Fluorine gypsum processing device capable of inhibiting dust

By integrating guiding, screening, and dust collection functions, the fluorogypsum processing device solves the problems of dust diffusion and secondary dust generation during fluorogypsum processing, achieving efficient dust suppression and multi-stage screening of fluorogypsum, and improving the equipment's synergy and working environment.

CN120942998AInactive Publication Date: 2025-11-14江西石磊氟化学有限公司
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Patent Information

Application Number
CN202511287905.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-10
Publication Date
2025-11-14
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing fluorogypsum processing equipment generates a large amount of dust during the conveying and screening process, resulting in a harsh working environment and poor equipment coordination, which cannot effectively suppress dust diffusion and secondary dust generation.

Method used

A fluorogypsum processing device integrating guiding, screening and dust collection functions was designed. It uses a guide cover and guide cylinder in conjunction with a screen plate for multi-stage particle size screening, and uses a lifting component and a dust collection cylinder to achieve real-time dust extraction. It also uses a lever and a lever plate to prevent dust adhesion and secondary dust generation.

Benefits of technology

It effectively suppressed the spread of dust and secondary dust generation, achieved efficient screening and conveying of fluorogypsum, improved the quality of the working environment, reduced the number of material transfers, and ensured the synergy and stability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of fluorgypsum processing equipment, in particular to a dust suppression fluorgypsum processing device which comprises a fixing ring, a connecting plate, a connecting ring and the like. A plurality of connecting plates are fixedly connected to the fixing ring; and all the connecting plates are jointly and fixedly connected with a connecting ring. Fluorine gypsum is guided through the guiding cover and the guiding cylinder, when the fluorine gypsum falls, dust generated by collision in the guiding cover is filtered through the blocking net and then enters the dust collection cavity, the fluorine gypsum is scattered through the stirring strip, adhesion of the fluorine gypsum is avoided, meanwhile, secondary flying dust generated in the rotating process of the stirring strip is prevented from entering the dust collection cavity, and the dust collection efficiency is improved. Dust is sucked away through a negative pressure channel formed by a dust suction groove in a stirring strip and a through groove, dust diffusion is effectively restrained, the fluorgypsum pile in a guide cylinder is flatly spread, then the thickness of the fluorgypsum pile is reduced, the burden of discharging from a discharging pipe is effectively relieved, and the situation that the fluorgypsum pile is too thick and is accumulated at a pipe opening of the discharging pipe in quantity is avoided; and therefore, the problem is solved.
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Description

Technical Field

[0001] This invention relates to the field of fluorogypsum processing equipment, and more particularly to a fluorogypsum processing apparatus for suppressing dust. Background Technology

[0002] Fluoropyrite is a byproduct of hydrogen fluoride production. Because fine particles of fluoropyrite have a high fluorine content and coarse particles have a low fluorine content, fluoropyrite needs to be screened using a sieve plate.

[0003] Fluorogypsum is prone to generating a large amount of dust due to collision and friction during the conveying and screening process. Existing equipment for guiding and conveying fluorogypsum from the calcination device to the storage device adopts a single dust collection structure, which leads to serious dust overflow and a harsh working environment. It relies solely on an external dust removal system and cannot handle the secondary dust generated during material falling and screening in real time. Furthermore, the guiding, screening, and dust collection units operate independently with poor coordination, which requires the material to be transferred to an independent vibrating screen for screening multiple times, generating a large amount of dust in the process. Summary of the Invention

[0004] In order to overcome the shortcomings of existing equipment for guiding and conveying fluorogypsum, which adopts a single dust collection structure, resulting in serious dust overflow, harsh working environment, and poor coordination between the guiding, screening, and dust collection units, this invention provides a fluorogypsum processing device that suppresses dust.

[0005] The technical solution of this invention is: a fluorogypsum processing device for suppressing dust, comprising a fixed ring, connecting plates, and a connecting ring; a plurality of connecting plates are fixedly connected to the fixed ring; all connecting plates are jointly fixedly connected to the connecting ring; further comprising a guide cover, a connecting rod, a guide cylinder, a dust collection cylinder, and a lifting assembly; the guide cover is rotatably connected to the fixed ring, a motor and a gear are provided on the fixed ring, and a gear ring is fixedly connected to the guide cover and meshes with the gear on the fixed ring, the motor drives the corresponding gear and gear ring to rotate; the connecting ring is rotatably connected to the guide cover; a plurality of connecting plates are fixedly connected to the connecting ring. It has several connecting rods; several guide cylinders are connected sequentially from top to bottom on the lower side of the connecting ring, and a sieve plate is set between every two adjacent guide cylinders. The sieve plate is fixed to the guide cylinder on its lower side. The inner diameter of the sieve holes of the sieve plate decreases sequentially from top to bottom, and each sieve plate is equipped with a stirring structure for agitating and promoting the passage of fluorogypsum through the sieve plate; a lifting assembly is connected to the connecting plate; the lifting assembly is connected to a dust collection cylinder for dust collection. A baffle is set inside the dust collection cylinder, and a dust collection chamber is formed between the dust collection cylinder and the baffle; the lifting assembly is used to drive the dust collection cylinder to move up and down.

[0006] Optionally, the lifting assembly includes an electric wheel and a suspension rope; an electric wheel is fixedly connected to each connecting plate; a suspension rope is wound on each electric wheel, and the end of the suspension rope is fixedly connected to the vacuum cleaner.

[0007] Optionally, the inner wall of the guide cover is provided with several levers.

[0008] Optionally, the guide cover is hollow inside, a through groove is provided on the lower side of the connecting ring, the guide cover communicates with the through groove, and a dust suction groove is provided on the lever.

[0009] Optionally, it also includes a support plate and a baffle; the uppermost guide cylinder is slidably connected to the connecting ring via a connecting rod, and several connecting rods are also connected between every two adjacent guide cylinders, wherein the upper guide cylinder is fixedly connected to the connecting rod, and the lower guide cylinder is slidably connected to the connecting rod; several electric lead screws are provided on the connecting ring, each electric lead screw consisting of a motor and a threaded lead screw, the motor driving the threaded lead screw to rotate, and the electric lead screw is screwed to the uppermost guide cylinder; a telescopic locking block is provided on the connecting rod, the telescopic locking block being powered by an electric... The device consists of a push rod and a locking block. The push rod drives the locking block to extend or retract within the connecting rod. Several slots are provided on the guide cylinder. A support plate for supporting fluorogypsum is fixed to the dust collection cylinder, and the support plate is slidably connected to the guide cylinder via a sliding block. A baffle is rotatably connected to the dust collection cylinder. The dust collection cylinder is equipped with a motor and gears. A gear ring that meshes with the gears on the dust collection cylinder is fixed to the baffle. The motor drives the corresponding gears and gear rings to rotate. A discharge pipe is provided on the dust collection cylinder, which passes through the dust collection chamber and the baffle.

[0010] Optionally, a number of levers for moving fluoroplaster are provided on the lower side of the baffle.

[0011] Optionally, it also includes fixing blocks; several fixing blocks for fixing the support plate are slidably connected on the guide tube, and the fixing blocks are U-shaped.

[0012] Optionally, both the sieve plate and the support plate are configured to be inclined downwards.

[0013] Optionally, the side of the deflector closest to the baffle is provided with bristles.

[0014] Optionally, the bottom of the suction chamber is inclined downward toward the suction pipe.

[0015] The beneficial effects are: the present invention achieves the guidance of fluoroplastic through the guide cover and guide tube, and when the fluoroplastic falls, the dust generated by the collision in the guide cover is first filtered by the baffle and then enters the dust collection chamber, and the fluoroplastic is dispersed by the bar to prevent it from sticking together. At the same time, the secondary dust generated during the rotation of the bar is extracted through the negative pressure channel formed by the dust collection groove and the through groove on the bar, effectively inhibiting the diffusion of dust. The fluorogypsum is screened in a stepped manner with progressively smaller sieve holes from top to bottom within the guide tube. This process allows for multi-stage particle size screening during the single descent of the fluorogypsum, ensuring that different particle sizes are intercepted and temporarily stored within the corresponding guide tube. When discharge is required, the electric rotary wheel lowers the suction tube to the joint via a hoisting rope. The electric screw drives the guide tube upward to create a gap, allowing the accumulated material to slide onto the support plate. Subsequently, the baffle rotates, driving the deflector to guide the material to the discharge pipe. Throughout the process, the suction tube simultaneously removes dust, preventing secondary pollution. By transferring the fluorogypsum from the corresponding guide tube to the support plate and then discharging it through the discharge pipe, the fluorogypsum pile within the guide tube is spread out evenly, reducing its thickness and effectively lessening the burden on the discharge pipe. This prevents the fluorogypsum from becoming too thick and accumulating at the discharge pipe opening, which would hinder its discharge. As the connecting rod moves upward with the upper guide cylinder, the fixed block is pushed out by the guide slope, so that the fixed block engages and fixes the sliding block, thereby effectively ensuring the stability of the support plate during material discharge. Attached Figure Description

[0016] Figure 1 This is a three-dimensional structural diagram of the dust-suppressing fluorogypsum processing device of the present invention; Figure 2 This is a cross-sectional view of the vacuum cleaner cylinder, support plate, and baffle assembly of the present invention; Figure 3 This is a schematic diagram of the three-dimensional structure of the vacuum cleaner cylinder and support plate combination of the present invention; Figure 4 This is a schematic diagram of the three-dimensional structure of the baffle of the present invention; Figure 5 This is a cross-sectional view of the connecting ring and guide tube assembly of the present invention; Figure 6 For the present invention Figure 5 Enlarged view of area A in the middle; Figure 7 This is a three-dimensional structural diagram of the connecting ring, guide cover, and connecting rod assembly of the present invention; Figure 8 This is a cross-sectional view of the guide tube of the present invention.

[0017] In the attached diagrams: 1-Fixing ring, 2-Connecting plate, 3-Connecting ring, 3001-Through groove, 3002-Electric lead screw, 4-Guide cover, 4001-Pulley, 5-Connecting rod, 5001-Telescopic locking block, 5002-Guiding inclined surface, 6-Guiding cylinder, 6001-Card groove, 6002-Screen plate, 7-Dust suction cylinder, 7001-Dust suction chamber, 7002-Baffle, 7003-Discharge pipe, 7004-Suction pipe, 8-Supporting plate, 8001-Sliding block, 9-Baffle, 9001-Pulley, 101-Electric rotating wheel, 102-Hanging rope, 201-Fixing locking block. Detailed Implementation

[0018] 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.

[0019] Example 1: A dust-suppressing fluorogypsum processing device, such as Figures 1-8 As shown, it includes a fixing ring 1, a connecting plate 2, and a connecting ring 3; two connecting plates 2 are fixedly connected to the fixing ring 1; all connecting plates 2 are fixedly connected to the connecting ring 3. It also includes a guide cover 4, connecting rods 5, guide cylinders 6, a vacuum cleaner cylinder 7, and a lifting assembly; the guide cover 4 is rotatably connected to the fixing ring 1, and a motor and gears are installed on the fixing ring 1. A gear ring that meshes with the gears on the fixing ring 1 is fixed to the guide cover 4, and the motor drives the corresponding gears and gear rings to rotate; the connecting ring 3 is rotatably connected to the guide cover 4; four connecting rods 5 are fixed to the lower side of the connecting ring 3; three guide cylinders 6 are connected sequentially from top to bottom on the lower side of the connecting ring 3, with each pair of adjacent guide cylinders 6... A sieve plate 6002 is provided between the sieve plates, which are fixedly connected to the guide cylinder 6 on the lower side. The inner diameter of the sieve holes of the sieve plate 6002 decreases from top to bottom, and each sieve plate 6002 is provided with a stirring structure. A lifting assembly is connected to the connecting plate 2. The lifting assembly is connected to a dust collection cylinder 7. A baffle 7002 is provided inside the dust collection cylinder 7. A dust collection chamber 7001 is formed between the dust collection cylinder 7 and the baffle 7002. The dust collection chamber 7001 is connected to an external air extraction device through a suction pipe 7004.

[0020] The lifting assembly includes an electric wheel 101 and a suspension rope 102; an electric wheel 101 is fixedly connected to each connecting plate 2. The electric wheel 101 consists of a motor and a rotating wheel. The motor drives the rotating wheel to rotate. A suspension rope 102 is wound on each electric wheel 101. The end of the suspension rope 102 is fixedly connected to the dust collection cylinder 7.

[0021] The inner wall of the guide cover 4 is provided with several levers 4001.

[0022] The guide cover 4 is hollow inside, and a through groove 3001 is opened on the lower side of the connecting ring 3. The guide cover 4 is connected to the through groove 3001, and a dust suction groove is opened on the lever 4001.

[0023] It also includes a support plate 8 and a baffle 9; the uppermost guide cylinder 6 is slidably connected to the connecting ring 3 via a connecting rod 5, and four connecting rods 5 are also connected between every two adjacent guide cylinders 6, wherein the upper guide cylinder 6 is fixedly connected to the connecting rod 5, and the lower guide cylinder 6 is slidably connected to the connecting rod 5; the connecting ring 3 is provided with several electric lead screws 3002, each consisting of a motor and a threaded lead screw, which is driven by the motor to rotate the threaded lead screw, and the electric lead screw 3002 is screwed to the uppermost guide cylinder 6; the connecting rod 5 is provided with a telescopic locking block 5001, which consists of an electric push rod and a locking block, which is driven by the electric push rod to rotate the threaded lead screw. The movable locking block extends or retracts within the connecting rod 5; several slots 6001 are provided on the guide cylinder 6; the initial telescopic locking block 5001 engages with the corresponding slot 6001, fixing the connecting rod 5 to the guide cylinder 6; a support plate 8 is fixedly connected to the vacuum tube 7, and the support plate 8 is slidably connected to the guide cylinder 6 via a sliding block 8001; a baffle 9 is rotatably connected to the vacuum tube 7, and a motor and gears are provided on the vacuum tube 7; a gear ring that meshes with the gears on the vacuum tube 7 is fixedly connected to the baffle 9, and the motor drives the corresponding gears and gear rings to rotate; a discharge pipe 7003 is provided on the vacuum tube 7, and the discharge pipe 7003 passes through the vacuum chamber 7001 and the baffle 7002.

[0024] Several levers 9001 are provided on the lower side of the baffle 9.

[0025] It also includes a fixing block 201; four fixing blocks 201 are slidably connected on the guide tube 6, and the fixing blocks 201 are U-shaped.

[0026] Both the sieve plate 6002 and the support plate 8 are designed to be inclined downwards to facilitate the movement of fluorogypsum towards the discharge pipe 7003.

[0027] The working process of the dust-suppressing fluorogypsum processing device of the present invention is as follows: During operation, the invention is moved between the discharge port of the calcining device and the storage device, aligning the fixing ring 1 with the discharge port of the calcining device and the lowermost guide cylinder 6 with the inlet of the storage device. The fixing ring 1 and the lowermost guide cylinder 6 are then fixed. Initially, as described... Figure 2As shown, there is a gap between the guide cover 4 and the guide cylinder 6 below it. Then, the calcining device pushes out the fluorogypsum from the discharge port, causing the fluorogypsum to fall into the guide cover 4, and then pass through the guide cylinder 6 into the storage device. During this process, the external suction device is activated to suck up the dust collection cylinder 7 through the suction pipe 7004, so that the dust generated by the collision between the fluorogypsum and the guide cover 4 passes through the baffle 7002 and enters the dust collection chamber 7001 to be sucked away. The dust collection cylinder 7, the support plate 8 and the baffle 9 work together to close the gap between the guide cover 4 and the guide cylinder 6 below it. The gap between the guide cylinders 6 is sealed. Furthermore, the motor on the fixed ring 1 drives the toothed ring on the guide cover 4 to rotate, thereby driving the guide cover 4 to rotate. The guide bar 4001 on the guide cover 4 moves the fluoroplastic and disperses it. At the same time, under the suction of the dust collection cylinder 7, some of the dust flows through the dust collection groove, through groove 3001 and dust collection chamber 7001 on the guide bar 4001 and is then drawn away. The dust generated by the fluoroplastic being moved by the guide bar 4001 is then sucked away through the dust collection groove on the guide bar 4001.

[0028] The following is the workflow for screening fluorogypsum: As fluorogypsum flows through the guide cylinder 6, fluorogypsum particles of different sizes are sequentially intercepted by the sieve plates 6002, whose inner diameter decreases from top to bottom, and accumulate in the corresponding guide cylinder 6. Then, as... Figure 8As shown, the electric rotary wheel 101 is controlled to rotate, unwinding the hanging rope 102. Under the action of gravity, the vacuum tube 7 moves down to align with the joint between the two adjacent guide tubes 6. At this time, the discharge pipe 7003 is aligned with the inlet of another storage device. Then, the telescopic block 5001 in the connecting rod 5 connected to the upper guide tube 6 is controlled to retract, causing the telescopic block 5001 to disengage from the slot 6001 in the lower guide tube 6. Then, the electric screw 3002 is controlled to drive the upper guide tube 6 to move upward. The guide tube 6 drives the connecting rod 5 to move upward, creating a gap between the two guide tubes 6. The fluoroplastic in the upper guide tube 6 slides through this gap onto the support plate 8. Then, the motor on the vacuum tube 7 drives the corresponding gear to rotate. The gear drives the gear ring on the baffle 9 to rotate, thereby driving the baffle 9 to rotate. The lever 9001 moves the fluoroplastic on the support plate 8, gradually moving the fluoroplastic to the discharge point. The material enters the storage device through pipe 7003. During this process, the dust is sucked up by the dust suction cylinder 7, and the fluorogypsum is blocked from entering the dust suction chamber 7001 by the baffle 7002. When all the fluorogypsum in the upper guide cylinder 6 is discharged outward from the discharge pipe 7003, the gap between the two guide cylinders 6 is sucked up by the dust suction cylinder 7 for a period of time to ensure that the fluorogypsum particles remaining between the two guide cylinders 6 can be removed. The electric screw 3002 is controlled to drive the upper guide cylinder 6 and the connecting rod 5 to reset downward. When the two guide cylinders 6 reconnect, the telescopic locking block 5001 on the connecting rod 5 extends and locks into the locking groove 6001. Then, the electric rotating wheel 101 is controlled to unwind the hanging rope 102, so that the dust suction cylinder 7 moves down to align with the joint between the next two adjacent guide cylinders 6. The above steps are repeated to create a gap between the two guide cylinders 6 and discharge the fluorogypsum in the corresponding guide cylinder 6 outward through the discharge pipe 7003.

[0029] Furthermore, as the connecting rod 5 moves upward along with the upper guide cylinder 6, the guide slope 5002 contacts and presses against the fixed block 201, causing the U-shaped fixed block 201 to be pushed outward. The spring between the fixed block 201 and the guide cylinder 6 is compressed, causing the fixed block 201 to engage and fix the sliding block 8001. When the connecting rod 5 moves downward and resets, the guide slope 5002 separates from the fixed block 201, and the spring drives the fixed block 201 to retract inward and reset, causing the fixed block 201 to release the fixation of the sliding block 8001.

[0030] Based on the above workflow, we can see that the present invention has the following effects: Fluoroplastic is guided by guide cover 4 and guide cylinder 6. When the fluoroplastic falls, the dust generated by the collision inside guide cover 4 is first filtered by baffle 7002 and then enters dust collection chamber 7001. The fluoroplastic is dispersed by the lever 4001 to prevent it from sticking together. At the same time, the secondary dust generated during the rotation of lever 4001 is drawn away through the negative pressure channel formed by the dust collection groove and through groove 3001 on lever 4001, effectively suppressing the diffusion of dust.

[0031] The sieve plate 6002, with its stepped design and gradually decreasing mesh size from top to bottom, inside the guide cylinder 6 performs multi-stage particle size screening during the single fall of fluorogypsum. This ensures that fluorogypsum of different particle sizes is intercepted and temporarily stored in the corresponding guide cylinder 6. When discharge is required, the electric rotary wheel 101 controls the hoisting rope 102 to lower the dust collection cylinder 7 to the joint. The electric screw 3002 then drives the guide cylinder 6 upward to create a gap, allowing the accumulated material to slide onto the support plate 8. Subsequently, the baffle 9 rotates, driving the lever 9001 to... The material guide discharge pipe 7003 uses a dust extraction cylinder 7 to simultaneously remove dust throughout the process, avoiding secondary pollution. By transferring the fluoroplastic in the corresponding guide cylinder 6 to the support plate 8 and then discharging it from the discharge pipe 7003, the fluoroplastic in the corresponding guide cylinder 6 is spread out evenly, thus reducing the thickness of the fluoroplastic pile. This effectively reduces the burden on the discharge pipe 7003 and prevents the fluoroplastic from becoming too thick and accumulating in large quantities at the opening of the discharge pipe 7003, which would prevent it from being discharged smoothly.

[0032] As the connecting rod 5 moves upward along with the upper guide cylinder 6, the fixed block 201 is pushed out by the guide inclined surface 5002, so that the fixed block 201 engages and fixes the sliding block 8001, thereby effectively ensuring the stability of the support plate 8 during material discharge.

[0033] This invention integrates guiding, screening, and dust collection functions into one unit. Through the modular design of the guide cylinder 6 and the liftable dust collection cylinder 7, it embodies the multifunctionality and scalability of the equipment.

[0034] The additional technical effects of the dust-suppressing fluorogypsum processing device of the present invention are as follows: Among them, such as Figure 8 As shown, a stirring structure is provided on the sieve plate 6002. When sieving fluorogypsum, the stirring structure on the sieve plate 6002 agitates the fluorogypsum, promoting the passage of small pieces of fluorogypsum through the sieve plate 6002. When discharging fluorogypsum, the stirring structure pushes the fluorogypsum outward.

[0035] Among them, such as Figure 8 As shown, both the sieve plate 6002 and the support plate 8 are set to be inclined downwards to promote the movement of fluorogypsum towards the discharge pipe 7003.

[0036] Example 2: Based on Example 1, such as Figures 2-4 As shown, the bristles are provided on the side of the lever 9001 near the baffle 7002.

[0037] The bottom of the dust suction chamber 7001 is inclined downward toward the suction pipe 7004.

[0038] The workflow of the above embodiments is as follows: Because the bristles are provided on the side of the baffle 7002 near the baffle plate 9001, the baffle plate 9001 can push the fluoroplaster while brushing the baffle plate 7002, thereby brushing away the dust adhering to the baffle plate 7002 and preventing the baffle plate 7002 from being blocked, which would affect the dust suction effect. In addition, the bottom of the dust suction chamber 7001 is inclined downward toward the suction pipe 7004, which effectively promotes the movement of dust entering the dust suction chamber 7001 toward the suction pipe 7004.

[0039] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.

Claims

1. A dust-suppressing fluorogypsum processing device, comprising a fixing ring (1), connecting plates (2), and connecting rings (3); a plurality of connecting plates (2) are fixedly connected to the fixing ring (1); all connecting plates (2) are jointly fixedly connected to the connecting rings (3); characterized in that: It also includes a guide cover (4), a connecting rod (5), a guide cylinder (6), a vacuum cleaner cylinder (7), and a lifting assembly; the guide cover (4) is rotatably connected to the fixed ring (1), and a motor and gear are provided on the fixed ring (1). A gear ring that meshes with the gear on the fixed ring (1) is fixedly connected to the guide cover (4), and the corresponding gear and gear ring are rotated by the motor; the connecting ring (3) is rotatably connected to the guide cover (4); several connecting rods (5) are fixedly connected to the connecting ring (3); several guide cylinders (6) are connected sequentially from top to bottom on the lower side of the connecting ring (3), and a space is provided between every two adjacent guide cylinders (6). There is a sieve plate (6002), which is fixedly connected to the guide cylinder (6) on its lower side. The inner diameter of the sieve holes of the sieve plate (6002) decreases from top to bottom. Each sieve plate (6002) is provided with a stirring structure for stirring to promote the passage of fluorogypsum through the sieve plate (6002). A lifting component is connected to the connecting plate (2). The lifting component is connected to a dust suction cylinder (7) for dust collection. A baffle (7002) is provided inside the dust suction cylinder (7). A dust collection chamber (7001) is formed between the dust suction cylinder (7) and the baffle (7002). The lifting component is used to drive the dust suction cylinder (7) to move up and down.

2. The dust-suppressing fluorogypsum processing device according to claim 1, characterized in that: The lifting assembly includes an electric wheel (101) and a suspension rope (102); an electric wheel (101) is fixedly connected to each connecting plate (2); a suspension rope (102) is wound on each electric wheel (101), and the end of the suspension rope (102) is fixedly connected to the dust collection cylinder (7).

3. The dust-suppressing fluorogypsum processing device according to claim 1, characterized in that: The inner wall of the guide cover (4) is provided with several levers (4001).

4. The dust-suppressing fluorogypsum processing device according to claim 3, characterized in that: The guide cover (4) is hollow inside, and a through groove (3001) is provided on the lower side of the connecting ring (3). The guide cover (4) is connected to the through groove (3001), and a dust suction groove is provided on the lever (4001).

5. The fluorogypsum processing device for suppressing dust according to claim 1, characterized in that: It also includes a support plate (8) and a baffle (9); the uppermost guide cylinder (6) is slidably connected to the connecting ring (3) via a connecting rod (5), and several connecting rods (5) are also connected between every two adjacent guide cylinders (6), wherein the upper guide cylinder (6) is fixedly connected to the connecting rod (5), and the lower guide cylinder (6) is slidably connected to the connecting rod (5); several electric screws (3002) are provided on the connecting ring (3), the electric screws (3002) are composed of a motor and a threaded screw, and the motor drives the threaded screw to rotate, and the electric screws (3002) are screwed to the uppermost guide cylinder (6); a telescopic block (5001) is provided on the connecting rod (5), and the telescopic block (5001) is electrically pushed The rod and the snap-fit ​​block are combined. The snap-fit ​​block is driven by an electric push rod to extend or retract inside the connecting rod (5). Several slots (6001) are opened on the guide tube (6). A support plate (8) for supporting fluorogypsum is fixedly connected to the dust collection tube (7). The support plate (8) is slidably connected to the guide tube (6) through the sliding block (8001). A baffle (9) is rotatably connected to the dust collection tube (7). A motor and gear are provided on the dust collection tube (7). A gear ring that meshes with the gear on the dust collection tube (7) is fixedly connected to the baffle (9). The corresponding gear and gear ring are driven to rotate by the motor. A discharge pipe (7003) is provided on the dust collection tube (7). The discharge pipe (7003) passes through the dust collection chamber (7001) and the baffle (7002).

6. The dust-suppressing fluorogypsum processing apparatus according to claim 5, characterized in that: Several paddles (9001) for moving fluoroplastic are provided on the lower side of the baffle (9).

7. The dust-suppressing fluorogypsum processing apparatus according to claim 5, characterized in that: It also includes a fixing block (201); the guide tube (6) has several fixing blocks (201) for fixing the support plate (8) and the fixing blocks (201) are U-shaped.

8. The dust-suppressing fluorogypsum processing apparatus according to claim 5, characterized in that: Both the sieve plate (6002) and the support plate (8) are set to be inclined downwards.

9. A dust-suppressing fluorogypsum processing apparatus according to claim 6, characterized in that: The side of the lever (9001) near the baffle (7002) is provided with bristles.

10. A dust-suppressing fluorogypsum processing apparatus according to claim 5, characterized in that: The bottom of the suction chamber (7001) is inclined downward toward the suction pipe (7004).