Catalyst sub-body production and delivery apparatus

By designing the material collection and guiding structures, the problem of catalyst piling up at the discharge end of the belt conveyor was solved, achieving uniform clamping and quantitative discharge of the catalyst, thus improving the stability and efficiency of the production process.

CN120942890BActive Publication Date: 2026-03-03NANTONG FUMI NEW MATERIAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

The discharge end of the belt conveyor will cause the catalyst to pile up and be discharged, resulting in catalyst scattering and uneven transportation, which will affect subsequent processing.

Method used

The material collection and guiding structure is adopted, including a first and second segmented plate that are fixedly connected, a clamping shell and a clamping plate. Through the cooperation of a sealing plate, magnetic strip and driving structure, the catalyst is uniformly clamped and quantitatively discharged.

Benefits of technology

This effectively prevents catalyst from scattering during transportation, enabling uniform delivery and rapid, quantitative discharge of the catalyst, thus improving the stability and efficiency of the production process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of conveying device, specifically to a catalyst split production conveying device, which comprises a conveying structure and a guide structure connected to the discharging end of the conveying structure, and a material collecting structure is arranged on the conveying structure, the material collecting structure comprises a first partition plate and a second partition plate fixedly connected to the conveying structure, a clamping shell and a clamping plate are slidably connected to the conveying structure between the first partition plate and the second partition plate, a sealing plate is rotatably connected to the clamping shell and the clamping plate, a connecting magnetic strip is fixedly connected to the sealing plate, the connecting magnetic strip on one of the sealing plates is attracted to the connecting magnetic strip on the other sealing plate, an inclined baffle is fixedly connected to the receiving end of the conveying structure, and a blocking plate is fixedly connected to the top surface of the conveying structure at one of the inclined baffles. When the conveying device is actually used, the clamping shell and the clamping plate can cooperate with the sealing plate to clamp and transport the catalyst, and the phenomenon of catalyst scattering during transportation on the conveying structure can be avoided.
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Description

Technical Field

[0001] This invention relates to the field of conveying device technology, specifically to a catalyst split production conveying device. Background Technology

[0002] Catalyst splitting and conveying device is a device used to convey and package various raw materials, intermediate products and finished catalysts required in the catalyst production process, including granular catalysts. It can accurately package and convey catalysts according to the production process requirements to ensure the stability and efficiency of the production process.

[0003] Currently, some granular catalysts are usually transported by belt conveyors. Belt conveyors used for transporting granular catalysts on the market include a conveyor belt and a structure that drives the conveyor belt. When transported on a belt conveyor, the discharge end of the belt conveyor will cause the catalyst to be discharged in a pile. This will lead to uneven discharge of the catalyst. Moreover, the continuously vibrating conveyor belt is very likely to cause the raw materials to scatter due to vibration, which is not convenient for subsequent workers to process the catalyst.

[0004] Therefore, we propose a catalyst split production and conveying device. Summary of the Invention

[0005] One of the technical problems this application aims to solve is that the discharge end of the belt conveyor causes the catalyst to be discharged in a pile.

[0006] To address the aforementioned technical problems, this application provides a catalyst splitting production conveying device, comprising a conveying structure and a guiding structure connected to the discharge end of the conveying structure. The conveying structure is equipped with a collecting structure, which includes a first dividing plate and a second dividing plate fixedly connected to the conveying structure. A clamping shell and a clamping plate are slidably connected between the first and second dividing plates on the conveying structure. A sealing plate is rotatably connected to the clamping shell and the clamping plate. A connecting magnetic strip is fixedly connected to the sealing plate, and the connecting magnetic strips on one sealing plate and the other sealing plate attract each other.

[0007] In some embodiments, the receiving end of the conveying structure is fixedly connected to an inclined baffle, and a baffle plate is fixedly connected to one of the inclined baffles on the top surface of the conveying structure. The guiding structure includes a connecting housing fixedly connected to the conveying structure, and a support leg structure is fixedly connected to the connecting housing.

[0008] In some embodiments, a first magnetic block and a second magnetic block are fixedly connected to one side of the connecting housing, the length of the first magnetic block is less than the length of the second magnetic block, and a driving structure is provided on the first and second dividing plates.

[0009] In some embodiments, a first driving member is connected to the inner side of the first and second dividing plates. The first driving member includes a rotating plate rotatably connected to the first and second dividing plates. Rotating gears are distributed inside the first and second dividing plates. The rotating gears are fixedly connected to the rotating plate. A driving magnetic block is fixedly connected to the side of the rotating plate opposite to the rotating gears.

[0010] In some embodiments, the drive structure includes a support bar that passes through the first partition plate and the second partition plate. A first stop bar and a second stop bar are fixedly connected to the drive structure. A pull rope is fixedly connected to the inner wall of the second partition plate between the first stop bar and the second stop bar. The pull rope passes through the second partition plate and the sealing plate and is fixedly connected.

[0011] In some embodiments, a sealing shaft is fixedly connected to the sealing plate, and one end of the sealing shaft opposite to the sealing plate is fixedly connected to a second dividing plate. A connecting spring is fixedly connected between the sealing plate and the second dividing plate.

[0012] In some embodiments, the driving structure further includes a support block fixedly connected to the inner wall of the second partition plate. The support block can support the support bar. The support bar is fixedly connected with driving teeth. A magnetic column is fixedly connected to one end of the support bar near the first magnetic block and the second magnetic block.

[0013] In some embodiments, a second driving member is provided near the first driving member on the clamping shell and the clamping plate. The second driving member includes a connecting plate fixedly connected to the clamping shell and the clamping plate. A slider is fixedly connected to the lower part of the clamping shell and the clamping plate. A plug rod passes through the connecting plate. A connecting groove is provided on the plug rod. A pulling bent rod is engaged in the connecting groove.

[0014] In some embodiments, the clamping shell is a cavity-like structure with an inner opening, and a diaphragm component is fixedly connected to the opening of the clamping shell. The pulling rod is fixedly connected to the inner wall of the diaphragm component, and the diaphragm component has a groove.

[0015] In some embodiments, a connecting magnetic block is fixedly connected to the end of the plug rod away from the pull rod, the magnetic poles of the connecting magnetic block and the driving magnetic block repel each other, and the pull rod is located behind the sealing shaft.

[0016] The present invention has at least the following beneficial effects:

[0017] 1. In actual use, the clamping shell and clamping plate of this conveying device can work with the sealing plate to clamp and transport the catalyst, which can prevent the catalyst from scattering during transport on the conveying structure.

[0018] 2. When the clamping shell and clamping plate in the conveying device, together with the sealing plate, transport the catalyst to the interior of the connecting shell, the first magnetic block can attract the magnetic column on one of the driving structures. At this time, the magnetic column can drive the support bar to slide on the second dividing plate. When the support bar slides on the second dividing plate, the first stop bar can pull the pull rope. At this time, the pull rope can drive the sealing plate to rotate around the sealing shaft, which can realize the discharge of catalyst between the clamping plate and the clamping shell.

[0019] 3. After the first magnetic block in the conveying device attracts the magnetic column, the second magnetic block can simultaneously attract the magnetic columns on the two support bars. When the magnetic columns on the two support bars are attracted by the second magnetic block, the first stop bar can pull the pulling rope. At this time, the sealing plate on the clamping shell and the clamping plate can be reset, which can realize the rapid discharge of the catalyst on the clamping shell and the clamping plate.

[0020] 4. When the clamping shell and clamping plate in the conveying device hold the catalyst, the diaphragm can be squeezed. When the catalyst in the clamping shell and clamping plate is discharged, the diaphragm can be reset. At this time, the diaphragm can bounce the catalyst away, so as to achieve uniform spraying and discharge of the catalyst.

[0021] 5. When the driving magnetic block and the connecting magnetic block in the conveying device are opposite each other, the inner wall of the connecting groove can collide with the pulling bent rod. The vibration generated by the pulling bent rod can be transmitted to the diaphragm, which can realize the oscillation and discharge of catalyst powder on the surface of the diaphragm. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 This is a schematic diagram showing the connection between the material collection structure and the conveying structure in this invention;

[0024] Figure 3 This is a schematic diagram of the material guiding structure in this invention;

[0025] Figure 4 This is a schematic diagram showing the usage state of the aggregate structure in this invention;

[0026] Figure 5 This is a schematic diagram of the repositioning of the material collection structure in this invention;

[0027] Figure 6 This is a schematic diagram showing the connection between the first driving component and the second dividing plate in this invention;

[0028] Figure 7 This is a schematic diagram of the connection structure between the driving structure and the second segment plate in this invention;

[0029] Figure 8 This is a schematic diagram of the connection structure between the sealing plate and the second dividing plate in this invention;

[0030] Figure 9 This is a schematic diagram of the connection structure between the diaphragm component and the sealing shaft in this invention;

[0031] Figure 10 This is a schematic diagram of the distribution structure of the indentation and tympanic membrane component in this invention;

[0032] Figure 11 for Figure 10 A magnified view of A in the middle.

[0033] In the diagram: 1. Material guiding structure; 11. Support leg structure; 12. First magnetic block; 13. Second magnetic block; 14. Connecting shell; 2. Conveying structure; 3. Material collecting structure; 31. First dividing plate; 32. Sealing plate; 33. Clamping plate; 34. Second dividing plate; 35. Drive structure; 351. Drive gear; 352. Support block; 353. First stop bar; 354. Support bar; 355. Second stop bar; 36. Diaphragm component; 37. First drive component; 371. Rotating plate; 372. Driving magnetic block; 373. Rotating gear; 38. Clamping shell; 39. Second driving component; 391. Connecting plate; 392. Connecting magnetic block; 393. Inserting rod; 394. Connecting groove; 395. Pulling rod; 310. Pulling rope; 311. Connecting magnetic strip; 312. Connecting spring; 313. Sealing shaft; 314. Slider; 315. Magnetic column; 316. Indentation; 4. Baffle plate; 5. Inclined baffle. Detailed Implementation

[0034] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0035] Example 1: Please refer to Figure 1-11 The present invention provides a technical solution:

[0036] A catalyst split production conveying device includes a conveying structure 2 and a guiding structure 1 connected to the discharge end of the conveying structure 2. A collecting structure 3 is provided on the conveying structure 2. The conveying structure 2 can be a belt conveyor available on the market. In this document, the conveying structure 2 is used to transport granular catalyst. The collecting structure 3 includes a first dividing plate 31 and a second dividing plate 34 fixedly connected to the conveying structure 2. The first dividing plate 31 and the second dividing plate 34 are rectangular hollow plate structures. In this document, the first dividing plate 31 and the second dividing plate 34 are used to divide the conveying area of ​​the conveying structure 2. A clamping shell 38 and a clamping plate 33 are slidably connected on the conveying structure 2 between the first dividing plate 31 and the second dividing plate 34. A sealing plate 32 is rotatably connected to the clamping shell 38 and the clamping plate 33. A connecting magnetic strip 311 is fixedly connected to the sealing plate 32. The connecting magnetic strip 311 on one sealing plate 32 and the connecting magnetic strip 311 on the other sealing plate 32 are attracted to each other.

[0037] The receiving end of the conveying structure 2 is fixedly connected to an inclined baffle 5. The top surface of the conveying structure 2 is fixedly connected to a baffle plate 4 located on the inclined baffle 5. The structure of the baffle plate 4 can be set according to the actual use. When in use, the baffle plate 4 can block the gap between the clamping shell 38 and the clamping plate 33 and the housing of the conveying structure 2, which can prevent the granular catalyst between the clamping shell 38 and the clamping plate 33 from separating from the clamping shell 38 and the clamping plate 33. The guiding structure 1 includes a connecting shell 14 fixedly connected to the conveying structure 2. A support leg structure 11 is fixedly connected to the connecting shell 14.

[0038] A first magnetic block 12 and a second magnetic block 13 are fixedly connected to one side of the connecting housing 14. The length of the first magnetic block 12 is less than the length of the second magnetic block 13. A driving structure 35 is provided on the first dividing plate 31 and the second dividing plate 34.

[0039] A first driving member 37 is connected to the inner side of the first dividing plate 31 and the second dividing plate 34. The first driving member 37 includes a rotating plate 371 rotatably connected to the first dividing plate 31 and the second dividing plate 34. Rotating gears 373 are distributed inside the first dividing plate 31 and the second dividing plate 34. The rotating gears 373 are fixedly connected to the rotating plate 371. A driving magnetic block 372 is fixedly connected to the side of the rotating plate 371 away from the rotating gears 373. A cylindrical rod is fixedly connected between the rotating plate 371 and the rotating gears 373. The cylindrical rod passes through the first dividing plate 31 and the second dividing plate 34. This allows the rotating plate 371 to be distributed outside the first dividing plate 31 and the second dividing plate 34, while the rotating gears 373 rotate inside the first dividing plate 31 and the second dividing plate 34.

[0040] The drive structure 35 includes a support bar 354 that runs through the first partition plate 31 and the second partition plate 34. A first stop bar 353 and a second stop bar 355 are fixedly connected to the drive structure 35. A pull rope 310 is fixedly connected to the inner wall of the second partition plate 34 between the first stop bar 353 and the second stop bar 355. The pull rope 310 runs through the second partition plate 34 and is fixedly connected to the sealing plate 32. In actual use, both the first stop bar 353 and the second stop bar 355 can pull the pull rope 310. When the pull rope 310 is pulled by the first stop bar 353 and the second stop bar 355, the sealing plate 32 can rotate on the first partition plate 31 and the second partition plate 34. The first stop bar 353 and the second stop bar 355 are rectangular plate structures. When in use, the first stop bar 353 and the second stop bar 355 can pull the pull rope 310, thereby enabling the pull rope 310 to drive the sealing plate 32 to rotate around the sealing shaft 313.

[0041] A sealing shaft 313 is fixedly connected to the sealing plate 32. The end of the sealing shaft 313 away from the sealing plate 32 is fixedly connected to the second dividing plate 34. A connecting spring 312 is fixedly connected between the sealing plate 32 and the second dividing plate 34. The sealing shaft 313 can be selected from existing commercial structures. The function of the sealing shaft 313 in this document is to realize the rotation of the sealing plate 32 on the clamping shell 38 and the clamping plate 33.

[0042] The drive structure 35 also includes a support block 352 fixedly connected to the inner wall of the second partition plate 34. The support block 352 can support the support bar 354. A drive tooth 351 is fixedly connected to the support bar 354. A magnetic column 315 is fixedly connected to one end of the support bar 354 near the first magnetic block 12 and the second magnetic block 13. The magnetic column 315 attracts the first magnetic block 12 and the second magnetic block 13. In actual use, the first magnetic block 12 can only attract one of the magnetic columns 315, and the second magnetic block 13 can attract both magnetic columns 315 at the same time.

[0043] A second driving member 39 is provided near the first driving member 37 on the clamping shell 38 and the clamping plate 33. The second driving member 39 includes a connecting plate 391 fixedly connected to the clamping shell 38 and the clamping plate 33. A slider 314 is fixedly connected to the lower part of the clamping shell 38 and the clamping plate 33. A groove adapted to the slider 314 is provided on the conveying structure 2. In actual use, the slider 314 can slide inside the groove, thereby enabling the clamping shell 38 and the clamping plate 33 to slide on the conveying structure 2 via the slider 314. A connecting rod 393 passes through the connecting plate 391. The plug rod 393 has a connecting groove 394, and a pulling bent rod 395 is engaged in the connecting groove 394. A connecting magnet 392 is fixedly connected to the end of the plug rod 393 away from the pulling bent rod 395. The connecting groove 394 on the plug rod 393 allows the plug rod 393 to have space to store force during the sliding process. This allows the plug rod 393 to store energy and impact the pulling bent rod 395, so that the pulling bent rod 395 can transfer the impact force to the diaphragm 36, thereby enabling the diaphragm 36 to eject and spray the catalyst to the outside.

[0044] In actual use, the end of the magnetic column 315 can abut against the inclined baffle 5. At this time, the magnetic column 315 can enter the interior of the first dividing plate 31 and the second dividing plate 34. When the magnetic column 315 abuts against the inclined baffle 5, the drive structure 35 can slide on the support block 352. At the same time, the second baffle 355 can squeeze the pull rope 310, and the pull rope 310 can pull the sealing plate 32. At this time, the sealing plate 32 can rotate around the sealing shaft 313, and the connecting spring 312 can be subjected to... The compression of the sealing plate 32 allows for the separation of two adjacent sealing plates 32, facilitating the delivery of granular catalyst between the clamping plate 33 and the clamping shell 38. When the support bar 354 slides on the support block 352, the drive teeth 351 on the support bar 354 drive the rotating gear 373 to rotate. At this time, the drive magnetic block 372 on the rotating plate 371 is aligned with the connecting magnetic block 392. When the connecting magnetic block 392 abuts against the connecting plate 391, it can compress the connecting plate 391. At this time, the clamping shell 38 and the clamping plate 33 can clamp the granular catalyst. Since a connecting spring 312 is fixed between the sealing plate 32 and the second dividing plate 34, the repulsive force generated by the connecting spring 312 will drive the sealing plate 32 to reset. At this time, pulling the rope 310 can press against the second stop bar 355. The second stop bar 355 can drive the magnetic column 315 to extend. As the conveying structure 2 drives the collecting structure 3 to move, the first dividing plate 31 and the second dividing plate 34 will abut against the baffle plate 4. At this time, the baffle plate 4 can press against the first dividing plate 31 and the second dividing plate 34 to abut against the baffle plate 4. The particulate catalyst inside the cutting plate 31 and the second dividing plate 34 prevents the particulate catalyst from separating from the inside of the first dividing plate 31 and the second dividing plate 34. When the pulling rope 310 and the second stop bar 355 are separated, the sealing plates 32 on the clamping shell 38 and the clamping plate 33 can abut against each other, and at the same time, the connecting magnetic strips 311 on the two adjacent sealing plates 32 can attract each other, thereby achieving the sealing plates 32 blocking the catalyst inside the clamping shell 38 and the clamping plate 33. The direction of catalyst transport can be referred to the appendix of the instruction manual. Figure 1The catalyst is transported from D to C. Therefore, the length of the baffle plate 4 is the sum of the lengths of D and C. The D end of the baffle plate 4 is fixedly connected to the inclined baffle plate 5, and the C end is fixedly connected to the connecting housing 14. When the clamping shell 38 and the clamping plate 33, together with the sealing plate 32, transport the catalyst material into the interior of the connecting housing 14, the magnetic column 315 on the first dividing plate 31 can be pre-attracted by the first magnetic block 12. At this time, the support bar 354 can slide on the support block 352, and the driving magnetic block 372 can pull against the pulling rope 310, allowing the sealing plate 32 to rotate on the clamping shell 38 and the clamping plate 33. Because the first magnetic block 12 is relatively short, there is strong friction between the support bar 354 and the support block 352, which allows the support bar 354 to pull against the pulling rope 310. When the dynamic intensity is relatively slight, the rotation angle of the sealing plate 32 is small. When the magnetic column 315 on the first dividing plate 31 separates from the first magnetic block 12, the magnetic column 315 on the second dividing plate 34 attracts the first magnetic block 12. This allows the sealing plate 32 on the clamping shell 38 and the clamping plate 33 to rotate alternately, thereby achieving uniform external distribution of the catalyst inside the clamping shell 38 and the clamping plate 33. When the magnetic column 315 on the first dividing plate 31 and the magnetic column 315 on the second dividing plate 34 are both attracted by the first magnetic block 12, the magnetic column 315 on the first dividing plate 31 and the magnetic column 315 on the second dividing plate 34 are both attracted by the second magnetic block 13. At this time, the sealing plate 32 on the clamping shell 38 and the clamping plate 33 can be opened again, enabling rapid discharge of the catalyst material inside the clamping shell 38 and the clamping plate 33.

[0045] It should be noted that a connecting magnetic strip 311 is fixedly connected to the sealing plate 32. When two adjacent sealing plates 32 are attracted by the connecting magnetic strip 311, the two sealing plates 32 can form a funnel-shaped structure. When the funnel-shaped structure formed by the two sealing plates 32 enters the interior of the connecting housing 14, the catalyst between the clamping shell 38 and the clamping plate 33 can enter the interior of the funnel-shaped structure formed by the two sealing plates 32, thereby realizing the discharge of the catalyst between the clamping shell 38 and the clamping plate 33. At the same time, it also facilitates the external throwing of the catalyst between the clamping shell 38 and the clamping plate 33. When the catalyst is discharged from the interior of the funnel-shaped structure formed by the two sealing plates 32, the connecting spring 312 can pull the sealing plate 32. Since the connecting spring 312 can generate a repulsive force during use, the repulsive force generated by the connecting spring 312 can drive the sealing plate 32 to rotate around the sealing shaft 313. This can prevent the sealing plate 32 from swinging repeatedly around the sealing shaft 313, thereby preventing the phenomenon of impact on the catalyst when the sealing plate 32 swings.

[0046] Example 2: Based on Example 1, this example proposes an optimized technical solution:

[0047] The clamping shell 38 is a cavity-shaped structure with an inner opening. The opening of the clamping shell 38 is fixedly connected to the diaphragm component 36. The pulling rod 395 is fixedly connected to the inner wall of the diaphragm component 36. The diaphragm component 36 has a recess 316.

[0048] The end of the plug rod 393 opposite to the pull rod 395 is fixedly connected to a connecting magnetic block 392. The magnetic poles of the connecting magnetic block 392 and the driving magnetic block 372 repel each other. The pull rod 395 is located behind the sealing shaft 313.

[0049] When the clamping shell 38 and clamping plate 33 in the conveying device hold the catalyst, the catalyst will squeeze the diaphragm 36, and the diaphragm 36 will be concave with the indentation 316 as the center. When the catalyst inside the clamping shell 38 and clamping plate 33 is discharged, the diaphragm 36 will bounce off the catalyst, which can achieve the uniform throwing of the catalyst to the outside. When the connecting magnetic block 392 is opposite to the driving magnetic block 372, the connecting magnetic block 392 will drive the plug rod 393 to impact the pulling bent rod 395. The impact received by the pulling bent rod 395 will be transmitted to the diaphragm 36, which can then realize the vibration of the catalyst powder on the diaphragm 36.

[0050] It should be noted that, in order to avoid the catalyst from being crushed during storage, the depth of the indentation 316 is relatively shallow, and the diaphragm 36 needs to be made of an elastic material. This allows the catalyst to compress the diaphragm 36, causing the diaphragm 36 to be concave around the indentation 316.

[0051] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, 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.

[0052] Although embodiments of the 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 invention.

Claims

1. A catalyst splitting production conveying device, comprising a conveying structure (2) and a guiding structure (1) connected to the discharge end of the conveying structure (2), characterized in that: The conveying structure (2) is provided with a material collection structure (3), which includes a first dividing plate (31) and a second dividing plate (34) fixedly connected to the conveying structure (2). A clamping shell (38) and a clamping plate (33) are slidably connected between the first dividing plate (31) and the second dividing plate (34) on the conveying structure (2). A sealing plate (32) is rotatably connected to the clamping shell (38) and the clamping plate (33). A connecting magnetic strip (311) is fixedly connected to the sealing plate (32). The connecting magnetic strip (311) on one of the sealing plates (32) and the connecting magnetic strip (311) on the other sealing plate (32) are attracted to each other. A driving structure (35) is provided on the first dividing plate (31) and the second dividing plate (34); A first driving member (37) is connected to the inner side of the first dividing plate (31) and the second dividing plate (34). The first driving member (37) includes a rotating plate (371) rotatably connected to the first dividing plate (31) and the second dividing plate (34). Rotating gears (373) are distributed inside the first dividing plate (31) and the second dividing plate (34). The rotating gears (373) are fixedly connected to the rotating plate (371). A driving magnetic block (372) is fixedly connected to the side of the rotating plate (371) away from the rotating gears (373). The drive structure (35) includes a support bar (354) that runs through the first partition plate (31) and the second partition plate (34). A first stop bar (353) and a second stop bar (355) are fixedly connected to the drive structure (35). A pull rope (310) is fixedly connected between the first stop bar (353) and the second stop bar (355) on the inner wall of the second partition plate (34). The pull rope (310) runs through the second partition plate (34) and the sealing plate (32) and is fixedly connected.

2. The catalyst split production and conveying device according to claim 1, characterized in that: The receiving end of the conveying structure (2) is fixedly connected to an inclined baffle (5), and the top surface of the conveying structure (2) is fixedly connected to a baffle plate (4) on one side of the inclined baffle (5). The guiding structure (1) includes a connecting shell (14) fixedly connected to the conveying structure (2), and a support leg structure (11) is fixedly connected to the connecting shell (14).

3. The catalyst split production and conveying device according to claim 2, characterized in that: A first magnetic block (12) and a second magnetic block (13) are fixedly connected to one side of the connecting housing (14), and the length of the first magnetic block (12) is less than the length of the second magnetic block (13).

4. The catalyst split production and conveying device according to claim 1, characterized in that: A sealing shaft (313) is fixedly connected to the sealing plate (32). The end of the sealing shaft (313) away from the sealing plate (32) is fixedly connected to the second dividing plate (34). A connecting spring (312) is fixedly connected between the sealing plate (32) and the second dividing plate (34).

5. The catalyst split production and conveying device according to claim 3, characterized in that: The drive structure (35) further includes a support block (352) fixedly connected to the inner wall of the second partition plate (34). The support block (352) can support the support bar (354). The support bar (354) is fixedly connected with a drive tooth (351). The end of the support bar (354) near the first magnetic block (12) and the second magnetic block (13) is fixedly connected with a magnetic column (315).

6. The catalyst split production and conveying device according to claim 1, characterized in that: A second driving member (39) is provided near the first driving member (37) on the clamping shell (38) and the clamping plate (33). The second driving member (39) includes a connecting plate (391) fixedly connected to the clamping shell (38) and the clamping plate (33). A slider (314) is fixedly connected to the lower part of the clamping shell (38) and the clamping plate (33). A plug rod (393) passes through the connecting plate (391). A connecting groove (394) is provided on the plug rod (393). A pulling bent rod (395) is engaged in the connecting groove (394).

7. The catalyst split production and conveying device according to claim 6, characterized in that: The clamping shell (38) is a cavity-shaped structure with an inner opening. A diaphragm component (36) is fixedly connected to the opening of the clamping shell (38). The pulling bent rod (395) is fixedly connected to the inner wall of the diaphragm component (36). A groove (316) is provided on the diaphragm component (36).

8. The catalyst split production and conveying device according to claim 7, characterized in that: The end of the plug rod (393) opposite to the pull rod (395) is fixedly connected to a connecting magnetic block (392). The magnetic poles of the connecting magnetic block (392) and the driving magnetic block (372) are repulsive. The pull rod (395) is located behind the sealing shaft (313).

Citation Information

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