embodiment of the present invention Figure 4 ;
[0023] Figure 5 A schematic diagram of a Flare device for a camera module provided in an embodiment of the present invention Figure 5 ;
[0024] Figure 6 A schematic diagram of a Flare device for a camera module provided in an embodiment of the present invention Figure 6 ;
[0025] Figure 7 A flowchart of a camera module Flare method provided by an embodiment of the present invention;
[0026] Figure 8 A structural diagram of an electronic device for a camera module Flare provided in an embodiment of the present invention;
[0027] Figure 9 A structural diagram of a computer-readable storage medium for a camera module Flare provided in an embodiment of the present invention. DETAILED DESCRIPTION
[0028] The present invention discloses a Flare device for a camera module, in which a first direct-drive synchronous wheel structure 21 in a lifting mechanism is installed on a fastening seat 25, the fastening seat 25 is fixed to a base 1, and a rotating seat 22 is movably installed on the fastening seat 25. The rotating seat 22 and the first direct-drive synchronous wheel structure 21 are connected by a first transmission belt 23, so that the first direct-drive synchronous wheel structure 21 drives the first transmission belt 23 to drive the rotating seat 22 to rotate. An adjustment platform 24 is detachably installed on the rotating seat 22, and the rotating seat 22 is located between the adjustment platform 24 and the fastening seat 25. In the swing mechanism, a support platform 31 is fixed to the base 1, a reduction motor 32 is installed on the support platform 31, the reduction motor 32 is connected to the second direct-drive synchronous wheel structure 33, and the swing arm 34 is connected to the second direct-drive synchronous wheel structure 33, so that the reduction motor 32 drives the second direct-drive synchronous wheel structure 33 to drive the swing arm 34 to swing. The supporting platform 4 is connected to the swing arm 34, and the supporting platform 4 is located between the swing arm 34 and the adjusting platform 24. In this way, when the camera module needs to be subjected to a Flare test, the camera module is placed on the adjusting platform 24, and the first direct-drive synchronous wheel structure 21 is rotated so that the adjusting platform 24 drives the camera module to rotate to the required angle position. Then, a strong point light source is placed on the supporting platform 4 installed on the swing arm 34, and the second direct-drive synchronous wheel structure 33 is driven by the reduction motor 32 to drive the swing arm 34 to swing, thereby achieving a Flare test on the camera module. This can then improve the stability of the test and improve the test efficiency. Thus, the technical effect of improving the stability of the test and improving the test efficiency is achieved.
[0029] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of the present invention; the "and / or" keywords involved in this implementation represent both and and or. In other words, A and / or B mentioned in the embodiments of the present invention represent both A and B, and A or B, and describe the three states of A and B. For example, A and / or B means: only A is included but not B; only B is included but not A; and both A and B are included.
[0030] It should be understood that while the terms "first," "second," and the like may be used herein to describe various elements, components, regions, layers, and / or sections, these elements, components, regions, layers, and / or sections should not be limited by these terms. These terms are used solely to distinguish one element, component, region, layer, or section from another. Thus, a first element, component, region, layer, or section discussed below could be referred to as a second element, component, region, layer, or section without departing from the teachings of the exemplary embodiments. Spatially relative terms, such as "below" and "above," may be used herein to describe the relationship of one element or feature to another. It should be understood that spatially relative terms encompass different orientations of a device during use or operation, in addition to the orientations depicted in the figures. For example, if the device in the figures were flipped over, an element or feature described as "below" would be oriented "above" other elements or features. Thus, the exemplary term "below" encompasses both above and below orientations. The device may be oriented (rotated 90 degrees or in other orientations), and the spatially relative descriptors used herein should be interpreted accordingly.
[0031] At the same time, in the embodiments of the present invention, when a component is referred to as being "fixed to" another component, it may be directly on the other component or there may also be a centered component. When a component is considered to be "connected" to another component, it may be directly connected to the other component or there may also be a centered component. When a component is considered to be "set on" another component, it may be directly set on the other component or there may also be a centered component. The terms "vertical", "horizontal", "left", "right" and similar expressions used in the embodiments of the present invention are for illustrative purposes only and are not intended to limit the present invention.
[0032] Example 1
[0033] See Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 and Figure 6 , Figure 1 This is a schematic diagram of a Flare device for a camera module provided by an embodiment of the present invention. Figure 1 , Figure 2 This is a schematic diagram of a Flare device for a camera module provided by an embodiment of the present invention. Figure 2 , Figure 3 This is a schematic diagram of a Flare device for a camera module provided by an embodiment of the present invention. Figure 3 , Figure 4 This is a schematic diagram of a Flare device for a camera module provided by an embodiment of the present invention. Figure 4 , Figure 5This is a schematic diagram of a Flare device for a camera module provided by an embodiment of the present invention. Figure 5 , Figure 6 This is a schematic diagram of a Flare device for a camera module provided by an embodiment of the present invention. Figure 6 The embodiment of the present invention provides a Flare device for a camera module, comprising a base 1, a lifting mechanism, a swing mechanism, and a supporting platform 4. The base 1, the lifting mechanism, the swing mechanism, and the supporting platform 4 are described in detail below:
[0034] For base 1 and lifting mechanism:
[0035] The lifting mechanism includes a first direct-drive synchronous wheel structure 21, a fastening seat 25, a rotating seat 22, and an adjustment platform 24. The first direct-drive synchronous wheel structure 21 is mounted on the fastening seat 25, which is fixed to the base 1. The rotating seat 22 is movably mounted on the fastening seat 25. The rotating seat 22 and the first direct-drive synchronous wheel structure 21 are connected by a first transmission belt 23. The first direct-drive synchronous wheel structure 21 drives the first transmission belt 23 to drive the rotating seat 22 to rotate. The adjustment platform 24 is detachably mounted on the rotating seat 22, and the rotating seat 22 is located between the adjustment platform 24 and the fastening seat 25. The rotating seat 22 and the adjustment platform 24 are detachably connected by bolts.
[0036] Specifically, the base 1 has space to accommodate the rotating base 22, the support platform 31, the second direct-drive synchronous wheel structure 33, the swing arm 34, and the vertical correction rod 35. The fastening base 25 in the lifting mechanism is fixedly mounted on the base 1, and the fastening base 25 is supported by the base 1. An opening for placing the rotating base 22 can be provided in the fastening base 25, and the rotating base 22 can rotate within the opening, such as a roller is provided between the rotating base 22 and the inner side of the opening of the fastening base 25, so that the rotating base 22 can rotate within the opening. The rotating base 22 can be circular, and a groove for placing the first transmission belt 23 can be provided on the outer side of the rotating base 22, so that the first transmission belt 23 is embedded in the groove. The first direct-drive synchronous wheel structure 21 can be a rotating wheel with a groove, which is rotatably mounted on the fastening base 25 via a central axis, and the first transmission belt 23 can be embedded in the groove located on the outer side of the rotating wheel. The first direct-drive synchronous wheel structure 21 can be connected to the motor's rotating shaft, and the motor's rotating shaft drives the first direct-drive synchronous wheel structure 21 to rotate. The rotating first direct-drive synchronous wheel structure 21 can drive the first transmission belt 23 to rotate, and the rotating first transmission belt 23 can drive the rotating base 22 to rotate. The rotating rotating base 22 drives the adjustment platform 24 to rotate. The adjustment platform 24 can be used to place a camera module. For example, a vacuum suction device can be provided on the adjustment platform 24 to suction the camera module. This vacuum suction can prevent scratches on the lens end face caused by manual contact with the lens. During the rotation of the adjustment platform 24, the camera module can be driven to perform a rotation test within a desired rotation test angle range. The rotation test angle range can be 0° to 360°. For example, if the rotation test angle is R1, then 0°≤R1≤360°. The motor's rotating shaft can drive the first direct-drive synchronous wheel structure 21 to rotate to a certain angle, so that the camera module located on the adjustment platform 24 rotates to the desired rotation test angle. In addition, the adjustment platform 24 can also adopt a split structure, and the top and bottom ends of the adjustment platform 24 are connected by a threaded adjustment handle. The distance between the two ends of the adjustment platform 24 can be adjusted by rotating the threaded adjustment handle, so that the height of the top can be adjusted during the rotation of the threaded adjustment handle, which facilitates adjusting the camera module located on the top of the adjustment platform 24 to the required test height.
[0037] For the swing mechanism:
[0038] The swing mechanism includes a support platform 31, a reduction motor 32, a second direct-drive synchronous wheel structure 33, a swing arm 34, and a vertical correction rod 35. The support platform 31 is fixed to the base 1; the reduction motor 32 is mounted on the support platform 31; the reduction motor 32 is connected to the second direct-drive synchronous wheel structure 33; and the swing arm 34 is connected to the second direct-drive synchronous wheel structure 33. The reduction motor 32 drives the second direct-drive synchronous wheel structure 33, thereby driving the swing arm 34 to swing. The vertical correction rod 35 is mounted on the support platform 31 and is perpendicular to the support platform 31. The length of the vertical correction rod 35 is shorter than that of the swing arm 34. As the swing arm 34 swings, the swing amplitude of the swing arm 34 can be measured by measuring the angle at which the swing arm 34 deviates from the vertical correction rod 35. The swing arm 34 is provided with a snap-in slot; the support platform 4 snaps into the snap-in slot. The reduction motor 32 and the second direct-drive synchronous wheel structure 33 are connected by a second transmission belt 36. The second direct-drive synchronous wheel structure 33 and the swing arm 34 are parallel to each other and are fixedly connected by a connecting shaft. The second direct-drive synchronous wheel structure 33 drives the swing arm 34 to swing via the connecting shaft. The swing arm 34 is located between the reduction motor 32 and the supporting platform 4. The supporting platform 4 is connected to the swing arm 34, and the supporting platform 4 is located between the swing arm 34 and the adjustment platform 24.
[0039] Specifically, the support platform 31 in the swing mechanism can be fixedly mounted on the base 1. The reduction motor 32 can be mounted on the support platform 31, such as an L-shaped fastener can be provided between the reduction motor 32 and the support platform 31, the bottom of the L-shaped fastener is mounted on the support platform 31, the rotating shaft of the reduction motor 32 passes through the top of the L-shaped fastener, and the rotating shaft of the reduction motor 32 passes through the top of the L-shaped fastener and can be connected to the second direct-drive synchronous wheel structure 33, the reduction motor 32 can drive the second direct-drive synchronous wheel structure 33 to rotate, such as the second direct-drive synchronous wheel structure 33 can include two moving wheels, a smaller moving wheel is connected to the rotating shaft of the reduction motor 32, and the other larger moving wheel is movably mounted in the middle of the L-shaped fastener, the reduction motor 32 and the second direct-drive synchronous wheel structure 33 are connected by a second transmission belt 36, which means that the second transmission belt 36 is respectively embedded in the outer groove of the smaller moving wheel and the outer groove of the larger moving wheel. When the shaft of the reduction motor 32 drives the smaller impeller to rotate, the smaller impeller drives the second transmission belt 36, which in turn pulls the larger impeller to rotate. The larger impeller is fixedly connected to the bottom of the swing arm 34 via a connecting shaft, meaning that rotation of the larger impeller drives the swing arm 34 to rotate. In this way, the reduction motor 32 drives the second direct-drive synchronous wheel structure 33 to drive the swing arm 34 to perform a swing test within a swing test angle range of 0° to 180°, where the swing test angle can be R2, where 0°≤R2≤180°.
[0040] It should be noted that a snap-in groove may be provided along the length direction of the swing arm 34, and the snap-in groove may include a plurality of snap-in grooves. A protrusion matching the snap-in groove may be provided at one end of the support platform 4, and the support platform 4 may be snapped into the snap-in groove at the corresponding height position through the protrusion, so that the support platform 4 is fixed at the height position. A space for placing a strong point light source may be provided on the support platform 4, so that the strong point light source can be installed on the support platform 4. In this way, when strong light enters the lens, the strong point light source is moved to the desired swing angle within the swing test angle range through the swing arm 34, and the camera module is rotated to the desired rotation test angle within the rotation test angle range through the adjustment platform 24. There is no need to manually adjust the position of the strong point light source and the camera module, which can improve the stability of the test and improve the efficiency of the test.
[0041] The present invention provides a Flare device for a camera module, in which a first direct-drive synchronous wheel structure 21 in a lifting mechanism is installed on a fastening seat 25, the fastening seat 25 is fixed to a base 1, and a rotating seat 22 is movably installed on the fastening seat 25. The rotating seat 22 and the first direct-drive synchronous wheel structure 21 are connected by a first transmission belt 23, so that the first direct-drive synchronous wheel structure 21 drives the first transmission belt 23 to drive the rotating seat 22 to rotate. An adjustment platform 24 is detachably installed on the rotating seat 22, and the rotating seat 22 is located between the adjustment platform 24 and the fastening seat 25. In the swing mechanism, a support platform 31 is fixed to the base 1, a reduction motor 32 is installed on the support platform 31, the reduction motor 32 is connected to the second direct-drive synchronous wheel structure 33, and the swing arm 34 is connected to the second direct-drive synchronous wheel structure 33, so that the reduction motor 32 drives the second direct-drive synchronous wheel structure 33 to drive the swing arm 34 to swing. The supporting platform 4 is connected to the swing arm 34, and the supporting platform 4 is located between the swing arm 34 and the adjusting platform 24. In this way, when the camera module needs to be subjected to a Flare test, the camera module is placed on the adjusting platform 24, and the first direct-drive synchronous wheel structure 21 is rotated so that the adjusting platform 24 drives the camera module to rotate to the required angle position. Then, a strong point light source is placed on the supporting platform 4 installed on the swing arm 34, and the second direct-drive synchronous wheel structure 33 is driven by the reduction motor 32 to drive the swing arm 34 to swing, thereby realizing an automatic Flare test on the camera module. This can then improve the stability of the test and improve the test efficiency. Thus, the technical effect of improving the stability of the test and improving the test efficiency is achieved.
[0042] In order to explain in detail a method for Flare of a camera module provided by the present invention, the above embodiment 1 explains in detail a device for Flare of a camera module. Based on the same inventive concept, the present application also provides a method for Flare of a camera module, see embodiment 2 for details.
[0043] Example 2
[0044] See Figure 7 , Figure 7 is a flow chart of a camera module flare method provided by an embodiment of the present invention. Embodiment 2 of the present invention provides a camera module flare method, including:
[0045] Step S100: Loading a test object onto the adjustment platform 24 and placing a strong point light source on the supporting platform 4, wherein the test object includes a camera module;
[0046] Step S110 , driving the rotating seat 22 via the first direct drive synchronous wheel structure 21 to drive the adjustment platform 24 to perform a rotation test within a rotation test angle range of 0° to 360°;
[0047] In step S120 , the reduction motor 32 drives the second direct-drive synchronous wheel structure 33 to drive the swing arm 34 to perform a swing test within a swing test angle range, where the swing test angle range is 0° to 180°.
[0048] The present invention provides a method for flaring a camera module. The method comprises loading a test object onto an adjustment platform 24 and placing a strong point light source on a supporting platform 4. The test object comprises a camera module. The first direct-drive synchronous wheel structure 21 drives a rotating seat 22 to drive the adjustment platform 24 to perform a rotation test within a rotation test angle range of 0° to 360°. The second direct-drive synchronous wheel structure 33 is driven by a reduction motor 32 to drive a swing arm 34 to perform a swing test within a swing test angle range of 0° to 180°. In this way, when a flare test is required for a camera module, the camera module is placed on the adjustment platform 24, the first direct-drive synchronous wheel structure 21 is rotated so that the adjustment platform 24 drives the camera module to rotate to the desired angle position, and then the strong point light source is placed on the supporting platform 4 mounted on the swing arm 34. The second direct-drive synchronous wheel structure 33 is driven by the reduction motor 32 to drive the swing arm 34 to swing, thereby performing a flare test on the camera module. This method can improve the stability of the test and the test efficiency. Thereby achieving the technical effect of improving the stability of the test and improving the test efficiency.
[0049] In order to provide an electronic device for a camera module Flare provided by the present invention, the above embodiment one provides a detailed description of a device for a camera module Flare. Based on the same inventive concept, the present application also provides an electronic device for a camera module Flare, see embodiment three for details.
[0050] Example 3
[0051] See Figure 8 , Figure 8 This is a structural diagram of an electronic device for a camera module Flare provided in an embodiment of the present invention. Embodiment 3 of the present invention provides an electronic device for a camera module Flare, comprising a memory 310, a processor 320, and a computer program 311 stored in the memory 310 and executable on the processor 320. When the processor 320 executes the program, the following steps are implemented:
[0052] Loading a test object onto the adjustment platform 24 and placing a strong point light source on the carrier platform 4, wherein the test object includes a camera module;
[0053] The first direct drive synchronous wheel structure 21 drives the rotating seat 22 to drive the adjustment platform 24 to perform a rotation test within a rotation test angle range of 0° to 360°;
[0054] The reduction motor 32 drives the second direct-drive synchronous wheel structure 33 to drive the swing arm 34 to perform a swing test within a swing test angle range, where the swing test angle range is 0° to 180°.
[0055] The present invention provides an electronic device for camera module flare, wherein a test object is loaded onto an adjustment platform 24 and a strong point light source is placed on a supporting platform 4, wherein the test object includes a camera module; a first direct drive synchronous wheel structure 21 drives a rotating seat 22 to drive the adjustment platform 24 to perform a rotation test within a rotation test angle range, wherein the rotation test angle range is 0° to 360°; a reduction motor 32 drives a second direct drive synchronous wheel structure 33 to drive a swing arm 34 to perform a swing test within a swing test angle range, wherein the swing test angle range is 0° to 180°. In this way, when a camera module needs to be flared, the camera module is placed on the adjustment platform 24, the first direct drive synchronous wheel structure 21 is rotated so that the adjustment platform 24 drives the camera module to rotate to the desired angle position, and then a strong point light source is placed on the supporting platform 4 installed on the swing arm 34, and the reduction motor 32 drives the second direct drive synchronous wheel structure 33 to drive the swing arm 34 to swing, thereby achieving a flare test on the camera module. This can improve the stability of the test and improve the test efficiency. Thereby achieving the technical effect of improving the stability of the test and improving the test efficiency.
[0056] In order to provide a computer-readable storage medium for a camera module Flare provided by the present invention, the above embodiment one provides a detailed description of a device for a camera module Flare. Based on the same inventive concept, the present application also provides a computer-readable storage medium for a camera module Flare, see embodiment four for details.
[0057] Example 4
[0058] See Figure 9 , Figure 9 A structural diagram of a computer-readable storage medium 400 for a camera module Flare provided in an embodiment of the present invention. Embodiment 4 of the present invention provides a computer-readable storage medium 400 for a camera module Flare, on which a computer program 411 is stored. When the program is executed by a processor, the following steps are implemented:
[0059] Loading a test object onto the adjustment platform 24 and placing a strong point light source on the carrier platform 4, wherein the test object includes a camera module;
[0060] The first direct drive synchronous wheel structure 21 drives the rotating seat 22 to drive the adjustment platform 24 to perform a rotation test within a rotation test angle range of 0° to 360°;
[0061] The reduction motor 32 drives the second direct-drive synchronous wheel structure 33 to drive the swing arm 34 to perform a swing test within a swing test angle range, where the swing test angle range is 0° to 180°.
[0062] The present invention provides a computer-readable storage medium 400 for camera module Flare, wherein a test object is loaded onto an adjustment platform 24 and a strong point light source is placed on a supporting platform 4, wherein the test object includes a camera module; a first direct-drive synchronous wheel structure 21 drives a rotating seat 22 to drive the adjustment platform 24 to perform a rotation test within a rotation test angle range, wherein the rotation test angle range is 0° to 360°; a reduction motor 32 drives a second direct-drive synchronous wheel structure 33 to drive a swing arm 34 to perform a swing test within a swing test angle range, wherein the swing test angle range is 0° to 180°. In this way, when a camera module needs to be Flare tested, the camera module is placed on the adjustment platform 24, the first direct-drive synchronous wheel structure 21 is rotated so that the adjustment platform 24 drives the camera module to rotate to the desired angle position, and then a strong point light source is placed on the supporting platform 4 installed on the swing arm 34, and the reduction motor 32 drives the second direct-drive synchronous wheel structure 33 to drive the swing arm 34 to swing, thereby achieving a Flare test on the camera module. This can then improve the stability of the test and increase the test efficiency, thus achieving the technical effect of improving the stability of the test and increasing the test efficiency.
[0063] Finally, it should be noted that the above specific implementation methods are only used to illustrate the technical solutions of the present invention and are not limiting. Although the present invention has been described in detail with reference to examples, those skilled in the art should understand that the technical solutions of the present invention can be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. A Flare device for a camera module, characterized in that: The device comprises: a base, a lifting mechanism, a swing mechanism and a bearing platform, the lifting mechanism comprises a first direct-drive synchronous wheel structure, a fastening seat, a rotating seat and an adjustment platform, the first direct-drive synchronous wheel structure is installed on the fastening seat, the fastening seat is fixed to the base, the rotating seat is movably installed on the fastening seat, the rotating seat and the first direct-drive synchronous wheel structure are connected by a first transmission belt, so that the first direct-drive synchronous wheel structure drives the first transmission belt to drive the rotating seat to rotate; the adjusting platform is detachably installed on the rotating seat, and the rotating seat is located between the adjusting platform and the fastening seat; the swing mechanism comprises The invention comprises a support platform, a reduction motor, a second direct-drive synchronous wheel structure and a swing arm, wherein the support platform is fixed to the base; the reduction motor is installed on the support platform; the reduction motor is connected to the second direct-drive synchronous wheel structure; the swing arm is connected to the second direct-drive synchronous wheel structure, so that the reduction motor drives the second direct-drive synchronous wheel structure to drive the swing arm to swing; the bearing platform is connected to the swing arm, and the bearing platform is located between the swing arm and the adjustment platform; in the process of performing a Flare test on the camera module, the camera module is placed on the adjustment platform, and the first direct-drive synchronous wheel structure is rotated to make the camera module rotate. The adjustment table drives the camera module to rotate to the required angle position, and then the strong point light source is placed on the bearing table installed on the swing arm. The second direct-drive synchronous wheel structure is driven by the reduction motor to drive the swing arm to swing, so as to realize the Flare test of the camera module, which can improve the stability of the test and improve the test efficiency; a vacuum adsorption device is provided on the adjustment table, and the camera module is adsorbed by the vacuum adsorption device. In this way, the lens end face of the product is adsorbed by vacuum adsorption, which can avoid scratches on the lens end face caused by manual touch of the lens; the adjustment table adopts a split structure, and the top and bottom ends of the adjustment table are connected by a threaded adjustment handle, and the threaded adjustment handle is rotated to adjust the camera module. The handle is used to adjust the distance between the two ends of the adjustment platform, so that the height of the top can be adjusted during the rotation of the threaded adjustment handle, so that the camera module located on the top of the adjustment platform can be adjusted to the required test height; a vertical correction rod, the vertical correction rod is installed on the support platform, the vertical correction rod and the support platform are perpendicular, the length of the vertical correction rod is less than the length of the swing arm, and during the swinging process of the swing arm, the swing amplitude of the swing arm is observed by observing and measuring the angle at which the swing arm deviates from the vertical correction rod; the reduction motor and the second direct-drive synchronous wheel structure are connected by a second transmission belt.
2. The camera module Flare device according to claim 1, wherein: The rotating seat and the adjusting platform are detachably connected via bolts.
3. The camera module Flare device according to claim 1, wherein: The swing arm is provided with a clamping groove; the supporting platform is clamped in the clamping groove.
4. The camera module Flare device according to claim 1, wherein: The second direct-drive synchronous wheel structure is parallel to the swing arm, and the second direct-drive synchronous wheel structure and the swing arm are fixedly connected via a connecting shaft. The second direct-drive synchronous wheel structure drives the swing arm to swing via the connecting shaft.
5. The camera module Flare device according to claim 1, wherein: The swing arm is located between the reduction motor and the supporting platform.
6. A camera module flare method, applied to the camera module flare device according to any one of claims 1 to 5, characterized in that: The method comprises: Loading a test object onto an adjustment table and placing a strong point light source on a carrying table, wherein the test object includes a camera module; The first direct drive synchronous wheel structure drives the rotating seat to drive the adjustment table to perform a rotation test within a rotation test angle range of 0° to 360°; The second direct-drive synchronous wheel structure is driven by the reduction motor to drive the swing arm to perform a swing test within a swing test angle range, and the swing test angle range is 0° to 180°.
7. An electronic device for a camera module Flare, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that: Applied to the Flare device for a camera module according to any one of claims 1 to 5, the processor implements the following steps when executing the program: Loading a test object onto an adjustment table and placing a strong point light source on a carrying table, wherein the test object includes a camera module; The first direct drive synchronous wheel structure drives the rotating seat to drive the adjustment table to perform a rotation test within a rotation test angle range of 0° to 360°; The second direct-drive synchronous wheel structure is driven by the reduction motor to drive the swing arm to perform a swing test within a swing test angle range, and the swing test angle range is 0° to 180°.
8. A computer-readable storage medium for a camera module Flare, having a computer program stored thereon, characterized in that: Applied to the Flare device for a camera module according to any one of claims 1 to 5, the program, when executed by a processor, implements the following steps: Loading a test object onto an adjustment table and placing a strong point light source on a carrying table, wherein the test object includes a camera module; The first direct drive synchronous wheel structure drives the rotating seat to drive the adjustment table to perform a rotation test within a rotation test angle range of 0° to 360°; The second direct-drive synchronous wheel structure is driven by the reduction motor to drive the swing arm to perform a swing test within a swing test angle range, and the swing test angle range is 0° to 180°.
Citation Information
Patent Citations
Automatic Flare inspection machine and inspection system
CN111855160A
Camera module Flare test equipment
CN213367998U