Waste gas treatment device for furan phenol processing and treatment method thereof
By combining the main transmission component, the scraping component, and the agitator component, the problem of equipment blockage caused by solid particulate matter in the waste gas from furanol production is solved, achieving high efficiency, automation, and convenience in waste gas treatment, and ensuring smooth airflow and uniform mixing.
Patent Information
- Application Number
- CN202511175928.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-21
- Publication Date
- 2025-11-14
AI Technical Summary
The waste gas generated during the production of furanol contains solid particulate matter, which can easily lead to increased airflow resistance and equipment blockage, and existing technologies are difficult to treat effectively.
By employing a combination of a main conveyor assembly, a scraper assembly, and a stirring assembly, solid particles are blocked by a filter plate, particles are cleaned and collected by scrapers, liquefied matter is cleaned from the top of the filter plate by a vibrating cylinder, and a servo motor-driven transmission system realizes the automated conveying, filtering, and mixing of particles.
It effectively prevents solid particles from entering the exhaust gas pipeline, avoids equipment blockage, improves exhaust gas treatment efficiency, ensures smooth airflow, enhances mixing uniformity and ease of cleaning, and reduces the risk of filter plate clogging.
Smart Images

Figure CN120939673A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste gas treatment technology, and in particular to a waste gas treatment device and treatment method for furanol processing. Background Technology
[0002] Furanol, as an important chemical intermediate, has wide applications in pesticide synthesis and other fields. It is mainly used as a key intermediate in the synthesis of carbamate pesticides (such as carbofuran, thiamethoxam, and thiocarbofuran). Furanol is insoluble in water, and organic solvents are required for dissolution and reaction during the production process. These solvents are easily volatilized during heating and stirring, forming waste gas. At present, when using raw materials such as catechol and methyl allyl chloride (MAC) in the production of furanol, if the reaction is incomplete, solid particles will be generated and enter the waste gas. The solid particles will be deposited in the waste gas pipes, bends, and other parts, resulting in increased airflow resistance and equipment blockage. Summary of the Invention
[0003] To overcome the shortcomings of the prior art, the present invention provides a waste gas treatment device and treatment method for furanol processing.
[0004] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a waste gas treatment device and method for furanol processing, comprising a sedimentation box, a support leg fixedly connected to the bottom of the sedimentation box, an equipment box fixedly connected to the top of the sedimentation box, an inlet pipe fixedly connected to the bottom of the sedimentation box, an outlet pipe fixedly connected to the top of the equipment box, a placement platform provided inside the sedimentation box, a main transmission assembly for treating particulate matter provided on the placement platform, two transmission columns and two swing rods provided inside the main transmission assembly, the cooperation of the transmission columns and swing rods can provide power for treating particulate matter, a housing provided inside the main transmission assembly, the housing fixedly connected to the outside of the equipment box, the two transmission columns correspondingly and movably connected to the equipment box, and a servo motor provided inside the housing. The motor's output shaft is fixedly connected to one of the transmission columns. The equipment box contains two support blocks, each with a bearing. Each transmission column is fixedly connected to the inner ring of the bearing on the corresponding support block. A support rod is fixedly connected between the two support blocks and to the top of the equipment box. An inclined plate is fixedly connected to the outside of each transmission column. A connecting rod is located between the two inclined plates, and the two inclined plates are movably connected to the connecting rod. A swing rod is fixedly connected to the end of each transmission column away from the inclined plate. One swing rod is movably connected to a connecting column at the end away from the transmission column, and the other swing rod is fixedly connected to a transmission rod at the end away from the transmission column. The connecting column is fixedly connected to the placement platform, and the transmission rod is movably connected to the placement platform.
[0005] Using the above technical solution, raw materials such as furanol are placed into the sedimentation box through the gas outlet pipe, and then the servo motor is started. The servo motor drives the corresponding transmission column to rotate, the transmission column drives the swing rod to rotate, the swing rod drives the corresponding connecting column to rotate, the connecting column drives the placement platform to rotate, and the placement platform rotates toward the filter plate. Because the servo motor drives the corresponding transmission column to rotate, the transmission column drives the corresponding tilting disk to rotate. When the corresponding tilting disk rotates, it drives another tilting disk to rotate through the connecting rod. The rotation of the other tilting disk drives the corresponding transmission column to rotate, the corresponding transmission column drives the corresponding swing rod to rotate, and the rotation of the corresponding swing rod drives the transmission rod to rotate.
[0006] In a preferred embodiment of the present invention, a filter plate is provided inside the sedimentation box. The filter plate has several small round holes for filtering water vapor. A limiting frame is fixedly connected to the outer side of the filter plate, and the limiting frame is fixedly connected to the inner wall of the sedimentation box. Two locking strips are fixedly connected to the bottom of the filter plate. A grooved plate is fixedly connected to the top of each support plate, and each grooved plate has a slot for placing the locking strips. Each locking strip engages in the slot of the corresponding grooved plate. Two support plates are fixedly connected inside the sedimentation box. A scraping assembly for cooperating with the main transmission assembly is provided on the support plates. The scraping assembly contains a placement box and a scraper. Through the cooperation of the placement box and the scraper, particulate matter can be collected. A linkage block is provided inside the scraping assembly, and the limiting frame has a mounting block for placing the linkage block. The linkage block is inserted into the through slot of the limiting frame. A vibrating cylinder is fixedly connected to the top of the linkage block. A bonding plate is fixedly connected to the outside of the vibrating cylinder. The bonding plate is bonded to the filter plate, and one end of the bonding plate is inclined. The outside of the linkage block is fixedly connected to the placement box. A sealing block is provided inside the placement box, and the sealing block is fixedly connected to the linkage block. Several bonding columns are inserted into the top of the sealing block. Several springs are provided inside the sealing block, and each spring is fixedly connected to the corresponding bonding column and the inner wall of the sealing block. A bonding piece is fixedly connected to the top of each bonding column. The top of the bonding piece is fixedly connected to the scraper. The scraper is bonded to the bottom of the filter plate. A lifting rod is inserted into the limiting block. A fixing block is fixedly connected to the end of the linkage block away from the scraper. The fixing block is movably connected to the lifting rod.
[0007] With the above technical solution, when the placement platform rotates, it drives the limiting block to rotate. When the limiting block rotates, it drives the fixed block to move horizontally via the lifting rod. When the fixed block moves horizontally, it drives the linkage block to move. When the linkage block moves, it drives the vibrating cylinder to move. In turn, when the vibrating cylinder moves, it drives the bonding plate to clean the liquefied matter on the top of the filter plate. At the same time, the linkage block moves, driving the placement box and the sealing block to move. When the sealing block moves, it drives the bonding column to move. When the bonding column moves, it drives the scraper to move via the bonding plate. When the scraper moves, it scrapes off the particles attached to the filter plate. Because the placement box and the sealing block move synchronously, the particles scraped off by the scraper fall into the placement box for collection. Because the spring is in a compressed state, when the scraper wears out, the compressed spring rebounds, causing the scraper to always stick to the bottom of the filter plate.
[0008] As a preferred embodiment of the present invention, a limiting block is fixedly connected to the placement platform. The limiting block is provided with a movable stirring component for promoting mixing. The movable stirring component contains a movable cylinder and stirring blades. The cooperation between the movable cylinder and stirring blades can promote the mixing of raw materials. The movable stirring component contains a movable column, which is fixedly connected to the bottom of the lifting rod. A bearing column is fixedly connected to the outside of the movable column. A receiving column is provided inside the sedimentation box, which is fixedly connected to the inner wall of the sedimentation box. Two movable cylinders are fixedly connected to the outside of the bearing column. A connecting strip is fixedly connected to the outside of each movable cylinder. Two stirring blades are movably connected to the outside of the receiving column. Each stirring blade has a recessed hole for placing the limiting column. A limiting column is fixedly connected to the recessed hole of each stirring blade. The end of each connecting strip away from the movable cylinder is movably connected to the corresponding limiting column.
[0009] With the above technical solution, when the limiting block rotates, it drives the lifting rod to rise, which in turn drives the movable column to rise. The movable column, in turn, drives the supporting column to move, which in turn drives the movable cylinder to rise. The movable cylinder, in turn, drives the connecting strip to rise, and the connecting strip, in turn, drives the stirring plate to move towards the top via the limiting block. When the placement platform rotates and drives the limiting block to descend and move, the limiting block drives the lifting rod to descend and move. The lifting rod, in turn, drives the movable column to descend. Simultaneously, the movable cylinder descends and moves, and the movable cylinder, through the connecting strip, drives the limiting column to move synchronously. During this synchronous movement, the limiting column drives the stirring plate to move along the receiving column, and the stirring plate oscillates along the receiving column as it moves. The oscillating of the receiving column agitates the mixture inside the sedimentation box, promoting the mixing of the raw materials.
[0010] As a preferred embodiment of the present invention, the vibrating cylinder is provided with a vibrating assembly for promoting particle collection. The vibrating assembly is provided with a pull column, which is inserted into the vibrating cylinder. An impact plate is fixedly connected to the bottom of the pull column. A tension spring is sleeved on the outside of the pull column, and the two ends of the tension spring are fixedly connected to the impact plate and the inner wall of the top of the vibrating cylinder, respectively. Two bearings are provided on the placement platform. A single-threaded column is fixedly connected to the inner ring of each bearing on the placement platform, and the single-threaded column meshes with the toothed disc. Several trigger blocks are fixedly connected to the outside of the single-threaded column. When the placement platform moves to the position corresponding to the vibrating cylinder, the trigger blocks are in contact with the pull column.
[0011] With the above technical solution, when the placement platform moves the limiting block to the position corresponding to the vibrating cylinder, the trigger block and the pull column are in contact. As the gear plate drives the single-threaded column to rotate, the single-threaded column drives the trigger block to rotate. When the trigger block rotates, it continuously squeezes the pull column. After being squeezed, the pull column moves towards the inside of the vibrating cylinder. While the pull column is moving, it drives the tension spring to stretch. The pull column also drives the impact plate to hit the inner wall of the vibrating cylinder. When the trigger block releases the contact state with the pull column, the tension spring rebounds and drives the pull column to reset.
[0012] The operating steps of the waste gas treatment device for furanol processing are as follows; The first step is to put raw materials such as furanol into the inside of the sedimentation box through the gas outlet pipe, and then start the servo motor. The servo motor drives the transmission column to rotate, the transmission column drives the swing rod to rotate, and the swing rod drives the placement table to rotate. The placement table rotates toward the position of the filter plate. The second step is that when the placement platform rotates, it drives the limit block to rotate. When the limit block rotates, it drives the fixed block to move horizontally through the lifting rod. The fixed block drives the placement box and the sealing block to move through the linkage block. When the sealing block moves, it cleans the particles attached to the filter plate into the interior of the sealing block. The third step is that when the limiting block is in motion, it drives the lifting rod to move and rise and fall. When the lifting rod is in motion, it drives the stirring plate to move through the connecting strip. When the stirring plate moves, it swings along the receiving column. When the receiving column swings, it stirs the mixture inside the sedimentation box. Step 4: When the placement platform moves the limiting block to the position corresponding to the vibrating cylinder, the trigger block continuously squeezes the pull column as it rotates. After being squeezed, the pull column moves towards the inside of the vibrating cylinder, and the pull column drives the impact plate to repeatedly impact the inner wall of the vibrating cylinder.
[0013] Compared with the prior art, the beneficial effects that this invention can achieve are: This invention, through the cooperation of the main transmission component, the scraping component, and the agitator component, when furanol is being processed, uses a filter plate to block solid particles, and a scraper, under the action of the rotating placement table, scrapes the blocked solid particles into the placement box. This prevents solid particles from entering the exhaust gas and depositing in the exhaust gas pipes, bends, and other parts, which would increase airflow resistance and cause equipment blockage, thus improving the efficiency of exhaust gas treatment.
[0014] This invention utilizes the combined action of the main transmission assembly, the scraping assembly, and the agitator assembly. When furanol is being processed, the transmission column and the swing rod work together to convert rotational motion into oscillation, causing the placement platform to rotate toward the filter plate. This achieves precise steering of the placement platform and promotes the movement of particulate matter toward the filtration area.
[0015] This invention, through the cooperation of the main transmission component, the scraping component, and the agitator component, enables the transmission column to drive the swing rod to swing, and the linkage block to move horizontally through the lifting rod, thereby driving the scraper to reciprocate, forming an automated process to complete the entire process of "particle conveying-filtration-cleaning-mixing", thus improving the ease of use of the equipment.
[0016] This invention utilizes the combined action of the main transmission assembly, the scraping assembly, and the agitator assembly. The lifting rod drives the moving column and the supporting column to move, and the moving cylinder drives the agitator to swing through the connecting strip and the limiting column, dynamically responding to the movement of the placement platform and improving the uniformity of mixing.
[0017] This invention utilizes the cooperation of a scraping component and a vibration component. The vibration cylinder cleans the liquefied material on the top of the filter plate through the bonding plate, while the tension spring and the impact plate periodically impact the inner wall to help the particles fall off. The scraper removes the particles at the bottom, and the vibration cylinder cleans the scale on the top, reducing the risk of filter plate clogging.
[0018] This invention improves the efficiency of solid particulate matter cleaning by using a scraping assembly. When furanol is being processed, the scraper adheres to the bottom of the filter plate to continuously remove attached particles, and the sealed box collects the particles, avoiding secondary pollution. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the device box structure of the present invention; Figure 3 This is a schematic diagram of the load-bearing rod structure of the present invention; Figure 4 This is a schematic diagram of the filter plate structure of the present invention; Figure 5 This is a schematic diagram of the bearing block structure of the present invention; Figure 6 This is a schematic diagram of the limiting frame structure of the present invention; Figure 7 This is a schematic diagram of the carrier sheet structure of the present invention; Figure 8 This is a schematic diagram of the placement box structure of the present invention; Figure 9 This is a schematic diagram of the placement platform structure of the present invention; Figure 10 This is a schematic diagram of the stirring plate structure of the present invention; Figure 11 This is a schematic diagram of the trigger block structure of the present invention.
[0020] The components include: 1. Sedimentation box; 2. Support leg; 3. Equipment box; 4. Air outlet pipe; 5. Feed pipe; 6. Housing; 7. Servo motor; 8. Transmission column; 9. Bearing block; 10. Bearing rod; 11. Inclined plate; 12. Connecting rod; 13. Swing rod; 14. Connecting column; 15. Placement platform; 16. Transmission rod; 17. Gear disc; 18. Bearing plate; 19. Groove plate; 20. Clamping strip; 21. Limiting frame; 22. Linkage block; 23. Fixing block; 24. 25. Vibrating cylinder; 26. Limiting block; 27. Lifting rod; 28. Adhesive plate; 29. Placement box; 30. Sealing block; 31. Spring; 32. Adhesive column; 33. Adhesive piece; 34. Scraper; 35. Movable column; 36. Bearing column; 37. Movable cylinder; 38. Connecting strip; 39. Limiting column; 40. Agitating plate; 41. Receiving column; 42. Single-threaded column; 43. Trigger block; 44. Impact plate; 45. Tension spring; 46. Pull column; 47. Filter plate. Detailed Implementation
[0021] To make the technical means, creative features, and achieved objectives and effects of this invention easier to understand, the invention is further described below with reference to specific embodiments. However, the following embodiments are merely preferred embodiments of this invention and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described herein without creative effort are all within the protection scope of this invention. Unless otherwise specified, the experimental methods in the following embodiments are conventional methods, and the materials and reagents used in the following embodiments are commercially available unless otherwise specified.
[0022] Example: Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, the waste gas treatment device for furanol processing includes a sedimentation box 1. A support leg 2 is fixedly connected to the bottom of the sedimentation box 1, and an equipment box 3 is fixedly connected to the top of the sedimentation box 1. An inlet pipe 5 is fixedly connected to the bottom of the sedimentation box 1, and an outlet pipe 4 is fixedly connected to the top of the equipment box 3. A placement platform 15 is provided inside the sedimentation box 1. A main transmission assembly for treating particulate matter is provided on the placement platform 15. The main transmission assembly contains two transmission columns 8 and two swing rods 13. The cooperation of the transmission columns 8 and swing rods 13 provides power for treating particulate matter. A housing 6 is provided inside the main transmission assembly, and the housing 6 is fixedly connected to the outside of the equipment box 3. The two transmission columns 8 are correspondingly and movably connected to the equipment box 3. A servo motor 7 is provided inside the housing 6. The output shaft of the servo motor 7 is fixedly connected to one of the transmission columns 8. The equipment box 3 has two bearing blocks 9 inside, each bearing block 9 is equipped with a bearing, and each transmission column 8 is fixedly connected to the inner ring of the bearing of the corresponding bearing block 9. A bearing rod 10 is fixedly connected between the two bearing blocks 9 and the top of the equipment box 3 is fixedly connected to the top of the equipment box 3. An inclined plate 11 is fixedly connected to the outside of each transmission column 8. A connecting rod 12 is provided between the two inclined plates 11. The two inclined plates 11 are movably connected to the connecting rod 12. A swing rod 13 is fixedly connected to the end of each transmission column 8 away from the inclined plate 11. A connecting column 14 is movably connected to the end of one swing rod 13 away from the transmission column 8, and a transmission rod 16 is fixedly connected to the end of the other swing rod 13 away from the transmission column 8. The connecting column 14 is fixedly connected to the placement platform 15, and the transmission rod 16 is movably connected to the placement platform 15. like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, raw materials such as furanol are placed into the sedimentation box 1 through the gas outlet pipe 4, and then the servo motor 7 is started. The servo motor 7 drives the corresponding transmission column 8 to rotate, the transmission column 8 drives the swing rod 13 to rotate, the swing rod 13 drives the corresponding connecting column 14 to rotate, the connecting column 14 drives the placement platform 15 to rotate, and the placement platform 15 rotates toward the position of the filter plate 46. Because the servo motor 7 drives the corresponding transmission column 8 to rotate, the transmission column 8 drives the corresponding tilting disk 11 to rotate. When the corresponding tilting disk 11 rotates, it drives another tilting disk 11 to rotate through the connecting rod 12. The rotation of the other tilting disk 11 drives the corresponding transmission column 8 to rotate, the corresponding transmission column 8 drives the corresponding swing rod 13 to rotate, and the rotation of the corresponding swing rod 13 drives the transmission rod 16 to rotate.
[0023] like Figure 5 , Figure 6 , Figure 7 , Figure 8 and Figure 9As shown, the sedimentation box 1 has a filter plate 46 inside, with several small round holes for filtering water vapor. A limiting frame 21 is fixedly connected to the outer side of the filter plate 46, and the limiting frame 21 is fixedly connected to the inner wall of the sedimentation box 1. Two locking strips 20 are fixedly connected to the bottom of the filter plate 46. A grooved plate 19 is fixedly connected to the top of each carrier plate 18, and each grooved plate 19 has a slot for placing the locking strips 20. Each locking strip 20 is engaged in the slot of the corresponding grooved plate 19. Two carrier plates 18 are fixedly connected inside the sedimentation box 1. The carrier plates 18 are equipped with scraping and collecting components for cooperating with the main transmission assembly. The scraping and collecting components are equipped with a placement box 28 and a scraper 33. Through the cooperation of the placement box 28 and the scraper 33, particulate matter can be collected. The scraping and collecting components are equipped with a linkage block 22. The limiting frame 21 has a through slot for placing the linkage block 22. The linkage block 22 is inserted into the limiting frame 28. In the through groove of 1, a vibrating cylinder 24 is fixedly connected to the top of the linkage block 22, and a bonding plate 27 is fixedly connected to the outside of the vibrating cylinder 24. The bonding plate 27 is bonded to the filter plate 46, and one end of the bonding plate 27 is inclined. The outside of the linkage block 22 is fixedly connected to the placement box 28. The inside of the placement box 28 is provided with a sealing block 29, and the sealing block 29 is fixedly connected to the linkage block 22. Several bonding columns 31 are inserted into the top of the sealing block 29. Several springs 30 are provided inside the sealing block 29, and each spring 30 is fixedly connected to the corresponding bonding column 31 and the inner wall of the sealing block 29. A bonding piece 32 is fixedly connected to the top of each bonding column 31. The top of the bonding piece 32 is fixedly connected to the scraper 33. The scraper 33 is bonded to the bottom of the filter plate 46. A lifting rod 26 is inserted into the limiting block 25. A fixing block 23 is fixedly connected to the end of the linkage block 22 away from the scraper 33. The fixing block 23 is movably connected to the lifting rod 26. like Figure 5 , Figure 6 , Figure 7 , Figure 8 and Figure 9As shown, when the placement platform 15 rotates, it drives the limiting block 25 to rotate. When the limiting block 25 rotates, it drives the fixing block 23 to move horizontally via the lifting rod 26. When the fixing block 23 moves horizontally, it drives the linkage block 22 to move. When the linkage block 22 moves, it drives the vibrating cylinder 24 to move. Furthermore, when the vibrating cylinder 24 moves, it drives the bonding plate 27 to clean the liquefied material on the top of the filter plate 46. Simultaneously, the linkage block 22 moves the placement box 28 and the sealing block 29. 9 moves the bonding column 31 during movement, and the bonding column 31 moves the scraper 33 through the bonding piece 32 during movement. The scraper 33 scrapes off the particles attached to the filter plate 46 during movement. Because the placement box 28 and the sealing block 29 move synchronously, the particles scraped off by the scraper 33 fall into the placement box 28 for collection. Because the spring 30 is in a compressed state, when the scraper 33 wears out, the compressed spring 30 rebounds and causes the scraper 33 to always stick to the bottom of the filter plate 46.
[0024] like Figure 6 , Figure 7 , Figure 8 , Figure 9 and Figure 10 As shown, a limiting block 25 is fixedly connected to the placement platform 15. The limiting block 25 is provided with a movable stirring component for promoting mixing. The movable stirring component is provided with a movable cylinder 36 and a stirring blade 39. The cooperation of the movable cylinder 36 and the stirring blade 39 can promote the mixing of raw materials. The movable stirring component is provided with a movable column 34. The movable column 34 is fixedly connected to the bottom of the lifting rod 26. A bearing column 35 is fixedly connected to the outside of the movable column 34. A receiving column 40 is provided inside the sedimentation box 1. The receiving column 40 is fixedly connected to the inner wall of the sedimentation box 1. Two movable cylinders 36 are fixedly connected to the outside of the bearing column 35. A connecting strip 37 is fixedly connected to the outside of each movable cylinder 36. Two stirring blades 39 are movably connected to the outside of the receiving column 40. Each stirring blade 39 is provided with a concave hole for placing a limiting column 38. A limiting column 38 is fixedly connected to the concave hole of each stirring blade 39. The end of each connecting strip 37 away from the movable cylinder 36 is movably connected to the corresponding limiting column 38. like Figure 6 , Figure 7 , Figure 8 , Figure 9 and Figure 10As shown, when the limiting block 25 rotates, it drives the lifting rod 26 to rise. When the lifting rod 26 rises, it drives the movable column 34 to rise. When the movable column 34 rises, it drives the bearing column 35 to move. When the bearing column 35 moves, it drives the movable cylinder 36 to rise. When the movable cylinder 36 rises, it drives the connecting strip 37 to rise. When the connecting strip 37 rises, it drives the stirring plate 39 to move towards the top through the limiting column 38. When the placement platform 15 rotates, it drives the limiting block 25 to fall and move. The limiting block 25 drives the lifting rod 26 to fall and move. When the lifting rod 26 falls, it drives the movable column 34 to fall. When the movable column 34 falls and moves, the movable cylinder 36 falls and moves. Then, the movable cylinder 36 drives the limiting column 38 to move synchronously through the connecting strip 37. When the limiting column 38 moves synchronously, it drives the stirring plate 39 to move along the receiving column 40. When the stirring plate 39 moves, it swings along the receiving column 40. When the receiving column 40 swings, it stirs the mixture inside the sedimentation box 1 to promote the mixing of raw materials.
[0025] like Figure 7 , Figure 8 , Figure 9 , Figure 10 and Figure 11 As shown, the vibrating cylinder 24 is equipped with a vibration assembly for promoting particle collection. The vibration assembly is equipped with a pull column 45, which is inserted into the vibrating cylinder 24. An impact plate 43 is fixedly connected to the bottom of the pull column 45. A tension spring 44 is sleeved on the outside of the pull column 45, and the two ends of the tension spring 44 are fixedly connected to the impact plate 43 and the inner wall of the top of the vibrating cylinder 24, respectively. The placement platform 15 is equipped with two bearings. A single-threaded column 41 is fixedly connected to the inner ring of each bearing of the placement platform 15, and the single-threaded column 41 meshes with the toothed disc 17. Several trigger blocks 42 are fixedly connected to the outside of the single-threaded column 41. When the placement platform 15 moves to the position corresponding to the vibrating cylinder 24, the trigger blocks 42 are in contact with the pull column 45. like Figure 7 , Figure 8 , Figure 9 , Figure 10 and Figure 11 As shown, when the placement platform 15 moves the limiting block 25 to the position corresponding to the vibrating cylinder 24, the trigger block 42 is in contact with the pull column 45. Because the gear plate 17 drives the single-headed threaded column 41 to rotate, the single-headed threaded column 41 drives the trigger block 42 to rotate. When the trigger block 42 rotates, it continuously squeezes the pull column 45. After being squeezed, the pull column 45 moves towards the inside of the vibrating cylinder 24. While moving, the pull column 45 drives the tension spring 44 to stretch. The pull column 45 also drives the impact plate 43 to impact the inner wall of the vibrating cylinder 24. When the trigger block 42 releases the contact state with the pull column 45, the tension spring 44 rebounds and drives the pull column 45 to reset.
[0026] The operating steps of the waste gas treatment device for furanol processing are as follows; Step 1, such as Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, raw materials such as furanol are placed into the sedimentation box 1 through the gas outlet pipe 4, and then the servo motor 7 is started. The servo motor 7 drives the corresponding transmission column 8 to rotate, the transmission column 8 drives the swing rod 13 to rotate, the swing rod 13 drives the corresponding connecting column 14 to rotate, the connecting column 14 drives the placement platform 15 to rotate, and the placement platform 15 rotates toward the position of the filter plate 46. Because the servo motor 7 drives the corresponding transmission column 8 to rotate, the transmission column 8 drives the corresponding tilting disk 11 to rotate. When the corresponding tilting disk 11 rotates, it drives another tilting disk 11 to rotate through the connecting rod 12. The rotation of the other tilting disk 11 drives the corresponding transmission column 8 to rotate. When the corresponding transmission column 8 rotates, it drives the corresponding swing rod 13 to rotate, and the rotation of the corresponding swing rod 13 drives the transmission rod 16 to rotate. Step 2, as follows Figure 5 , Figure 6 , Figure 7 , Figure 8 and Figure 9 As shown, when the placement platform 15 rotates, it drives the limiting block 25 to rotate. When the limiting block 25 rotates, it drives the fixing block 23 to move horizontally via the lifting rod 26. When the fixing block 23 moves horizontally, it drives the linkage block 22 to move. When the linkage block 22 moves, it drives the vibrating cylinder 24 to move. Furthermore, when the vibrating cylinder 24 moves, it drives the bonding plate 27 to clean the liquefied material on the top of the filter plate 46. Simultaneously, the linkage block 22 moves the placement box 28 and the sealing block 29. 9 moves the bonding column 31 during movement, and the bonding column 31 moves the scraper 33 through the bonding piece 32 during movement. The scraper 33 scrapes off the particles attached to the filter plate 46 during movement. Because the placement box 28 and the sealing block 29 move synchronously, the particles scraped off by the scraper 33 fall into the placement box 28 for collection. Because the spring 30 is in a compressed state, when the scraper 33 wears out, the compressed spring 30 rebounds and drives the scraper 33 to always stick to the bottom of the filter plate 46. Step 3, as follows Figure 6 , Figure 7 , Figure 8 , Figure 9 and Figure 10As shown, when the limiting block 25 rotates, the limiting block 25 drives the lifting rod 26 to rise. When the lifting rod 26 rises, it drives the movable column 34 to rise. When the movable column 34 rises, it drives the bearing column 35 to move. When the bearing column 35 moves, it drives the movable cylinder 36 to rise. When the movable cylinder 36 rises, it drives the connecting strip 37 to rise. When the connecting strip 37 rises, it drives the stirring plate 39 to move towards the top through the limiting column 38. When the placement platform 15 rotates, it drives the limiting block 25 to fall and move. The limiting block 25 drives the lifting rod 26 to fall and move. When the lifting rod 26 falls, it drives the movable column 34 to fall. When the movable column 34 falls and moves, the movable cylinder 36 falls and moves. Then, the movable cylinder 36 drives the limiting column 38 to move synchronously through the connecting strip 37. When the limiting column 38 moves synchronously, it drives the stirring plate 39 to move along the receiving column 40. When the stirring plate 39 moves, it swings along the receiving column 40. When the receiving column 40 swings, it stirs the mixture inside the sedimentation box 1 to promote the mixing of raw materials. Step 4, such as Figure 7 , Figure 8 , Figure 9 , Figure 10 and Figure 11 As shown, when the placement platform 15 moves the limiting block 25 to the position corresponding to the vibrating cylinder 24, the trigger block 42 is in contact with the pull column 45. Because the gear plate 17 drives the single-headed threaded column 41 to rotate, the single-headed threaded column 41 drives the trigger block 42 to rotate. When the trigger block 42 rotates, it continuously squeezes the pull column 45. After being squeezed, the pull column 45 moves towards the inside of the vibrating cylinder 24. While moving, the pull column 45 drives the tension spring 44 to stretch. The pull column 45 also drives the impact plate 43 to impact the inner wall of the vibrating cylinder 24. When the trigger block 42 releases the contact state with the pull column 45, the tension spring 44 rebounds and drives the pull column 45 to reset.
[0027] 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 thereto. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention.
Claims
1. A waste gas treatment device for furanol processing, comprising a sedimentation box, with a support leg fixedly connected to the bottom of the sedimentation box and an equipment box fixedly connected to the top of the sedimentation box, characterized in that, The bottom of the sedimentation box is fixedly connected to an inlet pipe, and the top of the equipment box is fixedly connected to an outlet pipe. The sedimentation box is equipped with a placement platform, and the placement platform is equipped with a main transmission assembly for processing particulate matter. The main transmission assembly contains two transmission columns and two swing rods. The cooperation of the transmission columns and swing rods can provide power for processing particulate matter. The sedimentation box is fixedly connected to two support plates, and the support plates are equipped with scraping and collecting components for cooperating with the main transmission assembly. The scraping and collecting components contain a placement box and scraper. The cooperation of the placement box and scraper can collect particulate matter. The placement platform is fixedly connected to a limit block, and the limit block is equipped with a movable stirring component for promoting mixing. The movable stirring component contains a movable cylinder and stirring blades. The cooperation of the movable cylinder and stirring blades can promote the mixing of raw materials.
2. The waste gas treatment device for furanol processing according to claim 1, characterized in that, The main transmission assembly includes a housing, which is fixedly connected to the outside of the equipment box. Two transmission columns are movably connected to the equipment box. A servo motor is installed inside the housing, and the output shaft of the servo motor is fixedly connected to one of the transmission columns. The equipment box contains two support blocks, each with a bearing. Each transmission column is fixedly connected to the inner ring of the bearing on the corresponding support block. A support rod is fixedly connected between the two support blocks and to the top of the equipment box. An inclined plate is fixedly connected to the outside of each transmission column, and a connecting rod is located between the two inclined plates. The two inclined plates are movably connected to the connecting rod. A swing rod is fixedly connected to the end of each transmission column away from the inclined plate. One swing rod is movably connected to a connecting column at the end away from the transmission column, and the other swing rod is fixedly connected to a transmission rod at the end away from the transmission column. The connecting column is fixedly connected to the placement platform, and the transmission rod is movably connected to the placement platform.
3. The waste gas treatment device for furanol processing according to claim 2, characterized in that, The sedimentation box has a filter plate inside, which has several small round holes for filtering water vapor. A limiting frame is fixedly connected to the outside of the filter plate and is fixedly connected to the inner wall of the sedimentation box. Two locking strips are fixedly connected to the bottom of the filter plate. A groove plate is fixedly connected to the top of each support plate. Each groove plate has a slot for placing the locking strips, and each locking strip is engaged in the slot of the corresponding groove plate.
4. The waste gas treatment device for furanol processing according to claim 3, characterized in that, The scraping assembly includes a linkage block. A through slot for placing the linkage block is provided on the limiting frame. The linkage block is inserted into the through slot of the limiting frame. A vibrating cylinder is fixedly connected to the top of the linkage block. A bonding plate is fixedly connected to the outside of the vibrating cylinder. The bonding plate is bonded to the filter plate, and one end of the bonding plate is inclined. The outside of the linkage block is fixedly connected to the placement box. A sealing block is provided inside the placement box and is fixedly connected to the linkage block. Several bonding posts are inserted into the top of the sealing block. Several springs are provided inside the sealing block, and each spring is fixedly connected to the corresponding bonding post and the inner wall of the sealing block. A bonding piece is fixedly connected to the top of each bonding post. The top of the bonding piece is fixedly connected to the scraper. The scraper is bonded to the bottom of the filter plate. A lifting rod is inserted into the limiting block. A fixing block is fixedly connected to the end of the linkage block away from the scraper. The fixing block is movably connected to the lifting rod.
5. The waste gas treatment device for furanol processing according to claim 4, characterized in that, The movable stirring assembly has a movable column inside, which is fixedly connected to the bottom of the lifting rod. A bearing column is fixedly connected to the outside of the movable column. A receiving column is provided inside the sedimentation box, which is fixedly connected to the inner wall of the sedimentation box. Two movable cylinders are fixedly connected to the outside of the bearing column. A connecting strip is fixedly connected to the outside of each movable cylinder. Two stirring blades are movably connected to the outside of the receiving column. Each stirring blade has a recessed hole for placing a limiting column. A limiting column is fixedly connected to the recessed hole of each stirring blade. The end of each connecting strip away from the movable cylinder is movably connected to the corresponding limiting column.
6. The waste gas treatment device for furanol processing according to claim 5, characterized in that, The vibrating cylinder is equipped with a vibration assembly for promoting particle collection. The vibration assembly has a pull column inserted into the vibrating cylinder. An impact plate is fixedly connected to the bottom of the pull column. A tension spring is sleeved on the outside of the pull column, and the two ends of the tension spring are fixedly connected to the impact plate and the inner wall of the top of the vibrating cylinder, respectively.
7. The waste gas treatment device and method for furanol processing according to claim 6, characterized in that, The placement platform is equipped with two bearings. Each bearing inner ring is fixedly connected to a single-threaded column, which meshes with the gear plate. Several trigger blocks are fixedly connected to the outer side of the single-threaded column. When the placement platform moves to the position corresponding to the vibrating cylinder, the trigger blocks are in contact with the pull column.
8. The treatment method of the waste gas treatment device for furanol processing according to claim 7, characterized in that, The operating steps of the waste gas treatment device for furanol processing are as follows; The first step is to put raw materials such as furanol into the inside of the sedimentation box through the gas outlet pipe, and then start the servo motor. The servo motor drives the transmission column to rotate, the transmission column drives the swing rod to rotate, and the swing rod drives the placement table to rotate. The placement table rotates toward the position of the filter plate. The second step is that when the placement platform rotates, it drives the limit block to rotate. When the limit block rotates, it drives the fixed block to move horizontally through the lifting rod. The fixed block drives the placement box and the sealing block to move through the linkage block. When the sealing block moves, it cleans the particles attached to the filter plate into the interior of the sealing block. The third step is that when the limiting block is in motion, it drives the lifting rod to move and rise and fall. When the lifting rod is in motion, it drives the stirring plate to move through the connecting strip. When the stirring plate moves, it swings along the receiving column. When the receiving column swings, it stirs the mixture inside the sedimentation box. Step 4: When the placement platform moves the limiting block to the position corresponding to the vibrating cylinder, the trigger block continuously squeezes the pull column as it rotates. After being squeezed, the pull column moves towards the inside of the vibrating cylinder, and the pull column drives the impact plate to repeatedly impact the inner wall of the vibrating cylinder.
Citation Information
Patent Citations
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