A pouring device for ceramic slip casting equipment
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-19
- Publication Date
- 2026-08-11
AI Technical Summary
[0004]本实用新型的目的在于提供一种陶瓷注浆成型设备的倒浆装置,旨在解决现有技术中模具倒浆需要工人手动操作,导致工人劳动强度大,生产效率低的问题
Smart Images

Figure CN224616650U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ceramic forming equipment technology, specifically to a slurry pouring device for ceramic slurry forming equipment. Background Technology
[0002] The general production process of modern daily-use ceramics is as follows: mold pouring—forming—drying—slip casting—finished product. First, ordinary ceramic slurry is poured into the cavity of a plaster mold, and the mold shapes the ceramic body. After drying, a layer of ceramic slurry adheres to the inner wall of the plaster mold. The mold is then turned over to pour out the excess slurry. The plaster mold continues to absorb moisture from the ceramic slurry, gradually forming a ceramic body with a certain strength inside the mold. In the slip casting process, after the mold has been turned over and the slip has been cast, it needs to be rotated back to its original position before the ceramic body is removed from the mold.
[0003] Currently, all operations are done manually. The plaster molds are large and heavy, and workers need to rotate the molds twice, which involves flipping and turning them back. This results in high labor intensity, low production efficiency, and is not suitable for modern production. Utility Model Content
[0004] The purpose of this utility model is to provide a pouring device for ceramic slip casting equipment, which aims to solve the problem that the pouring of slip in the mold in the prior art requires manual operation by workers, resulting in high labor intensity and low production efficiency.
[0005] To achieve the above objectives, this utility model provides a pouring device for a ceramic slurry casting equipment, comprising a frame; a movable frame slidably disposed on the top of the frame; two sets of lifting guide rods vertically spaced on the movable frame, the two sets of lifting guide rods being vertically slidably connected to the movable frame via guide sleeves, and the lower ends of the two sets of lifting guide rods being provided with rotating connecting seats; a guide rod lifting mechanism disposed on the movable frame for driving the two sets of lifting guide rods to move up and down on the movable frame; and a flipping mechanism rotatably connected between the rotating connecting seats at the lower ends of the two sets of lifting guide rods for clamping and flipping a fixture containing a mold.
[0006] Furthermore, the flipping mechanism includes a flipping frame, a clamping plate, and a rotary motor. The two ends of the flipping frame are rotatably connected between the rotary connecting seat. Two parallel guide rods are arranged laterally on the flipping frame. The clamping plate is slidably sleeved on the guide rods and is located near the two ends of the flipping frame. A clamping plate drive cylinder is provided between the clamping plate and the side end of the flipping frame. The rotary motor is located outside the rotary connecting seat and is connected to one side end of the flipping frame via a shaft.
[0007] Furthermore, the two guide rods are longitudinally provided with opposing pressure plate cylinders, and the piston rod end of the pressure plate cylinder is provided with a pressure plate that extends and retracts toward the inner side of the two guide rods.
[0008] Furthermore, at least two sets of the pressure plate cylinders are provided opposite to each other and are spaced apart along the length direction of the two guide rods.
[0009] Furthermore, the flipping frame includes fixed plates disposed at both ends and guide rods that are parallel and spaced apart between the two fixed plates. The fixed plates are connected to the rotating connecting seat via a connecting shaft and a bearing seat. The fixed plates are provided with clamp locking holes.
[0010] Furthermore, the two ends of the movable frame are connected to the top of the frame body via guide rail sliders. The top of the frame body is provided with a longitudinal beam, and a rack is provided on one side of the longitudinal beam along its length direction. The movable frame is provided with a movable motor, and the output shaft end of the movable motor is connected to the rack via a gear.
[0011] Furthermore, the guide rod lifting mechanism includes a coupling drive motor, two transmission main shafts, and two lifting gear shafts. The coupling drive motor is connected to the movable frame via a mounting plate. One end of each of the two transmission main shafts is connected to the coupling hole of the coupling drive motor and is in a straight line. The other end of each of the two transmission main shafts is provided with a lifting gear. The two lifting gear shafts are vertically connected to the movable frame via a lifting guide sleeve and mesh with the lifting gears on the two transmission main shafts. The lower end of each lifting gear shaft is vertically connected to the top of the rotating connecting seat.
[0012] Furthermore, one end of each of the two main transmission shafts is provided with a secondary transmission shaft, the lifting gear is sleeved on the secondary transmission shaft, and the main transmission shaft and the secondary transmission shaft are connected by a coupling.
[0013] The slurry pouring device for ceramic slurry casting equipment provided by this utility model, compared with the prior art, has two sets of lifting guide rods that move up and down on the moving frame through a guide rod lifting mechanism. The flipping mechanism is rotatably connected between the rotating connecting seats at the lower ends of the two sets of lifting guide rods. When the moving frame moves at the top of the frame, it can drive the flipping mechanism to move synchronously. This can realize the quick positioning, clamping and continuous flipping operation of the clamp holding the mold, which can improve production efficiency and replace the manual handling and mold rotation operations, avoiding workers from repeatedly performing high-intensity physical labor and effectively reducing the intensity of manual labor. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the pouring device (equipped with clamps) of a ceramic slurry casting equipment according to the present invention;
[0015] Figure 2 for Figure 1 Schematic diagram of the middle clamp;
[0016] Figure 3 This is a three-dimensional structural diagram (hidden clamp) of the pouring device of a ceramic slurry casting equipment according to the present invention;
[0017] Figure 4 This is a schematic diagram of the hidden frame of the pouring device of a ceramic slurry casting equipment according to the present invention.
[0018] Explanation of reference numerals in the attached figures
[0019] 1-Bracket; 2-Clamp; 3-Plug-in shaft;
[0020] 10-Frame; 11-Longitudinal beam; 12-Rack;
[0021] 20-Moving frame; 21-Lifting guide rod; 22-Rotating connecting seat; 23-Moving motor;
[0022] 30 - Guide rod lifting mechanism; 31 - Coupling drive motor; 32 - Transmission main shaft; 321 - Transmission secondary shaft; 322 - Lifting gear; 33 - Lifting gear shaft;
[0023] 40-Tilting mechanism; 41-Tilting frame; 411-Fixing plate; 412-Guide rod; 413-Clamp locking hole; 42-Clamp clamping plate; 421-Clamping plate drive cylinder; 43-Rotary motor; 44-Pressure plate cylinder; 441-Pressure plate. Detailed Implementation
[0024] The present invention will be described in detail below with reference to specific embodiments.
[0025] In this utility model, when directional terms appear, they are used to facilitate the description of this utility model and simplify the description, rather than indicating or implying that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and should not be construed as limiting the specific protection scope of this utility model.
[0026] In this utility model, unless otherwise explicitly specified and limited, when terms such as "set in," "connected," or "linked" appear, these terms should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can also refer to a mechanical connection; they can refer to a direct connection or a connection through an intermediate medium; or they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0027] like Figures 1 to 4As shown, a slurry pouring device for a ceramic slurry casting equipment includes a frame 10, a movable frame 20, two sets of lifting guide rods 21, a guide rod lifting mechanism 30, and a flipping mechanism 40.
[0028] The frame 10 is used to be installed on the conveyor line of the ceramic slurry casting equipment. The movable frame 20 is slidably installed on the top of the frame 10 and slides along the longitudinal direction of the frame 10.
[0029] Two sets of lifting guide rods 21 are vertically spaced on the movable frame 20. The two sets of lifting guide rods 21 are vertically slidably connected to the movable frame 20 through guide sleeves. The lower ends of the two sets of lifting guide rods 21 are provided with rotating connecting seats 22.
[0030] The guide rod lifting mechanism 30 is mounted on the movable frame 20 and is used to drive the two sets of lifting guide rods 21 to move up and down on the movable frame 20. The flipping mechanism 40 is rotatably connected between the rotating connecting seats 22 at the lower ends of the two sets of lifting guide rods 21 and is used to hold the clamp 2 containing the mold for flipping and rotating.
[0031] Multiple clamps 2 can be provided to hold the mold, and multiple clamps 2 can be connected to a bracket 1 simultaneously. The two ends of the bracket 1 are provided with plug-in shafts 3 that cooperate with the flipping mechanism 40, so that the flipping mechanism 40 stably clamps the bracket 1 and drives the multiple clamps 2 on the bracket 1 to flip and rotate, thereby performing the pouring operation on the mold. It should be noted that the clamps 2 referred to in this embodiment include the bracket 1 and the multiple clamps 2 on the bracket 1.
[0032] In practice, the flipping mechanism 40 moves on the frame 10 via the movable frame 20 to position the clamp 2. The guide rod lifting mechanism 30 drives two sets of lifting guide rods 21 to move down synchronously, so that the flipping mechanism 40 clamps the clamp 2 on the conveyor line of the ceramic slurry molding equipment and lifts it to a certain height. Then, the flipping mechanism 40 drives the clamp 2 to flip, pour out the slurry in the mold, rotate and reset, and put the clamp 2 with the slurry poured out back on the conveyor line of the ceramic slurry molding equipment for conveying. Then, the slurry pouring operation is performed on the clamp 2 behind on the conveyor line.
[0033] In this embodiment, the flipping mechanism 40 includes a flipping frame, a clamping plate 42, and a rotary motor 43. The two ends of the flipping frame are rotatably connected between the rotary connecting seat 22. Two parallel guide rods are arranged laterally on the flipping frame. The clamping plate 42 is slidably sleeved on the guide rods and is located close to the two ends of the flipping frame. A clamping plate drive cylinder 421 is provided between the clamping plate 42 and the side end of the flipping frame. The rotary motor 43 is located outside the rotary connecting seat 22 and is connected to one side end of the flipping frame through a shaft.
[0034] The tilting frame includes fixed plates at both ends and guide rods that are parallel and spaced between the two fixed plates. The fixed plates are connected to the rotating connecting seat 22 by a connecting shaft and a bearing seat. The fixed plates are provided with clamp 2 locking holes.
[0035] In practical implementation, the fixed plates at both ends of the tilting frame are connected to the rotating connecting seats 22 via connecting shafts and bearing seats. Two guide rods are connected parallel and spaced between the two fixed plates. The tilting frame is driven by the rotary motor 43 to rotate between the rotating connecting seats 22 at the lower ends of the two sets of lifting guide rods 21. The clamping plate 42 is driven by the clamping plate drive cylinder 421 to move telescopically on the guide rods, clamping both ends of the clamp 2. The clamp 2 is connected to the insertion shaft 3 at the side end of the bracket 1 through the locking insertion hole on the fixed plate to prevent slippage during the tilting process.
[0036] In this embodiment, two guide rods are longitudinally provided with opposing pressure plate cylinders 44, and the piston rod end of the pressure plate cylinder 44 is provided with a pressure plate 441 that extends and retracts towards the inner side of the two guide rods. At least two sets of pressure plate cylinders 44 are provided opposite each other and are spaced apart along the length of the two guide rods.
[0037] In practice, before clamping the two ends of the clamp 2 by the clamping plate 42, the pressure plate 441 needs to be centered by the pressure plate cylinder 44 so that the locking hole of the clamp 2 on the clamping plate 42 can be smoothly inserted and connected with the insertion shaft 3 at the side end of the bracket 1.
[0038] In this embodiment, the two ends of the movable frame 20 are connected to the top of the frame 10 via guide rail sliders. The top of the frame 10 is provided with a longitudinal beam 11, and a rack 12 is provided on one side of the longitudinal beam 11 along its length direction. The movable frame 20 is provided with a movable motor 23, and the output shaft end of the movable motor 23 is connected to the rack 12 via gears.
[0039] In this embodiment, the guide rod lifting mechanism 30 includes a coupling drive motor 31, two transmission main shafts 32, and two lifting gear shafts 33. The coupling drive motor 31 is connected to the movable frame 20 through a mounting plate. One end of each of the two transmission main shafts 32 is connected to the coupling hole of the coupling drive motor 31 and is in a straight line. The other end of each of the two transmission main shafts 32 is provided with a lifting gear 322. The two lifting gear shafts 33 are vertically connected to the movable frame 20 through a lifting guide sleeve and mesh with the lifting gears 322 on the two transmission main shafts 32. The lower end of the lifting gear shaft 33 is vertically connected to the top of the rotating connecting seat 22.
[0040] In practice, the two transmission shafts 32 are connected to the movable frame 20 through bearing seats, and the shaft drive motor 31 drives the two transmission shafts 32 to rotate synchronously, thereby driving the two lifting gear shafts 33 to move up and down synchronously.
[0041] In this embodiment, a transmission auxiliary shaft 321 is provided at one end of each of the two main transmission shafts 32. A lifting gear 322 is sleeved on the transmission auxiliary shaft 321, and the main transmission shafts 32 and the transmission auxiliary shaft 321 are connected by a coupling. The transmission auxiliary shaft 321 is connected to the main transmission shaft 32 by the coupling to compensate for shaft misalignment.
[0042] The slurry pouring device of the ceramic slurry casting equipment provided by this utility model, compared with the prior art, has two sets of lifting guide rods 21 that move up and down on the moving frame 20 through the guide rod lifting mechanism 30. The flipping mechanism 40 is rotatably connected between the rotating connecting seats 22 at the lower end of the two sets of lifting guide rods 21. When the moving frame 20 moves at the top of the frame 10, it can drive the flipping mechanism 40 to move synchronously. This can realize the quick positioning, clamping and continuous flipping operation of the clamp 2 holding the mold, which can improve production efficiency and replace the manual handling and mold rotation operation, avoiding repeated high-intensity physical labor by workers and effectively reducing the intensity of manual labor.
[0043] Where there is no conflict, the above embodiments and features can be combined with each other.
[0044] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit the scope of protection of this utility model. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this utility model without departing from the essence and scope of the technical solutions of this utility model.
Claims
1. A slurry pouring device for a ceramic slip casting molding equipment, characterized in that, include: Frame; A movable frame is slidably mounted on top of the frame body; Two sets of lifting guide rods are vertically spaced on the movable frame. The two sets of lifting guide rods are vertically slidably connected to the movable frame through guide sleeves. The lower ends of the two sets of lifting guide rods are provided with rotating connecting seats. A guide rod lifting mechanism is installed on the movable frame and is used to drive the two sets of lifting guide rods to move up and down on the movable frame; The flipping mechanism is rotatably connected between the rotating connecting seats at the lower ends of the two sets of lifting guide rods, and is used to hold the fixture containing the mold for flipping and rotating.
2. The slurry pouring device for a ceramic slip casting equipment according to claim 1, characterized in that, The flipping mechanism includes a flipping frame, a clamping plate, and a rotary motor. The two ends of the flipping frame are rotatably connected between the rotary connecting seat. Two parallel guide rods are arranged laterally on the flipping frame. The clamping plate is slidably sleeved on the guide rods and is located near the two ends of the flipping frame. A clamping plate drive cylinder is provided between the clamping plate and the side end of the flipping frame. The rotary motor is located outside the rotary connecting seat and is connected to one side end of the flipping frame via a shaft.
3. The slurry pouring device for a ceramic slip casting equipment according to claim 2, characterized in that, The two guide rods are longitudinally provided with opposing pressure plate cylinders, and the piston rod end of the pressure plate cylinder is provided with a pressure plate that extends and retracts towards the inside of the two guide rods.
4. The slurry pouring device for a ceramic slurry casting equipment according to claim 3, characterized in that, At least two sets of pressure plate cylinders are provided opposite to each other and are spaced apart along the length of the two guide rods.
5. The slurry pouring device for a ceramic slurry casting equipment according to claim 2, characterized in that, The flipping frame includes fixed plates at both ends and guide rods that are parallel and spaced apart between the two fixed plates. The fixed plates are connected to the rotating connecting seat through a connecting shaft and a bearing seat. The fixed plates are provided with clamp locking holes.
6. The slurry pouring device for a ceramic slip casting equipment according to claim 1, characterized in that, The two ends of the mobile frame are connected to the top of the frame body via guide rail sliders. The top of the frame body is provided with a longitudinal beam. A rack is provided on one side of the longitudinal beam along its length. The mobile frame is provided with a mobile motor. The output shaft end of the mobile motor is connected to the rack via a gear.
7. The slurry pouring device for a ceramic slip casting equipment according to claim 1, characterized in that, The guide rod lifting mechanism includes a coupling drive motor, two transmission main shafts, and two lifting gear shafts. The coupling drive motor is connected to the movable frame via a mounting plate. One end of each of the two transmission main shafts is connected to the coupling hole of the coupling drive motor and is in a straight line. The other end of each of the two transmission main shafts is provided with a lifting gear. The two lifting gear shafts are vertically connected to the movable frame via a lifting guide sleeve and mesh with the lifting gears on the two transmission main shafts. The lower end of each lifting gear shaft is vertically connected to the top of the rotating connecting seat.
8. The slurry pouring device for a ceramic slip casting equipment according to claim 7, characterized in that, One end of each of the two main drive shafts is provided with a secondary drive shaft, the lifting gear is sleeved on the secondary drive shaft, and the main drive shaft and the secondary drive shaft are connected by a coupling.