Glazing device for ceramic wine bottle processing
By designing an adjustable clamping and unclamping mechanism, combined with adjustments for height, direction, and angle, the problem of low glazing efficiency on ceramic wine bottles was solved, enabling efficient glaze recycling and glaze filtration, thus improving glazing efficiency and glaze utilization.
Patent Information
- Application Number
- CN202511378856.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2025-10-31
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The current glazing process for ceramic wine bottles is inefficient, inconvenient to operate manually, and cannot be adjusted according to actual needs, resulting in low glazing efficiency.
A glazing device for ceramic wine bottle processing was designed, which adopts an adjustable clamping and unclamping mechanism, combined with height, direction and angle adjustment, and multi-point adjustment through axial rotation. It works in conjunction with a glaze storage mechanism to filter and recycle the glaze liquid.
It improves glazing efficiency, achieves synchronous adjustment of multiple points, reduces manual operation, increases the utilization rate of glaze, prevents glaze overflow, and enhances the cleanliness and recyclability of glaze.
Smart Images

Figure CN120862848A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of ceramic processing technology, and more specifically to a glazing device for processing ceramic wine bottles. Background Technology
[0002] Ceramic wine bottles are containers made of ceramic, known for their breathability, corrosion resistance, and aesthetic appeal. They are commonly used in the packaging of baijiu (Chinese liquor). The materials are mostly Jingdezhen high-white clay or Jun porcelain raw materials, fired at high temperatures, and the surface is often decorated with traditional techniques such as blue and white porcelain.
[0003] Glazing ceramic wine bottles involves coating the surface with a thin layer of glass, which is then fired at high temperatures to form a dense protective film. The glazed ceramic wine bottle surface forms a smooth, waterproof, and gas-proof glass layer, improving the bottle's sealing performance, corrosion resistance, and mechanical strength, while also enhancing its aesthetics. During the processing of ceramic wine bottles, a glazing device is used to apply glaze to the outside of the bottle.
[0004] In the existing technology, the glazing process of ceramic wine bottles is usually carried out by a single operation, which is inconvenient to handle. The process is all done manually and cannot be adjusted according to actual needs to assist in glazing, thus reducing the efficiency of glazing. Summary of the Invention
[0005] The purpose of this invention is to provide a glazing device for processing ceramic wine bottles, which has the advantages of high glazing efficiency. It adopts an adjustable method to achieve the effects of clamping and unclamping the material, and the glazing operation can be completed by adjusting the height. The glazing operation can be achieved by adjusting the height, and the direction can be adjusted by axial rotation to rotate the ceramic wine bottle to the desired direction. At the same time, the angle of the ceramic wine bottle after clamping can be adjusted by axial rotation fine adjustment to perform glazing, thereby solving the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a glazing device for processing ceramic wine bottles, comprising a table:
[0007] The bottom of the table is provided with a support mechanism for supporting the main body, the top of the table is provided with a glaze storage mechanism for storing glaze liquid, the top of the support mechanism is provided with an adjustment mechanism for adjusting the height, the inside of the adjustment mechanism is provided with a material transfer mechanism for micro-rotation, and one end of the material transfer mechanism is provided with a clamping mechanism for fixing the material.
[0008] The adjustment mechanism includes a push-pull assembly disposed on the top of the support mechanism and a directional rotation assembly connected to the push-pull assembly;
[0009] The material transfer mechanism includes a transverse component disposed inside the directional rotation component and a transmission component connected to the transverse component;
[0010] The clamping mechanism includes a synchronization component disposed at one end of the transmission component and a protection component connected to the synchronization component, and a pressing component is disposed on one side of the protection component.
[0011] For example, the support mechanism includes pillars fixedly installed around the bottom of the tabletop, with a base plate fixedly installed at the bottom of the pillars.
[0012] For example, the push-pull assembly includes a first electric push rod fixedly installed on the top of the base plate and a first circular plate fixed to the output end of the first electric push rod, with a first sleeve fixedly installed on the outer side of the first circular plate.
[0013] For example, the direction rotation assembly includes a motor fixedly mounted on the top of a first circular plate and a second circular plate keyed to the output shaft of the motor. A second sleeve is fixedly mounted on the outer side of the second circular plate, and a limiting strip fixed to the table surface is slidably connected to the outer side of both the second sleeve and the first sleeve.
[0014] For example, the lateral movement assembly includes a second electric push rod fixedly installed on one side of the second sleeve and a fixing block fixed to the output end of the second electric push rod. A toothed plate and a sliding groove opened on the outer side of the toothed plate are fixedly installed on the top of the fixing block, and a sliding strip fixed to the second sleeve is slidably connected inside the sliding groove.
[0015] For example, the transmission assembly includes a shaft that is rotatably connected through the inside of the second sleeve, and a first gear that meshes with a gear plate is fixedly mounted on the outside of the shaft.
[0016] For example, the protection component includes a support tube fixedly installed on one side of the second sleeve, and a connecting box is fixedly installed at one end of the support tube.
[0017] For example, the synchronization component includes a connecting rod rotatably connected to both ends of the inner cavity of the connecting box, and a second gear and a synchronization belt meshing with the outer side of the connecting rod and the shaft are fixedly installed on the outer side of the connecting rod and the shaft.
[0018] For example, the pressing assembly includes a mounting bracket fixedly installed at one end of the connecting rod and the shaft, a third electric push rod and a pressure plate fixedly installed at the top of the mounting bracket, and a mesh plate fixedly installed at the bottom of one side of the mounting bracket.
[0019] For example, the glaze storage mechanism includes a glaze pool fixedly installed on the top of the countertop and an overflow trough fixed to the outside of the glaze pool. The bottom of the glaze pool is connected to a first filter and a bracket fixed to the outside of the first filter. The bracket is fixedly installed on the top of the base plate.
[0020] One side of the overflow tank is connected to a second filter installed on the top of the table, one end of the table is connected to a feeding pipe, the bottom end of the second filter is connected to a second connecting pipe, and the bottom end of the first filter is connected to a first connecting pipe.
[0021] A peristaltic pump is fixedly installed on the top of the base plate. The second connecting pipe and the first connecting pipe pass through the output end of the peristaltic pump. The discharge ends of the second connecting pipe and the first connecting pipe are connected to a conveying pipe. The discharge end of the conveying pipe is connected to the glaze tank.
[0022] Compared with the prior art, the beneficial effects of the present invention are:
[0023] 1. This invention, through the coordinated arrangement of the adjustment mechanism, the material transfer mechanism, and the clamping mechanism, effectively achieves the advantage of high glazing efficiency. The multi-point adjustment method increases the synchronization of material handling and glazing processes, allowing for direct material handling and adjustment after clamping. The adjustment mechanism can lower the height during glazing to facilitate the process, and raise the height to detach it from the glaze tank for replacement of the ceramic bottle. The material transfer mechanism can be adjusted to the desired direction and can rotate the ceramic bottle to the glazing position. It can also rotate a glazed bottle to the material handling area for material handling, and then rotate it to a new ceramic bottle for clamping and material handling. The clamping mechanism can be used to clamp and handle the ceramic bottle before glazing, and the ceramic bottle is glazed while being clamped.
[0024] 2. The present invention, through the setting of the glaze storage mechanism, achieves the advantages of assisting glazing and filtering glaze liquid. The glazing operation can be completed directly on the ceramic wine bottle by immersion glazing, and the overflow of glaze liquid can be prevented during the immersion glazing process. During continuous use, the glaze liquid can also be filtered to remove impurities inside, and can be recycled after filtration, thereby reducing the waste of glaze liquid and saving glaze liquid loss.
[0025] Other features and advantages of the invention will be set forth in the following description, and will be apparent in part from the description, or may be learned by practicing the invention. The objects and other advantages of the invention may be realized and obtained by means of the structures pointed out in the description and the drawings. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the structure of the present invention;
[0027] Figure 2 This is a schematic diagram of the tabletop structure of the present invention;
[0028] Figure 3 This is a schematic diagram of the base plate structure of the present invention;
[0029] Figure 4 This is a schematic diagram of the peristaltic pump structure of the present invention;
[0030] Figure 5 This is a schematic diagram of the clamping mechanism of the present invention;
[0031] Figure 6 This is a schematic diagram of the first electric push rod structure of the present invention;
[0032] Figure 7 This is a schematic diagram of the second electric push rod structure of the present invention;
[0033] Figure 8 This is a schematic diagram of the internal structure of the connector box of the present invention.
[0034] In the diagram: 1. Tabletop; 2. Support mechanism; 21. Column; 22. Base plate; 3. Glaze storage mechanism; 31. Glaze tank; 32. Overflow trough; 33. Feeding pipe; 34. Bracket; 35. First filter; 36. First connecting pipe; 37. Second filter; 38. Second connecting pipe; 39. Peristaltic pump; 310. Conveying pipe; 4. Adjustment mechanism; 41. First electric push rod; 42. First circular plate; 43. Limiting strip; 44. Motor; 5. Second circular plate; 46. Second sleeve; 47. First sleeve; 5. Transfer mechanism; 51. Shaft; 52. First gear; 53. Second electric push rod; 54. Fixing block; 55. Tooth plate; 56. Slide groove; 57. Slide bar; 6. Clamping mechanism; 61. Connecting box; 62. Connecting rod; 63. Second gear; 64. Synchronous belt; 65. Support tube; 66. Mounting bracket; 67. Third electric push rod; 68. Pressure plate; 69. Mesh plate. Detailed Implementation
[0035] 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.
[0036] This invention provides a glazing device for processing ceramic wine bottles, including a table 1:
[0037] The bottom of the tabletop 1 is provided with a support mechanism 2 for supporting the main body, the top of the tabletop 1 is provided with a glaze storage mechanism 3 for storing glaze liquid, the top of the support mechanism 2 is provided with an adjustment mechanism 4 for adjusting the height, the inside of the adjustment mechanism 4 is provided with a material transfer mechanism 5 for micro-rotation, and one end of the material transfer mechanism 5 is provided with a clamping mechanism 6 for fixing the material.
[0038] The adjustment mechanism 4 includes a push-pull assembly disposed on the top of the support mechanism 2 and a directional rotation assembly connected to the push-pull assembly;
[0039] The material transfer mechanism 5 includes a transverse component disposed inside the directional rotation component and a transmission component connected to the transverse component;
[0040] The clamping mechanism 6 includes a synchronization component located at one end of the transmission component and a protection component connected to the synchronization component. A pressing component is located on one side of the protection component.
[0041] It effectively possesses the advantage of high glazing efficiency, and adopts a multi-point adjustment method to increase the synchronization of its material handling and glazing process. It can directly clamp and complete the material handling operation, and adjust the glazing operation after clamping.
[0042] in:
[0043] like Figure 3 As shown, the support mechanism 2 includes pillars 21 fixedly installed around the bottom of the tabletop 1. A base plate 22 is fixedly installed at the bottom of the pillars 21. The pillars 21 are mainly used to support the main components of the tabletop 1, while the base plate 22 not only supports the pillars 21, but also supports the required components.
[0044] Preferred:
[0045] like Figure 6 As shown, the push-pull assembly includes a first electric push rod 41 fixedly installed on the top of the base plate 22 and a first circular plate 42 fixed to the output end of the first electric push rod 41. A first sleeve 47 is fixedly installed on the outer side of the first circular plate 42. The first electric push rod 41 mainly drives the connected component to adjust its height position by pushing and pulling the first circular plate 42, thereby indirectly driving the clamped ceramic wine bottle to adjust its height to assist in the glazing operation. In addition, the first sleeve 47 is mainly used to provide auxiliary support for the connected component, thereby ensuring the stability of the connected component during operation. The first circular plate 42 can also support the motor 44.
[0046] The connection between the first sleeve 47 and the second sleeve 46 is a rotatable connection.
[0047] in addition:
[0048] like Figure 6 As shown, the directional rotation assembly includes a motor 44 fixedly mounted on the top of the first circular plate 42 and a second circular plate 45 keyed to the output shaft of the motor 44. A second sleeve 46 is fixedly mounted on the outer side of the second circular plate 45. Limiting strips 43 fixed to the table surface 1 are slidably connected to the outer sides of both the second sleeve 46 and the first sleeve 47.
[0049] The motor 44 performs the output operation for directional adjustment, mainly through the indirect drive of the second circular plate 45 to complete the rotation operation, thereby rotating the connected clamping component to the material clamping and picking point, the glazing waiting point, and the unloading point, forming a multi-directional rotation adjustment effect. There is no need for manual active material handling. It works with the external conveying equipment to transport ceramic wine bottles. The material picking operation is completed when the conveying stops at the clamping point. The limiting strip 43 is used to assist in the lateral limiting operation when the second sleeve 46 and the first sleeve 47 are pushed and pulled up and down to adjust their height, so as to ensure verticality.
[0050] further:
[0051] like Figure 7 As shown, the transverse component includes a second electric push rod 53 fixedly installed on one side of the second sleeve 46 and a fixing block 54 fixed to the output end of the second electric push rod 53. A toothed plate 55 and a sliding groove 56 opened on the outer side of the toothed plate 55 are fixedly installed on the top of the fixing block 54. A slide bar 57 fixed to the second sleeve 46 is slidably connected inside the sliding groove 56.
[0052] The second electric push rod 53 can be used to push and pull the toothed plate 55 to move horizontally. At the same time, during the movement, the shaft 51 and the first gear 52 can be rotated by meshing to achieve the effect of fine angle adjustment during the glazing process. It can also tilt the glazing and then straighten it for vertical glazing, so as to carry out the glazing operation according to the actual situation.
[0053] During the lateral adjustment process, the toothed plate 55 is slidably supported according to the sliding relationship between the slider 57 and the groove 56 to ensure the stability of its lateral movement. Furthermore, through holes are provided on both sides of the second sleeve 46, which are the corresponding penetration points of the slider 57 and the toothed plate 55, to ensure that its stable lateral movement adjustment is unobstructed.
[0054] in:
[0055] like Figure 7 As shown, the transmission assembly includes a shaft 51 that is rotatably connected through the second sleeve 46. A first gear 52 that meshes with a toothed plate 55 is fixedly installed on the outside of the shaft 51. Under the meshing drive, the toothed plate 55 can drive the shaft 51 to complete the adjustment of the fine angle, so that it is in the required tilt or vertical state for glazing.
[0056] in addition:
[0057] like Figure 8As shown, the protective assembly includes a support tube 65 fixedly installed on one side of the second sleeve 46. A connecting box 61 is fixedly installed at one end of the support tube 65. The support tube 65 is used to provide rotational support for the shaft 51 to ensure its stability during rotation. The connecting box 61 can be used to realize the transmission operation of the internal components. At the same time, the connecting box 61 and the shaft 51 are connected by a through-type rotational connection, and one end of the shaft 51 passes through the connecting box 61.
[0058] Going a step further:
[0059] like Figure 8 As shown, the synchronization assembly includes connecting rods 62 rotatably connected to both ends of the inner cavity of the connecting box 61. A second gear 63 and a timing belt 64 meshing with the outer side of the connecting rods 62 and the shaft 51 are fixedly installed on the outer side of the connecting rods 62 and the shaft 51. The meshing transmission of the second gear 63 and the timing belt 64 can realize the rotation operation of the shaft 51 and several sets of connecting rods 62. Only two connecting rods 62 are shown in the figure. In addition, the connecting rods 62 and the connecting box 61 are rotatably connected.
[0060] It is worth noting that:
[0061] like Figure 8 As shown, the pressing assembly includes a mounting bracket 66 fixedly installed at one end of the connecting rod 62 and the shaft 51. A third electric push rod 67 and a pressure plate 68 fixed to the output end of the third electric push rod 67 are fixedly installed on the top of the mounting bracket 66. A mesh plate 69 is fixedly installed on the bottom of one side of the mounting bracket 66. The mounting bracket 66 can achieve a fine angle adjustment effect when driven. The mounting bracket 66 can install and fix the third electric push rod 67 and the mesh plate 69. The mesh plate 69 can be used to hold ceramic wine bottles. The third electric push rod 67 can push the pressure plate 68 and cooperate with the mesh plate 69 to complete the clamping operation of the wine bottle, so as to complete the clamping and picking, continuous clamping and glazing, and material release operation after clamping.
[0062] at last:
[0063] like Figure 4 As shown, the glaze storage mechanism 3 includes a glaze pool 31 fixedly installed on the top of the table 1 and an overflow trough 32 fixed to the outside of the glaze pool 31. The bottom of the glaze pool 31 is connected to a first filter 35 and a bracket 34 fixed to the outside of the first filter 35. The bracket 34 is fixedly installed on the top of the base plate 22. The glaze pool 31 can realize the storage of glaze liquid and assist in completing the immersion glazing operation of ceramic wine bottles. Since glaze liquid will overflow during immersion glazing, the overflow trough 32 is set to collect the overflow glaze liquid.
[0064] One side of the overflow tank 32 is connected to a second filter 37 installed on the top of the tabletop 1. One end of the tabletop 1 is connected to a feeding pipe 33. The bottom end of the second filter 37 is connected to a second connecting pipe 38. The bottom end of the first filter 35 is connected to a first connecting pipe 36. The second filter 37 can filter the overflow liquid. The second connecting pipe 38 can be used with the cooperation of a peristaltic pump 39 to transport the glaze liquid back to the glaze tank 31 for recycling. The feeding pipe 33 can be connected to an external pipe and is used for replenishment and initial glaze liquid addition. The first filter 35 can filter the glaze liquid inside the glaze tank 31 and, with the cooperation of the first connecting pipe 36 and the peristaltic pump 39, transport the glaze liquid back to the glaze tank 31 for recycling, so as to ensure the purity of the glaze liquid in the glaze tank 31 and reduce impurities.
[0065] A peristaltic pump 39 is fixedly installed on the top of the base plate 22. The second connecting pipe 38 and the first connecting pipe 36 pass through the output end of the peristaltic pump 39. The discharge ends of the second connecting pipe 38 and the first connecting pipe 36 are connected to a conveying pipe 310. The discharge end of the conveying pipe 310 is connected to the glaze pool 31. The conveying pipe 310 can centrally discharge the glaze liquid conveyed by the first connecting pipe 36 and the second connecting pipe 38 back into the glaze pool 31 through the peristaltic pump 39.
[0066] It achieves the advantages of assisting in glazing and filtering the glaze liquid. The glazing process can be completed directly on the ceramic wine bottle by dipping, and the overflow of the glaze liquid can be prevented during the dipping process. During continuous use, the glaze liquid can also be filtered to remove impurities inside, and it can be recycled after filtration, thereby reducing the waste of glaze liquid and saving glaze liquid loss.
[0067] When glazing ceramic wine bottles:
[0068] First, the first electric push rod 41 is activated to push the first circular plate 42 and the connected components upwards until it is above the glaze pool 31. At this time, the motor 44 is activated to drive the connected components to rotate clockwise through the second circular plate 45 and the second sleeve 46. It can perform forward and reverse operations, with a maximum of one revolution in each direction. The clockwise rotation here is 180 degrees, which is the opposite position of the current state. This is the clamping and feeding position, which will clamp the ceramic wine bottle that is externally conveyed and waiting to be glazed. During the clamping process, since it is located on the outside of the wine bottle, the first electric push rod 41 is pushed upwards again to make the mesh plate 69 contact the bottom of the wine bottle. At the same time, the third electric push rod 67 is activated, and the third electric push rod 67 pushes the pressure plate 68 to contact the mouth of the ceramic wine bottle and realize the upper and lower clamping operation. At this time, the material picking operation is completed. After picking up the material, it can be rotated counterclockwise to the position shown in the figure to wait for glazing.
[0069] At this point, the first electric push rod 41 needs to pull the clamped ceramic bottle downwards. During the downward movement, the glazing operation can be performed by choosing a vertical downward movement, an inclined downward movement, or an initial inclined downward movement followed by a slow return to a vertical position. When the tilt angle needs to be adjusted, the second electric push rod 53 is activated to push and pull the toothed plate 55 for horizontal sliding. At this time, it will slide and connect with the slide bar 57, ensuring the stability of horizontal movement. During the horizontal movement, the toothed plate 55 will mesh and drive the first gear 52 to rotate. The first gear 52 will then drive the middle second gear 63 to rotate directly through the shaft 51. At this time, the middle second gear 63 will simultaneously drive the second gears 63 on both sides and the connecting rod 62 to rotate through the timing belt 64. During the rotation of the shaft 51 and the connecting rod 62, they will directly rotate together through the mounting bracket 66 and the clamped ceramic bottle, further completing the angle fine-tuning operation. This adjustment operation can be performed simultaneously during the downward glazing process.
[0070] After the glazing is complete, it can be raised and then slowly rotated 90 degrees clockwise to the material feeding point to feed the material. After feeding the material, rotate it 90 degrees clockwise again to the material retrieval point to retrieve the material. Finally, rotate it 180 degrees counterclockwise to perform the glazing operation. Repeat this operation to continuously perform the glazing operation in the ceramic wine bottle processing process.
[0071] Due to the prolonged glazing process and the exposed top of the glaze tank 31, impurities inevitably exist inside the glaze. To avoid affecting the quality after glazing, continuous filtration is required. During filtration, based on the above, before immersion glazing, the glaze needs to be added to the glaze tank 31 through the feeding pipe 33 via an external glaze delivery pipe until the preset amount is reached. During immersion glazing, the glaze level inside the glaze tank 31 will rise, resulting in overflow. The overflowing glaze will directly enter the overflow tank 32 for collection, reducing glaze waste.
[0072] During filtration, the glaze liquid inside the overflow tank 32 first flows into the second filter 37 through the pipe for filtration, while the glaze liquid inside the glaze pool 31 is directly filtered through the first filter 35 at the bottom. The filtered glaze liquid is then transported through the first connecting pipe 36 and the second connecting pipe 38. During the process, the peristaltic pump 39 is started simultaneously and transported through the peristaltic pump 39 to the inside of the conveying pipe 310, and then discharged back into the glaze pool 31 for subsequent use. This creates a filtration and recycling effect, reducing glaze waste while ensuring the cleanliness of the glaze liquid during continuous glazing.
[0073] In addition, control valves are installed at the inlet and outlet of the above-mentioned pipelines to control their flow rate and ensure that the flow rate is adjusted to the required level.
[0074] 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 glazing device for processing ceramic wine bottles, characterized in that, Including the countertop (1): The bottom of the table (1) is provided with a support mechanism (2) for supporting the main body, the top of the table (1) is provided with a glaze storage mechanism (3) for storing glaze liquid, the top of the support mechanism (2) is provided with an adjustment mechanism (4) for adjusting the height, the inside of the adjustment mechanism (4) is provided with a material transfer mechanism (5) for micro-rotation, and one end of the material transfer mechanism (5) is provided with a clamping mechanism (6) for fixing the material. The adjustment mechanism (4) includes a push-pull assembly disposed on the top of the support mechanism (2) and a directional rotation assembly connected to the push-pull assembly; The material transfer mechanism (5) includes a transverse component disposed inside the directional rotation component and a transmission component connected to the transverse component; The clamping mechanism (6) includes a synchronization component disposed at one end of the transmission component and a protection component connected to the synchronization component, and a pressing component is disposed on one side of the protection component.
2. The glazing device for processing ceramic wine bottles according to claim 1, characterized in that: The support mechanism (2) includes pillars (21) fixedly installed around the bottom of the tabletop (1), and a base plate (22) is fixedly installed at the bottom of the pillars (21).
3. The glazing device for processing ceramic wine bottles according to claim 1, characterized in that: The push-pull assembly includes a first electric push rod (41) fixedly installed on the top of the base plate (22) and a first circular plate (42) fixed to the output end of the first electric push rod (41). A first sleeve (47) is fixedly installed on the outer side of the first circular plate (42).
4. The glazing device for processing ceramic wine bottles according to claim 3, characterized in that: The direction rotation assembly includes a motor (44) fixedly installed on the top of the first circular plate (42) and a second circular plate (45) keyed to the output shaft of the motor (44). A second sleeve (46) is fixedly installed on the outer side of the second circular plate (45). Both the outer side of the second sleeve (46) and the first sleeve (47) are slidably connected to a limiting strip (43) fixed to the table surface (1).
5. The glazing device for processing ceramic wine bottles according to claim 1, characterized in that: The transverse component includes a second electric push rod (53) fixedly installed on one side of the second sleeve (46) and a fixing block (54) fixed to the output end of the second electric push rod (53). A toothed plate (55) and a sliding groove (56) opened on the outside of the toothed plate (55) are fixedly installed on the top of the fixing block (54). A sliding strip (57) fixed to the second sleeve (46) is slidably connected inside the sliding groove (56).
6. The glazing device for processing ceramic wine bottles according to claim 5, characterized in that: The transmission assembly includes a shaft (51) that is rotatably connected through the inside of the second sleeve (46), and a first gear (52) that meshes with the gear plate (55) is fixedly installed on the outside of the shaft (51).
7. The glazing device for processing ceramic wine bottles according to claim 1, characterized in that: The protective component includes a support tube (65) fixedly installed on one side of the second sleeve (46), and a connecting box (61) is fixedly installed at one end of the support tube (65).
8. A glazing device for processing ceramic wine bottles according to claim 7, characterized in that: The synchronization component includes a connecting rod (62) rotatably connected to both ends of the inner cavity of the connecting box (61). A second gear (63) and a timing belt (64) meshing with the outer side of the connecting rod (62) and the shaft (51) are fixedly installed on the outer side of the connecting rod (62) and the shaft (51).
9. A glazing device for processing ceramic wine bottles according to claim 8, characterized in that: The pressing assembly includes a mounting bracket (66) fixedly installed at one end of the connecting rod (62) and the shaft (51). A third electric push rod (67) and a pressure plate (68) fixed to the output end of the third electric push rod (67) are fixedly installed on the top of the mounting bracket (66). A mesh plate (69) is fixedly installed on the bottom of one side of the mounting bracket (66).
10. A glazing device for processing ceramic wine bottles according to claim 1, characterized in that: The glaze storage mechanism (3) includes a glaze pool (31) fixedly installed on the top of the tabletop (1) and an overflow trough (32) fixed to the outside of the glaze pool (31). The bottom of the glaze pool (31) is connected to a first filter (35) and a bracket (34) fixed to the outside of the first filter (35). The bracket (34) is fixedly installed on the top of the base plate (22). The overflow trough (32) is connected to a second filter (37) installed on the top of the tabletop (1) on one side. The tabletop (1) is connected to a feeding pipe (33) at one end. The bottom end of the second filter (37) is connected to a second connecting pipe (38). The bottom end of the first filter (35) is connected to a first connecting pipe (36). A peristaltic pump (39) is fixedly installed on the top of the base plate (22). The second connecting pipe (38) and the first connecting pipe (36) pass through the output end of the peristaltic pump (39). The discharge ends of the second connecting pipe (38) and the first connecting pipe (36) are connected to a conveying pipe (310). The discharge end of the conveying pipe (310) is connected to the glaze pool (31).