Water production assembly and cleaning device
By using air to produce liquid water through a water-making component, the problem of high water consumption in cleaning devices is solved, thus reducing costs.
Patent Information
- Application Number
- CN202520064085.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-10
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2035-01-10
AI Technical Summary
Existing water supply methods for cleaning devices rely on pumping clean water, resulting in high water consumption and operating costs.
It adopts a water-generating component, which absorbs moisture from the air through a moisture-absorbing component and heats it with a heating element to form water vapor, which is then condensed into liquid water, reducing the amount of external water used.
This reduces the water consumption of cleaning devices, lowers operating costs, and improves water resource utilization efficiency.
Smart Images

Figure CN223805618U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to cleaning equipment technical field, specifically, relate to a water making subassembly and cleaning device. BACKGROUND
[0002] Cleaning device, for example, floor cleaning robot as a new type of cleaning household electrical appliances, because it has self-cleaning, automatic garbage dump, automatic backfill etc.
[0003] In the related art, the cleaning device needs to use water when the cleaning device performs self-cleaning on the cleaning part and when the cleaning part cleans the ground or the table top. However, the water supply mode of the existing cleaning device mainly uses continuous pumping of clean water in the clean water tank of the cleaning device to supply water for the cleaning operation or self-cleaning of the cleaning part, and the water consumption is relatively large, and the use cost of the cleaning device is relatively high. SUMMARY
[0004] The main purpose of the utility model is to provide a water making subassembly and cleaning device to solve the problem of high use cost of the existing cleaning equipment.
[0005] According to one aspect of the utility model, a water making subassembly is provided, comprising:
[0006] The base member is provided with a ventilation channel;
[0007] The moisture absorption member is arranged in the ventilation channel;
[0008] The condensing member includes a condensing pipe, a conveying channel and a heating part, the condensing pipe is at least partially located in the ventilation channel, the condensing pipe includes an inlet and an outlet, the flow path of the conveying channel passes through the moisture absorption member, the outlet end of the conveying channel is in communication with the inlet, and the heating part is arranged in the conveying channel for heating the moisture absorption member;
[0009] The power element is arranged in the base member to make air flow in the ventilation channel, the condensing pipe and the conveying channel.
[0010] Further, the moisture absorption member includes a moisture absorption disc, the moisture absorption disc is rotatably arranged in the ventilation channel, the disc surface of the moisture absorption disc is perpendicular to the center line of the ventilation channel, a plurality of micropores are arranged on the moisture absorption disc, and the micropores are arranged through the thickness direction of the moisture absorption disc.
[0011] Further, the moisture absorption disc comprises a disc, the conveying channel comprises a sector channel segment, the disc is located at the sector channel segment, and the center of the sector channel segment coincides with the center of the disc, and the heating part is arranged in the sector channel segment.
[0012] Further, the base part comprises a main body part, a support part and an air guide part connected in sequence, the ventilation channel penetrates through the main body part, the support part and the air guide part, the moisture absorption part is mounted on the support part, the condensation pipe is mounted on the main body part, the power element comprises a first fan, the first fan is arranged on the air guide part, and the air inlet end of the ventilation channel is located on the main body part, and the air outlet end of the ventilation channel is located on the air guide part.
[0013] Further, the air inlet end of the conveying channel communicates with the ventilation channel on the inner side of the air guide part; or,
[0014] The power element further comprises a second fan, the second fan is arranged in the conveying channel, and the air inlet end of the conveying channel extends to the outside of the water making assembly.
[0015] Further, the main body part comprises an inner support frame and an outer support frame, the outer support frame is provided with a cavity, the inner support frame is provided with the ventilation channel, the inner support frame is mounted and fixed in the cavity, and the condensation pipe is arranged on the inner support frame;
[0016] The outer support frame has oppositely arranged first and second side walls, wherein,
[0017] The first side wall and the wall surface corresponding to the first side wall on the inner support frame form a first channel, and the first channel communicates the inlet of the condensation pipe and the conveying channel.
[0018] The second side wall is opposite to the outlet of the condensation pipe, and the second side wall is provided with a recessed area, and the bottom of the recessed area has a water outlet.
[0019] Further, the moisture absorption disc comprises a molecular sieve; and / or,
[0020] The condensation pipe comprises at least one of a copper pipe, an aluminum pipe and a steel pipe.
[0021] Further, the water making assembly further comprises a steam conveying pipe, and the steam conveying pipe communicates with the inlet of the condensation pipe.
[0022] Further, the water making assembly further comprises a heating container, and the heating container communicates with the steam conveying pipe, wherein the heating part is heated or not heated when the heating container is heated.
[0023] In another aspect, the application also provides a cleaning device comprising the water making assembly.
[0024] In the utility model, when the water making assembly is placed in the air, the air can flow in the ventilation channel, the condensing pipe and the conveying channel when the power element works. The moisture in the air can be absorbed by the moisture absorbing part in the ventilation channel. At the same time, the flow path of the conveying channel passes through the moisture absorbing part, and the conveying channel is provided with a heating part for heating the moisture absorbing part. When the heating part heats the moisture absorbing part, the moisture absorbed by the moisture absorbing part can be heated into water vapor, which flows along the conveying channel and enters the inlet of the condensing pipe from the outlet of the conveying channel. Since at least part of the condensing pipe in the application is located in the internal channel of the ventilation channel, the water vapor carried by the hot air in the air can be condensed into liquid by the cold air in the ventilation channel, and finally flows out of the outlet of the condensing pipe to prepare liquid water.
[0025] When the water making assembly in the application is installed in the cleaning device, the water making assembly can make water using air for the cleaning device, which can reduce the external water consumption of the cleaning device to a certain extent, thereby reducing the use cost of the cleaning device. In addition, the moisture absorbing part in the water making assembly in the application can effectively absorb the moisture in the air, and more water vapor can be generated after heating by the heating part to condense more liquid water in the condensing pipe, which is more suitable for preparing more liquid water. BRIEF DESCRIPTION OF DRAWINGS
[0026] The drawings described herein are used to provide further understanding of the utility model, and constitute a part of the utility model. The illustrative embodiments of the utility model and their descriptions are used to explain the utility model, and do not constitute undue limitation on the utility model. In the drawings:
[0027] Figure 1 The three-dimensional structure of the water making assembly disclosed in the embodiment of the application is shown in the figure;
[0028] Figure 2 The first exploded view of the water making assembly disclosed in the embodiment of the application is shown in the figure;
[0029] Figure 3 The second exploded view of the water making assembly disclosed in the embodiment of the application is shown in the figure;
[0030] Figure 4 The third exploded view of the water making assembly disclosed in the embodiment of the application is shown in the figure.
[0031] Among them, the above-mentioned drawings include the following signs:
[0032] 10, base part; 11, main body part; 111, inner support frame; 1111, cavity; 1112, first passage; 112, outer support frame; 1121, first side wall; 1122, second side wall; 11221, recessed area; 11222, water outlet; 12, support part; 13, air guide part; 101, ventilation passage; 20, moisture absorbing part; 21, moisture absorbing disc; 211, micropore; 30, condensing part; 31, condensing tube; 311, inlet; 312, outlet; 32, conveying passage; 321, fan-shaped passage segment; 33, heating part; 40, power element; 50, steam conveying tube. DETAILED DESCRIPTION
[0033] It should be noted that the embodiments and features of the embodiments in the present application can be combined with each other without conflict. The present application will be described in detail below with reference to the drawings and in combination with the embodiments.
[0034] It should be noted that the terms used herein are only for describing specific embodiments, and are not intended to limit the exemplary embodiments according to the present application. As used herein, the singular form is intended to include the plural form, unless the context clearly indicates otherwise, and it should also be understood that, when the terms "comprise" and / or "include" are used in the specification, there is a presence of a feature, step, operation, device, component and / or combinations thereof.
[0035] Unless specifically stated otherwise, the relative arrangements of components and steps, numerical expressions, and numerical values set forth in these embodiments do not limit the scope of the present application. At the same time, it should be understood that, for the convenience of description, the sizes of various parts shown in the drawings are not drawn in accordance with the actual proportional relationship. The techniques, methods and devices known to those skilled in the relevant art can not be discussed in detail, but under appropriate circumstances, the techniques, methods and devices should be considered as part of the authorized specification. In all examples shown and discussed herein, any specific value should be interpreted as merely exemplary, and not as a limitation. Therefore, other examples of exemplary embodiments can have different values. It should be noted that similar reference numbers and letters represent similar items in the following drawings, and therefore, once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.
[0036] As described in the background, the water supply mode of the existing cleaning device is mainly to continuously pump clean water in the clean water tank of the cleaning device to supply water for the cleaning operation of the cleaning element or the water working condition such as self-cleaning, and the water consumption is relatively large, and the use cost of the cleaning device is relatively high. Therefore, the application provides a water making assembly. When the water making assembly is installed in the cleaning device, the water making assembly can use air or steam to make water for use of the cleaning device, which can reduce the water consumption of the cleaning device, and thus the use cost of the cleaning device can be reduced. The water making assembly and the cleaning device of the application will be described in detail below with reference to the accompanying drawings.
[0037] Referring to Figures 1 to 4 as shown, Figure 1 The arrow direction is the flow direction of air. The water making assembly in the embodiment includes a base component 10, a moisture absorption component 20, a condensation component 30, and a power element 40.
[0038] The base component 10 is provided with a ventilation channel 101; the moisture absorption component 20 is arranged in the ventilation channel 101; the condensation component 30 includes a condensation pipe 31, a conveying channel 32, and a heating part 33, the condensation pipe 31 is at least partially located in the ventilation channel 101, the condensation pipe 31 includes an inlet 311 and an outlet 312, the flow path of the conveying channel 32 passes through the moisture absorption component 20, the outflow end of the conveying channel 32 is in communication with the inlet 311, and the heating part 33 is arranged in the conveying channel 32 to heat the moisture absorption component 20; the power element 40 is arranged in the base component 10 to make the air flow in the ventilation channel 101, the condensation pipe 31, and the conveying channel 32.
[0039] When the water making assembly in the embodiment is placed in the air, the power element 40 works to make the air flow in the ventilation channel 101, the condensation pipe 31, and the conveying channel 32. Since the ventilation channel 101 in the embodiment is provided with the moisture absorption component 20, the moisture in the air can be absorbed by the moisture absorption component 20. At the same time, the flow path of the conveying channel 32 passes through the moisture absorption component 20, and the heating part 33 is arranged in the conveying channel 32 to heat the moisture absorption component 20. When the heating part 33 heats the moisture absorption component 20, the moisture absorbed by the moisture absorption component 20 can be heated into water vapor, which flows along the conveying channel 32 and enters the inlet 311 of the condensation pipe 31 from the outflow end of the conveying channel 32. Since at least part of the condensation pipe 31 in the embodiment is located in the internal channel of the ventilation channel 101, the water vapor carried by the hot air enters the condensation pipe 31, and the water vapor carried by the air can be condensed into liquid by the cold air in the ventilation channel 101, and finally flows out of the outlet 312 of the condensation pipe 31 to prepare liquid water.
[0040] When the water making assembly in the embodiment is installed in the cleaning device, the ventilation channel 101 of the water making assembly is communicated with air, water making can be carried out, and finally the water is supplied to the cleaning member to assist in performing cleaning work or cleaning the cleaning member, etc. That is to say, after the water making assembly in the embodiment is installed in the cleaning device, the water making assembly can make water by using air to supply the cleaning device, which can reduce the external water consumption of the cleaning device to a certain extent, and further can reduce the use cost of the cleaning device. In addition, the water making assembly in the embodiment is provided with the moisture absorbing part 20, which can effectively absorb the moisture in the air, and after being heated by the heating part 33, more water vapor can be generated to condense more liquid water in the condensing pipe 31, which is more suitable for preparing more liquid water.
[0041] In the embodiment, the moisture absorbing part 20 includes a moisture absorbing disc 21 which is rotatably arranged in the ventilation channel 101, and the disc surface of the moisture absorbing disc 21 is perpendicular to the center line of the ventilation channel 101. A plurality of micropores 211 are arranged on the moisture absorbing disc 21 and penetrate through the thickness direction of the moisture absorbing disc 21. In the embodiment, by arranging the moisture absorbing disc 21 which is perpendicular to the center line of the ventilation channel 101, when air flows through the ventilation channel 101, the moisture absorbing disc 21 can be fully contacted with the air to absorb the moisture carried in the air on the moisture absorbing disc 21. The micropores 211 on the moisture absorbing disc 21 provide a flow space for the air flowing in the ventilation channel 101, which is more convenient for the moisture absorbing disc 21 to effectively absorb the moisture in the air.
[0042] In addition, in the embodiment, the moisture absorbing disc 21 is slowly rotated in the ventilation channel 101, so that the moisture in the air can be fully absorbed. In order to drive the rotation of the moisture absorbing disc 21, a motor can be arranged on the base part 10, and a rack is arranged corresponding to the outer periphery of the moisture absorbing disc 21. In actual use, a gear is sleeved on the output shaft of the motor, and the gear is engaged with the rack. When the motor rotates, the moisture absorbing disc 21 can be driven to rotate by the gear. Of course, in other embodiments of the application, the moisture absorbing disc 21 can also be driven to rotate by a motor and a pulley mechanism, etc. As long as it is other deformation modes under the concept of the application, it is within the protection scope of the application.
[0043] Exemplarily, the moisture absorption disc 21 in the embodiment comprises a molecular sieve, which is a porous solid material with a regular pore structure, mainly composed of silicate or aluminosilicate, and sometimes containing other elements such as aluminum, phosphorus, etc. The micropores 211 on the molecular sieve are very uniform, accurate to the molecular level, so they can selectively adsorb molecules smaller than their pore size and reject molecules larger than their pore size. This feature makes the molecular sieve play an extremely important role in the separation and purification process of gases and liquids. The molecular sieve can effectively remove moisture in air or other gases. In a preferred embodiment of the present application, the molecular sieve is made of high-performance MOFs adsorption material-HR-MOFs / M-01, which can well adsorb moisture in air.
[0044] The moisture absorption disc 21 in the embodiment comprises a disc, and the conveying channel 32 comprises a sector channel segment 321, the disc is located at the sector channel segment 321, the center of the sector channel segment 321 coincides with the center of the disc, and the heating part 33 is arranged in the sector channel segment 321. In this way, when the air flows through the moisture absorption disc 21, the conveying channel 32 does not cover the moisture absorption disc 21, and the air can flow more easily in the ventilation channel 101. At the same time, the center of the sector channel segment 321 coincides with the center of the disc, and when the moisture absorption disc 21 rotates, the heating part 33 can effectively deliver heat to all parts of the moisture absorption disc 21, and the situation that some parts of the moisture absorption disc 21 cannot be in contact with the heat released by the heating part 33 does not occur, which is more convenient for heating the moisture absorption disc 21 to heat the moisture adsorbed by the moisture absorption disc 21 into water vapor.
[0045] Of course, in other embodiments of the present application, the moisture absorption disc 21 can also be oval, square or other regular or irregular shapes, as long as other deformation modes can ensure that the conveying channel 32 can heat the moisture absorption disc 21 comprehensively when the moisture absorption disc 21 rotates, which are within the protection scope of the present application.
[0046] Again, in combination with Figures 1 to 4 As shown, the base component 10 in the embodiment comprises a main body part 11, a support part 12 and an air guide part 13 connected in sequence. The ventilation channel 101 penetrates through the main body part 11, the support part 12 and the air guide part 13, the moisture absorption component 20 is installed on the support part 12, the condensation pipe 31 is installed on the main body part 11, and the power element 40 comprises a first fan arranged on the air guide part 13. The air inlet end of the ventilation channel 101 is located on the main body part 11, and the air outlet end of the ventilation channel 101 is located on the air guide part 13, so that the structure is compact and the miniaturization design of the water making assembly can be realized. In actual assembly, the main body part 11, the support part 12 and the air guide part 13 can be integrally formed, or can be separately arranged and fixed as a whole by screwing, welding, clamping or the like, which is not limited in the present application.
[0047] Of course, in other embodiments of the present application, the installation positions of the power element 40, the moisture absorbing component 20 and the condensing pipe 31 can also be adjusted, for example, the condensing pipe 31 is installed at the air guide portion 13, and the power element 40 is installed at the main body portion 11, as long as other variations under the concept of the present application are within the protection scope of the present application.
[0048] In some embodiments of the present application, the air inlet end of the conveying passage 32 is communicated with the ventilation passage 101 inside the air guide portion 13, so that when the power element 40 works, the air entering from the main body portion 11 flows out from the air guide portion 13 in part, and flows into the conveying passage 32 in part, and then the heat released by the heating portion 33 in the conveying passage 32 can be conveyed to the moisture absorbing disc 21 to heat the moisture absorbing disc 21. At the same time, in this embodiment, the air inlet end of the conveying passage 32 is communicated with the ventilation passage 101 inside the air guide portion 13, so that only one power element 40, i.e. the first fan, is needed to realize the conveying of cold and hot air, which is simple in structure and easy to realize.
[0049] Optionally, in other embodiments of the present application, the power element 40 further comprises a second fan (not shown in the figure), which is arranged in the conveying passage 32. In this structure, the air inlet end of the conveying passage 32 can be communicated with the ventilation passage 101 inside the air guide portion 13, or not. When the air inlet end of the conveying passage 32 is communicated with the ventilation passage 101 inside the air guide portion 13, under the joint action of the first fan and the second fan, the heat released by the heating portion 33 can be quickly conveyed to the moisture absorbing component 20; when the air inlet end of the conveying passage 32 is not communicated with the ventilation passage 101 inside the air guide portion 13, the air inlet of the conveying passage 32 extends to the outside of the water making assembly, which is convenient for introducing fresh air to assist water making, and can improve the water making efficiency and water making amount of the water making assembly in this embodiment to a certain extent.
[0050] Further, the main body portion 11 comprises an inside support frame 111 and an outside support frame 112, the outside support frame 112 is provided with a cavity 1111, the inside support frame 111 is provided with the above-mentioned ventilation passage 101 inside, the inside support frame 111 is fixedly installed in the cavity 1111, and the condensing pipe 31 is arranged through the inside support frame 111; the outside support frame 112 is provided with oppositely arranged first and second side walls 1121 and 1122. The first side wall 1121 and the wall surface of the inside support frame 111 corresponding to the first side wall 1121 form a first passage 1112, which communicates the inlet 311 of the condensing pipe 31 and the conveying passage 32, so as to facilitate the conveying of the hot air heated by the heating portion 33 to the condensing pipe 31.
[0051] In the embodiment, the second side wall 1122 is opposite to the outlet 312 of the condensing pipe 31, and a recessed area 11221 is arranged on the second side wall 1122, and the bottom of the recessed area 11221 is provided with a water outlet 11222. Through the action of the recessed area 11221, the water flowing out of the outlet 312 of the condensing pipe 31 is collected. The water outlet 11222 is arranged at the recessed area 11221, and in actual use, the condensate water can be transported to the place where water is needed by connecting a pipeline at the water outlet 11222 of the recessed area 11221. Optionally, the second side wall 1122 in the embodiment is provided with a flow guide slope, and through the action of the flow guide slope, the water flowing out of the condensing pipe 31 is guided to the recessed area 11221.
[0052] Further, the condensing pipe 31 in the embodiment includes at least one of a copper pipe, an aluminum pipe and a steel pipe. That is, the condensing pipe 31 in the embodiment can be all copper pipes, all aluminum pipes or steel pipes, or any combination of copper pipes, aluminum pipes and steel pipes. The copper pipe, the aluminum pipe and the steel pipe have good thermal conductivity and durability, which facilitates heat exchange between the inside and the outside of the pipe, and further facilitates effective cooling of the water carried in the hot air in the condensing pipe 31. Of course, in other embodiments of the application, the condensing pipe 31 can also be other pipe structures with high thermal conductivity, as long as it is other deformation modes under the concept of the application, which are within the protection scope of the application.
[0053] In combination with Figures 2 to 4 As shown in the figure, the heating part 33 in the embodiment includes an electric heating sheet or an electric heating wire, and by electrifying the electric heating sheet or the electric heating wire, heat can be generated to heat the moisture absorbing component 20, and then the moisture on the moisture absorbing component 20 can be heated to generate water vapor. Optionally, the electric heating sheet or the electric heating wire in the embodiment can be one piece or one wire, or multiple pieces or wires, which is selected and designed according to the actual space and structure requirements, and is not limited in the application.
[0054] Further, the water making assembly in the embodiment further includes a steam delivery pipe 50, which is in communication with the inlet 311 of the condensing pipe 31. In actual use, when the water making assembly is installed in the cleaning device and the steam delivery pipe 50 is in communication with a heating container such as a heating water tank on the cleaning device, steam can be delivered to the condensing pipe 31, and after the steam flows through the condensing pipe 31, it can be condensed into liquid water for recycling, thereby further reducing the use cost of the cleaning device.
[0055] In some embodiments, the water making assembly further comprises a heating container (not shown in the figure) in communication with the steam delivery pipe 50, wherein the heating container is heated, and the heating part 33 is heated or not heated. That is, in this embodiment, by providing the heating container, the water making assembly can not only use air to make water, but also can use steam to distill water. For example, the heating container can be a pot or the like.
[0056] In summary, in the water making assembly of the present application, not only the condensing part 30 and the moisture absorbing part 20 are provided, but also the steam delivery pipe 50 is provided. Through the action of the moisture absorbing part 20, the moisture in the air can be effectively absorbed and heated to form water vapor, which is then transmitted to the condensing part 30 for condensation to make water. In addition, the heating container capable of generating steam can be connected to the steam delivery pipe 50 to distill water. The water making assembly has large water making capacity and good water making effect, and can effectively reduce the water cost of the cleaning device.
[0057] On the other hand, the present application also discloses a cleaning device. For example, the cleaning device can be a sweeper, a scrubber, a vacuum cleaner, or a cleaning base station having the sweeper, the scrubber, or the vacuum cleaner. The cleaning device comprises the water making assembly described above, and therefore, the cleaning device comprises all the technical effects of the water making assembly in the above embodiments. Since the effects of the water making assembly have been described in detail above, they will not be described here again.
[0058] For the convenience of description, spatial relative terms such as "above", "upper", "top", "up", etc. can be used herein to describe the spatial positional relationship of one device or feature with respect to other devices or features as shown in the drawings. It should be understood that the spatial relative terms are intended to include different orientations in use or operation in addition to the orientation of the devices described in the drawings. For example, if the devices in the drawings are inverted, the device described as "above" or "on" other devices or structures will be positioned "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below" orientations. The devices can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein are interpreted accordingly.
[0059] In addition, it should be noted that the use of the terms "first", "second", etc. to define parts is only for the convenience of distinguishing the corresponding parts, and the above terms have no special meaning unless otherwise stated. Therefore, it cannot be understood as a limitation on the protective scope of the present application.
[0060] The above are only preferred embodiments of the present application, and are not used to limit the present application, and for those skilled in the art, the present application can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A water making assembly, characterized by, The application relates to a water making assembly. The water making assembly comprises: a base component (10) provided with a ventilation channel (101); a moisture absorption component (20) arranged in the ventilation channel (101); a condensation component (30) comprising a condensation pipe (31), a conveying channel (32) and a heating part (33), the condensation pipe (31) is at least partially arranged in the ventilation channel (101), the condensation pipe (31) comprises an inlet (311) and an outlet (312), the conveying channel (32) passes through the moisture absorption component (20), the outlet end of the conveying channel (32) is communicated with the inlet (311), and the heating part (33) is arranged in the conveying channel (32) and used for heating the moisture absorption component (20); 2. The water making assembly of claim 1, wherein, a power element (40) arranged in the base component (10) to make air flow in the ventilation channel (101), the condensation pipe (31) and the conveying channel (32).
3. The water making assembly of claim 2, wherein, The moisture absorption component (20) comprises a moisture absorption disc (21) which is rotatably arranged in the ventilation channel (101), the disc surface of the moisture absorption disc (21) is perpendicular to the center line of the ventilation channel (101), and a plurality of micropores (211) are arranged on the moisture absorption disc (21) and pass through the thickness direction of the moisture absorption disc (21).
4. The water making assembly of claim 1, wherein, The moisture absorption disc (21) comprises a disc, the conveying channel (32) comprises a fan-shaped channel segment (321), the disc is located at the fan-shaped channel segment (321), the center of the fan-shaped channel segment (321) is coincided with the center of the disc, and the heating part (33) is arranged in the fan-shaped channel segment (321).
5. The water making assembly of claim 4, wherein, The base component (10) comprises a main body part (11), a support part (12) and an air guide part (13) which are sequentially connected, the ventilation channel (101) passes through the main body part (11), the support part (12) and the air guide part (13), the moisture absorption component (20) is mounted on the support part (12), the condensation pipe (31) is mounted on the main body part (11), the power element (40) comprises a first fan, the first fan is arranged in the air guide part (13), the air inlet end of the ventilation channel (101) is located on the main body part (11), and the air outlet end of the ventilation channel (101) is located on the air guide part (13). The air inlet end of the conveying channel (32) is communicated with the ventilation channel (101) on the inner side of the air guide part (13); or, The power element (40) further comprises a second fan, the second fan is arranged in the conveying channel (32), and the air inlet end of the conveying channel (32) extends to the outside of the water making assembly.
6. The water making assembly of claim 4, wherein, The main body (11) comprises an inner support frame (111) and an outer support frame (112), the outer support frame (112) is provided with a cavity (1111), the inner support frame (111) is provided with the ventilation channel (101), the inner support frame (111) is fixedly installed on the cavity (1111), and the condensing pipe (31) is arranged on the inner support frame (111); The outer support frame (112) has oppositely arranged first and second side walls (1121) and (1122), wherein, The first side wall (1121) and a wall surface corresponding to the first side wall (1121) on the inner support frame (111) form a first channel (1112), and the first channel (1112) is in communication with the inlet (311) of the condensing pipe (31) and the conveying channel (32); The second side wall (1122) is opposite to the outlet (312) of the condensing pipe (31), and the second side wall (1122) is provided with a recessed area (11221), and the bottom of the recessed area (11221) is provided with a water outlet (11222).
7. The water making assembly of claim 2, wherein, The moisture absorption disc (21) comprises a molecular sieve; and / or, The condensing pipe (31) comprises at least one of a copper pipe, an aluminum pipe and a steel pipe.
8. The water making assembly of any one of claims 1 to 7, wherein, The water making assembly further comprises a steam conveying pipe (50) in communication with the inlet (311) of the condensing pipe (31).
9. The water making assembly of claim 8, wherein, The water making assembly further comprises a heating container in communication with the steam conveying pipe (50), wherein the heating container is heated, and the heating part (33) is heated or not heated.
10. A cleaning device characterized by The cleaning device comprises the water making assembly according to any one of claims 1 to 9.