Low-temperature air-drying glaze baking device

By introducing a movable air-drying device and a driving device into the low-temperature air-drying and grilling device, the drying problem caused by the fixed nozzle in the existing ceramic drying furnace is solved, and efficient low-temperature air-drying and uniform drying of the glaze bottle is achieved.

CN223153937UActive Publication Date: 2025-07-25SHANDONG YUNCHENG YUANDA GLASS CO LTD
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Patent Information

Application Number
CN202420311659.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-02-20
Publication Date
2025-07-25
Estimated Expiration
2034-02-20

AI Technical Summary

Technical Problem

The fixed installation of the nozzle of the existing ceramic drying furnace leads to uneven drying and the load rack is fixed, resulting in a long drying time.

Method used

A low-temperature air-drying and grilling device is designed, and a movable air-drying device and a driving device are adopted, including multiple nozzles and a driving motor. The nozzle is driven to move through the drive motor, and combined with a loading plate, a rotating disc and a limiting rod, the nozzle is realized forward and backward and reciprocating.

Benefits of technology

It improves the low-temperature air-drying efficiency and uniformity of the glaze bottle, simplifies the operation process, is simple in structure and is easy to use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glaze baking, and discloses a low-temperature air-drying glaze baking device which comprises a main machine frame, a furnace body is fixedly installed in a cavity of the main machine frame, a main radiating pipe is fixedly installed on the top wall face in the cavity of the furnace body, and a loading plate is arranged in the cavity of the furnace body. Two air drying devices are arranged on the lower portion in a cavity of the furnace body, each air drying device comprises a plurality of spray heads, the left side wall face and the right side wall face in the cavity of the furnace body are each provided with a driving device capable of enabling the air drying devices to move, and each driving device comprises a driving motor. In conclusion, by arranging a driving motor, a rotating rod, a first spur gear, a chain, a second spur gear, a connecting plate, a second rack, a third rack, a first half gear, a half bevel gear, a bevel gear, a second half gear and a sliding groove, the driving device can be driven to operate through rotation of the rotating rod, and the nozzle can move back and forth in a reciprocating mode through operation of the driving device; therefore, the air drying effect is improved.
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Description

Technical Field

[0001] The utility model belongs to the technical field of baking glaze, and specifically relates to a low-temperature air-drying baking glaze device. Background Art

[0002] During the production process of colored glaze bottles, drying operations need to be carried out on them. Usually, baking glaze is used for low-temperature drying. However, during the drying process, the inventor found the following problems in use:

[0003] The prior art discloses a ceramic drying furnace (201520288882.6), which includes a main frame, and also includes a furnace body, a first heating component, a first heat dissipation device, a second heating component, a conveying device, a second heat dissipation device, a loading rack, and an exhaust pipe arranged inside the main frame; the second heat dissipation device includes a shunt plate, a connecting seat arranged on one side of the shunt plate, a fixing member arranged on the other side of the shunt plate, and a spray head rotatably arranged on the fixing member. The spray head of the prior art is fixedly installed. If it is necessary to dry the items on the loading rack, it will take a certain amount of time, and its loading rack is also fixedly installed, which will cause uneven drying and has certain disadvantages in use.

[0004] In view of this, the present utility model is specifically proposed. Summary of the Utility Model

[0005] In order to solve the above technical problems, the basic concept of the technical solution adopted by the present utility model is as follows:

[0006] A low-temperature air-drying baking glaze device includes a main frame. A furnace body is fixedly installed in the cavity of the main frame. A main heat dissipation pipe is fixedly installed on the top wall surface of the cavity of the furnace body. A loading plate is arranged in the cavity of the furnace body. The feature is that two air-drying devices are arranged below the cavity of the furnace body. The air-drying device includes a plurality of spray heads. A driving device that can move the air-drying device is arranged on the left and right side wall surfaces of the cavity of the furnace body. The driving device includes a driving motor.

[0007] As a preferred implementation manner of the present utility model, a rotating disk is fixedly installed on the bottom wall surface of the loading plate. A plurality of first racks are fixedly installed on the side wall of the rotating disk at equal intervals. A limiting rod is fixedly installed on the bottom wall surface of the rotating disk. The limiting rod is rotatably connected to the bottom wall surface of the cavity of the furnace body.

[0008] As a preferred implementation manner of the present utility model, a first fixing plate is fixedly installed on the left and right side wall surfaces of the cavity of the furnace body. A second fixing plate is fixedly installed on the left and right side wall surfaces of the cavity of the furnace body below the first fixing plate. One side of the rotating disk away from the limiting rod is located between the first fixing plate and the second fixing plate.

[0009] As a preferred embodiment of the present utility model, a driving motor is fixedly installed above the first fixing plate. The output end of the driving motor is fixedly installed with a rotating rod that penetrates through the first fixing plate and the second fixing plate. The penetrating parts of the rotating rod with the first fixing plate and the second fixing plate are movably connected. A first spur gear that meshes with the first rack is fixedly installed on the side wall of the rotating rod between the first fixing plate and the second fixing plate.

[0010] As a preferred embodiment of the present utility model, two flow dividing plates are arranged below the cavity of the furnace body. A plurality of nozzles are respectively fixedly installed on the top wall surface of the flow dividing plates. The nozzles communicate with the cavity of the flow dividing plates. A heating component is fixedly installed on the bottom wall surface of the flow dividing plates. The heating component communicates with the cavity of the flow dividing plates. Two chutes are opened on the bottom wall surface of the cavity of the furnace body. The heating component is located in the cavity of the chutes.

[0011] As a preferred embodiment of the present utility model, the rotating rod also penetrates through the bottom wall surface of the furnace body. A first half gear is fixedly installed on the lower side wall of the rotating rod. A half helical gear is fixedly installed on the bottom wall surface of the rotating rod. One helical gear is arranged below each of the two sides where the rotating rods are close to each other. The helical gears mesh with the half helical gears. A second half gear is fixedly installed on each of the side walls of the two helical gears where they are close to each other.

[0012] As a preferred embodiment of the present utility model, a second spur gear is rotatably installed at each of the front and rear positions in the cavity of the chute. A chain is arranged on the side walls of the two second spur gears together. The chain meshes with the second spur gears. A plurality of second racks are installed at equal intervals on each of the side walls of the two chains where they are away from each other.

[0013] As a preferred embodiment of the present utility model, a plurality of third racks are fixedly installed at equal intervals on each of the bottom wall surfaces of the two chains where they are away from each other. The first half gear meshes with the second rack. The third rack meshes with the second half gear. A connecting plate is fixedly installed on each of the side walls of the two chains where they are close to each other. Each of the side walls of the two connecting plates where they are close to each other is fixedly connected to the side wall of the corresponding heating component where they are away from each other.

[0014] The present utility model has the following beneficial effects compared with the prior art:

[0015] 1. In summary, by setting the air drying device and the driving device, the air drying device can perform low-temperature air drying on the colored glaze bottles, and the driving device can move the air drying device, so as to improve the air drying effect. It is convenient to use and has a simple structure.

[0016] 2. In summary, by providing a loading plate, a rotating disk, a limiting rod, and a first rack, the loading plate can be rotated by the first rack, and the rotation of the loading plate can improve the air-drying efficiency, which is convenient to use and has a simple structure.

[0017] 3. In summary, by providing a driving motor, a rotating rod, a first fixing plate, and a second fixing plate, the rotating disk can be limited by the first fixing plate and the second fixing plate, thereby limiting the loading plate. When the rotating rod rotates, it can also drive the driving device to operate and drive the loading plate to rotate, which is convenient to use and has a simple structure.

[0018] 4. In summary, by providing a driving motor, a rotating rod, a first spur gear, a chain, a second spur gear, a connecting plate, a second rack, a third rack, a first half gear, a semi-helical gear, a helical gear, a second half gear, and a sliding groove, the rotation of the rotating rod can drive the driving device to operate, and the operation of the driving device can make the nozzle move back and forth, so as to improve the air-drying effect.

[0019] The following further describes in detail the specific embodiments of the present invention with reference to the accompanying drawings. Description of the Drawings

[0020] In the drawings:

[0021] Figure 1 is a perspective view of the present invention;

[0022] Figure 2 is a perspective view of the nozzle 17 of the present invention;

[0023] Figure 3 is a perspective view of the loading plate 13 of the present invention;

[0024] Figure 4 is a perspective view of one side of the driving device of the present invention;

[0025] Figure 5 is a perspective view of the other side of the driving device of the present invention.

[0026] In the figure: 10, main frame; 11, furnace body; 12, main heat dissipation pipe; 13, loading plate; 14, first fixing plate; 15, second fixing plate; 16, flow dividing plate; 17, nozzle; 18, heating component; 20, limiting rod; 21, rotating disk; 22, first rack; 23, driving motor; 24, rotating rod; 25, first spur gear; 27, chain; 28, second spur gear; 29, connecting plate; 30, second rack; 31, third rack; 32, first half gear; 33, semi-helical gear; 34, helical gear; 35, second half gear; 36, sliding groove. Specific Embodiments

[0027] To make the objectives, technical solutions, and advantages of the embodiments of the present utility model clearer, the following will, with reference to the accompanying drawings in the embodiments of the present utility model, clearly and completely describe the technical solutions in the embodiments. The following embodiments are used to illustrate the present utility model.

[0028] As Figure 1 shown, a low-temperature air-drying and baking glaze device includes a main frame 10. A furnace body 11 is fixedly installed in the cavity of the main frame 10. A main heat dissipation pipe 12 is fixedly installed on the top wall surface of the cavity of the furnace body 11. A loading plate 13 is arranged in the cavity of the furnace body 11. It is characterized in that two air-drying devices are arranged below the cavity of the furnace body 11. The air-drying device includes a plurality of nozzles 17. On the left and right side wall surfaces of the cavity of the furnace body 11, a driving device for moving the air-drying device is arranged. The driving device includes a driving motor 23.

[0029] It should be noted that: both the main heat dissipation pipe 12 and the nozzles 17 can play a role in drying. The heating component 18 can provide the effect of drying the items for the main heat dissipation pipe 12 and the nozzles 17. The main frame 10, the furnace body 11, the main heat dissipation pipe 12, the nozzles 17, and the heating component 18 have all been disclosed in a ceramic drying furnace (201520288882.6), and will not be elaborated here.

[0030] During specific use, the air-drying device can perform low-temperature air-drying on the colored glaze bottles, and the driving device can move the air-drying device, thereby improving the air-drying effect.

[0031] In summary, by setting the air-drying device and the driving device, the air-drying device can perform low-temperature air-drying on the colored glaze bottles, and the driving device can move the air-drying device, thereby improving the air-drying effect. It is convenient to use and has a simple structure.

[0032] As Figure 3 shown, a rotating disk 21 is fixedly installed on the bottom wall surface of the loading plate 13. A plurality of first racks 22 are fixedly installed on the side wall of the rotating disk 21 at equal intervals. A limiting rod 20 is fixedly installed on the bottom wall surface of the rotating disk 21. The limiting rod 20 is rotatably connected to the bottom wall surface of the cavity of the furnace body 11.

[0033] During specific use, colored glaze bottles can be placed on the top wall surface of the loading plate 13. The first racks 22 can cause the rotating disk 21 to rotate. The specific rotation method will be discussed below. The limiting rod 20 can play a role in limiting the rotating disk 21. The rotation of the rotating disk 21 can drive the loading plate 13 to rotate, and the rotation of the loading plate 13 can improve the air-drying efficiency.

[0034] In summary, by setting the loading plate 13, the rotating disk 21, the limiting rod 20, and the first rack 22, the loading plate 13 can be rotated by the first rack 22. The rotation of the loading plate 13 can improve the air-drying efficiency, and it is convenient to use with a simple structure.

[0035] As shown in the figure, on the left and right side walls of the cavity of the furnace body 11, a first fixed plate 14 is fixedly installed respectively. Below the first fixed plate 14 on the left and right side walls of the cavity of the furnace body 11, a second fixed plate 15 is fixedly installed respectively. The sides of the rotating disk 21 far from the limiting rod 20 are located between the first fixed plate 14 and the second fixed plate 15.

[0036] Above the first fixed plate 14, a driving motor 23 is fixedly installed. The output end of the driving motor 23 is fixedly installed with a rotating rod 24 that penetrates through the first fixed plate 14 and the second fixed plate 15. The penetration parts of the rotating rod 24 with the first fixed plate 14 and the second fixed plate 15 are movably connected. On the side wall of the rotating rod 24 between the first fixed plate 14 and the second fixed plate 15, a first spur gear 25 that meshes with the first rack 22 is fixedly installed.

[0037] During specific use, the first fixed plate 14 and the second fixed plate 15 can play a role in limiting the loading plate 13 through the rotating disk 21. When the driving motor 23 rotates, it can drive the rotating rod 24 to rotate. The rotation of the rotating rod 24 can drive the driving device to operate. When the rotating rod 24 rotates, it can drive the first spur gear 25 to rotate. The rotation of the first spur gear 25 can drive the rotating disk 21 to rotate through the first rack 22, so as to rotate the loading plate 13.

[0038] In summary, by setting the driving motor 23, the rotating rod 24, the first fixed plate 14, and the second fixed plate 15, the first fixed plate 14 and the second fixed plate 15 can play a role in limiting the rotating disk 21, and further limit the loading plate 13. When the rotating rod 24 rotates, it can also drive the driving device to operate and drive the loading plate 13 to rotate. It is convenient to use with a simple structure.

[0039] As Figure 1 、 Figure 4 and Figure 5 shown, two flow dividing plates 16 are arranged below the cavity of the furnace body 11. A plurality of nozzles 17 are respectively fixedly installed on the top wall surfaces of the flow dividing plates 16. The nozzles 17 are mutually communicated with the cavities of the flow dividing plates 16. On the bottom wall surface of the flow dividing plates 16, a heating component 18 is fixedly installed. The heating component 18 is mutually communicated with the cavities of the flow dividing plates 16. On the bottom wall surface of the cavity of the furnace body 11, two sliding grooves 36 are opened. The heating component 18 is located in the cavities of the sliding grooves 36.

[0040] The rotating rod 24 also penetrates through the bottom wall surface of the furnace body 11. A first half gear 32 is fixedly installed on the lower side wall of the rotating rod 24, and a half helical gear 33 is fixedly installed on the bottom wall surface of the rotating rod 24. A helical gear 34 is arranged below each of the two mutually adjacent sides of the rotating rod 24. The helical gear 34 meshes with the half helical gear 33. A second half gear 35 is fixedly installed on each of the two mutually adjacent side walls of the helical gear 34.

[0041] A second spur gear 28 is rotatably installed at each of the front and rear positions inside the cavity of the chute 36. A chain 27 is arranged on the side walls of the two second spur gears 28 together. The chain 27 meshes with the second spur gear 28. A plurality of second racks 30 are installed at equal intervals on each of the two mutually remote side walls of the chain 27.

[0042] A plurality of third racks 31 are fixedly installed at equal intervals on each of the bottom wall surfaces of the two mutually remote sides of the chain 27. The first half gear 32 meshes with the second rack 30, and the third rack 31 meshes with the second half gear 35. A connecting plate 29 is fixedly installed on each of the two mutually adjacent side walls of the chain 27. The side walls of the two mutually adjacent sides of the connecting plate 29 are fixedly connected to the mutually remote side walls of the corresponding heating component 18 respectively.

[0043] During specific use, when the rotating rod 24 rotates, it can also drive the first half gear 32 to rotate. The rotation of the first half gear 32 can drive the chain 27 to rotate through the second rack 30. The second spur gear 28 can play a role in limiting the chain 27. The rotation of the chain 27 can drive the connecting plate 29 to move. The movement of the connecting plate 29 can drive the heating component 18 to move. The movement of the heating component 18 can drive the flow dividing plate 16 to rotate. The movement of the flow dividing plate 16 can drive the nozzle 17 to move. The movement of the nozzle 17 can improve the air drying effect. When the rotating rod 24 rotates, it can also drive the half helical gear 33 to rotate. The rotation of the half helical gear 33 can drive the helical gear 34 to rotate. The rotation of the helical gear 34 can drive the second half gear 35 to rotate. The rotation of the second half gear 35 can drive the chain 27 to rotate in the opposite direction of the transmission by the first half gear 32 through the third rack 31, so as to make the nozzle 17 move back and forth. The chute 36 can play a role in limiting the nozzle 17 through the flow dividing plate 16.

[0044] In summary, by setting the drive motor 23, the rotating rod 24, the first spur gear 25, the chain 27, the second spur gear 28, the connecting plate 29, the second rack 30, the third rack 31, the first half gear 32, the half helical gear 33, the helical gear 34, the second half gear 35 and the chute 36, the operation of the drive device can be driven by the rotation of the rotating rod 24, and the operation of the drive device can make the nozzle 17 move back and forth, so as to improve the air drying effect.

[0045] It can be understood that the present utility model is described by some embodiments. Those skilled in the art know that without departing from the spirit and scope of the present utility model, various changes or equivalent replacements can be made to these features and embodiments. In addition, under the teaching of the present utility model, these features and embodiments can be modified to adapt to specific situations and materials without departing from the spirit and scope of the present utility model. Therefore, the present utility model is not limited by the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of this application belong to the scope protected by the present utility model.

Claims

1. A low-temperature air-drying and baking glaze device, comprising a main frame (10), a furnace body (11) is fixedly installed in the cavity of the main frame (10), a main heat dissipation pipe (12) is fixedly installed on the top wall surface of the cavity of the furnace body (11), a loading plate (13) is arranged in the cavity of the furnace body (11), and it is characterized in that, There are two air-drying devices arranged below the cavity of the furnace body (11). The air-drying device includes a plurality of nozzles (17). On the left and right side walls of the cavity of the furnace body (11), there is a driving device that can move the air-drying device. The driving device includes a driving motor (23).

2. The low-temperature air-drying and roasting glaze device according to claim 1, characterized in that, A rotating disk (21) is fixedly installed on the bottom wall surface of the loading plate (13). A plurality of first racks (22) are fixedly installed on the side wall of the rotating disk (21) at equal intervals. A limiting rod (20) is fixedly installed on the bottom wall surface of the rotating disk (21). The limiting rod (20) is rotatably connected to the bottom wall surface of the cavity of the furnace body (11).

3. The low-temperature air-drying and baking glaze device according to claim 2, wherein, On the left and right side walls of the cavity of the furnace body (11), a first fixing plate (14) is fixedly installed. On the left and right side walls of the cavity of the furnace body (11) below the first fixing plate (14), a second fixing plate (15) is fixedly installed. On the side of the rotating disk (21) away from the limiting rod (20), it is located between the first fixing plate (14) and the second fixing plate (15).

4. The low-temperature air-drying and baking glaze device according to claim 3, characterized in that Above the first fixing plate (14), a driving motor (23) is fixedly installed. The output end of the driving motor (23) is fixedly installed with a rotating rod (24) passing through the first fixing plate (14) and the second fixing plate (15). The rotating rod (24) is movably connected to the through parts of the first fixing plate (14) and the second fixing plate (15). On the side wall of the rotating rod (24) between the first fixing plate (14) and the second fixing plate (15), a first spur gear (25) meshing with the first rack (22) is fixedly installed.

5. The low-temperature air-drying and roasting glaze device according to claim 4, wherein There are two flow dividing plates (16) arranged below the cavity of the furnace body (11). A plurality of nozzles (17) are respectively fixedly installed on the top wall surface of the flow dividing plate (16). The nozzles (17) are in communication with the cavity of the flow dividing plate (16). A heating component (18) is fixedly installed on the bottom wall surface of the flow dividing plate (16). The heating component (18) is in communication with the cavity of the flow dividing plate (16). On the bottom wall surface of the cavity of the furnace body (11), two sliding grooves (36) are opened. The heating component (18) is located in the cavity of the sliding groove (36).

6. The low-temperature air-dried baking glaze device according to claim 5, characterized in that The rotating rod (24) also passes through the bottom wall surface of the furnace body (11). A first half gear (32) is fixedly installed on the lower side wall of the rotating rod (24). A half helical gear (33) is fixedly installed on the bottom wall surface of the rotating rod (24). Below the side of the two rotating rods (24) close to each other, there is an inclined gear (34). The inclined gear (34) meshes with the half helical gear (33). On the side wall of the two inclined gears (34) close to each other, a second half gear (35) is fixedly installed.

7. The low-temperature air-drying and roasting glaze device according to claim 6, characterized in that, On the front and rear sides of the cavity of the sliding groove (36), a second spur gear (28) is rotatably installed. A chain (27) is arranged on the side walls of the two second spur gears (28). The chain (27) meshes with the second spur gear (28). On the side walls of the two chains (27) away from each other, a plurality of second racks (30) are installed at equal intervals.

8. The low-temperature air-drying and baking glaze device according to claim 7, wherein On the bottom wall surfaces of the two sides of the two chains (27) that are far away from each other, a plurality of third racks (31) are fixedly installed at equal intervals. The first half gear (32) meshes with the second rack (30), and the third rack (31) meshes with the second half gear (35). On the side wall surfaces of the two chains (27) that are close to each other, a connecting plate (29) is fixedly installed respectively. On the side wall surfaces of the two connecting plates (29) that are close to each other, they are fixedly connected to the side wall surfaces of the corresponding heat supply components (18) that are far away from each other.

Citation Information

Patent Citations

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