Organic waste gas treatment equipment

By installing drive components and collection boxes within the organic waste gas treatment equipment, the problem of equipment downtime caused by particulate matter adhering to the filter screen is solved, achieving automated cleaning and continuous waste gas treatment.

CN223995684UActive Publication Date: 2026-03-17CHANGZHOU HANBANG ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

When the amount of particulate matter adhering to the filter screen of existing organic waste gas treatment equipment gradually increases, the equipment needs to be shut down for cleaning, which leads to interruption of work progress and increased workload for operators.

Method used

A drive assembly is installed inside the device to vibrate the filter components to remove attached particles. At the same time, a collection box is installed inside the housing to collect fallen particles. The automatic cleaning of the filter screen is achieved through the cooperation of a power mechanism and an electromagnet.

Benefits of technology

It enables automatic cleaning of particulate matter on the filter screen without shutting down the equipment, ensuring the continuity of waste gas treatment operations and ease of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to organic waste gas treatment equipment which comprises an equipment body, the equipment body comprises a shell, a gas inlet pipe is arranged at the lower half part of one side of the shell, an exhaust pipe is arranged at the top of the shell, a filtering part is arranged in the shell, the filtering part is located between the gas inlet pipe and the exhaust pipe, and the filtering part is arranged in the shell. A driving assembly is arranged in the shell, and the driving assembly enables the filtering part to vibrate, so that particles attached to the filtering part fall off; a first containing groove is formed in the lower half portion of one side of the shell, and a collecting box is placed in the first containing groove and located under the filtering part. The utility model relates to the technical field of waste gas treatment equipment. The waste gas treatment device has the effect of ensuring the normal operation of waste gas treatment.
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Description

Technical Field

[0001] This utility model relates to the technical field of waste gas treatment equipment, and in particular to an organic waste gas treatment equipment. Background Technology

[0002] Waste gas treatment equipment adsorbs particulate matter from harmful gases through its internal filter.

[0003] As the exhaust gas treatment time gradually increases, the amount of particulate matter adhering to the filter screen gradually increases, resulting in a significant reduction in the filter's filtering effect. At this point, it is necessary to clean the filter screen in a timely manner.

[0004] Under the current circumstances, the equipment needs to be shut down during cleaning operations, and then the filter screen needs to be removed for cleaning, which not only interrupts the work progress, but also increases the workload of the operators. Utility Model Content

[0005] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide an organic waste gas treatment device that can ensure the normal operation of waste gas treatment.

[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution:

[0007] An organic waste gas treatment device includes a device body, the device body including a shell, an air inlet pipe provided on the lower half of one side of the shell, an exhaust pipe provided on the top of the shell, a filter section provided inside the shell, the filter section being located between the air inlet pipe and the exhaust pipe, and a drive assembly provided inside the shell, the drive assembly causing the filter section to vibrate, thereby causing particles attached to the filter section to fall off.

[0008] A first placement groove is provided on the lower half of one side of the housing, and a collection box is placed in the first placement groove. The collection box is located directly below the filter section.

[0009] In a preferred embodiment, the present invention can be further configured as follows: the driving assembly includes two first fixing plates, the two first fixing plates are respectively disposed on both sides of the inner wall of the housing, and a plurality of guide rods are uniformly disposed on the top of each first fixing plate, and a connecting block is slidably sleeved on the plurality of guide rods on the same first fixing plate.

[0010] The filter section is fixedly disposed between the two connecting blocks;

[0011] Each guide rod is fitted with a spring, and the two ends of the spring are respectively fixed to the top of the first fixing plate and the bottom of the connecting block;

[0012] The drive assembly also includes a power mechanism.

[0013] In a preferred embodiment, the present invention can be further configured such that: the power mechanism includes two protective shells, the two protective shells are respectively fixedly disposed on both sides of the inner wall of the shell, and the protective shells are located directly above the corresponding connecting block;

[0014] The protective shell has an opening at the bottom;

[0015] Each of the connecting blocks is fixedly provided with a connecting plate on its top, and the connecting plate portion is located inside the corresponding protective shell;

[0016] Each of the protective shells is provided with a telescopic device at the top of its inner wall, and an electromagnet is provided at the telescopic end of the telescopic device. An iron plate is provided on the top plate of the connecting plate.

[0017] When the spring is in its natural state, the iron plate is not in contact with the corresponding electromagnet.

[0018] In a preferred embodiment, the present invention can be further configured such that: the filter section includes a frame, and a filter screen is disposed within the frame;

[0019] The frame has a second placement slot on both sides, and an insert is fixedly provided on one side of each of the two connecting blocks. The insert is located in the corresponding second placement slot, and the shape of the insert is adapted to the shape of the corresponding second placement slot.

[0020] The insert is connected to the frame by bolts.

[0021] In a preferred embodiment, the present invention can be further configured such that: a second fixing plate is provided in the lower half of the interior of the housing, the second fixing plate is flared, and the through hole in the second fixing plate faces the collection box;

[0022] The second fixing plate is located between the collection box and the air inlet pipe.

[0023] In a preferred embodiment, the present invention can be further configured such that the length of the connecting plate is 0.7-0.8 times the length of the connecting block.

[0024] In summary, this utility model has at least one of the following beneficial technical effects:

[0025] 1. By installing a drive component inside the housing, the drive component causes the filter screen to shake without shutting down the equipment, thereby removing particulate matter from the filter screen and ensuring the normal operation of the waste gas treatment.

[0026] 2. By providing second placement slots on both sides of the frame, and integrally providing an insert on one side of the connecting block, the insert is located in the corresponding second placement slot. The insert is connected to the frame by bolts, so that the frame and the two connecting blocks move synchronously and the operator can easily start disassembling the filter section. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of a half-section structure in this embodiment;

[0028] Figure 2 yes Figure 1 Enlarged structural diagram at point A in the middle.

[0029] In the diagram, 1. Equipment body; 11. Housing; 12. Inlet pipe; 13. Exhaust pipe; 2. Drive assembly; 3. First placement slot; 31. Collection box; 21. First fixing plate; 22. Guide rod; 23. Connecting block; 24. Spring; 4. Power mechanism; 41. Protective shell; 42. Connecting plate; 43. Telescopic device; 44. Electromagnet; 45. Iron plate; 5. Frame; 51. Filter screen; 52. Second placement slot; 53. Insert; 6. Second fixing plate. Detailed Implementation

[0030] The present invention will be further described in detail below with reference to the accompanying drawings.

[0031] Example:

[0032] Reference Figures 1-2 As shown, the present invention discloses an organic waste gas treatment device, including a device body 1, which includes a housing 11. An air inlet pipe 12 is provided on the lower half of one side of the housing 11. The housing 11 includes a cover plate, on which an exhaust pipe 13 is provided.

[0033] A filter section is provided inside the housing 11, located between the intake pipe 12 and the exhaust pipe 13. A drive assembly 2 is provided inside the housing 11, which causes the filter section to vibrate, thereby causing particles attached to the filter section to fall off.

[0034] A first placement groove 3 is provided on the lower half of one side of the housing 11, and a collection box 31 is placed in the first placement groove 3. The collection box 31 is located directly below the filter section. A second fixing plate 6 is provided in the lower half of the interior of the housing 11. The second fixing plate 6 is funnel-shaped, and the through hole in the second fixing plate 6 is directly facing the collection box 31. The second fixing plate 6 is located between the collection box 31 and the air inlet pipe 12.

[0035] The drive assembly 2 includes two first fixing plates 21, which are respectively disposed on both sides of the inner wall of the housing 11. Several guide rods 22 are evenly disposed on the top of each first fixing plate 21, and the several guide rods 22 on the same first fixing plate 21 are slidably sleeved on the connecting block 23.

[0036] The filter section is fixedly installed between the two connecting blocks 23.

[0037] The filtration unit includes a frame 5, within which a filter screen 51 is disposed. Second placement slots 52 are provided on both sides of the frame 5. An insert 53 is fixedly disposed on one side of each of the two connecting blocks 23, the insert 53 being located within the corresponding second placement slot 52, and the shape of the insert 53 matching the shape of the corresponding second placement slot 52. The insert 53 is connected to the frame 5 by bolts.

[0038] Each guide rod 22 is fitted with a spring 24, and the two ends of the spring 24 are fixed to the top of the corresponding first fixing plate 21 and the bottom of the corresponding connecting block 23, respectively.

[0039] The drive assembly 2 also includes a power mechanism 4. The power mechanism 4 includes two protective shells 41, which are fixedly disposed on both sides of the inner wall of the housing 11, and the protective shells 41 are located directly above the corresponding connecting blocks 23.

[0040] The protective shell 41 has an opening at the bottom. A connecting plate 42 is fixedly mounted on the top of each connecting block 23, with a portion of the connecting plate 42 located inside the corresponding protective shell 41. The length of the connecting plate 42 is 0.7-0.8 times the length of the connecting block 23. In this embodiment, the length of the connecting plate 42 is 0.7 times the length of the connecting block 23. This ensures that the connecting blocks remain horizontal when moved by the connecting plate.

[0041] Each protective shell 41 has a telescopic device 43 installed at the top of its inner wall. An electromagnet 44 is installed at the telescopic end of the telescopic device 43, and an iron plate 45 is installed on the top plate of the connecting plate 42. When the spring 24 is in its natural state, the iron plate 45 does not contact the corresponding electromagnet 44.

[0042] A PLC controller (not shown in the figure) is also installed outside the housing 11. The PLC controller is electrically connected to the electromagnet 44 and the telescopic device 43.

[0043] The implementation principle of the above embodiments is as follows:

[0044] After the housing 11 has been working for a period of time, the operator starts the two telescopic devices 43 through the PLC controller. The two telescopic devices 43 drive the corresponding electromagnets 44 to move in the direction of the corresponding connecting plate 42.

[0045] After the telescopic rod in the telescopic device 43 moves a certain distance, the telescopic device 43 stops moving and the electromagnet 44 comes into contact with the corresponding iron plate.

[0046] At this time, the PLC controller starts the electromagnet 44 through the program, and the electromagnet 44 starts to work, attracting the corresponding iron piece.

[0047] Next, the PLC controller restarts the telescopic device 43 through the program, and the telescopic device 43 drives the electromagnet 44 back to the initial position.

[0048] Electromagnet 44 drives connecting plate 42 to move upward, connecting plate 42 drives corresponding connecting block 23 to move, and the two connecting blocks 23 simultaneously drive the filter section to move upward.

[0049] The attractive force of electromagnet 44 is greater than the elastic restoring force generated by several springs 24.

[0050] Next, the PLC controller shuts off the electromagnet 44 through the program. Under the elastic restoring force of several springs 24, the two connecting blocks 23 begin to move toward the initial position. During the process of the connecting blocks 23 completely stopping, the connecting blocks 23 are in a state of up and down shaking, so that the particles on the filter screen 51 are separated from the filter screen 51.

[0051] It should also be noted that during the shaking of the connecting block 23, the connecting plate 42 never comes into contact with the electromagnet 44.

[0052] Several particles flow into the collection box 31 through the through holes on the second fixing plate 6.

[0053] The embodiments described herein are preferred embodiments of this utility model and are not intended to limit the scope of protection of this utility model. Therefore, all equivalent changes made to the structure, shape, and principle of this utility model should be included within the scope of protection of this utility model.

Claims

1. An organic waste gas treatment device comprising a device body (1), wherein the device body (1) comprises a shell (11), one side lower half of the shell (11) is provided with an air inlet pipe (12), a top of the shell (11) is provided with an air outlet pipe (13), and a filter part is arranged in the shell (11) and located between the air inlet pipe (12) and the air outlet pipe (13), characterized in that, The driving assembly (2) is arranged in the shell (11), and the driving assembly (2) causes the filter part to vibrate so that the particles attached to the filter part fall off; A first placing groove (3) is formed in the lower half of one side of the shell (11), and a collecting box (31) is arranged in the first placing groove (3); the collecting box (31) is located directly below the filter part; The driving assembly (2) comprises two first fixing plates (21), and the two first fixing plates (21) are arranged on the inner walls of the shell (11) on both sides; a plurality of guide rods (22) are uniformly arranged on the top of each first fixing plate (21); and a connecting block (23) is slidably arranged on the plurality of guide rods (22) on the same first fixing plate (21). The filter part is fixedly arranged between the two connecting blocks (23). A spring (24) is arranged on each guide rod (22), and the two ends of the spring (24) are fixed to the top of the corresponding first fixing plate (21) and the bottom of the corresponding connecting block (23) respectively. The driving assembly (2) further comprises a power mechanism (4). The power mechanism (4) comprises two protective shells (41), and the two protective shells (41) are fixedly arranged on the inner walls of the shell (11) on both sides; the protective shell (41) is located directly above the corresponding connecting block (23). The bottom of the protective shell (41) is open. A connecting plate (42) is fixedly arranged on the top of each connecting block (23), and the connecting plate (42) is partially arranged in the corresponding protective shell (41). A telescopic device (43) is arranged on the inner wall of each protective shell (41), an electromagnet (44) is arranged in the telescopic end of the telescopic device (43), and an iron plate (45) is arranged on the top plate of the connecting plate (42). When the spring (24) is in a natural state, the iron plate (45) does not contact the corresponding electromagnet (44).

2. An organic waste treatment apparatus according to claim 1, wherein: The filter part comprises a frame (5), and the frame (5) is provided with a filter screen (51); Second placing grooves (52) are formed on both sides of the frame (5), one side of each connecting block (23) is fixedly provided with an embedded block (53), the embedded block (53) is located in the corresponding second placing groove (52), and the shape of the embedded block (53) is matched with the shape of the corresponding second placing groove (52); The embedded block (53) and the frame (5) are connected through bolts.

3. An organic waste treatment apparatus according to claim 2, wherein: A second fixing plate (6) is arranged in the lower half of the shell (11), the second fixing plate (6) is in the shape of a horn, and the through hole in the second fixing plate (6) is directly opposite the collecting box (31); The second fixing plate (6) is located between the collecting box (31) and the air inlet pipe (12).

4. An organic waste treatment apparatus according to claim 3, wherein: The length of the connecting plate (42) is 0.7-0.8 times the length of the connecting block (23).