A mixing device for ceramic wall tile production

By designing a combination of crushing blocks, tilting blocks, and grinding rods, the problem of crushing and discharging small, sticky lumps in ceramic mixing devices was solved, improving production efficiency and mixing effect.

CN116985262BActive Publication Date: 2026-03-27PINGXIANG LVBAO TECH GRP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-11
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing ceramic mixing devices cannot effectively break up small lumps of powder that stick together after being damp, and the single discharge port affects the production speed in mass production.

Method used

A device comprising a crushing block, an inclined block, a grinding rod, and a mixing shaft is designed. The crushing block and the inclined block crush small pieces that are stuck together, the grinding rod cuts them into powder, and the mixing shaft ensures that the powder is mixed evenly and discharged efficiently.

Benefits of technology

It achieves effective crushing and grinding of small, bonded lumps, increases the output of mixed powder and production efficiency, and ensures the uniformity of the mixing effect.

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Abstract

The application relates to the technical field of ceramic production, in particular to a mixing device for ceramic wall tile production. The application provides a mixing device for ceramic wall tile production, which comprises a discharging box and a processing cylinder, the bottom of the discharging box is provided with a box material outlet, the bottom of the discharging box is connected with the processing cylinder, the top of the processing cylinder is provided with a mixing inlet, and the circumferential outer side of the processing cylinder is connected with a first motor. Through the setting of the first crushing block and the inclined block, the small blocks adhered in the material are crushed at the same time by the first crushing block.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of ceramic production, in particular to a mixing device for ceramic wall tile production. BACKGROUND

[0002] The development history of ceramics is an important part of Chinese civilization history. China, as one of the four ancient civilizations, has made outstanding contributions to the progress and development of human society, and the invention and development of ceramics have unique significance. Different artistic styles and technical characteristics have appeared in different dynasties in Chinese history. Vessels made of clay are called pottery, and vessels made of porcelain clay are called porcelain. Ceramics are the general term of pottery, stoneware and porcelain.

[0003] For example, a patent entitled "Ceramic production mixing device" with the patent number 202320095715.4 is disclosed, which comprises a box, a stirring rod in the box and stirring leaves installed on the stirring rod, and a driving assembly is arranged on the top of the box to drive the stirring rod. Wherein, the stirring rod is further rotationally connected with a cleaning assembly, and a displacement assembly is arranged between the cleaning assembly and the stirring rod.

[0004] However, the existing device usually only has a single stirring rod device without a stirring assembly. Since the ceramic mixed powder material is stored in the warehouse for a long time, the mixed powder is easy to be damp, and the damp powder is easy to stick into small blocks of different sizes. The small blocks affect the mixing effect. The existing device is single and cannot stir and grind the small blocks. Moreover, the existing device usually has one discharge port. If the demand for ceramic material mixing is large, the production speed will be affected through the single discharge port. SUMMARY

[0005] In order to overcome the shortcomings that the damp and sticky mixed powder cannot be stirred and ground, and the mixed powder discharge amount cannot be improved, the technical problem to be solved is to provide a mixing device for ceramic wall tile production.

[0006] The technical scheme of the application is: a mixing device for ceramic wall tile production, comprising a discharging box and a processing cylinder, the inside of the discharging box is connected with a triangular plate, the bottom of the discharging box is provided with a box discharge port, the bottom of the discharging box is connected with the processing cylinder, the top of the processing cylinder is provided with a mixing inlet, and the circumferential outside of the processing cylinder is connected with a first motor:

[0007] The first motor is rotationally connected with a movable belt, the other end of the movable belt away from the first motor is connected with a rotating shaft, the rotating shaft is connected with a first crushing block, the outer side of the first crushing block is connected with a plurality of first crushing plates, a crushing outer cylinder is installed above the first crushing block, a plurality of second crushing plates are arranged in the crushing outer cylinder, the first crushing block and the crushing outer cylinder form a crushing groove, a plurality of push rods are connected to the bottom of the crushing outer cylinder, a plurality of spring pressing rods are connected to the top of the crushing outer cylinder, a plurality of connecting plates are connected to the rotating shaft below the first crushing block, the other end of the connecting plate away from the rotating shaft is connected with a rotating disc, and a plurality of inclined blocks are connected to the top of the rotating disc.

[0008] Further explanation, the push rod of the crushing outer cylinder cooperates with the inclined block of the rotating disc.

[0009] Further explanation, the top of the first crushing block is shaped as a cylindrical inclined plate.

[0010] Further explanation, the rotating shaft is connected with a rotating plate, a plurality of first connecting rods are connected to the top of the rotating plate, the other end of the first connecting rod away from the rotating plate is connected with a baffle, a collecting cylinder is installed above the rotating plate below the rotating plate, a tapered cylinder is connected in the collecting cylinder, a cylinder material outlet is arranged on the outer side of the collecting cylinder, the baffle on the rotating plate cooperates with the cylinder material outlet on the collecting cylinder, a second crushing block is connected to the bottom of the rotating plate, a plurality of second connecting rods are connected to the bottom of the second crushing block, a wheel is connected to the end of the second connecting rod, a grinding rod is connected to the middle of the bottom of the second crushing block, a plurality of cutting blades are connected to the grinding rod, a grinding cylinder is installed at the bottom of the second crushing block, and a grinding and discharging groove is formed between the grinding cylinder and the second crushing block.

[0011] Further explanation, the width of the baffle on the rotating plate is greater than the width of the collecting cylinder, and the baffle is nested on the outer side of the collecting cylinder.

[0012] Further explanation, the upper convex block on the second crushing block cooperates with the lower convex block on the grinding cylinder.

[0013] Further explanation, a mixing cylinder is connected below the processing cylinder, a cylinder inlet is arranged on the top of the mixing cylinder, a first cylinder outlet is arranged on the bottom of the mixing cylinder, a plurality of second cylinder outlets are arranged on the outer side of the lower part of the mixing cylinder, a plurality of lifting grooves are arranged on the inner wall of the lower part of the mixing cylinder close to the second cylinder outlets, a limiting rod is connected in the lifting groove, a plurality of air cylinders are connected to the outer side of the mixing cylinder, an lifting top plate is connected to the top of the air cylinder, a second motor is installed below the lifting top plate, a mixing shaft is connected to the bottom of the second motor, and a gate is connected to the outer side of the first cylinder outlet of the bottom of the mixing cylinder.

[0014] Further illustrate, the mixing shaft is connected with a plurality of spring telescopic rods, and the lower part of the mixing shaft is connected with a mixing plate.

[0015] Further illustrate, the mixing cylinder is internally connected with a plurality of lifting baffles, one end of the lifting baffles is provided with a sliding slot, the other end of the lifting baffles away from the sliding slot is provided with an inclined plate in shape, the bottom of the lifting baffles is connected with a plurality of supporting rods, the circumferential outer side of the lifting baffles is connected with lifting blocks, and the limiting rod of the mixing cylinder and the lifting blocks of the lifting baffles are matched with each other.

[0016] The beneficial effects of the present application are: 1. By setting the first crushing block and the inclined block, the first crushing block is used to crush the small blocks of material adhesion, at the same time, the inclined block drives the push rod and the crushing outer cylinder to move upwards to press the spring pressing rod to realize the up-down lifting effect, preventing the small blocks of different sizes from flowing into the cutting groove due to moisture adhesion, resulting in blockage.

[0017] 2. By setting the wheel and the grinding rod, the wheel is used to roll and press the small blocks of material, and the cutting blade on the grinding rod is used to cut the material, so that the crushed material becomes powder and flows out from the cylinder outlet, preventing the small blocks of material from being ground and flowing out, which affects the mixing effect in the later period.

[0018] 3. By setting the mixing shaft and the lifting baffle, the mixing shaft drives the spring telescopic rod and the mixing plate to rotate in the mixing cylinder, mixes the flowing powder, and continuously moves up and down in the mixing cylinder through the cylinder, thereby ensuring uniform mixing of different powders. In addition, the spring telescopic rod can be driven by the mixing shaft to reverse and be clamped into the sliding slot of the lifting baffle, and then the lifting baffle is driven by the cylinder to move upwards to open the second cylinder outlet. By using the mixing shaft and the lifting baffle, not only the mixing effect of the device is improved, but also the effect of the mixed powder discharge amount is improved. BRIEF DESCRIPTION OF DRAWINGS

[0019] Figure 1 It is a plan view of the device.

[0020] Figure 2 It is a schematic view of the device.

[0021] Figure 3 It is a schematic view of the device.

[0022] Figure 4 It is a schematic view of the device.

[0023] Figure 5 It is a schematic view of the device.

[0024] Figure 6The schematic diagram of the top view of the milling barrel mechanism of the application.

[0025] Figure 7 The schematic diagram of the exploded view of the mixing assembly mechanism of the application.

[0026] Figure 8 The schematic diagram of the lifting baffle mechanism of the application.

[0027] Figure 9 The schematic diagram of the connecting plane between the mixing barrel and the lifting baffle of the application.

[0028] The marks in the drawings: 1: feeding box, 101: triangular plate, 102: box material outlet, 103: processing barrel, 104: mixing inlet, 2: crushing assembly, 21: first motor, 22: movable belt, 23: rotating shaft, 24: first crushing block, 2401: first crushing plate, 25: crushing outer barrel, 2501: second crushing plate, 2502: crushing groove, 2503: pushing rod, 26: spring pressing rod, 27: connecting plate, 28: rotating disc, 2801: inclined block, 29: filter plate, 3: milling assembly, 31: rotating plate, 32: first connecting rod, 33: baffle, 34: collecting barrel, 3401: conical cylinder, 3402: barrel material outlet, 35: second crushing block, 3501: second connecting rod, 3502: wheel, 3503: milling rod, 3504: cutting blade, 36: milling barrel, 3601: milling feeding groove, 3602: funnel, 3603: wheel groove, 3604: milling groove, 3605: powder barrel outlet, 4: mixing assembly, 41: mixing barrel, 4101: barrel inlet, 4102: first barrel outlet, 4103: second barrel outlet, 4104: lifting groove, 4105: limiting rod, 42: air cylinder, 43: lifting top plate, 44: lifting baffle, 4401: sliding slot, 4402: supporting rod, 4403: lifting block, 45: second motor, 46: mixing shaft, 4601: spring telescopic rod, 4602: mixing plate, 47: gate. DETAILED DESCRIPTION

[0029] The application will be further described below in conjunction with specific embodiments. The illustrative embodiments of the application and the description are used to explain the application, but do not limit the application.

[0030] Example 1

[0031] As Figures 1-4As shown, a kind of mixing device for ceramic wall tile production, including blanking box 1 and processing cylinder 103, the inside of blanking box 1 is connected with triangular plate 101, the bottom of blanking box 1 is all equipped with box material outlet 102, the bottom of blanking box 1 is connected with processing cylinder 103, and the top of processing cylinder 103 is all equipped with mixing inlet 104, and the circumferential outside of processing cylinder 103 is connected with first motor 21:

[0032] The stirring assembly 2 further includes a first motor 21, a movable belt 22 is rotatably connected to the first motor 21, a rotating shaft 23 is connected to the other end of the movable belt 22 away from the first motor 21, a first stirring block 24 is connected to the rotating shaft 23, a plurality of first stirring plates 2401 are connected to the circumferential outside of the first stirring block 24, a stirring outer cylinder 25 is installed above the first stirring block 24, a plurality of second stirring plates 2501 are formed in the stirring outer cylinder 25, a stirring groove 2502 is formed between the first stirring block 24 and the stirring outer cylinder 25, a plurality of push rods 2503 are connected to the bottom of the stirring outer cylinder 25, a plurality of spring pressing rods 26 are connected to the top of the stirring outer cylinder 25, a plurality of connecting plates 27 are connected to the rotating shaft 23 below the first stirring block 24, a rotating disc 28 is connected to the other end of the connecting plate 27 away from the rotating shaft 23, and a plurality of inclined blocks 2801 are connected to the top of the rotating disc 28.

[0033] The push rods 2503 of the stirring outer cylinder 25 and the inclined blocks 2801 of the rotating disc 28 cooperate with each other.

[0034] The top of the first stirring block 24 is shaped as a cylindrical inclined plate.

[0035] Firstly, the mixture needs to be poured into the discharge box 1, and the poured material will flow out of the box material outlet 102 along the triangular plate 101, and then flow into the processing cylinder 103 along the mixing inlet 104. The first motor 21 drives the rotating shaft 23 to rotate by driving the movable belt 22, so that the rotating shaft 23 drives the first crushing block 24 to rotate in the crushing outer cylinder 25. Since the top of the first crushing block 24 is provided with a cylindrical inclined plate, the material will flow into the crushing groove 2502 from different directions along the cylindrical inclined plate. Then, the first crushing plate 2401 of the first crushing block 24 and the second crushing plate 2501 on the crushing outer cylinder 25 are engaged with each other to crush the material flowing into the crushing groove 2502. The crushed material will flow into the top of the filter plate 29 from the bottom of the crushing groove 2502. In addition, the rotating shaft 23 rotates and drives the connecting plate 27 and the rotating disc 28 to rotate at the same time. The connecting plate 27 pushes the material to rotate on the filter plate 29, so that the material flows out of the through hole on the filter plate 29. Since the mixture is stored in the warehouse for a long time, it is easy to get damp. The damp material is easy to stick together into small pieces of different sizes. Since one end of the inclined block 2801 is lower than the bottom of the pushing rod 2503, the inclined block 2801 is inserted into the low end of the pushing rod 2503 by rotating the rotating disc 28. With the rotating disc 28, the inclined block 2801 rotates clockwise, and the pushing rod 2503 slides upward along the slide wall on the inclined block 2801 to drive the crushing outer cylinder 25 to move upward and press the spring pressing rod 26 on the top. Thus, the crushing outer cylinder 25 realizes the up-down function on the outside of the circumference of the first crushing block 24, so that the material sticks together into small pieces of different sizes and flows into the crushing groove 2502.

[0036] Example 2

[0037] As Figures 3-6As shown, on the basis of embodiment 1, the rotating shaft 23 is connected with a rotating plate 31, the grinding assembly 3 comprises the rotating plate 31, the top of the rotating plate 31 is connected with a plurality of first connecting rods 32, the other end of the first connecting rod 32 away from the rotating plate 31 is connected with a baffle 33, the lower part of the rotating shaft 23 is connected with a collecting cylinder 34 near the top of the rotating plate 31, the collecting cylinder 34 is connected with a conical cylinder 3401, the circumferential outer side of the collecting cylinder 34 is provided with a cylinder material outlet 3402, the baffle 33 on the rotating plate 31 and the cylinder material outlet 3402 on the collecting cylinder 34 are matched with each other, the bottom of the rotating plate 31 is connected with a second crushing block 35, the bottom of the second crushing block 35 is connected with a plurality of second connecting rods 3501, the end of the second connecting rod 3501 is connected with a wheel 3502, the bottom of the second crushing block 35 is connected with a grinding rod 3503, the grinding rod 3503 is connected with a plurality of cutting blades 3504, the bottom of the second crushing block 35 is connected with a grinding cylinder 36, the grinding cylinder 36 and the second crushing block 35 form a grinding and discharging groove 3601, the bottom of the grinding cylinder 36 is connected with a hopper 3602, the top of the hopper 3602 is connected with a wheel groove 3603, the inside of the hopper 3602 is provided with a grinding groove 3604, and the bottom end of the hopper 3602 is provided with a powder cylinder discharge port 3605.

[0038] The width of the baffle 33 on the rotating plate 31 is greater than the width of the collecting cylinder 34, and the baffle 33 is nested on the circumferential outer side of the collecting cylinder 34.

[0039] The wheel 3502 on the second crushing block 35 is matched with the wheel groove 3603 on the grinding cylinder 36.

[0040] In addition, the material flowing from the filter plate 29 flows into the collecting cylinder 34, and then the rotating shaft 23 drives the rotating plate 31 and the second crushing block 35 to rotate together, the rotating plate 31 drives the first connecting rod 32 and the baffle 33 to rotate around the periphery of the collecting cylinder 34 to limit the discharging speed of the material, the material flowing into the collecting cylinder 34 flows along the conical cylinder 3401 from the cylinder material outlet 3402 into the grinding and discharging groove 3601, and then the material flows along the grinding and discharging groove 3601 into the wheel groove 3603 on the top of the hopper 3602, and then the second crushing block 35 drives the second connecting rod 3501 and the wheel 3502 to rotate, so that the wheel 3502 rotates along the wheel groove 3603 on the top of the hopper 3602, and the material flowing into the wheel groove 3603 is rolled, and the unground material flowing down from the wheel groove 3603 flows into the grinding groove 3604 of the hopper 3602, and then the cutting blades 3504 cut the material flowing down, and the cut material becomes powder and flows out from the powder cylinder discharge port 3605.

[0041] Embodiment 3

[0042] As Figures 7-8 As shown in Figure 2, on the basis of embodiment 1, a mixing cylinder 41 is connected below the bottom of the processing cylinder 103, the mixing assembly 4 comprises the mixing cylinder 41, the top of the mixing cylinder 41 is provided with a cylinder inlet 4101, the bottom of the mixing cylinder 41 is provided with a first cylinder outlet 4102, the lower part of the circumference of the mixing cylinder 41 is provided with a plurality of second cylinder outlets 4103, the inner wall of the lower part of the mixing cylinder 41 close to the second cylinder outlets 4103 is provided with a plurality of lifting grooves 4104, the lifting grooves 4104 are connected with limit rods 4105, a plurality of air cylinders 42 are connected to the circumference of the mixing cylinder 41, the top of the air cylinders 42 is connected with a lifting top plate 43, a second motor 45 is installed below the lifting top plate 43, a mixing shaft 46 is connected to the bottom of the second motor 45, and a gate 47 is connected to the circumference of the first cylinder outlet 4102 of the bottom of the mixing cylinder 41.

[0043] A plurality of spring telescopic rods 4601 are connected to the mixing shaft 46, and a mixing plate 4602 is connected to the lower part of the mixing shaft 46.

[0044] A plurality of lifting baffles 44 are connected inside the mixing cylinder 41, one end of the lifting baffles 44 is provided with a sliding groove 4401, the other end of the lifting baffles 44 away from the sliding groove 4401 is provided with an inclined plate, a plurality of support rods 4402 are connected to the bottom of the lifting baffles 44, and lifting blocks 4403 are connected to the circumference of the lifting baffles 44, and the limit rods 4105 of the mixing cylinder 41 and the lifting blocks 4403 of the lifting baffles 44 are matched with each other.

[0045] In addition, the powder flowing out of the cylinder outlet 3402 will flow into the mixing cylinder 41 through the cylinder inlet 4101, the second motor 45 drives the mixing shaft 46 to rotate clockwise, the mixing shaft 46 rotates clockwise at the same time to drive the spring telescopic rods 4601 and the mixing plate 4602 to rotate, and the flowing powder is mixed, at the same time, the air cylinders 42 drive the lifting top plate 43 and the mixing shaft 46 to move upward at the same time, the mixing shaft 46 continuously moves up and down in the mixing cylinder 41, thereby ensuring that different powders are uniformly mixed, when mixing the powder, the spring telescopic rods 4601 rotate clockwise and slide along the inclined plate at one end of the lifting baffles 44, if it is necessary to discharge the mixed powder, the second motor 45 drives the rotating shaft 23 to reverse, the spring telescopic rods 4601 are reversed and clamped into the sliding groove 4401 at the other end of the lifting baffles 44, the air cylinders 42 drive the lifting baffles 44 and the lifting blocks 4403 to move upward in the lifting grooves 4104 along the circumference of the limit rods 4105, the second cylinder outlets 4103 are opened, the mixed powder flows out through the second cylinder outlets 4103, at the same time, the gate 47 is opened, and the mixed powder flows out through different outlets, thereby improving the discharging effect.

[0046] The embodiments of the present application are described in detail above with reference to the accompanying drawings, but the present application is not limited to the above-described embodiments, and various changes can be made within the knowledge of those skilled in the art without departing from the spirit of the present application.

Claims

1. A mixing device for producing ceramic wall tiles, characterized in that: It includes a feeding box (1) and a processing cylinder (103). A triangular plate (101) is connected inside the feeding box (1). A feeding box (1) has a material outlet (102) at the bottom. A processing cylinder (103) is connected to the bottom of the feeding box (1). A mixing inlet (104) is opened at the top of the processing cylinder (103). A first motor (21) is connected to the outer circumference of the processing cylinder (103). A movable belt (22) is rotatably connected to a first motor (21). A rotating shaft (23) is connected to the other end of the movable belt (22) away from the first motor (21). A first crushing block (24) is connected to the rotating shaft (23). Several first crushing plates (2401) are connected to the outer circumference of the first crushing block (24). A crushing outer cylinder (25) is installed and connected directly above the first crushing block (24). Several second crushing plates (2501) are opened inside the crushing outer cylinder (25). A crushing groove (2502) is formed between the first crushing block (24) and the crushing outer cylinder (25). The bottom of the outer crushing cylinder (25) is connected to several push rods (2503), and the top of the outer crushing cylinder (25) is connected to several spring pressing rods (26). Several connecting plates (27) are connected to the rotating shaft (23) near the bottom of the first crushing block (24). The other end of the connecting plate (27) away from the rotating shaft (23) is connected to a rotating disk (28). Several inclined blocks (2801) are connected to the top of the rotating disk (28). The push rods (2503) of the outer crushing cylinder (25) and the inclined blocks (2801) of the rotating disk (28) cooperate with each other. A rotating plate (31) is connected to a rotating shaft (23). Several first connecting rods (32) are connected to the top of the rotating plate (31). A baffle (33) is connected to the other end of the first connecting rod (32) away from the rotating plate (31). A collecting cylinder (34) is installed and connected to the lower part of the rotating shaft (23) near the top of the rotating plate (31). A conical cylinder (3401) is connected inside the collecting cylinder (34). A cylinder outlet (3402) is opened on the outer circumference of the collecting cylinder (34). The baffle (33) on the rotating plate (31) and the cylinder outlet (3402) on the collecting cylinder (34) cooperate with each other. A second crushing block (35) is connected to the bottom of the rotating plate (31). The rotating shaft (23) drives the rotating plate (31) and the second crushing block (35) to rotate together. The rotating plate (31) drives the first connecting rods (32) and the baffle (33) to surround the collecting cylinder. The outer periphery of the collecting cylinder 34 rotates. The bottom of the second crushing block (35) is connected to several second connecting rods (3501). The ends of the second connecting rods are connected to wheels (3502). The middle part of the bottom of the second crushing block (35) is connected to a grinding rod (3503). Several cutting blades (3504) are connected to the grinding rod (3503). A grinding cylinder (36) is installed and connected to the bottom of the second crushing block (35). The grinding cylinder (36) and the second crushing block (35) form a grinding feed trough (3601). The bottom of the grinding cylinder (36) is connected to a funnel (3602). The top of the funnel (3602) is connected to a wheel groove (3603). A grinding groove (3604) is opened inside the funnel (3602). A powder cylinder outlet (3605) is opened at the bottom of the funnel (3602).

2. The mixing device for producing ceramic wall tiles as described in claim 1, characterized in that: The top shape of the first crushed block (24) is set as a cylindrical inclined plate.

3. The mixing device for producing ceramic wall tiles as described in claim 1, characterized in that: The width of the baffle (33) on the rotating plate (31) is greater than the width of the collecting cylinder (34), and the baffle (33) is nested on the outer circumference of the collecting cylinder (34).

4. The mixing device for producing ceramic wall tiles as described in claim 1, characterized in that: A mixing cylinder (41) is connected directly below the bottom of the processing cylinder (103). A cylinder inlet (4101) is opened at the top of the mixing cylinder (41). A first cylinder outlet (4102) is opened at the bottom of the mixing cylinder (41). Several second cylinder outlets (4103) are opened on the outer side of the lower circumference of the mixing cylinder (41). Several lifting grooves (4104) are opened on the inner wall of the lower part of the mixing cylinder (41) near the second cylinder outlets (4103). Limit rods (4105) are connected in the lifting grooves (4104). Several cylinders (42) are connected on the outer side of the circumference of the mixing cylinder (41). A lifting top plate (43) is connected to the top of the cylinders (42). A second motor (45) is installed directly below the lifting top plate (43). A mixing shaft (46) is connected to the bottom of the second motor (45). A gate (47) is connected on the outer side of the circumference of the first cylinder outlet (4102) at the bottom of the mixing cylinder (41).

5. The mixing device for producing ceramic wall tiles as described in claim 4, characterized in that: A number of spring telescopic rods (4601) are connected to the mixing shaft (46), and a mixing plate (4602) is connected to the lower part of the mixing shaft (46).

6. The mixing device for producing ceramic wall tiles as described in claim 4, characterized in that: The mixing cylinder (41) is connected to several lifting baffles (44), and one end of the lifting baffle (44) is provided with a sliding groove (4401). The edge of the other end of the lifting baffle (44) away from the sliding groove (4401) is shaped as an inclined plate. Several support rods (4402) are connected to the bottom of the lifting baffle (44). Lifting blocks (4403) are connected to the outer circumference of the lifting baffle (44). The limiting rod (4105) of the mixing cylinder (41) and the lifting block (4403) of the lifting baffle (44) cooperate with each other.

Citation Information

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