Zeolite adsorption and desorption integrated treatment equipment

By arranging a rotating component, a bearing component, a filling component and an adjusting component on the zeolite rotor, the problem of uneven particle distribution caused by centrifugal force during the rotation of the zeolite rotor is solved, and stable operation and efficient adsorption of the equipment are achieved.

CN120754663AInactive Publication Date: 2025-10-10QINGDAO ZHONGZHOU LANKAI ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202510826051.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-10-10
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the rotation of the zeolite wheel, the centrifugal force of the granular zeolite material causes uneven distribution of particles in the channel frame, resulting in vibration, noise and bearing wear, affecting the stability of the equipment and adsorption efficiency.

Method used

The rotation component, zeolite carrying component, filling component and adjustment component are matched to solve the centrifugal force imbalance problem through extrusion filling and adaptive adjustment, ensuring the stable rotation and adsorption efficiency of the zeolite rotor.

Benefits of technology

It effectively avoids the exhaust gas from being discharged from the gap, ensures the overall adsorption efficiency, prevents the imbalance of centrifugal force, and ensures the stable operation of the equipment.

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Abstract

The invention discloses zeolite adsorption and desorption integrated treatment equipment, and relates to the technical field of environmental protection engineering construction, the zeolite adsorption and desorption integrated treatment equipment comprises a front box body and a rear box body, and a control box is arranged between the front box body and the rear box body. In the process of treating waste gas by using the zeolite adsorption and desorption integrated treatment equipment, generated gaps can be adaptively filled through mutual cooperation of the rotating assembly, the zeolite bearing assembly, the filling assembly, the adjusting assembly, the treatment assembly and other parts; part of waste gas is prevented from being directly discharged outwards from the enlarged gap through extrusion filling, the overall adsorption efficiency is guaranteed, the centrifugal difference existing during rotation of the two opposite fan-shaped channel frames can be adaptively reduced according to the adsorption weight deviation, centrifugal force unbalance is avoided, and stable use of zeolite adsorption and desorption integrated treatment equipment is guaranteed.
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Description

Technical Field

[0001] The present invention relates to the technical field of environmental protection engineering construction, in particular to zeolite adsorption and desorption integrated processing equipment. Background Art

[0002] Zeolite adsorption and desorption integrated treatment equipment is the core equipment used for the treatment of volatile organic compounds in environmental protection projects. Through the selective adsorption capacity of zeolite materials, it removes VOCs (such as benzene, toluene, xylene, ethanol, etc.) in exhaust gas to achieve standard emissions.

[0003] When using the zeolite adsorption and desorption integrated treatment equipment, the granular zeolite material needs to be pre-filled in the interior of each group of channel frames of the zeolite rotor. After filling, the exhaust gas is transported and the zeolite adsorbs VOCs in the exhaust gas to achieve the exhaust gas treatment effect. During the treatment process, the zeolite rotor is rotated. During the rotation, high-temperature gas is introduced and the temperature increase is used to weaken the adsorption force between the zeolite and the VOCs molecules (such as van der Waals force and electrostatic attraction), so that the pollutants are analyzed (desorbed) from the zeolite pores. The desorbed zeolite is cooled by passing cooling air to reduce its temperature to the adsorption working temperature, thereby realizing the zeolite adsorption and desorption integrated treatment operation.

[0004] During the rotation of the zeolite wheel, the zeolite particles in the channel frame move toward the outside of the channel frame (away from the center of rotation) under the action of centrifugal force, forming radial extrusion. The centrifugal force will push the particles to accumulate outward, resulting in a decrease in particles in the inner area and an increase in the gap. Due to the increase in the gap, the transported exhaust gas preferentially passes through the gap area with low resistance, which reduces the overall adsorption efficiency. In addition, the adsorption amount of zeolite in each channel frame is different (such as some areas adsorb more pollutants), which will lead to uneven circumferential weight distribution of the wheel. When the wheel rotates at high speed, the uneven weight will cause centrifugal force imbalance, causing vibration, noise and even bearing wear, affecting the stable use of zeolite adsorption and desorption integrated treatment equipment. For this reason, we propose a zeolite adsorption and desorption integrated treatment equipment. Summary of the Invention

[0005] The object of the present invention is to provide a zeolite adsorption and desorption integrated treatment device to solve the problems raised in the above background technology.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a zeolite adsorption and desorption integrated treatment device, comprising:

[0007] A front box and a rear box, a control box is provided between the front box and the rear box, an air duct and an exhaust pipe are provided on the front box and the rear box respectively, a filter for pre-treating the intake air is provided on the air duct, a zeolite rotor is rotatably connected between the front box and the rear box, and the zeolite rotor is located in the control box, and further comprising:

[0008] A rotating assembly, provided on the control box, for driving the zeolite rotor to rotate;

[0009] A zeolite supporting assembly is provided on the zeolite rotor for supporting and installing granular zeolite. The zeolite supporting assembly is provided in a plurality of groups in a circular array on the zeolite rotor. The number of the zeolite supporting assemblies is an even number, and the groups of zeolite supporting assemblies are provided in pairs symmetrically on the zeolite rotor.

[0010] A filling component is provided on the zeolite supporting component and is used to fill and squeeze the gaps generated by the zeolite inside the zeolite supporting component during the rotation of the zeolite rotor;

[0011] An adjustment component is provided on the zeolite supporting component and is used for adaptive adjustment after the centrifugal force of the zeolite rotor becomes unbalanced;

[0012] and a processing component, which is arranged on the front box and the rear box and is used for processing the zeolite after the adsorption treatment.

[0013] Preferably, the zeolite carrying assembly includes a fan-shaped groove opened on the zeolite rotor, the interior of the fan-shaped groove is connected to a fan-shaped channel frame for carrying and filling zeolite through a telescopic assembly, the interior of the fan-shaped channel frame is filled with zeolite, and a rubber belt for sealing the fan-shaped channel frame is provided between the outer side of the fan-shaped channel frame and the inner side of the fan-shaped groove;

[0014] By adopting the above technical solution, the waste gas is treated.

[0015] Preferably, the telescopic assembly includes a plurality of sets of sleeves fixed inside the fan-shaped groove, each set of the sleeves is slidably connected to a slide rod, one end of the slide rod is fixed to the fan-shaped channel frame, a spring is sleeved on the outside of the sleeve, and both ends of the spring are respectively connected to the outside of the fan-shaped channel frame and the inner wall of the fan-shaped groove;

[0016] By adopting the above technical solution, the guiding movement of the fan-shaped channel frame after being subjected to force is assisted, and the reset of the fan-shaped channel frame after the contraction movement is assisted by the spring.

[0017] Preferably, the filling component includes a mounting groove opened inside the fan-shaped channel frame on the side close to the center of the zeolite rotor, an airbag for gap filling and extrusion is installed inside the mounting groove, and an inflation component for assisting in inflating the inside of the airbag is provided between the fan-shaped channel frame and the fan-shaped groove;

[0018] By adopting the above technical solution, the generated gaps are adaptively filled, and extrusion filling is used to prevent part of the exhaust gas from being directly discharged from the enlarged gaps, thereby ensuring the overall adsorption efficiency.

[0019] Preferably, the inflation assembly is provided in multiple groups, each of the inflation assemblies comprising a piston tube fixed inside a sector-shaped channel frame, one end of the piston tube communicating with the interior of the airbag, a piston rod slidably connected to the sector-shaped channel frame, the piston rod slidably connected to the piston tube, one end of the piston rod being fixed inside the sector-shaped groove;

[0020] By adopting the above technical solution, the filling component is inflated.

[0021] Preferably, the adjustment assembly is symmetrically provided in two groups, each of which includes a mounting rod slidably connected to the fan-shaped channel frame, one end of the mounting rod being located inside the fan-shaped channel frame and fixed with a spherical gravity block, and a pushing assembly for pushing the mounting rod and a guide assembly for assisting in guiding the movement of the mounting rod during the pushing process being provided between the fan-shaped channel frame and the fan-shaped groove;

[0022] By adopting the above technical solution, the radial position of the spherical gravity block on the zeolite rotor is adjusted.

[0023] Preferably, the guide assembly includes a mounting block fixed to the other end of the mounting rod, and a plurality of groups of T-shaped rods are slidably connected to the mounting block, and one end of the T-shaped rod is fixed inside the fan-shaped groove;

[0024] By adopting the above technical solution, the movement guidance of the mounting rod after being subjected to force is assisted.

[0025] Preferably, the pushing assembly includes a mounting bracket fixed to the inside of the fan-shaped slot, the mounting bracket is rotatably connected to a connecting rod via a pin shaft, one end of the connecting rod is rotatably connected to the outer side of the fan-shaped channel frame via a pin shaft, a sliding groove is provided on the connecting rod, a transmission pin is slidably connected to the sliding groove, and one end of the transmission pin is fixed to the mounting block;

[0026] By adopting the above technical solution, the installation rod is made to move toward or away from the inner side of the fan-shaped channel frame.

[0027] Preferably, the rotating assembly includes a gear ring fixed to the outside of the zeolite rotor, the control box is internally rotatably connected to a mounting shaft, a gear is fixed to the mounting shaft, the gear and the gear ring are meshed with each other, and a drive motor for driving the mounting shaft is installed on the rear box body;

[0028] By adopting the above technical solution, the zeolite wheel is rotated.

[0029] Preferably, the processing component includes a cold air delivery pipe and a hot air delivery pipe, the cold air delivery pipe includes a cold air inlet pipe and a cold air outlet pipe respectively installed on the front box body and the rear box body, one end of the cold air inlet pipe and the cold air outlet pipe are arranged opposite to each other and are respectively located on both sides of the zeolite rotor, the hot air delivery pipe includes a hot air outlet pipe and a hot air inlet pipe respectively installed on the front box body and the rear box body, one end of the hot air inlet pipe and the hot air outlet pipe are arranged opposite to each other and are respectively located on both sides of the zeolite rotor, the cold air outlet pipe and the hot air inlet pipe are located on one side, and a heater for gas heating treatment is installed between the cold air outlet pipe and the hot air inlet pipe;

[0030] By adopting the above technical solution, the adsorption force between zeolite and VOCs molecules is weakened, the adsorbed pollutants are released from the pores of zeolite, and the integrated adsorption and desorption treatment operation of zeolite is realized.

[0031] Compared with the prior art, the present invention has the following beneficial effects:

[0032] In the process of treating waste gas using the zeolite adsorption and desorption integrated treatment equipment of the present invention, the generated gaps can be adaptively filled through the mutual cooperation of components such as the rotating component, the zeolite supporting component, the filling component, the adjustment component and the treatment component. By squeezing and filling, part of the waste gas is prevented from being directly discharged outward from the enlarged gap, thereby ensuring the overall adsorption efficiency. The centrifugal difference between the two relative sets of fan-shaped channel frames during rotation can also be adaptively reduced according to the adsorption weight deviation, thereby avoiding centrifugal force imbalance and ensuring the stable use of the zeolite adsorption and desorption integrated treatment equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 This is a schematic diagram of the overall appearance structure of the present invention;

[0034] Figure 2 This is a schematic diagram of the internal structure of the front box of the present invention;

[0035] Figure 3 This is a schematic diagram of the interior of the rear box of the present invention;

[0036] Figure 4 It is a schematic structural diagram of the rotating assembly of the present invention;

[0037] Figure 5 Schematic diagram of the zeolite wheel structure of the present invention;

[0038] Figure 6 This is a schematic structural diagram of the zeolite supporting assembly of the present invention;

[0039] Figure 7 This is a schematic diagram of the telescopic assembly structure of the present invention;

[0040] Figure 8It is a schematic structural diagram of the filling component and the inflation component of the present invention;

[0041] Figure 9 It is a schematic structural diagram of the adjustment component and the guide component of the present invention;

[0042] Figure 10 This is a schematic diagram of the structure of the push assembly of the present invention;

[0043] Figure 11 A schematic diagram of the adjustment difference when the weight distribution of two opposing zeolite supporting components is uneven is shown in FIG.

[0044] Figure 12 This is a schematic diagram of the gap positions generated by zeolite during centrifugal motion of the fan-shaped channel frame of the present invention.

[0045] In the figure: 101 - front box; 102 - rear box; 103 - control box; 104 - air duct; 105 - exhaust pipe; 106 - filter; 107 - zeolite rotor; 201 - cold air inlet pipe; 202 - cold air outlet pipe; 203 - hot air outlet pipe; 204 - hot air inlet pipe; 401 - ring gear; 402 - mounting shaft; 403 - gear; 404 - drive motor; 501 - sector slot; 502-fan-shaped channel frame; 503-rubber belt; 601-sleeve; 602-slide rod; 603-spring; 701-mounting slot; 702-airbag; 801-piston tube; 802-piston rod; 901-mounting rod; 902-spherical gravity block; 1001-mounting block; 1002-T-bar; 1101-mounting frame; 1102-connecting rod; 1103-slide slot; 1104-transmission pin. DETAILED DESCRIPTION

[0046] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0047] Example 1

[0048] See also Figures 1-12 The zeolite adsorption and desorption integrated treatment equipment shown in the figure includes:

[0049] A front box body 101 and a rear box body 102 are provided, and a control box 103 is provided between the front box body 101 and the rear box body 102. An air duct 104 and an exhaust pipe 105 are provided on the front box body 101 and the rear box body 102 respectively. A filter 106 for pre-treating the intake air is provided on the air duct 104. A zeolite rotor 107 is rotatably connected between the front box body 101 and the rear box body 102, and the zeolite rotor 107 is located in the control box 103;

[0050] It should be noted that the filter 106 is used to pre-filter particulate matter. The filter 106 is a conventional technical means in the technical field of this application, and its working principle and operation method are not described in detail here.

[0051] Also includes:

[0052] A rotating assembly, provided on the control box 103, for rotating and driving the zeolite rotor 107;

[0053] The zeolite supporting assembly is provided on the zeolite rotor 107 for supporting and installing the granular zeolite. The zeolite supporting assembly is provided in a plurality of groups in a circular array on the zeolite rotor 107. The number of zeolite supporting assemblies is an even number, and each group of zeolite supporting assemblies is provided in a symmetrical state on the zeolite rotor 107.

[0054] A filling assembly is provided on the zeolite supporting assembly and is used to fill and squeeze the gaps generated by the zeolite inside the zeolite supporting assembly during the rotation of the zeolite rotor 107;

[0055] An adjustment component is provided on the zeolite supporting component for adaptive adjustment after the centrifugal force of the zeolite rotor 107 becomes unbalanced;

[0056] and a processing assembly, which is provided on the front housing 101 and the rear housing 102 and is used to process the zeolite after the adsorption treatment;

[0057] It should be noted here that: in the process of using zeolite adsorption and desorption integrated treatment equipment to treat waste gas, the gaps generated can be adaptively filled through the mutual cooperation of components such as rotating components, zeolite supporting components, filling components, adjustment components and treatment components. By squeezing and filling, part of the waste gas can be prevented from being directly discharged from the enlarged gap to ensure the overall adsorption efficiency. It can also adaptively reduce the centrifugal difference between the two sets of relative fan-shaped channel frames 502 during rotation according to the adsorption weight deviation, avoid centrifugal force imbalance, and ensure the stable use of the zeolite adsorption and desorption integrated treatment equipment.

[0058] Preferably, the zeolite carrying assembly includes a fan-shaped groove 501 provided on the zeolite rotor 107, the interior of the fan-shaped groove 501 is connected to a fan-shaped channel frame 502 for carrying and filling zeolite via a telescopic assembly, the interior of the fan-shaped channel frame 502 is filled with zeolite, and a rubber belt 503 for sealing the fan-shaped channel frame 502 is provided between the outer side of the fan-shaped channel frame 502 and the inner side of the fan-shaped groove 501;

[0059] It should be noted here that the exhaust gas is treated by the adsorption of the zeolite inside the fan-shaped channel frame 502;

[0060] It is worth noting here that the rubber belt 503 is made of silicone rubber and does not affect the movement of the fan-shaped channel frame 502 after being subjected to force due to its own flexibility. Due to the sealing performance of the rubber belt 503 itself, there is no gap between the fan-shaped groove 501 and the fan-shaped channel frame 502.

[0061] Preferably, the telescopic assembly includes multiple sets of sleeves 601 fixed inside the fan-shaped groove 501, each set of sleeves 601 is slidably connected to a slide rod 602, one end of the slide rod 602 is fixed to the fan-shaped channel frame 502, and a spring 603 is sleeved on the outside of the sleeve 601, and the two ends of the spring 603 are respectively connected to the outside of the fan-shaped channel frame 502 and the inner wall of the fan-shaped groove 501;

[0062] It should be noted that the sleeve 601 and the slide bar 602 assist the guiding movement of the fan-shaped channel frame 502 after being subjected to force, and the spring 603 assists the resetting of the fan-shaped channel frame 502 after the contraction movement.

[0063] Preferably, the filling component includes a mounting groove 701 opened inside the fan-shaped channel frame 502 and close to the center of the zeolite rotor 107. An airbag 702 for gap filling and extrusion is installed inside the mounting groove 701. An inflation component for assisting in inflating the inside of the airbag 702 is provided between the fan-shaped channel frame 502 and the fan-shaped groove 501. The inflation component is provided with multiple groups, and the inflation component includes a piston tube 801 fixed inside the fan-shaped channel frame 502, one end of the piston tube 801 is communicated with the interior of the airbag 702, and a piston rod 802 is slidably connected to the fan-shaped channel frame 502. The piston rod 802 is slidably connected to the piston tube 801, and one end of the piston rod 802 is fixed to the inside of the fan-shaped groove 501.

[0064] It should be noted that: in the process of stress movement of each group of fan-shaped channel frame 502, one end of the piston rod 802 moves towards the inside of the piston tube 801, and part of the gas in the piston tube 801 is extruded and transported to the inside of the air bag 702 through the movement of the piston rod 802. In the process of gas filling, the air bag 702 further expands, and through the extrusion and expansion of the air bag 702 and the flexibility of the air bag 702 itself, the gap is adaptively filled, and through extrusion filling, part of the exhaust gas is directly discharged from the enlarged gap, which ensures the overall adsorption efficiency.

[0065] It should be noted that: before inflation, the inside of the air bag 702 is pre-filled with gas and expands, and the zeolite is extruded by the preliminary expansion of the air bag 702 to avoid a large gap in the initial state.

[0066] Preferably, the adjusting assembly is symmetrically provided with two groups, and the adjusting assembly comprises a mounting rod 901 slidably connected to the fan-shaped channel frame 502, one end of the mounting rod 901 is located inside the fan-shaped channel frame 502 and fixed with a spherical gravity block 902, and the fan-shaped channel frame 502 and the fan-shaped groove 501 are provided with a pushing assembly for pushing the mounting rod 901 and a guiding assembly for guiding the movement of the mounting rod 901 during pushing.

[0067] It should be noted that: through the pushing assembly and the guiding assembly, the mounting rod 901 and the spherical gravity block 902 at one end of the mounting rod 901 move inside the fan-shaped channel frame 502, and the radial position of the spherical gravity block 902 on the zeolite runner 107 is adjusted through the movement of the fan-shaped channel frame 502.

[0068] Preferably, the guiding assembly comprises a mounting block 1001 fixed to the other end of the mounting rod 901, and a plurality of T-shaped rods 1002 are slidably connected to the mounting block 1001, one end of the T-shaped rod 1002 is fixed to the inside of the fan-shaped groove 501.

[0069] It should be noted that: through the mounting block 1001 and the T-shaped rod 1002, the movement of the mounting rod 901 under stress is guided.

[0070] Preferably, the pushing assembly comprises a mounting bracket 1101 fixed to the inside of the fan-shaped groove 501, a connecting rod 1102 rotatably connected to the mounting bracket 1101 through a pin shaft, one end of the connecting rod 1102 is rotatably connected to the outside of the fan-shaped channel frame 502 through a pin shaft, a sliding groove 1103 is formed in the connecting rod 1102, a transmission pin 1104 is slidably connected to the sliding groove 1103, and one end of the transmission pin 1104 is fixed to the mounting block 1001.

[0071] It should be noted here that: during the force movement of the fan-shaped channel frame 502, the push-link 1102 is forced to rotate on the mounting frame 1101. During the rotation of the connecting rod 1102, the mounting rod 901 moves toward or away from the inner side of the fan-shaped channel frame 502 through the interaction between the slide groove 1103 and the transmission pin 1104 and the sliding guiding action of the guide assembly.

[0072] Example 2

[0073] See also Figure 3-Figure 4 This embodiment further illustrates the first embodiment. The rotating assembly shown in the figure includes a ring gear 401 fixed to the outside of the zeolite rotor 107. The control box 103 is internally rotatably connected to a mounting shaft 402. A gear 403 is fixed to the mounting shaft 402. The gear 403 and the ring gear 401 are meshed with each other. A drive motor 404 for driving the mounting shaft 402 is installed on the rear housing 102.

[0074] It should be noted that the motor 404 drives the gear 403 on the mounting shaft 402 to rotate. During the rotation of the gear 403 , the gear 403 and the gear ring 401 are meshed with each other to rotate the zeolite wheel 107 .

[0075] Preferably, the processing component includes a cold air delivery pipe and a hot air delivery pipe, the cold air delivery pipe includes a cold air inlet pipe 201 and a cold air outlet pipe 202 respectively installed on the front box body 101 and the rear box body 102, one end of the cold air inlet pipe 201 and the cold air outlet pipe 202 are arranged opposite to each other and are respectively located on both sides of the zeolite rotor 107, the hot air delivery pipe includes a hot air outlet pipe 203 and a hot air inlet pipe 204 respectively installed on the front box body 101 and the rear box body 102, one end of the hot air inlet pipe 204 and the hot air outlet pipe 203 are arranged opposite to each other and are respectively located on both sides of the zeolite rotor 107, the cold air outlet pipe 202 and the hot air inlet pipe 204 are located on one side, and a heater for gas heating treatment is installed between the cold air outlet pipe 202 and the hot air inlet pipe 204;

[0076] It should be noted here that: the zeolite rotor 107 is rotated by rotating the assembly. During the rotation of the zeolite rotor 107, the zeolite after adsorption treatment is heated and cooled by the conveying effect of cold air on the cold air inlet pipe 201, the zeolite rotor 107 and the cold air outlet pipe 202, and the conveying effect of hot air on the hot air inlet pipe 204, the zeolite rotor 107 and the hot air outlet pipe 203. The heating effect weakens the adsorption force between the zeolite and the VOCs molecules, so that the adsorbed pollutants are desorbed from the pores of the zeolite, thereby realizing the integrated adsorption and desorption treatment operation of the zeolite.

[0077] It is worth noting here that the heater is mainly used to heat the gas. The heater, the delivery of cold air and the delivery of hot air are used as conventional technical means in this application, and their working principles and operating methods are not described in detail here.

[0078] In this solution: a zeolite adsorption and desorption integrated treatment equipment, comprising the following steps:

[0079] In the process of using the zeolite adsorption and desorption integrated treatment equipment to treat the waste gas, the waste gas to be treated is transported to the interior of the front box 101 through the induced draft pipe 104 and passes through each group of fan-shaped channel frames 502 of the zeolite rotor 107. The waste gas is treated by the adsorption effect of the zeolite inside the fan-shaped channel frame 502. The treated gas is discharged to the outside through the rear box 102 and the exhaust pipe 105, completing the adsorption treatment operation of the waste gas. In the process of adsorption treatment, the zeolite rotor 107 is rotated by rotating the assembly. During the rotation of the zeolite rotor 107, the cold air is transported through the cold air inlet pipe 201, the zeolite rotor 107 and the cold air outlet pipe 202, and the hot air is transported through the hot air inlet pipe 204, the zeolite rotor 107 and the hot air outlet pipe 203, thereby heating and cooling the zeolite after the adsorption treatment. The heating action weakens the adsorption force between the zeolite and the VOCs molecules, allowing the adsorbed pollutants to be desorbed from the pores of the zeolite, thereby realizing the integrated adsorption and desorption treatment operation of the zeolite;

[0080] During the rotation of the zeolite rotor 107, the centrifugal force and the telescopic connection of the telescopic assembly to the sector channel frame 502 cause each group of sector channel frames 502 to be subjected to centrifugal motion inside the sector groove 501. During the movement of the sector channel frame 502, the centrifugal force causes the zeolite inside the sector channel frame 502 to accumulate on the side of the sector channel frame 502 facing the outside, resulting in a decrease in the zeolite particles and an increase in the gap in the area on the side of the sector channel frame 502 facing the inside (see FIG. Figure 12 ), and during the force movement of each group of sector channel frames 502, one end of the piston rod 802 moves toward the inside of the piston tube 801. Through the movement of the piston rod 802, part of the gas inside the piston tube 801 is squeezed and transported to the inside of the airbag 702. During the gas filling process, the airbag 702 further expands. Through the squeezing and expansion of the airbag 702 and the flexibility of the airbag 702 itself, the gap generated is adaptively filled. The squeezing and filling prevents part of the exhaust gas from being directly discharged from the enlarged gap, thereby ensuring the overall adsorption efficiency;

[0081] When the groups of fan-shaped channel frames 502 are forced to move centrifugally toward the inside of the fan-shaped grooves 501, the driving effect of the pushing assembly and the guiding effect of the guiding assembly cause the installation rods 901 and the spherical gravity blocks 902 at the ends of the installation rods 901 to move toward the inside of the fan-shaped channel frames 502. During the entire driving process, when the two groups of fan-shaped channel frames 502 have different weights due to uneven adsorption, the heavier fan-shaped channel frames 502 slide a farther distance under the action of centrifugal force. During the sliding process, the driving effect causes the spherical gravity blocks 902 on the heavier fan-shaped channel frames 502 to move more toward the inside of the fan-shaped channel frames 502. The spherical gravity blocks 902 on the two groups of fan-shaped channel frames 502 have a radial deviation (see Figure 11 ), and the centrifugal force formula of the counterweight block is F=m.r.ω 2 The radial deviation reduces the centrifugal force on the heavier fan-shaped channel frames 502, reduces the centrifugal difference between the two groups of fan-shaped channel frames 502 during rotation, avoids unbalanced centrifugal force, and ensures stable use of the zeolite adsorption and desorption integrated treatment equipment.

[0082] It should be noted that the relational terms herein, such as first and second, are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "comprise", "contain" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or equipment including a series of elements includes not only those elements, but also other elements not explicitly listed or inherent to such a process, method, article or equipment.

[0083] Although embodiments of the present application have been shown and described, it is to be understood that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended claims and their equivalents.

Claims

1. A zeolite adsorption and desorption integrated treatment equipment, comprising: A front box (101) and a rear box (102), a control box (103) is provided between the front box (101) and the rear box (102), an air duct (104) and an exhaust pipe (105) are provided on the front box (101) and the rear box (102), respectively, a filter (106) for pre-treating the intake air is provided on the air duct (104), a zeolite wheel (107) is rotatably connected between the front box (101) and the rear box (102), and the zeolite wheel (107) is located in the control box (103); It is characterized by further comprising: A rotating assembly is provided on the control box (103) and is used to drive the zeolite rotor (107) to rotate; A zeolite supporting assembly is arranged on the zeolite rotor (107) for supporting and installing granular zeolite, wherein the zeolite supporting assembly is arranged in a ring array on the zeolite rotor (107) in a plurality of groups, the number of the zeolite supporting assemblies is an even number, and the groups of zeolite supporting assemblies are arranged in a symmetrical state on the zeolite rotor (107); A filling component is provided on the zeolite supporting component and is used to fill and squeeze the gaps generated by the zeolite inside the zeolite supporting component during the rotation of the zeolite rotor (107); An adjustment component is provided on the zeolite supporting component for adaptive adjustment after the centrifugal force of the zeolite rotor (107) becomes unbalanced; and a processing component, which is arranged on the front box (101) and the rear box (102) and is used for processing the zeolite after adsorption treatment.

2. The zeolite adsorption and desorption integrated treatment equipment according to claim 1, characterized in that: The zeolite carrying assembly comprises a fan-shaped groove (501) provided on a zeolite rotor (107); the interior of the fan-shaped groove (501) is connected to a fan-shaped channel frame (502) for carrying and filling zeolite via a telescopic assembly; the interior of the fan-shaped channel frame (502) is filled with zeolite; and a rubber belt (503) for sealingly connecting the fan-shaped channel frame (502) is provided between the outer side of the fan-shaped channel frame (502) and the inner side of the fan-shaped groove (501).

3. The zeolite adsorption and desorption integrated treatment equipment according to claim 2, characterized in that: The telescopic assembly includes multiple groups of sleeves (601) fixed inside the fan-shaped groove (501), each group of the sleeves (601) is slidably connected to a slide rod (602), one end of the slide rod (602) is fixed to the fan-shaped channel frame (502), and a spring (603) is sleeved on the outer side of the sleeve (601), and the two ends of the spring (603) are respectively connected to the outer side of the fan-shaped channel frame (502) and the inner wall of the fan-shaped groove (501).

4. The zeolite adsorption and desorption integrated treatment equipment according to claim 2, characterized in that: The filling component comprises a mounting groove (701) provided inside the fan-shaped channel frame (502) and close to the center of the zeolite wheel (107); an air bag (702) for gap filling and extrusion is installed inside the mounting groove (701); and an inflation component for assisting inflation of the air bag (702) is provided between the fan-shaped channel frame (502) and the fan-shaped groove (501).

5. The zeolite adsorption and desorption integrated treatment equipment according to claim 4, characterized in that: The inflation component is provided with multiple groups, and the inflation component includes a piston tube (801) fixed inside the fan-shaped channel frame (502), one end of the piston tube (801) is communicated with the inside of the airbag (702), and a piston rod (802) is slidably connected to the fan-shaped channel frame (502), and the piston rod (802) is slidably connected to the piston tube (801), and one end of the piston rod (802) is fixed inside the fan-shaped groove (501).

6. The zeolite adsorption and desorption integrated treatment equipment according to claim 2, characterized in that: The adjustment components are symmetrically arranged in two groups, and the adjustment components include a mounting rod (901) slidably connected to the fan-shaped channel frame (502), one end of the mounting rod (901) is located inside the fan-shaped channel frame (502) and fixed with a spherical gravity block (902), and a pushing component for pushing the mounting rod (901) and a guide component for assisting the movement of the mounting rod (901) during the pushing process are arranged between the fan-shaped channel frame (502) and the fan-shaped groove (501).

7. The zeolite adsorption and desorption integrated treatment equipment according to claim 6, characterized in that: The guide assembly comprises a mounting block (1001) fixed to the other end of the mounting rod (901), and a plurality of groups of T-shaped rods (1002) are slidably connected to the mounting block (1001), and one end of the T-shaped rod (1002) is fixed inside the fan-shaped groove (501).

8. The zeolite adsorption and desorption integrated treatment equipment according to claim 7, characterized in that: The pushing assembly includes a mounting frame (1101) fixed inside the fan-shaped groove (501), a connecting rod (1102) rotatably connected to the mounting frame (1101) via a pin, one end of the connecting rod (1102) is rotatably connected to the outer side of the fan-shaped channel frame (502) via a pin, a sliding groove (1103) is provided on the connecting rod (1102), a transmission pin (1104) is slidably connected to the sliding groove (1103), and one end of the transmission pin (1104) is fixed to the mounting block (1001).

9. The zeolite adsorption and desorption integrated treatment equipment according to claim 1, characterized in that: The rotating assembly includes a gear ring (401) fixed to the outside of the zeolite rotor (107); the control box (103) is internally rotatably connected to a mounting shaft (402); a gear (403) is fixed on the mounting shaft (402); the gear (403) and the gear ring (401) are meshed with each other; and a driving motor (404) for driving the mounting shaft (402) is installed on the rear box body (102).

10. The zeolite adsorption and desorption integrated treatment equipment according to claim 1, characterized in that: The processing assembly includes a cold air delivery pipe and a hot air delivery pipe, wherein the cold air delivery pipe includes a cold air inlet pipe (201) and a cold air outlet pipe (202) respectively installed on the front box body (101) and the rear box body (102), one end of the cold air inlet pipe (201) and the cold air outlet pipe (202) are arranged opposite to each other and are respectively located on both sides of the zeolite wheel (107), and the hot air delivery pipe includes a cold air inlet pipe (201) and a cold air outlet pipe (202) respectively installed on the front box body (101) and the rear box body (102). The hot air outlet pipe (203) and the hot air inlet pipe (204) on the box body (102) are arranged opposite to each other at one end and are respectively located on both sides of the zeolite wheel (107); the cold air outlet pipe (202) and the hot air inlet pipe (204) are located on one side; and a heater for gas heating treatment is installed between the cold air outlet pipe (202) and the hot air inlet pipe (204).