Device for removing carbon dioxide from air conditioner and air conditioner

By designing a retractable carbon dioxide adsorption module and air outlet assembly, the problem of inconvenient disassembly of the carbon dioxide adsorption assembly in the air conditioner is solved, the module can be easily cleaned and replaced, and the carbon dioxide treatment efficiency of the air conditioner is improved.

CN223345585UActive Publication Date: 2025-09-16QINGDAO HAIER AIR CONDITIONER GENERAL CORP LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422507002.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-16
Publication Date
2025-09-16
Estimated Expiration
2034-10-16

AI Technical Summary

Technical Problem

The carbon dioxide adsorption components in existing air conditioners are difficult to disassemble, clean and repair, making replacement difficult.

Method used

A removable carbon dioxide adsorption module is designed. By setting a detachable carbon dioxide adsorption plate and a fixed frame in the installation slot inside the adsorption shell, the installation and disassembly process of the module is simplified, and indoor circulation and desorption and discharge are achieved through the gas outlet component.

Benefits of technology

The disassembly and replacement process of the carbon dioxide adsorption module is simplified, the convenience of cleaning and maintenance is improved, and the carbon dioxide adsorption and desorption efficiency of the air conditioner is enhanced.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223345585U_ABST
    Figure CN223345585U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of household appliances, and discloses an air conditioner carbon dioxide removal device which comprises an adsorption shell and a carbon dioxide adsorption module. An overflowing channel is defined in the middle of the adsorption shell, a mounting groove communicating with the overflowing channel is formed in the adsorption shell, and one side of the mounting groove penetrates through the side wall of the adsorption shell to communicate with the exterior of the adsorption shell; the carbon dioxide adsorption module is arranged in the mounting groove in a drawable manner, and the overflowing channel is blocked under the condition that the carbon dioxide adsorption module is pushed into the mounting groove. In the application, the process of detaching the carbon dioxide adsorption module from the adsorption shell is simplified, so that the carbon dioxide adsorption module is relatively convenient to clean, maintain and replace. The utility model further discloses the air conditioner.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the technical field of household appliances, for example, to a device for removing carbon dioxide from an air conditioner and an air conditioner. Background Art

[0002] Air conditioners are devices used to adjust and control indoor air parameters such as temperature, humidity, and flow rate to improve indoor comfort. In relatively confined indoor spaces, user activity causes carbon dioxide concentrations to gradually increase. High carbon dioxide concentrations increase the risk of user discomfort.

[0003] In the related art, there is an air conditioning device comprising a housing and an adsorption assembly. The adsorption assembly is disposed within the housing and can adsorb carbon dioxide at room temperature. After heating, the carbon dioxide in the adsorption assembly is desorbed and discharged outdoors. This reduces the indoor carbon dioxide concentration, reduces the risk of user discomfort, and improves the user experience.

[0004] During the implementation of the embodiments of the present disclosure, it was found that at least the following problems exist in the related art:

[0005] It is rather cumbersome to remove the adsorption assembly from the shell, and it is inconvenient to clean, repair and replace the adsorption assembly.

[0006] It should be noted that the information disclosed in the above background technology section is only used to enhance the understanding of the background of this application, and therefore may include information that does not constitute prior art known to ordinary technicians in this field. Utility Model Content

[0007] In order to provide a basic understanding of some aspects of the disclosed embodiments, a brief summary is given below. The summary is not an extensive review, nor is it intended to identify key / critical elements or delineate the scope of protection of these embodiments, but rather serves as a prelude to the detailed description that follows.

[0008] The embodiments of the present disclosure provide a device for removing carbon dioxide from an air conditioner and an air conditioner, so as to simplify the process of removing a carbon dioxide adsorption module from an adsorption shell, thereby making it easier to clean, repair and replace the carbon dioxide adsorption module.

[0009] In some embodiments, a device for removing carbon dioxide from an air conditioner includes an adsorption housing and a carbon dioxide adsorption module. The adsorption housing defines a flow passage in the middle and includes a mounting slot disposed therein, communicating with the flow passage. The mounting slot extends through a sidewall of the adsorption housing and communicates with the exterior of the housing. The carbon dioxide adsorption module is retractably disposed within the mounting slot, and when the carbon dioxide adsorption module is inserted into the mounting slot, the flow passage is blocked.

[0010] Optionally, the installation groove is opened in a direction perpendicular to the airflow direction in the flow channel.

[0011] Optionally, the carbon dioxide adsorption module includes a fixed frame and carbon dioxide adsorption panels. The fixed frame is provided with a plurality of slots; the carbon dioxide adsorption panels are provided and removably inserted into the plurality of slots; wherein the fixed frame is retractably disposed in the mounting slot, and the plurality of carbon dioxide adsorption panels block the flow channel.

[0012] Optionally, a plurality of first protrusions and a plurality of second protrusions are provided on the inner side wall of the fixing frame, and the plurality of first protrusions and the plurality of second protrusions together enclose a plurality of slots.

[0013] Optionally, a limiting frame is provided at the edge of the fixed frame on the side where the carbon dioxide adsorption plate is inserted, and the limiting frame is used to limit the position of the carbon dioxide adsorption plate.

[0014] Optionally, a plurality of reinforcing ribs are provided on the outer side wall of the adsorption shell.

[0015] Optionally, an air outlet assembly is provided on one side of the adsorption shell, the air inlet of the air outlet assembly is connected to the output end of the adsorption shell, and the air outlet assembly has a first air outlet connected to the indoor room and a second air outlet connected to the outdoor room; wherein, one of the first air outlet and the second air outlet is open and the other is closed.

[0016] Optionally, the air outlet assembly includes an air outlet box and a reversing plate. The air outlet box has an air inlet connected to the output end of the adsorption shell, a first air outlet, and a second air outlet. The reversing plate is movably disposed within the air outlet box. When the reversing plate moves to a first position, the reversing plate closes the second air outlet, and the first air outlet is connected to the air inlet. When the reversing plate moves to a second position, the reversing plate closes the first air outlet, and the second air outlet is connected to the air inlet.

[0017] Optionally, a fan is provided between the adsorption shell and the air outlet assembly.

[0018] In some embodiments, an air conditioner includes: a device for removing carbon dioxide from an air conditioner as described in the above embodiments.

[0019] The device for removing carbon dioxide from an air conditioner and the air conditioner provided in the embodiments of the present disclosure can achieve the following technical effects:

[0020] The CO2 adsorption module is located within the mounting slot, blocking the flow channel. Airflow within the flow channel passes through the module, where it absorbs CO2 from the airflow. The module is retractable within the mounting slot, allowing it to be pulled out or pushed back into the slot for easy removal or installation. This simplifies the removal of the module from the adsorption housing, making it easier to clean, repair, and replace.

[0021] The above general description and the following description are exemplary and explanatory only and are not intended to limit the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] One or more embodiments are exemplarily described by corresponding drawings. These exemplary descriptions and drawings do not limit the embodiments. Elements with the same reference numerals in the drawings are shown as similar elements. The drawings do not constitute a scale limitation. In addition,

[0023] Figure 1 This is a schematic structural diagram of a device for removing carbon dioxide from an air conditioner provided by an embodiment of the present disclosure;

[0024] Figure 2 is an exploded schematic diagram of the structure of another device for removing carbon dioxide from air conditioners provided by an embodiment of the present disclosure;

[0025] Figure 3 is an exploded schematic diagram of the structure of another device for removing carbon dioxide from air conditioners provided by an embodiment of the present disclosure;

[0026] Figure 4 is a structural diagram of a fixed frame provided by an embodiment of the present disclosure;

[0027] Figure 5 This is an attached embodiment provided by the present disclosure Figure 4 Enlarged view of point A in the middle;

[0028] Figure 6 is an exploded schematic diagram of the structural schematic diagram of a carbon dioxide adsorption module provided by an embodiment of the present disclosure;

[0029] Figure 7 is an exploded schematic diagram of the structure of another device for removing carbon dioxide from air conditioners provided by an embodiment of the present disclosure;

[0030] Figure 8 is an exploded schematic diagram of the structure of another device for removing carbon dioxide from air conditioners provided by an embodiment of the present disclosure;

[0031] Figure 9 This is a schematic diagram of the internal structure of a gas outlet box provided by an embodiment of the present disclosure;

[0032] Figure 10 is an exploded schematic diagram of the structure of a gas outlet assembly provided by an embodiment of the present disclosure;

[0033] Figure 11 It is a structural schematic diagram of another device for removing carbon dioxide from air conditioners provided in an embodiment of the present disclosure.

[0034] Reference numerals:

[0035] 100. Adsorption shell; 101. Flow channel; 110. Mounting slot; 120. Support bar; 121. Guide chamfer; 130. Reinforcing rib; 200. CO2 adsorption module; 210. Fixing frame; 220. CO2 adsorption plate; 230. Slot; 240. First protrusion; 241. Protrusion block; 250. Second protrusion; 251. Protrusion plate; 260. Limiting frame; 300. Air outlet assembly; 310. Air inlet; 320. First air outlet; 321. Guide plate; 330. Second air outlet; 340. Air outlet box; 341. Box body; 342. Cover plate; 343. Sliding slot; 350. Reversing plate; 351. First movable plate; 352. Second movable plate; 360. Driving member; 361. Driving motor; 362. Rotating shaft; 400. Fan. DETAILED DESCRIPTION

[0036] In order to be able to understand the features and technical content of the embodiments of the present disclosure in more detail, the implementation of the embodiments of the present disclosure is described in detail below in conjunction with the accompanying drawings. The accompanying drawings are for reference only and are not used to limit the embodiments of the present disclosure. In the following technical description, for the sake of convenience of explanation, a full understanding of the disclosed embodiments is provided through multiple details. However, one or more embodiments can still be implemented without these details. In other cases, to simplify the drawings, well-known structures and devices can be simplified for display.

[0037] In the description and claims of the embodiments of the present disclosure, as well as in the accompanying drawings, the terms "first," "second," and the like are used to distinguish similar items and are not necessarily used to describe a particular order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate to describe the embodiments of the present disclosure herein. In addition, the terms "including," "having," and any variations thereof are intended to cover non-exclusive inclusions.

[0038] In the embodiments of the present disclosure, the terms "upper", "lower", "inside", "middle", "outside", "front", "back" and the like indicate directions or positional relationships based on the directions or positional relationships shown in the accompanying drawings. These terms are mainly intended to better describe the embodiments of the present disclosure and their embodiments, and are not intended to limit the indicated devices, elements or components to having a specific direction, or to be constructed and operated in a specific direction. Moreover, in addition to being used to indicate directions or positional relationships, some of the above terms may also be used to indicate other meanings. For example, the term "upper" may also be used to indicate a certain dependency or connection relationship in certain circumstances. For those of ordinary skill in the art, the specific meanings of these terms in the embodiments of the present disclosure can be understood according to specific circumstances.

[0039] Furthermore, the terms "disposed," "connected," and "fixed" should be interpreted broadly. For example, "connected" can mean a fixed connection, a removable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection, an indirect connection through an intermediary, or an internal connection between two devices, elements, or components. Those skilled in the art will understand the specific meanings of these terms in the embodiments of this disclosure based on the specific circumstances.

[0040] Unless otherwise stated, the term "plurality" means two or more.

[0041] It should be noted that, in the absence of conflict, the embodiments and features in the embodiments of the present disclosure can be combined with each other.

[0042] Combine Figure 1-2 As shown, an embodiment of the present disclosure provides a device for removing carbon dioxide from an air conditioner, comprising: an adsorption shell 100 and a carbon dioxide adsorption module 200. The adsorption shell 100 defines a flow passage 101 in the middle, and is provided with a mounting groove 110 in the interior that communicates with the flow passage 101. One side of the mounting groove 110 penetrates the side wall of the adsorption shell 100 and communicates with the outside of the adsorption shell 100. The carbon dioxide adsorption module 200 can be pulled out and arranged in the mounting groove 110. When the carbon dioxide adsorption module 200 is pushed into the mounting groove 110, the flow passage 101 is blocked.

[0043] In the device for removing carbon dioxide from an air conditioner provided by the embodiments of the present disclosure, the carbon dioxide adsorption module 200 is located within the mounting slot 110, blocking the flow passage 101. The airflow within the flow passage 101 passes through the carbon dioxide adsorption module 200, where the carbon dioxide adsorption module 200 adsorbs carbon dioxide from the airflow. Furthermore, the carbon dioxide adsorption module 200 is retractably disposed within the mounting slot 110, allowing it to be withdrawn or pushed back into the mounting slot 110 to facilitate removal or installation. This simplifies the process of removing the carbon dioxide adsorption module 200 from the adsorption housing 100, making cleaning, repair, and replacement of the carbon dioxide adsorption module 200 more convenient.

[0044] It can be understood that when the carbon dioxide adsorption module 200 blocks the flow channel 101 , the airflow in the flow channel 101 can flow through the carbon dioxide adsorption module 200 .

[0045] Optionally, the adsorption housing 100 is a rectangular box-shaped structure, while the carbon dioxide adsorption module 200 is a rectangular block-shaped structure. This allows the shape of the adsorption housing 100 to correspond to the shape of the carbon dioxide adsorption module 200, providing better compatibility. Furthermore, the shape of the adsorption housing 100 is more regular, making it easier to install within the air conditioner.

[0046] Optionally, the mounting groove 110 is oriented perpendicular to the airflow direction within the flow channel 101. This allows the CO2 adsorption module 200 to be positioned within the mounting groove 110, which provides both positional restraint and support. The mounting groove 110, oriented perpendicular to the airflow direction, reduces the risk of the CO2 adsorption module 200 swaying in the presence of airflow, ensuring a more airtight seal.

[0047] Combine Figure 3 As shown, optionally, a plurality of support bars 120 are provided on the inner wall of the mounting groove 110, each of which is arranged along the direction of withdrawal of the CO2 adsorption module 200. This allows the CO2 adsorption module 200 to slide within the mounting groove 110, where it comes into sliding contact with the support bars 120, preventing direct contact and friction between the CO2 adsorption module 200 and the adsorption housing 100 and improving durability. Furthermore, the contact area between the support bars 120 and the CO2 adsorption module 200 is smaller, resulting in less resistance to withdrawal.

[0048] Specifically, a plurality of support bars 120 are provided on two opposite inner side walls of the installation groove 110 .

[0049] Optionally, a guide chamfer 121 is provided at one end of the support bar 120 facing the insertion side of the installation slot 110. In this way, when the carbon dioxide adsorption module 200 is inserted into the installation slot 110, the guide chamfer 121 provides guidance, reducing the difficulty of insertion.

[0050] Optionally, the carbon dioxide adsorption module 200 includes a fixed frame 210 and carbon dioxide adsorption panels 220. The fixed frame 210 is internally provided with multiple slots 230; multiple carbon dioxide adsorption panels 220 are provided and removably inserted into the multiple slots 230. The fixed frame 210 is retractably mounted within the mounting slot 110, with the multiple carbon dioxide adsorption panels 220 blocking the flow channel 101. In this manner, the multiple carbon dioxide adsorption panels 220 are removably inserted into the multiple slots 230. If a carbon dioxide adsorption panel 220 ages or fails, the panel 220 can be easily removed from the slot 230 and replaced with a new one. This reduces the difficulty of replacing the carbon dioxide adsorption panel 220 and improves the user experience.

[0051] Optionally, multiple carbon dioxide adsorption panels 220 are arranged obliquely within the fixed frame 210, such that each carbon dioxide adsorption panel 220 is inclined relative to the flow direction of the airflow within the flow channel 101. In this way, since the flow rate of the carbon dioxide adsorption panels 220 is relatively small, in order to match the flow rate within the flow channel 101, the multiple carbon dioxide adsorption panels 220 are arranged obliquely so that the sum of the flow rates of the multiple carbon dioxide adsorption panels 220 matches the flow rate within the flow channel 101. This reduces the impact on the flow rate within the flow channel 101 when adsorbing carbon dioxide from the air.

[0052] Combine Figure 4 and Figure 5 As shown, optionally, a plurality of first protrusions 240 and a plurality of second protrusions 250 are provided on the inner sidewall of the fixed frame 210. The plurality of first protrusions 240 and the plurality of second protrusions 250 together enclose a plurality of slots 230. In this way, the first protrusions 240 and the second protrusions 250 provide support and position limiting for the carbon dioxide adsorption panels 220, thereby improving the stability of the carbon dioxide adsorption panels 220 when inserted into the slots 230.

[0053] Optionally, the first protrusion 240 is a protrusion block 241, and the protrusion block 241 is fixedly connected to the inner side wall of the fixed frame 210. In this way, the protrusion block 241 is fixed to the fixed frame 210, and the connection stability is higher.

[0054] Optionally, the second raised portion 250 is a raised plate 251, which is fixedly connected to the inner sidewall of the fixed frame 210. The raised block 241 and the raised plate 251 define a slot 230. In this way, the raised plate 251 is fixed to the fixed frame 210, providing greater stability. The raised block 241 and the raised plate 251 cooperate to provide support and position limiting for the carbon dioxide adsorption plate 220, further enhancing stability.

[0055] Optionally, multiple first protrusions 240 and multiple second protrusions 250 are alternately arranged, and some first protrusions 240 and two adjacent second protrusions 250 enclose two slots 230. In this way, the number of first protrusions 240 can be reduced, reducing production costs.

[0056] Specifically, the plurality of protruding blocks 241 and the plurality of protruding plates 251 are alternately arranged, and some of the protruding blocks 241 and two adjacent protruding plates 251 define two slots 230 .

[0057] Optionally, a gap is provided between two adjacent carbon dioxide adsorption plates 220, with the gap at one end being larger than the gap at the other end. Thus, the gap between two adjacent carbon dioxide adsorption plates 220 is larger at one end than at the other end. The smaller gap creates greater flow resistance, making it easier for air to flow toward and through the carbon dioxide adsorption plates 220, thereby facilitating carbon dioxide adsorption by the carbon dioxide adsorption plates 220.

[0058] Optionally, one end of a carbon dioxide adsorption plate 220 may be spaced closer to one end of an adjacent carbon dioxide adsorption plate 220, and further spaced from one end of another adjacent carbon dioxide adsorption plate 220. This prevents the carbon dioxide adsorption plates 220 from having smaller spacing on the same side, thereby ensuring the adsorption effect of the carbon dioxide adsorption plates 220.

[0059] It can be understood that the above interval refers to the distance between the endpoints on the same side of two adjacent carbon dioxide adsorption plates 220 .

[0060] Exemplarily, a plurality of carbon dioxide adsorption plates 220 are arranged in sequence and disposed in a continuous V-shape within the flow channel 101 .

[0061] Combine Figure 6 As shown, a limit frame 260 is optionally provided at the edge of the fixed frame 210 on the side where the carbon dioxide adsorption plate 220 is inserted. The limit frame 260 is used to limit the position of the carbon dioxide adsorption plate 220. Thus, the limit frame 260 is connected to the fixed frame 210, restricting the movement of the carbon dioxide adsorption plate 220 away from the fixed frame 210, thereby reducing the risk of the carbon dioxide adsorption plate 220 falling out of the fixed frame 210. Furthermore, the limit frame 260 is detachably connected to the fixed frame 210, facilitating replacement and maintenance of the carbon dioxide adsorption plate 220 within the fixed frame 210.

[0062] Combine Figure 7 As shown, optionally, a plurality of reinforcing ribs 130 are provided on the outer side wall of the adsorption shell 100 , thereby improving the structural strength of the adsorption shell 100 .

[0063] Combine Figure 7 and Figure 8As shown, an air outlet assembly 300 is optionally provided on one side of the adsorption housing 100. The air inlet 310 of the air outlet assembly 300 is connected to the output end of the adsorption housing 100. The air outlet assembly 300 has a first air outlet 320 that communicates with the indoor environment and a second air outlet 330 that communicates with the outdoors. One of the first air outlet 320 and the second air outlet 330 is open, while the other is closed. In this way, after the carbon dioxide adsorption module 200 adsorbs carbon dioxide in the room, the adsorbed carbon dioxide needs to be thermally desorbed and discharged outdoors. When the first air outlet 320 is open, indoor air flows through the flow channel 101 and the carbon dioxide adsorption module 200 before flowing into the room, forming an indoor adsorption cycle. When the second air outlet 330 is open, indoor air flows through the flow channel 101 and the carbon dioxide adsorption module 200 before flowing outdoors, achieving carbon dioxide desorption and discharge. This allows for convenient adjustment between indoor adsorption and desorption, improving the efficiency of carbon dioxide adsorption and desorption.

[0064] Optionally, the air outlet assembly 300 includes an air outlet box 340 and a reversing plate 350. The air outlet box 340 has an air inlet 310, a first air outlet 320, and a second air outlet 330 connected to the output end of the adsorption shell 100; the reversing plate 350 is movably disposed within the air outlet box 340; wherein, when the reversing plate 350 moves to the first position, the reversing plate 350 closes the second air outlet 330, and the first air outlet 320 is connected to the air inlet 310; when the reversing plate 350 moves to the second position, the reversing plate 350 closes the first air outlet 320, and the second air outlet 330 is connected to the air inlet 310. In this way, by the reversing plate 350 moving within the air outlet box 340, the air outlet box 340 can be connected to the outside to desorb carbon dioxide and discharge it, or the air outlet box 340 can be connected to the indoor room to adsorb carbon dioxide, thereby realizing convenient adjustment of indoor cyclic adsorption and desorption and discharge to the outside, thereby improving the efficiency of carbon dioxide adsorption and desorption. Furthermore, the flow rate in the air outlet box 340 is relatively large, the wind resistance is small, and the air flow is smoother.

[0065] It is understood that the first position means that the reversing plate 350 moves toward the second air outlet 330 until it abuts against one inner wall of the air outlet box 340 and stops moving. The second position means that the reversing plate 350 moves toward the first air outlet 320 until it abuts against the other inner wall of the air outlet box 340 and stops moving.

[0066] Combine Figure 9 and Figure 10As shown, the gas outlet box 340 optionally includes a box body 341 and a cover plate 342. One side wall of the box body 341 is provided with an opening, the other side wall opposite the box body 341 has an air inlet 310, and the other side wall of the box body 341 has a second air outlet 330. The cover plate 342 covers the opening and has a first air outlet 320 formed thereon. Thus, the cover plate 342 can be installed in the opening and removed from the opening, facilitating cleaning and maintenance of the gas outlet box 340.

[0067] Specifically, a plurality of guide plates 321 are provided in the first air outlet 320, and the guide plates 321 are fixedly connected to the cover plate 342. Thus, since the first air outlet 320 is connected to the indoor environment, the plurality of guide plates 321 provide guidance for the airflow at the first air outlet 320, thereby changing the direction of the airflow and allowing the airflow to blow into the indoor environment at a more appropriate angle.

[0068] Optionally, the reversing plate 350 includes: a first movable plate 351 and a second movable plate 352. The two ends of the first movable plate 351 are slidably connected to the inner wall of the air outlet box 340, and the first movable plate 351 and the second movable plate 352 are vertically arranged; wherein, when the first movable plate 351 and the second movable plate 352 move to the first position, the first movable plate 351 and the second movable plate 352 cooperate to close the second air outlet 330, and the first air outlet 320 is connected to the air inlet 310; when the first movable plate 351 and the second movable plate 352 move to the second position, the second air outlet 330 is connected to the air inlet 310, and the first movable plate 351 blocks the first air outlet 320. In this way, the first movable plate 351 is slidably connected to the inner wall of the air outlet box 340, and the first movable plate 351 and the second movable plate 352 are more stable when moving in the air outlet box 340, and the risk of deviation of the first movable plate 351 and the second movable plate 352 during movement is reduced.

[0069] Optionally, the box body 341 and the cover plate 342 jointly define a sliding groove 343, and both ends of the first movable plate 351 are slidably connected to the two sliding grooves 343. In this way, the stability of the sliding connection between the first movable plate 351 and the box body 341 is improved.

[0070] It can be understood that the two opposite side walls of the box body 341 and the cover plate 342 together define two sliding slots 343 .

[0071] Optionally, the gas outlet assembly 300 further includes a driving member 360. The driving member 360 is movably connected to the reversing plate 350 to drive the reversing plate 350 to move within the gas outlet box 340. In this way, the driving member 360 provides power for the reversing plate 350 to move within the gas outlet box 340.

[0072] Optionally, the driving member 360 includes: a driving motor 361 and a rotating shaft 362. The driving motor 361 is fixedly mounted on the outer wall of the gas outlet box 340; the rotating shaft 362 is disposed inside the gas outlet box 340, with both ends of the rotating shaft 362 rotatably connected to the gas outlet box 340, and the output shaft of the output end of the driving motor 361 passes through the gas outlet box 340 and is connected to the rotating shaft 362; wherein, a rack is provided on the reversing plate 350, and a gear meshing with the rack is provided on the rotating shaft 362. In this way, both ends of the rotating shaft 362 are rotatably connected to the gas outlet box 340, and the reversing plate 350 is driven to move by the gear and rack, which provides better stability. In addition, the driving motor 361 is disposed outside the gas outlet box 340, thereby reducing the space occupied inside the gas outlet box 340.

[0073] Specifically, a rack is provided on the first movable plate 351 .

[0074] Specifically, the driving motor 361 is disposed outside the box body 341 .

[0075] Combine Figure 11 As shown, optionally, a fan 400 is provided between the adsorption housing 100 and the gas outlet assembly 300. Thus, the fan 400 increases the speed of the air flow between the adsorption housing 100 and the gas outlet assembly 300, thereby improving the efficiency of carbon dioxide adsorption and desorption.

[0076] In some embodiments, an air conditioner includes: a device for removing carbon dioxide from an air conditioner as described in the above embodiments.

[0077] In an air conditioner provided by an embodiment of the present disclosure, which includes the device for removing carbon dioxide from an air conditioner according to the aforementioned embodiment, the carbon dioxide adsorption module 200 is located within the mounting slot 110, blocking the flow passage 101. The airflow within the flow passage 101 passes through the carbon dioxide adsorption module 200, where it adsorbs carbon dioxide from the airflow. Furthermore, the carbon dioxide adsorption module 200 is retractably disposed within the mounting slot 110, allowing it to be withdrawn or pushed back into the mounting slot 110 for easy removal or installation. This simplifies the process of removing the carbon dioxide adsorption module 200 from the adsorption housing 100, making cleaning, repair, and replacement of the carbon dioxide adsorption module 200 more convenient.

[0078] The above description and the accompanying drawings sufficiently illustrate the embodiments of the present disclosure to enable those skilled in the art to practice them. Other embodiments may include structural and other changes. The embodiments represent only possible variations. Unless expressly required, individual components and functions are optional, and the order of operations may vary. Portions and features of some embodiments may be included in or replace portions and features of other embodiments. The embodiments of the present disclosure are not limited to the structures described above and shown in the accompanying drawings, and various modifications and changes may be made without departing from the scope thereof. The scope of the present disclosure is limited only by the appended claims.

Claims

1. A device for removing carbon dioxide from air conditioning, characterized in that: include: The adsorption shell (100) defines a flow passage (101) in the middle, and is provided with a mounting groove (110) in the interior thereof, which is in communication with the flow passage (101), and one side of the mounting groove (110) penetrates the side wall of the adsorption shell (100) and is in communication with the outside of the adsorption shell (100); The carbon dioxide adsorption module (200) is arranged in a drawable manner in the installation groove (110), and when the carbon dioxide adsorption module (200) is pushed into the installation groove (110), the flow channel (101) is blocked.

2. The device for removing carbon dioxide from air conditioners according to claim 1, characterized in that: The opening direction of the installation groove (110) is perpendicular to the airflow direction in the flow channel (101).

3. The device for removing carbon dioxide from air conditioners according to claim 1, characterized in that: A carbon dioxide adsorption module (200) comprising: A fixed frame (210) having a plurality of slots (230) disposed therein; A plurality of carbon dioxide adsorption plates (220) are provided and are detachably inserted into the plurality of slots (230); The fixing frame (210) is arranged in a retractable manner in the installation groove (110), and the flow channel (101) is blocked by a plurality of carbon dioxide adsorption plates (220).

4. The device for removing carbon dioxide from air conditioners according to claim 3, characterized in that: A plurality of first protrusions (240) and a plurality of second protrusions (250) are provided on the inner side wall of the fixed frame (210), and the plurality of first protrusions (240) and the plurality of second protrusions (250) jointly enclose a plurality of slots (230).

5. The device for removing carbon dioxide from air conditioners according to claim 3, characterized in that: A limiting frame (260) is provided at the edge of the fixed frame (210) on the side where the carbon dioxide adsorption plate (220) is inserted, and the limiting frame (260) is used to limit the position of the carbon dioxide adsorption plate (220).

6. The device for removing carbon dioxide from air conditioners according to claim 1, characterized in that: A plurality of reinforcing ribs (130) are provided on the outer side wall of the adsorption shell (100).

7. The device for removing carbon dioxide from air conditioners according to any one of claims 1 to 6, characterized in that: An air outlet assembly (300) is provided on one side of the adsorption shell (100); an air inlet (310) of the air outlet assembly (300) is communicated with an output end of the adsorption shell (100); and the air outlet assembly (300) has a first air outlet (320) communicated with the indoor environment and a second air outlet (330) communicated with the outdoor environment. Among them, one of the first air outlet (320), the air inlet (310) and the second air outlet (330) is open, and the other is closed.

8. The device for removing carbon dioxide from air conditioners according to claim 7, characterized in that: The gas outlet assembly (300) comprises: An air outlet box (340) having an air inlet (310) communicating with the output end of the adsorption shell (100), a first air outlet (320), and a second air outlet (330); A reversing plate (350) is movably disposed in the gas outlet box (340); When the reversing plate (350) moves to the first position, the reversing plate (350) closes the second air outlet (330), and the first air outlet (320) is connected to the air inlet (310); when the reversing plate (350) moves to the second position, the reversing plate (350) closes the first air outlet (320), and the second air outlet (330) is connected to the air inlet (310).

9. The device for removing carbon dioxide from air conditioners according to claim 7, characterized in that: A fan (400) is provided between the adsorption shell (100) and the air outlet assembly (300).

10. An air conditioner, characterized in that: The device comprises the device for removing carbon dioxide from air conditioner according to any one of claims 1 to 9.