Ceramic slurry pouring mechanism
By designing a ceramic pouring mechanism, and utilizing a combination of a moving frame, lifting components, and clamping components, the problem of residual slurry inside the mold was solved, enabling efficient pouring of slurry from the mold and flexible adjustment of the pouring angle.
Patent Information
- Application Number
- CN202520218846.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-12
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2035-02-12
AI Technical Summary
In existing technologies, the problem of residual slurry in the mold can negatively affect ceramic molding and demolding, and there is an urgent need for an effective slurry pouring mechanism to solve this problem.
A ceramic slurry pouring mechanism was designed, including a frame, a moving frame, a lifting component, and a clamping component. The moving module enables the horizontal movement of the mold, the lifting component enables the vertical movement of the mold, the clamping component enables the firm clamping of the mold, and the rotating shaft drives the mold to move and rotate in multiple directions to completely pour out excess slurry.
It enables complete pouring of slurry from the mold, and the pouring height and angle can be freely adjusted, ensuring the efficient execution of the pouring process.
Smart Images

Figure CN223671513U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a slurry pouring mechanism technical field, especially a kind of ceramic slurry pouring mechanism. BACKGROUND
[0002] During the production of ceramic, first, the mold is positioned, then the mold is transported to the slurry pouring station, and slurry is poured into the mold, after the slurry is formed, it is taken out from the mold, and the ceramic body is obtained.
[0003] The slurry pouring station is completed by the slurry pouring mechanism, the slurry pouring mechanism pours slurry into the mold, and the slurry is formed in the mold. After the formation, there is usually residual slurry in the mold, which may have a certain negative impact on the formation or demolding. Therefore, there is an urgent need for a slurry pouring mechanism that can pour out the excess slurry in the mold. SUMMARY
[0004] In view of the defects of the prior art, the purpose of the utility model is to provide a ceramic slurry pouring mechanism to solve the problem of residual slurry in the mold.
[0005] The purpose of the utility model is achieved by the following technical solutions:
[0006] A ceramic slurry pouring mechanism, comprising a rack and a moving frame, the rack is provided with a moving module on both sides, the moving frame is movable on the moving module, the moving frame is provided with a lifting assembly, the bottom of the lifting assembly is fixed with a lifting frame, the lifting frame is installed with a rotating shaft, the rotating shaft is fixed with a plurality of clamping assemblies, the lifting frame is fixed with a driving assembly for driving the rotating shaft to rotate, and the axis direction of the rotating shaft is perpendicular to the moving direction of the moving frame.
[0007] Further, the moving module comprises a first driving motor and a screw rod, the first driving motor is fixed on the rack and used to drive the screw rod to rotate, the screw rod is installed on the rack, and the screw rod is threadedly connected with both sides of the moving frame.
[0008] Further, the moving module further comprises a moving slide rail, the moving slide rail is fixed on the rack and arranged on one side of the screw rod, and both sides of the moving frame are fixed with sliding blocks matched with the moving slide rail.
[0009] Further, the lifting assembly comprises a second driving motor and two worm gear elevators, the two worm gear elevators are installed on the moving frame, and a connecting rod is fixed between the worms thereon, and the second driving motor is used to drive one of the worms to rotate.
[0010] Further, two end bearing seats are arranged on the lifting frame, end bearings are arranged in the end bearing seats, and the rotating shaft is installed on the end bearings.
[0011] Further, the driving assembly comprises a third driving motor, a main sprocket, a slave sprocket and a chain, the third driving motor is fixed on the lifting frame, the main sprocket is fixed on the output shaft of the third driving motor, the slave sprocket is fixed on the end of the rotating shaft, and the chain is arranged between the main sprocket and the slave sprocket.
[0012] Further, the driving assembly has two groups and is arranged on the two sides of the lifting frame respectively, the rotating shaft has two, the two rotating shafts are in the same straight line, and one group of the driving assembly is used for driving one rotating shaft; a double-head bearing seat is fixed in the middle part of the lifting frame, two middle bearings are arranged on the double-head bearing seat, and the inner side end of the rotating shaft is installed on the middle bearing.
[0013] Further, the clamping assembly comprises a fixed arm, a double-head cylinder and two clamping plates, the fixed arm is fixed on the rotating shaft, the double-head cylinder is fixed on the fixed arm, the two clamping plates are fixed on the two telescopic ends of the double-head cylinder respectively, and the telescopic direction of the double-head cylinder is parallel to the axial length direction of the rotating shaft.
[0014] Further, the inner side of the clamping plate is fixed with an antiskid block.
[0015] Further, a guide sleeve is fixed on the moving frame, a guide rod is fixed on the lifting frame, and the top of the guide rod is sleeved in the guide sleeve.
[0016] The beneficial effects of the utility model are:
[0017] The utility model discloses a movable module is set up, realizes the horizontal linear movement of moving frame, sets up lifting assembly, realizes the up and down movement of lifting frame, sets up clamping assembly, realizes the firm clamping of mould, sets up rotating shaft, drives clamping assembly and mould, realizes the slurry pouring process, the slurry pouring height of the utility model can be freely adjusted, the front and back horizontal horizontal distance can be freely adjusted, and the rotation angle of the mould can also be adjusted at will, that is, the angle of slurry pouring can be adjusted at will, through multidirectional movement and rotation, the excess slurry in the mould can be poured out, and the slurry pouring process is realized. ACCURACY OF DRAWINGS
[0018] Figure 1 It is the structure schematic diagram of ceramic slurry pouring mechanism of the utility model;
[0019] Figure 2 It is the front view of ceramic slurry pouring mechanism of the utility model;
[0020] Figure 3 It is the structure schematic diagram of clamping assembly in the utility model;
[0021] Figure 4 Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model.
[0022] Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. Figure 1 is a schematic view of the positional relationship between the rotating shaft and the clamping assembly in the utility model. DETAILED DESCRIPTION
[0023] In order to make the technical problems, technical solutions and beneficial effects solved by the utility model clearer and more apparent, the utility model is further described below in combination with the drawings and embodiments.
[0024] As shown in Figures 1-4 The utility model provides a ceramic slurry pouring mechanism, including frame 1 and moving frame 2, the both sides of frame 1 are equipped with mobile module 3, moving frame 2 is movable on mobile module 3, moving frame 2 is equipped with lifting assembly 4, the bottom of lifting assembly 4 is fixed with lifting frame 5, lifting frame 5 is installed with rotating shaft 6, rotating shaft 6 is fixed with multiple clamping assemblies 7, lifting frame 5 is fixed with the drive assembly 8 for driving rotating shaft 6 rotation, and the axial length direction of rotating shaft 6 is perpendicular to the moving direction of moving frame 2.
[0025] Clamping assembly 7 can clamp mould 9, rotating shaft 6 drives clamping assembly 7 and mould 9 to rotate together, stops when rotating to a specific angle, and the excess slurry in mould 9 is poured out, continues to rotate, and the excess slurry is continuously poured out, finally rotating shaft 6 reverses, moving frame 2 drives lifting frame 5 to move, lifting frame 5 descends, and clamping assembly 7 releases mould 9, to complete a slurry pouring work.
[0026] As shown in Figure 1 Movable module 3 includes first drive motor 301 and screw rod 302, first drive motor 301 is fixed on frame 1 and is used to drive screw rod 302 to rotate, screw rod 302 is installed on frame 1, and screw rod 302 is screw connected with the both sides of moving frame 2.First drive motor 301 is fixedly connected with screw rod 302 through a shaft coupling, first drive motor 301 drives screw rod 302 to rotate, moving frame 2 carries clamping assembly 7 and moves along screw rod 302, moving frame 2 cooperates with mobile module 3, can move clamping assembly 7 to the appropriate position, and facilitates clamping assembly 7 to clamp or release mould 9.
[0027] Further, the mobile module 3 further comprises a mobile slide rail 303 fixed on the rack 1 and arranged on one side of the screw rod 302, and the two sides of the mobile frame 2 are fixed with sliding blocks 10 matched with the mobile slide rail 303. Through the mutual cooperation of the sliding blocks 10 and the mobile slide rail 303, the stability of the mobile frame 2 during movement is further increased, and the stable movement of the mobile frame 2 is ensured.
[0028] Further, the lifting assembly 4 comprises a second driving motor 401 and two worm gear elevators 402, the two worm gear elevators 402 are installed on the mobile frame 2, and a connecting rod 403 is fixed between the worms thereon, and the second driving motor 401 is used to drive one of the worms to rotate. The two worm gear elevators 402 are symmetrically installed on the mobile frame 2, ensuring the stability of lifting, and the mode of using one motor to simultaneously drive the two worm gear elevators 402 reduces the driving source while ensuring the synchronous lifting of the two worm gear elevators 402. The worm gear elevator 402 adopts the existing structure, which will not be described here.
[0029] Further, the lifting frame 5 is provided with two end bearing seats 11, the end bearing seats 11 are provided with end bearings 12, and the rotating shaft 6 is installed on the end bearings 12.
[0030] As shown in Figure 2 , the driving assembly 8 comprises a third driving motor 801, a main sprocket 802, a slave sprocket 803 and a chain (not shown in the drawing), the third driving motor 801 is fixed on the lifting frame 5, the main sprocket 802 is fixed on the output shaft of the third driving motor 801, the slave sprocket 803 is fixed on the end of the rotating shaft 6, and the chain is arranged between the main sprocket 802 and the slave sprocket 803. The rotation of the rotating shaft 6 is realized through the driving assembly 8, the third driving motor 801 is fixed on the lifting frame 5, which can reasonably utilize the space while ensuring the synchronous lifting of the third driving motor 801 and the rotating shaft 6. The power of the third driving motor 801 is transmitted to the rotating shaft 6 through the chain, and the rotation angle of the rotating shaft 6 is adjusted by controlling the operation of the third driving motor 801, thereby realizing the back-piling.
[0031] As shown in Figure 2 and Figure 4 , the driving assembly 8 has two groups and is arranged on the two sides of the lifting frame 5, the rotating shaft 6 has two, the two rotating shafts 6 are on the same straight line, and one group of driving assemblies 8 is used to drive one rotating shaft 6; the middle part of the lifting frame 5 is fixed with a double-head bearing seat 13, the double-head bearing seat 13 is provided with two middle bearings 14, and the inner side end of the rotating shaft 6 is installed on the middle bearings 14. Two rotating shafts 6 are arranged, and multiple clamping assemblies 7 can be arranged on each rotating shaft 6, thereby ensuring the stability of the rotating shaft 6 when it is stressed.
[0032] As shown in Figure 3As shown, the clamping assembly 7 includes a fixed arm 701 fixed on the rotating shaft 6, a double-head pneumatic cylinder 702 fixed on the fixed arm 701, and two clamping plates 703 fixed on the two telescopic ends of the double-head pneumatic cylinder 702 respectively, and the telescopic direction of the double-head pneumatic cylinder 702 is parallel to the axial length direction of the rotating shaft 6. The double-head pneumatic cylinder 702 is adopted to clamp the mold 9 simultaneously, thereby ensuring the reliability of clamping. The inner side of the clamping plate 703 is fixed with an anti-skid block 704, thereby further increasing the stability of clamping.
[0033] As shown in the figure, Figure 2 As shown, the moving frame 2 is fixed with a guide sleeve 15, the lifting frame 5 is fixed with a guide rod 16, and the top of the guide rod 16 is sleeved in the guide sleeve 15. During the lifting process of the moving frame 2, the guide rod 16 always moves along the position of the guide sleeve 15, thereby avoiding the back and forth shaking of the lifting frame 5, and increasing the stability of the lifting frame 5 during lifting.
[0034] Working principle: one side of the rack 1 is provided with a placing rack, the mold 9 after grouting is placed on the placing rack in sequence, the rack 1 is provided with a control center, the moving module 3 is controlled through the control center, the moving frame 2 moves along the moving module 3, the moving frame 2 drives the clamping assembly 7 to move to the position of the placing rack, a plurality of clamping assemblies 7 clamp a plurality of molds 9 simultaneously, the lifting assembly 4 is controlled to drive the lifting frame 5 to move upwards, the clamping assembly 7 drives the mold 9 to move away from the placing rack, the moving frame 2 moves along the moving module 3 to reset, the driving assembly 8 drives the rotating shaft 6, the rotating shaft 6 drives the clamping assembly 7 to overturn, the rotating shaft 6 can stop at a plurality of angles, thereby ensuring that the grout water in the mold 9 is completely poured out, the bottom of the rack 1 can be provided with a storage box, the grout water flows into the storage box, when the mold 9 is turned by 180°, the rotating shaft 6 stops rotating, after a certain period of time, the rotating shaft 6 is reversed, the clamping assembly 7 is reset, at this time, the moving module 3 is controlled again, the moving frame 2 drives the clamping assembly 7 to move to above the placing rack, the lifting frame 5 is lowered, the mold 9 is placed on the placing rack, the clamping assembly 7 is loosened, and one pouring operation is completed.
[0035] The utility model discloses a moving module 3 is set up, realize the horizontal linear movement of moving frame 2, set up lifting assembly 4, realize the up and down movement of lifting frame 5, set up clamping assembly 7, realize the firm clamping of mold 9, set up rotating shaft 6, drive clamping assembly 7 and mold 9, realize the grouting process, the grouting height of the utility model can be freely adjusted, the horizontal horizontal distance of front and back can be freely adjusted, and the rotation angle of mold 9 can also be adjusted arbitrarily, that is, the angle of grouting can be adjusted arbitrarily, through multidirectional movement and rotation, the excess grout water in the mold 9 can be poured out, and the grouting process is realized.
[0036] The above merely describes preferred embodiments of the present application and is not intended to limit the present application, and any modification, equivalent replacement, and improvement, etc. made within the spirit and principle of the present application shall fall within the protection scope of the present application.
Claims
1. A ceramic slip casting mechanism, characterized by, The utility model provides a kind of movable frame (2) and rack (1) including, the both sides of the rack (1) are equipped with moving module (3), the movable frame (2) is movable on the moving module (3), lifting assembly (4) is equipped on the movable frame (2), the bottom of the lifting assembly (4) is fixed with lifting frame (5), rotating shaft (6) is installed on the lifting frame (5), a plurality of clamping assemblies (7) are fixed on the rotating shaft (6), driving assembly (8) for driving the rotating shaft (6) rotation is fixed on the lifting frame (5), the axis length direction of the rotating shaft (6) is perpendicular to the moving direction of the movable frame (2).
2. A ceramic slip fall mechanism according to claim 1, wherein The moving module (3) includes a first drive motor (301) and a screw (302), the first drive motor (301) is fixed on the rack (1) and is used for driving the screw (302) to rotate, the screw (302) is installed on the rack (1), and the screw (302) is in threaded connection with the two sides of the movable frame (2).
3. A ceramic slip fall mechanism according to claim 2, wherein The moving module (3) further includes a moving slide rail (303), the moving slide rail (303) is fixed on the rack (1) and is arranged on one side of the screw (302), and the two sides of the movable frame (2) are fixed with sliding blocks (10) matched with the moving slide rail (303).
4. The ceramic slip fall mechanism of claim 1, wherein, The lifting assembly (4) includes a second drive motor (401) and two worm gear elevators (402), the two worm gear elevators (402) are installed on the movable frame (2), and connecting rods (403) are fixed between the worms thereon, and the second drive motor (401) is used for driving one of the worms to rotate.
5. The ceramic slip casting mechanism of claim 1, wherein, The lifting frame (5) is provided with two end bearing seats (11), the end bearing seats (11) are provided with end bearings (12) therein, and the rotating shaft (6) is installed on the end bearings (12).
6. The ceramic slip fall mechanism of claim 1, wherein, The driving assembly (8) includes a third drive motor (801), a main sprocket (802), a slave sprocket (803) and a chain, the third drive motor (801) is fixed on the lifting frame (5), the main sprocket (802) is fixed to the output shaft of the third drive motor (801), the slave sprocket (803) is fixed to the end of the rotating shaft (6), and the chain is arranged between the main sprocket (802) and the slave sprocket (803).
7. A ceramic slip fall mechanism according to claim 6, wherein The driving assembly (8) has two groups and is arranged on the two sides of the lifting frame (5) respectively, the rotating shaft (6) has two, the two rotating shafts (6) are in the same straight line, and one group of the driving assembly (8) is used for driving one of the rotating shafts (6); a double-end bearing seat (13) is fixed in the middle of the lifting frame (5), two middle bearings (14) are arranged on the double-end bearing seat (13), and the inner side end of the rotating shaft (6) is installed on the middle bearing (14).
8. The ceramic slip fall mechanism of claim 1, wherein, The clamping assembly (7) comprises a fixed arm (701), a double-head air cylinder (702) and two clamping plates (703), the fixed arm (701) is fixed on the rotating shaft (6), the double-head air cylinder (702) is fixed on the fixed arm (701), and the two clamping plates (703) are respectively fixed on two telescopic ends of the double-head air cylinder (702); the telescopic direction of the double-head air cylinder (702) is parallel to the axial length direction of the rotating shaft (6).
9. A ceramic slip fall mechanism according to claim 8, wherein The inner side of the clamping plate (703) is fixed with an anti-skid block (704).
10. The ceramic slip casting mechanism of claim 1, wherein, A guide sleeve (15) is fixed on the moving frame (2), a guide rod (16) is fixed on the lifting frame (5), and the top of the guide rod (16) is sleeved in the guide sleeve (15).