Glass bottle mold with high heat dissipation efficiency and heat dissipation method thereof

By designing an automated glass bottle mold and combining it with multiple heat dissipation methods, the problem of low heat dissipation efficiency caused by manual control has been solved, achieving rapid and uniform heat dissipation of molten glass and improving production efficiency.

CN118724436BActive Publication Date: 2026-07-24SHANXI XINCHUANG YONGXING GLASS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHANXI XINCHUANG YONGXING GLASS CO LTD
Filing Date
2024-07-01
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

Existing glass bottle molds require operators to manually control the start and stop of the heat dissipation components, resulting in low heat dissipation efficiency and reduced production efficiency.

Method used

A high-efficiency heat dissipation glass bottle mold was designed, which uses components such as a water tank, spiral heat dissipation tube, serpentine heat dissipation tube, water pump, motor, and servo motor. Automatic control is achieved through touch switch and controller. Combined with various heat dissipation methods such as blowing, water circulation and airflow exchange, the start and stop of the heat dissipation components are automatically adjusted.

Benefits of technology

It achieves automated heat dissipation without human control, improves the heat dissipation efficiency and production efficiency of glass bottle molds, and ensures uniform and rapid heat dissipation on the surface and inside of the molten glass.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses a glass bottle mold with high heat dissipation efficiency and a heat dissipation method thereof, which comprises a water tank, the top of the water tank is fixedly connected with a workbench, the top of the workbench is fixedly connected with a glass bottle mold body, the surface of the glass bottle mold body is fixedly connected with a spiral heat dissipation pipe, the inside of the water tank is fixedly connected with a serpentine heat dissipation pipe, the water outlet of the serpentine heat dissipation pipe is fixedly connected with a water pump, the water outlet of the water pump and the water inlet of the spiral heat dissipation pipe are communicated through a pipeline, the water outlet of the spiral heat dissipation pipe and the water inlet of the serpentine heat dissipation pipe are communicated through a pipeline, and the left side of the glass bottle mold body is provided with a first groove. The application adopts multiple heat dissipation modes, but the start and stop of various heat dissipation modes do not need artificial control, various heat dissipation components can be automatically started and stopped according to the heat of the glass bottle mold body, and the device has the advantages of being convenient to use and high in heat dissipation efficiency.
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Description

Technical Field

[0001] This invention relates to the field of glass bottle technology, specifically to a high-efficiency heat dissipation glass bottle mold and its heat dissipation method. Background Technology

[0002] Glass bottles are widely used in daily life. During the production of glass bottles, molds are required. Operators pour hot molten glass into the mold and then activate the heat dissipation components to cool the glass bottle mold.

[0003] In practical applications, existing glass bottle molds require operators to manually control the start and stop of the heat dissipation components. To improve the heat dissipation speed of the glass bottle molds, various methods are generally used to dissipate heat, resulting in heat dissipation components containing multiple electrical components. The repeated manual start and stop of the heat dissipation components reduces the production efficiency of glass bottles to some extent. At the same time, it takes time for the operator to turn on each electrical component in the heat dissipation component, which reduces its heat dissipation efficiency. Therefore, it is necessary to design and modify glass bottle molds and their heat dissipation methods to achieve high-efficiency heat dissipation and effectively prevent the phenomenon of low heat dissipation efficiency. Summary of the Invention

[0004] To address the problems mentioned in the background section, the present invention aims to provide a high-efficiency heat dissipation glass bottle mold and its heat dissipation method, which has the advantages of being easy to use and having high heat dissipation efficiency. This solves the problem that existing glass bottle molds require manual control of the heat dissipation components during practical applications. Furthermore, to improve the heat dissipation speed of the glass bottle mold, various methods are generally used to dissipate heat, resulting in heat dissipation components comprising multiple electrical components. Repeatedly manually starting and stopping the heat dissipation components reduces the production efficiency of glass bottles to some extent. Additionally, the time required for the operator to turn on each electrical component within the heat dissipation components individually further reduces the heat dissipation efficiency.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a high-efficiency heat dissipation glass bottle mold and its heat dissipation method, comprising a water tank, a workbench fixedly connected to the top of the water tank, a glass bottle mold body fixedly connected to the top of the workbench, a spiral heat dissipation pipe fixedly connected to the surface of the glass bottle mold body, a serpentine heat dissipation pipe fixedly connected to the inside of the water tank, a water pump fixedly connected to the outlet of the serpentine heat dissipation pipe, the outlet of the water pump being connected to the inlet of the spiral heat dissipation pipe via a pipe, the outlet of the spiral heat dissipation pipe being connected to the inlet of the serpentine heat dissipation pipe via a pipe, a first groove being provided on the left side of the glass bottle mold body, the first groove being cylindrical in shape, and a first piston frame being movably connected inside the first groove, and a first touch switch and a second touch switch being fixedly connected to the two sides of the top of the workbench respectively. The first piston frame is movably connected to the first touch switch. A motor is fixedly connected to the top of the workbench. A rotating shaft is fixedly connected to the output end of the motor. A first fan blade is fixedly connected to the surface of the rotating shaft. A fixed block is fixedly connected to the surface of the rotating shaft. A movable groove is provided on the top of the fixed block, and a tension spring is fixedly connected to the bottom of the inner wall of the movable groove. A movable block is fixedly connected to the top of the tension spring. The movable block is movably connected to the movable groove. A sliding resistor is fixedly connected to the top of the workbench via a bracket. A lever is fixedly connected to the left side of the sliding resistor. A support frame is fixedly connected to the top of the sliding resistor. A compression spring is fixedly connected to the surface of the support frame. The compression spring is fixedly connected to the lever. The movable block is movably connected to the lever. An inlet pipe and an outlet pipe are respectively connected to both sides of the water tank. The sliding resistor is electrically connected to the water pump.

[0006] In a preferred embodiment of the present invention, a first bevel gear is fixedly connected to the right side of the rotating shaft, a fixed frame is fixedly connected to the top of the workbench, a second bevel gear is movably connected inside the fixed frame, the first bevel gear meshes with the second bevel gear, a second fan blade is fixedly connected to the top of the second bevel gear, a wind chamber is fixedly connected to the top of the fixed frame, a sleeve is fixedly connected to the top of the workbench, a turntable is movably connected inside the sleeve, a servo motor is fixedly connected to the bottom of the inner wall of the sleeve, and the output end of the servo motor is fixedly connected to the turntable, an electric cylinder is fixedly connected to the top of the turntable, a fixed plate is fixedly connected to the output end of the electric cylinder, and a U-shaped tube is fixedly connected to the bottom of the fixed plate. There are several U-shaped tubes, and the air outlet of the wind chamber and the air inlet of the U-shaped tube are connected by a pipe.

[0007] As a preferred embodiment of the present invention, a controller is fixedly connected to the right side of the water tank, and the controller is connected to the first touch switch, the second touch switch, the motor, the servo motor and the electric cylinder signal respectively.

[0008] In a preferred embodiment of the present invention, the top of the glass bottle mold body is provided with a second groove, the second groove being cylindrical in shape, and a second piston frame is movably connected inside the second groove. A first toothed plate frame is fixedly connected to the surface of the second piston frame. A positioning frame is fixedly connected to the top of the workbench, and a first gear is movably connected inside the positioning frame. Slide grooves are provided on both the front and back of the positioning frame, and a connecting frame is movably connected inside the slide grooves. A second toothed plate frame is fixedly connected to the surface of the connecting frame. The first gear meshes with the first toothed plate frame and the second toothed plate frame respectively. A square water pipe is provided above the workbench, and a baffle is movably connected inside the square water pipe. The baffle is fixedly connected to the second toothed plate frame.

[0009] As a preferred embodiment of the present invention, the top and bottom of the inner wall of the water tank are fixedly connected with guide plates, and the guide plates are made of stainless steel.

[0010] As a preferred embodiment of the present invention, a water-retaining ring is fixedly connected to the top of the workbench, and the water-retaining ring is made of plastic.

[0011] As a preferred embodiment of the present invention, buffer blocks are fixedly connected to all four sides of the bottom of the water tank, and the buffer blocks are made of rubber.

[0012] A high-efficiency heat dissipation glass bottle mold and its heat dissipation method, comprising the following steps:

[0013] S1: When the operator pours the high-temperature molten glass into the glass bottle mold body, the temperature of the glass bottle mold body rises, which causes the gas between the first groove and the first piston frame to expand due to heat. This causes the first piston frame to move to the left, colliding with the first touch switch. The collision switch transmits a signal to the controller, which then controls the motor to rotate. Simultaneously, the controller controls the servo motor to rotate 180 degrees, which in turn drives the electric cylinder, the fixing plate, and the U-shaped tube to rotate 180 degrees. Then, the controller controls the electric cylinder to retract, causing the U-shaped tube to insert into the interior of the glass bottle mold body.

[0014] S2: When the motor rotates, it drives the shaft to rotate, which in turn drives the first fan blade to rotate, thus blowing air to cool the glass bottle mold body. The rotation of the shaft also drives the fixed block to rotate, which in turn drives the movable block to rotate. Under the action of centrifugal force, the movable block's distance from the shaft center increases on the side away from the fixed block, causing the movable block to push the lever upward. This forms a closed circuit with the sliding resistor, water pump, and external power supply. The upward movement of the sliding resistor reduces its resistance, causing the water pump to run. Under the action of the water pump, the coolant in the spiral heat sink and the coolant in the serpentine heat sink circulate and exchange. At the same time, water is constantly entering through the water tank's inlet pipe and constantly exiting through the water tank's outlet pipe. The flowing water in the water tank can circulate and exchange coolant with the serpentine heat sink. The coolant inside the heat dissipation pipes is cooled, and the cooled coolant flows into the spiral heat dissipation pipes, further dissipating heat from the glass bottle mold body. The increased temperature of the glass bottle mold body causes the air between the second piston holder and the second groove to expand, thus moving the second piston holder upwards, which in turn moves the first gear plate holder upwards. This, in turn, moves the second gear plate holder downwards via the first gear, which in turn moves the baffle downwards. This increases the water flow rate through the square water pipes. The outlet of the square water pipes is located above the spiral heat dissipation pipes. Water droplets discharged from the square water pipes fall on the surface of the spiral heat dissipation pipes and the surface of the glass bottle mold body. Some water can evenly contact the glass bottle mold body along the spiral heat dissipation pipes, thus utilizing the water's... Vaporization absorbs heat, thereby dissipating heat from the glass bottle mold body. The above-mentioned heat dissipation method dissipates heat from the surface of the glass bottle mold body, resulting in faster heat dissipation at the contact points between the molten glass and the inner wall of the mold body. However, the heat dissipation rate at the center of the molten glass is slower. The following heat dissipation method dissipates heat from the interior of the molten glass, thus improving the heat dissipation rate. The specific heat dissipation process is as follows: The rotating shaft drives the first bevel gear to rotate, which in turn drives the second bevel gear to rotate, which in turn drives the second fan blade to rotate. The airflow generated by the rotation of the second fan blade is transported through the air chamber and pipes to the air inlet of the U-shaped tube. The U-shaped tube is inserted into the molten glass at this time. When the gas enters the interior of the U-shaped tube, it can... The internal heat of the molten glass inside the glass bottle mold is dissipated. After the heat dissipation is complete, the temperature of the glass bottle mold body decreases, and the first piston frame gradually moves to the right until it is movably connected to the second touch switch. Then, the controller shuts off the motor rotation, and the controller controls the electric cylinder to extend, so that the U-shaped tube moves out of the glass bottle mold body. At the same time, the controller controls the servo motor to rotate 180 degrees, which in turn drives the electric cylinder, the fixing plate and the U-shaped tube to rotate 180 degrees, so that the U-shaped tube returns to its original position. This device uses multiple methods for heat dissipation, but the start and stop of each heat dissipation method does not require manual control. This device can automatically start and stop various heat dissipation components according to the heat of the glass bottle mold body.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0016] 1. This invention employs multiple methods for heat dissipation, but the start and stop of each heat dissipation method does not require manual control. This device can automatically start and stop various heat dissipation components according to the heat of the glass bottle mold body. This device has the advantages of being easy to use and having high heat dissipation efficiency.

[0017] 2. The present invention, through the arrangement of a first bevel gear, a second bevel gear, a fixed frame, a second fan blade, a wind chamber, a sleeve, a servo motor, a turntable, an electric cylinder, a fixed frame, and a U-shaped tube, enables the rotating shaft to drive the first bevel gear to rotate, which in turn drives the second bevel gear to rotate, which in turn drives the second fan blade to rotate. The airflow generated by the rotation of the second fan blade is transported through the wind chamber and pipe to the air inlet of the U-shaped tube. At this time, the U-shaped tube is inserted into the glass liquid. When the gas enters the interior of the U-shaped tube, it can dissipate the internal heat of the glass liquid in the glass bottle mold. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of the present invention;

[0019] Figure 2 This is a schematic diagram of the second fan blade structure of the present invention;

[0020] Figure 3 This is a schematic diagram of the fixed block and movable block structure of the present invention;

[0021] Figure 4 This is a schematic diagram of the first and second toothed plate frames of the present invention;

[0022] Figure 5 This is a schematic diagram of the right side of the U-shaped tube structure of the present invention;

[0023] Figure 6 For the present invention Figure 1 Enlarged schematic diagram of the structure at point A in the middle;

[0024] Figure 7 This is a front sectional view of the sleeve structure of the present invention;

[0025] Figure 8 This is a front sectional view of the square water pipe structure of the present invention.

[0026] In the diagram: 1. Water tank; 2. Workbench; 3. Glass bottle mold body; 4. Spiral heat dissipation pipe; 5. Serpentine heat dissipation pipe; 6. Water pump; 7. Inlet pipe; 8. Outlet pipe; 9. First piston bracket; 10. First touch switch; 11. Second touch switch; 12. Motor; 13. Rotating shaft; 14. First fan blade; 15. Fixed block; 16. Movable block; 17. Sliding resistor; 18. Lever; 19. Support frame; 20. Compression spring; 21. First bevel gear; 22. Second bevel gear. 23. Gear; 24. Fixing frame; 25. Second fan blade; 26. Air chamber; 27. Controller; 28. Sleeve; 29. ​​Turntable; 20. Electric cylinder; 31. Fixing plate; 32. U-shaped tube; 33. Second piston frame; 34. First gear plate frame; 35. Positioning frame; 36. First gear; 37. Second gear plate frame; 38. Connecting frame; 39. Square water pipe; 40. Baffle; 41. Water baffle ring; 42. Guide plate; 43. Buffer block; 44. Servo motor; 45. Cover. Detailed Implementation

[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0028] like Figures 1 to 8As shown, a high-efficiency heat dissipation glass bottle mold and its heat dissipation method include a water tank 1, a workbench 2 fixedly connected to the top of the water tank 1, a glass bottle mold body 3 fixedly connected to the top of the workbench 2, a spiral heat dissipation pipe 4 fixedly connected to the surface of the glass bottle mold body 3, a serpentine heat dissipation pipe 5 fixedly connected to the inside of the water tank 1, a water pump 6 fixedly connected to the outlet of the serpentine heat dissipation pipe 5, the outlet of the water pump 6 and the inlet of the spiral heat dissipation pipe 4 connected by a pipe, the outlet of the spiral heat dissipation pipe 4 and the inlet of the serpentine heat dissipation pipe 5 connected by a pipe, a first groove is provided on the left side of the glass bottle mold body 3, the first groove is cylindrical, and a first piston frame 9 is movably connected inside the first groove, a first touch switch 10 and a second touch switch 11 are fixedly connected to the two sides of the top of the workbench 2 respectively, the first piston frame 9 is movably connected to the first touch switch 10, and the top of the workbench 2... A motor 12 is fixedly connected to the workbench 2. A rotating shaft 13 is fixedly connected to the output end of the motor 12. A first fan blade 14 is fixedly connected to the surface of the rotating shaft 13. A fixed block 15 is fixedly connected to the surface of the rotating shaft 13. A movable groove is provided on the top of the fixed block 15. A tension spring is fixedly connected to the bottom of the inner wall of the movable groove. A movable block 16 is fixedly connected to the top of the tension spring. The movable block 16 is movably connected to the movable groove. A sliding resistor 17 is fixedly connected to the top of the workbench 2 via a bracket. A lever 18 is fixedly connected to the left side of the sliding resistor 17. A support frame 19 is fixedly connected to the top of the sliding resistor 17. A compression spring 20 is fixedly connected to the surface of the support frame 19. The compression spring 20 is fixedly connected to the lever 18. The movable block 16 is movably connected to the lever 18. A water inlet pipe 7 and a water outlet pipe 8 are respectively connected to both sides of the water tank 1. The sliding resistor 17 is electrically connected to the water pump 6. A cover 44 is fixedly connected to the top of the workbench 2.

[0029] refer to Figure 1 , Figure 2 , Figure 5 and Figure 7 A first bevel gear 21 is fixedly connected to the right side of the rotating shaft 13. A fixed frame 23 is fixedly connected to the top of the worktable 2. A second bevel gear 22 is movably connected inside the fixed frame 23. The first bevel gear 21 and the second bevel gear 22 mesh. A second fan blade 24 is fixedly connected to the top of the second bevel gear 22. A wind chamber 25 is fixedly connected to the top of the fixed frame 23. A sleeve 27 is fixedly connected to the top of the worktable 2. A turntable 28 is movably connected inside the sleeve 27. A servo motor 43 is fixedly connected to the bottom of the inner wall of the sleeve 27. The output end of the servo motor 43 is fixedly connected to the turntable 28. An electric cylinder 29 is fixedly connected to the top of the turntable 28. A fixed plate 30 is fixedly connected to the output end of the electric cylinder 29. A U-shaped tube 31 is fixedly connected to the bottom of the fixed plate 30. There are several U-shaped tubes 31. The air outlet of the wind chamber 25 and the air inlet of the U-shaped tube 31 are connected by a pipe.

[0030] As a technical optimization of the present invention, through the arrangement of the first bevel gear 21, the second bevel gear 22, the fixed frame 23, the second fan blade 24, the air chamber 25, the sleeve 27, the servo motor 43, the turntable 28, the electric cylinder 29, the fixed frame 23 and the U-shaped tube 31, the rotating shaft 13 rotates to drive the first bevel gear 21 to rotate, which in turn drives the second bevel gear 22 to rotate, which in turn drives the second fan blade 24 to rotate. The airflow generated by the rotation of the second fan blade 24 is transported to the air inlet of the U-shaped tube 31 through the air chamber 25 and the pipeline. At this time, the U-shaped tube 31 is inserted into the glass liquid. When the gas enters the interior of the U-shaped tube 31, it can dissipate the internal heat of the glass liquid in the glass bottle mold body 3.

[0031] refer to Figure 1 , Figure 5 , Figure 6 and Figure 7 A controller 26 is fixedly connected to the right side of the water tank 1. The controller 26 is connected to the first touch switch 10, the second touch switch 11, the motor 12, the servo motor 43 and the electric cylinder 29 respectively.

[0032] As a technical optimization of the present invention, the start and stop of the motor 12, the servo motor 43 and the electric cylinder 29 can be automatically controlled by the setting of the controller 26.

[0033] refer to Figure 1 , Figure 4 and Figure 8 The top of the glass bottle mold body 3 is provided with a second groove, which is cylindrical in shape. A second piston frame 32 is movably connected inside the second groove. A first toothed plate frame 33 is fixedly connected to the surface of the second piston frame 32. A positioning frame 34 is fixedly connected to the top of the workbench 2. A first gear 35 is movably connected inside the positioning frame 34. Slide grooves are provided on both the front and back of the positioning frame 34. A connecting frame 37 is movably connected inside the slide grooves. A second toothed plate frame 36 is fixedly connected to the surface of the connecting frame 37. The first gear 35 meshes with the first toothed plate frame 33 and the second toothed plate frame 36 respectively. A square water pipe 38 is provided above the workbench 2. A baffle 39 is movably connected inside the square water pipe 38. The baffle 39 is fixedly connected to the second toothed plate frame 36.

[0034] As a technical optimization of the present invention, by setting up the second groove, the second piston frame 32, the first toothed plate frame 33, the positioning frame 34, the first gear 35, the second toothed plate frame 36, the connecting frame 37, the square water pipe 38 and the baffle 39, the temperature of the glass bottle mold body 3 rises, causing the air between the second piston frame 32 and the second groove to expand, thereby driving the second piston frame 32 to move upward, thereby driving the first toothed plate frame 33 to move upward, and then driving the second toothed plate frame 36 to move downward through the first gear 35, thereby driving the baffle 39 to move downward, thereby increasing the water flow of the square water pipe 38. The outlet of the square water pipe 38 is located above the spiral heat dissipation pipe 4. The water droplets discharged from the square water pipe 38 fall on the surface of the spiral heat dissipation pipe 4 and the surface of the glass bottle mold body 3. Some of the water can evenly contact the glass bottle mold body 3 along the spiral heat dissipation pipe 4, thereby utilizing the heat absorption of water vaporization to dissipate heat from the glass bottle mold body 3.

[0035] refer to Figure 1 The top and bottom of the inner wall of the water tank 1 are fixedly connected with guide plates 41, which are made of stainless steel.

[0036] As a technical optimization of the present invention, by setting the guide plate 41, the water entering the water tank 1 through the water inlet pipe 7 is directed towards the serpentine heat dissipation pipe 5 by the action of the guide plate 41, so that the cold water that has just entered the water tank 1 can have better contact with the serpentine heat dissipation pipe 5, thereby dissipating heat from the coolant in the serpentine heat dissipation pipe 5.

[0037] refer to Figure 1 and Figure 6 A water-retaining ring 40 is fixedly connected to the top of the workbench 2. The water-retaining ring 40 is made of plastic.

[0038] As a technical optimization of the present invention, the water-blocking ring 40 can be set to collect and limit the water dripping on the top of the workbench 2. The first touch switch 10 and the second touch switch 11 have waterproof function. The back of the water-blocking ring 40 is connected to a drain hose, through which the water in the water-blocking ring 40 is drained into the collection box.

[0039] refer to Figure 1 Buffer blocks 42 are fixedly connected to all four sides of the bottom of the water tank 1. The buffer blocks 42 are made of rubber.

[0040] As a technical optimization of the present invention, the vibration generated by the device can be buffered by setting the buffer block 42.

[0041] refer to Figure 1 A high-efficiency heat dissipation glass bottle mold and its heat dissipation method, comprising the following steps:

[0042] S1: When the operator pours the high-temperature molten glass into the glass bottle mold body 3, the temperature of the glass bottle mold body 3 rises, which causes the gas between the first groove and the first piston frame 9 to expand due to heat. This causes the first piston frame 9 to move to the left, causing it to collide with the first touch switch 10. The collision switch transmits a signal to the controller 26, which then controls the motor 12 to rotate and simultaneously controls the servo motor 43 to rotate 180 degrees. This, in turn, drives the electric cylinder 29, the fixing plate 30, and the U-shaped tube 31 to rotate 180 degrees. Then, the controller 26 controls the electric cylinder 29 to retract, causing the U-shaped tube 31 to insert into the interior of the glass bottle mold body 3.

[0043] S2: When motor 12 rotates, it drives shaft 13 to rotate. The rotation of shaft 13 drives the first fan blade 14 to rotate, thereby blowing air to cool the glass bottle mold body 3. The rotation of shaft 13 drives fixed block 15 to rotate, which in turn drives movable block 16 to rotate. Under the action of centrifugal force, the distance between the side of movable block 16 away from fixed block 15 and the axis of shaft 13 increases, causing movable block 16 to push lever 18 upward. Sliding resistor 17, water pump 6 and external power supply form a closed circuit. The upward movement of sliding resistor 17 reduces the resistance of sliding resistor 17, causing water pump 6 to run. Under the action of water pump 6, the coolant in spiral heat pipe 4 and serpentine heat pipe 5 circulate and exchange coolant. At the same time, water inlet pipe 7 of water tank 1 is always inlet and outlet. Water flows continuously from pipe 8. The water flowing in water tank 1 cools the coolant in serpentine heat dissipation pipe 5. The cooled coolant flows into spiral heat dissipation pipe 4, further dissipating heat from the glass bottle mold body 3. The increased temperature of the glass bottle mold body 3 causes the air between the second piston holder 32 and the second groove to expand, which in turn moves the second piston holder 32 upward, which in turn moves the first toothed plate holder 33 upward. This, in turn, moves the second toothed plate holder 36 downward via the first gear 35, which in turn moves the baffle 39 downward. This increases the flow rate of water from square water pipe 38. The outlet of square water pipe 38 is located above spiral heat dissipation pipe 4. Water droplets discharged from square water pipe 38 fall on the surface of spiral heat dissipation pipe 4 and the surface of glass bottle mold body 3. Some of the water can flow along the spiral heat dissipation pipe. The tube 4 makes uniform contact with the glass bottle mold body 3, thereby utilizing the heat absorption of water vaporization to dissipate heat from the glass bottle mold body 3. This heat dissipation method dissipates heat from the surface of the glass bottle mold body 3, resulting in faster heat dissipation at the part of the molten glass in contact with the inner wall of the glass bottle mold body 3. However, the heat dissipation rate at the center of the molten glass is slower. The following heat dissipation method dissipates heat from the interior of the molten glass, thereby increasing the heat dissipation rate. Specifically, the rotating shaft 13 rotates, driving the first bevel gear 21 to rotate, which in turn drives the second bevel gear 22 to rotate, which in turn drives the second fan blade 24 to rotate. The airflow generated by the rotation of the second fan blade 24 is transported through the air chamber 25 and the pipe to the air inlet of the U-shaped tube 31. The U-shaped tube 31 is then inserted... When the gas enters the U-shaped tube 31, it dissipates the internal heat of the molten glass inside the glass bottle mold body 3. After heat dissipation, the temperature of the glass bottle mold body 3 decreases, and the first piston holder 9 gradually moves to the right until it is movably connected to the second touch switch 11. This causes the controller 26 to shut off the rotation of the motor 12. Then, the controller 26 controls the electric cylinder 29 to extend, causing the U-shaped tube 31 to move out of the glass bottle mold body 3. At the same time, the controller controls the servo motor 43 to rotate 180 degrees, which in turn drives the electric cylinder 29, the fixing plate 30, and the U-shaped tube 31 to rotate 180 degrees, causing the U-shaped tube 31 to reset. This device uses multiple methods for heat dissipation, but the start and stop of each heat dissipation method does not require manual control.This device can automatically activate and deactivate various heat dissipation components based on the heat generated by the glass bottle mold body 3.

[0044] The working principle and usage process of this invention are as follows: When the operator pours high-temperature molten glass into the glass bottle mold body 3, the temperature of the glass bottle mold body 3 rises, which causes the gas between the first groove and the first piston frame 9 to expand due to heat. This causes the first piston frame 9 to move to the left, colliding with the first touch switch 10. The collision switch transmits a signal to the controller 26, which then controls the motor 12 to rotate and simultaneously controls the servo motor 43 to rotate 180 degrees. This, in turn, drives the electric cylinder 29, the fixing plate 30, and the U-shaped tube 31 to rotate 180 degrees. Then, the controller 26 controls the electric cylinder 29 to retract, causing the U-shaped tube 31 to insert into the interior of the glass bottle mold body 3.

[0045] When the motor 12 rotates, it will drive the rotating shaft 13 to rotate. The rotation of the rotating shaft 13 will drive the first fan blade 14 to rotate, thereby blowing air to cool the glass bottle mold body 3.

[0046] The rotation of the rotating shaft 13 drives the fixed block 15 to rotate, which in turn drives the movable block 16 to rotate. Under the action of centrifugal force, the movable block 16 is further away from the axis of the rotating shaft 13, causing the movable block 16 to push the lever 18 upward. The sliding resistor 17, the water pump 6 and the external power supply form a closed circuit. The upward movement of the sliding resistor 17 reduces the resistance of the sliding resistor 17, causing the water pump 6 to run. Under the action of the water pump 6, the coolant in the spiral heat dissipation pipe 4 and the coolant in the serpentine heat dissipation pipe 5 circulate and exchange. At the same time, the water inlet pipe 7 of the water tank 1 always receives water and the water outlet pipe 8 always discharges water. The water flowing in the water tank 1 can cool the coolant in the serpentine heat dissipation pipe 5. The cooled coolant flows into the spiral heat dissipation pipe 4, thereby dissipating heat from the glass bottle mold body 3.

[0047] The temperature rise of the glass bottle mold body 3 will cause the air between the second piston frame 32 and the second groove to expand, thereby causing the second piston frame 32 to move upward, which in turn causes the first toothed plate frame 33 to move upward, which in turn causes the second toothed plate frame 36 to move downward through the first gear 35, which in turn causes the baffle 39 to move downward, thereby increasing the flow rate of the square water pipe 38. The outlet of the square water pipe 38 is located above the spiral heat dissipation pipe 4. The water droplets discharged from the square water pipe 38 fall on the surface of the spiral heat dissipation pipe 4 and the surface of the glass bottle mold body 3. Some of the water can evenly contact the glass bottle mold body 3 along the spiral heat dissipation pipe 4, thereby using the heat absorption of water vaporization to dissipate heat from the glass bottle mold body 3.

[0048] The above-mentioned heat dissipation method dissipates heat from the surface of the glass bottle mold body 3, resulting in faster heat dissipation at the part of the molten glass in contact with the inner wall of the glass bottle mold body 3. However, the heat dissipation rate at the center of the molten glass is slower. The following heat dissipation method dissipates heat from the interior of the molten glass, thereby improving the heat dissipation rate of the molten glass. The specific heat dissipation process is as follows:

[0049] The rotation of the shaft 13 drives the first bevel gear 21 to rotate, which in turn drives the second bevel gear 22 to rotate, which in turn drives the second fan blade 24 to rotate. The airflow generated by the rotation of the second fan blade 24 is transported through the air chamber 25 and the pipe to the air inlet of the U-shaped tube 31. At this time, the U-shaped tube 31 is inserted into the glass liquid. When the gas enters the U-shaped tube 31, it can dissipate the internal heat of the glass liquid in the glass bottle mold body 3.

[0050] After heat dissipation is complete, the temperature of the glass bottle mold body 3 decreases, and the first piston frame 9 gradually moves to the right until it is movably connected to the second touch switch 11. Then, the controller 26 shuts off the rotation of the motor 12. The controller 26 then controls the electric cylinder 29 to extend, so that the U-shaped tube 31 moves out of the interior of the glass bottle mold body 3. At the same time, the controller controls the servo motor 43 to rotate 180 degrees, which in turn drives the electric cylinder 29, the fixing plate 30 and the U-shaped tube 31 to rotate 180 degrees, so that the U-shaped tube 31 returns to its original position. This device uses multiple methods for heat dissipation, but the start and stop of each heat dissipation method does not require manual control. This device can automatically start and stop various heat dissipation components according to the heat of the glass bottle mold body 3.

[0051] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0052] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A high-efficiency heat dissipation glass bottle mold, comprising a water tank (1), characterized in that: A workbench (2) is fixedly connected to the top of the water tank (1). A glass bottle mold body (3) is fixedly connected to the top of the workbench (2). A spiral heat dissipation pipe (4) is fixedly connected to the surface of the glass bottle mold body (3). A serpentine heat dissipation pipe (5) is fixedly connected inside the water tank (1). A water pump (6) is fixedly connected to the outlet of the serpentine heat dissipation pipe (5). The outlet of the water pump (6) is connected to the inlet of the spiral heat dissipation pipe (4) through a pipe. The outlet of the spiral heat dissipation pipe (4) is connected to the inlet of the serpentine heat dissipation pipe (5) through a pipe. A first groove is provided on the left side of the glass bottle mold body (3). The first groove is cylindrical in shape. A first piston frame (9) is movably connected inside the first groove. A first touch switch (10) and a second touch switch (11) are fixedly connected to the two sides of the top of the workbench (2). The first piston frame (9) is movably connected to the first touch switch (10). A motor (12) is fixedly connected to the top of the workbench (2). The output end of the motor (12) is fixedly connected to a rotating shaft (13), a first fan blade (14) is fixedly connected to the surface of the rotating shaft (13), a fixed block (15) is fixedly connected to the surface of the rotating shaft (13), a movable groove is provided on the top of the fixed block (15), and a tension spring is fixedly connected to the bottom of the inner wall of the movable groove. A movable block (16) is fixedly connected to the top of the tension spring, and the movable block (16) is movably connected to the movable groove. A sliding resistor is fixedly connected to the top of the workbench (2) through a bracket. (17) A lever (18) is fixedly connected to the left side of the sliding resistor (17), a support frame (19) is fixedly connected to the top of the sliding resistor (17), a compression spring (20) is fixedly connected to the surface of the support frame (19), the compression spring (20) is fixedly connected to the lever (18), the movable block (16) is movably connected to the lever (18), the water tank (1) is connected to the inlet pipe (7) and the outlet pipe (8) on both sides respectively, and the sliding resistor (17) is electrically connected to the water pump (6).

2. The glass bottle mold for high-efficiency heat dissipation according to claim 1, characterized in that: A first bevel gear (21) is fixedly connected to the right side of the rotating shaft (13). A fixed frame (23) is fixedly connected to the top of the workbench (2). A second bevel gear (22) is movably connected inside the fixed frame (23). The first bevel gear (21) meshes with the second bevel gear (22). A second fan blade (24) is fixedly connected to the top of the second bevel gear (22). A wind chamber (25) is fixedly connected to the top of the fixed frame (23). A sleeve (27) is fixedly connected to the top of the workbench (2). The sleeve (27) is movably connected inside. A turntable (28) is connected to the sleeve (27). A servo motor (43) is fixedly connected to the bottom of the inner wall of the sleeve (27), and the output end of the servo motor (43) is fixedly connected to the turntable (28). An electric cylinder (29) is fixedly connected to the top of the turntable (28). A fixed plate (30) is fixedly connected to the output end of the electric cylinder (29). A U-shaped tube (31) is fixedly connected to the bottom of the fixed plate (30). There are several U-shaped tubes (31). The air outlet of the air chamber (25) and the air inlet of the U-shaped tube (31) are connected by a pipe.

3. The glass bottle mold for high-efficiency heat dissipation according to claim 2, characterized in that: A controller (26) is fixedly connected to the right side of the water tank (1). The controller (26) is connected to the first touch switch (10), the second touch switch (11), the motor (12), the servo motor (43), and the electric cylinder (29) respectively.

4. The high-efficiency heat dissipation glass bottle mold according to claim 3, characterized in that: The top of the glass bottle mold body (3) is provided with a second groove, which is cylindrical in shape. A second piston frame (32) is movably connected inside the second groove. A first toothed plate frame (33) is fixedly connected to the surface of the second piston frame (32). A positioning frame (34) is fixedly connected to the top of the workbench (2). A first gear (35) is movably connected inside the positioning frame (34). Slide grooves are provided on both the front and back of the positioning frame (34). A connecting frame (37) is movably connected inside the slide grooves. A second toothed plate frame (36) is fixedly connected to the surface of the connecting frame (37). The first gear (35) meshes with the first toothed plate frame (33) and the second toothed plate frame (36) respectively. A square water pipe (38) is provided above the workbench (2). A baffle (39) is movably connected inside the square water pipe (38). The baffle (39) is fixedly connected to the second toothed plate frame (36).

5. The glass bottle mold for high-efficiency heat dissipation according to claim 1, characterized in that: The top and bottom of the inner wall of the water tank (1) are fixedly connected with guide plates (41), which are made of stainless steel.

6. The glass bottle mold for high-efficiency heat dissipation according to claim 1, characterized in that: A water-blocking ring (40) is fixedly connected to the top of the workbench (2), and the water-blocking ring (40) is made of plastic.

7. The glass bottle mold for high-efficiency heat dissipation according to claim 1, characterized in that: The bottom of the water tank (1) is fixedly connected with buffer blocks (42) around its perimeter. The buffer blocks (42) are made of rubber.

8. The heat dissipation method for a high-efficiency heat dissipation glass bottle mold according to claim 4, characterized in that: Includes the following steps: S1: When the operator pours the high-temperature molten glass into the glass bottle mold body (3), the temperature of the glass bottle mold body (3) rises, which causes the gas between the first groove and the first piston frame (9) to expand due to heat, which causes the first piston frame (9) to move to the left, causing the first piston frame (9) to collide with the first touch switch (10). The collision switch transmits a signal to the controller (26), which then controls the motor (12) to rotate and controls the servo motor (43) to rotate 180 degrees, which in turn drives the electric cylinder (29), the fixing plate (30) and the U-shaped tube (31) to rotate 180 degrees. Then the controller (26) controls the electric cylinder (29) to retract, which causes the U-shaped tube (31) to insert into the interior of the glass bottle mold body (3). S2: When the motor (12) rotates, it drives the rotating shaft (13) to rotate. The rotation of the rotating shaft (13) drives the first fan blade (14) to rotate, thereby blowing air to cool the glass bottle mold body (3). The rotation of the rotating shaft (13) drives the fixed block (15) to rotate, thereby driving the movable block (16) to rotate. Under the action of centrifugal force, the distance between the movable block (16) and the axis of the rotating shaft (13) increases on the side of the movable block (16) away from the fixed block (15), causing the movable block (16) to push the lever (18) to move upward. The sliding resistor (17), the water pump (6) and the external power supply form a closed circuit. The upward movement of the sliding resistor (17) reduces the resistance of the sliding resistor (17), causing the water pump (6) to run. Under the action of the water pump (6), the spiral heat dissipation pipe (4) The coolant inside the tank circulates and exchanges with the coolant in the serpentine heat pipe (5). At the same time, water is always entering through the inlet pipe (7) of the water tank (1) and always exiting through the outlet pipe (8). The water flowing in the water tank (1) cools the coolant in the serpentine heat pipe (5). The cooled coolant flows into the spiral heat pipe (4) and then dissipates heat from the glass bottle mold body (3). The temperature rise of the glass bottle mold body (3) will cause the air between the second piston holder (32) and the second groove to expand, thereby causing the second piston holder (32) to move upward, which in turn causes the first toothed plate holder (33) to move upward, which in turn causes the second toothed plate holder (36) to move downward through the first gear (35), which in turn causes the baffle (39) to move downward, thereby increasing the flow rate of the square water pipe (38). The outlet of the square water pipe (38) is located above the spiral heat dissipation pipe (4). The water droplets discharged from the square water pipe (38) fall on the surface of the spiral heat dissipation pipe (4) and the surface of the glass bottle mold body (3). Some water comes into contact with the glass bottle mold body (3) evenly along the spiral heat dissipation pipe (4), and then uses the heat absorption of water vaporization to dissipate heat on the surface of the glass bottle mold body (3). The part of the glass liquid in contact with the inner wall of the glass bottle mold body (3) dissipates heat faster, but the heat dissipation speed at the center of the glass liquid is slower. The following heat dissipation method dissipates heat from the inside of the glass liquid, thereby improving the heat dissipation speed of the glass liquid. The specific heat dissipation process is as follows: the rotating shaft (13) rotates to drive the first bevel gear (21) to rotate, which in turn drives the second bevel gear (22) to rotate. The rotation of the first piston rod (24) drives the second fan blade (24) to rotate. The airflow generated by the rotation of the second fan blade (24) is transported through the air chamber (25) and the pipe to the air inlet of the U-shaped tube (31). At this time, the U-shaped tube (31) is inserted into the glass liquid. When the gas enters the U-shaped tube (31), it dissipates the internal heat of the glass liquid in the glass bottle mold body (3). After the heat dissipation is completed, the temperature of the glass bottle mold body (3) decreases, and the first piston rod (9) gradually moves to the right until the first piston rod (9) is connected to the second touch switch (11). Then, the controller (26) shuts off the rotation of the motor (12). Then, the controller (26) controls the electric cylinder (29) to extend, so that the U-shaped tube (31) moves out of the glass bottle mold body (3).Simultaneously, the servo motor (43) is controlled to rotate 180 degrees, which in turn drives the electric cylinder (29), the fixing plate (30), and the U-shaped tube (31) to rotate 180 degrees, thereby resetting the U-shaped tube (31).