A carbon anode processing material screening device

CN224736687UActive Publication Date: 2026-09-11XINJIANG EAST HOPE CARBON CO LTD
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Patent Information

Application Number
CN202521274389.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-06-20
Publication Date
2026-09-11
Estimated Expiration
2035-06-20

AI Technical Summary

Technical Problem

[0002]在碳素阳极加工行业中,振动筛分机是物料筛分的关键设备,其性能直接影响筛分效率和产品质量,目前,常见的振动筛分机筛箱进料口设计较为固定,与上方送料设备出料口之间的高度匹配存在较大问题,由于不同送料设备的出料口高度各异,固定高度的进料口难以适应,导致二者之间存在高度差,在物料输送过程中,这种高度差极易造成物料撒漏,不仅造成碳素阳极原材料浪费,增加生产成本,还会污染生产环境,增加清理工作量,而且,现有的进料口结构在防止漏料方面效果不佳,无法有效解决进料过程中的物料泄漏问题,影响整个碳素阳极加工流程的顺畅性和高效性,为此本实用新型提出一种碳素阳极加工物料筛分装置

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Abstract

The utility model discloses a carbon anode processing material screening device, including frame, install the sieve box in the top of frame, the feed inlet fixed in the top of sieve box left end, still include the extension guide bushing of sliding cover in the top surface of feed inlet, and the extension guide bushing is provided with the adjusting structure between with feed inlet, install the silica gel horn mouth in the top surface of extension guide bushing, the utility model discloses the material screening device among prior art is improved, and the adjustable extension guide bushing is designed at the sieve box feed inlet, and the operator can adjust the extension guide bushing height according to the top feeding equipment discharge port height, effectively reduces the material spilling because of height difference, reduces raw material waste, reduces the pollution and cleaning cost to production environment, simultaneously, installs the silica gel horn mouth above extension guide bushing, under the premise of not influencing normal feeding, further prevents the material leakage situation when feeding, guarantees the stability of material delivery, is helpful to the overall benefit of carbon anode processing promotion.
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Description

Technical Field

[0001] This utility model belongs to the field of carbon processing material screening technology, specifically relating to a carbon anode processing material screening device. Background Technology

[0002] In the carbon anode processing industry, vibrating screens are key equipment for material screening, and their performance directly affects screening efficiency and product quality. Currently, the feed inlet design of common vibrating screens is relatively fixed, which presents a significant problem in matching the height with the discharge outlet of the upper feeding equipment. Due to the varying discharge outlet heights of different feeding equipment, a fixed-height feed inlet is difficult to adapt, resulting in a height difference between the two. During material conveying, this height difference easily causes material spillage, which not only wastes carbon anode raw materials and increases production costs but also pollutes the production environment and increases cleaning workload. Moreover, the existing feed inlet structure is ineffective in preventing material leakage and cannot effectively solve the material leakage problem during the feeding process, affecting the smoothness and efficiency of the entire carbon anode processing flow. Therefore, this utility model proposes a material screening device for carbon anode processing. Utility Model Content

[0003] The purpose of this invention is to provide a screening device for carbon anode processing materials to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a screening device for carbon anode processing materials, comprising a frame, a screen box installed above the frame, and a feed inlet fixed to the top left end of the screen box, and further comprising...

[0005] An extension guide sleeve is slidably fitted on the top surface of the feed inlet, and an adjustment structure is provided between the extension guide sleeve and the feed inlet.

[0006] The silicone flared end is installed on the top surface of the extension guide sleeve.

[0007] Preferably, the adjustment structure includes two threaded rods, and threaded holes A matching the threaded rods are opened on both sides of the extension guide sleeve. The inner walls on both sides of the extension guide sleeve are opened with inner grooves communicating with the threaded holes A. Multiple limiting slots corresponding to the threaded rods are opened on both sides of the feed port. The inner end of the threaded rod is screwed into one of the limiting slots through the threaded holes A.

[0008] Preferably, the outer end of the threaded rod is also fixed with a rotating ring relative to the outer side of the extended guide sleeve, and the surface of the rotating ring is provided with multiple integrated strip-shaped protrusions.

[0009] Preferably, the bottom surface of the silicone horn is provided with an integrated U-shaped connecting block, and the top surface of the extended guide sleeve is provided with a U-shaped mounting groove that matches the U-shaped connecting block, and the U-shaped connecting block is inserted into the U-shaped mounting groove.

[0010] Preferably, a plurality of mounting structures are provided between the extension guide sleeve and the U-shaped connecting block. The mounting structure includes a mounting bolt, a threaded hole B, and a bolt hole. The threaded hole B is opened through the side of the extension guide sleeve and communicates with the U-shaped mounting groove. The bolt hole is opened on the surface of the U-shaped connecting block. The mounting bolt is screwed into the bolt hole through the threaded hole B.

[0011] Preferably, a vibration motor is installed on the bottom surface of the screen box.

[0012] Preferably, the screen box is equipped with a screen mesh inside, and two discharge ports are provided at the bottom right end of the screen box.

[0013] Preferably, two side bases are fixed on both the front and rear surfaces of the screen box, and a vibration spring is connected between the side bases and the frame.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: This utility model improves the material screening device in the prior art by designing an adjustable extension guide sleeve at the feed inlet of the screen box. The operator can flexibly adjust the height of the extension guide sleeve according to the height of the discharge port of the upper feeding equipment, effectively reducing material spillage caused by height difference, reducing raw material waste, reducing pollution to the production environment and cleaning costs. At the same time, a silicone flared mouth is installed above the extension guide sleeve, which further prevents material leakage during feeding without affecting normal feeding, ensuring the stability of material conveying, improving the screening efficiency of the vibrating screen, and helping to improve the overall efficiency of carbon anode processing. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of this utility model;

[0016] Figure 2 This utility model Figure 1 A magnified view of a portion of region A in the middle;

[0017] Figure 3 This is a cross-sectional view of the sieve box of this utility model;

[0018] Figure 4 This utility model Figure 3 A magnified view of a portion of region B in the middle;

[0019] Figure 5 This utility model Figure 4 A magnified view of a portion of region C in the middle;

[0020] Figure 6 This utility model Figure 4 A magnified view of a portion of region D in the middle;

[0021] In the diagram: 1. Frame; 2. Vibration spring; 3. Screen box; 31. Side base; 32. Discharge port; 33. Screen; 4. Vibration motor; 5. Feed port; 6. Extension guide sleeve; 61. U-shaped mounting groove; 7. Silicone flared mouth; 71. U-shaped connecting block; 8. Adjustment structure; 81. Threaded hole A; 82. Threaded rod; 83. Inner groove; 84. Limiting slot; 85. Tightening ring; 9. Mounting structure; 91. Mounting bolt; 92. Threaded hole B; 93. Bolt hole. Detailed Implementation

[0022] 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.

[0023] Example

[0024] Please see Figures 1 to 6 This is an embodiment of the present utility model, which provides the following technical solution: a carbon anode processing material screening device, including a frame 1, a screen box 3 installed above the frame 1, a feed port 5 fixed to the top left end of the screen box 3, a vibration motor 4 installed on the bottom surface of the screen box 3, a screen mesh 33 installed inside the screen box 3, and two discharge ports 32 provided at the bottom right end of the screen box 3. Two side bases 31 are fixed on the front and rear surfaces of the screen box 3, and a vibration spring 2 is connected between the side base 31 and the frame 1. The above structures are all prior art. The specific structural principle will not be elaborated here. Simply put, the external feeding equipment injects carbon anode processing material into the feed port 5 on the screen box 3. Then the vibration motor 4 starts and the screen box 3 starts to shake continuously under the action of the vibration spring 2. Then the material will be screened by the screen mesh 33 inside the screen box 3 and discharged from the two discharge ports 32 respectively.

[0025] Also includes

[0026] An extension guide sleeve 6 is slidably sleeved on the top surface of the feed inlet 5, and an adjustment structure 8 is provided between the extension guide sleeve 6 and the feed inlet 5. Through the extension guide sleeve 6 and the adjustment structure 8, the operator can flexibly adjust the height of the extension guide sleeve 6 according to the height of the discharge port of the external feeding equipment above, effectively reducing material spillage caused by height difference, reducing raw material waste, and reducing pollution to the production environment and cleaning costs.

[0027] The silicone flared mouth 7, which is installed on the top surface of the extension guide sleeve 6, is made of silicone material and can be further matched with the extension guide sleeve 6. Without affecting the normal feeding, it further prevents material leakage due to height difference during feeding, ensuring that the carbon anode processing material can stably enter the inner side of the screen box 3 through the feed port 5.

[0028] In this embodiment, preferably, the adjustment structure 8 includes two threaded rods 82. Both sides of the extension guide sleeve 6 are provided with threaded holes A81 that match the threaded rods 82. Both sides of the inner wall of the extension guide sleeve 6 are provided with inner grooves 83 that communicate with the threaded holes A81. Both sides of the feed inlet 5 are provided with multiple limiting slots 84 corresponding to the threaded rods 82. The inner end of the threaded rod 82 is screwed into one of the limiting slots 84 through the threaded hole A81, which can stably limit the extension guide sleeve 6. Subsequently, the threaded rod 82 can be rotated counterclockwise so that the inner end of the threaded rod 82 is screwed out of the limiting slot 84, thus quickly releasing the limitation on the extension guide sleeve 6. At this time, the extension guide sleeve 6 can be moved up and down to adjust its height. When the appropriate height is reached, the threaded rod 82 is rotated clockwise so that the inner end of the threaded rod 82 can be screwed into another limiting slot 84 under the action of the thread, until the threaded rod 82 is tightened. This completes the re-limiting of the extension guide sleeve 6 after height adjustment, realizing flexible and rapid height adjustment of the extension guide sleeve 6.

[0029] In this embodiment, preferably, the outer end of the threaded rod 82 is also fixed with a turning ring 85 relative to the outer side of the extension guide sleeve 6, and the surface of the turning ring 85 is provided with multiple integrated strip-shaped protrusions, which can facilitate the subsequent operator to hold the turning ring 85 and rotate the threaded rod 82.

[0030] In this embodiment, preferably, the bottom surface of the silicone horn 7 is provided with an integrated spiral connecting block 71, and the top surface of the extension guide sleeve 6 is provided with a spiral mounting groove 61 that is adapted to the spiral connecting block 71, and the spiral connecting block 71 is inserted into the spiral mounting groove 61.

[0031] In this embodiment, preferably, a plurality of mounting structures 9 are also provided between the extension guide sleeve 6 and the loop-shaped connecting block 71. The mounting structure 9 includes a mounting bolt 91, a threaded hole B92 and a bolt hole 93. The threaded hole B92 is opened through the side of the extension guide sleeve 6 and communicates with the loop-shaped mounting groove 61. The bolt hole 93 is opened on the surface of the loop-shaped connecting block 71. The mounting bolt 91 is screwed into the bolt hole 93 through the threaded hole B92, which can stably limit the position of the loop-shaped connecting block 71 and ensure the installation stability of the silicone flared mouth 7.

[0032] Although embodiments of the present invention have been shown and described (see the detailed description above), 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 screening device for carbon anode processing materials, comprising a frame (1), a screen box (3) mounted above the frame (1), and a feed inlet (5) fixed to the top left end of the screen box (3), characterized in that: Also includes An extension guide sleeve (6) is slidably sleeved on the top surface of the feed inlet (5), and an adjustment structure (8) is provided between the extension guide sleeve (6) and the feed inlet (5); Silicone flared mouth (7) installed on the top surface of the extension guide sleeve (6).

2. A carbon anode processing material screening apparatus according to claim 1, wherein: The adjustment structure (8) includes two threaded rods (82). The two sides of the extension guide sleeve (6) are provided with threaded holes A (81) that match the threaded rods (82). The inner walls of both sides of the extension guide sleeve (6) are provided with inner grooves (83) that communicate with the threaded holes A (81). The two sides of the feed port (5) are provided with multiple limiting slots (84) that correspond to the threaded rods (82). The inner end of the threaded rod (82) is screwed into one of the limiting slots (84) through the threaded holes A (81).

3. A carbon anode processing material screening apparatus according to claim 2, wherein: The outer end of the threaded rod (82) is also fixed with a rotating ring (85) relative to the outer side of the extension guide sleeve (6), and the surface of the rotating ring (85) is provided with multiple integrated strip-shaped protrusions.

4. A carbon anode processing material screening apparatus according to claim 1, wherein: The bottom surface of the silicone horn (7) is provided with an integrated spiral connecting block (71), and the top surface of the extension guide sleeve (6) is provided with a spiral mounting groove (61) that is compatible with the spiral connecting block (71). The spiral connecting block (71) is inserted into the spiral mounting groove (61).

5. A carbon anode processing material screening apparatus according to claim 4, wherein: A plurality of mounting structures (9) are provided between the extension guide sleeve (6) and the loop connecting block (71). The mounting structure (9) includes a mounting bolt (91), a threaded hole B (92) and a bolt hole (93). The threaded hole B (92) is opened through the side of the extension guide sleeve (6) and communicates with the loop mounting groove (61). The bolt hole (93) is opened on the surface of the loop connecting block (71). The mounting bolt (91) is screwed into the bolt hole (93) through the threaded hole B (92).

6. A carbon anode processing material screening apparatus as defined in claim 1, wherein: A vibration motor (4) is installed on the bottom surface of the sieve box (3).

7. A carbon anode processing material screening apparatus as defined in claim 1, wherein: The screen box (3) is equipped with a screen (33) inside, and two discharge ports (32) are provided at the bottom right end of the screen box (3).

8. A carbon anode processing material screening apparatus according to claim 1, wherein: The screen box (3) has two side bases (31) fixed on its front and rear surfaces, and a vibration spring (2) is connected between the side bases (31) and the frame (1).