Zeolite rotating wheel adsorption concentration heat storage combustion equipment
By setting a side opening and a push-pull device on the zeolite rotor adsorption concentration regenerative combustion equipment, combined with vibration and air blowing devices, the filter screen is automatically cleaned, solving the problem of low efficiency in traditional cleaning methods and improving cleaning efficiency.
Patent Information
- Application Number
- CN202520007080.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-03
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2035-01-03
AI Technical Summary
Existing zeolite rotor adsorption concentration regenerative combustion equipment is time-consuming and labor-intensive to clean the primary, medium and high efficiency filters, and traditional cleaning methods are inefficient.
The treatment box has a side opening and is equipped with a side door, mounting device and push-pull device, which allows the filter screen to automatically extend to the outside of the side opening. Combined with the vibration device and air blowing device, it can achieve automated cleaning.
It improves the cleaning efficiency of the filter screen, reduces manual operation time, and enhances the cleaning effect.
Smart Images

Figure CN223649326U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of waste gas treatment technology, and more specifically, to a zeolite rotor adsorption concentration regenerative combustion device. Background Technology
[0002] In the treatment of organic waste gas, a very effective method is the use of zeolite rotor adsorption concentration catalytic combustion technology. The gas can be effectively adsorbed into the zeolite, achieving the purpose of removing waste gas. This type of combustion equipment is a popular and effective environmental protection device in the market, and it is a widely recommended purification method with extensive application.
[0003] In existing technology, zeolite rotor adsorption concentration regenerative combustion equipment includes a treatment box, a primary filter, a medium-efficiency filter, a high-efficiency filter, a zeolite rotor device, and a regenerative combustion device. After the organic waste gas enters the treatment box, it needs to be filtered by the primary filter, the medium-efficiency filter, and the high-efficiency filter. Therefore, a lot of dust will adhere to the primary filter, the medium-efficiency filter, and the high-efficiency filter, affecting the pre-filtration effect of the filter. The traditional cleaning method is to open the treatment box door to enter it, and then take out the primary filter, the medium-efficiency filter, and the high-efficiency filter for cleaning. This method is time-consuming and labor-intensive, so it is necessary to improve it. Utility Model Content
[0004] The purpose of this invention is to solve the problems mentioned in the background art, and to propose a zeolite rotor adsorption concentration regenerative combustion device.
[0005] The technical solution adopted by this utility model to solve its technical problem is:
[0006] A zeolite rotor adsorption concentration regenerative combustion device includes a treatment box with an inlet pipe and an exhaust pipe. The treatment box contains a primary filter, a secondary filter, a high-efficiency filter, a zeolite rotor device, and a regenerative combustion device. The treatment box has side openings corresponding to the positions of the primary, secondary, and high-efficiency filters. Side openings are covered with side doors. Inside the side doors are two sets of mounting devices for connecting the primary, secondary, and high-efficiency filters. The side doors are also connected to a push-pull device located outside the treatment box, allowing the primary, secondary, and high-efficiency filters to extend beyond the side openings.
[0007] Furthermore, the above solution includes a chute, a slide plate, and a mounting plate; the chute is fixedly installed inside the treatment box, and a slide plate is slidably installed inside the chute. The length of the slide plate matches the width of the treatment box, and its outer end is fixedly connected to the side door. The slide plate is provided with a mounting plate for connecting to the primary filter, the medium-efficiency filter, and the high-efficiency filter.
[0008] Furthermore, the above solution includes a fixed base, a telescopic cylinder, a sliding rod, and a fixed block; the fixed base is located on the top of the processing box and a telescopic cylinder is installed on it; a sliding rod is provided on one side of the telescopic cylinder, and the sliding rod is horizontally slidably installed on the fixed base; the fixed base and the telescopic cylinder are connected together to a fixed block that is connected to the side door.
[0009] Furthermore, in the above scheme, the telescopic cylinder is a hydraulic cylinder, a pneumatic cylinder, or an electric cylinder.
[0010] Furthermore, the above solution includes two sets of vibration devices installed on the installation device. One set of vibration devices is positioned between the primary filter and the secondary filter, while the other set is positioned between the secondary filter and the high-efficiency filter. The vibration devices beat and shake the primary, secondary, and high-efficiency filters, causing loosely attached particles to fall off.
[0011] Furthermore, the above-mentioned solution includes a lead screw, a guide rod, a drive motor, a slider, a vibrator, and a vibrating plate. The lead screw and the guide rod are vertically mounted on the mounting plate, and one end of the lead screw is connected to the drive motor so that the drive motor can rotate the lead screw. A slider is fitted on both the lead screw and the guide rod, and a vibrating plate is connected to each side of the slider through a vibrator so that the vibrator can drive the vibrating plate to achieve oscillation.
[0012] Furthermore, the above solution includes an external air blowing device for the processing box, which, in conjunction with the vibration device, uses compressed air to blow away tightly attached particles adhering to the primary, secondary, and high-efficiency filters during operation.
[0013] Furthermore, the above solution includes an air pump, an air pipe, a purge gun, and a bracket; the air pump is located outside the processing box and is connected to the purge gun through the air pipe, and the purge gun is mounted on the bracket set on the processing box.
[0014] Compared with the prior art, the beneficial effects of this utility model are:
[0015] This invention features an opening on one side of the processing box, along with a side door, mounting device, and push-pull mechanism. This allows the primary, secondary, and high-efficiency filters to automatically extend beyond the side opening under the action of the push-pull mechanism, facilitating cleaning operations and improving cleaning efficiency. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the internal structure of the present invention;
[0017] Figure 2 This is a schematic diagram of the external structure of this utility model;
[0018] Figure 3 This is a schematic diagram showing the installation location of the vibration device;
[0019] Figure 4 This is a schematic diagram of the vibration device.
[0020] Figure 5 This is a schematic diagram showing the installation location of the air blowing device;
[0021] The components include: 1. Processing box; 11. Inlet pipe; 12. Exhaust pipe; 13. Side opening; 2. Primary filter; 21. Medium-efficiency filter; 22. High-efficiency filter; 3. Zeolite rotor device; 4. Regenerative combustion device; 5. Side door; 6. Installation device; 61. Slide groove; 62. Slide plate; 63. Mounting plate; 7. Push-pull device; 71. Fixed seat; 72. Telescopic cylinder; 73. Slide rod; 74. Fixed block; 8. Vibration device; 81. Lead screw; 82. Guide rod; 83. Drive motor; 84. Slider; 85. Vibrator; 86. Vibrating plate; 9. Air blowing device; 91. Air pump; 92. Air blowing pipe; 93. Blowing gun; 94. Support. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present utility model, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model. The present utility model will be further described with reference to the accompanying drawings and embodiments:
[0023] See attached document Figure 1 and attached Figure 2 As shown, a zeolite rotor adsorption concentration regenerative combustion device includes a processing tank 1. The processing tank 1 is provided with an air inlet pipe 11 and an exhaust pipe 12. The processing tank 1 is provided with a primary filter 2, a medium-efficiency filter 21, a high-efficiency filter 22, a zeolite rotor device 3, and a regenerative combustion device 4. The above structure is prior art and will not be described in detail in this application. In addition, the processing tank 1 is provided with a screen side opening 13 corresponding to the positions of the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter. The side opening 13 is covered with a side door 5. The inside of the side door 5 is provided with two sets of mounting devices 6 for connecting the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22. The side door 5 is also connected to a push-pull device 7 provided outside the processing tank 1, so that the push-pull device 7 can be operated to extend the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22 to the outside of the side opening 13.
[0024] In the initial state of this invention, the push-pull device 7 is not working, and the side door 5 blocks and seals the side opening 13. At this time, the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22 are inside the treatment box 1, performing normal filtration of organic waste gas. The zeolite rotor device 3 and the regenerative combustion device 4 also perform normal treatment of organic waste gas. When it is necessary to clean the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22, the push-pull device 7 is activated, causing the door to move away from the side opening 13, allowing the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22 to extend outside the side opening 13. In this state, the zeolite rotor device 3 and the regenerative combustion device 4 are not working. Since the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22 are outside the treatment box 1, it is convenient for staff to clean the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22.
[0025] For the above scheme, please refer to the appendix. Figure 1 As shown, the installation device 6 includes a slide 61, a slide plate 62, and a mounting plate 63. The slide 61 is fixedly installed inside the treatment box 1, and the slide plate 62 is slidably installed inside the slide 61. The length of the slide plate 62 matches the width of the treatment box 1, and its outer end is fixedly connected to the side door 5 so that the slide plate 62 moves with the movement of the side door 5. The slide plate 62 is provided with a mounting plate 63 for connecting with the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22.
[0026] For the above scheme, please refer to the appendix. Figure 1 and attached Figure 2 As shown, the push-pull device 7 includes a fixed base 71, a telescopic cylinder 72, a slide rod 73, and a fixing block 74. The fixed base 71 is located on the top of the processing box 1 and the telescopic cylinder 72 is mounted on it. The telescopic cylinder 72 is a hydraulic cylinder, a pneumatic cylinder, or an electric cylinder. The slide rod 73 is located on one side of the telescopic cylinder 72. The slide rod 73 is horizontally slidably mounted on the fixed base 71. The fixed base 71 and the telescopic cylinder 72 are connected together to the fixing block 74, which is connected to the side door 5. This allows the telescopic cylinder 72 to extend and move the side door 5 forward away from the side opening 13, or the telescopic cylinder 72 to retract and block the side opening 13.
[0027] In the above solution, to automate the cleaning of the primary filter 2, the medium-efficiency filter 21, and the high-efficiency filter 22, the following steps are taken, as per the appendix: Figure 3 As shown, the installation device 6 is equipped with two sets of vibration devices 8, one set of vibration devices 8 is located between the primary filter 2 and the secondary filter 21, and the other set of vibration devices 8 is located between the secondary filter 21 and the high-efficiency filter 22. The vibration devices 8 beat and shake the primary filter 2, the secondary filter 21 and the high-efficiency filter 22 to make loosely attached particles fall off.
[0028] For details, please refer to the appendix. Figure 4 As shown, the vibration device 8 includes a lead screw 81, a guide rod 82, a drive motor 83, a slider 84, a vibrator 85, and a vibrating plate 86. The lead screw 81 and the guide rod 82 are vertically mounted on the mounting plate 63, and one end of the lead screw 81 is connected to the drive motor 83 so that the drive motor 83 operates to rotate the lead screw 81. The slider 84 is fitted on both the lead screw 81 and the guide rod 82. The vibrating plate 86 is connected to each side of the slider 84 through the vibrator 85 so that the vibrator 85 operates to drive the vibrating plate 86 to achieve oscillation. During implementation, the drive motor 83 and the vibrator 85 work together to make the vibrating plate 86 oscillate at multiple points along the height direction, thereby improving the cleaning effect.
[0029] To further enhance the cleaning effect of the above solutions, please refer to the appendix. Figure 5 As shown, the treatment box 1 is equipped with an air blowing device 9, which works in conjunction with the vibration device 8 to blow out tightly attached particles adhering to the primary filter 2, the medium-efficiency filter 21 and the high-efficiency filter 22 by using compressed air during operation.
[0030] For details, please refer to the appendix. Figure 5 As shown, the air blowing device 9 includes an air pump 91, an air blowing pipe 92, a blow gun 93, and a bracket 94. The air pump 91 is located outside the treatment box 1 and is connected to the blow gun 93 through the air blowing pipe 92. The blow gun 93 is mounted on the bracket 94 located on the treatment box 1. During the process, the primary filter 2, the medium filter 21, and the high-efficiency filter 22 extend to the outside of the side opening 13. Then, after the staff puts on appropriate personal protective equipment (such as gloves, goggles, etc.), while the vibration device 8 is operating, the air pump 91 is started, and the blow gun 93 is held in hand to complete the blowing operation of the primary filter 2, the medium filter 21, and the high-efficiency filter 22.
[0031] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The descriptions of the above embodiments and specifications are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of protection claimed by this utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A zeolite rotor adsorption concentration regenerative combustion device, comprising a processing tank (1), an inlet pipe (11) and an exhaust pipe (12) provided on the processing tank (1), and a primary filter (2), a medium-efficiency filter (21), a high-efficiency filter (22), a zeolite rotor device (3), and a regenerative combustion device (4) provided inside the processing tank (1); characterized in that: The processing box (1) is provided with a screen side opening (13) corresponding to the positions of the primary filter (2), the medium-efficiency filter (21) and the high-efficiency filter. The side opening (13) is covered with a side door (5). The inside of the side door (5) is provided with two sets of mounting devices (6) for connecting the primary filter (2), the medium-efficiency filter (21) and the high-efficiency filter (22). The side door (5) is also connected to a push-pull device (7) located outside the processing box (1) so that the push-pull device (7) can be operated to extend the primary filter (2), the medium-efficiency filter (21) and the high-efficiency filter (22) to the outside of the side opening (13).
2. The zeolite rotor adsorption concentration regenerative combustion device according to claim 1, characterized in that: The mounting device (6) includes a slide (61), a slide plate (62), and a mounting plate (63); The chute (61) is fixedly installed inside the treatment box (1), and a slide plate (62) is slidably installed inside the chute (61). The length of the slide plate (62) matches the width of the treatment box (1), and its outer end is fixedly connected to the side door (5). The slide plate (62) is provided with an installation plate (63) for connecting with the primary filter (2), the medium-efficiency filter (21), and the high-efficiency filter (22).
3. The zeolite rotor adsorption concentration regenerative combustion device according to claim 2, characterized in that: The push-pull device (7) includes a fixed base (71), a telescopic cylinder (72), a slide rod (73), and a fixing block (74); A fixed seat (71) is set on the top of the processing box (1) and a telescopic cylinder (72) is set on it. A slide rod (73) is provided on one side of the telescopic cylinder (72). The slide rod (73) is horizontally slidably set on the fixed seat (71). The fixed seat (71) and the telescopic cylinder (72) are connected together to a fixed block (74) connected to the side door (5).
4. The zeolite rotor adsorption concentration regenerative combustion device according to claim 3, characterized in that: The telescopic cylinder (72) is a hydraulic cylinder, a pneumatic cylinder, or an electric cylinder.
5. The zeolite rotor adsorption concentration regenerative combustion device according to claim 4, characterized in that: The installation device (6) is equipped with two sets of vibration devices (8), one set of vibration devices (8) is located between the primary filter (2) and the medium filter (21), and the other set of vibration devices (8) is located between the medium filter (21) and the high efficiency filter (22).
6. The zeolite rotor adsorption concentration regenerative combustion device according to claim 5, characterized in that: The vibration device (8) includes a lead screw (81), a guide rod (82), a drive motor (83), a slider (84), a vibrator (85), and a vibrating plate (86); The lead screw (81) and guide rod (82) are vertically mounted on the mounting plate (63), and one end of the lead screw (81) is connected to the drive motor (83). The lead screw (81) and guide rod (82) are fitted with a slider (84), and each side of the slider (84) is connected to a vibrating plate (86) through a vibrator (85).
7. The zeolite rotor adsorption concentration regenerative combustion device according to claim 6, characterized in that: The processing box (1) is equipped with an air blowing device (9) on its exterior.
8. The zeolite rotor adsorption concentration regenerative combustion device according to claim 7, characterized in that: The air blowing device (9) includes an air pump (91), an air blowing pipe (92), a blow gun (93), and a bracket (94); An air pump (91) is located outside the treatment box (1) and is connected to a purge gun (93) via an air blowing pipe (92). The purge gun (93) is mounted on a bracket (94) located on the treatment box (1).