Auxiliary vehicle for detecting optical performance of glass

By designing a glass optical performance detection auxiliary vehicle that can load large-size glass samples at one time and rotate, the difficulty of traditional equipment in detecting large-size glass samples is solved, a fast and safe detection process is achieved, and labor intensity is reduced.

CN223021917UActive Publication Date: 2025-06-24SHANGHAI QIANWEIJIA CONSTR TECH CO LTD
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Patent Information

Application Number
CN202421927576.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-06-24
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

Existing glass optical performance detection equipment has difficulty in detecting large-sized glass samples. Traditional auxiliary vehicles are bulky and difficult to load all samples at once. The inspection process is labor-intensive and unsafe.

Method used

An auxiliary vehicle for glass optical performance detection is designed, which can load all large-size detection samples at one time, and the sample can be rotated by a certain angle, and the overall movement and angle adjustment of the sample is achieved through the connecting rod and slide assembly.

Benefits of technology

It realizes rapid and safe inspection of samples, reduces labor intensity, improves work efficiency, and avoids repeated loading and unloading work.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of optical performance detection of glass, in particular to an auxiliary vehicle for optical performance detection of glass, which comprises a sample module component, a sample plate and a bottom plate, the sample module assemblies are used for clamping and fixing the glass assembly, and the sample module assemblies are connected through connecting rods so that the sample module assemblies can steer at the same time; the sample plate is arranged below the sample module assemblies and is used for bearing the sample module assemblies; the bottom plate is arranged below the sample plate, two rows of guide rails are arranged on the bottom plate, sliding block assemblies capable of horizontally moving along the guide rails are arranged on the guide rails, and the sliding block assemblies are used for fixing the position of the sample plate. According to the auxiliary vehicle for detecting the optical performance of the glass, the whole sample can move along the guide rail, all large-size detection samples can be loaded at a time, the whole sample can rotate by a certain angle, and meanwhile the detection process is low in labor intensity, safe and efficient; and after one side is detected, the auxiliary vehicle can be rotated by 180 degrees to detect the other side, so that the working efficiency and the labor intensity are greatly improved, and repeated loading and unloading work is avoided.
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Description

Technical Field

[0001] The utility model relates to the field of glass optical property detection, and particularly relates to an auxiliary vehicle for glass optical property detection. Background Technique

[0002] The glass optical properties refer to optical parameters such as visible light transmittance, visible light reflectance, shading coefficient, heat transfer coefficient (U value), etc. These optical parameters are used to evaluate lighting performance, light pollution, energy-saving performance, etc. At present, insulating glass is widely used in building doors, windows and curtain walls, and the optical parameters of the glass need to meet various performance requirements.

[0003] Insulating glass generally consists of two or three pieces of glass. Before detection, the glass needs to be separated into single-piece glass, and the transmittance and reflectance of each piece of glass are detected separately. The reflectance needs to be detected on two surfaces. Optical property detection equipment generally consists of an infrared spectrometer and a spectrophotometer, and these two types of equipment have strict restrictions on the size of the samples, usually requiring special customization.

[0004] The project entrusting party needs to know whether the insulating glass installed on site meets the design requirements, and the size of these glasses is much larger than the equipment requirements. This requires the production of corresponding auxiliary equipment to place the glass samples. A set of samples for glass optical detection consists of three specimens. Traditional auxiliary vehicles are relatively bulky and can only load one piece of glass. Considerable workload is required for detecting the transmittance and reflectance parameters, and when detecting another piece of glass, the glass on the vehicle must be removed first and then another piece of glass must be installed, which is quite time-consuming and laborious. At the same time, the reflectance sample chamber of some spectrophotometers has a certain angle, and it is very cumbersome to adjust the position of the auxiliary vehicle to meet the angle.

[0005] In view of the above problems, those skilled in the art urgently need to provide an auxiliary vehicle for glass optical property detection, which can load all large-size detection samples at one time, the samples can rotate a certain angle as a whole, and the labor intensity during the detection process is low, and it is safe and efficient. Content of the Utility Model

[0006] The purpose of the utility model is to provide an auxiliary vehicle for glass optical property detection, which can load all large-size detection samples at one time, the samples can rotate a certain angle as a whole, and the labor intensity during the detection process is low, and it is safe and efficient.

[0007] To achieve the above object, the utility model provides an auxiliary vehicle for detecting the optical properties of glass, which comprises a glass component. The glass component includes a first glass and a second glass. It further includes a sample module component. There are several sample module components for clamping and fixing the glass component. The sample module components are connected by connecting rods so that the sample module components can turn simultaneously; a sample plate is arranged below the sample module components for carrying the sample module components; a bottom plate is arranged below the sample plate. Two rows of guide rails are provided on the bottom plate, and a slider component that can move horizontally along the guide rails is arranged on the guide rails. The slider component is used to fix the position of the sample plate.

[0008] Preferably, the sample module component includes a U-shaped clamp, a plum blossom screw, a stop block, a U-shaped metal groove, a sample module plate and a universal ball; the plum blossom screw passes through the U-shaped clamp and abuts against the glass component. The first glass and the second glass are supported at intervals by the stop block. A sample module plate is arranged on the U-shaped clamp. A U-shaped metal groove for placing the glass component is arranged on the sample module plate. Universal balls are arranged at both ends of the sample module component.

[0009] Preferably, the sample module component is connected to the sample plate by the cooperation of a screw rod and a fastening nut so that the sample module component is installed on the sample plate and turns along the screw rod.

[0010] Preferably, a number of through holes for the screw rod to pass through are provided on the sample plate, the U-shaped clamp and the sample module plate.

[0011] Preferably, the slider component includes a common slider and a locking slider for fixing the position of the sample plate.

[0012] Preferably, limit blocks are respectively arranged at both ends of the guide rail.

[0013] Preferably, the bottom plate is installed on a base metal rod.

[0014] Preferably, a number of universal wheels are installed below the base metal rod.

[0015] The technical effects and advantages of the utility model:

[0016] 1. For the auxiliary vehicle for detecting the optical properties of glass in the utility model, the whole sample can move along the guide rail, and all large-size detection samples can be loaded at one time. The sample can rotate a certain angle as a whole. At the same time, the labor intensity in the detection process is low, and it is safe and efficient;

[0017] 2. In the present utility model, the entire sample can be rotated by a certain angle to adapt to the reflectivity detection chamber of the device. Generally, the reflectivity of two surfaces of the glass sample needs to be detected. After one surface is detected, the auxiliary cart can be rotated 180 degrees to detect the other surface, greatly improving the work efficiency and reducing the labor intensity, and avoiding repeated loading and unloading work. Description of the Drawings

[0018] Figure 1 It is a schematic structural view of the auxiliary cart for detecting the optical properties of glass in the present utility model;

[0019] Figure 2 It is a side view of the auxiliary cart for detecting the optical properties of glass in the present utility model.

[0020] Among them, Figure 1 - Figure 2 in:

[0021] 10. Glass assembly; 11. First glass; 12. Second glass;

[0022] 20. Sample module assembly; 21. U-shaped clamp; 22. Plum blossom screw; 23. Stop block; 24. U-shaped metal groove; 25. Sample module plate; 26. Universal ball; 27. Screw rod; 28. Tightening nut;

[0023] 30. Connecting rod; 40. Sample plate; 50. Base plate; 60. Guide rail;

[0024] 70. Slide block assembly; 71. Ordinary slide block; 72. Locking slide block;

[0025] 80. Limit block; 90. Base metal rod; 91. Universal wheel. Detailed Implementation Manner

[0026] In order to enable those skilled in the art to better understand the technical solution of the present utility model, the present utility model will be further described in detail below with reference to the drawings.

[0027] As Figure 1 - Figure 2 shown, the present utility model provides an auxiliary cart for detecting the optical properties of glass, including a glass assembly 10, wherein the glass assembly 10 includes a first glass 11 and a second glass 12. The present utility model also includes a sample module assembly 20, a sample plate 40, and a base plate 50.

[0028] Among them, there are several sample module assemblies 20 for clamping and fixing the glass assembly 10. The first glass 11 and the second glass 12 are arranged opposite to each other. The sample module assemblies are connected by a connecting rod 30 so that the sample module assemblies 20 can turn simultaneously, enabling multiple sample module assemblies 20 to turn simultaneously and avoiding sample collisions.

[0029] Specifically, the sample module assembly 20 includes a U-shaped clamp 21, a socket head cap screw 22, a stop block 23, a U-shaped metal groove 24, a sample module board 25, and universal balls 26; the socket head cap screw 22 passes through the U-shaped clamp 21 and abuts against the glass assembly 10, and the first glass 11 and the second glass 12 are supported at intervals by the stop block 23. The sample module board 25 is provided on the U-shaped clamp 21, and the U-shaped metal groove 24 for placing the glass assembly 10 is provided on the sample module board 25. Universal balls 26 are provided at both ends of the sample module assembly 20.

[0030] The sample module assembly 20 is connected to the sample board 40 by the cooperation of a screw rod 27 and a fastening nut 28, so that the sample module assembly 20 is installed on the sample board 40 and can rotate along the screw rod 27.

[0031] The sample board 40 is provided below the sample module assembly 20 and is used to carry each sample module assembly 20; a number of through holes for the screw rod 27 to pass through are provided on the sample board 40, the U-shaped clamp 21, and the sample module board 25.

[0032] The bottom plate 50 is provided below the sample board 40. Two rows of guide rails 60 are provided on the bottom plate 50. A slider assembly 70 that can move horizontally along the guide rails 60 is provided on the guide rails 60. The slider assembly 70 is used to fix the position of the sample board 40. Among them, the slider assembly 70 includes a common slider 71 and a locking slider 72 for fixing the position of the sample board 40; both types of sliders can move horizontally along the guide rails 60 and can be fixed by the locking slider 72 after reaching the position. Limit blocks 80 are respectively provided at both ends of the guide rails 60.

[0033] In addition, the bottom plate 50 is installed on the base metal rod 90, and a number of universal wheels 91 are installed below the base metal rod 90, and the universal wheels 91 can be locked.

[0034] The operation method of the glass optical property detection auxiliary vehicle in the present utility model includes the following steps:

[0035] S01. Load the detection glass assembly 10 and use the socket head cap screw 22 to fix the glass assembly 10 to be detected to prevent it from shaking;

[0036] S02. Move the detection vehicle to the vicinity of the equipment and fix the bottom universal wheels 91;

[0037] S03. Move the glass to be detected along the U-shaped metal groove 24 into the detection equipment bin for detection;

[0038] S04. Move the detected glass back along the U-shaped metal groove 24 into the detection vehicle, loosen the locking slider 72, push the sample board 40 to a proper position, lock the locking slider 72, and perform the detection of the next sample;

[0039] S05. When the equipment sample bin and the glass sample are at an angle, push the sample module to rotate the whole and then perform steps S03 to S04;

[0040] S06. After the front side of the glass is detected, loosen the bottom universal wheels, rotate the whole 180 degrees and then perform the detection of the other side.

[0041] In summary, for the auxiliary vehicle for glass optical property detection in the present utility model, the whole sample can move along the guide rail, can load all large-size detection samples at one time, has low labor intensity during the detection process, and is safe and efficient; at the same time, the whole sample in the present utility model can rotate a certain angle to adapt to the reflectivity detection bin of the equipment. The glass sample usually needs to detect the reflectivity of two sides. After one side is detected, the auxiliary vehicle can be rotated 180 degrees to detect the other side, greatly improving the work efficiency and reducing the labor intensity, and avoiding repeated loading and unloading work.

[0042] The structure, features and function effects of the present utility model have been described in detail based on the embodiments shown in the drawings. The above are only the preferred embodiments of the present utility model, but the present utility model is not limited to the implementation scope shown in the drawings. Any changes made according to the concept of the present utility model, or equivalent embodiments modified into equivalent changes, still within the spirit covered by the description and the drawings, shall be within the protection scope of the present utility model.

Claims

1. An auxiliary vehicle for glass optical property testing, comprising a glass assembly, wherein the glass assembly comprises a first glass and a second glass, characterized in that: Also includes A sample module assembly, wherein the sample module assembly is a plurality of the sample module assemblies, and is used to clamp and fix the glass assembly, and each sample module assembly is connected by a connecting rod so that each sample module assembly can turn at the same time; A sample plate, which is disposed below the sample module assembly and is used to carry each sample module assembly; A bottom plate is arranged below the sample plate, and two rows of guide rails are arranged on the bottom plate. A slider assembly which can move horizontally along the guide rails is arranged on the guide rails, and the slider assembly is used to fix the position of the sample plate.

2. The auxiliary vehicle for glass optical property testing according to claim 1, characterized in that: The sample module assembly includes a U-shaped clamp, a plum screw, a stopper, a U-shaped metal groove, a sample module plate and a universal ball; the plum screw passes through the U-shaped clamp and abuts against the glass assembly, the first glass and the second glass are supported by the stopper, the U-shaped clamp is provided with a sample module plate, the sample module plate is provided with a U-shaped metal groove for placing the glass assembly, and the universal balls are provided at both ends of the sample module assembly.

3. The auxiliary vehicle for glass optical property testing according to claim 2, characterized in that: The sample module assembly is connected to the sample plate by cooperating with a screw and a fastening nut, so that the sample module assembly is installed on the sample plate and turns along the screw.

4. The auxiliary vehicle for glass optical property testing according to claim 3, characterized in that: The sample plate, the U-shaped clamp and the sample module plate are all provided with a plurality of through holes for the screw rods to pass through.

5. The auxiliary vehicle for glass optical property testing according to claim 1, characterized in that: The slider assembly comprises a common slider and a locking slider for fixing the position of the sample plate.

6. The auxiliary vehicle for glass optical property testing according to claim 1, characterized in that: Limit blocks are respectively arranged at both ends of the guide rail.

7. The auxiliary vehicle for glass optical property testing according to claim 1, characterized in that: The bottom plate is mounted on the base metal rod.

8. The auxiliary vehicle for glass optical property testing according to claim 7, characterized in that: A plurality of universal wheels are installed below the base metal rod.