Efficient optical surface analysis device

By designing an optical surface analysis device that includes components such as supporting columns, workbenches, and imaging devices, the problem of poor surface detection effect is solved, and efficient and comprehensive optical analysis effect is achieved.

CN223122850UActive Publication Date: 2025-07-18ZHEJIANG ANGYANG NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202422195984.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2025-07-18
Estimated Expiration
2034-09-09

AI Technical Summary

Technical Problem

Existing optical detection instruments are difficult to effectively analyze various positions on the curved surface, resulting in poor detection results.

Method used

An optical surface analysis device including supporting columns, workbenches, computers, imaging devices, coarse quasi-focus spirals, fine quasi-focus spirals, tri-eye observation mechanisms, lighting devices and other components is designed to achieve efficient analysis of curved surfaces through a variety of adjustment and fixed structures.

Benefits of technology

It realizes efficient and all-round optical analysis of curved surfaces, and improves the clarity and accuracy of detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an efficient optical surface analysis device which comprises a supporting column, the supporting column is fixedly connected with a workbench, the upper side of the workbench is provided with a computer, the left side of the computer is provided with a supporting frame, the left side of the supporting frame is provided with a coarse focusing screw, and the left side of the coarse focusing screw is provided with a fine focusing screw. The fine focusing screw is installed on the lower side of the coarse focusing screw, the supporting frame is fixedly connected with the trinocular observation mechanism, the camera device is installed on the upper side of the trinocular observation mechanism, the ocular lens is installed on the front side of the trinocular observation mechanism, the objective lens converter is installed on the lower side of the trinocular observation mechanism, and the objective lens is fixedly connected to the lower side of the objective lens converter. A fixing table is arranged on the lower side of the objective lens, and a lighting device is installed on the right side of the fixing table and comprises a universal pipe and a light source. By means of the structure, curved surfaces of different shapes can be analyzed more conveniently, and a light source can be better provided.
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Description

Technical Field

[0001] The utility model relates to the technical field of optical surface analysis, and particularly relates to an efficient optical surface analysis device. Background Art

[0002] Optical surface analysis is a non-contact and non-destructive surface analysis technology. It uses optical instruments and devices to analyze and infer the properties of an object's surface by measuring various signals generated by the interaction of light with the object's surface, such as reflected light, transmitted light, scattered light, etc. Optical surface analysis technology has wide applications in the fields of materials science, physics, chemistry, biology, medicine, environmental science, etc. An optical detection instrument is a device that uses the optical principle to detect the properties of an object by analyzing optical phenomena such as reflection, transmission, and scattering of the object. Its principle is to utilize the interaction between matter and light, and obtain information and characteristics of the object by receiving and processing transmitted, scattered, and reflected light signals. Optical detection instruments are widely used in fields such as quality inspection, non-contact measurement, and statistical analysis, such as infrared thermal imaging detectors, optical microscopes, CCD cameras, etc. At the same time, optical detection instruments can enable people to study information such as the object's surface and structure more deeply, effectively promoting the progress of material science and engineering technology. In the prior art during detection, due to the complexity of the curved surface, the instrument cannot well perform optical analysis on each position of the detected curved surface. Therefore, we propose an efficient optical surface analysis device to solve the above problems. Content of the Utility Model

[0003] The purpose of the utility model is to provide an efficient optical surface analysis device to solve the problems raised in the above background art.

[0004] To achieve the above purpose, an efficient optical surface analysis device is provided, including a support column. The support column is fixedly connected to a workbench. A computer is arranged on the upper side of the workbench. A support frame is installed on the left side of the computer. A coarse focusing screw is arranged on the left side of the support frame. A fine focusing screw is installed under the coarse focusing screw. The support frame is fixedly connected to a trinocular observation mechanism. A camera device is installed on the upper side of the trinocular observation mechanism. An eyepiece is installed on the front side of the trinocular observation device. An objective lens converter is installed under the trinocular observation device. An objective lens is fixedly connected under the objective lens converter. A fixed table is arranged under the objective lens. The fixed table includes a telescopic base, a cross sliding platform, a fixing plate, a sliding groove, a slider, a telescopic column, and a spherical fixing block. A lighting device is installed on the right side of the fixed table. The lighting device includes a universal tube and a light source.

[0005] According to the described efficient optical surface analysis device, the universal tube is fixedly connected to the left edge of the workbench, and the end of the universal tube far from the workbench is fixedly connected to a light source.

[0006] According to the described efficient optical surface analysis device, the telescopic base is fixedly connected to the upper side of the workbench. The telescopic base is equipped with a telescopic column, and the telescopic column is equipped with a spherical fixing block. The spherical fixing block is fixedly connected to a cross sliding platform. The cross sliding platform is provided with a sliding groove, and the sliding groove is slidably connected with a slider. The slider is fixedly connected to a fixing plate.

[0007] According to the described efficient optical surface analysis device, the number of the fixing plates is multiple. The slider is installed at the center of the lower side of the fixing plate, and the sliding groove is arranged in the middle of the cross sliding platform.

[0008] According to the described efficient optical surface analysis device, the number of the telescopic columns is multiple, and each telescopic column can be independently telescoped. The spherical fixing block is installed in the groove of the telescopic column.

[0009] According to the described efficient optical surface analysis device, the number of eyepieces is three. The upper eyepiece is fixedly connected with a camera device. The number of objective lenses is three, and the magnification of each objective lens is different.

[0010] According to the described efficient optical surface analysis device, the light source is arranged around the cross sliding platform, and the computer displays the results observed by the camera device.

[0011] The beneficial effects of the present utility model: Each component can be supported by the support column. The item to be detected and the detection supplies can be placed on the workbench. The observation image can be seen and the results can be analyzed through the computer. The observed graphics can be transmitted to the computer through the camera device. The observation clarity can be adjusted through the coarse focusing screw and the fine focusing screw. The magnified item can be observed through the eyepiece and the objective lens. Sufficient light can be provided and each position can be illuminated through the lighting device. The observation magnification can be changed by switching different objective lenses through the objective lens turret. The observation position can be adjusted through the cross sliding platform. The cross sliding platform can be controlled to tilt at different angles through the telescopic base, the telescopic column, and the spherical fixing block to assist in observing curved surface items. The observed item can be fixed through the cross sliding platform, the fixing plate, the sliding groove, and the slider.

[0012] The additional aspects and advantages of the present utility model will be partially given in the following description, partially will become obvious from the following description, or will be understood through the practice of the present utility model. Description of the Drawings

[0013] The present utility model will be further described below in conjunction with the drawings and embodiments;

[0014] Figure 1 It is a three-dimensional view of an efficient optical surface analysis device of the present utility model;

[0015] Figure 2 Partial view of part A of an efficient optical surface analysis device of the present utility model;

[0016] Figure 3 Stereogram of the fixing table of an efficient optical surface analysis device of the present utility model;

[0017] Figure 4 Oblique view of the fixing table of an efficient optical surface analysis device of the present utility model;

[0018] Figure 5 Diagram of the lighting mechanism of an efficient optical surface analysis device of the present utility model.

[0019] Legend:

[0020] 1. Support column; 2. Workbench; 3. Computer; 4. Support frame; 5. Trinocular observation mechanism; 6. Imaging device; 7. Coarse focusing screw; 8. Fine focusing screw; 9. Eyepiece; 10. Lighting device; 101. Universal pipe; 102. Light source; 11. Fixing table; 111. Telescopic base; 112. Cross sliding platform; 113. Fixing plate; 114. Slide groove; 115. Slide block; 116. Telescopic column; 117. Spherical fixing block; 12. Objective turret; 13. Objective lens. Specific implementation mode

[0021] This part will describe in detail the specific embodiments of the present utility model. The preferred embodiments of the present utility model are shown in the drawings. The function of the drawings is to supplement the description of the text part of the specification, enabling people to intuitively and vividly understand each technical feature and the overall technical solution of the present utility model, but it cannot be construed as a limitation on the protection scope of the present utility model.

[0022] Embodiment:

[0023] Refer to Figures 1 to 5, in an embodiment of the present utility model, an efficient optical surface analysis device includes a support column 1. The support column 1 is fixedly connected to a workbench 2. Above the workbench 2, there is a computer 3. On the left side of the computer 3, there is a support frame 4. On the left side of the support frame 4, there is a coarse focusing screw 7 for roughly adjusting the observation clarity. Below the coarse focusing screw 7, there is a fine focusing screw 8 for precisely adjusting the observation clarity. The support frame 4 is fixedly connected to a trinocular observation mechanism 5. Above the trinocular observation mechanism 5, there is a camera device 6. In front of the trinocular observation mechanism 5, there is an eyepiece 9. Below the trinocular observation mechanism 5, there is an objective lens turret 12 for switching objective lenses 13 of different magnifications. Below the objective lens turret 12, there is an objective lens 13 fixedly connected. Below the objective lens 13, there is a fixing table 11. The fixing table 11 includes a telescopic base 111, a cross-sliding platform 112, a fixing plate 113, a chute 114, a slider 115, a telescopic column 116, and a spherical fixing block 117. On the right side of the fixing table 11, there is a lighting device 10. The lighting device 10 includes a universal tube 101 and a light source 102. The universal tube 101 is fixedly connected to the left edge of the workbench 2. The universal tube 101 can control the light source 102 to various different positions. One end of the universal tube 101 away from the workbench 2 is fixedly connected to the light source 102 to provide light during detection. The telescopic base 111 is fixedly connected to the upper side of the workbench 2 to control the telescoping of the telescopic column 116. The telescopic base 111 is equipped with the telescopic column 116 to control the cross-sliding platform 112 to tilt at different angles. The telescopic column 116 is equipped with a spherical fixing block 117. The spherical fixing block 117 is fixedly connected to the cross-sliding platform 112. The cross-sliding platform 112 is provided with a chute 114 for the slider 115 to slide. The chute 114 is slidably connected to the slider 115. The slider 115 is fixedly connected to the fixing plate 113. The number of fixing plates 113 is multiple for fixing the item to be detected. The slider 115 is installed at the center of the lower side of the fixing plate 113. The chute 114 is arranged in the middle of the cross-sliding platform 112. The number of telescopic columns 116 is multiple, and each telescopic column 116 can be independently telescoped to make different curved surfaces of the curved object to be analyzed all shown in the front. The spherical fixing block 117 is installed in the groove of the telescopic column 116 so that telescoping of different lengths will not damage the cross-sliding platform 112. The number of eyepieces 9 is three. The upper eyepiece 9 is fixedly connected to the camera device 6 for collecting observation images. The number of objective lenses 13 is three, and the magnification of each objective lens 13 is different, which is convenient for observing items of different magnifications. The light source 102 is arranged around the cross-sliding platform 112 to provide light for observation. The computer 3 displays the results observed by the camera device 6, and the results can be analyzed more intuitively.

[0024] Working principle: When in use, place the item with a curved surface to be analyzed on the cross-sliding platform, then push the slider 115. The slider 115 slides in the chute 114 to drive the fixed plate 113 to fix the item with a curved surface to be analyzed. Adjust the objective turret 12 to select a suitable objective lens 13, and then observe the clarity through the eyepiece 9. After that, move the coarse focusing screw 7 to a position with better clarity, and then adjust the fine focusing screw 8 to adjust the clarity to an appropriate height. Adjust the observation position with the cross-sliding platform, and adjust the curved surface to be observed to face upwards towards the objective lens 13 through the telescopic column 116. Control the universal tube 101, place the light source 102 in a suitable position to provide sufficient light. After adjustment, the imaging device 6 starts to work and transmits the image to the computer 3. The computer 3 displays the observed image and analyzes the detection result.

[0025] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those of ordinary skill in the art in the said technical field, various changes can be made without departing from the gist of the present invention.

Claims

1. An efficient optical surface analysis device, comprising a support column (1), characterized in that, The support column (1) is fixedly connected to a workbench (2). Above the workbench (2), there is a computer (3). On the left side of the computer (3), a support frame (4) is installed. On the left side of the support frame (4), there is a coarse focusing screw (7). Below the coarse focusing screw (7), a fine focusing screw (8) is installed. The support frame (4) is fixedly connected to a trinocular observation mechanism (5). Above the trinocular observation mechanism (5), a camera device (6) is installed. In front of the trinocular observation device (5), an eyepiece (9) is installed. Below the trinocular observation device (5), an objective turret (12) is installed. Below the objective turret (12), an objective lens (13) is fixedly connected. Below the objective lens (13), there is a fixing table (11). The fixing table (11) includes a telescopic base (111), a cross sliding platform (112), a fixing plate (113), a sliding groove (114), a slider (115), a telescopic column (116), and a spherical fixing block (117). On the right side of the fixing table (11), a lighting device (10) is installed. The lighting device (10) includes a universal tube (101) and a light source (102).

2. An efficient optical surface analysis device according to claim 1, characterized in that, The universal tube (101) is fixedly connected to the left edge of the workbench (2). One end of the universal tube (101) away from the workbench (2) is fixedly connected to the light source (102).

3. An efficient optical surface analysis device according to claim 1, characterized in that The telescopic base (111) is fixedly connected to the upper side of the workbench (2). The telescopic base (111) is equipped with a telescopic column (116). The telescopic column (116) is equipped with a spherical fixing block (117). The spherical fixing block (117) is fixedly connected to the cross sliding platform (112). The cross sliding platform (112) is provided with a sliding groove (114). The sliding groove (114) is slidably connected to a slider (115). The slider (115) is fixedly connected to the fixing plate (113).

4. An efficient optical surface analysis device according to claim 3, wherein The number of the fixing plates (113) is multiple. The slider (115) is installed at the center of the lower side of the fixing plate (113). The sliding groove (114) is arranged in the middle of the cross sliding platform (112).

5. An efficient optical surface analysis device according to claim 3, characterized in that, The number of the telescopic columns (116) is multiple. Each telescopic column (116) can be independently telescoped. The spherical fixing block (117) is installed in the groove of the telescopic column (116).

6. An efficient optical surface analysis device according to claim 1, characterized in that, The number of the eyepieces (9) is three. The upper eyepiece (9) is fixedly connected to the camera device (6). The number of the objective lenses (13) is three. The magnification of each objective lens (13) is different.

7. An efficient optical surface analysis device according to claim 1, characterized in that, The light source (102) is arranged around the cross sliding platform (112). The computer (3) displays the result observed by the camera device (6).