Carbon dioxide adsorption assembly and air conditioner
By designing a detachable carbon dioxide adsorption plate structure in the air conditioner, the problems of aging and cumbersome replacement of the adsorption components are solved, the adsorption plate can be easily replaced, and the user experience is improved.
Patent Information
- Application Number
- CN202422508593.4
- 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
The carbon dioxide adsorption components in existing air conditioners are prone to aging and failure after long-term use, and the replacement process is cumbersome, resulting in a poor user experience.
A carbon dioxide adsorption component is designed, in which a plurality of slots are provided in a fixed frame, and carbon dioxide adsorption plates are detachably inserted into the slots. The combination of a limit frame and a baffle structure simplifies the replacement process.
The carbon dioxide adsorption plate can be easily replaced, which reduces the difficulty of replacement and improves the user experience.
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Figure CN223345587U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of household appliances, for example, to a carbon dioxide adsorption component 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] The adsorption components are prone to aging and failure during long-term use, and replacing the adsorption components is cumbersome, resulting in a poor user experience.
[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 carbon dioxide adsorption assembly and an air conditioner, which can reduce the difficulty of replacing the carbon dioxide adsorption plate when the carbon dioxide adsorption plate is aged or fails, thereby improving user experience.
[0009] In some embodiments, a carbon dioxide adsorption assembly includes a fixed frame and a carbon dioxide adsorption plate. The fixed frame defines an airflow channel and has a plurality of slots therein. The carbon dioxide adsorption plate is provided in a plurality of slots and is detachably inserted into the slots.
[0010] Optionally, there is a gap between two adjacent carbon dioxide adsorption plates, and the gap at one end is larger than the gap at the other end.
[0011] Optionally, there is a first angle between adjacent carbon dioxide adsorption plates; wherein the first angle is greater than or equal to 7° and less than or equal to 17°.
[0012] Optionally, a first baffle for limiting the position of the carbon dioxide adsorption plate is provided at the edge of the airflow channel.
[0013] Optionally, a plurality of first baffles are provided, and each first baffle abuts against the same side of two adjacent carbon dioxide adsorption plates.
[0014] 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 jointly enclose a plurality of slots.
[0015] Optionally, the ends of the first protrusion and the second protrusion facing the carbon dioxide adsorption plate insertion side are both arc-shaped structures.
[0016] Optionally, the carbon dioxide adsorption assembly further includes a limiting frame that is detachably connected to an edge of the fixed frame on the side where the carbon dioxide adsorption plate is inserted, and is used to limit the position of the carbon dioxide adsorption plate.
[0017] Optionally, a second baffle for limiting the position of the carbon dioxide adsorption plate is provided on the limiting frame, and a plurality of second baffles are provided, each second baffle abutting against the same side of two adjacent carbon dioxide adsorption plates.
[0018] In some embodiments, an air conditioner includes: a carbon dioxide adsorption component as described in the above embodiments.
[0019] The carbon dioxide adsorption assembly and air conditioner provided by the embodiments of the present disclosure can achieve the following technical effects:
[0020] Because the fixed frame is internally provided with multiple slots, and multiple CO2 adsorption panels are detachably inserted into the slots, if a CO2 adsorption panel ages or fails, the panel can be easily removed from the slot and replaced with a new one. This reduces the difficulty of replacing the CO2 adsorption panel and improves the user experience.
[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 is a structural schematic diagram of a carbon dioxide adsorption component provided by an embodiment of the present disclosure;
[0024] Figure 2 is an exploded schematic diagram of the structural schematic diagram of a carbon dioxide adsorption component provided by an embodiment of the present disclosure;
[0025] Figure 3 This is a schematic diagram of the structure of a plurality of carbon dioxide adsorption plates provided in 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 5 A in the middle is an enlarged schematic diagram;
[0028] Figure 6 is a structural schematic diagram of another carbon dioxide adsorption assembly provided by an embodiment of the present disclosure;
[0029] Figure 7 It is an exploded schematic diagram of another structural schematic diagram of a carbon dioxide adsorption component provided by an embodiment of the present disclosure.
[0030] Reference numerals:
[0031] 100. Fixed frame; 101. Air flow channel; 110. Slot; 200. Carbon dioxide adsorption plate; 201. First angle; 120. First baffle; 121. First inclined surface; 130. First protrusion; 131. Protrusion block; 140. Second protrusion; 141. Protrusion plate; 150. Arc structure; 160. First connecting block; 161. First through hole; 300. Limiting frame; 310. Second connecting block; 311. Second through hole; 320. Second baffle; 321. Second inclined surface. DETAILED DESCRIPTION
[0032] 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.
[0033] 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.
[0034] 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.
[0035] 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.
[0036] Unless otherwise stated, the term "plurality" means two or more.
[0037] It should be noted that, unless there is any conflict, the embodiments and features in the embodiments of the present disclosure can be combined with each other.
[0038] Combine Figure 1-2 As shown, an embodiment of the present disclosure provides a carbon dioxide adsorption assembly, comprising: a fixed frame 100 and a carbon dioxide adsorption plate 200. The fixed frame 100 defines an airflow channel 101 in the middle, and a plurality of slots 110 are provided within the fixed frame 100; a plurality of carbon dioxide adsorption plates 200 are provided and detachably inserted into the plurality of slots 110.
[0039] With the carbon dioxide adsorption assembly provided by the embodiments of the present disclosure, the fixed frame 100 is provided with multiple slots 110, and the multiple carbon dioxide adsorption panels 200 are removably inserted into the slots 110. In the event that a carbon dioxide adsorption panel 200 ages or fails, the panel 200 can be easily removed from the slot 110 and replaced with a new one. This reduces the difficulty of replacing the carbon dioxide adsorption panel 200 and improves the user experience.
[0040] It can be understood that multiple carbon dioxide adsorption plates 200 are located in the air flow channel 101. When air passes through the air flow channel 101, it will pass through the carbon dioxide adsorption plates 200, and the carbon dioxide adsorption plates 200 will adsorb carbon dioxide in the air, thereby reducing the carbon dioxide concentration in the air.
[0041] Optionally, the carbon dioxide adsorption panels 200 are arranged at an angle within the fixed frame 100, such that the carbon dioxide adsorption panels 200 form an angle with the direction of airflow within the airflow channel 101. In this way, since the flow rate of the carbon dioxide adsorption panels 200 is relatively small, in order to match the flow rate within the airflow channel 101, multiple carbon dioxide adsorption panels 200 are arranged at an angle so that the sum of the flow rates of the multiple carbon dioxide adsorption panels 200 matches the flow rate within the airflow channel 101. This reduces the impact on the flow rate within the airflow channel 101 when adsorbing carbon dioxide from the air.
[0042] In one embodiment, the ends of adjacent carbon dioxide adsorption panels 200 abut against each other, and one end of each carbon dioxide adsorption panel 200 abuts against at most one adjacent carbon dioxide adsorption panel 200. In this way, air passes through multiple carbon dioxide adsorption panels 200 within the airflow channel 101, where carbon dioxide is adsorbed by these panels. Because the end of one carbon dioxide adsorption panel 200 abuts against the end of another adjacent carbon dioxide adsorption panel 200, and because one end of each carbon dioxide adsorption panel 200 abuts against at most one adjacent carbon dioxide adsorption panel 200, the multiple carbon dioxide adsorption panels 200 can sequentially abut against each other, improving their integrity.
[0043] Combine Figure 3As shown, in another embodiment, a gap exists between two adjacent carbon dioxide adsorption panels 200, with the gap at one end being larger than the gap at the other end. In this way, air passes through multiple carbon dioxide adsorption panels 200 within the airflow channel 101, where carbon dioxide is adsorbed by the panels 200. The gap between two adjacent carbon dioxide adsorption panels 200 is larger at one end and smaller at the other. Where the gap is smaller, the flow resistance is greater, making it easier for air to flow toward and through the panels 200, facilitating carbon dioxide adsorption by the panels 200.
[0044] Optionally, one end of a carbon dioxide adsorption plate 200 may be spaced closer to one end of an adjacent carbon dioxide adsorption plate 200, and further spaced from one end of another adjacent carbon dioxide adsorption plate 200. This prevents the carbon dioxide adsorption plates 200 from having smaller spacing on the same side, thereby ensuring the adsorption effect of the carbon dioxide adsorption plates 200.
[0045] It can be understood that the above interval refers to the distance between the endpoints of the same side of two adjacent carbon dioxide adsorption plates 200 .
[0046] Illustratively, a plurality of carbon dioxide adsorption plates 200 are sequentially arranged in a continuous V-shape within the air flow channel 101 .
[0047] Optionally, adjacent carbon dioxide adsorption plates 200 have a first angle 201 therebetween; wherein the first angle 201 is greater than or equal to 7° and less than or equal to 17°. Thus, when the first angle 201 is less than 7°, the spacing between two adjacent carbon dioxide adsorption plates 200 is small, requiring a larger number of carbon dioxide adsorption plates 200 to be disposed within the airflow channel 101, resulting in relatively high production costs. When the first angle 201 is greater than 17°, the number of carbon dioxide adsorption plates 200 that can be disposed within the airflow channel 101 is too small, resulting in excessive air flow resistance, which affects the flow rate within the airflow channel 101. Therefore, a range in which the first angle 201 is greater than or equal to 7° and less than or equal to 17° is more reasonable, has relatively low production costs, relatively low air flow resistance, and reduces the impact on the flow rate within the airflow channel 101.
[0048] Optionally, the first angle 201 is 12°. In this way, the sum of the flow rates of the plurality of carbon dioxide adsorption panels 200 matches the flow rate in the airflow channel 101, resulting in relatively low production costs, relatively small air flow resistance, and reduced impact on the flow rate in the airflow channel 101.
[0049] Combine Figure 4As shown, optionally, a first baffle 120 is provided at the edge of the airflow channel 101 for limiting the position of the carbon dioxide adsorption plate 200. Thus, the first baffle 120 provides support and position limiting for the carbon dioxide adsorption plate 200, improving the stability of the carbon dioxide adsorption plate 200 when inserted into the slot 110 and reducing the risk of the carbon dioxide adsorption plate 200 shaking.
[0050] Optionally, multiple first baffles 120 are provided, with each first baffle 120 abutting against the same side of two adjacent carbon dioxide adsorption plates 200. In this way, one first baffle 120 provides support and position limiting for two carbon dioxide adsorption plates 200, reducing the number of first baffles 120 provided, allowing the spacing between the first baffles 120 to be relatively large, thereby reducing flow resistance.
[0051] Specifically, the plurality of first baffles 120 are evenly arranged, so that the intervals between the plurality of first baffles 120 are relatively even, and the air flow is more even.
[0052] Optionally, the first baffle 120 is provided with two first inclined surfaces 121, which respectively abut against the same side of the two carbon dioxide adsorption plates 200. In this way, the first inclined surfaces 121 are adapted to the inclined carbon dioxide adsorption plates 200, and can better fit the carbon dioxide adsorption plates 200, providing better support and positioning effects.
[0053] Combine Figure 5 As shown, optionally, a plurality of first protrusions 130 and a plurality of second protrusions 140 are provided on the inner sidewall of the fixed frame 100. The plurality of first protrusions 130 and the plurality of second protrusions 140 together enclose a plurality of slots 110. In this way, the first protrusions 130 and the second protrusions 140 provide support and position limiting for the carbon dioxide adsorption panels 200, thereby improving the stability of the carbon dioxide adsorption panels 200 when inserted into the slots 110.
[0054] Optionally, the first protrusion 130 is a protrusion block 131, and the protrusion block 131 is fixedly connected to the inner side wall of the fixing frame 100. In this way, the protrusion block 131 is fixed to the fixing frame 100, and the connection stability is higher.
[0055] Optionally, the second raised portion 140 is a raised plate 141 fixedly connected to the inner sidewall of the fixed frame 100, with the raised block 131 and the raised plate 141 defining a slot 110. This allows the raised plate 141 to be fixed to the fixed frame 100, providing greater connection stability. The raised block 131 and the raised plate 141 cooperate to provide support and position limiting for the carbon dioxide adsorption plate 200, further enhancing stability.
[0056] Optionally, multiple first protrusions 130 and multiple second protrusions 140 are alternately arranged, and some first protrusions 130 and two adjacent second protrusions 140 enclose two slots 110. In this way, the number of first protrusions 130 can be reduced, reducing production costs.
[0057] Specifically, multiple raised blocks 131 are alternately arranged with multiple raised plates 141. Some raised blocks 131 and two adjacent raised plates 141 define two slots 110. This reduces the number of raised blocks 131 required, lowering production costs. Furthermore, the raised blocks 131 and raised plates 141 work together to provide support and position control for the carbon dioxide adsorption plate 200, resulting in improved stability.
[0058] Optionally, the ends of the first and second protrusions 130 and 140 facing the side where the carbon dioxide adsorption plate 200 is inserted are each formed with an arc-shaped structure 150. In this way, the arc-shaped structure 150 provides guidance for inserting the carbon dioxide adsorption plate 200 into the slot 110, improving the efficiency of inserting the carbon dioxide adsorption plate 200 into the slot 110. Furthermore, the risk of scratching the carbon dioxide adsorption plate 200 by the arc-shaped structure 150 is relatively low.
[0059] Specifically, the ends of the raised block 131 and the raised plate 141 facing the side where the carbon dioxide adsorption plate 200 is inserted are each formed with an arc-shaped structure 150. This arc-shaped structure 150 guides the carbon dioxide adsorption plate 200 when inserted into the slot 110, improving the efficiency of insertion. Furthermore, the arc-shaped structure 150 reduces the risk of scratching the carbon dioxide adsorption plate 200.
[0060] Combine Figure 6 and Figure 7 As shown, the carbon dioxide adsorption assembly optionally further includes a limiting frame 300. The limiting frame 300 is detachably connected to the edge of the fixed frame 100 on the side where the carbon dioxide adsorption plate 200 is inserted, and is used to limit the position of the carbon dioxide adsorption plate 200. In this way, the limiting frame 300 is connected to the fixed frame 100, restricting the movement of the carbon dioxide adsorption plate 200 away from the fixed frame 100, reducing the risk of the carbon dioxide adsorption plate 200 falling out of the fixed frame 100. Furthermore, the detachable connection between the limiting frame 300 and the fixed frame 100 facilitates replacement and maintenance of the carbon dioxide adsorption plate 200.
[0061] Optionally, the fixed frame 100 is provided with a first connecting block 160, which is provided with a first through-hole 161. The limiting frame 300 is provided with a second connecting block 310 at a position corresponding to the first connecting block 160, which is provided with a second through-hole 311. Bolts pass through the first through-hole 161 and the second through-hole 311 to secure the limiting frame 300 to the fixed frame 100. In this way, by passing the bolts through the first through-hole 161 and the second through-hole 311 and cooperating with the first connecting block 160 and the second connecting block 310, a detachable connection is achieved between the fixed frame 100 and the limiting frame 300, and the connection is highly stable.
[0062] Optionally, the fixing frame 100 and the limiting frame 300 are both rectangular frame structures. In this way, the shapes of the fixing frame 100 and the limiting frame 300 are more regular, and the shapes of the fixing frame 100 and the limiting frame 300 correspond to each other, so the integrity is better.
[0063] Optionally, the carbon dioxide adsorption plate 200 is a rectangular plate structure. In this way, the shape of the carbon dioxide adsorption plate 200 corresponds to the shape of the fixed frame 100 , so that the carbon dioxide adsorption plate 200 can be better arranged in the fixed frame 100 .
[0064] Optionally, the limiting frame 300 is provided with a second baffle 320 for limiting the position of the carbon dioxide adsorption panels 200. Multiple second baffles 320 are provided, with each second baffle 320 abutting the same side of two adjacent carbon dioxide adsorption panels 200. In this way, the second baffles 320 provide support and position limiting for the ends of the carbon dioxide adsorption panels 200 facing away from the fixed frame 100, reducing the risk of the carbon dioxide adsorption panels 200 falling out of the slots 110 and the risk of the carbon dioxide adsorption panels 200 shaking.
[0065] As will be appreciated, the first baffle 120 and the second baffle 320 cooperate to provide support and position restraint for the multiple carbon dioxide adsorption panels 200 at both ends. Furthermore, the first baffle 120 and the second baffle 320 can block the small gaps between two adjacent carbon dioxide adsorption panels 200, thereby preventing airflow from passing through the small gaps and allowing airflow to flow through the carbon dioxide adsorption panels 200. Specifically, airflow within the airflow channel 101 passes between the second baffles 320, flows toward and through the carbon dioxide adsorption panels 200, and then flows out from between the first baffles 120.
[0066] Optionally, the second baffle 320 is provided with two second inclined surfaces 321, which respectively abut against the same side of the two carbon dioxide adsorption plates 200. Thus, since the carbon dioxide adsorption plates 200 are arranged at an angle within the airflow channel 101, the second inclined surfaces 321 are adapted to the inclined carbon dioxide adsorption plates 200, better fitting therewith and improving the supporting and limiting effects.
[0067] Optionally, the width of the second baffle 320 is less than or equal to twice the thickness of the carbon dioxide adsorption plate 200, and greater than or equal to the thickness of the carbon dioxide adsorption plate 200. Thus, if the width of the second baffle 320 is greater than twice the thickness of the carbon dioxide adsorption plate 200, the width of the second baffle 320 is too large, and the flow spacing between the second baffles 320 is small, which affects the flow rate within the airflow channel 101. If the width of the second baffle 320 is less than the thickness of the carbon dioxide adsorption plate 200, the contact area between each second baffle 320 and the carbon dioxide adsorption plate 200 is relatively small, and the support and position limiting effect of the carbon dioxide adsorption plate 200 is relatively poor. Therefore, it can be seen that the range of the width of the second baffle 320 being less than or equal to twice the thickness of the carbon dioxide adsorption plate 200 and greater than or equal to the thickness of the carbon dioxide adsorption plate 200 is more reasonable, reducing the impact of the flow rate within the airflow channel 101 and providing relatively good support and position limiting effect for the carbon dioxide adsorption plate 200.
[0068] Specifically, the width of the second baffle 320 is 1.8 times the thickness of the carbon dioxide adsorption plate 200. Thus, because the carbon dioxide adsorption plates 200 are arranged obliquely within the airflow channel 101, the second baffle 320 can shield the ends of the two carbon dioxide adsorption plates 200 where they contact the second baffle 320, reducing the risk of the ends of the carbon dioxide adsorption plates 200 being exposed and protruding, thereby improving the overall integrity. This also reduces the impact of the flow rate within the airflow channel 101, providing relatively effective support and positioning for the carbon dioxide adsorption plates 200.
[0069] Specifically, there is a gap between the two second inclined surfaces 321 .
[0070] In some embodiments, an air conditioner includes: a carbon dioxide adsorption component as described in the above embodiments.
[0071] The air conditioner provided by the embodiment of the present disclosure includes a carbon dioxide adsorption assembly as described in the above embodiment, and because a plurality of slots 110 are provided within the fixed frame 100, and a plurality of carbon dioxide adsorption panels 200 are removably inserted into the slots 110, if the carbon dioxide adsorption panels 200 age or fail, the panels 200 can be easily removed from the slots 110 and replaced with new ones. This reduces the difficulty of replacing the carbon dioxide adsorption panels 200 and improves the user experience.
[0072] 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 carbon dioxide adsorption component, characterized in that: include: A fixed frame (100) defines an air flow channel (101) in the middle, and a plurality of slots (110) are provided inside the fixed frame (100); A plurality of carbon dioxide adsorption plates (200) are provided and can be detachably inserted into the plurality of slots (110).
2. The carbon dioxide adsorption assembly according to claim 1, characterized in that: There is a gap between two adjacent carbon dioxide adsorption plates (200), and the gap at one end is larger than the gap at the other end.
3. The carbon dioxide adsorption assembly according to claim 2, characterized in that: There is a first angle (201) between adjacent carbon dioxide adsorption plates (200); Wherein, the first angle (201) is greater than or equal to 7° and less than or equal to 17°.
4. The carbon dioxide adsorption assembly according to claim 1, characterized in that: A first baffle (120) for limiting the position of the carbon dioxide adsorption plate (200) is provided at the edge of the airflow channel (101).
5. The carbon dioxide adsorption assembly according to claim 4, characterized in that: A plurality of first baffles (120) are provided, and each first baffle (120) abuts against the same side of two adjacent carbon dioxide adsorption plates (200).
6. The carbon dioxide adsorption assembly according to claim 1, characterized in that: A plurality of first protrusions (130) and a plurality of second protrusions (140) are provided on the inner side wall of the fixed frame (100), and the plurality of first protrusions (130) and the plurality of second protrusions (140) jointly enclose a plurality of slots (110).
7. The carbon dioxide adsorption assembly according to claim 6, characterized in that: One end of the first protrusion (130) and the second protrusion (140) facing the carbon dioxide adsorption plate (200) insertion side is an arc-shaped structure (150).
8. The carbon dioxide adsorption assembly according to any one of claims 1 to 7, characterized in that: Also includes: The limiting frame (300) is detachably connected to the edge of the fixed frame (100) on the side where the carbon dioxide adsorption plate (200) is inserted, and is used to limit the position of the carbon dioxide adsorption plate (200).
9. The carbon dioxide adsorption assembly according to claim 8, characterized in that: A second baffle (320) for limiting the position of the carbon dioxide adsorption plate (200) is provided on the limiting frame (300), a plurality of second baffles (320) are provided, and each second baffle (320) abuts against the same side of two adjacent carbon dioxide adsorption plates (200).
10. An air conditioner, characterized in that: Comprising the carbon dioxide adsorption assembly according to any one of claims 1 to 9.