An automatic and efficient mixing equipment for ceramic tile raw materials

By designing an automated and efficient mixing equipment for ceramic tile raw materials using reserved base, lower support assembly, upper support assembly and auxiliary dispersion structure, the problem of insufficient dispersion of materials in existing equipment is solved, and more efficient mixing treatment and improved mixing quality are achieved.

CN119610392BActive Publication Date: 2025-05-16FUJIAN QUANZHOU LUXURY CERAMICS CO LTD
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Patent Information

Application Number
CN202510151774.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-12
Publication Date
2025-05-16
Estimated Expiration
2045-02-12

AI Technical Summary

Technical Problem

During the mixing process of existing ceramic tile raw material automation mixing equipment, the accumulated materials at the bottom can achieve multi-directional activities, but the materials accumulated on the upper layer of the bottom are difficult to disperse efficiently, resulting in limitations in the mixing quality.

Method used

An automatic and efficient mixing equipment for ceramic tile raw materials is designed, using a reserved base, a lower support assembly, an upper support assembly and an auxiliary dispersion structure. Through the meshing structure of the transmission gear and bevel gear, the bidirectional mixing process between the upper support assembly and the lower support assembly is realized, and the auxiliary magnetic dispersion parts are used for multi-directional movable dispersion treatment.

Benefits of technology

The equipment can effectively disperse the materials piled up on the upper layer of the bottom, ensure the improvement of mixing quality, and realize the synchronous bidirectional mixing process of the materials stacked on the lower end or the upper end, improving the mixing uniformity and efficiency.

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Abstract

The present invention discloses an automatic and efficient mixing device for ceramic tile raw materials, and relates to the field of ceramic tile raw material mixing. The upper end of the reserved base is rotatably connected to a lower support assembly, and the outer side of the lower support assembly is fixedly connected to a first toothed piece; the upper end of the lower support assembly is nested and installed with an upper support assembly, and the lower end of the upper support assembly is rotatably connected to a guide docking roller. In the automatic and efficient mixing device for ceramic tile raw materials, when the first transmission gear drives the lower support assembly to rotate centrifugally through the first toothed piece, the upper support assembly docked at its upper end will then cooperate with the meshing state between the second transmission gear and the second toothed piece, and stably form a reverse rotation structure along the upper end of the lower support assembly, so that a two-way mixing processing state is formed between the upper support assembly and the lower support assembly, so that the materials inside the equipment, whether they are accumulated at the lower end or stored at the upper end, can be synchronously mixed in two directions, thereby improving its mixing uniformity and high efficiency.
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Description

Technical Field

[0001] The invention relates to the technical field of ceramic tile raw material mixing, in particular to an automatic and efficient ceramic tile raw material mixing device. Background Art

[0002] The raw materials for tiles go through several steps during processing, including mixing the raw materials;

[0003] For example, the patent with announcement number CN210999350U discloses a ceramic tile raw material mixing and conveying device, which includes a mixing and conveying assembly, a drying chamber and a hot air chamber. The mixing and conveying assembly is arranged in the drying chamber, and the hot air chamber is used to provide dry hot air to the drying chamber. The mixing and conveying assembly includes a first main conveyor belt and a plurality of feed hoppers arranged above the first main conveyor belt. A pair of conveyor belts is arranged between each feed hopper and the first main conveyor belt. The first main conveyor belt is connected to the feed end of the mixer, and the discharge end of the mixer is connected to the feed hopper. A second main conveyor belt is arranged below the feed hopper. The second main conveyor belt passes through the drying chamber and is connected to the collecting chamber. The mixer includes a plurality of mixing blades and rotating grinding discs arranged alternately. The top of the mixing blade is arc-shaped, and the top of the rotating grinding disc is sickle-shaped.

[0004] Another example is a raw material mixing device for tile processing disclosed in the patent with announcement number CN213440333U, which includes a mixing box, a feeding hopper is provided on one side of the top of the mixing box, a vertical rotating drum is provided at the center of the mixing box, a rotating shaft is provided inside the rotating drum, the top of the rotating shaft is connected to a motor, the motor is connected to a support rod, the support rod is installed on the top of the mixing box, the top of the rotating drum is connected to one end of a water inlet pipe, the rotating drum is connected to a stirring blade, a plurality of through holes are provided on the stirring blade, the other end of the water inlet pipe is connected to a water pump, the water pump is connected to a water tank, the top of the water tank is connected to a water supply pipe, and a water supply solenoid valve is provided on the water supply pipe;

[0005] For example, a patent with announcement number CN204935893U discloses a mixed sorting device for raw materials for producing tiles, which is characterized in that: it comprises a shell, a hopper is arranged on the top of the shell, a mixed sorting cabin formed by three rhombus-shaped cavities connected in series vertically is arranged inside the shell, a rotating shaft is arranged inside the mixed sorting cabin, the rotating shaft is connected to a motor arranged outside the bottom of the shell, three butterfly plates are arranged on the rotating shaft, the three butterfly plates are respectively located on the plane where the bottoms of the three rhombus-shaped cavities are located and there is a gap with the wall of the mixed sorting cabin, and the space between the outside of the mixed sorting cabin and the inner wall of the shell is a temporary storage and discharge area for raw materials and is provided with a discharge port;

[0006] Most of the above-mentioned existing technologies have improved their overall structure, while the existing automatic ceramic tile raw material mixing equipment, during operation, is mostly a conventional carrying device with a circularly rotating structure for mixing, and the materials stored at the bottom can be moved in multiple directions, while the materials accumulated on the upper layer of the bottom cannot be efficiently dispersed and processed, and the mixing quality has certain limitations, and thus there are certain usage defects. Summary of the invention

[0007] The purpose of the present invention is to provide an automated and efficient mixing equipment for ceramic tile raw materials, so as to solve the problem that most of the background technologies mentioned above use a circularly rotating structure of conventional carrying equipment for mixing, and the materials stored at the bottom can be moved in multiple directions, but the materials accumulated on the upper layer of the bottom cannot be efficiently dispersed and processed, and the mixing quality has certain limitations.

[0008] To achieve the above object, the present invention provides the following technical solution: an automated and efficient ceramic tile raw material mixing device, comprising a reserved base and a lower support assembly, wherein the upper end of the reserved base is rotatably connected to the lower support assembly, and the outer side of the lower support assembly is fixedly connected to a first toothed member;

[0009] The upper end of the lower support assembly is nested and installed with an upper support assembly, and the outer side of the upper support assembly is fixedly connected to a second toothed member, the lower end of the upper support assembly is rotatably connected to a guide docking roller, and the guide docking roller is docked with the upper end of the lower support assembly, an auxiliary scattering structure is provided between the upper support assembly and the reserved base, and the contacted materials are adaptively scattered by the auxiliary scattering structure; an auxiliary guiding structure is provided between the outer side of the reserved base and the upper support assembly and the lower support assembly, and the movable directions of the upper support assembly and the lower support assembly are adaptively adjusted by the auxiliary guiding structure

[0010] Furthermore, the auxiliary breaking up structure is provided with a docking support member, and the docking support member is fixedly connected to the inner side of the lower support assembly, and a magnet member is fixedly connected to the outer side of the docking support member.

[0011] Furthermore, the inner end of the upper support component is rotatably connected to an auxiliary magnetic breaking piece, and the end of the auxiliary magnetic breaking piece and the upper support component are butted against each other via a torsion spring shaft.

[0012] Furthermore, the auxiliary magnetic breaking parts are symmetrically distributed about the center point of the upper support assembly, and when the outer side of the auxiliary magnetic breaking parts rotates to contact the corresponding position of the magnet part, the force is applied through the torsion spring axis to form a rotating structure along the inner side of the upper support assembly.

[0013] Furthermore, a rotation connection is formed between the reserved base and the lower end of the lower support assembly, and the lower support assembly is nested with the upper support assembly through the guide docking roller to form a rotation structure.

[0014] Furthermore, the auxiliary guide structure is provided with a preset motor assembly, and the preset motor assembly is installed on the outside of the reserved base, and the output end of the preset motor assembly is connected to the first transmission gear, and the upper end of the first transmission gear is installed with a first bevel gear, and the first transmission gear is meshed and connected with the first tooth piece on the outside of the lower support assembly. During the operation of a single preset motor assembly, the first transmission gear can cooperate with the first tooth piece to stably drive the lower support assembly to perform centrifugal rotation, and while it rotates, the meshing structure between the first bevel gear, the transmission bevel gear and the second bevel gear driven by the first transmission gear.

[0015] Furthermore, a transmission bevel gear is rotatably connected to the outer side of the reserved base, and a second bevel gear is docked at the upper end of the transmission bevel gear, and the outer sides of the transmission bevel gear are respectively meshed and docked with the first bevel gear and the second bevel gear; the upper end of the second bevel gear is docked with a second transmission gear, and the second transmission gear and the second bevel gear are both docked with the outer side of the reserved base, and the second transmission gear is meshed with the second tooth part on the outer side of the upper support assembly.

[0016] Furthermore, the first transmission gear drives the lower support assembly to rotate centrifugally through the first tooth part, and the first transmission gear cooperates with the first bevel gear to drive the transmission bevel gear and the second bevel gear to synchronously form a rotating structure along the inner side of the reserved base, so that a two-way mixing processing state is formed between the upper support assembly and the lower support assembly, so that the materials inside the equipment, whether they are accumulated at the lower end or stored at the upper end, can be synchronously mixed and processed in two directions.

[0017] Furthermore, the second transmission gear forms a synchronous rotation with the rotation of the second bevel gear, and the second transmission gear drives the upper support assembly to form a rotating structure along the upper end of the lower support assembly through the second toothed member; the rotation directions of the lower support assembly and the upper support assembly are opposite, and accordingly the force is applied to form a reciprocating motion along the inner side of the upper support assembly through the torsion spring shaft, thereby cooperating with the bidirectionally rotating upper and lower support assemblies, allowing the auxiliary magnetic scattering parts to form a multi-directional active scattering processing work inside the equipment.

[0018] Compared with the prior art, the present invention has the following beneficial effects:

[0019] The automatic and efficient mixing equipment for ceramic tile raw materials is provided with an auxiliary guiding structure, and its activity direction can be adaptively adjusted through the auxiliary guiding structure. During the operation of a single preset motor component, the first transmission gear can cooperate with the first toothed member to stably drive the lower support component to perform centrifugal rotation, and while the lower support component rotates, the meshing structure between the first bevel gear driven by the first transmission gear, the transmission bevel gear and the second bevel gear can stably drive the upper support component to rotate synchronously through the second toothed member contacted by the second transmission gear, so as to stably cooperate with the auxiliary magnetic breaking member to perform bidirectional centrifugal mixing processing on the materials contacted on the inner side, the materials stored at the bottom can achieve multi-directional movement, and the materials accumulated on the upper layer of the bottom can be efficiently broken up synchronously, so that the mixing quality can be guaranteed.

[0020] Furthermore, in the process of the first transmission gear driving the lower support assembly to rotate centrifugally through the first toothed member, the upper support assembly docked at its upper end will then cooperate with the meshing state between the second transmission gear and the second toothed member, and stably form a reverse rotation structure along the upper end of the lower support assembly, thereby forming a two-way mixing processing state between the upper support assembly and the lower support assembly, so that the materials inside the equipment, whether accumulated at the lower end or stored at the upper end, can be synchronously mixed in two directions, thereby improving its mixing uniformity and high efficiency;

[0021] Furthermore, during the process of forming a two-way mixing process between the upper support component and the lower support component, the upper support component as a whole will evenly perform a fitting and scraping operation along the inside of the lower support component, thereby avoiding excessive adhesion of the material on the surface of the lower support component where the material is stored, and preventing the phenomenon of blockage during the material discharge process;

[0022] Furthermore, an auxiliary dispersing structure is provided, through which the contacting materials are adaptively dispersed, and the symmetrically distributed auxiliary magnetic dispersing parts will move in a circle through the upper supporting assembly. When the outer side of the auxiliary magnetic dispersing parts rotates to contact the corresponding position of the magnet part, it will be forced to form a reciprocating movement along the inner side of the upper supporting assembly through the torsion spring shaft, thereby cooperating with the upper supporting assembly and the lower supporting assembly that rotate in both directions, so that the auxiliary magnetic dispersing parts can form a multi-directional active dispersing processing work inside the equipment, efficiently carry out the mixing processing of the internal materials, and improve the practicability of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 It is a schematic diagram of a half-cut three-dimensional structure of the present invention;

[0024] Figure 2 It is a schematic diagram of the three-dimensional structure of the present invention;

[0025] Figure 3 For the present invention Figure 1 A schematic diagram of the partially enlarged structure;

[0026] Figure 4 It is a schematic diagram of the three-dimensional structure of the second tooth member of the present invention;

[0027] Figure 5 It is a schematic diagram of the three-dimensional structure of the transmission bevel gear of the present invention;

[0028] Figure 6 It is a schematic diagram of the three-dimensional structure of the second bevel gear of the present invention;

[0029] Figure 7 It is a schematic diagram of the three-dimensional structure of the magnet component of the present invention;

[0030] Figure 8 It is a schematic diagram of the three-dimensional structure of the docking support member of the present invention;

[0031] Fig. 9 It is a schematic diagram of the three-dimensional structure of the first tooth member of the present invention.

[0032] In the figure: 1. reserved base; 2. lower support assembly; 3. first gear; 4. upper support assembly; 5. second gear; 6. auxiliary magnetic breaking member; 7. torsion spring shaft; 8. docking support member; 9. magnet member; 10. preset motor assembly; 11. first transmission gear; 12. first bevel gear; 13. transmission bevel gear; 14. second transmission gear; 15. second bevel gear; 16. guide docking roller. DETAILED DESCRIPTION

[0033] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0034] Example 1: Please refer to Figure 1-9 The present invention provides the following technical solutions: an automated and efficient mixing device for ceramic tile raw materials, comprising a reserved base 1, a lower support assembly 2, a first tooth member 3, an upper support assembly 4, a second tooth member 5, an auxiliary magnetic breaking member 6, a torsion spring shaft 7, a docking support member 8, a magnet member 9, a preset motor assembly 10, a first transmission gear 11, a first bevel gear 12, a transmission bevel gear 13, a second transmission gear 14, a second bevel gear 15 and a guide docking roller 16;

[0035] The upper end of the reserved base 1 is rotatably connected to the lower support assembly 2, and the outer side of the lower support assembly 2 is fixedly connected to the first toothed member 3; the upper end of the lower support assembly 2 is nested with the upper support assembly 4, and the outer side of the upper support assembly 4 is fixedly connected to the second toothed member 5, the lower end of the upper support assembly 4 is rotatably connected to the guide docking roller 16, and the guide docking roller 16 is docked with the upper end of the lower support assembly 2, and an auxiliary breaking up structure is provided between the upper support assembly 4 and the reserved base 1, and the contacting materials are adaptively broken up by the auxiliary breaking up structure;

[0036] The auxiliary breaking up structure is provided with a docking support member 8, and the docking support member 8 is fixedly connected to the inner side of the lower support assembly 2, and the outer side of the docking support member 8 is fixedly connected to the magnet member 9. The inner end of the upper support assembly 4 is rotatably connected with an auxiliary magnetic breaking up member 6, and the end of the auxiliary magnetic breaking up member 6 and the upper support assembly 4 are connected to each other through a torsion spring shaft 7. The auxiliary magnetic breaking up member 6 is symmetrically distributed about the center point of the upper support assembly 4, and when the outer side of the auxiliary magnetic breaking up member 6 rotates to contact the corresponding position of the magnet member 9, the force is applied through the torsion spring shaft 7 along the inner side of the upper support assembly 4 to form a rotating structure.

[0037] A rotating connection is formed between the reserved base 1 and the lower end of the lower support assembly 2, and the lower support assembly 2 is nested with the upper support assembly 4 through the guide docking roller 16 to form a rotating structure; after the required processed materials are placed along the inner side of the upper support assembly 4, the preset motor assembly 10 can be started by mixing the required processed ingredients in a certain amount. During the operation of a single preset motor assembly 10, the lower support assembly 2 can be stably driven to perform centrifugal rotation through the first transmission gear 11 in cooperation with the first toothed member 3, and while it rotates, the meshing structure between the first bevel gear 12 driven by the first transmission gear 11, the transmission bevel gear 13 and the second bevel gear 15 can stably drive the upper support assembly 4 to rotate synchronously through the second toothed member 5 contacting the second transmission gear 14. , thereby stably cooperating with the auxiliary magnetic breaking piece 6 to perform bidirectional centrifugal mixing treatment of the materials in contact with the inner side, the materials accumulated at the bottom can realize multi-directional movement, and the materials accumulated on the upper layer of the bottom can be efficiently broken up at the same time, and the mixing quality can be guaranteed; in the process of the first transmission gear 11 driving the lower support assembly 2 to rotate centrifugally through the first tooth piece 3, the upper support assembly 4 connected to its upper end will then cooperate with the meshing state between the second transmission gear 14 and the second tooth piece 5, and stably form a reverse rotation structure along the upper end of the lower support assembly 2, so that a bidirectional mixing treatment state is formed between the upper support assembly 4 and the lower support assembly 2, so that the materials inside the equipment, whether accumulated at the lower end or stored at the upper end, can be synchronously mixed in both directions.

[0038] Embodiment 2: Based on Embodiment 1, an auxiliary guiding structure is also disclosed, and its specific structure is as follows:

[0039] An auxiliary guiding structure is provided between the outer side of the reserved base 1 and the upper supporting assembly 4 and the lower supporting assembly 2, and the movable directions of the upper supporting assembly 4 and the lower supporting assembly 2 are adaptively adjusted through the auxiliary guiding structure.

[0040] The auxiliary guide structure is provided with a preset motor assembly 10, and the preset motor assembly 10 is installed on the outside of the reserved base 1, and the output end of the preset motor assembly 10 is docked with a first transmission gear 11, and the upper end of the first transmission gear 11 is installed with a first bevel gear 12, and the first transmission gear 11 is meshed and docked with the first toothed member 3 on the outside of the lower support assembly 2. The outer side of the reserved base 1 is rotatably connected with a transmission bevel gear 13, and the upper end of the transmission bevel gear 13 is docked with a second bevel gear 15, and the outer side of the transmission bevel gear 13 is meshed and docked with the first bevel gear 12 and the second bevel gear 15 respectively; the upper end of the second bevel gear 15 is docked with a second transmission gear 14, and the second transmission gear 14 and the second bevel gear 15 are both docked with the outer side of the reserved base 1, and the second transmission gear 14 is meshed with the second toothed member 5 on the outer side of the upper support assembly 4. The first transmission gear 11 drives the lower support assembly 2 to rotate centrifugally through the first gear 3 , and the first transmission gear 11 cooperates with the first bevel gear 12 to drive the transmission bevel gear 13 and the second bevel gear 15 to synchronously form a rotating structure along the inner side of the reserved base 1 .

[0041] The second transmission gear 14 rotates synchronously with the rotation of the second bevel gear 15, and the second transmission gear 14 drives the upper support assembly 4 to form a rotating structure along the upper end of the lower support assembly 2 through the second toothed member 5; the rotation directions of the lower support assembly 2 and the upper support assembly 4 are opposite; during the mixing process of the equipment, the symmetrically distributed auxiliary magnetic disintegrating parts 6 will move in a circle through the upper support assembly 4, and when the outer side of the auxiliary magnetic disintegrating parts 6 rotates to the corresponding position of the magnet part 9 on the surface of the docking support part 8 on the inner side of the lower support assembly 2, it will be forced to form a reciprocating movement along the inner side of the upper support assembly 4 through the torsion spring shaft 7, thereby cooperating with the bidirectionally rotating upper support assembly 4 and the lower support assembly 2, so that the auxiliary magnetic disintegrating parts 6 can form a multi-directional active disintegrating processing work inside the equipment, and efficiently carry out the mixing processing of the internal materials.

[0042] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "connected" and "connection" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0043] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. An automated and efficient ceramic tile raw material mixing device, comprising a reserved base (1) and a lower support assembly (2), wherein the upper end of the reserved base (1) is rotatably connected to the lower support assembly (2), and the outer side of the lower support assembly (2) is fixedly connected to a first tooth member (3); Features: The upper end of the lower support assembly (2) is nested with the upper support assembly (4), and the outer side of the upper support assembly (4) is fixedly connected to a second toothed member (5); the lower end of the upper support assembly (4) is rotatably connected to a guide docking roller (16), and the guide docking roller (16) is docked with the upper end of the lower support assembly (2); an auxiliary scattering structure is provided between the upper support assembly (4) and the reserved base (1), and the auxiliary scattering structure is used to adaptively scatter the contacting materials; An auxiliary guiding structure is provided between the outer side of the reserved base (1) and the upper supporting assembly (4) and the lower supporting assembly (2), and the movable directions of the upper supporting assembly (4) and the lower supporting assembly (2) are adaptively adjusted through the auxiliary guiding structure; The auxiliary breaking up structure is provided with a docking support member (8), and the docking support member (8) is fixedly connected to the inner side of the lower support assembly (2), and a magnet member (9) is fixedly connected to the outer side of the docking support member (8); The inner end of the upper support component (4) is rotatably connected to an auxiliary magnetic scattering piece (6), and the end of the auxiliary magnetic scattering piece (6) and the upper support component (4) are butted against each other via a torsion spring shaft (7); The auxiliary magnetic scattering pieces (6) are symmetrically distributed about the center point of the upper support assembly (4), and when the outer side of the auxiliary magnetic scattering pieces (6) rotates to contact the corresponding position of the magnet piece (9), force is applied through the torsion spring shaft (7) along the inner side of the upper support assembly (4) to form a rotating structure.

2. The automatic and efficient mixing equipment for ceramic tile raw materials according to claim 1 is characterized by: A rotational connection is formed between the reserved base (1) and the lower end of the lower support assembly (2), and the lower support assembly (2) is nested with the upper support assembly (4) via the guide docking roller (16) to form a rotational structure.

3. The automatic and efficient mixing equipment for ceramic tile raw materials according to claim 2 is characterized by: The auxiliary guide structure is provided with a preset motor assembly (10), and the preset motor assembly (10) is mounted on the outside of the reserved base (1), and the output end of the preset motor assembly (10) is butted with a first transmission gear (11), and the upper end of the first transmission gear (11) is mounted with a first bevel gear (12), and the first transmission gear (11) and the first toothed member (3) on the outside of the lower support assembly (2) are meshed and butted with each other.

4. The automatic and efficient mixing equipment for ceramic tile raw materials according to claim 3 is characterized by: The outer side of the reserved base (1) is rotatably connected to a transmission bevel gear (13), and the upper end of the transmission bevel gear (13) is butted against a second bevel gear (15), and the outer sides of the transmission bevel gear (13) are respectively meshed and butted against the first bevel gear (12) and the second bevel gear (15); The upper end of the second bevel gear (15) is butted against a second transmission gear (14), and the second transmission gear (14) and the second bevel gear (15) are butted against the outer side of the reserved base (1), while the second transmission gear (14) is meshed with a second toothed member (5) on the outer side of the upper support assembly (4).

5. The automatic and efficient mixing equipment for ceramic tile raw materials according to claim 4 is characterized by: The first transmission gear (11) drives the lower support assembly (2) to rotate centrifugally via the first toothed member (3), and the first transmission gear (11) cooperates with the first bevel gear (12) to drive the transmission bevel gear (13) and the second bevel gear (15) to synchronously form a rotating structure along the inner side of the reserved base (1).

6. The automatic and efficient mixing equipment for ceramic tile raw materials according to claim 5 is characterized by: The second transmission gear (14) rotates synchronously with the rotation of the second bevel gear (15), and the second transmission gear (14) drives the upper support component (4) through the second toothed member (5) to form a rotating structure along the upper end of the lower support component (2); The lower support assembly (2) and the upper support assembly (4) rotate in opposite directions.

Citation Information

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