Zirconium oxide feeding device
By introducing a stirring component and a shaking component into the zirconia feeding device, the problem of material accumulation and blockage was solved, achieving uniform and smooth material conveying, and improving the continuity of production and the compatibility of the equipment.
Patent Information
- Application Number
- CN202511880566.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-13
- Publication Date
- 2026-01-23
AI Technical Summary
Existing zirconia feeding devices lack an active stirring mechanism for the storage silos and conveying pipeline inlets, which easily leads to material accumulation and blockage, affecting production continuity and increasing costs.
The system employs a mixing and shaking component, including short and long fan blades, to agitate materials. Combined with a motor-driven shaking component, it cleans up settled materials, ensuring material flowability and adaptability.
It effectively prevents material blockage, improves material uniformity and flow, enhances production efficiency, and reduces equipment downtime and material waste.
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Figure CN121376540A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of zirconia processing, and particularly relates to a zirconia feeding device. BACKGROUND
[0002] In the production process of zirconia ceramics, electronic ceramics and high-end refractory materials, accurate and efficient conveying of zirconia materials is one of the core links to ensure the quality stability of subsequent forming, sintering and other processes. Zirconia materials usually exist in the form of powder and particles, and their physical properties are greatly affected by factors such as humidity and particle size distribution, and are prone to agglomeration and poor flowability. In order to meet the needs of industrial continuous production, a zirconia feeding device has emerged, which mainly undertakes the task of automatic conveying of zirconia materials from the storage link to the processing equipment. Its running stability, material conveying smoothness and stirring uniformity are directly related to the production efficiency and product qualification rate of the whole production line. At present, the zirconia feeding device has become an indispensable key auxiliary equipment in the zirconia deep processing industry, and is widely used in high-precision fields such as ceramic manufacturing and electronic component production. The demand for performance optimization of the market continues to rise.
[0003] The current mainstream zirconia feeding device on the market mainly consists of a storage bin, an inclined conveying pipeline and a pneumatic pushing assembly. From the technical principle, this kind of device first pours zirconia materials into the top storage bin by manual and automatic equipment. The bottom of the storage bin is provided with a conical discharge port, and the materials slide along the conical surface to the inclined conveying pipeline below by relying on their own gravity. In order to avoid the preliminary accumulation of materials at the inlet of the pipeline, high-frequency low-amplitude vibration is used to "scatter" the materials at the outlet of the storage bin and gradually send them into the conveying pipeline. Then, the pneumatic pushing assembly pushes the materials in the pipeline to move along the inclined direction to the target processing equipment by the pushing force generated by compressed air, and finally completes the feeding process. Some high-end existing devices also install a polytetrafluoroethylene coating on the inner wall of the storage bin to reduce the frictional resistance between the materials and the wall and assist the materials to slide down.
[0004] However, the existing zirconia feeding device is prone to material accumulation and blockage due to the lack of active stirring mechanism for the materials at the inlet of the storage bin and the conveying pipeline. Zirconia materials are prone to agglomeration, and when the humidity is high, they are more likely to stick together and form "bridges" at the junction of the conical port of the storage bin and the pipeline. Moreover, vibration can only disturb the local materials at the port, and cannot act on the upper and middle parts of the bin, resulting in compaction and blockage of the accumulated materials in the channel. This not only affects the production continuity due to frequent shutdown for cleaning, but also causes material waste and increases costs. Therefore, a zirconia feeding device is proposed to solve the above problems. SUMMARY
[0005] In order to make up for the above shortcomings, the present application provides a zirconia feeding device, which aims to improve the problem of material accumulation and blockage without stirring.
[0006] In order to achieve the above object, the technical scheme adopted by the present application is as follows: a zirconium oxide feeding device, comprising a base and a bearing table, the bearing table is slidingly connected on the top of the base, a feeding box is fixedly connected on the top of the bearing table, a discharging assembly is arranged on the outer side of the bearing table, and a stirring assembly is arranged in the feeding box;
[0007] The stirring assembly comprises short wind blades and long wind blades, the short wind blades and the long wind blades are located in the feeding box, a fixed cylinder is fixedly connected on the top of the short wind blades, the fixed cylinder is fixedly connected on the bottom of the long wind blades, a plurality of flow grooves are formed in the two sides of the long wind blades, a long rod one is fixedly connected in the fixed cylinder, a fixed block one is rotatably connected on the outer wall of the long rod one, the fixed block one is fixedly connected on the inner wall of the bearing table and the feeding box, a motor one is fixedly connected in the bearing table, and the output end of the motor one is fixedly connected on the bottom of the fixed block one.
[0008] Further description of the above technical scheme:
[0009] The discharging assembly comprises a discharging pipe, the discharging pipe is fixedly connected on the inner wall of the bearing table, and a plurality of fixed frames are fixedly connected on the top of the bearing table.
[0010] Further description of the above technical scheme:
[0011] The shaking assembly comprises a plurality of O-shaped strips and short plates, the plurality of O-shaped strips and short plates are located in the base, and a short rod is slidingly connected on the inner wall of each O-shaped strip.
[0012] Further description of the above technical scheme:
[0013] One end of each short rod is fixedly connected on one side of the short plate, a motor two is fixedly connected in the base, and a fixed block two is fixedly connected in the base.
[0014] Further description of the above technical scheme:
[0015] The output end of the motor two penetrates through the fixed block two and is fixedly connected on one side of the short plate, and a long rod two is fixedly connected between two O-shaped strips.
[0016] Further description of the above technical scheme:
[0017] A long rod two is fixedly connected between two O-shaped strips, the long rod two is slidingly connected in the base, a sliding strip is fixedly connected on the two sides of each O-shaped strip, and a plurality of sliding strips are slidingly connected in the base.
[0018] As a further description of the above technical solutions:
[0019] Each of the sliding bars is fixedly connected with a connecting bar, and a plurality of the connecting bars are slidingly connected to the inner wall of the base.
[0020] As a further description of the above technical solutions:
[0021] A plurality of the connecting bars are fixedly connected to the bottom of the bearing table, the bottom of the bearing table is fixedly connected with a plurality of rollers, and a plurality of the rollers are slidingly connected in the sliding groove of the base.
[0022] The present application has the following beneficial effects:
[0023] 1、In the present application, the short wind blade and the long wind blade are driven to rotate by the motor, thereby achieving the effect of fully stirring the material in the material box and preventing blockage, solving the problem of blockage caused by material accumulation when there is no stirring, improving the stirring effect of the material, and the smooth operation also improves the uniformity.
[0024] 2、In the present application, the short plate is driven to rotate by the motor, so that the O-shaped strip and the sliding bar move, thereby achieving the effect of cleaning the deposited material in the bottom of the material box and the pipeline and adapting to different materials, solving the problems of side leakage of part of the material during conveying when there is no shaking, blockage caused by long-term accumulation, and poor adaptability, improving the cleaning ability and the compatibility of the equipment. BRIEF DESCRIPTION OF DRAWINGS
[0025] Figure 1 A perspective view of a zirconia feeding device is provided for the present application;
[0026] Figure 2 A motor one structure schematic diagram of a zirconia feeding device is provided for the present application;
[0027] Figure 3 A flow tank structure schematic diagram of a zirconia feeding device is provided for the present application;
[0028] Figure 4 A roller structure schematic diagram of a zirconia feeding device is provided for the present application;
[0029] Figure 5 An O-shaped strip structure schematic diagram of a zirconia feeding device is provided for the present application.
[0030] LEGEND:
[0031] 1, base; 2, bearing table; 3, fixed frame; 4, feed tank; 5, discharge pipe; 6, motor one; 7, motor two; 8, fixed block one; 9, fixed cylinder; 10, long rod one; 11, short blade; 12, long blade; 13, flow tank; 14, roller; 15, O-shaped strip; 16, fixed block two; 17, connecting strip; 18, sliding strip; 19, long rod two; 20, short plate; 21, short rod. DETAILED DESCRIPTION
[0032] The technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0033] Reference Figure 1 - Figure 3 An embodiment provided by the present application: a zirconia feeding device, comprising a base 1 and a bearing table 2, the bearing table 2 is slidingly connected at the top of the base 1, and a feed tank 4 is fixedly connected at the top of the bearing table 2, the feed tank 4 is used for accommodating zirconia materials to be processed, providing a stable material storage space for subsequent stirring and feeding processes, a discharge assembly is arranged on the outer side of the bearing table 2, the discharge assembly is used for smoothly conveying the zirconia materials after uniform stirring and preventing precipitation to the next processing link, ensuring the continuity of the feeding process, a stirring assembly is arranged inside the feed tank 4, the stirring assembly is used for stirring the zirconia materials in the feed tank 4, the materials are kept in a flowing state through stirring, reducing crystallization reaction, improving material uniformity, and preventing material blockage at the same time;
[0034] The stirring assembly comprises a short fan blade 11 and a long fan blade 12, which are located inside the feeding box 4, and the short fan blade 11 cooperates with the long fan blade 12 to perform a rotating stirring movement in the feeding box 4, so that the material is stirred in all directions and the local material stagnation is avoided, the top of the short fan blade 11 is fixedly connected with a fixed cylinder 9, the fixed cylinder 9 cooperates with the long rod 10 to perform a rotating movement, so that the short fan blade 11 and the long fan blade 12 are driven to rotate synchronously, the top of the fixed cylinder 9 is fixedly connected to the bottom of the long fan blade 12, the long fan blade 12 is provided with a plurality of flow grooves 13 for the material to pass through the long fan blade 12 during stirring, so as to reduce the material resistance borne by the long fan blade 12 and reduce the loss of the motor 6, the inside of the fixed cylinder 9 is fixedly connected with the long rod 10, the long rod 10 cooperates with the fixed block 8 to perform a rotating movement, so as to ensure that the fixed cylinder 9 rotates stably and is not disturbed by the material in the feeding box 4, the outer wall of the long rod 10 is rotatably connected with the fixed block 8, the fixed block 8 is used for limiting and fixing the long rod 10, so as to ensure the coaxiality of the long rod 10 during rotation, the inside of the bearing table 2 is fixedly connected with the motor 6, the motor 6 is used for providing power output for the stirring assembly, and drives the long rod 10, the fixed cylinder 9, the short fan blade 11 and the long fan blade 12 to rotate, the output end of the motor 6 is fixedly connected to the bottom of the fixed block 8, the inside of the base 1 is provided with a shaking assembly, the shaking assembly is used for driving the bearing table 2 to shake, so that the material deposited at the bottom of the feeding box 4 flows again, and the material with different characteristics is adapted, the equipment compatibility is improved, the discharging assembly comprises a discharging pipe 5, which is used for conveying the uniformly stirred material from the feeding box 4 to the outside, so as to ensure the smoothness of the feeding process, the discharging pipe 5 is fixedly connected to the inner wall of the bearing table 2, the top of the bearing table 2 is fixedly connected with a plurality of fixing frames 3, the fixing frames 3 are used for assisting in fixing the feeding box 4, so as to enhance the stability of the feeding box 4 on the bearing table 2, and prevent the feeding box 4 from being displaced during stirring and shaking.
[0035] Referring to Figure 2 , Figure 4 and Figure 5The shaking assembly comprises a plurality of O-shaped strips 15 and short plates 20 located inside the base 1, the O-shaped strips 15 are matched with the short rods 21 to slide, and the rotation of the short plate 20 is converted into the horizontal movement of the O-shaped strips 15, the inner wall of each O-shaped strip 15 is slidably connected with the short rod 21, the short rod 21 is used for connecting the short plate 20 and the O-shaped strip 15, and the rotation power of the short plate 20 is transmitted to the O-shaped strip 15, one end of each short rod 21 is fixedly connected to one side of the short plate 20, the inside of the base 1 is fixedly connected with the second motor 7, the second motor 7 is used for providing power for the shaking assembly, driving the short plate 20 to rotate, the inside of the base 1 is fixedly connected with the second fixed block 16, the second fixed block 16 is used for supporting and limiting the output end of the second motor 7, and the stability of the output end of the second motor 7 during rotation is guaranteed, the output end of the second motor 7 penetrates through the second fixed block 16 and is fixedly connected to one side of the short plate 20, the short plate 20 is matched with the second motor 7 to rotate, the short rod 21 in the O-shaped strip 15 is driven to slide, and the O-shaped strip 15 is driven to move, the two O-shaped strips 15 are fixedly connected with the second long rod 19, the second long rod 19 is used for keeping the movement of the two O-shaped strips 15 synchronous, improving the shaking effect of the whole shaking assembly, the second long rod 19 is slidably connected to the inside of the base 1, the two sides of each O-shaped strip 15 are fixedly connected with the sliding strip 18, the sliding strip 18 is matched with the O-shaped strip 15 to move horizontally, the effect of driving the connecting strip 17 to move synchronously is achieved, a plurality of sliding strips 18 are slidably connected to the inside of the base 1, the top of each sliding strip 18 is fixedly connected with the connecting strip 17, the connecting strip 17 is used for connecting the sliding strip 18 and the bearing table 2, and the movement of the sliding strip 18 is converted into the shaking of the bearing table 2, a plurality of connecting strips 17 are slidably connected to the inner wall of the base 1, the top of the plurality of connecting strips 17 is fixedly connected to the bottom of the bearing table 2, a plurality of rollers 14 are fixedly connected to the bottom of the bearing table 2, the rollers 14 are matched with the bearing table 2 to slide, the friction between the bearing table 2 and the base 1 is reduced, the shaking of the bearing table 2 is more smooth, and the effect that the plurality of rollers 14 are slidably connected in the sliding groove of the base 1.
[0036] Working principle: after the material is put into the feeding box 4, the first motor 6 in the bearing table 2 starts to output power and rotates, drives the rotation of the first long rod 10, and the existence of the first fixed block 8 makes the first long rod 10 not affected by the material in the feeding box 4, realizes smooth rotation, then the rotation of the first fixed block 8 drives the rotation of the outer fixed cylinder 9, with the rotation of the fixed cylinder 9, the upper and lower long vanes 12 and short vanes 11 start to stir in the feeding box 4, a plurality of flow grooves 13 on the long vane 12 can pass through the material, reduce the bearing capacity of the long vane 12, also reduce the loss of the first motor 6, finally the stirring of the long vane 12 and the short vane 11 makes the material in the feeding box 4 always keep flowing, reduces the crystallization reaction, finally achieves very high fluidity and prevents material blockage, improves the uniformity of the material;
[0037] When the bottom sediment material is re-operated, first the motor 7 of the base 1 drives the short plate 20 to rotate, and the short rod 21 moves in the sliding groove of the O-shaped strip 15 in the rotation of the short plate 20. Influenced by the short rod 21, the O-shaped strip 15 starts to move left and right horizontally, drives the sliding strips 18 on both sides to move in the sliding groove inside the base 1, and drives the connecting strip 17 to move. The long rod 19 synchronizes the shaking structures on both sides, improves the shaking effect, and then the connecting strip 17 moves in the sliding groove of the inner wall of the base 1, drives the carrying table 2 to move, and the rollers 14 at the bottom of the carrying table 2 also move in the moving groove on one side of the base 1, so that the connecting strip 17 drives the carrying table 2 to shake more smoothly, and finally achieves the solution of the sediment of the material through shaking, and can adapt to different materials, and has high compatibility.
Claims
1. A zirconium oxide feeding device, comprising a base (1) and a support platform (2), characterized in that: The support platform (2) is slidably connected to the top of the base (1), and a feed box (4) is fixedly connected to the top of the support platform (2). A discharge component is provided on the outside of the support platform (2), and a stirring component is provided inside the feed box (4). The stirring assembly includes a short impeller (11) and a long impeller (12). The short impeller (11) and the long impeller (12) are located inside the feed box (4). A fixed cylinder (9) is fixedly connected to the top of the short impeller (11). The top of the fixed cylinder (9) is fixedly connected to the bottom of the long impeller (12). Multiple flow channels (13) are opened on both sides of the long impeller (12). A long rod (10) is fixedly connected inside the fixed cylinder (9). A fixed block (8) is rotatably connected to the outer wall of the long rod (10). The outer side of the fixed block (8) is fixedly connected to the inner wall of the support platform (2) and the feed box (4). A motor (6) is fixedly connected inside the support platform (2). The output end of the motor (6) is fixedly connected to the bottom of the fixed block (8). A shaking assembly is provided inside the base (1).
2. The zirconium oxide feeding device according to claim 1, characterized in that: The discharge assembly includes a discharge pipe (5), the outer side of which is fixedly connected to the inner wall of the support platform (2), and a plurality of fixing brackets (3) are fixedly connected to the top of the support platform (2).
3. The zirconium oxide feeding device according to claim 1, characterized in that: The shaking component includes multiple O-rings (15) and short plates (20), which are located inside the base (1). Each O-ring (15) has a short rod (21) slidably connected to its inner wall.
4. The zirconium oxide feeding device according to claim 3, characterized in that: One end of each of the short rods (21) is fixedly connected to one side of the short plate (20), and a motor (7) is fixedly connected inside the base (1), and a fixing block (16) is fixedly connected inside the base (1).
5. A zirconium oxide feeding device according to claim 4, characterized in that: The output end of the second motor (7) passes through the second fixing block (16) and extends and is fixedly connected to one side of the short plate (20). A long rod (19) is fixedly connected between the two O-shaped strips (15).
6. A zirconium oxide feeding device according to claim 5, characterized in that: The second long rod (19) is slidably connected inside the base (1), and each of the O-shaped strips (15) is fixedly connected to both sides with a sliding strip (18), and multiple sliding strips (18) are slidably connected inside the base (1).
7. A zirconium oxide feeding device according to claim 6, characterized in that: Each of the sliding bars (18) is fixedly connected to a connecting bar (17) at its top, and multiple connecting bars (17) are slidably connected to the inner wall of the base (1).
8. A zirconium oxide feeding device according to claim 7, characterized in that: The top of the multiple connecting strips (17) is fixedly connected to the bottom of the support platform (2), and the bottom of the support platform (2) is fixedly connected to multiple rollers (14), which are slidably connected in the groove of the base (1).