Multi-stage cooling device for glass ceramic production
By adopting a double-sided fan assembly and transmission belt design in a multi-stage cooling device, combined with an electromagnetic adsorption device and a flip assembly, the problem of unbalanced cooling on both sides of the microcrystalline glass is solved, achieving a more efficient cooling effect.
Patent Information
- Application Number
- CN202422414204.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-10-08
AI Technical Summary
When existing multi-stage cooling devices cool glass-ceramics, the temperature reduction on both sides of the glass-ceramics is unbalanced, affecting the cooling quality and efficiency.
The double-sided fan assembly and transmission belt design, combined with the electromagnetic adsorption device and flip assembly, ensure that both sides of the microcrystalline glass are cooled evenly, and the fan and motor are controlled by the control panel to achieve flipping.
The balance of cooling on both sides of the glass-ceramic is achieved, which improves the cooling quality and efficiency.
Smart Images

Figure CN223409535U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cooling devices, in particular to a multi-stage cooling device for producing microcrystalline glass. Background Art
[0002] Glass-ceramic is a material produced through a specialized production process that combines the advantages of glass and ceramic, boasting high strength, high hardness, and thermal shock resistance. Cooling is a critical step in the production process, directly impacting product quality. Multi-stage cooling devices are designed to optimize this cooling process.
[0003] The use of a multi-stage cooling device includes multiple steps, such as conveying and cooling. Existing multi-stage cooling devices often use a transmission belt to transmit micro-ceramics. When the micro-ceramics on the transmission belt are cooled by air, the bottom of the micro-ceramics contacting the transmission belt cannot be well exposed to the airflow, resulting in uneven cooling on both sides of the micro-ceramics, affecting the cooling quality. Existing multi-stage cooling devices are not convenient for fully cooling both sides of the micro-ceramics when cooling the micro-ceramics, which affects the cooling efficiency. Therefore, a multi-stage cooling device for micro-ceramics production is proposed. Utility Model Content
[0004] The main purpose of the utility model is to provide a multi-stage cooling device for the production of microcrystalline glass, which solves the problem that the existing multi-stage cooling device often uses a transmission belt to transmit the microcrystalline glass. When the microcrystalline glass on the transmission belt is air-cooled, the bottom of the microcrystalline glass that contacts the transmission belt cannot be well contacted with the airflow, resulting in unbalanced cooling of the two sides of the microcrystalline glass, affecting the cooling quality. The existing multi-stage cooling device is not convenient for fully cooling both sides of the microcrystalline glass when cooling the microcrystalline glass, which affects the cooling efficiency.
[0005] In order to achieve the above purpose, the technical solution adopted by the utility model is:
[0006] A multi-stage cooling device for producing microcrystalline glass includes a second equipment box, wherein two cooling fan assemblies are equidistantly fixedly connected to the interior of the second equipment box, and the two cooling fan assemblies have the same structure and are symmetrically positioned. A partition is fixedly connected between the two groups of cooling fan assemblies inside the second equipment box, and the cooling fan assembly includes a bellows, both ends of the bellows are fixedly connected to the inner wall of the second equipment box, and mounting grooves are provided on both sides of the second equipment box at corresponding positions of the bellows, and second filter plates are fixedly connected in both mounting grooves, a fan is fixedly installed inside the bellows, and a third filter plate is fixedly connected above the bellows.
[0007] Furthermore, a second motor is fixedly connected to the interior of the second equipment box, a transmission roller is fixedly connected to one output end of the second motor, and a transmission belt is wound around the outer side of the transmission roller.
[0008] Furthermore, a first rotating shaft is wrapped around the interior of the transmission belt, and the first rotating shaft is fixedly connected to the inner wall of the second equipment box. A second rotating shaft is wrapped around the interior of the transmission belt, and the second rotating shaft is fixedly connected to the inner wall of the second equipment box. A third rotating shaft is wrapped around the interior of the transmission belt, and the third rotating shaft is fixedly connected to the inner wall of the second equipment box. A fourth rotating shaft is wrapped around the interior of the transmission belt, and the fourth rotating shaft is fixedly connected to the inner wall of the second equipment box.
[0009] Furthermore, a connecting slot is provided on the top of the second equipment box, a first equipment box is fixedly connected to the top of the second equipment box, a feed slot is provided on one side of the first equipment box, a first soft curtain door is fixedly connected to the position of the feed slot of the first equipment box, a discharge slot is provided on the other side of the first equipment box, a third soft curtain door is fixedly connected to the position of the discharge slot of the first equipment box, and a second soft curtain door is fixedly connected to the middle of the interior of the first equipment box.
[0010] Furthermore, the interior of the first equipment box is provided with flipping assemblies on both sides of the second soft curtain door, and the two flipping assemblies have the same structure and are symmetrically positioned. The flipping assembly includes a first motor, one side of the second soft curtain door is fixedly connected to the inner wall of the first equipment box, one side output end of the first motor is fixedly connected to a flap, and the side of the flap is fixedly connected to an electromagnetic adsorption device.
[0011] Furthermore, both sides of the upper portion of the first equipment box are fixedly connected with air outlets at equal distances, and the upper portions of the two air outlets are fixedly connected with first filter plates.
[0012] Furthermore, a control panel is fixedly connected to one side of the first equipment box, and the control panel is electrically connected to the second motor, two fans, two first motors and two electromagnetic adsorption devices.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] 1. The utility model provides a transmission belt, which facilitates more balanced cooling of both sides of the microcrystalline glass and improves the cooling quality. The fan is started through the control panel, and the fan draws air from the outside into the bellows through the second filter plate, and then generates an air flow that blows upward from the third filter plate. The air flow passes through the air holes on the transmission belt to cool the microcrystalline glass plate on the transmission belt. Through such a setting, it is convenient to make the cooling of both sides of the microcrystalline glass more balanced and improve the cooling quality.
[0015] 2. The utility model provides an electromagnetic adsorption device, which facilitates the flipping of the microcrystalline glass and improves the cooling efficiency. The electromagnetic adsorption device is started through the control panel, and the electromagnetic adsorption device magnetically adsorbs the microcrystalline glass to the surface of the electromagnetic adsorption device. The first motor is started through the control panel, and the first motor drives the flip plate to flip a certain angle. At this time, the electromagnetic adsorption device is turned off, and the microcrystalline glass slides from the electromagnetic adsorption device to the transmission belt due to gravity to achieve flipping. Through such a setting, the flipping of the microcrystalline glass is facilitated and the cooling efficiency is improved.
[0016] The parts not involved in the device are the same as those in the prior art or can be implemented by using the prior art. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the overall structure from the first angle of a multi-stage cooling device for producing microcrystalline glass according to the utility model.
[0018] Figure 2 This is a schematic diagram of the overall structure of a multi-stage cooling device for producing microcrystalline glass from a second angle of the present invention.
[0019] Figure 3 This is a partial structural schematic diagram of a multi-stage cooling device for producing microcrystalline glass according to the present invention, in a state where the flap is not flipped.
[0020] Figure 4 This is a partial structural schematic diagram of a bellows of a multi-stage cooling device for producing microcrystalline glass according to the present invention.
[0021] Figure 5 This is an enlarged schematic diagram of the partial structure of a fan of a multi-stage cooling device for producing microcrystalline glass according to the present invention.
[0022] Figure 6 This is an enlarged schematic diagram of a partial structure of a multi-stage cooling device for producing microcrystalline glass according to the present invention after the flap is flipped.
[0023] In the figure: 1. First equipment box; 2. Control panel; 3. First soft curtain door; 4. Second soft curtain door; 5. Third soft curtain door; 6. First motor; 7. Flip plate; 8. Electromagnetic adsorption device; 9. First filter plate; 10. Second equipment box; 11. Connecting groove; 12. Transmission belt; 13. First rotating shaft; 14. Second rotating shaft; 15. Third rotating shaft; 16. Fourth rotating shaft; 17. Second motor; 18. Transmission roller; 19. Second filter plate; 20. Bellows; 21. Third filter plate; 22. Fan; 23. Partition. DETAILED DESCRIPTION
[0024] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0025] like Figure 1-Figure 5 As shown, a multi-stage cooling device for producing microcrystalline glass is shown, comprising a second equipment box 10, wherein two cooling fan assemblies are equidistantly fixedly connected to the interior of the second equipment box 10, and the two cooling fan assemblies have the same structure and are symmetrically positioned. A partition 23 is fixedly connected between the two groups of cooling fan assemblies in the interior of the second equipment box 10, and the cooling fan assembly comprises a bellows 20, both ends of the bellows 20 are fixedly connected to the inner wall of the second equipment box 10, and mounting grooves are opened at corresponding positions of the bellows 20 on both sides of the second equipment box 10, and second filter plates 19 are fixedly connected in the two mounting grooves, and a fan 22 is fixedly installed inside the bellows 20, and a third filter plate 21 is fixedly connected above the bellows 20. By adopting the above technical solution, when in use, the two fans 22 can be controlled by the control panel 2, and the two fans 22 work at different powers to generate airflows of different intensities, ensuring that the microcrystalline glass can obtain an ideal cooling effect at different cooling stages, thereby realizing multi-stage cooling of the microcrystalline glass;
[0026] The partition 23 can isolate the airflows generated by the two fans 22 to a certain extent, preventing the two airflows from interfering with each other and affecting the multi-stage cooling effect.
[0027] like Figure 1-Figure 5 As shown, the interior of the second equipment box 10 is fixedly connected to a second motor 17, and one output end of the second motor 17 is fixedly connected to a transmission roller 18. The outer side of the transmission roller 18 is wrapped with a transmission belt 12. By adopting the above technical solution, the transmission roller 18 can drive the transmission belt 12 to move;
[0028] There are several air holes at equal intervals on the transmission belt 12, so that air can pass through the air holes to cool the microcrystalline glass. There are several tiny protrusions arranged at equal intervals on the surface of the transmission belt 12, which can further reduce the contact area between the microcrystalline glass and the surface of the transmission belt 12, so that the microcrystalline glass can be cooled better.
[0029] like Figure 1-Figure 5As shown, a first rotating shaft 13 is wrapped around the interior of the transmission belt 12, and the first rotating shaft 13 is fixedly connected to the inner wall of the second equipment box 10; a second rotating shaft 14 is wrapped around the interior of the transmission belt 12, and the second rotating shaft 14 is fixedly connected to the inner wall of the second equipment box 10; a third rotating shaft 15 is wrapped around the interior of the transmission belt 12, and the third rotating shaft 15 is fixedly connected to the inner wall of the second equipment box 10; a fourth rotating shaft 16 is wrapped around the interior of the transmission belt 12, and the fourth rotating shaft 16 is fixedly connected to the inner wall of the second equipment box 10. Through such an arrangement, the first rotating shaft 13, the second rotating shaft 14, the third rotating shaft 15 and the fourth rotating shaft 16 can guide the transmission belt 12 so that the transmission belt 12 moves in the required direction and position.
[0030] like Figures 1-4 As shown, a connecting groove 11 is provided on the top of the second equipment box 10, and the first equipment box 1 is fixedly connected to the top of the second equipment box 10. A feed trough is provided on one side of the first equipment box 1, and the first soft curtain door 3 is fixedly connected to the first equipment box 1 at the position of the feed trough. A discharge trough is provided on the other side of the first equipment box 1, and the third soft curtain door 5 is fixedly connected to the first equipment box 1 at the position of the discharge trough. The second soft curtain door 4 is fixedly connected to the middle of the first equipment box 1. Through such an arrangement, the top of the transmission belt 12 moves in the connecting groove 11, and the direction position of the connecting groove 11 corresponds to the feed trough and the discharge trough. The microcrystalline glass placed on the transmission belt 12 can pass through the feed trough and the storage trough.
[0031] The first soft curtain door 3 , the second soft curtain door 4 and the third soft curtain door 5 are all made of flexible materials with a certain strength, which can be sealed to isolate the airflow to prevent the cooling of the microcrystalline glass from being affected, and will not interfere with the movement of the microcrystalline glass on the transmission belt 12 .
[0032] like Figure 1-Figure 3 、 Figure 6 As shown, the interior of the first equipment box 1 is equipped with flip assemblies on both sides of the second soft curtain door 4, and the two flip assemblies have the same structure and are symmetrically positioned. The flip assemblies include a first motor 6. One side of the second soft curtain door 4 is fixedly connected to the inner wall of the first equipment box 1. One output end of the first motor 6 is fixedly connected to a flap 7. The side of the flap 7 is fixedly connected to an electromagnetic adsorption device 8. Through this arrangement, a sensor is installed on the flap 7, which can sense the approach of the micro-ceramic glass and automatically activate the electromagnetic adsorption device 8 for adsorption;
[0033] When used as a touch screen, sensor, photovoltaic panel or other equipment, it is necessary to add additives containing specific magnetic materials or conductive materials to the glass-ceramics to make the glass-ceramics conductive. The conductive glass-ceramics can be magnetically attracted by the electromagnetic adsorption device 8.
[0034] A buffer mechanism is installed on the surface of the electromagnetic adsorption device 8 to prevent the micro-ceramic glass from being damaged when it is magnetically attracted to the surface of the electromagnetic adsorption device 8.
[0035] like Figure 1-Figure 3 、 Figure 6 As shown, air outlets are fixedly connected at equal distances on both sides above the first equipment box 1, and first filter plates 9 are fixedly connected above the two air outlets. Through such an arrangement, the two air outlets are arranged on both sides of the second soft curtain door 4, and can discharge airflows of different intensities generated by the two fans 22.
[0036] like Figures 1-6 As shown, a control panel 2 is fixedly connected to one side of the first equipment box 1, and the control panel 2 is electrically connected to the second motor 17, two fans 22, two first motors 6 and two electromagnetic adsorption devices 8. Through such a setting, the control panel 2 can control the second motor 17, two fans 22, two first motors 6 and two electromagnetic adsorption devices 8.
[0037] It should be noted that when in use, the second equipment box 10 is placed on a horizontal plane, the external power supply is connected through the control panel 2, the microcrystalline glass is placed on the transmission belt 12 near the side of the feed trough, and the second motor 17 is started through the control panel 2. The second motor 17 drives the transmission belt 12 to move through the transmission roller 18. The transmission belt 12 is guided by the first rotating shaft 13, the second rotating shaft 14, the third rotating shaft 15 and the fourth rotating shaft 16 and drives the microcrystalline glass to move. The microcrystalline glass enters the interior of the first equipment box 1 through the first soft curtain door 3. The two fans 22 are started through the control panel 2 to work at different rates. The fan 22 draws air from the outside through the second filter plate 19 into the bellows 20, and then generates an airflow blowing upward from the third filter plate 21. The airflow passes through the vents on the transmission belt 12 to cool the microcrystalline glass plate on the transmission belt 12. The airflow entering the first equipment box 1 is discharged through the first filter plate 9, and the cooled microcrystalline glass leaves after passing through the third soft curtain door 5.
[0038] When the microcrystalline glass needs to be flipped, the electromagnetic adsorption device 8 is started through the control panel 2. The electromagnetic adsorption device 8 magnetically adsorbs the microcrystalline glass to the surface of the electromagnetic adsorption device 8. The first motor 6 is started through the control panel 2. The first motor 6 drives the flip plate 7 to flip a certain angle. At this time, the electromagnetic adsorption device 8 is turned off. The microcrystalline glass slides from the electromagnetic adsorption device 8 to the transmission belt 12 due to gravity to achieve flipping. After the flipping is completed, the flip plate 7 is reset through the control panel 2.
[0039] The utility model provides a multi-stage cooling device for the production of microcrystalline glass, which solves the problem that the existing multi-stage cooling device often uses a transmission belt 12 to transmit the microcrystalline glass. When the microcrystalline glass on the transmission belt 12 is air-cooled, the bottom of the microcrystalline glass that contacts the transmission belt 12 cannot be well contacted with the airflow, resulting in unbalanced cooling of the two sides of the microcrystalline glass, affecting the cooling quality. The existing multi-stage cooling device is inconvenient to fully cool both sides of the microcrystalline glass when cooling the microcrystalline glass, which affects the cooling efficiency. The utility model is more practical.
[0040] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements are intended to fall within the scope of the present invention. The scope of protection claimed in this invention is defined by the appended claims and their equivalents.
Claims
1. A multi-stage cooling device for producing microcrystalline glass, comprising a second equipment box (10), characterized in that: Two cooling fan assemblies are fixedly connected at equal distances inside the second equipment box (10), and the two cooling fan assemblies have the same structure and are symmetrically positioned. A partition (23) is fixedly connected between the two groups of cooling fan assemblies inside the second equipment box (10), and the cooling fan assembly includes a bellows (20), both ends of which are fixedly connected to the inner wall of the second equipment box (10). Both sides of the second equipment box (10) are provided with mounting grooves at corresponding positions of the bellows (20), and second filter plates (19) are fixedly connected in the two mounting grooves. A fan (22) is fixedly installed inside the bellows (20), and a third filter plate (21) is fixedly connected above the bellows (20).
2. The multi-stage cooling device for producing glass-ceramics according to claim 1, characterized in that: A second motor (17) is fixedly connected to the interior of the second equipment box (10), a transmission roller (18) is fixedly connected to one output end of the second motor (17), and a transmission belt (12) is wound around the outside of the transmission roller (18).
3. The multi-stage cooling device for producing glass-ceramics according to claim 2, characterized in that: A first rotating shaft (13) is wound around the interior of the transmission belt (12), and the first rotating shaft (13) is fixedly connected to the inner wall of the second equipment box (10). A second rotating shaft (14) is wound around the interior of the transmission belt (12), and the second rotating shaft (14) is fixedly connected to the inner wall of the second equipment box (10). A third rotating shaft (15) is wound around the interior of the transmission belt (12), and the third rotating shaft (15) is fixedly connected to the inner wall of the second equipment box (10). A fourth rotating shaft (16) is wound around the interior of the transmission belt (12), and the fourth rotating shaft (16) is fixedly connected to the inner wall of the second equipment box (10).
4. The multi-stage cooling device for producing glass-ceramics according to claim 3, characterized in that: A connecting slot (11) is provided on the top of the second equipment box (10), a first equipment box (1) is fixedly connected to the top of the second equipment box (10), a feed slot is provided on one side of the first equipment box (1), a first soft curtain door (3) is fixedly connected to the first equipment box (1) at the position of the feed slot, a discharge slot is provided on the other side of the first equipment box (1), a third soft curtain door (5) is fixedly connected to the first equipment box (1) at the position of the discharge slot, and a second soft curtain door (4) is fixedly connected to the middle of the interior of the first equipment box (1).
5. The multi-stage cooling device for producing glass-ceramics according to claim 4, characterized in that: The interior of the first equipment box (1) is provided with flip assemblies on both sides of the second soft curtain door (4), and the two flip assemblies have the same structure and are symmetrically positioned. The flip assemblies include a first motor (6), one side of the second soft curtain door (4) is fixedly connected to the inner wall of the first equipment box (1), one side output end of the first motor (6) is fixedly connected to a flap (7), and the side of the flap (7) is fixedly connected to an electromagnetic adsorption device (8).
6. The multi-stage cooling device for producing glass-ceramics according to claim 5, characterized in that: Air outlets are fixedly connected to both sides of the upper portion of the first equipment box (1) at equal distances, and a first filter plate (9) is fixedly connected to the upper portions of the two air outlets.
7. The multi-stage cooling device for producing glass-ceramics according to claim 6, characterized in that: A control panel (2) is fixedly connected to one side of the first equipment box (1), and the control panel (2) is electrically connected to the second motor (17), two fans (22), two first motors (6) and two electromagnetic adsorption devices (8).