An adjustable ceramic figurine glazing device

By designing an adjustable ceramic ornament glazing device, the problem of the existing device's inflexibility in adjustment was solved, realizing comprehensive glazing treatment of ceramic blanks and improving glazing efficiency and quality.

CN224391468UActive Publication Date: 2026-06-23JINGDEZHEN RUSI CERAMICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JINGDEZHEN RUSI CERAMICS CO LTD
Filing Date
2025-07-23
Publication Date
2026-06-23

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Abstract

The utility model discloses an adjustable ceramic ornament glaze spraying device relates to ceramic glaze spraying technical field, including operation platform, the rotary platform for being used for supporting the ceramic body to the operation platform, the extension frame is fixed with the spray gun of the rotary platform to, the rotary platform rotatory installation has a plurality of ring direction even distribution's pivot, and the output shaft of drive motor is connected with the belt pulley mechanism between the transmission of central shaft. The utility model discloses the sliding frame of setting can be along the arc -shaped guide frame sliding under the drive of sliding drive component, so that the spray gun can move relative to ceramic blank, realizes the glaze spraying position of ceramic blank to adjust, realizes the overall glaze spraying processing of ceramic blank along with the rotation of rotary platform, greatly promotes the glaze spraying processing efficiency of ceramic blank, and a plurality of clamping plates push against ceramic blank, so that ceramic blank can adjust to the central position of rotary platform, and effectively improve the rotation stability and glaze spraying processing quality of ceramic blank.
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Description

Technical Field

[0001] This utility model relates to the field of ceramic glazing technology, specifically an adjustable ceramic ornament glazing device. Background Technology

[0002] Ceramics is a general term for pottery and porcelain. Traditional ceramics, also known as ordinary ceramics, are products made from natural silicates such as clay as the main raw materials. Modern ceramics, also known as new ceramics, fine ceramics, or special ceramics, are often made from non-silicate chemical raw materials or artificial synthetic raw materials, such as oxides and non-oxides. Ceramics have many advantages such as excellent insulation, corrosion resistance, high temperature resistance, high hardness, low density, and radiation resistance.

[0003] In the processing of ceramic ornaments, glaze is applied to the surface of the ceramic body by atomizing glaze slurry using a spray gun or sprayer, and then the glazed ceramic body is fired. However, existing glazing devices have poor adjustability and cannot be flexibly adjusted according to the size differences of different ceramic bodies, which greatly restricts the glazing efficiency of ceramic bodies. Therefore, an adjustable glazing device for ceramic ornaments is proposed to solve the above technical problems. Utility Model Content

[0004] The purpose of this invention is to provide an adjustable ceramic ornament glazing device to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] An adjustable ceramic ornament glazing device includes an operating table. A rotating platform for supporting the ceramic blank is rotatably mounted on the operating table. An arc-shaped guide frame is fixed on the operating table. A sliding frame is mounted on the arc-shaped guide frame. A sliding drive assembly for driving the sliding frame to slide relative to the arc-shaped guide frame is mounted on the sliding frame. An extension frame is slidably mounted on the sliding frame. A spray gun facing the rotating platform is fixed on the extension frame. Several circumferentially evenly distributed rotating shafts are rotatably mounted on the rotating platform. A clamping plate is fixed on each rotating shaft. A rotating ring plate is rotatably mounted on the bottom of the rotating platform. An adjustment assembly for driving the rotating shafts to rotate is mounted on the rotating ring plate. A central shaft is coaxially fixed to the bottom of the rotating platform. A drive motor is mounted on the bottom of the operating table. A pulley mechanism is connected between the output shaft of the drive motor and the central shaft.

[0007] As an improvement of this utility model: the sliding drive assembly includes a traveling gear rotatably mounted on the sliding frame, an outer arc rack that meshes with the traveling gear is fixed on the arc-shaped guide frame, and a servo motor is fixed on the sliding frame, with the output shaft of the servo motor being coaxially fixed with the traveling gear.

[0008] As an improvement of this utility model: a friction column is slidably installed on the sliding frame, one end of the friction column is in frictional contact with the arc-shaped guide frame, and a support plate is fixed to the other end of the friction column. A spring ring sleeved on the friction column is fixed between the support plate and the sliding frame.

[0009] As an improvement of this utility model: a screw is rotatably mounted on the sliding frame, a threaded sleeve fixed to the extension frame is threaded onto the screw, and a turning wheel is fixed to the top of the screw.

[0010] As an improvement of this utility model: the adjustment assembly includes an inner arc rack fixed to the inner wall of the rotating ring plate, an adjustment gear that meshes with the inner arc rack is fixedly sleeved on the rotating shaft, and a handle is fixed to the side wall of the rotating ring plate.

[0011] As an improvement of this utility model: a lever is slidably mounted on the rotating platform, a connecting spring is fixed between the lever and the rotating platform, a plurality of wedge grooves are evenly distributed along the arc on the rotating ring plate, and a wedge block that is adapted to be inserted into the wedge groove is fixed on the lever.

[0012] Compared with the prior art, the beneficial effects of this utility model are:

[0013] The sliding frame in this invention can slide along the arc-shaped guide under the drive of the sliding drive component, allowing the spray gun to move relative to the ceramic blank and adjust the glazing position of the ceramic blank. As the rotary table rotates, the ceramic blank is fully glazed, greatly improving the glazing processing efficiency. The clamping plates can rotate and adjust under the drive of the adjustment component, allowing multiple clamping plates to push against the ceramic blank, adjusting the ceramic blank to the center position of the rotary table, effectively improving the rotational stability of the ceramic blank and the glazing processing quality. Attached Figure Description

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

[0015] Figure 2 This utility model Figure 1 A structural diagram from a certain perspective;

[0016] Figure 3 This is a schematic diagram showing the connection of components such as the rotary table, rotating ring plate, inner arc rack, and adjusting gear in this utility model.

[0017] Figure 4 In this utility model Figure 3 A partial structural diagram;

[0018] Figure 5This is a schematic diagram showing the connection of components such as the sliding frame, sliding drive assembly, and spray gun in this utility model;

[0019] Figure 6 For the present utility model Figure 5 A structural diagram from a certain perspective.

[0020] In the diagram: 1-Operating table, 2-Arc-shaped guide frame, 3-Rotating table, 4-Handle, 5-Turning wheel, 6-Clamping plate, 7-Sliding frame, 8-Servo motor, 9-Outer arc rack, 10-Traveling gear, 11-Spray gun, 12-Drive motor, 13-Pulley, 14-Rotating shaft, 15-Threaded sleeve, 16-Pulley mechanism, 17-Rotating ring plate, 18-Connecting spring, 19-Inner arc rack, 20-Adjusting gear, 21-Central shaft, 22-Wedge block, 23-Wedge groove, 24-Screw, 25-Friction column, 26-Spring ring, 27-Support plate, 28-Extension frame. Detailed Implementation

[0021] The technical solution of this utility model will be further described in detail below with reference to specific embodiments:

[0022] First Embodiment

[0023] Please see Figures 1-6 An adjustable ceramic ornament glazing device includes an operating table 1, a rotating platform 3 for supporting the ceramic blank rotatably mounted on the operating table 1, an arc-shaped guide frame 2 fixed on the operating table 1, a sliding frame 7 mounted on the arc-shaped guide frame 2, a sliding drive assembly for driving the sliding frame 7 relative to the arc-shaped guide frame 2, an extension frame 28 slidably mounted on the sliding frame 7, a spray gun 11 facing the rotating platform 3 fixed on the extension frame 28, a plurality of circumferentially evenly distributed rotating shafts 14 rotatably mounted on the rotating platform 3, a clamping plate 6 fixed on each rotating shaft 14, a rotating ring plate 17 rotatably mounted on the bottom of the rotating platform 3, an adjustment assembly for driving the rotating shafts 14 to rotate mounted on the rotating ring plate 17, a central shaft 21 coaxially fixed on the bottom of the rotating platform 3, a drive motor 12 mounted on the bottom of the operating table 1, and a pulley mechanism 16 drivingly connecting the output shaft of the drive motor 12 and the central shaft 21.

[0024] When performing glazing processing on ceramic blanks using this device, the ceramic blanks are placed on the rotary table 3, and the sliding drive component can drive the sliding frame 7 to slide relative to the arc-shaped guide frame 2, thereby adjusting the glazing position of the spray gun 11. By rotating the ceramic blanks through the rotary table 3, the spray gun 11 can perform glazing processing on different positions of the ceramic blanks.

[0025] Specifically, the sliding drive assembly of this device includes a traveling gear 10 rotatably mounted on the sliding frame 7, an outer arc rack 9 fixed on the arc-shaped guide frame 2 and meshing with the traveling gear 10, a servo motor 8 fixed on the sliding frame 7, and the output shaft of the servo motor 8 being coaxially fixed with the traveling gear 10.

[0026] The servo motor 8 can drive the walking gear 10 to rotate clockwise or counterclockwise. The walking gear 10 meshes with the outer arc rack 9, which allows the sliding frame 7 to slide relative to the arc guide frame 2, thereby adjusting the glazing position of the spray gun 11 and ensuring that the spray gun 11 performs comprehensive glazing treatment on the ceramic blank.

[0027] In addition, a friction column 25 is slidably mounted on the sliding frame 7. One end of the friction column 25 frictionally abuts against the arc-shaped guide frame 2, and the other end of the friction column 25 is fixed with a support plate 27. A spring ring 26, sleeved on the friction column 25, is fixed between the support plate 27 and the sliding frame 7. Under the elastic action of the spring ring 26, the spring ring 26 pulls the support plate 27, and the support plate 27 drives the friction column 25 to frictionally abut against the arc-shaped guide frame 2, so that the sliding frame 7 can be positioned in time after sliding adjustment, ensuring the stable glazing of the spray gun 11.

[0028] Additionally, a screw 24 is rotatably mounted on the sliding frame 7. A threaded sleeve 15, which is fixed to the extension frame 28, is threaded onto the screw 24. A turning wheel 5 is fixed to the top of the screw 24. By turning the turning wheel 5, the screw 24 can be rotated, and the screw 24 drives the threaded sleeve 15 to rotate. At this time, the threaded sleeve 15 drives the extension frame 28 to slide, thereby realizing the sliding extension of the spray gun 11 relative to the sliding frame 7. This allows the spray gun 11 to get closer to the ceramic blank, ensuring that the spray gun 11 can fully spray glaze onto the ceramic blank.

[0029] Second Embodiment

[0030] Please see Figures 1-6 In addition to the first embodiment, the adjustment assembly of this device includes an inner arc rack 19 fixed to the inner wall of the rotating ring plate 17, an adjustment gear 20 that meshes with the inner arc rack 19 is fixedly sleeved on the rotating shaft 14, and a handle 4 is fixed to the side wall of the rotating ring plate 17.

[0031] The ceramic blank is placed on the rotating table 3. The rotating ring plate 17 is rotated by the handle 4. The rotating ring plate 17 drives the inner arc rack 19 on it to rotate. The inner arc rack 19 drives the adjusting gear 20 to rotate, which in turn enables the rotating shaft 14 to drive the clamping plate 6 to rotate. The multiple clamping plates 6 are arranged to converge toward the center of the rotating table 3, realizing the position adjustment effect of the ceramic blank, so that the ceramic blank can be moved to the central area of ​​the rotating table 3. The drive motor 12 drives the central shaft 21 to rotate through the pulley mechanism 16. The central shaft 21 drives the rotating table 3 to rotate, thus realizing the stable rotation of the ceramic blank and significantly improving the glazing effect of the ceramic blank.

[0032] Additionally, a lever 13 is slidably mounted on the rotary table 3, and a connecting spring 18 is fixed between the lever 13 and the rotary table 3. Several wedge grooves 23 are evenly distributed along an arc on the rotating ring plate 17, and wedge blocks 22 that are compatible with the wedge grooves 23 are fixed on the lever 13. During the rotation of the rotating ring plate 17, under the pulling action of the connecting spring 18, the lever 13 can drive the wedge blocks 22 to insert into the corresponding wedge grooves 23, achieving a locking effect on the rotating ring plate 17. That is, after the ceramic blank is centered and adjusted, by adjusting the clamping plate 6 away from the ceramic blank, adjusting the position of the clamping plate 6 can achieve locking without interfering with the ceramic blank, ensuring that the glaze sprayed by the spray gun 11 can fully cover the surface of the ceramic blank.

[0033] In summary, the sliding frame 7 in this invention can slide along the arc-shaped guide frame 2 under the drive of the sliding drive component, allowing the spray gun 11 to move relative to the ceramic blank, thereby adjusting the glazing position of the ceramic blank. As the rotary table 3 rotates, the ceramic blank is fully glazed, greatly improving the glazing processing efficiency. The clamping plates 6 can rotate and adjust under the drive of the adjustment component, allowing multiple clamping plates 6 to push against the ceramic blank, ensuring that the ceramic blank is at the center position of the rotary table 3, effectively improving the rotational stability of the ceramic blank and the glazing processing quality.

Claims

1. An adjustable ceramic ornament glazing device, comprising an operating table (1), wherein a rotating platform (3) for supporting a ceramic blank is rotatably mounted on the operating table (1), and an arc-shaped guide frame (2) is fixed on the operating table (1), characterized in that, A sliding frame (7) is installed on the arc-shaped guide frame (2). A sliding drive assembly for driving it to slide relative to the arc-shaped guide frame (2) is installed on the sliding frame (7). An extension frame (28) is slidably installed on the sliding frame (7). A spray gun (11) facing the rotary table (3) is fixed on the extension frame (28). Several circumferentially evenly distributed rotating shafts (14) are rotatably installed on the rotary table (3). A clamping plate (6) is fixed on each rotating shaft (14). A rotating ring plate (17) is rotatably installed at the bottom of the rotary table (3). An adjustment assembly for driving the rotating shaft (14) to rotate is installed on the rotating ring plate (17). A central shaft (21) is coaxially fixed at the bottom of the rotary table (3). A drive motor (12) is installed at the bottom of the operating table (1). A belt pulley mechanism (16) is connected between the output shaft of the drive motor (12) and the central shaft (21).

2. The adjustable ceramic ornament glazing device according to claim 1, characterized in that, The sliding drive assembly includes a traveling gear (10) rotatably mounted on the sliding frame (7), an outer arc rack (9) that meshes with the traveling gear (10) is fixed on the arc-shaped guide frame (2), and a servo motor (8) is fixed on the sliding frame (7), with the output shaft of the servo motor (8) coaxially fixed with the traveling gear (10).

3. The adjustable ceramic ornament glazing device according to claim 2, characterized in that, A friction column (25) is slidably mounted on the sliding frame (7). One end of the friction column (25) rubs against the arc-shaped guide frame (2). The other end of the friction column (25) is fixed with a support plate (27). A spring ring (26) sleeved on the friction column (25) is fixed between the support plate (27) and the sliding frame (7).

4. The adjustable ceramic ornament glazing device according to claim 1, characterized in that, A screw (24) is rotatably mounted on the sliding frame (7). A threaded sleeve (15) fixed to the extension frame (28) is threaded onto the screw (24). A screw wheel (5) is fixed to the top of the screw (24).

5. The adjustable ceramic ornament glazing device according to claim 1, characterized in that, The adjustment assembly includes an inner arc rack (19) fixed to the inner wall of the rotating ring plate (17), an adjustment gear (20) that meshes with the inner arc rack (19) is fixedly sleeved on the rotating shaft (14), and a handle (4) is fixed to the side wall of the rotating ring plate (17).

6. The adjustable ceramic ornament glazing device according to claim 5, characterized in that, A lever (13) is slidably mounted on the rotating platform (3). A connecting spring (18) is fixed between the lever (13) and the rotating platform (3). Several wedge grooves (23) are evenly distributed along the arc on the rotating ring plate (17). A wedge block (22) that is compatible with the wedge groove (23) is fixed on the lever (13).