Rare earth metal processing feeding equipment
By introducing a filtration, agitation, and feeding mechanism into rare earth metal processing equipment, the problem of material agglomeration was solved, the continuity and efficiency of material supply were improved, and product quality was ensured.
Patent Information
- Application Number
- CN202520556629.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-03-27
AI Technical Summary
In existing rare earth metal processing, materials are prone to agglomeration, leading to discontinuous material supply, which affects product quality and production efficiency.
A rare earth metal processing feeding device was designed, which includes a filtering and stirring mechanism and a feeding mechanism. The stirring plate and the unblocking plate are driven by a drive motor to stir and remove the material to prevent agglomeration, and the residual material is removed by a scraper.
It effectively prevents material clumping, improves the continuity and efficiency of material supply, enhances product quality, and reduces material waste.
Smart Images

Figure CN223792202U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to rare earth metal processing technical field especially relates to a rare earth metal processing feeding equipment. BACKGROUND
[0002] In the rare earth metal processing process, the feeding equipment plays a vital role, and it stably and efficiently transports materials to the processing link, which is the basis for ensuring the smooth progress of the processing flow.
[0003] In the prior art, the spiral conveying equipment is usually used to transport materials, and the materials are prone to caking due to the influence of temperature and humidity and other factors, and the spiral conveying equipment is not easy to scatter the caked materials, thereby easily causing blockage, affecting the continuity of feeding, and also affecting the quality of products. In view of this, the utility model provides a rare earth metal processing feeding equipment, UTILIT Y MODEL CONTENT
[0004] In view of the deficiencies of the prior art, the utility model provides a rare earth metal processing feeding equipment, which solves the technical problem of not easy to scatter the caked materials in the prior art and reduces the continuity of feeding, and achieves that the materials can be stirred and scattered, the caked materials are avoided, and the continuity of feeding is improved.
[0005] To solve the above technical problems, the utility model provides the following technical scheme: a rare earth metal processing feeding equipment, which comprises a feeding cylinder connected with a discharge port of a storage box, a filtering and stirring mechanism for scattering materials is arranged on the storage box, and a feeding mechanism for removing residual materials is arranged on the feeding cylinder.
[0006] The filtering and stirring mechanism comprises a driving motor installed at the top end of the storage box, a mounting rod is installed at the output end of the driving motor, the bottom end of the mounting rod is distributed in the interior of the feeding cylinder, a plurality of stirring plates and dredging plates are installed on the mounting rod, a plurality of buffer members are installed in the interior of the storage box, a filter screen is movably installed on the buffer members, the mounting rod penetrates through the filter screen, a stop block is installed at the bottom end of the filter screen, a rotating rod is rotatably installed on one side of the storage box, a vibrating column corresponding to the position of the stop block is installed on the rotating rod, and a connecting belt is connected to the outer end of the rotating rod.
[0007] Preferably, the feeding mechanism comprises a bevel gear one installed at the bottom end of the mounting rod, a rotating rod connected with the connecting belt is rotatably connected in the interior of the feeding cylinder, a partition plate is installed at one end in the interior of the feeding cylinder, the rotating rod penetrates through the partition plate, a bevel gear two meshing with the bevel gear one is installed on the rotating rod, a conveying member is installed at the other end of the rotating rod, a fixed cylinder is installed on the rotating rod, a connecting spring is connected in the interior of the fixed cylinder, and a scraper plate connected with the connecting spring is slidably connected in the interior of the fixed cylinder.
[0008] Preferably, the agitator plates are distributed below the filter screen, and multiple sets of agitator plates are staggered and distributed on the outer wall of the mounting rod.
[0009] Preferably, the buffer consists of a positioning rod and a buffer spring, with one end of the buffer spring connected to the filter screen.
[0010] Preferably, the unblocking plate is located at the discharge port of the storage box, and the abutment and the rotating rod are both made of silicone.
[0011] Preferably, the rotating rod is connected to the rotating shaft via a connecting belt, and the outer end of the scraper abuts against the inner wall of the feeding cylinder.
[0012] By employing the above technical solution, this utility model provides a rare earth metal processing feeding device, which has at least the following beneficial effects:
[0013] 1. This utility model, by setting up a filtering and stirring mechanism, can stir the stored materials during the rare earth metal processing process, so as to avoid the clumping of the stored materials during the feeding process, thereby improving the feeding efficiency. In addition, the mechanism can also filter and screen the materials, thus improving the production quality of rare earth metals.
[0014] 2. By setting up a feeding mechanism, this utility model can quantitatively convey materials during the material transportation and feeding process, thereby improving the material feeding effect. At the same time, it can also remove the residues attached to the inner wall of the feeding cylinder, thus avoiding material waste. Attached Figure Description
[0015] The accompanying drawings, which are provided to further illustrate this application and form part of this application, illustrate exemplary embodiments of this application and are used to explain this application, but do not constitute an undue limitation of this application.
[0016] In the attached diagram:
[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0018] Figure 2 This is a cross-sectional structural diagram of the present invention;
[0019] Figure 3 This is a schematic diagram of the filter agitation mechanism of this utility model;
[0020] Figure 4 This is a cross-sectional view of the feeding mechanism of this utility model;
[0021] Figure 5 This utility model Figure 4 Enlarged structural diagram at point A in the middle.
[0022] In the diagram: 1. Storage bin; 2. Feeding cylinder;
[0023] 3. Filtering and agitating mechanism; 31. Drive motor; 32. Mounting rod; 33. Agitating plate; 34. Unblocking plate; 35. Buffer; 36. Filter screen; 37. Abutment block; 38. Rotating rod; 39. Vibrating column; 310. Connecting belt;
[0024] 4. Feeding mechanism; 41. Bevel gear one; 42. Rotating rod; 43. Partition plate; 44. Bevel gear two; 45. Conveying component; 46. Fixed cylinder; 47. Connecting spring; 48. Scraper. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0026] Example 1
[0027] Existing technologies often suffer from the problem of difficulty in breaking up agglomerated materials, which reduces the continuity of material feeding. This embodiment provides a rare earth metal processing feeding device, please refer to... Figures 1-5 This rare earth metal processing feeding equipment can agitate and disperse materials, preventing clumping and thus improving the continuity of material supply. It includes a feeding cylinder 2 connected to the outlet of a storage tank 1. The storage tank 1 is equipped with a filtering and agitating mechanism 3 for dispersing materials, and the feeding cylinder 2 is equipped with a feeding mechanism 4 for removing residual materials. The filtering and agitating mechanism 3 can both filter the materials, improving the quality of rare metal processing, and agitate the stored materials to prevent clumping and improve the smoothness of material supply. The feeding mechanism 4 can quantitatively convey materials and remove residual materials.
[0028] Existing technologies mostly use screw conveyors to transport materials. In reality, materials are easily agglomerated due to environmental factors such as temperature and humidity. Screw conveyors have a low ability to break up agglomerated materials. Once materials agglomerate, the screw blades are difficult to push, which can easily cause blockage of the conveying channel, resulting in interruption of material supply and failure to ensure the continuity of material supply. Moreover, agglomerated materials entering the processing stage will damage the uniformity of the materials and affect the production quality of the products. In order to solve the above problems... The filtering and agitating mechanism 3 includes a drive motor 31 installed at the top of the storage bin 1. An installation rod 32 is mounted on the output end of the drive motor 31, and the bottom of the installation rod 32 is located inside the feeding cylinder 2. Multiple sets of agitating plates 33 and unblocking plates 34 are installed on the installation rod 32. The agitating plates 33 are distributed below the filter screen 36 to facilitate agitation of the filtered material, improving material conveying efficiency. The multiple sets of agitating plates 33 are staggered on the outer wall of the installation rod 32, enabling agitation of materials at different levels and improving the agitation effect. The unblocking plates 34 are located at the outlet of the storage bin 1 to prevent material from clogging the outlet, improving the smoothness of discharge. Multiple sets of buffer components 35 are installed inside the storage bin 1. 5 consists of a positioning rod and a buffer spring, with one end of the buffer spring connected to the filter screen 36. Through the elastic action of the buffer spring, the filter screen 36 has a certain degree of extensibility, which also improves the filtration efficiency. The filter screen 36 is movably installed on the buffer component 35, and the mounting rod 32 passes through the filter screen 36. A stop block 37 is installed at the bottom of the filter screen 36. The stop block 37 and the rotating rod 38 are both made of silicone, which plays a protective role for the filter screen 36 and prevents material from accumulating at the top of the filter screen 36, thereby improving the filtration efficiency of the material. A rotating rod 38 is rotatably installed on one side of the storage box 1. A vibrating column 39 corresponding to the position of the stop block 37 is installed on the rotating rod 38. A connecting belt 310 is connected to the outer end of the rotating rod 38. The drive motor 31 drives the mounting rod 32 to rotate, which in turn drives the agitator plate 33 and the unblocking plate 34 to rotate, breaking up the material and preventing it from clumping. This also prevents the material from clogging the outlet and improves the feeding efficiency. With the connection of the buffer 35, the filter screen 36 has a certain degree of extensibility, which allows it to filter the material. The rotation of the mounting rod 32 drives the first bevel gear 41 to rotate, and with the connection of the second bevel gear 44, the rotating rod 42 rotates. Through the connection of the connecting belt 310, the rotating rod 38 rotates, which in turn drives the vibrating column 39 to rotate, causing it to continuously strike the abutment block 37, preventing all the material from accumulating on the top of the filter screen 36. The vibrating column 39 is distributed above the agitator plate 33, thus preventing the two from intersecting.
[0029] Example 2
[0030] Based on Example 1, such as Figures 1-5As shown, based on the existing technology, it is not easy to break up agglomerated materials, which reduces the continuity of material supply. However, after the material is fed, there are often residual materials, which can easily lead to material waste. Therefore, the device is also equipped with a structure to remove residual materials.
[0031] In existing technologies, after the material is fed, some material often remains inside the equipment. This not only results in the material not being fully utilized in production, causing unnecessary waste, but also may lead to equipment cleaning problems and potential malfunction risks due to the long-term accumulation of residual material. In order to solve the above problems... The feeding mechanism 4 includes a bevel gear 41 mounted at the bottom of the mounting rod 32. A rotating rod 42 connected to a connecting belt 310 is rotatably connected inside the feeding cylinder 2. The rotating rod 42 is connected to the rotating rod 38 via the connecting belt 310, which facilitates the vibration of the filter screen 36 while conveying materials, thus having a certain degree of linkage. A partition 43 is installed at one end inside the feeding cylinder 2, and the rotating rod 42 passes through the partition 43. A bevel gear 44 that meshes with the bevel gear 41 is installed on the rotating rod 42. A conveying component 45 is installed at the other end of the rotating rod 42. A fixed cylinder 46 is installed on the rotating rod 42. A connecting spring 47 is connected inside the fixed cylinder 46. A scraper 48 connected to the connecting spring 47 is slidably connected inside the fixed cylinder 46. The outer end of the scraper 48 abuts against the inner wall of the feeding cylinder 2, thereby removing residual materials from the inner wall of the feeding cylinder 2 and avoiding material waste. The operation of the drive motor 31 drives the mounting rod 32 to rotate, which in turn drives the first bevel gear 41 to rotate. With the connection of the second bevel gear 44, the rotating rod 42 rotates, thereby causing the conveying component 45 to rotate and thus quantitatively convey the material, improving the feeding efficiency. Furthermore, with the connection of the fixed cylinder 46 and the connecting spring 47, the scraper 48 can remove the residue from the inner wall of the feeding cylinder 2, which has certain practical performance.
[0032] It should be noted that, in this document, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0033] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A rare earth metal processing feeder device comprising a feeder cylinder (2) connected to the discharge opening of a storage bin (1), characterized in that: The storage box (1) is provided with a filtering stirring mechanism (3) for scattering materials, and the feeding cylinder (2) is provided with a feeding mechanism (4) for removing residual materials. The filtering stirring mechanism (3) comprises a driving motor (31) installed at the top end of the storage box (1), an installation rod (32) is installed at the output end of the driving motor (31), the bottom end of the installation rod (32) is distributed inside the feeding cylinder (2), a plurality of stirring plates (33) and dredging plates (34) are installed on the installation rod (32), a plurality of buffer members (35) are installed inside the storage box (1), a filter screen (36) is movably installed on the buffer member (35), the installation rod (32) penetrates through the filter screen (36), a stop block (37) is installed at the bottom end of the filter screen (36), a rotating rod (38) is rotatably installed on one side of the storage box (1), a vibration column (39) corresponding to the position of the stop block (37) is installed on the rotating rod (38), and a connecting belt (310) is connected to the outer end of the rotating rod (38).
2. A rare earth metal processing feed apparatus according to claim 1, wherein: The feeding mechanism (4) comprises a bevel gear I (41) installed at the bottom end of the installation rod (32), a rotating rod (42) connected with the connecting belt (310) is rotatably connected inside the feeding cylinder (2), a partition plate (43) is installed at one end inside the feeding cylinder (2), the rotating rod (42) penetrates through the partition plate (43), a bevel gear II (44) meshing with the bevel gear I (41) is installed on the rotating rod (42), a conveying member (45) is installed at the other end of the rotating rod (42), a fixed cylinder (46) is installed on the rotating rod (42), a connecting spring (47) is connected inside the fixed cylinder (46), and a scraper (48) connected with the connecting spring (47) is slidably connected inside the fixed cylinder (46).
3. A rare earth metal processing feed apparatus according to claim 1, wherein: The stirring plates (33) are distributed below the filter screen (36), and a plurality of stirring plates (33) are distributed in a staggered manner on the outer wall of the installation rod (32).
4. A rare earth metal processing feed apparatus according to claim 1, wherein: The buffer member (35) is composed of a positioning rod and a buffer spring, and one end of the buffer spring is connected with the filter screen (36).
5. A rare earth metal processing feed apparatus according to claim 1, wherein: The dredging plates (34) are distributed at the discharge port of the storage box (1), and the materials of the stop block (37) and the rotating rod (38) are silica gel.
6. A rare earth metal processing feed apparatus according to claim 2, wherein: The rotating rod (42) is connected with the rotating rod (38) through the connecting belt (310), and the outer end of the scraper (48) abuts against the inner wall of the feeding cylinder (2).