Accelerated cooling type glass bottle mold

By adjusting the height of the glass bottle mold hole through a motor-driven threaded rod and sprocket system, and combining it with cooling plates and a liquid storage chamber for cooling, the problem of the existing mold's inability to flexibly adjust the spatial length has been solved, achieving efficient cooling and improved applicability of the mold.

CN223620286UActive Publication Date: 2025-12-02CHANGSHU BROTHERS GLASSES MOULD CO LTD
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Patent Information

Application Number
CN202423167167.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-12-02
Estimated Expiration
2034-12-23

AI Technical Summary

Technical Problem

Existing glass bottle molds cannot flexibly adjust the length of the internal space of the glass bottle, resulting in insufficient applicability.

Method used

An accelerated cooling glass bottle mold was designed. The height of the mold hole is adjusted by a motor-driven threaded rod and sprocket system, and cooling is achieved by combining a cooling plate and a liquid storage chamber, thus realizing flexible adjustment and rapid cooling of the mold hole.

Benefits of technology

It enables flexible height adjustment and rapid cooling of glass bottle molds, improving the mold's applicability and production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an accelerated cooling type glass bottle mold and relates to the technical field of glass bottle molds. Comprising a supporting plate, an upper mold, a second mounting plate and a bottom mold, a first chain wheel is arranged on the outer side of a threaded rod, a second chain wheel is arranged at the output end of a motor, a connecting chain is arranged on one side of the second chain wheel in a meshed mode, and a supporting column is arranged at the top end of a connecting plate. According to the device, through the arrangement of the connecting plate, when the motor operates, the movement of the connecting chain can drive the first chain wheel to rotate, so that the threaded rod rotates at the top end of the second mounting plate, and then the connecting plate is driven to ascend or descend; the connecting plate moves upwards, so that the supporting columns can push the bottom mold to be embedded and inserted into the mold hole in the upper mold from the interior of the through hole, and the use height of the mold hole in the upper mold after the two bottom molds are combined is adjusted, so that the shape of the mold hole in the upper mold can be flexibly adjusted according to use requirements; the applicability of the glass bottle mold is effectively improved.
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Description

Technical Field

[0001] This utility model relates to a mold, specifically an accelerated cooling glass bottle mold, belonging to the field of glass bottle mold technology. Background Technology

[0002] Molds are crucial tools in industrial production. Through specific structures and processes, they shape materials and are widely used in manufacturing various product parts and components. Mold design and manufacturing demand high precision and durability because they typically need to withstand significant pressure and thermal cycling, while ensuring the dimensional accuracy and surface quality of the molded products. Molds are diverse, and based on the processing materials and processes, they can be divided into metal molds (such as die-casting molds, stamping molds, and drawing molds) and non-metal molds (such as plastic molds and rubber molds). Metal molds can be further subdivided according to the forming process; for example, die-casting molds are used for high-pressure injection molding of molten metal, while stamping molds are used for forming sheet metal.

[0003] Currently, in the use of glass bottle molds, most specific molds can only be used to cast glass bottles of specific shapes. The internal space length of the glass bottle cannot be flexibly adjusted according to usage requirements, which easily reduces the applicability of the glass bottle mold. To address this issue, we provide accelerated cooling glass bottle molds to solve the above problems. Utility Model Content

[0004] To address the aforementioned problems, this utility model provides an accelerated cooling glass bottle mold, the specific technical solution of which is as follows:

[0005] An accelerated cooling glass bottle mold includes a support plate, an upper mold, a second mounting plate, and a bottom mold. Two sets of threaded rods are rotatably mounted on the top of the second mounting plate. Bearings are mounted on the outer sides of the threaded rods and connected to the bottom of the second mounting plate. A first sprocket is mounted on the outer side of the threaded rods. A motor is mounted at the bottom of the second mounting plate, and a second sprocket is mounted at the output end of the motor. A connecting chain is engaged on one side of the second sprocket and is connected to the first sprocket. A connecting plate is threaded through the outer side of the threaded rods. A support column is mounted on the top of the connecting plate, and the top of the support column is connected to the bottom of the bottom mold.

[0006] Preferably, the bottom end of the support plate is provided with two sets of support frames, the inside of the support plate is provided with two sets of through slots, the inside of the support plate is provided with through holes, and the support column moves through the inside of the through holes.

[0007] Preferably, the top of the support plate is provided with two sets of No. 1 mounting plates, and the inner side of the No. 1 mounting plate is provided with an electric push rod, which is connected to one side of the upper mold.

[0008] Preferably, the upper mold is movably provided with a support plate at its top end, and the bottom end of the upper mold is provided with a protrusion that movably penetrates the interior of the through groove.

[0009] Preferably, the top of the upper mold is provided with a liquid injection port, and the interior of the upper mold is provided with a liquid storage cavity, which is in communication with the interior of the liquid injection port.

[0010] Preferably, the support column is detachably connected to the bottom end of the bottom mold, and the bottom mold is provided with a cooling plate inside.

[0011] Compared with the prior art, the present invention has the following beneficial effects:

[0012] 1. In this utility model, by setting up components such as a connecting plate, when the motor at the bottom end of the second mounting plate is running, the movement of the connecting chain can drive the first sprocket to rotate, causing the threaded rod to rotate at the top of the second mounting plate, thereby driving the connecting plate to rise or fall. The upward movement of the connecting plate can cause the support to push the bottom mold to fit into the mold hole inside the upper mold from the inside of the through hole. By adjusting the height of the mold hole inside the upper mold after the two sets of bottom molds are combined, it is convenient to flexibly adjust the shape of the mold hole inside the upper mold according to the usage requirements, effectively improving the applicability of the glass bottle mold.

[0013] 2. In this utility model, by setting up components such as a cooling plate and a liquid storage chamber, the refrigerant can be injected into the liquid storage chamber through the liquid injection port at the top of the upper mold. The refrigerant inside the liquid storage chamber can cool the mold hole on the inner side of the upper mold. The cooling plate can cool the bottom mold. The use of the cooling plate and the refrigerant inside the liquid storage chamber can effectively improve the cooling time of the glass bottle mold. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0015] Figure 2 This is a schematic diagram of the upper mold shearing structure of this utility model;

[0016] Figure 3 This is a schematic diagram of the support plate structure of this utility model;

[0017] Figure 4 This is a schematic diagram of the exploded structure of the two sets of upper molds of this utility model;

[0018] Figure 5 This is a schematic diagram of the No. 2 mounting plate structure of this utility model.

[0019] Figure descriptions: 1. Support plate; 2. Support frame; 3. Mounting plate No. 1; 4. Electric push rod; 5. Through groove; 6. Through hole; 7. Upper mold; 8. Injection port; 9. Liquid storage chamber; 10. Protrusion; 11. Mounting plate No. 2; 12. Threaded rod; 13. Bearing; 14. Sprocket No. 1; 15. Motor; 16. Sprocket No. 2; 17. Connecting chain; 18. Connecting plate; 19. Support column; 20. Bottom mold; 21. Cooling element. Detailed Implementation

[0020] The present invention will now be further described with reference to the accompanying drawings.

[0021] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 Accelerated cooling glass bottle mold;

[0022] The system includes a support plate 1, an upper mold 7, a second mounting plate 11, and a bottom mold 20. The top of the second mounting plate 11 is rotatably equipped with two sets of threaded rods 12. Bearings 13 are provided on the outer side of the threaded rods 12 and are connected to the bottom end of the second mounting plate 11. A first sprocket 14 is provided on the outer side of the threaded rods 12. A motor 15 is provided at the bottom end of the second mounting plate 11. A second sprocket 16 is provided at the output end of the motor 15. A connecting chain 17 is engaged on one side of the second sprocket 16 and is engaged with the first sprocket 14. A connecting plate 18 is threaded through the outer side of the threaded rods 12. A support column 19 is provided at the top of the connecting plate 18 and is connected to the bottom end of the bottom mold 20.

[0023] The second mounting plate 11 can be bolted to the bottom of the support plate 1. Two sets of threaded rods 12 are rotatably mounted on the top of the second mounting plate 11. The threaded rods 12 are connected to the bottom of the support plate 1 via bearings 13 on their outer sides. The threaded rods 12 can rotate at the top of the second mounting plate 11. A connecting chain 17 serves as a connector, meshing with the first sprocket 14 and the second sprocket 16. When the motor 15 at the bottom of the second mounting plate 11 is running, the rotation of the second sprocket 16 drives the connecting chain 17, which in turn drives the first sprocket 14. The sprocket 14 rotates, causing the threaded rod 12 to rotate at the top of the second mounting plate 11. The connecting plate 18 is threadedly connected to the outside of the two sets of threaded rods 12. The rotation of the threaded rod 12 can cause the connecting plate 18 to rise or fall. As the connecting plate 18 rises, the support column 19 can push the bottom mold 20 to fit into the mold hole inside the upper mold 7 from the inside of the through hole 6. By adjusting the height of the mold hole inside the upper mold 7 after the two sets of bottom molds are combined, the shape of the mold hole inside the upper mold 7 can be flexibly adjusted according to the usage requirements, effectively improving the applicability of the glass bottle mold.

[0024] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 Accelerated cooling glass bottle mold;

[0025] Two sets of support frames 2 are provided at the bottom of the support plate 1. Two sets of through grooves 5 are provided through the inside of the support plate 1. Through holes 6 are provided through the inside of the support plate 1. The support column 19 is movably connected through the inside of the through holes 6. Two sets of first mounting plates 3 are provided at the top of the support plate 1. An electric push rod 4 is provided on the inner side of the first mounting plate 3. The electric push rod 4 is connected to one side of the upper mold 7. The top of the support plate 1 is movably provided on the upper mold 7. A protrusion 10 is provided at the bottom of the upper mold 7. The protrusion 10 is movably connected through the inside of the through grooves 5. A liquid injection port 8 is provided at the top of the upper mold 7. A liquid storage cavity 9 is provided inside the upper mold 7. The liquid storage cavity 9 is connected to the inside of the liquid injection port 8. The support column 19 is detachably connected to the bottom of the bottom mold 20. A cooling plate 21 is provided inside the bottom mold 20.

[0026] Support plate 1 is the main support component of the glass bottle mold. Support frame 2 provides a suitable support height for support plate 1. External bolts allow support frame 2 to be positioned in its working position. Mounting plate 3 is fixedly installed at the top of support plate 1. Mounting plate 3 provides an installation position for electric push rod 4. Bolts allow electric push rod 4 to be positioned inside mounting plate 3. The protrusion 10 at the bottom of upper mold 7 moves through the through groove 5 opened in the support plate 1. The through groove 5 limits the linear reciprocating movement of protrusion 10, thereby adjusting the working position of upper mold 7. Through hole 6 provides passage space for the movable passage of support column 19 and bottom mold 20. By combining two sets of upper molds 7, the mold hole inside upper mold 7 can store glass solution. External blow molding equipment can be used to process the glass solution. The glass solution is blow-molded. The refrigerant can be injected into the liquid storage chamber 9 through the injection port 8 at the top of the upper mold 7. The refrigerant in the liquid storage chamber 9 can cool the mold hole on the inside of the upper mold 7. The cooling plate 21 inside the bottom mold 20 is a device that uses the Peltier effect to achieve cooling. The Peltier effect refers to the phenomenon that when a direct current passes through a couple composed of two different conductors or semiconductor materials, the two ends of the couple will absorb heat and release heat respectively, thereby achieving the effect of cooling or heating. The cooling plate 21 is usually composed of multiple pairs of N-type and P-type semiconductor materials alternately, and the cooling process is driven by applying current through an external circuit. The cooling plate 21 can cool the bottom mold 20. The use of the cooling plate 21 and the refrigerant inside the liquid storage chamber 9 can effectively improve the cooling time of the glass bottle mold.

[0027] The electrical equipment mentioned in this application are all common electrical equipment in the prior art. This application will not elaborate on their models or internal structures, and they can also be replaced by other power sources.

[0028] The technical principles of this utility model have been described above with reference to specific embodiments. These descriptions are merely for explaining the principles of this utility model and should not be construed as limiting the scope of protection of this utility model in any way. Based on this explanation, those skilled in the art can readily conceive of other specific embodiments of this utility model without inventive effort, and these embodiments will all fall within the protection scope of the claims of this utility model.

Claims

1. An accelerated cooling glass bottle mold, comprising a support plate (1), an upper mold (7), a second mounting plate (11), and a bottom mold (20), characterized in that: The top of the second mounting plate (11) is rotatably provided with two sets of threaded rods (12). The outer side of the threaded rods (12) is provided with bearings (13), and the bearings (13) are connected to the bottom end of the second mounting plate (11). The outer side of the threaded rods (12) is provided with a first sprocket (14). The bottom end of the second mounting plate (11) is provided with a motor (15). The output end of the motor (15) is provided with a second sprocket (16). A connecting chain (17) is meshed on one side of the second sprocket (16), and the connecting chain (17) is meshed with the first sprocket (14). The outer thread of the threaded rods (12) is threaded through a connecting plate (18). The top of the connecting plate (18) is provided with a support column (19), and the top of the support column (19) is connected to the bottom end of the bottom mold (20).

2. The accelerated cooling glass bottle mold according to claim 1, characterized in that: The bottom end of the support plate (1) is provided with two sets of support frames (2), the inside of the support plate (1) is provided with two sets of through slots (5), the inside of the support plate (1) is provided with through holes (6), and the support column (19) moves through the inside of the through holes (6).

3. The accelerated cooling glass bottle mold according to claim 1, characterized in that: The top of the support plate (1) is provided with two sets of No. 1 mounting plates (3), and the inner side of the No. 1 mounting plate (3) is provided with an electric push rod (4), and the electric push rod (4) is connected to one side of the upper mold (7).

4. The accelerated cooling glass bottle mold according to claim 1, characterized in that: The upper mold (7) is movably provided with the top of the support plate (1), and the bottom of the upper mold (7) is provided with a protrusion (10), which movably penetrates the interior of the through groove (5).

5. The accelerated cooling glass bottle mold according to claim 4, characterized in that: The upper mold (7) is provided with a liquid injection port (8) at its top end. The upper mold (7) is provided with a liquid storage cavity (9) inside, and the liquid storage cavity (9) is connected to the liquid injection port (8).

6. The accelerated cooling glass bottle mold according to claim 1, characterized in that: The support column (19) is detachably connected to the bottom end of the bottom mold (20), and the bottom mold (20) is provided with a cooling plate (21).