Air treatment component and air conditioner

By setting an overflow port on the side plate of the water tray of the air conditioner humidification module, the problem of overflow caused by abnormal water level rise is solved, thereby improving the reliability and maintenance convenience of the equipment.

CN223691206UActive Publication Date: 2025-12-19GD MIDEA AIR CONDITIONING EQUIP CO LTD +1
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Patent Information

Application Number
CN202520007234.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-02
Publication Date
2025-12-19
Estimated Expiration
2035-01-02

AI Technical Summary

Technical Problem

In existing air conditioner humidification modules, when the water tank leaks or the water filling control malfunctions, the water level rises abnormally, causing overflow and potentially damaging electrical components.

Method used

An overflow outlet is installed on the side plate of the water basin to direct the water flow when the water level exceeds the overflow outlet, thereby reducing disorderly overflow and improving system reliability and maintenance convenience.

Benefits of technology

It effectively prevents water spillage from damaging equipment, improves the reliability and ease of maintenance of air handling components and air conditioners, simplifies the structure, and reduces maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an air handling part and air conditioner, the air handling part comprises a humidification module, the humidification module comprises an air duct frame body, a water containing disc and a wet film assembly, the air duct frame body is arranged above the water containing disc and defines a humidification air duct, and the wet film assembly is arranged in the humidification air duct and takes water from the water containing disc. A water storage tank used for supplying water to the wet film assembly is defined in the water containing disc, the water containing disc comprises a first side plate used for limiting the water storage tank, and an overflow opening communicated with the water storage tank is formed in the first side plate. According to the air treatment component, the overflow port communicated with the water storage tank is formed in the first side plate of the water containing disc, when the water level in the water containing disc exceeds the overflow port, water can directionally overflow from the overflow port, and the possibility that the water overflows from all positions to damage equipment is reduced; and therefore, the air treatment part can normally operate under the abnormal condition of water fullness, and the reliability and maintenance convenience of the whole system are improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to air conditioning technology field especially is related to an air treatment component and air conditioner. BACKGROUND

[0002] The humidifying module in the related art adopts a water tank to inject water into a water tray, and a wet film extends into the water tray to absorb water. However, when the water tank has a water leakage fault or a water injection control fault, if the fault cannot be found and handled in time, the water level in the water tray will abnormally rise, and once the water level exceeds the maximum capacity of the water tray, the water will overflow from all around. The overflowed water may flow to the electrical components around the humidifying module, causing the electrical components to short circuit, corrode, and other damages, which needs to be improved. SUMMARY

[0003] The utility model aims at solving one of the technical problems in the prior art. To this end, the utility model provides an air treatment component, which can direct water out of an overflow port when the water level in the water tray exceeds the overflow port, reduce the possibility of damage to the equipment caused by unordered overflow of water, and improve the reliability and maintenance convenience of the overall system.

[0004] The utility model further provides an air conditioner with the air treatment component.

[0005] According to the air treatment component of the first aspect of the utility model, the air treatment component includes a humidifying module, the humidifying module includes an air duct frame, a water tray, and a wet film assembly, the air duct frame is arranged above the water tray and defines a humidifying air duct, the wet film assembly is arranged in the humidifying air duct and absorbs water from the water tray, the water tray defines a water storage groove for supplying water to the wet film assembly, and the water tray includes a first side plate for defining the water storage groove, and the first side plate has an overflow port in communication with the water storage groove.

[0006] According to the air treatment component of the utility model, the overflow port in communication with the water storage groove is arranged on the first side plate of the water tray, and when the water level in the water tray exceeds the overflow port, the water can be directed to overflow from the overflow port, reducing the possibility of damage to the equipment caused by overflow of water from all around, enabling the air treatment component to normally operate under the water full abnormal condition, and improving the reliability and maintenance convenience of the overall system.

[0007] In some embodiments, the overflow port is formed by a top portion of the first side plate being recessed downward.

[0008] In some embodiments, the first side plate comprises a side plate body extending in a vertical direction and a side plate flange provided at a top of the side plate body and extending outward relative to the side plate body, a portion of the side plate flange being concave downward to form a concave portion, an upper portion of the concave portion defining the overflow opening extending through in an inner-outer direction and open at a top.

[0009] In some embodiments, an upper surface of the concave portion constitutes a bottom surface of the overflow opening, the bottom surface of the overflow opening extending upward in a direction from the inner side to the outer side.

[0010] In some embodiments, a notch extending through in an up-down direction is provided on the concave portion, the notch being in communication with the overflow opening, and a space below the notch being located on the outer side of the side plate body.

[0011] In some embodiments, along a length extension direction of the first side plate, a depth of the overflow opening gradually increases from both ends to a middle.

[0012] In some embodiments, a maximum depth of the overflow opening is not less than 5 mm.

[0013] In some embodiments, a water guide groove is provided on the outer side of the first side plate, the water guide groove being located below the overflow opening and extending in an up-down direction.

[0014] In some embodiments, a first protruding rib is protruded on an outer surface of the first side plate, the first protruding rib being two, and the water guide groove being defined between the two first protruding ribs.

[0015] In some embodiments, a lower end groove width of the water guide groove is less than an upper end groove width of the water guide groove.

[0016] In some embodiments, the water guide groove comprises an upper section, a middle section and a lower section arranged in sequence from top to bottom, the upper section and the lower section are equal groove width sections, and a groove width of the upper section is greater than a groove width of the lower section, the groove width of the middle section gradually decreases from top to bottom, an upper end groove width of the middle section is consistent with the groove width of the upper section, and a lower end groove width of the middle section is consistent with the groove width of the lower section.

[0017] In some embodiments, the air treatment component further comprises a purification module, the purification module being located below the humidification module, a side wall of the purification module being provided with a water guide groove, the water guide groove being located below the water guide groove and extending in an up-down direction.

[0018] In some embodiments, an upper end groove width of the water guide groove is greater than a lower end groove width of the water guide groove.

[0019] In some embodiments, the side wall of the purification module protrudes a second protruding rib, the second protruding rib is two, and the water guide groove is defined between the two second protruding ribs.

[0020] In some embodiments, the water tank further defines a ventilation opening, a bottom of the humidifying air duct is open to communicate with the ventilation opening, the water storage tank comprises a water storage pool and a water supply pool located on different sides of the ventilation opening and in communication, the air treatment component further comprises a water tank located above the water supply pool and supplying water to the water supply pool, and a lower end of the wet membrane assembly extends into the water storage pool to take water from the water storage pool.

[0021] In some embodiments, the water tank comprises a water supply part, a water storage part and two connecting parts, the water supply part and the water storage part both extend along the left-right direction and are located on the front and back sides of the ventilation opening respectively, the two connecting parts are located on the left and right sides of the ventilation opening respectively to connect the same side end of the water supply part and the water storage part, the water storage pool is defined by the water storage part, the water supply pool is defined by the water supply part, the water storage tank further comprises a communication pool defined by at least one connecting part, the communication pool communicates the water storage pool and the water supply pool, and the overflow port is located at the connecting part and communicates with the communication pool; the front side of the air duct frame body is provided with an insertion opening extending along the left-right direction, the wet membrane assembly is inserted obliquely downward through the insertion opening, and a rear lower end of the wet membrane assembly extends into the water storage pool, a normal projection of the wet membrane assembly on a horizontal plane at least partially overlaps a normal projection of the ventilation opening on the horizontal plane, the water tank is located in front of the wet membrane assembly, and the air treatment component further comprises a fresh air module located below the humidifying module and supplying air upward.

[0022] The air conditioner according to the second aspect of the present application comprises a ventilation and heat exchange component and the air treatment component according to any one of the first aspect of the present application.

[0023] The air conditioner according to the present application improves the overflow problem of the humidifying module in the air treatment component, and improves the reliability of the air conditioner as a whole.

[0024] Additional aspects and advantages of the present application will be given in part in the following description, become apparent from the following description, or be understood by practice of the present application. BRIEF DESCRIPTION OF DRAWINGS

[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced as follows. It should be understood that the following drawings only show some of the embodiments of the present application, and therefore should not be regarded as a limitation on the scope, and for those of ordinary skill in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.

[0026] Figure 1 is an exploded view of the air handling component according to one embodiment of the present application;

[0027] Figure 2 is Figure 1 is an exploded view of the humidification module shown in

[0028] Figure 3 is Figure 1 is a schematic view of the air handling component shown in

[0029] Figure 4 is Figure 3 is a magnified view of A shown in

[0030] Figure 5 is Figure 3 is a schematic view of the water pan shown in

[0031] Figure 6 is Figure 5 is a magnified view of B shown in

[0032] Figure 7 is Figure 3 is a schematic view of the purification module shown in

[0033] Figure 8 is a schematic view of the air handling component according to one embodiment of the present application;

[0034] Figure 9 is a sectional view along the line V1-V1 shown in Figure 8

[0035] is Figure 10 is a schematic view of the air duct frame shown in Figure 9

[0036] is a schematic view of the air conditioner according to one embodiment of the present application; Figure 11

[0037] is Figure 12 is an exploded view of the air conditioner shown in Figure 11

[0038] Reference signs:

[0039] Air conditioner 100;

[0040] ​Air treatment component 1

[0041] Fresh air module 11; fan assembly 111; centrifugal fan 111a

[0042] Humidification module 12

[0043] Water tray 121

[0044] Vent 1213

[0045] Water supply part 1211; water supply pool 12111

[0046] Water storage part 1212; water storage pool 12121

[0047] Connecting part 1214; connecting pool 12141

[0048] Water storage groove 1215; overflow port 1216

[0049] First side plate 12151; side plate body 12151a; side plate flange 12151b

[0050] Recess 121512; notch 121514; inner side N; outer side W

[0051] Water guide groove 12152; upper section 121521; middle section 121522; lower section 121523

[0052] First convex rib 12153

[0053] Wet film assembly 123

[0054] Air duct frame 122; humidification air duct 122a; insertion port 1221

[0055] Purification module 13

[0056] Water guide groove 131; second convex rib 132

[0057] Ventilation and heat exchange component 2 DETAILED DESCRIPTION

[0058] The embodiments of the present application will be described in detail below, examples of which are shown in the drawings, wherein the same or similar reference numerals represent 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 intended to explain the present application, and cannot be understood as a limitation of the present application.

[0059] The disclosure below provides many different embodiments or examples for implementing different structures of the present application. For simplicity of the disclosure, the description below refers to the components of a specific example by reference number. In practice, each example can include components different from those described. Furthermore, the disclosure can be practiced with other elements in addition to or in place of those mentioned by describing the examples. The disclosure is not limited in scope to the examples as set forth in the description below. Furthermore, many of the components described below are functional entities that can be implemented using one or more physical devices, and the expression "nozzle" shall not be construed as limited to physical elements of a device. Similarly, the expression "air treatment component" shall not be construed as limited to a device that includes all of the components described below. In addition, the disclosure provides examples of specific processes and materials, but one of ordinary skill in the art can recognize that other processes can be applicable and / or other materials can be used.

[0060] Below, with reference to the drawings, an air treatment component 1 according to a first embodiment of the present application is described.

[0061] Referring to Figure 1 , Figure 2 and Figure 3 , the air treatment component 1 includes a humidification module 12, the humidification module 12 includes an air duct frame 122, a water tray 121 and a wet membrane assembly 123, the air duct frame 122 is arranged above the water tray 121 and defines a humidification air duct 122a, the wet membrane assembly 123 is arranged in the humidification air duct 122a and takes water from the water tray 121, the water tray 121 defines a water storage groove 1215 for supplying water to the wet membrane assembly 123, and the water tray 121 includes a first side plate 12151 for defining the water storage groove 1215, the first side plate 12151 has an overflow port 1216 in communication with the water storage groove 1215.

[0062] According to the air treatment component 1 of the present application, by arranging the overflow port 1216 in communication with the water storage groove 1215 on the first side plate 12151 of the water tray 121, when the water level in the water tray 121 exceeds the overflow port 1216, the water can be directed to overflow from the overflow port 1216, reducing the possibility of equipment damage caused by water overflowing from all directions, so that the air treatment component 1 can operate normally under the water full abnormal condition, and the reliability and maintenance convenience of the overall system are improved.

[0063] In the embodiments of the present application, the wet membrane assembly 123 takes water from the water tray 121, and the way of taking water can be capillary action, water pump extraction, etc., and when the airflow in the humidification air duct 122a passes through the wet membrane assembly 123, it can be humidified.

[0064] In the embodiments of the present application, the relative position of the water storage tank 1215 and the wet film assembly 123 is not limited, and can be specifically designed according to the water taking mode of the wet film assembly 123. For example, in some embodiments, when the wet film assembly 123 needs to extend into the water storage tank 1215 to take water, the water storage tank 1215 can be only one pool, or can also include pools distributed in multiple positions and interconnected, and the wet film assembly 123 can extend into one of the pools.

[0065] In some embodiments, referring to Figure 3 and Figure 4 , the overflow port 1216 is formed by recessing downward from the top of the first side plate 12151. That is, the upper part of the recessed position is formed as the overflow port 1216, so as to facilitate processing on the one hand, and to increase the setting height of the overflow port 1216, and to increase the water level height of the water storage tank 1215.

[0066] In addition, the overflow port 1216 is formed by recessing downward from the top of the first side plate 12151, which reduces the need for additional components, does not require additional installation, makes the overall structure simpler and more compact, improves the integration of the structure, and is beneficial to save space and material costs; in addition, such an integrated design reduces potential water leakage points and maintenance difficulty, and users do not need to frequently check or replace parts during use, thereby reducing maintenance costs.

[0067] In addition, by reasonably designing the size and position of the overflow port 1216, overflow accidents caused by excessively high water level can be effectively prevented, and the safety performance of the product is improved.

[0068] In the above technical solutions, the depth of the recessed top wall 121511, the shape of the recessed top wall 121511, and the position relationship of the recessed top wall 121511 relative to other parts of the first side plate 12151 can be adjusted according to whether the functionality of the overflow port 1216 will affect the overall strength of the first side plate 12151. For example, the recessed shape can be a circular, triangular, square or other shaped opening to adapt to different application scenarios.

[0069] Of course, the present application is not limited thereto, for example, in other embodiments of the present application, the overflow port 1216 can also be set below the top of the first side plate 12151, or be defined by other components provided on the first side plate 12151.

[0070] In some embodiments, referring to Figure 4 , Figure 5 and Figure 6The first side plate 12151 comprises a side plate body 12151a and a side plate flange 12151b. The side plate body 12151a extends in the vertical direction. The side plate flange 12151b is arranged on the top of the side plate body 12151a and extends outward relative to the side plate body 12151a. A portion of the side plate flange 12151b is recessed downward to form a recessed portion 121512. An upper portion of the recessed portion 121512 defines an overflow opening 1216 which extends in the inward-outward direction and is open at the top.

[0071] The side of the first side plate 12151 close to the water storage tank 1215 is the inner side N, and the side opposite to the inner side N is the outer side W, i.e., the side of the first side plate 12151 away from the water storage tank 1215. Therefore, the outer side of the side plate body 12151a refers to the side of the side plate body 12151a away from the water storage tank 1215. The overflow opening 1216 extends in the inward-outward direction refers to extending in the direction from the inner side N to the outer side W, or extending in the direction from the outer side W to the inner side N.

[0072] The side plate flange 12151b is arranged on the top of the side plate body 12151a and extends outward relative to the side plate body 12151a. Therefore, a portion of the side plate flange 12151b is above the side plate body 12151a, and the remaining portion of the side plate flange 12151b protrudes outward from the outer side surface of the side plate body 12151a.

[0073] Therefore, by arranging the side plate flange 12151b and constructing the recessed recessed portion 121512 on the side plate flange 12151b, the overflow opening 1216 which extends in the inward-outward direction is defined. The upper surface of the recessed portion 121512 constitutes the bottom surface of the overflow opening 1216, which can improve the structural strength of the first side plate 12151 at the overflow opening 1216, so that water overflowing the overflow opening 1216 can be stably overflowed from the overflow opening 1216. Moreover, the overflow performance of the overflow opening 1216 can be optimized by improving the structure of the side plate flange 12151b.

[0074] For example, in some embodiments, referring to Figure 4 , Figure 5 and Figure 6 , the bottom surface of the overflow opening 1216 extends upwardly in the direction from the inner side N of the first side plate 12151 to the outer side W of the first side plate 12151.

[0075] The bottom surface of the overflow port 1216 is formed in a slope form extending upwardly along the overflow direction, so that the bottom surface of the overflow port 1216 is in a form of a teapot mouth with the inner side being lower and the outer side being higher, thereby only when the water level in the water storage tank 1215 reaches the preset overflow height, the excess water can flow out along the bottom surface of the overflow port 1216, so as to effectively avoid the accidental overflow due to the water flow washing or fluctuation before reaching the formal overflow state, and enhance the stability and reliability of the device. In addition, the inclined bottom surface of the overflow port 1216 helps to reduce the water droplet residue at the overflow port 1216, avoiding the risk of corrosion, pollution or bacterial growth caused by water droplet accumulation, and maintaining the cleanliness and hygiene of the device.

[0076] Moreover, since the side plate flange 12151b extends towards the direction away from the water storage tank 1215 relative to the side plate body 12151a, so that the partial side plate flange 12151b exceeds the outer surface of the side plate body 12151a, thereby the width of the bottom surface of the overflow port 1216 along the inner-outer direction of the first side plate 12151, i.e. the size in the overflow direction, can be increased, so that in combination with the bottom surface of the overflow port 1216 extending upwardly along the direction from the inner side N of the first side plate 12151 to the outer side W of the first side plate 12151, the accidental overflow can be more effectively prevented.

[0077] In some embodiments, referring to Figure 4 , Figure 5 and Figure 6 , the recess 121512 is provided with a through gap 121514 along the up-down direction, the gap 121514 is in communication with the overflow port 1216, and the lower space of the gap 121514 is located on the outer side of the side plate body 12151a, i.e. the part of the side plate flange 12151b extending to the outer side of the side plate body 12151a at the position defining the overflow port 1216 is provided with a through gap 121514 along the up-down direction, so that the lower space of the gap 121514 can be located on the outer side of the side plate body 12151a.

[0078] Due to the surface tension of water, the water flow stagnates near the outer edge of the first side plate 12151 and is not easy to flow out naturally. By providing the gap 121514 at this position, when the water flow reaches the gap 121514 position, the water flow will break the tension balance under the action of gravity at the gap 121514, so as to ensure that the water flow can be discharged in time and effectively. In short, the function of this gap 121514 is to prevent the water from not flowing out due to the water tension, and after the gap 121514 is provided, the water will break and flow out at this position, improving the reliability of the overflow. Moreover, it can also prevent the water from splashing too far, and can flow naturally downward at the gap 121514 position.

[0079] In addition, when the recess 121512 extends upwardly along a direction from the inner side N of the first side plate 12151 to the outer side W of the first side plate 12151, the recess 121512 can be formed with a notch 121514 penetrating in the up-down direction at a position away from the edge of the water storage tank 1215. At this time, the design of the notch 121514 solves the problem that the water flow is difficult to drain due to the gravity and tension force at the overflow port 1216, and can effectively overflow water.

[0080] In some embodiments, referring to Figure 4 , along the length extension direction of the first side plate 12151, the depth of the overflow port 1216 gradually increases from both ends to the middle. For example, the length direction of the first side plate 12151 is the front-back direction as shown in Figure 5 , the depth of the overflow port 1216 gradually increases from both ends of the overflow port 1216 towards the center of the overflow port 1216, so that the overflow port 1216 is formed in a form of low in the middle and high on both sides.

[0081] Therefore, the problem of water droplets remaining at the overflow port 1216 is reduced, and the risk of corrosion, pollution or bacterial growth caused by water droplet accumulation is avoided, keeping the equipment clean and sanitary.

[0082] In some embodiments, referring to Figure 4 , the maximum depth H of the overflow port 1216 is not less than 5mm.

[0083] In the above technical solution, by setting the maximum depth of not less than 5mm, the overflow port 1216 has a relatively sufficient capacity to receive and drain excess water flow, improving the problem of water in the water storage tank 1215 overflowing from other positions outside the overflow port 1216.

[0084] Exemplarily, when the depth of the overflow port 1216 is formed in a form gradually increasing from both ends to the middle, the center of the overflow port 1216 is at the maximum depth.

[0085] In some embodiments, referring to Figure 4 , the outer side of the first side plate 12151 is provided with a water guide groove 12152, and the water guide groove 12152 is located below the overflow port 1216 and extends in the up-down direction. In this way, the overflow port 1216 is arranged corresponding to the upper end of the water guide groove 12152, and the overflow port 1216 can drain water to the water guide groove 12152.

[0086] In the technical scheme, the water guide groove 12152 is arranged on the outer side of the first side plate 12151, and the overflow port 1216 is arranged corresponding to the upper end of the water guide groove 12152, so that a water discharge path is provided for the overflow water, and the disorderly flow of the overflow water in the discharge process is prevented, and other components are prevented from being damaged, meanwhile, the water guide groove 12152 facilitates the cleaning and maintenance work of the user, and reduces the maintenance cost and difficulty of the equipment.

[0087] The water guide groove 12152 extends in the up-down direction, which means that the water guide groove 12152 as a whole extends from top to bottom, but the shape of the water guide groove 12152 is not limited to extending along a vertical line, for example, the water guide groove 12152 can also extend along an inclined line, an arc line, a wavy line, etc.

[0088] In some embodiments, referring to Figure 6 , the outer side surface of the first side plate 12151 protrudes with a first protruding rib 12153, the first protruding rib 12153 is two, and the water guide groove 12152 is defined between the two first protruding ribs 12153. Exemplarily, when the first side plate 12151 includes a side plate body 12151a and a side plate flange 12151b, the first protruding rib 12153 can protrude from the side plate body 12151a.

[0089] Therefore, the forming of the water guide groove 12152 is facilitated, and by adjusting the protruding height of the first protruding rib 12153, the overflow port 1216 of different widths can be matched, so that the water overflowing from the overflow port 1216 can reliably enter the water guide groove 12152, the water entering the water guide groove 12152 can flow along the first protruding rib 12153, the disorder and splashing of the water flow are reduced, and the water discharge efficiency is further improved; in addition, the first protruding rib 12153 can also prevent the water guide groove 12152 from being deformed or damaged due to water flow scouring, and can also improve the stability and durability of the water guide groove 12152 during long-term use. Of course, the present application is not limited to this, and the water guide groove 12152 can also be defined by the local recess of the first side plate 12151.

[0090] In some embodiments, referring to Figure 4 and Figure 6 , the lower end groove width M of the water guide groove 12152 is less than the upper end groove width Y of the water guide groove 12152.

[0091] In this way, the water guide groove 12152 is arranged in the form that the lower end groove width is less than the upper end groove width, so that the water flow is gradually compressed during the downward flow, the water flow speed is accelerated, and the splashing phenomenon caused by the disorder of the water flow is reduced. In addition, since the lower end groove width of the water guide groove 12152 is small, the water flow is more concentrated when flowing out of the water guide groove 12152, which facilitates the subsequent collection of the water discharge.

[0092] Exemplarily, when the water guide chute 12152 is connected with a subsequent drainage channel (for example, the water guide chute 131 described herein), the water guide chute 12152 is arranged to have a smaller lower end slot width than an upper end slot width, so that the lower end portion of the water guide chute 12152 forms a more concentrated water outlet, which makes it easier to align when connecting the subsequent drainage channel, so that the water flow can enter the subsequent drainage channel more reliably.

[0093] In some embodiments, referring to Figure 4 and Figure 6 , the water guide chute 12152 comprises an upper section 121521, a middle section 121522 and a lower section 121523 arranged in sequence from top to bottom, the upper section 121521 and the lower section 121523 are both equal slot width sections, the slot width of the upper section 121521 is greater than that of the lower section 121523, and the slot width of the middle section 121522 gradually decreases from top to bottom, the upper end slot width of the middle section 121522 is consistent with that of the upper section 121521, and the lower end slot width of the middle section 121522 is consistent with that of the lower section 121523.

[0094] Thus, the upper section 121521 serves as the inlet of the water flow, and the larger slot width design can more effectively receive and accommodate the water flow from the overflow port 1216, reducing water flow congestion and splashing. The gradually decreasing slot width of the middle section 121522 plays a role in smoothing the transition and accelerating the water flow, and this design makes the water flow gradually compressed and the flow rate increased during the downward flow, which helps to reduce scale accumulation and drainage time. The lower section 121523 serves as the outlet of the water flow, and the smaller slot width design can more effectively control the flow direction and speed of the water flow, reducing water splashing and leakage, and improving drainage efficiency. Through the synergistic effect of the upper section 121521, the middle section 121522 and the lower section 121523, the water guide chute 12152 can more effectively guide the water flow, improving the drainage efficiency.

[0095] In some embodiments, referring to Figure 1 , the air treatment component 1 further comprises a purification module 13, which is located below the humidification module 12, referring to Figure 3 and Figure 4 , the side wall of the purification module 13 is provided with a water guide chute 131, which is located below the water guide chute 12152 and extends in the up-down direction, that is, the lower end of the water guide chute 12152 corresponds to the upper end of the water guide chute 131, so as to be suitable for draining water into the water guide chute 131.

[0096] The side wall of the purification module 13 is provided with a water guide groove 131, and the lower end of the water guide groove 12152 is arranged corresponding to the upper end of the water guide groove 131. The water guide groove 12152 and the water guide groove 131 are connected, so that the overflow water can flow into the water guide groove 131 in a directional manner when passing through the purification module 13, and will not flow disorderly or even invade the inside of the purification module 13. Such a design not only protects the purification module 13 from moisture, but also ensures the stable operation and reliability of the entire air treatment component 1.

[0097] In some embodiments, referring to Figure 4 , the upper end groove width V of the water guide groove 131 is greater than the lower end groove width M of the water guide groove 12152.

[0098] When the water flow in the water guide groove 12152 flows downward, the wider upper end groove of the water guide groove 131 can more effectively receive and accommodate the water flow discharged from the water guide groove 12152, reducing the splashing phenomenon of the water flow during the transition process, thereby improving the overall drainage reliability.

[0099] In some embodiments, referring to Figure 4 , the side wall of the purification module 13 protrudes a second protruding rib 132, the second protruding rib 132 is two, and the water guide groove 131 is defined between the two second protruding ribs 132.

[0100] Therefore, the formation of the water guide groove 131 is facilitated, and by adjusting the protruding height of the second protruding rib 132, water guide grooves 12152 of different widths can be matched, so that the water discharged from the water guide groove 12152 can reliably enter the water guide groove 131, and the water flow entering the water guide groove 131 can flow smoothly along the second protruding rib 132, reducing the turbulence and splashing of the water flow, and further improving the drainage efficiency. In addition, the second protruding rib 132 can also prevent the water guide groove 12152 from being deformed or damaged due to water flow erosion, and can also improve its stability and durability during long-term use.

[0101] Exemplarily, as shown in Figure 7 , the side wall of the purification module 13 protrudes two second protruding ribs 132, the second protruding rib 132 is a straight line type extending from top to bottom, and the two second protruding ribs 132 are arranged horizontally side by side, clamping to form the water guide groove 131. The upper end of the water guide groove 131 is arranged corresponding to the lower end of the water guide groove 12152, and the upper end groove width of the water guide groove 131 is greater than the lower end groove width of the water guide groove 12152. Finally, the water guide groove 131 of the purification module 13 guides the overflow water into the air conditioner chassis.

[0102] In some embodiments, referring to Figure 8 and Figure 9The water storage tray 121 further defines a ventilation opening 1213, the bottom of the humidifying air duct 122a is open to communicate with the ventilation opening 1213, the water storage groove 1215 includes a water storage pool 12121 and a water supply pool 12111 located on different sides of the ventilation opening 1213 and communicating with each other, the air handling component 1 further includes a water tank 124 located above the water supply pool 12111 and supplying water to the water supply pool 12111, and the lower end of the wet membrane assembly 123 extends into the water storage pool 12121 to take water from the water storage pool 12121.

[0103] Therefore, the water in the water supply pool 12111 injected by the water tank 124 can flow to the water storage pool 12121 and be absorbed by the wet membrane assembly 123, so that the water tank 124 can be arranged away from the water storage pool 12121 to avoid interference with the wet membrane assembly 123.

[0104] In some embodiments, with reference to Figure 5 、 Figure 9 and Figure 10 , the water storage tray 121 includes a water supply part 1211, a water storage part 1212, and two connecting parts 1214, the water supply part 1211 and the water storage part 1212 both extend along the left-right direction and are arranged on the front and back sides of the ventilation opening 1213, that is, the water supply part 1211 is arranged on the front side of the ventilation opening 1213, and the water storage part 1212 is arranged on the back side of the ventilation opening 1213, the two connecting parts 1214 are respectively located on the left and right sides of the ventilation opening 1213 to connect the same side end portions of the water supply part 1211 and the water storage part 1212, the water storage pool 12121 is defined by the water storage part 1212, the water supply pool 12111 is defined by the water supply part 1211, the water storage groove 1215 further includes a communication pool 12141 defined by at least one connecting part 1214, the communication pool 12141 communicates the water storage pool 12121 and the water supply pool 12111, the overflow opening 1216 is arranged at the connecting part 1214 and communicates with the communication pool 12141, the front side of the air duct frame 122 is provided with an insertion opening 1221 extending along the left-right direction, the wet membrane assembly 123 is inserted obliquely downward through the insertion opening 1221, and the rear lower end of the wet membrane assembly 123 extends into the water storage pool 12121, the orthogonal projection of the wet membrane assembly 123 on the horizontal plane at least partially overlaps the orthogonal projection of the ventilation opening 1213 on the horizontal plane, the water tank 124 is located in front of the wet membrane assembly 123, and the air handling component 1 further includes a fresh air module 11 located below the humidifying module 12 and supplying air upward.

[0105] Therefore, the water supply part 1211 is arranged at the front side of the air vent 1213, the water storage part 1212 is arranged at the rear side of the air vent 1213, the requirement that the wet membrane assembly 123 is inserted from front to back and the rear lower end of the wet membrane assembly 123 extends into the rear water storage pool 12121 is met, and the requirement that the water tank 124 is located in front of the wet membrane assembly 123 and water is injected into the water supply pool 12111 in the front direction is met. In addition, the wet membrane assembly 123 is arranged such that the orthogonal projection of the wet membrane assembly 123 on a horizontal plane at least partially overlaps the orthogonal projection of the air vent 1213 on the horizontal plane. When the fresh air module 11 blows air from bottom to top, the contact area of the airflow with the wet membrane assembly 123 can be increased, thereby improving the humidification amount.

[0106] In some embodiments, with reference to Figure 8 and Figure 9 , the fresh air module 11 includes a fresh air fan 111, the fresh air fan 111 is a centrifugal fan 111a, and the air outlet of the centrifugal fan 111a is upward. The purification module 13 is located above the fresh air module 11, and the humidification module 12 is located above the purification module 13. This design allows the airflow blown upward by the centrifugal fan 111a to flow through the purification module 13 and the humidification module 12 in sequence, which not only saves space but also improves space utilization, making the entire system more suitable for installation in limited spaces such as homes, offices, etc. The centrifugal fan 111a has the characteristics of large air volume and high air pressure, and can quickly blow the airflow to the purification module 13 and the wet membrane assembly 123, which is beneficial to overcome the resistance of the purification module 13 and the wet membrane assembly 123, and improve the air treatment efficiency.

[0107] Next, with reference to the accompanying drawings, the air conditioner 100 according to the second aspect of the present application is described.

[0108] With reference to Figure 11 and Figure 12 , the air conditioner 100 can include the air treatment component 1 according to any embodiment of the first aspect of the present application and the ventilation and heat exchange component 2.

[0109] According to the air conditioner 100 of the present application, by arranging the air treatment component 1 of the above-mentioned first aspect, the overflow problem of the humidification module 12 in the air treatment component 1 is improved, and the reliability of the entire air conditioner 100 is improved.

[0110] Exemplarily, the ventilation and heat exchange component 2 can include a fan and a heat exchanger. When the ventilation and heat exchange component 2 is working, the fan introduces indoor air from the air conditioner inlet, and blows the introduced air back to the indoor after heat exchange with the heat exchanger, thereby playing a role of indoor temperature regulation.

[0111] The type of the air conditioner 100 is not limited, for example, can be an all-in-one air conditioner (such as a kitchen air conditioner, a mobile air conditioner, a window air conditioner, etc.) or a split air conditioner (such as a split hanging machine, a split cabinet machine, etc.), and when the type of the air conditioner 100 is determined, the relative positions of the air handling component 1 and the ventilation and heat exchange component 2 can be known. For example, when the air conditioner 100 is a cabinet machine, the ventilation and heat exchange component 2 can be located above the air handling component 1.

[0112] Other components of the air conditioner 100 according to the embodiments of the present application, such as air duct components and panel components, etc., and operations are known to those of ordinary skill in the art, and will not be described in detail here.

[0113] In the description of the present application, it should be understood that the orientations or positional relationships indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.

[0114] In addition, the terms "first" and "second" are only for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first" and "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise specifically limited.

[0115] In the present application, unless otherwise specifically defined and limited, the terms "mounting", "connection", "connection", "fixing" and the like should be broadly understood, for example, can be fixedly connected, or can be detachably connected, or can be integrated; can be directly connected, or can be indirectly connected through an intermediate medium; can 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 application can be understood according to the specific circumstances.

[0116] In the present application, unless otherwise explicitly specified and limited, the first feature is "on" or "under" the second feature can be that the first and second features are in direct contact, or the first and second features are in indirect contact through an intermediate medium. Moreover, the first feature is "above", "over" and "on" the second feature can be that the first feature is directly above or obliquely above the second feature, or it only means that the horizontal height of the first feature is higher than that of the second feature. The first feature is "below", "under" and "under" the second feature can be that the first feature is directly below or obliquely below the second feature, or it only means that the horizontal height of the first feature is less than that of the second feature.

[0117] In the description of the present application, the description of the terms "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 application. In the present application, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any suitable manner in any one or more embodiments or examples. In addition, those skilled in the art can combine and combine different embodiments or features of different embodiments or examples described in the present application without contradiction.

[0118] Although the embodiments of the present application have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and purposes of the present application, and the scope of the present application is defined by the claims and their equivalents.

Claims

1. An air handling component, characterized by, The air handling component comprises: a humidifying module comprising an air duct frame, a water tray and a wet film assembly, the air duct frame is arranged above the water tray and defines a humidifying air duct, the wet film assembly is arranged in the humidifying air duct and takes water from the water tray, the water tray defines a water storage groove for supplying water to the wet film assembly, and the water tray comprises a first side plate for defining the water storage groove, and the first side plate has an overflow opening in communication with the water storage groove.

2. The air-handling component of claim 1, wherein, The overflow opening is formed by a downward recess of a top portion of the first side plate.

3. The air-handling component of claim 2, wherein, The first side plate comprises a side plate body extending in a vertical direction and a side plate flange arranged at a top portion of the side plate body and extending outward relative to the side plate body, and a part of the side plate flange is recessed downward to form a recessed portion, and an upper portion of the recessed portion defines the overflow opening which is open at a top portion and extends through in an inner-outer direction.

4. The air-handling component of claim 3, wherein, An upper surface of the recessed portion constitutes a bottom surface of the overflow opening, and the bottom surface of the overflow opening extends upward in a direction from the inner side to the outer side.

5. The air-handling component of claim 3, wherein, A notch extending through in an up-down direction is formed in the recessed portion, the notch is in communication with the overflow opening, and a space below the notch is located on the outer side of the side plate body.

6. The air-handling component of Claim 1, wherein, In a length extension direction of the first side plate, a depth of the overflow opening gradually increases from both ends to a middle portion.

7. The air-handling component of Claim 1, wherein, The maximum depth of the overflow opening is not less than 5 mm.

8. The air-handling component of Claim 1, wherein, A water guide groove is arranged on the outer side of the first side plate and extends in the up-down direction below the overflow opening.

9. The air-handling component of claim 8, wherein, First protruding ribs are protruded on an outer surface of the first side plate, the first protruding ribs are two, and the water guide groove is defined between the two first protruding ribs.

10. The air-handling component of Claim 8, wherein, A lower end groove width of the water guide groove is smaller than an upper end groove width of the water guide groove.

11. The air-handling component of Claim 10, wherein, The water guide groove comprises an upper section, a middle section and a lower section arranged in sequence from top to bottom, the upper section and the lower section are equal groove width sections, the groove width of the upper section is greater than the groove width of the lower section, the groove width of the middle section gradually decreases from top to bottom, the upper end groove width of the middle section is consistent with the groove width of the upper section, and the lower end groove width of the middle section is consistent with the groove width of the lower section.

12. The air-handling component of Claim 8, wherein, The air handling component further comprises a purification module arranged below the humidifying module, and a water guide groove is arranged on a side wall of the purification module and extends in the up-down direction below the water guide groove.

13. The air-handling component of Claim 12, wherein, An upper end groove width of the water guide groove is greater than a lower end groove width of the water guide groove.

14. The air-handling component of Claim 12, wherein, Second protruding ribs are protruded on the side wall of the purification module, the second protruding ribs are two, and the water guide groove is defined between the two second protruding ribs.

15. The air-handling component of Claim 1, wherein, The water tray further defines a ventilation opening, a bottom portion of the humidifying air duct is open to communicate with the ventilation opening, the water storage groove comprises a water storage pool and a water supply pool arranged on different sides of the ventilation opening and in communication, the air handling component further comprises a water tank arranged above the water supply pool and supplying water to the water supply pool, and a lower end of the wet film assembly extends into the water storage pool to take water from the water storage pool.

16. The air-handling component of Claim 15, wherein, The water tank comprises a water supply part, a water storage part and two connecting parts, the water supply part and the water storage part extend along the left-right direction and are respectively arranged on the front and back sides of the air vent, the two connecting parts are respectively arranged on the left and right sides of the air vent and are used for connecting the same side end of the water supply part and the water storage part, the water storage pool is defined by the water storage part, the water supply pool is defined by the water supply part, the water storage tank further comprises a communication pool defined by at least one connecting part, the communication pool communicates the water storage pool and the water supply pool, the overflow port is arranged at the connecting part and communicates with the communication pool; The front side of the air duct frame body is provided with an insertion port extending along the left-right direction, the wet film assembly is inserted obliquely downward through the insertion port, and the rear lower end of the wet film assembly extends into the water storage pool, the orthographic projection of the wet film assembly on the horizontal plane at least partially overlaps the orthographic projection of the air vent on the horizontal plane, the water tank is located in front of the wet film assembly, and the air handling component further comprises a fresh air module located below the humidification module and upwardly blowing air.

17. An air conditioner characterized by comprising: Comprise: An air handling component according to any one of claims 1-16 and a ventilation heat exchange component. An air handling component according to any one of claims 1-16 and a ventilation heat exchange component.