Organic waste gas treatment device in synthetic perfume production process
By combining the agitation of the stirring blades and the control of the rotating plate, the problem of uneven distribution of particulate matter in the exhaust gas during the production of synthetic fragrances was solved, achieving effective particulate matter filtration and stable operation of the filter membrane.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- JIANGXI RUNHE SPICES CO LTD
- Filing Date
- 2026-04-02
- Publication Date
- 2026-05-05
AI Technical Summary
During the production of synthetic fragrances, the uneven distribution of fine particulate matter in the exhaust gas leads to localized clogging of the filter membrane, resulting in reduced filtration efficiency and difficulty in effectively filtering exhaust gas entering from different angles.
The exhaust gas is stirred by a stirring blade to distribute the particulate matter evenly. The tilt angle is changed by the intermittent opening and closing of the rotating plate and the deflection of the frame to ensure that the exhaust gas enters the treatment chamber evenly for filtration. The accumulated particulate matter is shaken off by the vibration of the filter membrane surface to avoid clogging.
It achieves uniform distribution and thorough filtration of particulate matter in exhaust gas, avoids filter membrane clogging, improves filtration efficiency and stability, ensures unobstructed filter pores, and reduces particulate matter backflow.
Smart Images

Figure CN121971925A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of waste gas treatment devices, specifically relating to an organic waste gas treatment device for the production process of synthetic fragrances. Background Technology
[0002] The waste gas generated during the production of synthetic fragrances contains a large number of tiny solid particles. Filtration is used to filter out the particulate matter in the waste gas for preliminary treatment.
[0003] Patent publication number CN119258670B relates to a dry chemical filter for air purification, including a frame, a dry filter box, a filter structure, an installation structure, an opening and closing structure, a scraping structure, and a closing structure. The opening and closing structure allows for easy removal of the internal coarse filter, medium-efficiency filter, chemical filter element, and high-efficiency filter, facilitating maintenance and repair of internal components. The good sealing also improves the purification effect. The filter structure filters dust, pollutants, and toxic and harmful chemical pollutants from the air in layers. The installation structure allows for quick disassembly and reassembly of the coarse filter, medium-efficiency filter, chemical filter element, and high-efficiency filter, improving the efficiency of installation and disassembly. The scraping structure removes dust particles adhering to the coarse filter, improving its filtration efficiency.
[0004] In the aforementioned patent, a dry filter box is mounted on the frame, and a filter structure is mounted on the dry filter box. The dry filter box has an opening and closing mechanism, which allows the coarse filter, medium-efficiency filter, chemical filter element, and high-efficiency filter inside to be easily removed. This facilitates the inspection and maintenance of the internal parts of the dry filter box. At the same time, the good sealing performance prevents gas from escaping from the side walls, improving the purification effect. However, the uneven distribution of particulate matter in the exhaust gas can easily lead to uneven distribution of the filtered particles on the surface of the filter structure when it enters the dry filter box, resulting in premature blockage in some areas, affecting the filtration efficiency. Uneven filtration also makes it difficult to receive exhaust gas entering from different angles, which can easily lead to insufficient filtration of the exhaust gas. If the filtered particles are not cleaned in time, it will affect the unobstructed flow of the filter structure and affect the filtration performance. Summary of the Invention
[0005] This invention aims to at least solve one of the technical problems existing in the prior art. To this end, this invention proposes an organic waste gas treatment device for the synthetic fragrance production process, which effectively filters and pre-treats the fine particulate matter in the waste gas.
[0006] An organic waste gas treatment device for the production process of synthetic fragrances according to an embodiment of the present invention includes: a body and an air inlet pipe. The air inlet pipe is located on the left side of the body, and an air outlet pipe is located on the right side of the body. The body contains a treatment chamber and an isolation chamber. Several filter membranes are installed inside the body. Waste gas is introduced into the body through the air inlet pipe, and the particles in the waste gas are filtered by the multiple sets of filter membranes in the treatment chamber. The treated gas is discharged through the air outlet pipe for further treatment. A motor is installed on the surface of the body. A stirring blade is rotatably installed inside the isolation chamber. Gears are fixedly installed on the shaft of the stirring blade and the output end of the motor. The gears on the stirring blade mesh with the gears on the output end of the motor. When the output end of the motor rotates, it drives the stirring blade to rotate, and the stirring blade agitates the waste gas reaching the isolation chamber, so that the particulate matter in the waste gas is evenly distributed. Several collection boxes are provided at the bottom of the body. An outlet is provided between the collection box and the filter membrane. The filtered particulate matter enters the collection box from the outlet for collection.
[0007] In some embodiments of the present invention, a plurality of arc-tooth blocks are installed on the surface of the stirring blade. When the stirring blade rotates, it drives the arc-tooth blocks to rotate. A pusher is slidably installed on one side of the machine body. A plurality of straight ruler blocks are installed on the surface of the pusher. When the arc-tooth blocks rotate to the straight ruler blocks, they push the pusher to move by meshing with the straight ruler blocks. A plurality of rotating plates are rotatably installed between the isolation chamber and the treatment chamber. The rotating plates are sleeved on the surface of the pusher. Each time the pusher moves, it pushes the rotating plates open and rotates to open, so that the rotating plates open and close intermittently. When the rotating plates are closed, the exhaust gas is temporarily stored in the isolation chamber and will not flow into the treatment chamber immediately.
[0008] In some embodiments of the present invention, a first spring is provided between the push bar and the machine body, and the elastic force of the first spring causes the push bar to return to its original position. A first torsion spring is provided between the rotating plate and the machine body, and the elastic force of the first torsion spring helps the rotating plate to return to its original position.
[0009] In some embodiments of the present invention, the surface of the stirring blade is equipped with several arc heads, which rotate when the stirring blade rotates. A rocker arm is sleeved on the inner wall of the machine body. When the arc heads rotate, they frequently squeeze the rocker arm, pushing it to deflect. A pull rod is slidably installed on the inner wall of the machine body. The pull rod is hinged to the rocker arm. When the rocker arm deflects, it pushes the pull rod to move back and forth. A second spring is provided between the pull rod and the machine body. Several sliding frames are slidably installed inside each of the processing chambers. Terminals are installed inside the sliding frames. Two frames are hinged to the surface of each terminal. The two frames in the middle of each processing chamber are hinged to each other. The filter membrane is installed on the surface of the frame. One of the outer frames is sleeved on the surface of the pull rod. When the pull rod moves, it pulls the frame, pushing each frame to deflect in the processing chamber. By frequently deflecting and changing the tilt angle, the exhaust gas flowing in from different directions guided by the rotating plate is fully received.
[0010] In some embodiments of the present invention, connecting rods are slidably mounted on the frame surface on both sides of the filter membrane. When the frame deflects, it drives the connecting rods to rotate. A stop rod is mounted on the terminal surface near the connecting rod. After the connecting rod rotates, it contacts the stop rod and moves under the pressure of the reaction force of the stop rod. A folding rod is mounted on the surface of the connecting rod. The moving connecting rod drives the folding rod to move. An inclined rail is mounted on the frame surface near the connecting rod. A push plate is sleeved in the inclined rail. An inclined surface is provided on the surface of the push plate near the folding rod. When the folding rod moves, it presses the inclined surface of the push plate and pushes the push plate to move. A pressure plate is slidably mounted on the bottom of the push plate. The push plate drives the pressure plate to move. At the same time, under the guidance of the inclined rail, the push plate pushes the pressure plate to tilt and move towards the filter membrane, slightly dragging the filter membrane outward from both sides to extend the filter membrane. Several slots are opened on the surface of the pressure plate. The slots on the surface of the pressure plate will not block the contact between the exhaust gas and the filter membrane.
[0011] In some embodiments of the present invention, a third spring is provided between the connecting rod and the frame, and the elastic force of the third spring causes the connecting rod to return to its original position. A buffer spring is provided between the pressure plate and the push plate, and the dragging force applied by the push plate is buffered by the pressure plate and the buffer spring to avoid excessive tearing of the filter membrane.
[0012] In some embodiments of the present invention, a push rod is installed on the surface of the push bar. The push bar drives the rotating plate to close while simultaneously moving the push rod. A pressure bar is slidably installed on the inner wall of the machine body near the push rod. An inclined surface is provided on the surface of the pressure bar near the push rod. Several baffles are rotatably installed at the outlet. The push rod presses the inclined surface of the pressure bar surface, causing the pressure bar to move downward and push the baffles open, thus opening the outlet. A second torsion spring is provided between the baffles and the machine body. The elastic force of the second torsion spring causes the baffles to reset.
[0013] In some embodiments of the present invention, a sliding rod is slidably installed inside the collection box, and a fourth spring is provided between the sliding rod and the collection box. Each time the door is rotated and closed, the pressure on the sliding rod is released, and the sliding rod is lifted up under the elastic force of the fourth spring. A rotating rod is rotatably installed on the inner wall of the collection box. When the sliding rod is lifted, it drives the rotating rod to rotate. One end of the rotating rod is hinged to the bottom of the pressure strip. A fixed frame is slidably installed inside the collection box. When the rotating rod rotates, it presses the fixed frame, causing the fixed frame to move downward. A fifth spring is provided between the fixed frame and the collection box. The elastic force of the fifth spring causes the fixed frame to return to its original position. Several inclined plates are rotatably installed on the surface of the fixed frame. After the fixed frame moves, it drives the inclined plates to move towards the particles accumulated at the bottom of the collection box, thus compressing and compacting the particle pile.
[0014] Compared with the prior art, the beneficial effects of the present invention are: This invention uses a stirring blade to agitate the exhaust gas, ensuring a uniform distribution of particulate matter and preventing uneven filtration caused by excessive particles in certain areas clogging the filter membrane. It features an isolation chamber and a treatment chamber, with a rotating plate between them. The rotating plate opens and closes intermittently. When the plate is closed, the exhaust gas is temporarily stored in the isolation chamber and agitated by the stirring blade to ensure uniform particle distribution. Once the particle distribution is uniform, the rotating plate opens to allow the exhaust gas to enter the treatment chamber for filtration. This ensures a uniform distribution of particulate matter in the exhaust gas entering the treatment chamber and prevents excessive particle accumulation on the filter membrane surface, which could lead to clogging and uneven filtration.
[0015] This invention utilizes a rotating plate whose tilt angle continuously changes during rotation and opening. This tilt angle guides the exhaust gas from the isolation chamber into the treatment chamber from different directions, further preventing excessive local particle accumulation in the treatment chamber. Simultaneously, frequent deflection and alteration of the tilt angle through stirring ensure that the exhaust gas flowing in from different directions guided by the rotating plate is fully received, increasing the contact area with the exhaust gas and effectively filtering it. Furthermore, during the frame deflection process, the filter membrane surface does not bulge or compress the filter pores under gas fluctuations, ensuring unobstructed filter pores.
[0016] This invention causes the filter membrane surface to vibrate, shaking off accumulated particles and preventing filter membrane clogging. This facilitates long-term stable operation. The falling particles enter the collection box from the outlet for collection. The baffle at the outlet opens and closes intermittently to ensure that exhaust gas from the treatment chamber does not enter the collection box to avoid filtration, and also prevents particles from flowing back into the collection box. The collection box is equipped with inclined plates that can intermittently compress and compact the particle pile, reducing the space occupied by particles inside the collection box and compacting the particle pile to prevent backflow of particles. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure according to an embodiment of the present invention; Figure 2 This is a schematic diagram of the location and structure of the isolation chamber and the processing chamber according to an embodiment of the present invention; Figure 3 This is a schematic diagram of the isolation chamber structure according to an embodiment of the present invention; Figure 4 This is a schematic diagram of the stirring blade structure according to an embodiment of the present invention; Figure 5 This is a schematic diagram of the rotating plate structure according to an embodiment of the present invention; Figure 6 This is a schematic diagram of the frame structure according to an embodiment of the present invention; Figure 7 This is a schematic diagram of the link position structure according to an embodiment of the present invention; Figure 8 According to an embodiment of the present invention Figure 7 Enlarged view of section A in the middle; Figure 9This is a schematic diagram of the collection box location structure according to an embodiment of the present invention; Figure 10 This is a schematic diagram of the outlet and gate structure according to an embodiment of the present invention; Figure 11 This is a schematic diagram of the pressure strip position structure according to an embodiment of the present invention; Figure 12 This is a schematic diagram of the slide bar position structure according to an embodiment of the present invention; Figure 13 This is a schematic diagram of the fixed frame and inclined plate structure according to an embodiment of the present invention.
[0018] Figure label: 1. Body; 2. Inlet pipe; 3. Outlet pipe; 4. Processing chamber; 5. Motor; 6. Stirring blade; 7. Isolation chamber; 8. Filter membrane; 9. Rotating plate; 10. Push bar; 11. Straight bar block; 12. Arc tooth block; 13. Arc head; 14. Tilt rod; 15. Pull rod; 16. Frame; 17. Terminal; 18. Sliding frame; 19. Connecting rod; 20. Support rod; 21. Folding rod; 22. Push plate; 23. Inclined rail; 24. Pressure plate; 25. Slot; 26. Collection box; 27. Door stop; 28. Pressure bar; 29. Push rod; 30. Sliding rod; 31. Rotating rod; 32. Fixed frame; 33. Inclined plate. Detailed Implementation
[0019] The specific embodiments of the present invention will now be described in detail with reference to the accompanying drawings, but it should be understood that the scope of protection of the present invention is not limited to the specific embodiments.
[0020] like Figure 1 - Figure 13 As shown, one embodiment of the present invention is: an organic waste gas treatment device for the production of synthetic fragrances, comprising: a body 1 and an inlet pipe 2, the inlet pipe 2 being located on the left side of the body 1, an outlet pipe 3 being located on the right side of the body 1, a treatment chamber 4 and an isolation chamber 7 being disposed inside the body 1, and a plurality of filter membranes 8 being disposed inside the body 1. Waste gas is introduced into the body 1 through the inlet pipe 2, and the particles in the waste gas are filtered by the multiple sets of filter membranes 8 in the treatment chamber 4. The treated gas is discharged through the outlet pipe 3 for further treatment. A motor 5 is installed on the surface of the body 1, and the isolation chamber 7 contains... The unit is equipped with a rotating stirring blade 6. Gears are fixedly installed on both the rotating shaft of the stirring blade 6 and the output end of the motor 5. The gears on the stirring blade 6 mesh with the gears on the output end of the motor 5. When the output end of the motor 5 rotates, it drives the stirring blade 6 to rotate. The stirring blade 6 agitates the exhaust gas that reaches the isolation chamber 7, making the particulate matter in the exhaust gas evenly distributed. This avoids the problem of uneven filtration caused by the excessive number of particles in some parts of the exhaust gas clogging the filter membrane 8. Several collection boxes 26 are provided at the bottom of the unit 1. An outlet is provided between the collection box 26 and the filter membrane 8. The filtered particulate matter enters the collection box 26 from the outlet for collection.
[0021] Several arc-tooth blocks 12 are installed on the surface of the stirring blade 6. When the stirring blade 6 rotates, it drives the arc-tooth blocks 12 to rotate. A pusher 10 is slidably installed on one side of the machine body 1. Several straight ruler blocks 11 are installed on the surface of the pusher 10. When the arc-tooth blocks 12 rotate to the straight ruler blocks 11, they push the pusher 10 to move by meshing with the straight ruler blocks 11. Several rotating plates 9 are rotatably installed between the isolation chamber 7 and the treatment chamber 4. The rotating plates 9 are sleeved on the surface of the pusher 10. Each time the pusher 10 moves, it pushes the rotating plates 9 open and closes, so that the rotating plates 9 open and close intermittently. When the rotating plates 9 are closed, the exhaust gas is temporarily stored in the isolation chamber 7 and will not flow into the treatment chamber 4 immediately. This ensures that the exhaust gas temporarily stored in the isolation chamber 7 is fully stirred by the stirring blade 6. After the particulate matter is evenly distributed, the rotating plates 9 open to allow the exhaust gas to enter the treatment chamber 4 for filtration, ensuring that the particulate matter in the exhaust gas entering the treatment chamber 4 is evenly distributed.
[0022] A first spring is provided between the push bar 10 and the body 1. The elastic force of the first spring causes the push bar 10 to return to its original position. A first torsion spring is provided between the rotating plate 9 and the body 1. The elastic force of the first torsion spring helps the rotating plate 9 return to its original position.
[0023] In this embodiment, the machine body 1 pre-treats the waste gas generated during the production of synthetic fragrances, absorbs the tiny particles in the waste gas, and introduces the waste gas into the machine body 1 through the air inlet pipe 2. The particles in the waste gas are filtered by multiple sets of filter membranes 8 in the treatment chamber 4. The treated gas is discharged through the air outlet pipe 3 for further processing.
[0024] The motor 5 is started, and the intake pipe 2 begins to deliver exhaust gas into the machine body 1. When the output end of the motor 5 rotates, it drives the agitator 6 to rotate. The agitator 6 agitates the exhaust gas reaching the isolation chamber 7, making the particulate matter in the exhaust gas evenly distributed. This prevents the filter membrane 8 from being partially blocked due to a large number of particles in some areas of the exhaust gas, resulting in uneven filtration. At the same time, the rotation of the agitator 6 drives the arc tooth block 12 to rotate. When the arc tooth block 12 rotates to the straight ruler block 11, it pushes the pusher 10 to move when it meshes with the straight ruler block 11. Each time the pusher 10 moves, it pushes open the rotating plate 9. Subsequently, as the arc-tooth block 12 continues to rotate until it moves away from the straightedge block 11, the pusher 10 resets, causing the rotating plate 9 to reset and close. This causes the rotating plate 9 to open and close intermittently. When the rotating plate 9 is closed, the exhaust gas is temporarily stored in the isolation chamber 7 and will not immediately flow into the treatment chamber 4. This ensures that the exhaust gas temporarily stored in the isolation chamber 7 is fully stirred by the stirring blade 6, and that the particulate matter is evenly distributed. After this, the rotating plate 9 opens to allow the exhaust gas to enter the treatment chamber 4 for filtration, ensuring that the particulate matter in the exhaust gas entering the treatment chamber 4 is evenly distributed and preventing excessive local accumulation of particles on the surface of the filter membrane 8, which could lead to blockage and uneven filtration. At the same time, during the rotation and opening process, the tilt angle of the rotating plate 9 continuously changes, guiding the exhaust gas in the isolation chamber 7 into the treatment chamber 4 from different directions, further preventing excessive local accumulation of particles in the treatment chamber 4.
[0025] Please see Figure 1 - Figure 13Based on the above embodiments, in another embodiment of the present invention, a plurality of arc heads 13 are installed on the surface of the stirring blade 6. When the stirring blade 6 rotates, it drives the arc heads 13 to rotate. A rocker arm 14 is sleeved on the inner wall of the machine body 1. When the arc heads 13 rotate, they frequently squeeze the rocker arm 14, pushing the rocker arm 14 to deflect. A pull rod 15 is slidably installed on the inner wall of the machine body 1. The pull rod 15 is hinged to the rocker arm 14. When the rocker arm 14 deflects, it pushes the pull rod 15 to move back and forth. A second spring is provided between the pull rod 15 and the machine body 1. A plurality of two sliding frames 18 are slidably installed inside each processing chamber 4. The sliding frame 18 has a terminal 17 installed inside. Each terminal 17 has two frames 16 hinged to its surface. The two frames 16 in the middle of each treatment chamber 4 are hinged to each other. The filter membrane 8 is installed on the surface of the frame 16. One of the outer frames 16 is sleeved on the surface of the pull rod 15. When the pull rod 15 moves, it pulls the frame 16, pushing each frame 16 to deflect in the treatment chamber 4. By frequently deflecting and changing the tilt angle, the exhaust gas flowing in from different directions guided by the rotating plate 9 is fully received, increasing the contact area with the exhaust gas and fully filtering the exhaust gas.
[0026] Connecting rods 19 are slidably mounted on both sides of the filter membrane 8 on the surface of the frame 16. When the frame 16 deflects, it drives the connecting rods 19 to rotate. A stop rod 20 is installed on the surface of the terminal 17 near the connecting rod 19. After the connecting rod 19 rotates, it contacts the stop rod 20 and moves under the pressure of the reaction force of the stop rod 20. A folding rod 21 is installed on the surface of the connecting rod 19. The moving connecting rod 19 drives the folding rod 21 to move. An inclined rail 23 is installed on the surface of the frame 16 near the connecting rod 19. A push plate 22 is sleeved in the inclined rail 23. An inclined surface is provided on the surface of the push plate 22 near the folding rod 21. When the folding rod 21 moves, it squeezes... The inclined surface of the push plate 22 pushes the push plate 22 to move. The bottom of the push plate 22 is slidably installed with a pressure plate 24. The push plate 22 drives the pressure plate 24 to move. At the same time, under the guidance of the inclined rail 23, the push plate 22 pushes the pressure plate 24 to tilt and move towards the filter membrane 8, and slightly drags the filter membrane 8 outward from both sides to extend the filter membrane 8. This avoids the filter membrane 8 from bulging and squeezing the filter holes due to gas fluctuations during the deflection of the frame 16, which would prevent it from filtering normally. The surface of the pressure plate 24 is provided with several slots 25. The slots 25 on the surface of the pressure plate 24 will not block the contact between the exhaust gas and the filter membrane 8.
[0027] A third spring is provided between the connecting rod 19 and the frame 16. The elastic force of the third spring causes the connecting rod 19 to return to its original position. A buffer spring is provided between the pressure plate 24 and the push plate 22. The pressure plate 24 and the buffer spring buffer the dragging force applied by the push plate 22, thus avoiding excessive tearing of the filter membrane 8.
[0028] In this embodiment, during operation: the rotating blade 6 drives the arc head 13 to rotate. The rotating arc head 13 frequently squeezes the rocker arm 14, pushing it to deflect. The deflection of the rocker arm 14 pushes the pull rod 15 to move reciprocally. The movement of the pull rod 15 pulls the frame 16, causing each frame 16 to deflect within the treatment chamber 4. By frequently deflecting and changing the tilt angle, the exhaust gas flowing in from different directions guided by the rotating plate 9 is fully received, increasing the contact area with the exhaust gas and ensuring thorough filtration. When the frame 16 deflects, it drives the connecting rod 19 to rotate. After rotating, the connecting rod 19 contacts the abutment rod 20. The abutment rod 20 then... When pressed down, the moving connecting rod 19 drives the bending rod 21 to move. When the bending rod 21 moves, it presses the inclined surface of the push plate 22, pushing the push plate 22 to move. The push plate 22 drives the pressure plate 24 to move. At the same time, under the guidance of the inclined rail 23, the push plate 22 pushes the pressure plate 24 to tilt and move towards the filter membrane 8 until the pressure plate 24 contacts the filter membrane 8 and slightly drags the filter membrane 8 from both sides outward, extending the filter membrane 8. This avoids the filter membrane 8 from bulging and squeezing the filter holes due to gas fluctuations during the deflection of the frame 16, which would prevent it from filtering normally. In addition, the pressure plate 24 has a groove 25 on its surface, which will not block the contact between the exhaust gas and the filter membrane 8.
[0029] Please see Figure 1 - Figure 13 Based on the above embodiments, in another embodiment of the present invention, a push rod 29 is installed on the surface of the push bar 10. The push bar 10 drives the rotating plate 9 to close while driving the push rod 29 to move. A pressure bar 28 is slidably installed on the inner wall of the machine body 1 near the push rod 29. An inclined surface is provided on the surface of the pressure bar 28 near the push rod 29. Several baffles 27 are rotatably installed at the outlet. The push rod 29 presses the inclined surface of the pressure bar 28 to make the pressure bar 28 move downward, push the baffles 27 open, and open the outlet. A second torsion spring is provided between the baffles 27 and the machine body 1. The elastic force of the second torsion spring makes the baffles 27 return to their original position.
[0030] A sliding rod 30 is slidably installed inside the collection box 26. A fourth spring is provided between the sliding rod 30 and the collection box 26. Each time the door 27 rotates to close, it releases the pressure on the sliding rod 30. The sliding rod 30 is lifted by the elastic force of the fourth spring. A rotating rod 31 is rotatably installed on the inner wall of the collection box 26. When the sliding rod 30 is lifted, it drives the rotating rod 31 to rotate. One end of the rotating rod 31 is hinged to the bottom of the pressure strip 28. A fixed frame 32 is slidably installed inside the collection box 26. The rotation of the rotating rod 31 compresses the fixed frame 32, causing the fixed frame 32 to move downward. A fifth spring is provided between the fixed frame 32 and the collection box 26. The elastic force of the fifth spring causes the fixed frame 32 to return to its original position. Several inclined plates 33 are rotatably installed on the surface of the fixed frame 32. After the fixed frame 32 moves, it drives the inclined plates 33 to move towards the particles accumulated at the bottom of the collection box 26, compressing and compacting the particle pile, reducing the space occupied by the particles inside the collection box 26, and making the particle pile compact, thus preventing the particles from flowing back.
[0031] In this embodiment, when the frame 16 is deflected by the dragging of the pressure plate 24, the additional stress on the filter membrane 8 does not cause the surface to bulge, but instead causes the surface of the filter membrane 8 to vibrate, shaking off the accumulated particles and keeping the filter pores unobstructed, which is conducive to long-term stable operation. The shaken-off particles fall and enter the collection box 26 from the outlet for collection. The baffle 27 at the outlet opens and closes intermittently. As the push bar 10 drives the rotating plate 9 to close, the filter membrane 8 in the treatment chamber 4 is in an idle state. At the same time as the push bar 10 drives the rotating plate 9 to close, it drives the push rod 29 to move, squeezing the inclined surface of the pressure bar 28 and causing the pressure bar 28 to move downward, pushing the baffle 27 open, opening the outlet, and allowing the particles to enter the collection box 26. When the rotating plate 9 opens and begins to introduce exhaust gas into the treatment chamber 4, the push bar 10 resets, releasing the pressure on the pressure bar 28. The pressure bar 28 resets, and the baffle 27 rotates to close the outlet, ensuring that the exhaust gas in the treatment chamber 4 will not enter the collection box 26 to avoid filtration during the exhaust gas filtration stage, and also preventing the particles in the collection box 26 from flowing back.
[0032] Each time the gate 27 rotates to close, it releases the pressure on the sliding rod 30, causing the sliding rod 30 to rise and drive the rotating rod 31 to rotate and press the fixed frame 32 downward. After the fixed frame 32 moves, it drives the inclined plate 33 to move towards the particles accumulated at the bottom of the collection box 26. When the inclined plate 33 contacts the particle pile, it is squeezed and rotated by the reaction force of the particle pile, changing to a flat state. As the fixed frame 32 continues to move, it pushes the flat inclined plate 33 to squeeze and compact the particle pile, reducing the space occupied by the particles in the collection box 26 and compacting the particle pile to prevent the particles from flowing back. When the gate 27 opens again, the fixed frame 32 drives the inclined plate 33 to rise and reset. The inclined plate 33 hangs down and tilts again under gravity, leaving a gap so as not to block the particles from entering the collection box 26.
[0033] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0034] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Claims
1. An organic waste gas treatment device for the production process of synthetic fragrances, characterized in that, include: The machine body (1) and the air inlet pipe (2) are provided on the left side of the machine body (1) and the air outlet pipe (3) is provided on the right side of the machine body (1). The machine body (1) is provided with a processing chamber (4) and an isolation chamber (7). The machine body (1) is provided with several filter membranes (8). The surface of the machine body (1) is equipped with a motor (5). The isolation chamber (7) is rotatably installed with a stirring blade (6). The shaft of the stirring blade (6) and the output end of the motor (5) are both fixedly equipped with gears. The gear on the stirring blade (6) meshes with the gear on the output end of the motor (5). The bottom of the machine body (1) is provided with several collection boxes (26). The collection box (26) and the filter membrane (8) are provided with an outlet.
2. The organic waste gas treatment device in the synthetic fragrance production process according to claim 1, characterized in that, The surface of the stirring blade (6) is equipped with several arc tooth blocks (12), and a pusher (10) is slidably installed on one side of the machine body (1). Several straight ruler blocks (11) are installed on the surface of the pusher (10). Several rotating plates (9) are rotatably installed between the isolation chamber (7) and the processing chamber (4). The rotating plates (9) are sleeved on the surface of the pusher (10).
3. The organic waste gas treatment device in the synthetic fragrance production process according to claim 2, characterized in that, A first spring is provided between the push bar (10) and the body (1), and a first torsion spring is provided between the rotating plate (9) and the body (1).
4. The organic waste gas treatment device in the synthetic fragrance production process according to claim 3, characterized in that, The surface of the stirring blade (6) is equipped with several arc heads (13), the inner wall of the machine body (1) is fitted with a rocker arm (14), the inner wall of the machine body (1) is slidably fitted with a pull rod (15), the pull rod (15) is hinged to the rocker arm (14), a second spring is provided between the pull rod (15) and the machine body (1), several two sliding frames (18) are slidably fitted inside each of the processing chambers (4), a terminal (17) is installed inside the sliding frame (18), two frames (16) are hinged to the surface of each terminal (17), the two frames (16) in the middle of each processing chamber (4) are hinged to each other, the filter membrane (8) is installed on the surface of the frame (16), and one of the outer frames (16) is fitted onto the surface of the pull rod (15).
5. The organic waste gas treatment device in the synthetic fragrance production process according to claim 4, characterized in that, The frame (16) has connecting rods (19) slidably mounted on both sides of the filter membrane (8). The terminal (17) has a stop rod (20) mounted on the surface near the connecting rod (19). The connecting rod (19) has a folding rod (21) mounted on the surface. The frame (16) has a sloping rail (23) mounted on the surface near the connecting rod (19). A push plate (22) is sleeved in the sloping rail (23). The push plate (22) has an inclined surface near the folding rod (21). A pressure plate (24) is slidably mounted on the bottom of the push plate (22). The pressure plate (24) has several slots (25) on its surface.
6. The organic waste gas treatment device in the synthetic fragrance production process according to claim 5, characterized in that, A third spring is provided between the connecting rod (19) and the frame (16), and a buffer spring is provided between the pressure plate (24) and the push plate (22).
7. The organic waste gas treatment device in the synthetic fragrance production process according to claim 6, characterized in that, A push rod (29) is installed on the surface of the push bar (10). A pressure bar (28) is slidably installed on the inner wall of the machine body (1) near the push rod (29). An inclined surface is provided on the surface of the pressure bar (28) near the push rod (29). Several baffles (27) are rotatably installed at the outlet. A second torsion spring is provided between the baffles (27) and the machine body (1).
8. The organic waste gas treatment device in the synthetic fragrance production process according to claim 7, characterized in that, A sliding rod (30) is slidably installed inside the collection box (26). A fourth spring is provided between the sliding rod (30) and the collection box (26). A rotating rod (31) is rotatably installed on the inner wall of the collection box (26). One end of the rotating rod (31) is hinged to the bottom of the pressure strip (28). A fixed frame (32) is slidably installed inside the collection box (26). A fifth spring is provided between the fixed frame (32) and the collection box (26). Several inclined plates (33) are rotatably installed on the surface of the fixed frame (32).
Citation Information
Patent Citations
A dry chemical filter for air purification
CN119258670B