Separable floating humidification apparatus
The separable floating humidification apparatus addresses mist obstruction and electrical risks by using wireless induction coils for power transmission, enabling efficient mist output and safe liquid replenishment.
Patent Information
- Authority / Receiving Office
- US · United States
- Patent Type
- Applications(United States)
- Current Assignee / Owner
- GUANGZHOU JUNZHUO INFORMATION TECHNOLOGY CO LTD
- Filing Date
- 2023-05-26
- Publication Date
- 2026-07-30
AI Technical Summary
Traditional humidification apparatuses face issues with mist obstruction due to high liquid levels and the need for complex power supply structures, which can lead to liquid damage and electrical component risks during liquid replenishment.
A separable floating humidification apparatus with a detachable control module and a floating atomization module that uses wireless induction coils for power transmission, allowing easy liquid replenishment and preventing liquid ingress into electrical components.
The apparatus achieves efficient mist output without obstruction and protects electrical components by separating the liquid storage and control modules, ensuring a reliable and convenient operation.
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Figure US20260218926A1-D00000_ABST
Abstract
Description
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a national stage filing under 35 U.S.C. § 371 of international application No. PCT / CN2023 / 096572, filed on May 26, 2023, which claims priority to Chinese patent application No. 2023105737390 filed on May 19, 2023. The contents of these applications are incorporated herein by reference in their entirety.TECHNICAL FIELD
[0002] The present disclosure relates to the technical field of atomization devices, in particular to a separable floating humidification apparatus.BACKGROUND
[0003] In a traditional humidification apparatus, an atomization piece is usually arranged at a bottom part of a liquid storage chamber, which is convenient for the atomization piece to atomize a liquid in the liquid storage chamber. However, when a liquid level in the liquid storage chamber is high, atomized mist will be obstructed by the liquid, resulting in a poor mist output effect. A manufacturer improves the atomization piece into a structure that can float by buoyancy of the liquid in the liquid storage chamber, which improves the mist output effect. Correspondingly, the humidification apparatus also needs to add a relatively complex power supply structure to supply power to the floating atomization piece.
[0004] Moreover, when a user needs to replenish the liquid for the liquid storage chamber, the liquid is prone to cause short circuit or even damage to electrical components.SUMMARY
[0005] The present disclosure aims at solving at least one of the technical problems in the existing technology. Therefore, the present disclosure provides a separable floating humidification apparatus, which is convenient to replenish liquid to be atomized, convenient and reliable to use and protects the apparatus from damage.
[0006] A separable floating humidification apparatus according to an embodiment of a first aspect of the present disclosure includes: a box body internally provided with a liquid storage chamber, where the box body is provided with a mist outlet communicated fluidly with the liquid storage chamber; an atomization module provided in the liquid storage chamber, where the atomization module is able to float on liquid stored in the liquid storage chamber and atomize the liquid; a first coil arranged on the atomization module and the first coil being electrically connected with the atomization module; and a control module detachably connected with the box body, where the control module is provided with a second coil, and the control module is configured to transmit an atomization frequency signal and supply power to the atomization module by the second coil being coupled to the first coil.
[0007] The separable floating humidification apparatus according to the embodiment of the present disclosure at least has the following beneficial effects.
[0008] According to the separable floating humidification apparatus of the present disclosure, the liquid to be atomized can be stored in the liquid storage chamber, the atomization module can float on the liquid under the buoyancy of the liquid, and the control module can output an alternating current to the second coil. As the first coil and the second coil are wirelessly coupled, the first coil generates electricity by induction to drive the atomization module to operate to atomize the liquid; because the atomization module floats on the liquid, the mist formed by atomization is not easily obstructed by the liquid, and the mist can pass through a space above the liquid and be output from the mist outlet to the outside, thus having a good atomization effect; meanwhile, when the user needs to replenish the liquid for the liquid storage chamber, the box body and the control module can be detached and separated, and the box body can be extracted separately for liquid addition operation, thereby preventing the liquid from invading into the control module, and the separable floating humidification apparatus is convenient and reliable to use, and protects the electrical components of the control module from damage.
[0009] According to some embodiments of the present disclosure, the control module is provided with a fan assembly, the box body is provided with an air inlet communicated fluidly with the liquid storage chamber, and an airflow outlet of the fan assembly is aligned to the air inlet.
[0010] According to some embodiments of the present disclosure, the fan assembly is provided with a mounting bump, the mounting bump is able to penetrate through the air inlet and protrude from an inner wall surface of the liquid storage chamber, and the airflow outlet is arranged at a lower end surface of the mounting bump such that an airflow output by the fan assembly is conveyed towards a bottom of the liquid storage chamber.
[0011] According to some embodiments of the present disclosure, a first sliding slot and a first sliding block are further included, where one of the first sliding slot and the first sliding block is arranged on an outer side wall of the box body, and correspondingly, the other one of the first sliding slot and the first sliding block is arranged on the control module, the first sliding block is able to slide along the first sliding slot and the first sliding block is able to escape from an end of the first sliding slot to realize detachable connection between the control module and the box body, the mounting bump and the air inlet are located at the end of the first sliding slot, and the mounting bump is able to be abutted against an inner wall of the air inlet to limit a sliding position of the first sliding block in the first sliding slot.
[0012] According to some embodiments of the present disclosure, the box body is movably connected with the atomization module via a guiding structure.
[0013] According to some embodiments of the present disclosure, the guiding structure includes a second sliding slot and a second sliding block, one of the second sliding slot and the second sliding block is arranged on an inner side wall of the box body, and correspondingly, the other one of the second sliding slot and the second sliding block is arranged on the atomization module, and the second sliding block is able to slide along the second sliding slot under an action of liquid buoyancy of the atomization module.
[0014] According to some embodiments of the present disclosure, the guiding structure includes a second sliding slot and a second sliding block, the second sliding slot is arranged on an inner side wall of the box body, the second sliding block is arranged on the atomization module, and the second sliding block is able to slide along the second sliding slot under an action of liquid buoyancy of the atomization module; and the control module is provided with a fan assembly, the box body is provided with an air inlet communicated fluidly with the liquid storage chamber, the fan assembly is provided with a mounting bump, the mounting bump is able to penetrate through the air inlet and protrude from an inner wall surface of the liquid storage chamber, the mounting bump is located at an end of the second sliding slot, the airflow outlet of the fan assembly is arranged at a lower end surface of the mounting bump such that an airflow output by the fan assembly is conveyed towards a bottom of the liquid storage chamber along the second sliding slot.
[0015] According to some embodiments of the present disclosure, the second coil is arranged on a side surface of the box body and the second coil is arranged along a height direction of the liquid storage chamber.
[0016] According to some embodiments of the present disclosure, a mist outlet direction of an atomization output end of the atomization module deviates from a direction of the mist outlet relative to the atomization module.
[0017] According to some embodiments of the present disclosure, the mist outlet is located at a top part of the liquid storage chamber, the atomization module is provided with a mounting end face inclined relative to a horizontal plane, the mounting end face is provided with an atomization outlet, an opening direction of the atomization outlet is inclined relative to a vertical direction, and the atomization output end of the atomization module outputs mist through the atomization outlet.
[0018] Additional aspects and advantages of the present disclosure will be given in part in the following description, which will become apparent from the following description or be understood through practice of the present disclosure.BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The above and / or additional aspects and advantages of the present disclosure will be apparent and easily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0020] FIG. 1 is a schematic perspective view of an embodiment of a floating humidification apparatus according to the present disclosure;
[0021] FIG. 2 is an exploded view of an embodiment of the floating humidification apparatus according to the present disclosure;
[0022] FIG. 3 is a sectional view of a section A-A of an embodiment of the floating humidification apparatus according to the present disclosure in FIG. 1;
[0023] FIG. 4 is a schematic diagram showing an internal structure of an embodiment of the floating humidification apparatus according to the present disclosure; and
[0024] FIG. 5 is a schematic perspective view of an atomization module.REFERENCE NUMERALS100—box body; 110—air inlet; 120—liquid storage chamber; 130—cover body; 140—mist outlet; 200—atomization module; 210—mounting end face; 220—atomization outlet; 230—first coil; 300—control module; 310—second coil; 400—fan assembly; 410—mounting bump; 420—airflow outlet; 510—first sliding slot; 520—first sliding block; 600—guiding structure; 610—second sliding slot; and 620—second sliding block.DETAILED DESCRIPTION
[0026] Embodiments of the present disclosure are described in detail hereinafter, examples of the embodiments are shown in the drawings, and the same or similar reference numerals throughout the text denote the same or similar elements or elements having the same or similar functions. The embodiments described hereinafter with reference to the drawings are exemplary, are only intended to explain the present disclosure, and cannot be understood as limiting the present disclosure.
[0027] In the description of the present disclosure, it should be understood that, the orientation or position relationship related to the orientation description, such as the orientation or position relationship indicated by the terms “upper”, “lower”, “front”, “rear”, “left”, “right”, “vertical”, “horizontal”, “top”, “bottom”, “inside”, “outside” and the like is based on the orientation or position relationship shown in the drawings, which is only used for convenience of the description of the present disclosure and simplification of the description instead of indicating or implying that the indicated device or element must have a specific orientation, and be constructed and operated in a specific orientation, and thus should not be understood as a limitation to the present disclosure.
[0028] In the description of the present disclosure, the term “several” refers to being one or more, the term “multiple / a plurality” refers to being two or more, and the terms “greater than”, “less than”, “more than” and the like are understood as not including the following number, while the terms “above”, “below”, “within” and the like are understood as including the following number. If used herein, the terms such as first and second are only for the purpose of distinguishing technical features, and should not be understood as indicating or implying relative importance, implicitly indicating the number of the indicated technical features or implicitly indicating the order of the indicated technical features.
[0029] In the description of the present disclosure, unless otherwise explicitly defined, the terms “setting”, “linking” and “connecting” should be understood in a broad sense, for example, it may be fixed connection, detachable connection or integrated connection; it may also be mechanical connection or electrical connection; and it may be direct connection, may also be indirect connection through an intermediate medium, and may be communication inside two elements. For those of ordinary skills in the art, the specific meanings of the above terms in the present disclosure may be understood in specific situations.
[0030] As shown in FIGS. 1 to 5, a separable floating humidification apparatus according to an embodiment of a first aspect of the present disclosure includes a box body 100, an atomization module 200, a first coil 230 and a control module 300. The box body 100 is internally provided with a liquid storage chamber 120, and the box body 100 is provided with a mist outlet 140 communicated fluidly with the liquid storage chamber 120. The atomization module 200 is provided in the liquid storage chamber 120, and the atomization module 200 is able to float on liquid stored in the liquid storage chamber 120 and atomize the liquid. The first coil 230 is arranged on the atomization module 200 and the first coil 230 is electrically connected with the atomization module 200. The control module 300 is detachably connected to the box body 100, the control module 300 is provided with a second coil 310, and the control module 300 transmits an atomization frequency signal and supplies power to the atomization module 200 by the coupling between the second coil 310 and the first coil 230.
[0031] The box body 100 may be barrel-shaped, and the mist outlet 140 is generally arranged at a top part of the liquid storage chamber 120 or near an upper side wall.
[0032] The control module 300 includes a housing, where the housing is provided with a control chip with signal processing and output functions such as a Microcontroller Unit (MCU) or a Central Processing Unit (CPU), and the housing is further provided with a power supply driving circuit and an inverter circuit. The inverter circuit can be a half-bridge or full-bridge inverter circuit composed of a plurality of semiconductor switching tubes, and the control chip is connected with each semiconductor switching tube to control on-off of the semiconductor switching tubes, such that a DC power can be converted into AC power and signals with a corresponding atomization frequency and output to the second coil 310. The power supply driving circuit can include a rectifier circuit, a switching power supply circuit and a power management circuit. The power supply driving circuit can be directly externally connected with commercial power or externally connected with the commercial power through a power adapter. The rectifier circuit rectifies the commercial power and then modulates into an appropriate current and voltage through the switching power supply circuit and the power management circuit to supply power to the control chip and output the power to an input end of the inverter circuit. Alternatively, the floating humidification apparatus can be internally provided with an energy storage battery, which can supply power to the control chip and output electric energy to the input end of the inverter circuit.
[0033] The atomization module 200 can include a floating base and an atomization piece. The atomization piece can be made from a semiconductor atomization sheet and other components. The floating base is made of plastic or resin with low density. Both the floating base and the atomization piece have low weight and can float under the buoyancy of the liquid. The first coil 230 is electrically connected with the atomization piece, and the first coil 230 is coupled to the second coil 310. The first coil 230 generates electricity by induction and supplies power to the atomization piece and other electrical components on the atomization module 200. It should be noted that the control module 300 transmits an atomization frequency signal and supplies power to the atomization module 200 through the coupling between the second coil 310 and the first coil 230. It can be understood that the first coil 230 can be directly coupled with an induction piece through capacitance, and the first coil 230 forms the atomization frequency signal by induction and applies the atomization frequency signal to an atomization sheet of the induction piece. The induced atomization frequency signal is adapted to a frequency of the induction piece of the atomization sheet to generate vibration to atomize the liquid without the introduction of other circuits, thereby further reducing the weight of the atomization module 200. Of course, the atomization module 200 can also be provided with a processing unit with a processing chip and a rectifier circuit, or the like. The rectifier circuit rectifies an alternating current induced by the first coil 230 and then supplies power to the processing unit, and the processing unit then modulates into an alternating current with a specific vibration frequency to supply power to the atomization piece to drive the atomization piece to operate.
[0034] According to the separable floating humidification apparatus according to an embodiment of the present disclosure, the liquid to be atomized can be stored in the liquid storage chamber 120, the atomization module 200 can float on the liquid under the buoyancy of the liquid, and the control module 300 can output an atomization frequency signal and an alternating current to the second coil 310. As the first coil 230 and the second coil 310 are wirelessly coupled, the first coil 230 generates electricity by induction to drive the atomization module 200 to operate to atomize the liquid. Since the atomization module 200 floats on the liquid, the mist formed by atomization is not easily obstructed by the liquid, and the mist can flow through a space above the liquid and then be output through the mist outlet 140 to the outside, thus having a good atomization effect. Meanwhile, when the user needs to replenish the liquid for the liquid storage chamber 120, the box body 100 and the control module 300 can be detached and separated, and the box body 100 can be extracted separately for liquid addition operation, thereby preventing the liquid from invading into the control module 300. The separable floating humidification apparatus is convenient and reliable to use while protecting the electrical components of the control module 300 from damage.
[0035] In some embodiments of the present disclosure, as shown in FIG. 2 and FIG. 3, the control module 300 is provided with a fan assembly 400, the box body 100 defines an air inlet 110 communicated fluidly with the liquid storage chamber 120, and an airflow outlet 420 of the fan assembly 400 is aligned to the air inlet 110.
[0036] The fan assembly 400 can drive an external airflow to blow into the liquid storage chamber 120, and the mist formed by the atomization module 200 can exit through the mist outlet 140 to the exterior in an orderly manner under the drive of the airflow, such that a humidification effect of the floating humidification apparatus on the outside is improved.
[0037] In some embodiments of the present disclosure, as shown in FIG. 3, the fan assembly 400 is provided with a mounting bump 410, the mounting bump 410 is allowed to penetrate through the air inlet 110 and protrude from an inner wall surface of the liquid storage chamber 120, and the airflow outlet 420 is arranged at a lower end surface of the mounting bump 410 such that an airflow output by the fan assembly 400 can be conveyed towards a bottom of the liquid storage chamber 120.
[0038] It should be noted that the fan assembly 400 and the control module 300 can share one housing or be separately arranged. In an embodiment of sharing one housing, the mounting bump 410 is formed by outward protrusion of the housing, and an air duct is arranged in the housing. The fan assembly 400 is arranged in the housing and located in the air duct, and the airflow outlet 420 is communicated fluidly with the air duct at an end. The airflow outlet 420 extends into the liquid storage chamber 120 through the mounting bump 410 and is arranged downwards. The airflow is transported along the inner side wall of the liquid storage chamber 120 toward the bottom of the liquid storage chamber 120, and forms a backflow on a surface of the liquid, which drives the mist formed by the atomization module 200 to be transported upwards, and finally carries the mist out of the mist outlet 140, thus improving the humidification effect.
[0039] The box 100 and the control module 300 may be connected in various separable connection ways. In some embodiments of the present disclosure, as shown in FIG. 2, the floating humidification apparatus further includes a first sliding slot 510 and a first sliding block 520. One of the first sliding slot 510 and the first sliding block 520 is arranged on an outer side wall of the box body 100, and correspondingly, the other of the first sliding slot 510 and the first sliding block 520 is arranged on the control module 300. The first sliding block 520 can slide along the first sliding slot 510 and the first sliding block 520 can escape from an end of the first sliding slot 510 to realize detachable connection between the control module 300 and the box body 100.
[0040] In some embodiments, two first sliding blocks 520 are provided and are respectively arranged on both sides of the control module 300. Two first sliding slots 510 are provided and are respectively arranged on both sides of the box body 100. The first sliding blocks 520 are slidably arranged in the first sliding slots 510 in one-to-one correspondence. When the control module 300 is mounted with the box body 100, the first sliding blocks 520 enter from ends of the first sliding slots 510. The first sliding blocks 520 are limited by the first sliding slots 510, and can only slide along the first sliding slots 510, thus realizing connection between the control module 300 and the box body 100. When it needs to be disassembled, the first sliding blocks 520 can slide out from ends of the first sliding slots 510, thus realizing separation between the control module 300 and the box body 100.
[0041] In some embodiments of the present disclosure, as shown in FIG. 2, the mounting bump 410 and the air inlet 110 can be located at an end of the first sliding slots 510, and the air inlet 110 is an open slot arranged at the top of the box body 100. When the first sliding blocks 520 slide along the first sliding slots 510 and the control module 300 is mounted in place relative to the box body 100, the mounting bump 410 can abut against a lower inner wall of the air inlet 110 to limit a sliding position of the first sliding blocks 520 in the first sliding slots 510. Under an action of gravity, the control module 300 will not move relative to the box body 100. In addition, the liquid storage chamber 120 is provided with an upward opening, and the box body 100 is also provided with a cover body 130. The mist outlet 140 is arranged on the cover body 130, and the cover body 130 is connected with the box body 100 to close the opening. The cover body 130 can also be opened. When the cover body 130 is connected with the box body 100, a lower surface of the cover body 130 can cooperate with the inner wall of the air inlet 110 to enclose the air inlet 110, meanwhile, upward movement of the mounting bump 410 is restricted, thus realizing installation and fixation. This structure is simple and convenient to mount and disassemble, which is smooth and simple for a user to operate.
[0042] In some embodiments of the present disclosure, the control module 300 and the box body 100 can also be connected by a clamping structure, a threaded structure, and the like.
[0043] In some embodiments of the present disclosure, as shown in FIG. 3, FIG. 4 and FIG. 5, the box body 100 is movably connected with the atomization module 200 via a guiding structure 600.
[0044] The atomization module 200 can move up and down along the guiding structure 600 under the buoyancy of the liquid in the liquid storage chamber 120. In this way, the atomization module 200 is not prone to tilt, and can keep good and stable contact with the liquid level, thus improving an atomization effect.
[0045] In some embodiments of the present disclosure, as shown in FIG. 4 and FIG. 5, the guiding structure 600 can include a second sliding slot 610 and a second sliding block 620. One of the second sliding slot 610 and the second sliding block 620 is arranged on an inner side wall of the box body 100, and correspondingly, the other one of the second sliding slot 610 and the second sliding block 620 is arranged on the atomization module 200. The second sliding block 620 is able to slide along the second sliding slot 610 under an action of liquid buoyancy of the atomization module 200.
[0046] In an implementation, the second sliding slot 610 can be arranged on an inner side wall of the box body 100, and the second sliding block 620 is arranged on the atomization module 200. Alternatively, the second sliding block 610 can be arranged on the atomization module 200, while the second sliding block 620 is arranged on the inner side wall of the box body 100.
[0047] In some embodiments of the present disclosure, the guiding structure 600 can also be composed of structures such as an upright post and a limiting hole.
[0048] In some embodiments of the present disclosure, as shown in FIG. 4 and FIG. 5, the guiding structure 600 includes a second sliding slot 610 and a second sliding block 620. The second sliding slot 610 is arranged on an inner side wall of the box body 100, and the second sliding block 620 is arranged on the atomization module 200. The second sliding block 620 is able to slide along the second sliding slot 610 under an action of liquid buoyancy of the atomization module 200.
[0049] In an implementation, the second sliding slot 610 is arranged in the inner side wall of the box body 100 in the vertical direction, and both side walls of the second sliding slot 610 are provided with a limiting groove along a length direction of the sliding slot. Two second sliding blocks 620 are provided and are respectively located on both sides of the atomization module 200. The second sliding block 620 on each side is in the respective limiting groove on one of both sides of the second sliding slot 610 and slides along the respective limiting groove.
[0050] In the embodiment provided with the second sliding slot 610, the mounting bump 410 can be located at an end of the second sliding slot 610, and the airflow outlet 420 of the fan assembly 400 is arranged at a lower end face of the mounting bump 410 so that the airflow output by the fan assembly 400 can be transported along the second sliding slot 610 towards the bottom of the liquid storage chamber 120. At this time, the airflow output by the fan assembly 400 can flow along the second sliding slot 610 and orderly flow to the surface of the liquid, and then flows out from a notch position in front of the second sliding slot 610. This structure can use the second sliding slot 610 to limit the airflow, which makes the airflow denser and provides sufficient air power to carry the mist out of the mist outlet 140.
[0051] In some embodiments of the present disclosure, as shown in FIG. 3, the second coil 310 is arranged on a side surface of the box body 100 and arranged along a height direction of the liquid storage chamber 120.
[0052] The atomization module 200 floats on the liquid level in the liquid storage chamber 120. With the change of the liquid level in the liquid storage chamber 120, the atomization module 200 rises and falls in the liquid storage chamber 120, while the second coil 310 is arranged along the height direction of the liquid storage chamber 120, so that the first coil 230 can maintain a good coupling relationship with the second coil 310 during the rising and falling of the atomization module 200, and stable energy exchange can be realized.
[0053] In some embodiments, the second coil 310 can be spiral and extend to a certain length, and the second coil 310 is vertically placed on the side surface of the box body 100. Alternatively, the control module 300 can be sleeved over the box body 100, and the second coil 310 can be arranged around the box body 100.
[0054] When the atomization module 200 atomizes the liquid, a certain amount of splash will be generated near the atomization output end of the atomization module 200. When the liquid level is high, if the atomization output end of the atomization module 200 is directly opposite to the mist outlet 140, the splash may escape from the mist outlet 140, which may cause a platform surface on which the floating humidification apparatus is placed to be wet, thus affecting user experience.
[0055] Therefore, in some embodiments of the present disclosure, as shown in FIG. 4 and FIG. 5, a mist output direction of the atomization output end of the atomization module 200 deviates from a direction of the mist outlet 140 relative to the atomization module 200, which is equivalent to making the atomization output end of the atomization module 200 not directly opposite to the mist outlet 140. Even if a certain amount of splash is generated near the atomization output end of the atomization module 200, the splash only impacts the inner wall of the box body 100, and it is difficult for the splash to escape from the mist outlet 140.
[0056] In some embodiments of the present disclosure, as shown in FIG. 4, the mist outlet 140 is located at a top of the liquid storage chamber 120, the atomization module 200 is provided with a mounting end face 210 inclined relative to a horizontal plane, the mounting end face 210 is provided with an atomization outlet 220, an opening direction of the atomization outlet 220 is inclined relative to a vertical direction, and the atomization output end of the atomization module 200 outputs mist through the atomization outlet 220. It should be noted that the floating humidification apparatus is generally placed on the horizontal plane, which is generally flush with the liquid level, while the mist outlet 140 is usually located right above the liquid storage chamber 120. The opening direction of the mist outlet 220 is inclined relative to the vertical direction, and the inner wall of the mist outlet 220 plays a guiding role in the mist and splash. The opening direction of the atomization outlet 220 is inclined relative to the vertical direction, so that the splash is not easily ejected from the mist outlet 140 directly above.
[0057] All the technical features of the above embodiments may be combined at will. In order to make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction between the combinations of these technical features, they should be considered as the scope recorded in this specification.
[0058] Although the embodiments of the present disclosure have been shown and described, those skilled in the art may understand that many changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and purposes of the present disclosure, and the scope of the present disclosure is defined by the claims and their equivalents.
Claims
1. A separable floating humidification apparatus, comprising:a box body internally provided with a liquid storage chamber, wherein the box body is provided with a mist outlet fluidly communicated with the liquid storage chamber;an atomization module provided in the liquid storage chamber, wherein the atomization module is able to float on liquid stored in the liquid storage chamber and atomize the liquid;a first coil arranged on the atomization module and the first coil being electrically connected with the atomization module; anda control module detachably connected with the box body, wherein the control module is provided with a second coil, and the control module is configured to transmit an atomization frequency signal and supply power to the atomization module by the second coil being coupled to the first coil.
2. The separable floating humidification apparatus according to claim 1, wherein the control module is provided with a fan assembly, the box body is provided with an air inlet communicated fluidly with the liquid storage chamber, and an airflow outlet of the fan assembly is aligned to the air inlet.
3. The separable floating humidification apparatus according to claim 2, wherein the fan assembly is provided with a mounting bump, the mounting bump is able to penetrate through the air inlet and protrude from an inner wall surface of the liquid storage chamber, and the airflow outlet is arranged at a lower end surface of the mounting bump such that an airflow output by the fan assembly is conveyed towards a bottom of the liquid storage chamber.
4. The separable floating humidification apparatus according to claim 3, further comprising a first sliding slot and a first sliding block, wherein one of the first sliding slot and the first sliding block is arranged on an outer side wall of the box body, and correspondingly, the other one of the first sliding slot and the first sliding block is arranged on the control module, the first sliding block is able to slide along the first sliding slot and the first sliding block is able to escape from an end of the first sliding slot to realize detachable connection between the control module and the box body, the mounting bump and the air inlet are located at an end of the first sliding slot, and the mounting bump is able to be abutted against an inner wall of the air inlet to limit a sliding position of the first sliding block in the first sliding slot.
5. The separable floating humidification apparatus according to claim 1, wherein the box body is movably connected with the atomization module via a guiding structure.
6. The separable floating humidification apparatus according to claim 5, wherein the guiding structure comprises a second sliding slot and a second sliding block, one of the second sliding slot and the second sliding block is arranged on an inner side wall of the box body, and correspondingly, the other one of the second sliding slot and the second sliding block is arranged on the atomization module, and the second sliding block is able to slide along the second sliding slot under an action of liquid buoyancy of the atomization module.
7. The separable floating humidification apparatus according to claim 5, wherein the guiding structure comprises a second sliding slot and a second sliding block, the second sliding slot is arranged on an inner side wall of the box body, the second sliding block is arranged on the atomization module, and the second sliding block is able to slide along the second sliding slot under an action of liquid buoyancy of the atomization module; andthe control module is provided with a fan assembly, the box body is provided with an air inlet communicated fluidly with the liquid storage chamber, the fan assembly is provided with a mounting bump, the mounting bump is able to penetrate through the air inlet and protrude from an inner wall surface of the liquid storage chamber, the mounting bump is located at an end of the second sliding slot, the airflow outlet of the fan assembly is arranged at a lower end surface of the mounting bump such that an airflow output by the fan assembly is conveyed towards a bottom of the liquid storage chamber along the second sliding slot.
8. The separable floating humidification apparatus according to claim 1, wherein the second coil is arranged on a side surface of the box body and the second coil is arranged along a height direction of the liquid storage chamber.
9. The separable floating humidification apparatus according to claim 1, wherein a mist outlet direction of an atomization output end of the atomization module deviates from a direction of the mist outlet relative to the atomization module.
10. The separable floating humidification apparatus according to claim 9, wherein the mist outlet is located at a top part of the liquid storage chamber, the atomization module is provided with a mounting end face inclined relative to a horizontal plane, the mounting end face is provided with an atomization outlet, an opening direction of the atomization outlet is inclined relative to a vertical direction, and the atomization output end of the atomization module outputs mist through the atomization outlet.