An atomizing device
By setting first and second action elements in the atomizing device, the connection between the liquid guide and the atomizer is disconnected by magnetic force, which solves the problem of liquid leakage when the atomizing plate stops working, extends the life of the device and improves the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN BASEUS TECH CO LTD
- Filing Date
- 2022-05-27
- Publication Date
- 2026-04-28
AI Technical Summary
In existing atomizing devices, when the atomizing plate stops working, the oil-absorbing cotton swab remains pressed against the atomizing plate, causing essential oil leakage and affecting the use of the device.
An atomizing device was designed. By setting first and second action elements, magnetic force is used to disconnect the liquid guiding element from the atomizer, avoiding continuous connection and preventing leakage.
It increases the lifespan of atomizing equipment, reduces maintenance frequency, and optimizes the user experience.
Smart Images

Figure CN117159774B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of liquid atomization, and more particularly to an atomization device. Background Technology
[0002] Atomizing devices are devices that use high-frequency oscillation to disperse liquids into mist. Examples include air humidifiers and aroma diffusers (fragrance sprayers). These devices use electronic high-frequency atomizing plates. A cotton swab is used to hold a solution such as essential oil (perfume) against the atomizing plate. Driven by electricity, the atomizing plate generates high-frequency oscillation, dispersing the solution such as essential oil into mist.
[0003] In aroma diffusers of this technology, when the atomizing plate stops working, the oil-absorbing cotton swabs remain pressed against the atomizing plate. If exposed to high temperatures, essential oils will flow through the cotton swabs into the atomizing plate and leak out from the atomizing holes, affecting the reuse of the aroma diffuser. Summary of the Invention
[0004] The atomizing device provided in this application avoids leakage due to continuous communication between the atomizer and the liquid container, reduces the possibility of damage to the atomizer, extends the service life of the atomizing device, reduces the number of maintenance required by the user, and optimizes the user experience of the atomizing device.
[0005] This application provides an atomizing device, including a housing, a liquid guiding component, a first atomizing component, and a second atomizing component. The housing contains a liquid container and an atomizer. The liquid guiding component is disposed between the liquid container and the atomizer, with its first end connected to the liquid container and its second end connected to the atomizer. The first atomizing component is fixedly connected to the liquid guiding component and is movable relative to the atomizer. The second atomizing component is disposed on the housing and includes a first state and a second state. When the second atomizing component is in the first state, the second end of the liquid guiding component is connected to the atomizer. When the second atomizing component is in the second state, the second atomizing component applies a driving force to the first atomizing component, causing the first atomizing component to move the liquid guiding component away from the atomizer, thereby disconnecting the second end of the liquid guiding component from the atomizer.
[0006] The atomizing device provided in this application embodiment has a housing that supports other components and protects the internal components. The housing contains a liquid container and an atomizer. The liquid container holds the liquid to be atomized, and the atomizer disperses the liquid into mist through high-frequency oscillation. A liquid guide is provided between the liquid container and the atomizer. The first end of the liquid guide is connected to the liquid container, and the second end is connected to the atomizer. The liquid to be atomized is transferred from the liquid container to the atomizer through the liquid guide. Furthermore, the liquid guide can move relative to the atomizer; for example, it can move away from the atomizer to separate them and break the connection. A first actuating element is fixedly connected to the liquid guide, which can drive the liquid guide to move relative to the atomizer. Simultaneously, a second actuating element is provided on the housing. The second actuating element has a first state and a second state. When the actuating element is in the first state, the liquid guide… The second end of the component is connected to the atomizer. When the second component is in the second state, it applies a driving force to the first component, causing the first component to move the liquid guide away from the atomizer, thereby disconnecting the second end of the liquid guide from the atomizer. This prevents the liquid guide from continuously guiding the liquid to be atomized into the atomizer, causing leakage when the atomizer is not in operation. Compared with the related technologies where the liquid guide and the atomizer are always connected, the atomizing device of this application, by setting the first and second components, allows the second component to apply a driving force to the first component, causing the first component to separate the liquid guide and the atomizer. This prevents leakage from the atomizer due to continuous connection with the liquid container, reduces the possibility of damage to the atomizer, improves the service life of the atomizing device of this application, reduces the number of maintenance operations for users, and optimizes the user experience of the atomizing device of this application.
[0007] In one possible implementation of this application, both the first and second action elements are magnetic elements, and the driving force is magnetic force. When the second action element is in the second state, the second action element applies a magnetic force to the first action element, causing the first action element to drive the liquid guide element away from the atomizer, so as to disconnect the second end of the liquid guide element from the atomizer.
[0008] In one possible implementation of this application, the magnetic pole directions of both the first and second active elements are parallel to the axial direction of the liquid guiding element.
[0009] In one possible implementation of this application, the second actuator is an electromagnet. When the second actuator is in the first state, the electromagnet is closed, and when the second actuator is in the second state, the electromagnet is open.
[0010] In one possible implementation of this application, the second action member can move relative to the first action member; when the second action member is in the first state, the second action member and the first action member are misaligned, and the second end of the liquid guide member is connected to the atomizer; when the second action member is in the second state, the second action member and the first action member are aligned, and the second end of the liquid guide member is disconnected from the atomizer.
[0011] In one possible implementation of this application, when the second action and the first action are aligned, both the first action and the second action are located in the axial direction of the liquid guiding member.
[0012] In one possible implementation of this application, the second active member is disposed on the side of the liquid container away from the liquid guide member, and the first active member is disposed at the first end of the liquid guide member.
[0013] In one possible implementation of this application, the second actuating element moves in a plane perpendicular to the axial direction of the liquid guiding element.
[0014] In one possible implementation of this application, the motion trajectory of the second action is a circular arc trajectory.
[0015] In one possible implementation of this application, the housing includes a bottom shell and a top shell, which are rotatably connected. The liquid container and the atomizer are fixedly connected to the top shell, and the second action member is fixedly connected to the bottom shell. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of the atomizing device provided in the embodiments of this application;
[0017] Figure 2 An exploded view of the atomizing device structure provided in an embodiment of this application;
[0018] Figure 3 A schematic diagram showing the separation of the liquid guiding component and the atomizer in the atomizing device provided in the embodiments of this application;
[0019] Figure 4 This is a schematic diagram showing the connection between the liquid guiding component and the atomizer in the atomizing device provided in the embodiments of this application.
[0020] Figure label:
[0021] 1-Housing; 11-Bottom shell; 111-Positioning slot; 12-Middle frame; 121-First mounting part; 122-Second mounting part; 123-Enclosure; 13-Top shell; 131-Spray hole; 132-Mounting hole; 133-Interface hole; 2-Liquid guiding component; 3-First functional component; 4-Second functional component; 5-Liquid container; 6-Atomizer; 7-Electrical components; 71-Circuit board; 72-Button; 73-Keycap; 74-Interface element; 75-Battery; 8-Elastic element. Detailed Implementation
[0022] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the specific technical solutions of this application will be further described in detail below with reference to the accompanying drawings of the embodiments of this application. The following embodiments are used to illustrate this application, but are not intended to limit the scope of this application.
[0023] In the embodiments of this application, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of the embodiments of this application, unless otherwise stated, "multiple" means two or more.
[0024] Furthermore, in the embodiments of this application, directional terms such as "upper," "lower," "left," and "right" are defined relative to the positions in which the components are schematically placed in the accompanying drawings. It should be understood that these directional terms are relative concepts, used for relative description and clarification, and can change accordingly depending on the position of the components in the accompanying drawings.
[0025] In the embodiments of this application, unless otherwise explicitly specified and limited, the term "connection" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral part; it can be a direct connection or an indirect connection through an intermediate medium.
[0026] In embodiments of this application, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.
[0027] In the embodiments of this application, the terms "exemplary" or "for example" are used to indicate that something is an example, illustration, or description. Any embodiment or design that is described as "exemplary" or "for example" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or design. Specifically, the use of the terms "exemplary" or "for example" is intended to present the relevant concepts in a specific manner.
[0028] This application provides an atomizing device, which can be an air humidifier, aroma diffuser, or other device used to improve indoor air quality. The atomizing device generates high-frequency oscillations through an ultrasonic vibrator or other atomizer, breaking water molecules and dissolved aromatherapy essential oils into nano-sized particles, forming a water mist that is dispersed into the surrounding air, increasing air humidity and filling it with fragrance. It is suitable for homes, hotel rooms, lobbies, corridors, and other places.
[0029] Reference Figure 1 and Figure 2 The atomizing device provided in this application includes a housing 1, a liquid guiding component 2, a first atomizing component 3, and a second atomizing component 4. The housing 1 contains a liquid container 5 and an atomizer 6. The liquid guiding component 2 is disposed between the liquid container 5 and the atomizer 6, with its first end connected to the liquid container 5 and its second end connected to the atomizer 6. The first atomizing component 3 is fixedly connected to the liquid guiding component 2 and can move relative to the atomizer 6. The second atomizing component 4 is disposed on the housing 1 and includes a first state and a second state. When the second atomizing component 4 is in the first state, the second end of the liquid guiding component 2 is connected to the atomizer 6. When the second atomizing component 4 is in the second state, the second atomizing component 4 applies a driving force to the first atomizing component 3, causing the first atomizing component 3 to move the liquid guiding component 2 away from the atomizer 6, thereby disconnecting the second end of the liquid guiding component 2 from the atomizer 6.
[0030] The atomizing device provided in this application embodiment includes a liquid container 5, an atomizer 6, a liquid guide 2, a first atomizing element 3, and a second atomizing element 4, all housed within a housing 1. The housing 1 provides the mounting base and protection. The liquid container 5 holds the liquid to be atomized. The liquid container 5 can be a water tank in an air humidifier, with purified water as the corresponding liquid to be atomized. Alternatively, the liquid container 5 can be an essential oil dispenser in an aromatherapy diffuser, with aromatherapy essential oils as the corresponding liquid to be atomized. This application does not limit the type of liquid container 5 or the type of liquid to be atomized. The atomizer 6 disperses the liquid to be atomized into mist through high-frequency oscillation or other methods. The atomizer 6 can be an ultrasonic atomizer 6, a compressor atomizer 6, or a mesh atomizer 6, etc. This application does not limit the working principle of the atomizer 6.
[0031] It should be noted that this application does not limit the structure of the shell 1. For example, the shell 1 can be cubic, cylindrical, disc-shaped, etc. (Refer to...) Figure 1 and Figure 2 In one possible implementation of this application, the housing 1 includes a bottom shell 11, a middle frame 12, and a top shell 13. Both the bottom shell 11 and the top shell 13 are open frustum shapes, and they are fastened together to form a receiving cavity. The receiving cavity is provided with a liquid container 5, an atomizer 6, etc. The bottom shell 11 is used to place on a supporting surface, such as a table. The middle frame 12 is located between the top shell 13 and the bottom shell 11. The middle frame 12 is disc-shaped. The bottom shell 11, the middle frame 12, and the top shell 13 are detachably connected to each other.
[0032] Furthermore, this application does not limit the method of detachable connection of the bottom shell 11, the middle frame 12 and the top shell 13, such as threaded connection, snap-fit, fastener connection, etc. Optionally, in one possible implementation of this application, the top shell 13 and the middle frame 12 are connected together by fasteners such as screws, and the bottom shell 11 and the middle frame 12 are connected by snap-fit.
[0033] Since the housing 1 is typically a closed structure, when the bottom shell 11, middle frame 12, and top shell 13 are connected as a single unit, the mist generated by the atomizer 6 is difficult to diffuse into the space outside the housing 1. (Refer to...) Figure 1 and Figure 2 In one possible implementation of this application, the top shell 13 is provided with a spray hole 131 corresponding to the position of the atomizer 6. The atomizer 6 generates ultrasonic oscillation to break the liquid to be atomized into nano-sized particles, forming a mist that diffuses upwards. The mist is finally sprayed out from the spray hole 131, which can disperse in the air more quickly.
[0034] Based on this, the form and installation method of the liquid container 5 and the atomizer 6 can also be varied, as shown in the following reference. Figure 2 In one possible implementation of this application, the middle frame 12 is divided into two semi-circular mounting portions. The upper side of the first mounting portion 121 is provided with a baffle 123 adapted to the shape of the atomizer 6. For example, the atomizer 6 is disc-shaped, and the baffle 123 is annular. The atomizer 6 is placed in the baffle 123. A liquid container 5 is provided on the lower side of the first mounting portion 121, and the opening of the liquid container 5 is aligned with the atomizer 6. The liquid container 5 is detachably connected to the middle frame 12. The second mounting portion 122 is recessed downwards, forming a semi-circular groove with an upward opening. The depth of the recess of the second mounting portion 122 is similar to the height of the liquid container 5, making the liquid container 5 and the second mounting portion 122 fit together more compactly and making full use of the space inside the housing 1.
[0035] Reference Figure 2The atomizing device provided in this application embodiment also includes an electrical component 7, which includes a circuit board 71, a button 72, an interface element 74, a battery 75, etc. The button 72 is used to control the start and stop of the atomizer 6, the battery 75 is used for power supply, and the interface element 74 is used for charging, etc. The atomizer 6, the button 72, the interface element 74, and the battery 75 are all electrically connected to the circuit board 71. The circuit board 71 is located on the upper side of the middle frame 12, the battery 75 is located in the semi-circular groove, the button 72 is installed on the upper side of the circuit board 71, and the top shell 13 has a mounting hole 132 corresponding to the position of the button 72. The button 72 extends out of the top shell 13 through the mounting hole 132, and a keycap 73 is connected to the end of the button 72 away from the circuit board 71. The interface element 74 is located on the edge of the circuit board 71 and is arranged parallel to the circuit board 71. The top shell 13 has an interface hole 133 corresponding to the position of the interface element 74 to facilitate the connection of the interface element 74 and the charging power source, etc.
[0036] Based on this, the electrical component 7 may also include a controller (not shown in the figure), which is electrically connected to the circuit board 71. The user uses the controller or interface element 74 to input operation commands to the controller. The controller controls the atomizer 6 to start and stop, realizing functions such as timed start and stop, power adjustment, etc. This application does not limit this.
[0037] Reference Figure 2 , Figure 3 and Figure 4 In one possible implementation of this application, the liquid guiding member 2 is disposed between the liquid container 5 and the atomizer 6. The first end of the liquid guiding member 2 is connected to the liquid container 5, and the second end is connected to the atomizer 6. The liquid to be atomized is transferred from the liquid container 5 to the atomizer 6 through the liquid guiding member 2. Furthermore, the liquid guiding member 2 can move relative to the atomizer 6; for example, it can move away from the atomizer 6 to separate the two and break the connection. A first actuating member 3 is also fixedly connected to the liquid guiding member 2, which can drive the liquid guiding member 2 to move relative to the atomizer 6. Meanwhile, a second action member 4 is also provided on the housing 1. The second action member 4 has a first state and a second state. When the action member is in the first state, the second end of the liquid guide member 2 is connected to the atomizer 6. When the second action member 4 is in the second state, the second action member 4 applies a driving force to the first action member 3, causing the first action member 3 to drive the liquid guide member 2 away from the atomizer 6, so as to disconnect the second end of the liquid guide member 2 from the atomizer 6, thereby avoiding the liquid guide member 2 from continuously guiding the liquid to be atomized to the atomizer 6, causing the atomizer 6 to leak liquid when it is not working.
[0038] Compared with the related technologies where the liquid guide 2 and the atomizer 6 are always connected, the atomizing device of this application, by setting a first action 3 and a second action 4, allows the second action 4 to apply a driving force to the first action 3, causing the first action 3 to drive the liquid guide 2 and the atomizer 6 to separate. This avoids leakage from the atomizer 6 due to continuous connection with the liquid container 5, reduces the possibility of damage to the atomizer 6, improves the service life of the atomizing device of this application, reduces the number of maintenance times for users, and optimizes the user experience of the atomizing device of this application.
[0039] It should be noted that this application does not limit the shape of the liquid guide 2. For example, the liquid guide 2 can be prismatic, cylindrical, or bent to avoid other components. In one possible implementation of this application, the middle frame 12 has a through hole (not shown in the figure) at the position corresponding to the atomizer 6. The liquid guide 2 is cylindrical. The lower end of the liquid guide 2, i.e., the first end, extends into the liquid container 5, and the upper end of the liquid guide 2, i.e., the second end, passes through the through hole and abuts against the atomizer 6.
[0040] Meanwhile, this application does not limit the form of the liquid guiding component 2. Optionally, the liquid guiding component 2 is a cotton swab. The cotton swab has good water absorption. When the first end of the liquid guiding component 2 is inserted into the liquid to be atomized, the liquid to be atomized wets the liquid guiding component 2. Under capillary action, the liquid to be atomized rises to the second end of the liquid guiding component 2 and finally reaches the atomizer 6. It should be noted that, since the cotton swab is relatively soft, in order to ensure that the liquid guiding component 2 can abut against the atomizer 6 without bending, a rigid guide rod can be set inside the liquid guiding component 2, or a rigid guide sleeve can be fitted on the outside of the cotton swab. Here, "rigid" means that it is less likely to be deformed by force than the cotton swab.
[0041] Furthermore, this application does not restrict the direction of movement of the liquid guide 2. Optionally, in one possible implementation of this application, the liquid guide 2 moves radially, thereby offsetting the positions of the liquid guide 2 and the atomizer 6 and separating the liquid guide 2 and the atomizer 6. This method has lower space requirements in the housing 1 along the axial direction of the liquid guide 2. In another possible implementation of this application, the liquid guide 2 moves axially, directly separating the liquid guide 2 and the atomizer 6. This method has a fast separation speed and does not cause mutual wear between the liquid guide 2 and the atomizer 6. It has lower space requirements in the housing 1 along the radial direction of the liquid guide 2, and the opening of the liquid container 5 can be set to be smaller, effectively reducing the evaporation of the liquid to be atomized.
[0042] Accordingly, this application does not restrict the direction of the driving force applied by the second action 4 to the first action 3. Optionally, in one possible implementation of this application, the second action 4 applies a driving force along the radial direction of the liquid guide 2 to the first action 3, causing the first action 3 to drive the liquid guide 2 and the atomizer 6 to be misaligned. In another possible implementation of this application, the second action 4 applies a driving force along the axial direction of the liquid guide 2 to the first action 3, causing the first action 3 to drive the liquid guide 2 to move toward the liquid container 5.
[0043] It should be noted that this application does not limit the interaction form between the second action member 4 and the first action member 3. Optionally, in one possible implementation of this application, both the first action member 3 and the second action member 4 are magnetic elements, and the driving force is magnetic force. When the second action member 4 is in the second state, the second action member 4 applies a magnetic force to the first action member 3, causing the first action member 3 to drive the liquid guide member 2 away from the atomizer 6, so as to disconnect the second end of the liquid guide member 2 from the atomizer 6.
[0044] Correspondingly, the magnetic pole directions of the first action member 3 and the second action member 4 can also be varied depending on the direction of the driving force. Optionally, in one possible implementation of this application, the magnetic pole directions of the first action member 3 and the second action member 4 are both parallel to the axial direction of the liquid guide member 2, so that the second action member 4 applies a driving force along the axial direction of the liquid guide member 2 to the first action member 3, thereby driving the liquid guide member 2 to move toward the liquid container 5. Here, the magnetic pole direction refers to the orientation of the straight magnetic field lines in the magnetic field generated by the magnetic element.
[0045] It should be noted that this application does not limit the interaction mode of the first action member 3 and the second action member 4. Optionally, in one possible implementation of this application, the second action member 4 is installed on the upper side of the first action member 3, and the second action member 4 applies a magnetic repulsive force to the first action member 3, so that the first action member 3 drives the liquid guide member 2 away from the atomizer 6; in another possible implementation of this application, the second action member 4 is installed on the lower side of the first action member 3, and the second action member 4 applies a magnetic attractive force to the first action member 3, so that the first action member 3 drives the liquid guide member 2 away from the atomizer 6.
[0046] Furthermore, this application does not limit the form of the first action element 3 and the second action element 4. The first action element 3 can be a permanent magnet, an iron part, or an electromagnet, etc. Similarly, the second action element 4 only needs to ensure that at least one of the first action element 3 and the second action element 4 can generate a magnetic field.
[0047] Optionally, in one possible implementation of this application, the second action 4 is an electromagnet. When the second action 4 is in the first state, the electromagnet is closed, and when the second action 4 is in the second state, the electromagnet is open. The second action 4 applies a magnetic force to the first action 3, causing the first action 3 to drive the liquid guide 2 away from the atomizer 6, so as to disconnect the second end of the liquid guide 2 from the atomizer 6.
[0048] In one possible implementation of this application, the second action member 4 can move relative to the first action member 3; when the second action member 4 is in the first state, the second action member 4 and the first action member 3 are misaligned, and the second end of the liquid guide member 2 is connected to the atomizer 6; when the second action member 4 is in the second state, the second action member 4 and the first action member 3 are aligned, and the second end of the liquid guide member 2 is disconnected from the atomizer 6.
[0049] In order to enable the liquid guiding component 2 to quickly separate from the atomizer 6, refer to Figure 2 and Figure 4 In one possible implementation of this application, when the second action 4 and the first action 3 are aligned, both the first action 3 and the second action 4 are located in the axial direction of the liquid guide 2. Specifically, when the second action 4 and the first action 3 are aligned, the second action 4 applies a magnetic force along the axial direction of the liquid guide 2 to the first action 3, so that the first action 3 drives the liquid guide 2 to move toward the liquid container 5.
[0050] It should be noted that this application does not limit the shape of the first actuating member 3 and the second actuating member 4. For example, the first actuating member 3 can be disc-shaped, strip-shaped, ring-shaped, U-shaped, etc., and the second actuating member 4 can be similarly shaped. Figure 2 , Figure 3 and Figure 4 In one possible implementation of this application, both the first action 3 and the second action 4 are disc-shaped, and their diameters are similar to the diameter of the liquid guiding member 2.
[0051] Correspondingly, the first actuating member 3 and the second actuating member 4 have various installation positions. For example, the annular first actuating member 3 is sleeved on the liquid guiding member 2, and the strip-shaped first actuating member 3 is fixed to the periphery of the liquid guiding member 2, etc. (Refer to...) Figure 2 and Figure 4 In one possible implementation of this application, the disc-shaped first action member 3 is fixed to the first end of the liquid guide member 2, and the disc-shaped second action member 4 is disposed on the side of the liquid container 5 away from the liquid guide member 2, that is, the lower side of the liquid container 5.
[0052] Furthermore, this application does not limit the fixing method of the first action member 3 and the second action member 4. For example, the annular first action member 3 is sleeved on the periphery of the liquid guide member 2 and the two are fixed by friction; or the first action member 3 is glued to the first end of the liquid guide member 2; or the bottom shell 11 is provided with a positioning groove 111 and the second action member 4 is engaged in the positioning groove 111.
[0053] It should be noted that this application does not limit the movement mode of the second action member 4. Optionally, in one possible implementation of this application, the second action member 4 can rotate relative to the first action member 3, and the axis of rotation of the second action member 4 is arranged perpendicular to the axis of the liquid guide member 2. Specifically, the housing 1 may include a rotating part (not shown in the figure), which is rotatably connected to the bottom housing 11. One end of the rotating part extends out of the bottom housing 11, and the other end of the rotating part is fixed to the second action member 4.
[0054] At this time, both the first actuating element 3 and the second actuating element 4 are permanent magnets. The second actuating element 4 can rotate to face either its first end or its second end toward the first actuating element 3. When the first end of the second actuating element 4 faces the first actuating element 3, the magnetic poles of the two at their respective ends are opposite, and the second actuating element 4 gives the first actuating element 3 a magnetic attraction force, causing the first actuating element 3 to move the liquid guiding element 2 away from the atomizer 6. When the second end of the second actuating element 4 faces the first actuating element 3, the magnetic poles of the two at their respective ends are the same, and the second actuating element 4 applies a magnetic repulsive force to the first actuating element 3, causing the first actuating element 3 to move the liquid guiding element 2 toward the atomizer 6, so that the liquid guiding element 2 and the atomizer 6 are brought together, making it convenient for the atomizing device to start working again.
[0055] Optionally, the second actuating member 4 moves along a plane perpendicular to the axis of the liquid guide member 2. When the second actuating member 4 moves to be aligned with the first actuating member 3, a magnetic attraction force is applied toward the first actuating member 3. When the second actuating member 4 moves to be misaligned with the first actuating member 3, the magnetic attraction force is weakened, and the first actuating member 3 can move freely.
[0056] This application does not limit the motion trajectory of the second action 4. For example, the second action 4 can reciprocate along a straight line; or, in one possible implementation of this application, the motion trajectory of the second action 4 is a circular arc trajectory.
[0057] Specifically, the bottom shell 11 is rotatably connected to the top shell 13 via the middle frame 12, and the middle frame 12 and the top shell 13 are fixed together. The liquid container 5 and the atomizer 6 are both fixedly connected to the top shell 13 via the middle frame 12. The second action member 4 is fixedly connected to the bottom shell 11. When the bottom shell 11 and the top shell 13 rotate relative to each other, for example, when the user manually rotates the top shell 13, the second action member 4 moves in an arc along the plane perpendicular to the axis of the liquid guide member 2, thereby achieving the alignment or misalignment of the second action member 4 and the first action member 3. It should be noted that in this scheme, the rotation axis of the second action member 4 and the axis of the liquid guide member 2 do not coincide, and the greater the distance between them, the easier the operation.
[0058] Based on this, in order to ensure that the liquid guiding component 2 can continuously and promptly abut against the atomizer 6 after the driving force is removed, thus facilitating the restart of the atomizing device, refer to Figure 2 , Figure 3 and Figure 4 In one possible implementation of this application, an elastic element 8 is provided between the liquid guide 2 and the liquid holding device. The elastic element 8 applies an elastic force toward the atomizer 6 to the liquid guide 2, so that the second end of the liquid guide 2 abuts against the atomizer 6. The elastic force should be less than the driving force so that the driving force can overcome the elastic force and separate the liquid guide 2 and the atomizer 6.
[0059] Specifically, when the atomizing device needs to be turned off, the atomizer 6 is turned off by pressing button 72. The top shell 13 is rotated, causing the top shell 13 and bottom shell 11 to rotate relative to each other, thus aligning the second actuating element 4 and the first actuating element 3. The second actuating element 4 then switches to its second state, applying a magnetic attraction to the first actuating element 3. This magnetic attraction overcomes the elastic force of the elastic element 8, causing the first actuating element 3 to move the liquid guide 2 away from the atomizer 6 and compress the elastic element, separating the second end of the liquid guide 2 from the atomizer 6. This prevents the liquid guide 2 from continuously guiding the liquid to be atomized into the atomizer 6, thus avoiding leakage when the atomizer 6 is not in operation. When the atomizing device needs to be restarted, the top shell 13 is rotated again, causing the second actuating element 4 and the first actuating element 3 to rotate relative to each other and shift. The second actuating element 4 switches to its first state, weakening the magnetic attraction and failing to overcome the elastic force. Under the action of the elastic force, the elastic element gradually extends and returns to its original shape, pushing the first actuating element 3. The liquid guide 2 moves toward the atomizer 6, eventually bringing the second end of the liquid guide 2 into contact with the atomizer 6, so as to deliver the liquid to be atomized to the atomizer 6 through the liquid guide 2. Then, the atomizer 6 is activated by the button 72, so that the atomizing device enters the working state.
[0060] Among them, the elastic element 8 can be a compression spring, a tension spring, a leaf spring, etc. This application does not limit it. When the elastic element 8 is a compression spring, one end of the elastic element 8 can abut against the first action member 3 or the liquid guide member 2, and the other end can abut against the inner wall of the bottom of the liquid container 5. The two ends of the elastic element 8 can also be fixedly connected to the liquid guide member 2 and the liquid container 5 respectively.
[0061] The sequence numbers of the embodiments in this application are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments. The above are merely preferred embodiments of this application and do not limit the patent scope of this application. Any equivalent structural or procedural transformations made based on the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.
Claims
1. An atomizing device, characterized in that, include: The casing contains a liquid container and an atomizer. A liquid guiding component is disposed between the liquid container and the atomizer, with a first end of the liquid guiding component connected to the liquid container and a second end of the liquid guiding component connected to the atomizer; The first functional member is fixedly connected to the liquid guiding member and can move relative to the atomizer; A second action member is disposed on the housing, and the second action member includes a first state and a second state. When the second action member is in the first state, the second end of the liquid guide member is connected to the atomizer. When the second action member is in the second state, the second action member applies a driving force to the first action member, causing the first action member to drive the liquid guide member away from the atomizer, and the liquid guide member and the atomizer are separated to disconnect the second end of the liquid guide member from the atomizer.
2. The atomizing device according to claim 1, characterized in that, Both the first and second actuators are magnetic elements, and the driving force is a magnetic force. When the second actuator is in the second state, the second actuator applies a magnetic force to the first actuator, causing the first actuator to drive the liquid guide away from the atomizer, thereby disconnecting the second end of the liquid guide from the atomizer.
3. The atomizing device according to claim 2, characterized in that, The magnetic pole directions of both the first and second functional components are parallel to the axial direction of the liquid guiding component.
4. The atomizing device according to claim 3, characterized in that, The second actuating element is an electromagnet. When the second actuating element is in the first state, the electromagnet is closed, and when the second actuating element is in the second state, the electromagnet is open.
5. The atomizing device according to claim 3, characterized in that, The second actuating member can move relative to the first actuating member; When the second active member is in the first state, the second active member and the first active member are offset, and the second end of the liquid guiding member is connected to the atomizer. When the second actuating element is in the second state, the second actuating element and the first actuating element are aligned, and the second end of the liquid guiding element is disconnected from the atomizer.
6. The atomizing device according to claim 5, characterized in that, When the second actuating member and the first actuating member are aligned, both the first actuating member and the second actuating member are located in the axial direction of the liquid guiding member.
7. The atomizing device according to claim 6, characterized in that, The second functional member is disposed on the side of the liquid container away from the liquid guiding member, and the first functional member is disposed at the first end of the liquid guiding member.
8. The atomizing device according to claim 7, characterized in that, The second actuating element moves along a plane perpendicular to the axial direction of the liquid guiding element.
9. The atomizing device according to claim 8, characterized in that, The motion trajectory of the second actuator is a circular arc trajectory.
10. The atomizing device according to claim 9, characterized in that, The housing includes a bottom shell and a top shell, which are rotatably connected. The liquid container and the atomizer are both fixedly connected to the top shell, and the second actuating element is fixedly connected to the bottom shell.
Citation Information
Patent Citations
Atomizer and aerosol generating device
CN210158015U