Collision device for glass production detection

By designing a collision device including a workbench, a clamping assembly and a collision assembly, the problem of only fixed-size glass plates and lack of edge and corner detection in the prior art is solved, and flexible detection and high-accuracy detection of glass plates of different sizes are achieved.

CN223005925UActive Publication Date: 2025-06-20HEBEI SHENGSI ENERGY SAVING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421858817.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-02
Publication Date
2025-06-20
Estimated Expiration
2034-08-02

AI Technical Summary

Technical Problem

The existing collision devices can only detect fixed-size glass plates, with limited use range and reduced adaptability, and lack detection at the corners of glass plates.

Method used

A collision device including a workbench, a clamping assembly and a collision assembly is designed. Through the combination of the fixing seat, the fixing rod and the slide rod, the collision assembly can slide along the slide rod to adapt to glass plates of different sizes. The clamping assembly is able to slide to the corner of the glass plate by combining the clamping groove and the clamping slide groove, and fix the glass plate to avoid bounce. The collision assembly can adjust the collision position through the combination of the sliding sleeve and the slide rod, and continuously detect the collision with the telescopic rod and the cylinder.

Benefits of technology

The device can adapt to glass plates of different sizes. The detection is not only limited to the central position, but also the edges and corners of the glass plate, which improves the flexibility and accuracy of detection and avoids the problem of the glass plate bounce during the detection process.

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Abstract

The utility model relates to the field of glass testing, in particular to a collision device for glass production detection. The technical problems that in the using process of an existing collision device, generally, only a glass plate of a fixed size can be detected, so that the using range of the collision device is limited, the adaptability is reduced, and meanwhile, generally, the existing collision device only carries out collision detection on the center position of the glass plate; and the corners of the glass plate cannot be collided. According to the technical scheme, the collision device for glass production detection comprises a workbench, a clamping assembly and a collision assembly; through the combination of the fixing base, the fixing rod and the sliding rod, the collision assembly can be fixed to the upper portion of the table body and can slide along the sliding rod to collide different positions of glass on the table body, and through the combination of the clamping groove and the clamping sliding groove, the clamping assembly can slide along the clamping groove through the clamping sliding groove; therefore, the clamping assembly can adapt to glass plates of different sizes.
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Description

Technical Field

[0001] The utility model relates to the field of glass testing, in particular to a collision device for glass production inspection. Background Art

[0002] Glass is a non-crystalline inorganic material with the main component being silicate. It has characteristics such as transparency, high hardness, and strong brittleness. The production of glass is achieved by melting raw materials such as quartz sand, sodium carbonate, and limestone at high temperatures to form liquid glass, and then cooling and solidifying it into a shape. Glass has a wide range of applications in daily life, not only in construction and home decoration, but also widely used in furniture, lighting, art decoration and other fields. After the glass is produced, a collision device is needed to detect the strength of the glass. In the process of using the existing collision devices, they can usually only detect glass plates with fixed sizes, which limits the scope of use of the collision devices and reduces their adaptability. At the same time, the existing collision devices usually only perform collision detection on the central position of the glass plate, lacking collision on the corners of the glass plate. Therefore, we propose a collision device for glass production inspection to solve the problems mentioned above. Content of the Utility Model

[0003] In order to overcome the problems that in the process of using the existing collision devices, they can usually only detect glass plates with fixed sizes, which limits the scope of use of the collision devices and reduces their adaptability, and at the same time, the existing collision devices usually only perform collision detection on the central position of the glass plate, lacking collision on the corners of the glass plate.

[0004] The technical solution of the utility model is as follows: A collision device for glass production inspection includes a workbench, a clamping assembly, and a collision assembly; the workbench includes a table body and a sliding rod. A clamping groove is opened at the upper end of the table body, and a clamping assembly for clamping glass is arranged inside the clamping groove. The clamping assembly includes a clamping base, a column, and a clamping block. Above the table body, there is a collision assembly for colliding with the glass, and the collision assembly includes a collision table and a sliding sleeve.

[0005] Preferably, through the combination of a fixed seat, a fixed rod, and a sliding rod, the collision assembly can be fixed above the table body and can slide along the sliding rod to collide with different positions of the glass on the table body. Through the combination of the clamping groove and the clamping sliding groove, the clamping assembly can slide along the clamping groove through the clamping sliding groove, so that the clamping assembly can adapt to glass plates of different sizes. Through the combination of the clamping base and the first-level slider, the staff can place the glass plate to be detected in the center of the table body, and then drive the clamping base to slide along the clamping sliding groove through the first-level slider by the first-level driver, so that the clamping assembly in the clamping groove slides to the corner of the glass plate.

[0006] Preferably, fixing seats are provided at the corners of the table body. There are multiple groups of fixing seats, and the multiple groups of fixing seats are evenly distributed at the corners of the table body. At the centers of the upper ends of the multiple groups of fixing seats, multiple groups of fixing rods are respectively provided. Between the multiple groups of fixing rods, two sliding rods are symmetrically erected. Through the combination of the fixing seats, fixing rods and sliding rods, the collision assembly can be fixed above the table body and can slide along the sliding rods to collide with different positions of the glass on the table body.

[0007] Preferably, there are multiple groups of clamping grooves, and the multiple groups of clamping grooves are arranged around the surface of the table body. Clamping chutes are opened on both sides of the clamping grooves. Multiple groups of support legs are provided at the lower end of the table body. Through the combination of the clamping grooves and the clamping chutes, the clamping assembly can slide along the clamping grooves through the clamping chutes, so that the clamping assembly can adapt to glass plates of different sizes.

[0008] Preferably, the clamping base is located inside the clamping groove. First-stage sliders are provided on both sides of the clamping base, and the first-stage sliders are matched with the clamping chutes. The clamping base slides along the clamping chutes through the first-stage sliders. Above one end of the clamping base, a first-stage driver is provided. Through the combination of the clamping base and the first-stage sliders, the staff can place the glass plate to be tested in the center of the table body, and then drive the clamping base to slide along the clamping chutes through the first-stage sliders by the first-stage driver, so that the clamping assembly of the clamping groove slides to the corner of the glass plate.

[0009] Preferably, the upright column is located above the other end of the clamping base. A lifting chute is opened at the front end of the upright column. A second-stage slider is provided at the rear end of the clamping block, and the second-stage slider is located inside the lifting chute. The clamping block slides along the lifting chute through the second-stage slider. A clamping groove is opened at the lower end of the clamping block. A second-stage driver is provided at the rear end of the upright column. Through the combination of the upright column and the clamping block, when the clamping assembly slides to the corner of the glass plate, the staff drives the clamping block to slide downward along the lifting chute through the second-stage slider by the second-stage driver, so that the clamping groove at the lower end of the clamping block clamps the corner of the glass plate, so that when the glass plate is subjected to a collision test, the glass plate can be fixed on the table body to prevent the glass plate from bouncing when being collided and affecting the detection effect.

[0010] Preferably, sliding sleeves are located on both sides of the collision table. A connecting block is provided between the collision table and the sliding sleeves, and the collision table and the sliding sleeves are fixedly connected through the connecting block. A sliding hole is opened inside the sliding sleeves, and the sliding sleeves are sleeved on the outer ends of the sliding rods through the sliding holes. The collision table slides along the sliding rods through the sliding sleeves. A third-stage driver is provided at the rear end of the collision table. Through the combination of the sliding sleeves and the sliding rods, during the collision test, the staff can drive the collision table to slide along the sliding rods through the sliding sleeves by the third-stage driver, so that the collision assembly can adjust the collision position of the glass plate according to different requirements.

[0011] Preferably, a plurality of telescopic rods are linearly arranged at the lower end of the collision table. A collision hammer is provided at the lower end of the telescopic rod. The telescopic rod is matched with a cylinder. The cylinder is located at the upper end of the collision table. The upper end of the telescopic rod passes through the collision table and is connected to the cylinder. By combining the telescopic rod and the cylinder, when a collision occurs, the staff can drive the telescopic rod to expand and contract through the cylinder, so that the collision hammer continuously collides with the glass plate through the expansion and contraction of the telescopic rod for detection.

[0012] The beneficial effects of the present utility model are as follows:

[0013] 1. By combining the fixed seat, the fixed rod and the sliding rod, the collision assembly can be fixed above the table body, and the collision assembly can slide along the sliding rod to collide with different positions of the glass on the table body. By combining the clamping groove and the clamping sliding groove, the clamping assembly can slide along the clamping groove through the clamping sliding groove, so that the clamping assembly can adapt to glass plates of different sizes. By combining the clamping base and the first-level slider, the staff can place the glass plate to be detected in the center of the table body, and then drive the clamping base to slide along the clamping sliding groove through the first-level slider by the first-level driver, so that the clamping assembly of the clamping groove slides to the corner of the glass plate.

[0014] 2. By combining the column and the clamping block, when the clamping assembly slides to the corner of the glass plate, the staff drives the clamping block to slide downward along the lifting sliding groove through the second-level slider by the second-level driver, so that the clamping groove at the lower end of the clamping block catches the corner of the glass plate. Thus, when the glass plate undergoes a collision test, the glass plate can be fixed on the table body to avoid the glass plate bouncing when being collided and affecting the detection effect. By combining the sliding sleeve and the sliding rod, when a collision test is carried out, the staff can drive the collision table to slide along the sliding rod through the sliding sleeve by the third-level driver, so that the collision assembly can adjust the collision position of the glass plate according to different requirements. By combining the telescopic rod and the cylinder, when a collision occurs, the staff can drive the telescopic rod to expand and contract through the cylinder, so that the collision hammer continuously collides with the glass plate through the expansion and contraction of the telescopic rod for detection. This solves the problems that the existing collision devices can usually only detect glass plates of fixed sizes during use, which limits the scope of use of the collision devices and reduces their adaptability. At the same time, the existing collision devices usually only perform collision detection on the central position of the glass plate and lack the collision of the corners of the glass plate. Description of the Drawings

[0015] Figure 1 It is a schematic diagram of the overall structure of the present utility model;

[0016] Figure 2 It is a schematic diagram of the collision table of the present utility model;

[0017] Figure 3 It is a schematic diagram of the clamping assembly of the present utility model;

[0018] Figure 4 This is a schematic diagram of the collision component of the present utility model.

[0019] Explanation of reference numerals: 1, workbench; 101, table body; 102, support leg; 103, fixed seat; 104, clamping groove; 105, clamping chute; 106, fixed rod; 107, sliding rod; 2, clamping component; 201, clamping base; 202, first-level slider; 203, first-level driver; 204, column; 205, second-level driver; 206, lifting chute; 207, clamping block; 208, clamping groove; 209, second-level slider; 3, collision component; 301, collision table; 302, connecting block; 303, sliding sleeve; 304, sliding hole; 305, cylinder; 306, third-level driver; 307, telescopic rod; 308, collision hammer. Specific embodiments

[0020] The present utility model will be further described below with reference to the accompanying drawings and embodiments.

[0021] Please refer to Figure 1-2 , the present utility model provides an embodiment: a collision device for glass production detection, including a workbench 1, a clamping component 2 and a collision component 3; the workbench 1 includes a table body 101 and a sliding rod 107, a clamping groove 104 is opened at the upper end of the table body 101, and a clamping component 2 for clamping glass is arranged inside the clamping groove 104. The clamping component 2 includes a clamping base 201, a column 204 and a clamping block 207. A collision component 3 for colliding with the glass is arranged above the table body 101, and the collision component 3 includes a collision table 301 and a sliding sleeve 303.

[0022] Please continue to refer to Figure 1-2 , in this embodiment, fixed seats 103 are arranged at the corners of the table body 101. There are multiple groups of fixed seats 103, and multiple groups of fixed seats 103 are evenly distributed at the corners of the table body 101. The centers of the upper ends of multiple groups of fixed seats 103 are respectively provided with multiple groups of fixed rods 106. Two groups of sliding rods 107 are symmetrically erected between multiple groups of fixed rods 106. Through the combination of the fixed seats 103, fixed rods 106 and sliding rods 107, the collision component 3 can be fixed above the table body 101, and the collision component 3 can slide along the sliding rod 107 to collide with different positions of the glass on the table body 101. There are multiple groups of clamping grooves 104, and multiple groups of clamping grooves 104 are arranged in a ring along the surface of the table body 101. Clamping chutes 105 are opened on both sides of the clamping groove 104. Multiple groups of support legs 102 are arranged at the lower end of the table body 101. Through the combination of the clamping groove 104 and the clamping chute 105, the clamping component 2 can slide along the clamping groove 104 through the clamping chute 105, so that the clamping component 2 can adapt to glass plates of different sizes.

[0023] Please refer toFigure 1-3 , in this embodiment, the clamping base 201 is located inside the clamping groove 104. First-stage sliders 202 are provided on both sides of the clamping base 201. The first-stage sliders 202 are arranged to match the clamping chutes 105. The clamping base 201 slides along the clamping chutes 105 through the first-stage sliders 202. Above one end of the clamping base 201, there is a first-stage driver 203. By combining the clamping base 201 and the first-stage sliders 202, the staff can place the glass plate to be tested at the center of the table body 101. Then, the first-stage driver 203 drives the clamping base 201 to slide along the clamping chutes 105 through the first-stage sliders 202, so that the clamping assembly 2 of the clamping groove 104 slides to the corner of the glass plate. The column 204 is located above the other end of the clamping base 201. A lifting chute 206 is provided at the front end of the column 204. A second-stage slider 209 is provided at the rear end of the clamping block 207. The second-stage slider 209 is located inside the lifting chute 206. The clamping block 207 slides along the lifting chute 206 through the second-stage slider 209. A clamping groove 208 is provided at the lower end of the clamping block 207. A second-stage driver 205 is provided at the rear end of the column 204. By combining the column 204 and the clamping block 207, when the clamping assembly 2 slides to the corner of the glass plate, the staff drives the clamping block 207 to slide downward along the lifting chute 206 through the second-stage slider 209 by the second-stage driver 205, so that the clamping groove 208 at the lower end of the clamping block 207 clamps the corner of the glass plate. Thus, when the glass plate is subjected to a collision test, the glass plate can be fixed on the table body 101, avoiding the glass plate from bouncing when being collided and affecting the detection effect.

[0024] Please refer to Figure 1-4, in this embodiment, the sliding sleeves 303 are located on both sides of the collision table 301. A connecting block 302 is provided between the collision table 301 and the sliding sleeves 303. The collision table 301 and the sliding sleeves 303 are fixedly connected through the connecting block 302. A sliding hole 304 is formed inside the sliding sleeves 303. The sliding sleeves 303 are sleeved on the outer ends of the sliding rods 107 through the sliding holes 304. The collision table 301 slides along the sliding rods 107 through the sliding sleeves 303. A three-stage driver 306 is provided at the rear end of the collision table 301. Through the combination of the sliding sleeves 303 and the sliding rods 107, when performing a collision test, the staff can drive the collision table 301 to slide along the sliding rods 107 through the sliding sleeves 303 by the three-stage driver 306, so that the collision assembly 3 can adjust the collision position of the glass plate according to different requirements. A plurality of groups of telescopic rods 307 are linearly provided at the lower end of the collision table 301. A collision hammer 308 is provided at the lower end of the telescopic rods 307. The telescopic rods 307 are matched with cylinders 305. The cylinders 305 are located at the upper end of the collision table 301. The upper ends of the telescopic rods 307 pass through the collision table 301 and are connected to the cylinders 305. Through the combination of the telescopic rods 307 and the cylinders 305, when performing a collision, the staff can drive the telescopic rods 307 to expand and contract by the cylinders 305, so that the collision hammer 308 continuously collides with the glass plate for detection.

[0025] When working, the staff first place the glass plate to be detected at the center of the table body 101, and drive the clamping base 201 to slide along the clamping chute 105 through the first-stage slider 202 by the first-stage driver 203, and the clamping assembly 2 in the clamping groove 104 slides to the corner of the glass plate.

[0026] Next, the staff drive the clamping block 207 to slide downward along the lifting chute 206 through the second-stage slider 209 by the second-stage driver 205, so that the clamping groove 208 at the lower end of the clamping block 207 catches the corner of the glass plate, so that when the glass plate is subjected to a collision test, the glass plate can be fixed on the table body 101.

[0027] Then, the staff can drive the collision table 301 to slide along the sliding rods 107 through the sliding sleeves 303 by the three-stage driver 306, so that the collision assembly 3 can adjust the collision position of the glass plate according to different requirements. Then, the staff can drive the telescopic rods 307 to expand and contract by the cylinders 305, so that the collision hammer 308 continuously collides with the glass plate for detection.

[0028] According to the above steps, the staff first place the glass plate to be detected at the center of the table body 101. The clamping base 201 is driven by the first-level driver 203 to slide to the corner of the glass plate. Then, the staff drive the clamping block 207 through the second-level driver 205 to slide downward along the lifting chute 206 through the second-level slider 209, so that the clamping groove 208 at the lower end of the clamping block 207 catches the corner of the glass plate. Then, the telescopic rod 307 is driven to expand and contract by the air cylinder 305, so that the collision hammer 308 continuously collides with the glass plate through the expansion and contraction of the telescopic rod 307 for detection.

[0029] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the purpose of the present invention.

Claims

1. A collision device for glass production detection, comprising a workbench (1); characterized in that: The invention also comprises a clamping assembly (2) and a collision assembly (3); the workbench (1) comprises a table body (101) and a sliding rod (107); a clamping groove (104) is provided at the upper end of the table body (101); a clamping assembly (2) for clamping glass is provided inside the clamping groove (104); the clamping assembly (2) comprises a clamping base (201), a column (204) and a clamping block (207); a collision assembly (3) for colliding glass is provided above the table body (101); the collision assembly (3) comprises a collision table (301) and a sliding sleeve (303).

2. A collision device for glass production detection according to claim 1, characterized in that: A fixed seat (103) is provided at the corner of the platform (101), and the fixed seat (103) is provided with a plurality of groups. The plurality of groups of fixed seats (103) are evenly distributed at the corners of the platform (101), and a plurality of groups of fixed rods (106) are respectively provided at the centers of the upper ends of the plurality of groups of fixed seats (103), and two groups of sliding rods (107) are symmetrically arranged between the plurality of groups of fixed rods (106).

3. A collision device for glass production detection according to claim 2, characterized in that: A plurality of clamping grooves (104) are provided, and the plurality of clamping grooves (104) are arranged around the surface of the platform (101). Clamping slide grooves (105) are provided on both sides of the clamping grooves (104), and a plurality of supporting legs (102) are provided at the lower end of the platform (101).

4. The collision device for glass production detection according to claim 3, characterized in that: The clamping base (201) is located inside the clamping groove (104), and a first-level slider (202) is provided on both sides of the clamping base (201). The first-level slider (202) and the clamping groove (105) are matched with each other. The clamping base (201) slides along the clamping groove (105) through the first-level slider (202), and a first-level driver (203) is provided above one end of the clamping base (201).

5. A collision device for glass production detection according to claim 4, characterized in that: The column (204) is located above the other end of the clamping base (201), the front end of the column (204) is provided with a lifting slot (206), the rear end of the clamping block (207) is provided with a secondary slider (209), the secondary slider (209) is located inside the lifting slot (206), the clamping block (207) slides along the lifting slot (206) through the secondary slider (209), the lower end of the clamping block (207) is provided with a clamping slot (208), and the rear end of the column (204) is provided with a secondary driver (205).

6. A collision device for glass production detection according to claim 2, characterized in that: The sliding sleeve (303) is located on both sides of the collision platform (301), a connecting block (302) is provided between the collision platform (301) and the sliding sleeve (303), the collision platform (301) and the sliding sleeve (303) are fixedly connected through the connecting block (302), a sliding hole (304) is provided inside the sliding sleeve (303), the sliding sleeve (303) is sleeved on the outer end of the sliding rod (107) through the sliding hole (304), the collision platform (301) slides along the sliding rod (107) through the sliding sleeve (303), and a three-stage driver (306) is provided at the rear end of the collision platform (301).

7. A collision device for glass production detection according to claim 6, characterized in that: A plurality of groups of telescopic rods (307) are linearly arranged at the lower end of the collision platform (301), a collision hammer (308) is arranged at the lower end of the telescopic rod (307), a cylinder (305) is matched with the telescopic rod (307), the cylinder (305) is located at the upper end of the collision platform (301), and the upper end of the telescopic rod (307) passes through the collision platform (301) and is connected to the cylinder (305).