An enamelling delivery device
By setting a control body assembly on the feeding rotary table, and using an electric telescopic rod and a conical inlet plate to cover the top of the blank, the problem of glaze affecting the interior of the blank is solved, and a better glazing effect is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- LILING KAIWEI CERAMICS CO LTD
- Filing Date
- 2025-06-21
- Publication Date
- 2026-05-29
AI Technical Summary
In the existing technology, during the glazing process of the formed blank, the open design at the top causes the glaze to affect the interior of the blank, thus affecting the glazing effect.
The feeding rotary table is equipped with a blank control assembly, including a first electric telescopic rod, a conical infeed plate and a contact retaining head. The top of the blank is protected by a cover flap, and the movement of the conical infeed plate and the contact retaining head is controlled by the electric telescopic rod to limit the position of the blank and prevent glaze from entering the interior.
It effectively protects the top of the blank, preventing the glaze from affecting the interior of the blank and improving the glazing effect.
Smart Images

Figure CN224296119U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of glazing conveying technology, and specifically relates to a glazing conveying device. Background Technology
[0002] Glazing is a key process in ceramic production. It refers to the process of applying glaze to the surface of the pre-fired blank and then firing it a second time. This process requires first firing the shaped blank, forming a glaze layer through methods such as dipping, spraying, and swirling, and finally firing it at a high temperature of about 1200℃ to melt and solidify the glaze. Based on the characteristics of the vessel shape, five mainstream glazing techniques have been formed: dipping, spraying, swirling, pouring, and brushing. Among them, the spraying method uses an air compressor to achieve uniform glaze coverage, the swirling method uses a rotating pouring motion to glaze the inner wall, and the surface glazing of ceramics can be carried out inside the glazing tank.
[0003] Currently, some methods use conveyor belts to transport the shaped blanks and use rotating discs to restrict the position of the shaped blanks. This allows for control of the position of the shaped blanks as they enter the glazing tank. When the shaped blanks enter the tank, the top end of the shaped blanks needs to be flush with the glaze liquid. However, the top of the shaped blanks is open, which can easily affect the interior of the shaped blanks. Utility Model Content
[0004] This utility model provides a glazing conveying device, which rotates the feeding turntable to drive the material to be glazed in the glazing tank. It can protect the top of the formed blank and avoid the glazing of the outside of the formed blank from affecting the inside of the formed blank, thereby improving the glazing effect.
[0005] This utility model provides the following technical solution: a glazing conveying device, including a feeding conveyor belt, a glazing tank and a feeding rotary disk, wherein the feeding rotary disk is provided with a plurality of blank control components, each blank control component including a first electric telescopic rod, a conical inlet plate and two contact fixing heads, the two contact fixing heads being symmetrically distributed, the conical inlet plate being located inside the blank, and both contact fixing heads being opposite to the inner wall of the blank, wherein a covering flap is fixedly connected to the top of the conical inlet plate, and the covering flap covers the top end face of the blank.
[0006] The outer wall of the contact retaining head is conical, and the center of the contact retaining head is opposite to the center of the formed blank.
[0007] The first electric telescopic rod is fixedly installed on the feeding rotary table, and several of the first electric telescopic rods are evenly distributed.
[0008] The first electric telescopic rod has a connecting column fixedly connected to its output end, and the connecting column is fixedly connected to the conical inlet plate.
[0009] The conical inlet plate has an installation hole, one end of which is open.
[0010] The contact retaining head is located inside the mounting hole, and the contact retaining head is made of polyurethane.
[0011] The conical inlet plate contains two second electric telescopic rods, the output ends of which are respectively fixedly connected to the two contact retention heads.
[0012] The beneficial effects of this utility model are:
[0013] The control assembly includes a first electric telescopic rod, a conical inlet plate, and two contact retaining heads. Whenever the feeding rotary disc faces the molded blank on the feeding conveyor belt, the connecting column can drive the conical inlet plate into the molded blank, allowing the cover flap to restrict the top position of the molded blank. At the same time, when the two contact retaining heads contact the inner wall of the molded blank, they can restrict the position of the molded blank. Rotating the feeding rotary disc drives the material to be glazed in the glazing tank, which can protect the top position of the molded blank and prevent glazing on the outside of the molded blank from affecting the inside of the molded blank, thus improving the glazing effect.
[0014] The parts of the device not covered herein are the same as or can be implemented using existing technologies. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 This is a top view of the present invention;
[0017] Figure 3 This is a schematic diagram of the structure of the central control embryo assembly of this utility model;
[0018] Figure 4 This is a schematic diagram of the conical inlet disc in this utility model;
[0019] In the diagram: 1. Feeding conveyor belt; 2. Glazing tank; 3. Feeding rotary table; 4. Control body assembly; 41. First electric telescopic rod; 42. Connecting column; 43. Conical inlet plate; 431. Mounting hole; 44. Second electric telescopic rod; 45. Contact retaining head; 46. Cover flap. Detailed Implementation
[0020] Please see Figures 1-4The present invention provides the following technical solution: including a feeding conveyor belt 1, a glazing tank 2 and a feeding rotary disk 3, the feeding rotary disk 3 is provided with a plurality of blank control body components 4, the blank control body components 4 include a first electric telescopic rod 41, a conical inlet disk 43 and two contact fixing heads 45, the two contact fixing heads 45 are symmetrically distributed, the conical inlet disk 43 is located in the forming blank, the two contact fixing heads 45 are opposite to the inner wall of the forming blank, and a covering flap 46 is fixedly connected to the top of the conical inlet disk 43, the covering flap 46 covers the top end face of the forming blank.
[0021] In this implementation scheme: the control body assembly 4 includes a first electric telescopic rod 41, a conical inlet plate 43, and two contact retaining heads 45. The two contact retaining heads 45 are symmetrically distributed. The conical inlet plate 43 is located inside the forming blank, and both contact retaining heads 45 are opposite to the inner wall of the forming blank. A cover flap 46 is fixedly connected to the top of the conical inlet plate 43, covering the top end face of the forming blank. Whenever the feeding rotary disk 3 faces the forming blank on the feeding conveyor belt 1, the connecting column 42 can drive the conical inlet plate 43 into the forming blank, so that the cover flap 46 can restrict the top position of the forming blank. At the same time, when the two contact retaining heads 45 contact the inner wall of the forming blank, they can restrict the position of the forming blank. The feeding rotary table 3 rotates to drive the material into the glazing tank 2 for glazing. Repeated motion can glaze the molded blanks on the feeding conveyor belt 1 sequentially, and can protect the top of the molded blanks to prevent glazing on the outside of the molded blanks from affecting the inside of the molded blanks, thus improving the glazing effect. The first electric telescopic rod 41 can control the movement of the conical inlet plate 43, so that the conical inlet plate 43 is connected to the molded blanks and can drive the molded blanks to move up and down, thereby facilitating feeding and entry into the glazing tank for glazing. Activating the second electric telescopic rod 44 can drive the contact fixing head 45 to move, and contact it at the inner wall of the molded blanks to restrict its position. When it is released, the second electric telescopic rod 44 can drive the contact fixing head 45 to retract.
[0022] The outer wall of the contact fixing head 45 is conical, and the center of the contact fixing head 45 is opposite to the center of the forming blank. The first electric telescopic rod 41 is fixedly installed on the feeding rotary disk 3. Several first electric telescopic rods 41 are evenly distributed. The output end of the first electric telescopic rod 41 is fixedly connected to the connecting column 42, and the connecting column 42 is fixedly connected to the conical inlet plate 43. The movement of the conical inlet plate 43 can be controlled by the first electric telescopic rod 41, so that the conical inlet plate 43 is connected to the forming blank and can drive the forming blank to move up and down, thereby facilitating feeding and entering the glazing pool for glazing.
[0023] The conical inlet plate 43 has a mounting hole 431, one end of which is open. The contact retaining head 45 can be placed inside the mounting hole 431 or moved out of the mounting hole 431 for use.
[0024] The contact retaining head 45 is located inside the mounting hole 431. The contact retaining head 45 is made of polyurethane. Two second electric telescopic rods 44 are fixedly installed inside the conical insert 43. The output ends of the two second electric telescopic rods 44 are fixedly connected to the two contact retaining heads 45 respectively. Activating the second electric telescopic rods 44 can drive the contact retaining head 45 to move and contact it at the inner wall of the molded blank to restrict its position. When it is released, the second electric telescopic rods 44 can drive the contact retaining head 45 to retract.
[0025] The working principle and usage process of this utility model: A cover flap 46 is fixedly connected to the top of the conical inlet plate 43. The cover flap 46 covers the top end face of the forming blank. Whenever the feeding rotary disc 3 faces the forming blank on the feeding conveyor belt 1, the connecting column 42 can drive the conical inlet plate 43 into the forming blank, so that the cover flap 46 can restrict the top position of the forming blank. At the same time, when the two contact fixing heads 45 contact the inner wall of the forming blank, they can restrict the position of the forming blank. The feeding rotary disc 3 rotates and drives the material to be glazed in the glazing tank 2. Repeated movement can glaze the material on the feeding conveyor belt 1. The formed blanks are glazed sequentially, and the top of the formed blanks can be protected to prevent glazing on the outside of the formed blanks from affecting the inside of the formed blanks, thus improving the glazing effect. The first electric telescopic rod 41 can control the movement of the conical inlet plate 43, so that the conical inlet plate 43 is connected to the formed blanks and can drive the formed blanks to move up and down, thereby facilitating feeding and entry into the glazing pool for glazing. Activating the second electric telescopic rod 44 can drive the contact fixing head 45 to move, and make it contact the inner wall of the formed blanks to restrict its position. When it is released, the second electric telescopic rod 44 can drive the contact fixing head 45 to retract.
Claims
1. A glazing conveying device, comprising a feeding conveyor belt (1), a glazing tank (2), and a feeding rotary disc (3), characterized in that: The feeding rotary disk (3) is provided with several control body components (4). The control body components (4) include a first electric telescopic rod (41), a conical inlet disk (43) and two contact retaining heads (45). The two contact retaining heads (45) are symmetrically distributed. The conical inlet disk (43) is located inside the forming blank. The two contact retaining heads (45) are opposite to the inner wall of the forming blank. A cover flap (46) is fixedly connected to the top of the conical inlet disk (43). The cover flap (46) covers the top end face of the forming blank.
2. The glazing conveying device according to claim 1, characterized in that: The outer wall of the contact retaining head (45) is conical, and the center of the contact retaining head (45) is opposite to the center of the formed blank.
3. The glazing conveying device according to claim 1, characterized in that: The first electric telescopic rod (41) is fixedly installed on the feeding rotary table (3), and several first electric telescopic rods (41) are evenly distributed.
4. The glazing conveying device according to claim 1, characterized in that: The output end of the first electric telescopic rod (41) is fixedly connected to a connecting column (42), and the connecting column (42) is fixedly connected to the conical inlet plate (43).
5. The glazing conveying device according to claim 1, characterized in that: The conical inlet plate (43) has an installation hole (431), one end of which is open.
6. A glazing conveying device according to claim 5, characterized in that: The contact retaining head (45) is located inside the mounting hole (431), and the contact retaining head (45) is made of polyurethane.
7. A glazing conveying device according to claim 1, characterized in that: Two second electric telescopic rods (44) are fixedly installed inside the conical inlet plate (43), and the output ends of the two second electric telescopic rods (44) are respectively fixedly connected to the two contact retaining heads (45).