Air processing module and air conditioner with same

By designing an air treatment module combining pulse lamp sterilization module and negative ion emission probe in the air conditioner, the problem of insufficient sterilization effect of existing air conditioners is solved, and more efficient air purification and cleaning effects are achieved.

CN120062687APending Publication Date: 2025-05-30GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202311612537.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-28
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

The existing air conditioners are insufficient in sterilization and cannot meet users' high requirements for air purification and cleaning.

Method used

An air treatment module is designed, combining the pulse lamp sterilization module and a negative ion emission probe, and power is supplied simultaneously through high-voltage packages to improve the sterilization effect of the airflow and prevent bacteria from growing on the inner wall of the air duct and the surface of the internal structure.

Benefits of technology

It significantly improves the sterilization effect of the air treatment module on airflow, provides cleaner, hygienic and healthy air, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120062687A_ABST
    Figure CN120062687A_ABST
Patent Text Reader

Abstract

The invention discloses an air treatment module and an air conditioner with the air treatment module, and the air treatment module comprises a shell, an air inlet, an air outlet, a first air inlet and a second air outlet, the exhaust inlet and the exhaust outlet are communicated through the air duct; the pulse lamp sterilization module is arranged on the shell and used for emitting pulse lamp light into the air duct; the negative ion emission probe is arranged on the shell and is used for emitting negative ions into the air duct; the high-voltage pack is arranged on the outer surface of the shell, and the high-voltage pack is connected with the pulse lamp sterilization module and the negative ion emission probe and used for supplying power to the pulse lamp sterilization module and the negative ion emission probe; the fan assembly is arranged in the air duct and used for driving air flow to flow from the air suction opening to the air exhaust opening. According to the air treatment module, by combining the sterilization advantages of the pulse lamp sterilization module and the negative ion emission probe, the sterilization effect of the air treatment module can be improved, and bacterium breeding on the inner wall of the air duct and the surface of the internal structure of the air duct is prevented.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of air treatment equipment, and more particularly to an air treatment module and an air conditioner having the same. Background Art

[0002] With the continuous development of society, people's requirements for the quality of life are gradually increasing. The user's demand for air conditioners has shifted from traditional cooling and heating needs to the direction of comfortable experience, and more attention is paid to the problem of air purification and cleaning. In the prior art, some air conditioners have a certain sterilization function, but the sterilization effect far fails to meet the user's needs. Summary of the Invention

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. For this purpose, the present invention provides an air treatment module, which combines the sterilization advantages of a pulsed lamp sterilization module and a negative ion emission probe, can improve the sterilization effect of the air treatment module on the air flow, and prevent bacteria from growing on the inner wall of the air duct and the surface of the internal structure of the air duct.

[0004] The present invention also provides an air conditioner, which includes the above-mentioned air treatment module.

[0005] The air treatment module according to an embodiment of the present invention includes: a housing having an air inlet and an air outlet; an air duct disposed in the housing, the air inlet and the air outlet being connected through the air duct; a pulsed lamp sterilization module disposed on the housing for emitting pulsed light into the air duct; a negative ion emission probe disposed on the housing for emitting negative ions into the air duct; a high-voltage package, there is one high-voltage package disposed on the outer surface of the housing, the high-voltage package is connected to the pulsed lamp sterilization module and the negative ion emission probe for supplying power to the pulsed lamp sterilization module and the negative ion emission probe; a fan assembly disposed in the air duct for driving the air flow to flow from the air inlet to the air outlet.

[0006] The air treatment module according to an embodiment of the present invention can supply power to the pulsed lamp sterilization module and the negative ion emission probe simultaneously by one high-voltage package. On the basis of reducing the production cost of the air treatment module, it combines the sterilization advantages of the pulsed lamp sterilization module and the negative ion emission probe, so that the air flow entering the air duct first passes through the negative ions to adsorb dust and bacteria to make them settle, and then the pulsed lamp sterilization module emits pulsed light to kill and sterilize, which can improve the sterilization effect of the air treatment module on the air flow in the air duct, prevent bacteria from growing on the inner wall of the air duct and the surface of the internal structure of the air duct, thereby providing cleaner, hygienic and healthy air for users and being beneficial to improving the user experience.

[0007] In addition, the air treatment module according to the present invention may further have the following additional technical features:

[0008] In some embodiments, the air duct includes a first air duct and a second air duct, and the housing includes: an air duct member within which the first air duct is defined, and the fan assembly is disposed within the first air duct; an air outlet frame connected to the air duct member, within which the second air duct is defined, and the second air duct communicates with the first air duct. One end of the first air duct facing away from the second air duct is configured as the air suction port, and one end of the second air duct facing away from the first air duct is configured as the air discharge port. The pulsed lamp sterilization module is configured to emit pulsed light into the second air duct, and the negative ion emission probe is configured to emit negative ions into the second air duct.

[0009] In some embodiments, there are two air discharge ports respectively disposed on opposite side walls of the air outlet frame, and the pulsed lamp sterilization module is disposed between the two air discharge ports.

[0010] In some embodiments, the air outlet frame is disposed above the air duct member, and the upper end of the air outlet frame has a recessed portion that recesses downward. The recessed portion penetrates the air outlet frame in a direction perpendicular to the arrangement direction of the two air discharge ports, and the pulsed lamp sterilization module is disposed on the bottom wall of the recessed portion.

[0011] In some embodiments, the opposite inner walls of the recessed portion are inclined away from each other in the upward direction.

[0012] In some embodiments, the negative ion emission probe is disposed at one end where the second air duct communicates with the first air duct and is disposed opposite to the outlet of the first air duct.

[0013] In some embodiments, the air treatment module further includes: an electrostatic dust removal net disposed within the air duct. Along the direction of air flow, the electrostatic dust removal net is disposed downstream of the negative ion emission probe.

[0014] In some embodiments, the air treatment module further includes: a wet film disposed within the air duct and disposed opposite to the pulsed lamp sterilization module; a humidification water tank disposed outside the housing and connected to the housing for supplying water to the wet film.

[0015] In some embodiments, along the direction of air flow, the wet film is located downstream of the negative ion emission probe.

[0016] In some embodiments, the air treatment module also includes: an electrostatic dust removal net, which is arranged in the air duct and downstream of the negative ion emission probe along the air flow direction; a wet film, which is arranged in the air duct and downstream of the electrostatic dust removal net along the air flow direction.

[0017] In some embodiments, the high-voltage package is disposed on a side wall of the air outlet frame and is located on a different side from the air outlet.

[0018] In some embodiments, a mounting hole is provided on the shell, and the pulse lamp sterilization module is inserted into the mounting hole and connected to the shell via fasteners.

[0019] In some embodiments, the pulse lamp sterilization module includes: a mounting base, which is inserted into the mounting hole and connected to the shell; a protective cover, which is a transparent member, connected to the mounting base and jointly define an installation space, and the protective cover is located on the side of the mounting base facing the air duct; a pulse lamp, which is arranged in the installation space; a reflector, which is at least partially arranged in the installation space and is located on the side of the pulse lamp away from the air duct, and the reflector is an arc-shaped convex facing away from the air duct.

[0020] In some embodiments, the pulse lamp sterilization module further includes: a fixing seat, which is disposed in the installation space and connected to the mounting seat. The fixing seats are disposed at both ends of the pulse lamp in the length direction and are fixed between the fixing seat and the mounting seat.

[0021] In some embodiments, both ends of the reflective sheet in the width direction have flanges, the flanges are located between the protective cover and the mounting seat, and both ends of the protective cover in the width direction have fixed bosses extending toward the mounting seat, and the fixed bosses abut against the flanges.

[0022] In some embodiments, a mounting groove is provided on the shell, and at least a portion of the high-voltage package is located in the mounting groove and connected to the shell via a fastener.

[0023] In some embodiments, the high-voltage package is connected to the pulse lamp sterilization module via wiring, and a plurality of wiring buckles arranged at intervals along the length direction of the wiring are provided on the outer surface of the shell, and the wiring card is arranged in the wiring buckle; and / or, the high-voltage package is connected to the negative ion emission probe via wiring, and a plurality of wiring buckles arranged at intervals along the length direction of the wiring are provided on the outer surface of the shell, and the wiring card is arranged in the wiring buckle.

[0024] In some embodiments, the wire clip includes two clips arranged at intervals. Each clip includes a connecting portion and a limiting portion. One ends of the two connecting portions are both connected to the housing and arranged at intervals, and the other ends of the two connecting portions are both connected to the limiting portion. The limiting portion is located between the two connecting portions. In the direction towards the housing, the distance between the two limiting portions gradually decreases. The wire is located between the two connecting portions, the two limiting portions and the housing.

[0025] In some embodiments, a through hole is provided on the housing, and the negative ion emission probe is inserted into the through hole.

[0026] The air conditioner according to an embodiment of the present invention includes: a housing; the above-mentioned air treatment module, the air treatment module is arranged in the housing, and a first air inlet communicated with the air suction port and a first air outlet communicated with the air discharge port are provided on the housing.

[0027] For the air conditioner according to an embodiment of the present invention, by providing the above-mentioned air treatment module and supplying power to the pulse lamp sterilization module and the negative ion emission probe by one high-voltage package at the same time, on the basis of reducing the production cost of the air treatment module, combining the sterilization advantages of the pulse lamp sterilization module and the negative ion emission probe, the air flow entering the air duct can pass through the negative ion adsorption of dust and bacteria to make it settle and the pulse lamp sterilization module emit pulse light for sterilization and disinfection in sequence, which can improve the sterilization effect of the air treatment module on the air flow in the air duct, prevent the growth of bacteria on the inner wall of the air duct and the surface of the internal structure of the air duct, thereby providing cleaner, hygienic and healthy air for users and being beneficial to improving the user experience.

[0028] In addition, the air conditioner according to the present invention may further have the following additional technical features:

[0029] In some embodiments, the first air inlet includes a first sub-air inlet and a second sub-air inlet. The first sub-air inlet is communicated with the indoor environment, and the second sub-air inlet is communicated with the outdoor environment.

[0030] The additional aspects and advantages of the present invention will be partially given in the following description, partially become obvious from the following description, or be understood through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] The above and / or additional aspects and advantages of the present invention will become obvious and easy to understand from the description of the embodiments in conjunction with the following drawings, wherein:

[0032] Figure 1 is the front view of the air conditioner according to an embodiment of the present invention;

[0033] Figure 2 is the exploded view of the air conditioner according to an embodiment of the present invention;

[0034] Figure 3 is an exploded view of the air handling module of the air conditioner according to an embodiment of the present invention in cooperation with a part of the housing;

[0035] Figure 4 is a perspective view of the air handling module according to an embodiment of the present invention;

[0036] Figure 5 is Figure 4 an enlarged view of part A in

[0037] Figure 6 is Figure 5 an enlarged view of part B in

[0038] Figure 7 is a front view of the air handling module according to an embodiment of the present invention;

[0039] Figure 8 is along Figure 7 a cross-sectional view taken along line C-C in

[0040] Figure 9 is Figure 8 an enlarged view of part D in

[0041] Figure 10 is an exploded view of the air handling module according to an embodiment of the present invention, wherein the air duct member is not shown;

[0042] Figure 11 is a perspective view of the pulse lamp sterilization module, negative ion emission probe and high voltage package of the air handling module according to an embodiment of the present invention;

[0043] Figure 12 is an exploded view of the pulse lamp sterilization module of the air handling module according to an embodiment of the present invention;

[0044] Figure 13 is a perspective view of the pulse lamp sterilization module of the air handling module according to an embodiment of the present invention, wherein the protective cover is not shown;

[0045] Figure 14 is a bottom view of the pulse lamp sterilization module of the air handling module according to an embodiment of the present invention;

[0046] Figure 15 is along Figure 14 a cross-sectional view taken along line E-E in

[0047] Figure 16 is Figure 15 an enlarged view of part F in

[0048] Reference numerals:

[0049] 100, air conditioner;

[0050] 10. Air treatment module

[0051] 1. Housing; 11. Air duct member; 12. Air outlet frame; 121. Recessed portion; 122. Mounting hole; 123. Mounting groove; 124. Through hole; 125. Cable clip; 126. Snap; 1261. Connecting portion; 1262. Limiting portion; 127. First mounting post; 128. Second mounting post; 13. Air duct; 131. First air duct; 132. Second air duct; 14. Air suction port; 15. Air discharge port

[0052] 2. Pulse lamp sterilization module; 21. Mounting base; 211. Mounting space; 212. First mounting lug; 22. Protective cover; 221. Fixed boss; 23. Pulse lamp; 24. Reflective sheet; 241. Flange; 25. Fixed seat

[0053] 3. Negative ion emission probe

[0054] 4. High-voltage package; 41. Cable routing; 42. Second mounting lug

[0055] 5. Fan assembly

[0056] 6. Electrostatic precipitator mesh

[0057] 7. Wet film

[0058] 8. Humidification water tank

[0059] 20. Outer shell

[0060] 91. Air outlet frame component; 911. Second air outlet; 92. Panel assembly; 921. Upper panel; 922. Lower panel; 93. Top cover; 94. Chassis component; 95. Rear box component; 951. First air inlet; 952. First air outlet; 953. Second air inlet; 954. Air inlet grille

[0061] 30. Air duct component

[0062] 40. Heat exchange component; 401. Water receiving tray Detailed implementation manners

[0063] The embodiments of the present invention will be described in detail below. The examples of the embodiments are shown in the drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary and are only used to explain the present invention and should not be construed as a limitation to the present invention.

[0064] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by terms such as "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.

[0065] In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, "a plurality of" means two or more unless otherwise specifically defined.

[0066] In the present invention, unless otherwise clearly specified and limited, terms such as "mounted", "connected", "connected to", "fixed" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection, an electrical connection, or a communication connection; it may be directly connected, or indirectly connected through an intermediate medium, and may be the internal communication of two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0067] The air treatment module 10 according to an embodiment of the present invention will be described below with reference to the drawings.

[0068] As Figure 8 shown, the air treatment module 10 according to an embodiment of the present invention includes a housing 1, an air duct 13, a pulsed lamp sterilization module 2, a negative ion emission probe 3, a high-voltage package 4, and a fan assembly 5.

[0069] Specifically, referring to the attached Figure 4 and the attached Figure 7 shown, the housing 1 can protect the internal structure of the air treatment module 10, prevent the internal structure of the air treatment module 10 from being exposed and damaged, is beneficial to extending the service life of the air treatment module 10, and has a good appearance effect.

[0070] Further, referring to the attached Figure 3As shown in the figure, the housing 1 has an air intake 14 and an air outlet 15. The air duct 13 is arranged inside the housing 1. The air intake 14 and the air outlet 15 are connected through the air duct 13. The pulsed lamp sterilization module 2 is arranged on the housing 1 and is used to emit pulsed light into the air duct 13 to sterilize the air flow entering the air duct 13, so that the sterilized air flow blows into the room, providing cleaner, more hygienic and healthier air for users, which is beneficial to improving the user experience. Moreover, the pulsed light emitted by the pulsed lamp sterilization module 2 can also sterilize and disinfect the inner wall of the air duct 13 and the internal structure of the air duct 13, preventing the growth of bacteria on the inner wall of the air duct 13 and the surface of components.

[0071] Furthermore, referring to the attached Figure 3 and the attached Figure 5 As shown in the figure, the negative ion emission probe 3 is arranged on the housing 1 and is used to emit negative ions into the air duct 13. The negative ions can adsorb on the dust and bacteria in the air duct 13, making the dust and bacteria negatively charged and coagulating and settling, further reducing the dust and bacteria in the air flow in the air duct 13.

[0072] Still further, referring to the attached Figure 4 and the attached Figure 5 As shown in the figure, there is one high-voltage package 4 and it is arranged on the outer surface of the housing 1. The high-voltage package 4 is connected to the pulsed lamp sterilization module 2 and the negative ion emission probe 3 and is used to supply power to the pulsed lamp sterilization module 2 and the negative ion emission probe 3. The pulsed lamp sterilization module 2 and the negative ion emission probe 3 share one high-voltage package 4, realizing the integration of the pulsed lamp sterilization module 2 and the negative ion emission probe 3. It can reduce the production cost of the air treatment module 10 while independently controlling the pulsed lamp sterilization module 2 and the negative ion emission probe 3, combining the sterilization advantages of the pulsed lamp sterilization module 2 and the negative ion emission probe 3, improving the sterilization effect on the air flow in the air duct 13, preventing the growth of bacteria on the inner wall of the air duct 13 and the surface of the internal structure of the air duct 13, and providing cleaner, more hygienic and healthier air for users, which is beneficial to improving the user experience.

[0073] Further, referring to the attached Figure 8 As shown in the figure, the fan assembly 5 is arranged in the air duct 13 and is used to drive the air flow to flow from the air intake 14 to the air outlet 15. It can be understood that the air flow enters the air treatment module 10 from the air intake 14 under the drive of the fan assembly 5, successively passes through the negative ion adsorption of dust and bacteria to make them settle and the pulsed lamp sterilization module 2 emitting pulsed light to kill and sterilize, and finally flows out of the air treatment module 10 from the air outlet 15, which can provide cleaner, more hygienic and healthier air for users, which is beneficial to improving the user experience.

[0074] According to the air treatment module 10 of the embodiment of the present invention, a high-voltage package 4 is used to simultaneously power the pulse lamp sterilization module 2 and the negative ion emission probe 3. On the basis of reducing the production cost of the air treatment module 10, the sterilization advantages of the pulse lamp sterilization module 2 and the negative ion emission probe 3 are combined, so that the airflow entering the air duct 13 is successively passed through the negative ions to adsorb dust and bacteria to make them settle and the pulse lamp sterilization module 2 emits pulse light to kill and sterilize. The sterilization effect of the air treatment module 10 on the airflow in the air duct 13 can be improved, and bacteria can be prevented from growing on the inner wall of the air duct 13 and the surface of the internal structure of the air duct 13, thereby providing users with cleaner, more hygienic and healthier air, which is conducive to improving the user experience.

[0075] In some embodiments of the present invention, Figure 8 As shown, the air duct 13 includes a first air duct 131 and a second air duct 132, the shell 1 includes an air duct piece 11 and an air outlet frame 12, the first air duct 131 is defined in the air duct piece 11, the fan assembly 5 is arranged in the first air duct 131, the air outlet frame 12 is connected to the air duct piece 11, the second air duct 132 is defined in the air outlet frame 12, the second air duct 132 is connected to the first air duct 131, the end of the first air duct 131 away from the second air duct 132 is configured as an air intake port 14, the end of the second air duct 132 away from the first air duct 131 is configured as an air exhaust port 15, the pulse lamp sterilization module 2 is used to emit pulse light into the second air duct 132, the negative ion emission probe 3 is used to emit negative ions into the second air duct 132, and the shell 1 is split into the air duct piece 11 and the air outlet frame 12, which can facilitate the production and processing of the shell 1 and reduce the production difficulty of the air treatment module 10.

[0076] It is understandable that if Figure 8 As shown, the air flow, driven by the fan assembly 5, enters the first air duct 131 from the air intake port 14, and then flows to the second air duct 132. After the dust and bacteria are adsorbed by negative ions to make them settle and the pulse lamp sterilization module 2 emits pulse light to kill and sterilize, it flows out of the second air duct 132 from the air outlet 15, which can provide users with cleaner, more hygienic and healthier air, and is conducive to improving the user experience.

[0077] In a further embodiment of the present invention, referring to the attached Figure 10 As shown, there are two air outlets 15, which are respectively arranged on the two opposite side walls of the air outlet frame 12, which can expand the air outlet area of ​​the air processing module 10, improve the air outlet efficiency at the air outlet 15, and increase the air outlet volume of the air processing module 10. Figure 5As shown, the pulsed lamp sterilization module 2 is arranged between two air outlets 15, so that the pulsed light emitted by the pulsed lamp sterilization module 2 can kill and sterilize the air flows respectively flowing to the two air outlets 15, and prevent bacteria from breeding on the inner wall surface of the air duct 13 at the two air outlets 15, making full use of the pulsed light emitted by the pulsed lamp 23 sterilization component, further improving the sterilization effect of the air treatment module 10 and relatively reducing the sterilization cost of the air treatment module 10.

[0078] In a further embodiment of the present invention, referring to the attached Figure 4 As shown, the air outlet frame 12 is arranged above the air duct member 11. The upper end of the air outlet frame 12 has a recessed portion 121 that is recessed downward. The recessed portion 121 penetrates the air outlet frame 12 in a direction perpendicular to the arrangement direction of the two air outlets 15 (the left-right direction shown in the attached Figure 4 figure). The pulsed lamp sterilization module 2 is arranged on the bottom wall of the recessed portion 121, so as to avoid the inner wall of the air duct 13 blocking the pulsed light emitted by the pulsed lamp sterilization module 2, making the irradiation range of the pulsed light of the pulsed lamp sterilization module 2 larger, expanding the sterilization area of the pulsed lamp sterilization module 2, and can make full use of the internal space of the air treatment module 10 to improve the space utilization rate of the air treatment module 10. It should be noted that the setting of the recessed portion 121 can play a guiding role in the air flow, naturally diverting the air flow in the second air duct 132, facilitating the flow of the air flow, and can reduce the space in the second air duct 132, effectively reducing the cavity abnormal sound, reducing the noise in the air treatment module 10, improving the user experience and meeting the user's use requirements.

[0079] In a further embodiment of the present invention, referring to the attached Figure 4 As shown, the two opposite inner walls of the recessed portion 121 are inclined away from each other in the upward direction (as shown in Figure 4 the figure), which can further reduce the space in the second air duct 132, effectively reduce the cavity abnormal sound, reduce the noise in the air treatment module 10, improve the user experience and meet the user's use requirements, and can gradually divert the air flow, avoiding too much influence on the air flow and avoiding affecting the normal air outlet at the air outlet 15, ensuring the air outlet volume at the air outlet 15.

[0080] In a further embodiment of the present invention, referring jointly to the attached Figure 5 and the attached Figure 8As shown, the negative ion emission probe 3 is arranged at one end where the second air duct 132 communicates with the first air duct 131 and is disposed opposite to the outlet of the first air duct 131. It can emit negative ions towards the connection between the second air duct 132 and the first air duct 131. After the air flow flows from the first air duct 131 to the second air duct 132, the negative ions are immediately adsorbed on dust and bacteria, making the dust and bacteria negatively charged and causing them to coagulate and settle. This can prevent the air flow from directly flowing out of the air treatment module 10 without passing through negative ion sterilization, and leave sufficient space and time for the secondary sterilization and disinfection of the pulsed lamp sterilization module 2.

[0081] Further, referring to the attached Figure 5 and the attached Figure 11 As shown, along the direction of the air flow, there are two negative ion emission probes 3 arranged at intervals. The two negative ion emission probes 3 can expand the area where the negative ion emission probe 3 emits negative ions, thereby increasing the area covered by negative ions, increasing the content of negative ions in the second air duct 132, increasing the probability of negative ions adsorbing dust and bacteria in the air flow, enabling more dust and bacteria to be negatively charged and coagulate and settle, further achieving the purpose of sterilization, improving the sterilization effect of the air treatment module 10, and enhancing the user experience.

[0082] In some embodiments of the present invention, referring to the attached Figure 8 and the attached Figure 9 As shown, the air treatment module 10 further includes an electrostatic dust removal net 6. The electrostatic dust removal net 6 is arranged in the air duct 13. Along the direction of the air flow (such as Figure 8 the up and down direction shown), the electrostatic dust removal net 6 is arranged downstream of the negative ion emission probe 3. Compared with the prior art, the present invention does not require an additional charging module. The air flow in the air duct 13 first flows through the area where the negative ion emission probe 3 emits negative ions. The negative ions are adsorbed on the dust and bacteria in the air flow to make them negatively charged. Then, the negatively charged dust and bacteria flow towards the electrostatic dust removal net 6 with the air flow. The electrostatic dust removal net 6 adsorbs the negatively charged dust and bacteria and causes them to settle, thereby achieving the purpose of sterilization, improving the sterilization effect of the air treatment module 10, and reducing the production cost of the air treatment module 10.

[0083] Preferably, the electrostatic dust removal net 6 is detachably arranged in the air duct 13. When too much dust and bacteria are adsorbed on the electrostatic dust removal net 6, the electrostatic dust removal net 6 can be disassembled, cleaned, and reinstalled. There is no need to purchase and replace the filter element, and it has a long service life, can continuously provide high-efficiency filtering effect, can reduce the use cost of the air treatment module 10, and further enhance the user experience.

[0084] In some embodiments of the present invention, referring to the attached Figure 9As shown, the air treatment module 10 further includes a wet film 7 and a humidifying water tank 8. The wet film 7 is arranged in the air duct 13 and is disposed opposite to the pulsed lamp sterilization module 2, which facilitates the pulsed lamp sterilization module 2 to sterilize the wet film 7 and the air flow passing through the wet film 7, preventing bacteria from growing on the wet film 7. Further, referring to the appendix Figure 3 As shown, the humidifying water tank 8 is arranged outside the housing 1 and is connected to the housing 1. A certain amount of water is stored in the humidifying water tank 8 for supplying water to the wet film 7. The lower end of the wet film 7 is immersed in the water, and the water is absorbed by the wet film 7 to form a uniform water film. Before the air flow in the air duct 13 flows out of the air treatment module 10 from the air outlet 15, it will first pass through the wet and humid wet film 7. The wet film 7 can humidify the air flow, making the air flow moist, thereby improving the humidity of the air flow blown out from the air outlet 15, increasing the humidification amount of the air treatment module 10, improving the user experience, and meeting the user's usage requirements.

[0085] In a further embodiment of the present invention, referring to the appendix Figure 8 and the appendix Figure 9 As shown, along the air flow direction, the wet film 7 is located downstream of the negative ion emission probe 3, which enables the air flow to be negatively ionized first and then humidified, avoiding the direct flow of the air flow that has not been negatively ionized to the wet film 7, resulting in a large amount of dust and bacteria accumulating on the wet film 7, reducing the service life of the wet film 7, and affecting the cleanliness of the blown air flow.

[0086] In some embodiments of the present invention, referring to the appendix Figure 8 and the appendix Figure 9 As shown, the air treatment module 10 further includes an electrostatic dust removal net 6 and a wet film 7. The electrostatic dust removal net 6 is arranged in the air duct 13. Along the air flow direction, the electrostatic dust removal net 6 is arranged downstream of the negative ion emission probe 3. Compared with the prior art, the present invention does not require an additional charging module. The air flow in the air duct 13 first flows through the area where the negative ion emission probe 3 emits negative ions. The negative ions adsorb on the dust and bacteria in the air flow, making them negatively charged. Then, the negatively charged dust and bacteria flow with the air flow to the electrostatic dust removal net 6. The electrostatic dust removal net 6 adsorbs the negatively charged dust and bacteria and settles them, thereby achieving the purpose of sterilization, improving the sterilization effect of the air treatment module 10, and reducing the production cost of the air treatment module 10.

[0087] Preferably, the electrostatic dust removal net 6 is detachably arranged in the air duct 13. When too much dust and bacteria are adsorbed on the electrostatic dust removal net 6, the electrostatic dust removal net 6 can be disassembled and cleaned and then reinstalled. There is no need to purchase and replace the filter element, which has a long service life, can continuously provide high-efficiency filtering effect, can reduce the usage cost of the air treatment module 10, and further improve the user experience.

[0088] Further, referring to the appendix Figure 8 and the appendix Figure 9As shown, the wet film 7 is arranged in the air duct 13. Before the air flow in the air duct 13 flows out of the air treatment module 10 from the air outlet 15, it will first pass through the wet film 7. The wet film 7 can humidify the air flow, making the air flow moist, thereby increasing the humidity of the air flow blown out from the air outlet 15, increasing the humidification amount of the air treatment module 10, improving the user experience, and meeting the user's usage needs. Further, referring to the attached Figure 8 and attached Figure 9 As shown, along the air flow direction, the wet film 7 is arranged downstream of the electrostatic dust removal net 6, which can make the negatively charged dust and dirt be adsorbed by the electrostatic dust removal net 6 first, so that the airflow flowing to the wet film 7 is a relatively clean airflow, and avoids the airflow that has not been sterilized by negative ions to flow directly to the wet film 7, resulting in the accumulation of a large amount of dust and bacteria on the wet film 7, reducing the service life of the wet film 7 and affecting the cleanliness of the blown airflow.

[0089] In a further embodiment of the present invention, referring to the attached Figure 5 As shown, the high-pressure bag 4 is arranged on the side wall of the air outlet frame 12 and is located on a different side from the exhaust port 15. Through the reasonable arrangement of the shell 1, the setting of the high-pressure bag 4 can be prevented from affecting the normal air outlet at the exhaust port 15, thereby ensuring the air outlet volume of the air treatment module 10, and preventing the humidified airflow from impacting the high-pressure bag 4, thereby affecting the normal operation of the high-pressure bag 4 and posing certain safety hazards.

[0090] In some embodiments of the present invention, Figure 10 As shown, the housing 1 is provided with a mounting hole 122, and the pulse lamp sterilization module 2 is inserted into the mounting hole 122 and connected to the housing 1 through a fastener, which can facilitate the assembly and disassembly of the pulse lamp sterilization module 2 and avoid the housing 1 itself from blocking the pulse lamp light as much as possible. Optionally, the fastener can be a screw, a rivet or other fasteners. In a specific example, refer to the attached Figure 10 As shown, the pulse lamp sterilization module 2 has a width direction (refer to the attached Figure 10 The two ends of the mounting hole 122 (in the left and right directions shown in FIG. 1 ) each have a first mounting lug 212, and the mounting hole 122 has a first mounting lug 212 in the width direction (see FIG. Figure 10 Both ends of the left and right directions (as shown) have a first mounting column 127, the first mounting lugs 212 correspond one to one with the first mounting columns 127, the fasteners are screws, the screws pass through the first mounting lugs 212 and are fixed to the first mounting columns 127, so as to fix the pulse lamp sterilization module 2 on the shell 1.

[0091] In a further embodiment of the present invention, referring to the attached Figure 12 As shown, the pulse lamp sterilization module 2 includes a mounting base 21, a protective cover 22, a pulse lamp 23 and a reflective sheet 24. Figure 10 , Attachment Figure 12 and attached Figure 13As shown, the mounting seat 21 is inserted into the mounting hole 122 and connected to the housing 1. The side of the mounting seat 21 facing the air duct 13 is open, so that the pulse lamp 23 and the reflector 24 can be easily installed into the mounting seat 21 from the open side of the mounting seat 21. Figure 14 As shown, the protective cover 22 is a transparent part. The protective cover 22 is covered at the open mouth of the mounting seat 21. The protective cover 22 is connected to the mounting seat 21 and together define an installation space 211. The protective cover 22 is located on the side of the mounting seat 21 facing the air duct 13. The pulse lamp 23 is arranged in the installation space 211. The transparent protective cover 22 can constitute the light-emitting side of the pulse lamp sterilization module 2, which can avoid blocking the pulse light emitted by the pulse lamp 23, so that the pulse light of the pulse lamp sterilization module 2 has a larger irradiation range and a larger sterilization area.

[0092] Further, see Attachment Figure 15 As shown, the reflective sheet 24 is at least partially arranged in the installation space 211 and is located on the side of the pulse lamp 23 away from the air duct 13. The pulse light emitted by the pulse lamp 23 can be reflected by the reflective sheet 24. The pulse light emitted by the pulse lamp 23 and the pulse light reflected by the reflective sheet 24 can both be irradiated into the air duct 13 through the protective cover 22, so that the pulse light irradiation range is larger, the sterilization range is larger, and the utilization rate of the pulse light can be improved, so that the sterilization effect of the pulse lamp sterilization module 2 is better.

[0093] Further, see Appendix Figure 12 As shown, the reflective sheet 24 is an arc convex in the direction away from the air duct 13, and the pulse lamp 23 is located in the space defined by the reflective sheet 24 and the protective cover 22. On the one hand, the reflection area of ​​the reflective sheet 24 can be increased, and on the other hand, the structure can be made more compact. It can be understood that the pulse lamp 23 can emit pulse light in the circumferential direction, part of the pulse light can be directly emitted from the transparent protective cover 22, and part of the pulse light will irradiate the inner wall of the mounting seat 21, resulting in a waste of pulse light. The setting of the reflective sheet 24 can reflect the pulse light originally irradiated to the inner wall of the mounting seat 21, so that the pulse light originally irradiated to the inner wall of the mounting seat 21 can also be emitted from the protective cover 22, which can avoid the pulse light irradiating to other places and causing a waste of pulse light, thereby improving the utilization rate of the pulse light and making the pulse light 23 have a better sterilization effect.

[0094] In addition, the setting of the protective cover 22 can prevent the pulse lamp 23 from being affected by dust or condensed water, ensure the service life of the pulse lamp 23, and protect the pulse lamp 23 and the reflective sheet 24. The transparent protective cover 22 will not affect the penetration and illumination intensity of the pulse light. The transparent protective cover 22 can protect the pulse lamp 23 while avoiding affecting the sterilization effect of the pulse light.

[0095] In a further embodiment of the present invention, referring to the attachedFigure 12 As shown, the pulsed lamp sterilization module 2 further includes a fixing base 25. The fixing base 25 is disposed within the installation space 211 and on the side of the mounting base 21 facing the protective cover 22. The fixing base 25 is detachably connected to the mounting base 21. At both ends of the pulsed lamp 23 in the length direction (refer to the g direction shown in the appendix Figure 13 ), there are fixing bases 25 and it is fixed between the fixing base 25 and the mounting base 21. Through the detachable connection between the fixing base 25 and the mounting base 21, on the one hand, the reflective sheet 24 and the pulsed lamp 23 can be fixed between the fixing base 25 and the mounting base 21 to prevent the reflective sheet 24 and the pulsed lamp 23 from falling off; on the other hand, it is convenient to disassemble and assemble the pulsed lamp 23. When the pulsed lamp 23 is damaged, the fixing base 25 can be detached from the mounting base 21, and thus the pulsed lamp 23 can be detached, facilitating the repair or replacement of the pulsed lamp 23. In a specific example, refer to the appendix Figure 12 and the appendix Figure 15 As shown, the mounting base 21, the reflective sheet 24, the pulsed lamp 23, the fixing base 25, and the protective cover 22 are arranged in sequence in the up and down direction (as Figure 15 shown), with a compact structure and being convenient for disassembly and assembly.

[0096] In a further embodiment of the present invention, refer to the appendix Figure 15 and the appendix Figure 16 As shown, at both ends of the reflective sheet 24 in the width direction (such as the left and right direction shown in Figure 15 ), there are flanges 241. The flanges 241 are located between the protective cover 22 and the mounting base 21. At both ends of the protective cover 22 in the width direction (refer to the left and right direction shown in the appendix Figure 15 ), there are fixing bosses 221 extending towards the mounting base 21. The fixing bosses 221 are in abutment with the flanges 241, making the reflective sheet 24 fit with the mounting base 21, preventing the reflective sheet 24 from detaching from the mounting base 21, and being able to ensure the sealing of the pulsed lamp sterilization module 2, preventing water or moisture from entering the inside of the pulsed lamp sterilization module 2 and affecting the normal use of the pulsed lamp 23.

[0097] In some embodiments of the present invention, refer to the appendix Figure 10 As shown, there is an installation groove 123 on the housing 1. At least part of the high-voltage package 4 is located within the installation groove 123 and is connected to the housing 1 through fasteners. The installation groove 123 can play a role in limiting and positioning the high-voltage package 4, facilitating the assembly and disassembly of the high-voltage package 4. Optionally, the fasteners can be screws, rivets, or other fasteners. In a specific example, refer to the appendix Figure 10 As shown, on both sides of the high-voltage package 4 in the length direction (refer to the left and right direction shown in the appendix Figure 10 ), there are second mounting lugs 42. In the length direction of the installation groove 123 (refer to the appendix Figure 10On both sides in the left - right direction (as shown), there are second mounting posts 128. The second mounting lugs 42 correspond to the second mounting posts 128 one by one. The fastener is a screw, and the screw passes through the second mounting lug 42 and is fixed on the second mounting post 128, realizing the fixation of the high - voltage package 4 on the housing 1.

[0098] In some embodiments of the present invention, with reference to the attached Figure 5 and the attached Figure 11 As shown, the high - voltage package 4 is connected to the pulse - lamp sterilization module 2 through a wire 41. On the outer surface of the housing 1, there are a plurality of wire clips 125 arranged at intervals along the length direction of the wire 41. The wire 41 is clamped in the wire clips 125, which is convenient for the wire 41 of the pulse - lamp sterilization module 2. It can play a role in fixing and restricting the wire 41 of the pulse - lamp sterilization module 2, avoiding the mess of the wire 41 of the air - treatment module 10, and reducing the maintenance difficulty of the air - treatment module 10.

[0099] Further, with reference to the attached Figure 5 and the attached Figure 11 As shown, the high - voltage package 4 is connected to the negative - ion emission probe 3 through a wire 41. On the outer surface of the housing 1, there are a plurality of wire clips 125 arranged at intervals along the length direction of the wire 41. The wire 41 is clamped in the wire clips 125, which is convenient for the wiring of the negative - ion emission probe 3. It can play a role in fixing and restricting the wire 41 of the negative - ion emission probe 3, avoiding the mess of the wire 41 of the air - treatment module 10, and reducing the maintenance difficulty of the air - treatment module 10.

[0100] In a further embodiment of the present invention, with reference to the attached Figure 6 As shown, the wire clip 125 includes two spaced - apart clips 126. The clip 126 includes a connecting portion 1261 and a limiting portion 1262. One ends of the two connecting portions 1261 are both connected to the housing 1 and are spaced apart. The other ends of the two connecting portions 1261 are both connected to the limiting portion 1262. The limiting portion 1262 is located between the two connecting portions 1261. In the direction towards the housing 1, the distance between the two limiting portions 1262 gradually decreases. The wire 41 is located between the two connecting portions 1261, the two limiting portions 1262 and the housing 1. When the wire 41 is arranged in the wire clip 125, the wire 41 is directly placed between the two clips 126, and the wire 41 moves from the end where the limiting portion 1262 is connected to the connecting portion 1261 to the other end along the extending direction of the limiting portion 1262 (the h - direction as shown in the attached Figure 6 figure), and finally is located between the two connecting portions 1261, the two limiting portions 1262 and the housing 1, playing a role in restricting and fixing the wire 41. It should be noted that the limiting portion 1262 can play a certain guiding role for the wire 41.

[0101] In some embodiments of the present invention, with reference to the attached Figure 10As shown, the housing 1 is provided with a through hole 124, and the negative ion emission probe 3 is inserted into the through hole 124, which can fix the negative ion emission probe 3 and ensure the area for emitting negative ions. Figure 10 As shown, the through hole 124 is a square hole, and the negative ion emitting probe 3 includes a square brush and two elastic buckles. The square brush matches the square hole and is used to emit negative ions into the second air duct 132. The two elastic buckles are respectively arranged on two opposite sides of the square brush. After the square brush is inserted into the square hole, the square brush can be prevented from escaping from the square hole, which can improve the reliability and stability of the cooperation between the negative ion emitting probe 3 and the through hole 124, and ensure the sterilization effect of the air treatment module 10.

[0102] The present invention further provides an air conditioner 100 having the air processing module 10 of the above embodiment.

[0103] like Figure 2 As shown, the air conditioner 100 according to the embodiment of the present invention includes a housing 20 and the above-mentioned air processing module 10 .

[0104] Specifically, refer to the attached Figure 1 As shown, the housing 20 can protect the internal structure of the air conditioner 100 to prevent the internal structure of the air conditioner 100 from being exposed and damaged, which is beneficial to extending the service life of the air conditioner 100 and has a better appearance.

[0105] Further, see Attachment Figure 2 As shown, the housing 20 includes an air outlet frame component 91, a panel assembly 92, a top cover 93, a chassis component 94 and a rear box component 95, the panel assembly 92 includes an upper panel 921 and a lower panel 922, the upper panel 921 and the lower panel 922 are arranged and connected in the up-down direction, which is conducive to reducing the production cost and maintenance cost of the air conditioner 100. Further, the air outlet frame component 91 is connected to the upper panel 921, a part of the rear box component 95 is connected to the lower panel 922, and a part is connected to the air outlet frame component 91, the ends of the rear box component 95 and the lower panel 922 away from the upper panel 921 are both connected to the chassis component 94, and the top cover 93 is connected to the ends of the rear box component 95 and the air outlet frame component 91 away from the chassis component 94, thereby forming an integral structure, realizing the protection of the internal structure of the air conditioner 100, and preventing the user from contacting the interior and causing harm.

[0106] Further, see Appendix Figure 2 and attached Figure 3As shown, the air handling module 10 is disposed within the housing 20. The housing 20 is provided with a first air inlet 951 communicating with the air suction port 14 and a first air outlet 952 communicating with the air discharge port 15. Both the first air inlet 951 and the first air outlet 952 are disposed on the rear cabinet member 95. The first air outlet 952 includes two spaced-apart ones, and the two first air outlets 952 are respectively disposed opposite to the two air discharge ports 15. The air flow outside the air conditioner 100 can sequentially pass through the first air inlet 951 and the air suction port 14 to enter the air duct 13, and is blown into the room from the first air outlet 952 through the air discharge port 15.

[0107] Furthermore, referring to the appendix Figure 2 As shown, the housing 20 is further provided with a second air inlet 953 and a second air outlet 911. The second air inlet 953 is disposed on the rear cabinet member 95 and extends along the length direction of the rear cabinet member 95 (the up and down direction as shown in the appendix Figure 2 As shown), and the second air outlet 911 is disposed on the air outlet frame member 91 and extends along the length direction of the air conditioner 100 (the up and down direction as shown in the appendix Figure 2 As shown). A heat exchange air duct is defined within the housing 20, and the heat exchange air duct and the air handling module 10 are arranged along the length direction of the housing 20 (the up and down direction as shown in the appendix Figure 2 As shown). The second air inlet 953 and the second air outlet 911 communicate with the heat exchange air duct. The air flow outside the air conditioner 100 can enter the heat exchange air duct through the second air inlet 953 and then be blown into the room from the second air outlet 911.

[0108] Still further, referring to the appendix Figure 2 As shown, an air inlet grille 954 is provided at the second air inlet 953. On the one hand, the air inlet grille 954 can prevent hands or other foreign objects from entering the interior of the air conditioner 100, protecting the safety of users and ensuring the normal operation of the air conditioner 100; on the other hand, the air inlet grille 954 can prevent insects, mice, etc. from entering the housing 20 of the air conditioner 100 and causing damage to the air conditioner 100, ensuring the normal operation of the air conditioner 100 and ensuring the aesthetic appearance of the air conditioner 100.

[0109] Optionally, the air inlet grille 954 is detachably connected to the rear cabinet member 95. The air inlet grille 954 can ensure the aesthetic appearance of the housing 20, and after the air inlet grille 954 is disassembled, it is convenient to repair and replace the components within the air conditioner 100, and at the same time, it is convenient to clean the air inlet grille 954, avoiding dust accumulation caused by the long-term use of the air inlet grille 954.

[0110] Further, referring to the appendix Figure 2As shown, a heat exchange component 40 and a duct component 30 are provided in the heat exchange air duct. The duct component 30 can drive the air flow outside the air conditioner 100 to enter the heat exchange air duct through the second air inlet 953. The air flow in the heat exchange air duct can exchange heat with the heat exchange component 40, and the heat-exchanged air flow can be blown into the room through the second air outlet 911, so as to achieve the effect of adjusting the indoor temperature and meet the user's usage requirements.

[0111] Optionally, referring to the appendix Figure 2 As shown, the air inlet grille 954 can be disposed opposite to the heat exchange component 40 and the duct component 30, which is convenient for the duct component 30 to drive the air flow outside the air conditioner 100 to enter the heat exchange air duct through the air inlet grille 954, making the air flow more smooth, increasing the air intake volume, improving the air intake efficiency of the duct component 30, reducing the noise during the operation of the air conditioner 100, and enhancing the performance and comfort of the air conditioner 100. Preferably, as Figure 2 shown, along the air flow direction (referring to the m direction shown in the appendix Figure 2 shown), the heat exchange component 40 is disposed upstream of the duct component 30.

[0112] Furthermore, referring to the appendix Figure 2 shown, a water receiving tray 401 is disposed below the heat exchange component 40 for holding the condensed water generated when the heat exchange component 40 works, to prevent the condensed water on the heat exchange component 40 from flowing into the housing 20, causing the housing 20 to drip water or the components inside the housing 20 to short-circuit. Further, a drain pipe is connected to the water receiving tray 401 for discharging the condensed water in the water receiving tray 401 to the outside of the air conditioner 100.

[0113] For the air conditioner 100 according to the embodiment of the present invention, by providing the above-mentioned air treatment module 10, and supplying power to the pulsed lamp sterilization module 2 and the negative ion emission probe 3 by a single high-voltage package 4, on the basis of reducing the production cost of the air treatment module 10, combining the sterilization advantages of the pulsed lamp sterilization module 2 and the negative ion emission probe 3, the air flow entering the air duct 13 can first pass through the negative ion to adsorb dust and bacteria to make them settle and then the pulsed lamp sterilization module 2 emits pulsed light for sterilization, which can improve the sterilization effect of the air treatment module 10 on the air flow in the air duct 13, prevent the growth of bacteria on the inner wall of the air duct 13 and the surface of the internal structure of the air duct 13, thereby providing cleaner, hygienic and healthy air for users and being beneficial to improving the user experience.

[0114] In some embodiments of the present invention, the first air inlet 951 includes a first sub-air inlet and a second sub-air inlet. The first sub-air inlet is in communication with the indoor environment and is provided on the left and right sides of the air conditioner 100, and the second sub-air inlet is in communication with the outdoor environment and is provided at the rear side of the air conditioner 100. Among them, when the first air inlet 951 is in communication with the indoor environment, indoor airflows enter the air treatment module 10 from the first sub-air inlet and are blown back into the room again through the first air outlet 952, realizing the circulation of indoor air; when the first air inlet 951 is in communication with the outdoor environment, outdoor airflows enter the air treatment module 10 from the second sub-air inlet and are blown into the room through the first air outlet 952, introducing outdoor fresh air into the room and realizing the fresh air function.

[0115] The other components and operations of the air treatment module 10 and the air conditioner 100 according to the embodiments of the present invention are known to those of ordinary skill in the art and will not be described in detail here.

[0116] In the description of this specification, the description with reference to terms such as "one embodiment", "some embodiments", "example", "specific example", or "some examples" means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present invention. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.

[0117] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and purposes of the present invention, and the scope of the present invention is defined by the claims and their equivalents.

Claims

1. An air treatment module, It is characterized in that include: A housing having an air intake port and an air exhaust port; An air duct, the air duct being arranged in the housing, the air inlet and the air outlet being connected through the air duct; A pulse lamp sterilization module, which is disposed on the housing and is used to emit pulse light into the air duct; A negative ion emission probe, which is arranged on the housing and is used to emit negative ions into the air duct; A high-voltage package, which is one and is arranged on the outer surface of the shell, and is connected to the pulse lamp sterilization module and the negative ion emission probe, and is used to supply power to the pulse lamp sterilization module and the negative ion emission probe; A fan assembly is disposed in the air duct and is used to drive the air flow from the air intake port to the air exhaust port.

2. The air treatment module according to claim 1, It is characterized in that The air duct includes a first air duct and a second air duct, and the housing includes: An air duct member, wherein the first air duct is defined in the air duct member, and the fan assembly is arranged in the first air duct; An air outlet frame, the air outlet frame is connected to the air duct member, the second air duct is defined in the air outlet frame, the second air duct is communicated with the first air duct, the end of the first air duct facing away from the second air duct is configured as the air suction port, the end of the second air duct facing away from the first air duct is configured as the air exhaust port, the pulse lamp sterilization module is used for emitting pulse lamp light into the second air duct, and the negative ion emitting probe is used for emitting negative ions into the second air duct.

3. The air treatment module according to claim 2, It is characterized in that There are two air outlets, which are respectively arranged on two opposite side walls of the air outlet frame, and the pulse lamp sterilization module is arranged between the two air outlets.

4. The air treatment module according to claim 3, It is characterized in that The air outlet frame is arranged above the air duct member, and the upper end of the air outlet frame has a downwardly recessed portion, which passes through the air outlet frame in a direction perpendicular to the arrangement direction of the two exhaust ports, and the pulse lamp sterilization module is arranged on the bottom wall of the recessed portion.

5. The air treatment module according to claim 4, It is characterized in that The two opposite inner walls of the concave portion are inclined in a direction away from each other from bottom to top.

6. The air treatment module according to claim 2, It is characterized in that The negative ion emission probe is arranged at one end of the second air duct communicating with the first air duct and is arranged opposite to the outlet of the first air duct.

7. The air treatment module according to claim 1, It is characterized in that Also includes: An electrostatic dust removal net is arranged in the air duct and downstream of the negative ion emission probe along the air flow direction.

8. The air treatment module according to claim 1, It is characterized in that Also includes: A wet film, the wet film is arranged in the air duct and is arranged opposite to the pulse lamp sterilization module; A humidifying water tank is arranged outside the shell and connected to the shell, and is used to supply water to the wet membrane.

9. The air treatment module according to claim 8, characterized in that along the air flow direction, the wet film is located downstream of the negative ion emission probe.

10. The air treatment module according to claim 1, characterized in that it further comprises: an electrostatic dust removal net, which is arranged in the air duct, and along the air flow direction, the electrostatic dust removal net is arranged downstream of the negative ion emission probe; a wet film, which is arranged in the air duct, and along the air flow direction, the wet film is arranged downstream of the electrostatic dust removal net.

11. The air treatment module according to claim 2, characterized in that the high-voltage package is arranged on the side wall of the air outlet frame and is on a different side from the air outlet.

12. The air treatment module according to claim 1, characterized in that the housing is provided with a mounting hole, and the pulsed lamp sterilization module passes through the mounting hole and is connected to the housing by a fastener.

13. The air treatment module according to claim 12, characterized in that the pulsed lamp sterilization module comprises: a mounting seat, which passes through the mounting hole and is connected to the housing; a protective cover, which is a transparent member, the protective cover is connected to the mounting seat and jointly defines a mounting space, and the protective cover is located on the side of the mounting seat facing the air duct; a pulsed lamp, which is arranged in the mounting space; a reflecting sheet, at least part of which is arranged in the mounting space and is located on the side of the pulsed lamp facing away from the air duct, and the reflecting sheet is an arc protruding in the direction away from the air duct.

14. The air treatment module according to claim 13, characterized in that the pulsed lamp sterilization module further comprises: a fixing seat, which is arranged in the mounting space, the fixing seat is connected to the mounting seat, and both ends in the length direction of the pulsed lamp are provided with the fixing seats and are fixed between the fixing seats and the mounting seat.

15. The air treatment module according to claim 13, characterized in that both ends in the width direction of the reflecting sheet have flanges, the flanges are located between the protective cover and the mounting seat, and both ends in the width direction of the protective cover have fixing bosses extending towards the mounting seat, and the fixing bosses are abutted against the flanges.

16. The air treatment module according to claim 1, characterized in that the housing is provided with a mounting groove, and at least part of the high-voltage package is located in the mounting groove and is connected to the housing by a fastener.

17. The air treatment module according to claim 1, characterized in that the high-voltage package is connected to the pulsed lamp sterilization module by a wire, and a plurality of wire clips are arranged on the outer surface of the housing at intervals along the length direction of the wire, and the wire is clamped in the wire clips; and / or, the high-voltage package is connected to the negative ion emission probe by a wire, and a plurality of wire clips are arranged on the outer surface of the housing at intervals along the length direction of the wire, and the wire is clamped in the wire clips.

18. The air treatment module according to claim 17, characterized in that The wire clip includes two clips arranged at intervals. Each clip includes a connecting portion and a limiting portion. One ends of the two connecting portions are both connected to the housing and arranged at intervals, and the other ends of the two connecting portions are both connected to the limiting portion. The limiting portion is located between the two connecting portions. In the direction towards the housing, the distance between the two limiting portions gradually decreases. The wire is located between the two connecting portions, the two limiting portions and the housing.

19. The air treatment module according to claim 1, characterized in that, a through hole is provided on the housing, and the negative ion emission probe is inserted into the through hole.

20. An air conditioner, characterized in that, comprising: a housing; the air treatment module according to any one of claims 1-19, the air treatment module is arranged inside the housing, and a first air inlet communicated with the air suction port and a first air outlet communicated with the air discharge port are provided on the housing.

21. The air conditioner according to claim 20, characterized in that, the first air inlet includes a first sub-air inlet and a second sub-air inlet. The first sub-air inlet is communicated with the indoor environment, and the second sub-air inlet is communicated with the outdoor environment.