Discharging mechanism of anti-radiation glass forming equipment

By combining inclined blocks and movable rods, and utilizing a cylinder and motor-driven feeding mechanism, the problem of radiation-proof glass sticking to the mold cavity is solved, achieving convenient glass feeding and a safe production process.

CN224047243UActive Publication Date: 2026-03-27JIANGSU SHENDUN NEW MATERIAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Radiation-shielding glass tends to stick to the inner wall of the mold cavity, making it difficult to separate and remove after molding, thus affecting material feeding efficiency.

Method used

The unloading mechanism, which includes a first telescopic cylinder, a second telescopic cylinder, and a motor drive, uses the cooperation of inclined blocks and movable rods to lift and push the radiation-proof glass, ensuring its separation from the mold cavity. The glass is then removed from the mold by the horizontal movement of the push plate.

Benefits of technology

This technology enables convenient cutting of radiation-proof glass, improves cutting efficiency, ensures production safety, and avoids the complexity of manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of anti-radiation glass forming, in particular to a discharging mechanism of anti-radiation glass forming equipment, which comprises a forming table, a lower die is fixedly connected to the inner side of the forming table, a supporting rod is fixedly connected to the upper surface of the forming table, and a top plate is fixedly connected to the top end of the supporting rod. And a first telescopic cylinder is fixedly mounted on the inner side of the top plate. According to the anti-radiation glass forming device, a first inclined plane block can be pushed through the extending effect of a second telescopic air cylinder, a second inclined plane block can be extruded through movement of the first inclined plane block, then a movable rod can drive a connecting plate to vertically move and ascend, formed anti-radiation glass can be jacked through the effect of the connecting plate, and the anti-radiation glass forming device is convenient to use. And the radiation-proof glass can be conveniently separated from the lower mold, so that the radiation-proof glass can be conveniently taken out, automatic blanking can be realized, and the convenience and efficiency of blanking of the radiation-proof glass can be improved.
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Description

Technical Field

[0001] This utility model relates to the field of radiation-proof glass forming technology, specifically to a feeding mechanism for radiation-proof glass forming equipment. Background Technology

[0002] Radiation-shielding glass is a specially designed type of glass that effectively blocks or absorbs electromagnetic radiation (such as high-energy radiation like X-rays and gamma rays) and some ultraviolet and infrared radiation. It is commonly used in medical, industrial, and scientific research fields, such as hospital radiology departments, nuclear facilities, aerospace, and electronic equipment manufacturing. Radiation-shielding glass forming equipment is an automated or semi-automated production line specifically designed for producing radiation-shielding glass. Its core function is to process raw materials (such as glass substrates, metal oxide powders, etc.) through high-temperature melting, mixing, forming, and cooling processes to create glass products that meet protection standards. Common methods for forming radiation-shielding glass include pressing, blowing, stretching, roll forming, and molding.

[0003] In existing technologies, when molding radiation-shielding glass using molding equipment, molten glass is typically placed into a preheated mold and pressed under high temperature and pressure to precisely shape it into the desired form. However, after molding, the radiation-shielding glass tends to adhere to the inner wall of the mold cavity, making it difficult to separate from the cavity. This hinders the removal of the radiation-shielding glass and makes it inconvenient to unload the glass, thus reducing unloading efficiency. Therefore, to address these issues, a unloading mechanism for radiation-shielding glass molding equipment is proposed. Utility Model Content

[0004] The purpose of this utility model is to provide a feeding mechanism for a radiation-proof glass forming equipment, so as to solve the problem mentioned in the background art that after forming, the radiation-proof glass is prone to sticking to the inner wall of the mold cavity, and thus cannot be separated from the mold cavity well, making it inconvenient to remove the radiation-proof glass, which makes it difficult to feed the radiation-proof glass and cannot improve the feeding efficiency.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a feeding mechanism for a radiation-proof glass forming equipment, comprising a forming table, a lower mold fixedly connected to the inner side of the forming table, a support rod fixedly connected to the upper surface of the forming table, a top plate fixedly connected to the top end of the support rod, a first telescopic cylinder fixedly installed on the inner side of the top plate, and an upper mold fixedly connected to the output end of the first telescopic cylinder.

[0006] The bottom end of the forming table is provided with a feeding mechanism, which includes a first fixed plate fixedly connected to the bottom end of the forming table. A second telescopic cylinder is fixedly installed on the inner side of the first fixed plate. A first inclined block is fixedly connected to the output end of the second telescopic cylinder. A limit block is fixedly connected to the lower surface of the first inclined block. A limit groove is formed on the inner side of the first fixed plate. A movable rod is movably connected to the inner side of the lower mold. A connecting plate is fixedly connected to the top end of the movable rod. A second inclined block is fixedly connected to the bottom end of the movable rod. A spring is fixedly connected to the upper surface of the second inclined block.

[0007] Preferably, one end of the limiting block is fixedly connected to the first inclined block, and the end of the limiting block away from the first inclined block is movable inside the limiting groove.

[0008] Preferably, the movable rods are arranged in four groups and move inside the lower mold, the connecting plate is movably connected to the lower mold, one end of the spring is fixedly connected to the lower mold, and the other end of the spring is fixedly connected to the second inclined block.

[0009] Preferably, the surface of the forming table is provided with a pushing mechanism, the pushing mechanism includes a second fixed plate, the second fixed plate is fixedly connected to the upper surface of the forming table, a screw is movably connected to the inner side of the second fixed plate, a motor is fixedly installed on the surface of the second fixed plate, a sleeve is threadedly connected to the surface of the screw, a push plate is fixedly connected to the surface of the sleeve, a connecting block is fixedly connected to the surface of the sleeve, and a movable groove is opened on the inner side of the second fixed plate.

[0010] Preferably, the screw and the output end of the motor are fixedly connected, and the connecting blocks are fixedly connected in two sets on both sides of the sleeve rod.

[0011] Preferably, the movable grooves are arranged in two sets on the inner side of the second fixed plate, and the connecting block and the movable grooves are movably connected.

[0012] Compared with the prior art, the beneficial effects of this utility model are:

[0013] 1. The extension of the second telescopic cylinder can push the first inclined block. The movement of the first inclined block can squeeze the second inclined block, thereby enabling the movable rod to drive the connecting plate to move vertically and rise. The connecting plate can lift the formed radiation-proof glass, facilitating the separation of the radiation-proof glass from the lower mold, thus making it easier to remove the radiation-proof glass. Automatic unloading can be achieved, which helps to improve the convenience and efficiency of unloading radiation-proof glass.

[0014] 2. By driving the screw to rotate through the motor, the sleeve rod can move the push plate horizontally. The movement of the push plate can push the radiation-proof glass, which is lifted by the connecting plate after the radiation-proof glass is formed, so that the radiation-proof glass can be moved out of the middle of the lower mold and the upper mold. This makes it easier for the workers to put their hands between the lower mold and the upper mold when unloading the radiation-proof glass, and also better ensures the safety of production and processing. Attached Figure Description

[0015] Figure 1 This is a front view schematic diagram of the structure of this utility model;

[0016] Figure 2 This is an exploded side view sectional view of the structure of this utility model;

[0017] Figure 3 This is an exploded cross-sectional view of the structure of the first fixing plate and the connecting plate of this utility model.

[0018] Figure 4 This is a top exploded view of the structure of the second fixing plate and push plate of this utility model.

[0019] In the diagram: 1. Forming platform; 11. Lower mold; 12. Support rod; 13. Top plate; 14. First telescopic cylinder; 15. Upper mold; 2. First fixed plate; 21. Second telescopic cylinder; 22. First inclined block; 23. Limiting block; 24. Limiting groove; 25. Movable rod; 26. Connecting plate; 27. Second inclined block; 28. Spring; 3. Second fixed plate; 31. Screw; 32. Motor; 33. Sleeve rod; 34. Push plate; 35. Connecting block; 36. Movable groove. Detailed Implementation

[0020] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0021] Please see Figure 1-4 One embodiment provided by this utility model:

[0022] The first telescopic cylinder 14, the second telescopic cylinder 21, and the motor 32 used in this application are products that can be purchased directly from the market. Their principles and connection methods are existing technologies well known to those skilled in the art, so they will not be described in detail here.

[0023] A feeding mechanism for a radiation-shielding glass forming device includes a forming table 1. A lower mold 11 is fixedly connected to the inner side of the forming table 1. A support rod 12 is fixedly connected to the upper surface of the forming table 1. A top plate 13 is fixedly connected to the top end of the support rod 12. A first telescopic cylinder 14 is fixedly installed on the inner side of the top plate 13. An upper mold 15 is fixedly connected to the output end of the first telescopic cylinder 14. By placing molten glass into the lower mold 11, the telescopic action of the first telescopic cylinder 14 drives the upper mold 15 to descend, thereby realizing the forming of radiation-shielding glass through the action of the lower mold 11 and the upper mold 15.

[0024] A feeding mechanism is provided at the bottom of the forming table 1. The feeding mechanism includes a first fixed plate 2, which is fixedly connected to the bottom of the forming table 1. A second telescopic cylinder 21 is fixedly installed on the inner side of the first fixed plate 2. A first inclined block 22 is fixedly connected to the output end of the second telescopic cylinder 21. A limit block 23 is fixedly connected to the lower surface of the first inclined block 22. A limit groove 24 is formed on the inner side of the first fixed plate 2. A movable rod 25 is movably connected to the inner side of the lower mold 11. A connecting plate 26 is fixedly connected to the top end of the movable rod 25. A second connecting plate 26 is fixedly connected to the bottom end of the movable rod 25. The upper surface of the inclined block 27 is fixedly connected to a spring 28. Through the cooperation of the first inclined block 22 and the second inclined block 27, when the first inclined block 22 moves and squeezes the second inclined block 27, the second inclined block 27 will cause the movable rod 25 to drive the connecting plate 26 to move vertically under the action of the first inclined block 22, and realize the rise of the connecting plate 26. Thus, after the radiation-proof glass is formed, the rise of the connecting plate 26 can realize the lifting of the radiation-proof glass, making it convenient to remove the radiation-proof glass and facilitate the cutting of the radiation-proof glass.

[0025] Furthermore, one end of the limiting block 23 is fixedly connected to the first inclined block 22, and the end of the limiting block 23 away from the first inclined block 22 moves inside the limiting groove 24. Through the cooperation of the limiting block 23 and the limiting groove 24, when the second telescopic cylinder 21 extends, the first inclined block 22 can move stably under the action of the second telescopic cylinder 21 and squeeze the second inclined block 27.

[0026] Furthermore, the movable rods 25 are arranged in four groups inside the lower mold 11. The connecting plate 26 is movably connected to the lower mold 11. One end of the spring 28 is fixedly connected to the lower mold 11, and the other end of the spring 28 is fixedly connected to the second inclined block 27. Through the setting of the spring 28, the second inclined block 27 can be reset. Then, after the first inclined block 22 releases the pressure on the second inclined block 27, the second inclined block 27 can cause the movable rods 25 to drive the connecting plate 26 to reset under the rebound action of the spring 28.

[0027] Furthermore, a pushing mechanism is provided on the surface of the forming table 1. The pushing mechanism includes a second fixed plate 3, which is fixedly connected to the upper surface of the forming table 1. A screw 31 is movably connected to the inner side of the second fixed plate 3. A motor 32 is fixedly installed on the surface of the second fixed plate 3. A sleeve 33 is threadedly connected to the surface of the screw 31. A push plate 34 is fixedly connected to the surface of the sleeve 33. A connecting block 35 is fixedly connected to the surface of the sleeve 33. An movable groove 36 is opened on the inner side of the second fixed plate 3. With the setting of the push plate 34, after the radiation-proof glass is formed, the connecting plate 26 lifts the radiation-proof glass, and the movement of the push plate 34 can push the radiation-proof glass, so that the radiation-proof glass can leave the processing area. Therefore, when picking up the material, the operator does not need to put his hand between the lower mold 11 and the upper mold 15, making it easier to pick up the radiation-proof glass.

[0028] Furthermore, the output ends of the screw 31 and the motor 32 are fixedly connected, and the connecting blocks 35 are fixedly connected in two sets on both sides of the sleeve rod 33. The operation of the motor 32 can drive the screw 31 to rotate, thereby enabling the sleeve rod 33 to drive the push plate 34 to move, which facilitates the push plate 34 to push the formed radiation-proof glass.

[0029] Furthermore, the movable grooves 36 are arranged in two sets on the inner side of the second fixed plate 3. The connecting block 35 and the movable grooves 36 are movably connected. By setting the connecting block 35 and cooperating with the opening of the movable grooves 36, the connecting block 35 can move in the movable grooves 36 to limit the sleeve rod 33, which can ensure the stable movement of the push plate 34.

[0030] Working principle: In use, the second telescopic cylinder 21 is electrically connected to an external power source. The operator starts the second telescopic cylinder 21 by pressing the switch. The second telescopic cylinder 21 extends and drives the first inclined block 22 to move. The first inclined block 22 moves within the limiting groove 24 through the limiting block 23 and squeezes the second inclined block 27. The second inclined block 27 moves accordingly under the action of the first inclined block 22, and the moving rod 25 drives the connecting plate 26 to move vertically within the lower mold 11, realizing the rise of the connecting plate 26. At this time, the spring 28 is in a contracted state. The rise of the connecting plate 26 realizes the lifting of the formed radiation-proof glass, thereby realizing the separation of the radiation-proof glass from the lower mold 11 and realizing the unloading.

[0031] The motor 32 is electrically connected to an external power source. The operator starts the motor 32 by pressing the switch. The motor 32 drives the screw 31 to rotate. The sleeve rod 33 is limited by the connecting block 35 and the movable groove 36. It will move under the action of the screw 31 and drive the push plate 34 to move horizontally. At the same time, the connecting block 35 moves in the movable groove 36. The movement of the push plate 34 can push the radiation-proof glass that is lifted by the connecting plate 26, so that the radiation-proof glass can leave the forming and processing area.

[0032] The above are merely preferred embodiments of this utility model and are not intended to limit the utility model in any way. Those skilled in the art can readily implement this utility model based on the accompanying drawings and the description above. However, any modifications, alterations, or variations made by those skilled in the art without departing from the scope of the utility model's technical solution, utilizing the disclosed technical content, are equivalent embodiments of this utility model. Furthermore, any equivalent changes, alterations, or variations made to the above embodiments based on the essential technology of this utility model are still within the protection scope of this utility model's technical solution.

Claims

1. A blanking mechanism of a radiation-proof glass forming equipment, comprising a forming table (1), a lower mold (11) fixedly connected to the inner side of the forming table (1), a support rod (12) fixedly connected to the upper surface of the forming table (1), a top plate (13) fixedly connected to the top end of the support rod (12), a first telescopic cylinder (14) fixedly installed on the inner side of the top plate (13), and an upper mold (15) fixedly connected to the output end of the first telescopic cylinder (14); characterized in that A blanking mechanism is arranged at the bottom end of the forming table (1), the blanking mechanism comprises a first fixed plate (2) fixedly connected to the bottom end of the forming table (1), a second telescopic cylinder (21) fixedly installed on the inner side of the first fixed plate (2), a first inclined block (22) fixedly connected to the output end of the second telescopic cylinder (21), a limiting block (23) fixedly connected to the lower surface of the first inclined block (22), a limiting groove (24) formed in the inner side of the first fixed plate (2), a movable rod (25) movably connected to the inner side of the lower mold (11), a connecting plate (26) fixedly connected to the top end of the movable rod (25), a second inclined block (27) fixedly connected to the bottom end of the movable rod (25), and a spring (28) fixedly connected to the upper surface of the second inclined block (27).

2. The blanking mechanism of the radiation-proof glass forming apparatus according to claim 1, characterized in that: One end of the limiting block (23) is fixedly connected to the first inclined block (22), and the other end of the limiting block (23) away from the first inclined block (22) is movably arranged in the inner side of the limiting groove (24).

3. The blanking mechanism of the radiation-proof glass forming apparatus according to claim 1, wherein: The movable rod (25) is movably arranged in the inner side of the lower mold (11) in four groups, the connecting plate (26) is movably connected to the lower mold (11), one end of the spring (28) is fixedly connected to the lower mold (11), and the other end of the spring (28) is fixedly connected to the second inclined block (27).

4. The blanking mechanism of the radiation-proof glass forming apparatus according to claim 1, wherein: A pushing mechanism is arranged on the surface of the forming table (1), the pushing mechanism comprises a second fixed plate (3) fixedly connected to the upper surface of the forming table (1), a screw rod (31) movably connected to the inner side of the second fixed plate (3), a motor (32) fixedly installed on the surface of the second fixed plate (3), a sleeve rod (33) threadedly connected to the surface of the screw rod (31), a push plate (34) fixedly connected to the surface of the sleeve rod (33), a connecting block (35) fixedly connected to the surface of the sleeve rod (33), and a movable groove (36) formed in the inner side of the second fixed plate (3).

5. The glass forming apparatus according to claim 4, wherein: The screw rod (31) and the motor (32) are fixedly connected at the output end, and the connecting block (35) is fixedly connected to the two sides of the sleeve rod (33) in two groups.

6. The blanking mechanism of the radiation-proof glass forming apparatus according to claim 4, wherein: The movable groove (36) is formed in the inner side of the second fixed plate (3) in two groups, and the connecting block (35) is movably connected to the movable groove (36).