Atomization apparatus

By incorporating a display module within the atomizing device that communicates with the atomizing host, and presenting image information that aligns with the user's line of sight during inhalation, the problem of users struggling to understand status information is solved, thus enhancing the user experience.

WO2026098517A1PCT designated stage Publication Date: 2026-05-15HG INNOVATION LTD
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Patent Information

Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
HG INNOVATION LTD
Filing Date
2025-11-05
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Users have difficulty understanding the status information of the atomizing device during inhalation, resulting in a poor user experience.

Method used

A display module is installed in the atomizing device. It communicates with the atomizing host to present image information that is adapted to the user's line of sight when inhaling. The display module includes text, logos, and patterns. The display module can be set inside or outside the housing of the atomizer or atomizing host and displays image information within the user's line of sight through an imaging component.

Benefits of technology

Users can monitor the status of the atomizing device in real time during inhalation, enhancing the user experience.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN2025132796_15052026_PF_FP_ABST
    Figure CN2025132796_15052026_PF_FP_ABST
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Abstract

The present application relates to the technical field of electronic atomization devices, and discloses an atomization apparatus. The atomization apparatus comprises an atomizer, an atomization main unit, and a display module. The atomizer is provided with a mouthpiece, the atomization main unit is arranged at the end of the atomizer distant from the mouthpiece, the atomizer is electrically connected to the atomization main unit, and the atomizer can heat an atomization substrate under the action of electric power to generate an aerosol. The display module is arranged at the end of the atomization main unit distant from the mouthpiece, the display module is communicatively connected to the atomization main unit, the display module is configured to present image information, and the presentation form of the image information is adapted to a line of sight of a user when the user puffs on the atomization apparatus.
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Description

atomizing device

[0001] This application claims priority to Chinese application No. 202411578537.6, filed on November 6, 2024, the entire contents of which are incorporated herein by reference. [Technical Field]

[0002] This application relates to the field of electronic atomization equipment technology, and in particular to an atomization device. [Background Technology]

[0003] The atomizing device is equipped with a mouthpiece. When the user performs an inhalation action through the mouthpiece, the atomizing device heats the atomizing matrix to generate an aerosol. In related technologies, it is difficult for users to know the status information of the atomizing device during inhalation, such as the battery level, which is inconvenient to use and results in a poor user experience. [Summary of the Invention]

[0004] This application provides an atomizing device that solves the technical problem that users have difficulty understanding the status information of the atomizing device during inhalation.

[0005] To address the aforementioned technical problems, this application provides an atomizing device, including an atomizer, an atomizing main unit, and a display module. The atomizer has a mouthpiece, and the atomizing main unit is located at the end of the atomizer furthest from the mouthpiece. The atomizer and the atomizing main unit are electrically connected, and the atomizer can heat the atomizing matrix to generate an aerosol under the action of electricity. The display module is located at the end of the atomizing main unit furthest from the mouthpiece, and the display module is communicatively connected to the atomizing main unit. The display module is configured to display image information, and the presentation format of the image information is adapted to the user's line of sight when inhaling the atomizing device.

[0006] In one embodiment, the image information includes at least one of text, logo, and pattern, and the image information is presented in an upright position in the user's line of sight when inhaling the atomizing device.

[0007] In one embodiment, the display module includes a display that is communicatively connected to the atomizing host; when the user is inhaling the atomizing device, the display surface faces the mouthpiece side, and the display surface is configured to present image information within the user's field of vision.

[0008] In one embodiment, the display is installed inside the housing of the atomizer or atomizing host, and the display surface forms an angle with the extension direction of the atomizing device.

[0009] In one embodiment, the display is mounted outside the housing of the atomizer or atomizing host, and the display surface forms an angle with the extending direction of the atomizing device from the user's line of sight when inhaling the atomizing device.

[0010] In one embodiment, the display is rotatably connected to the atomizer or atomizing device; when the user inhales from the atomizing device, the display surface can be rotated to face the mouthpiece.

[0011] In one embodiment, the display module includes a display and an imaging component, which are disposed within the housing of the atomizer or atomizing host. The display is communicatively connected to the atomizing host, and the display is used to generate image light. The imaging component is used to propagate the image light and form an image that is presented within the user's line of sight when inhaling the atomizing device. The image is located outside the housing of the atomizer or atomizing host.

[0012] In one embodiment, the imaging component is disposed in the optical path of the image light rays, the imaging component converges the image light rays, and projects the converged image light rays into the air to present a floating real image.

[0013] In one embodiment, the imaging component includes one of an optical waveguide array reflector, a microlens array, an antireflector, a negative refractive plate lens, a Fresnel lens, and a concave mirror.

[0014] In one embodiment, the display module includes a light steering element disposed in the optical path of the image light rays to change the transmission direction of the image light rays.

[0015] In one embodiment, the light steering element includes at least one of a reflector and a semi-transparent mirror.

[0016] In one embodiment, the atomizing host includes a control component that can send a display command to a display module, and the display module responds to the display command to start displaying.

[0017] In one embodiment, the control component includes an airflow sensor and a processor. The airflow sensor is communicatively connected to the processor. Based on the airflow change signal detected by the airflow sensor, the processor controls the atomizer to be electrically connected to the atomizing host while sending a display command to the display module.

[0018] In one embodiment, the control component includes control keys and a processor. The control keys are communicatively connected to the processor, and the processor sends display commands to the display module based on the operation signals of the control keys.

[0019] In one embodiment, the control component includes an anomaly detection module and a processor. The anomaly detection module is communicatively connected to the processor. The anomaly detection module is used to detect abnormal states of the atomizing device. Abnormal states include one or more of the following: overvoltage, undervoltage, suction timeout, insufficient atomizing matrix, and insufficient power. The processor sends a display command to the display module based on the abnormal state signal detected by the anomaly detection module.

[0020] In one embodiment, the display module is detachably connected to the atomizer or atomizing host.

[0021] The atomizing device provided in this application has a display module located at the end of the atomizing host away from the mouthpiece. The display module is configured to display image information, and the display format of the image information is adapted to the user's line of sight when inhaling the atomizing device, so that the image information can be located within the user's line of sight when inhaling the atomizing device. The user can view the image information while inhaling, which makes it easier to understand the status information of the atomizing device in a timely manner during the inhalation process, thereby improving the user experience. [Attached Image Description]

[0022] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 is a schematic diagram of an embodiment of the atomizing device provided in this application;

[0024] Figure 2 is a schematic diagram of the structure of an embodiment of the atomizing device provided in this application in the suction state;

[0025] Figure 3 is a cross-sectional structural schematic diagram of an embodiment of the atomizing device provided in this application from a certain perspective;

[0026] Figure 4 is a schematic diagram of image information display of an embodiment of the atomizing device provided in this application in the suction state;

[0027] Figure 5 is a schematic diagram of image information display of an embodiment of the atomizing device provided in this application in a non-suction state;

[0028] Figure 6 is a structural schematic diagram of another embodiment of the atomizing device provided in this application;

[0029] Figure 7 is a structural schematic diagram of another embodiment of the atomizing device provided in this application;

[0030] Figure 8 is a schematic block diagram of the structural composition of an embodiment of the atomizing device provided in this application;

[0031] Figure 9 is a structural schematic diagram of an embodiment of the display module provided in this application;

[0032] Figure 10 is a structural schematic diagram of another embodiment of the display module provided in this application;

[0033] Figure 11 is a schematic block diagram of the structural composition of an embodiment of the control component provided in this application;

[0034] Figure 12 is a schematic block diagram of the structural composition of another embodiment of the control component provided in this application;

[0035] Figure 13 is a schematic block diagram of the structural composition of another embodiment of the control component provided in this application.

[0036] Reference numerals: 100, Atomizing device; 10, Atomizer; 11, Mouthpiece; 12, Oil cup; 13, Atomizing coil; 131, Heating element; 132, Liquid guide; 20, Atomizing main unit; 21, Battery; 22, Control component; 221, Circuit board; 222, Airflow sensor; 223, Processor; 224, Control key; 225, Anomaly detection module; 30, Display module; 31, Display; 32, Imaging component; 33, Light steering element.

Detailed Implementation Methods

[0037] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be particularly noted that the following embodiments are for illustrative purposes only and do not limit the scope of the application. Similarly, the following embodiments are only some, not all, embodiments of the present application, and all other embodiments obtained by those skilled in the art without inventive effort are within the scope of protection of the present application.

[0038] In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. The terms "first," "second," and "third" in the embodiments of this application are 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," "second," or "third" may explicitly or implicitly include at least one of that feature. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationships and movements between components in a specific orientation (as shown in the figures). If the specific orientation changes, the directional indication will also change accordingly. The terms "comprising" and "having," and any variations thereof, in the embodiments of this application are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or components inherent to these processes, methods, products, or devices.

[0039] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0040] This application provides an atomizing device. Referring to Figures 1-3, the atomizing device 100 may include an atomizer 10, an atomizing main unit 20, and a display module 30. The atomizer 10 stores an atomizing matrix. The atomizer 10 is provided with a mouthpiece 11 for the user to perform an inhalation action. The atomizing main unit 20 is located at the end of the atomizer 10 away from the mouthpiece 11. The atomizer 10 is electrically connected to the atomizing main unit 20, and the atomizer 10 can heat the atomizing matrix to generate an aerosol under electrical influence. The atomizing main unit 20 can control the operating state of the atomizer 10. For example, the atomizing main unit 20 can control the atomizer 10 to heat the atomizing matrix to generate an aerosol or stop heating according to the user's inhalation action. The atomizer 10 and the atomizing main unit 20 can be fixedly connected or detachably connected. When the atomizer 10 and the atomizing host 20 are detachably connected, if the remaining amount of atomizing matrix in the atomizer 10 is less than a preset value, the user can easily separate the atomizer 10 from the atomizing host 20. The atomizing device 100 can continue to be used after the atomizer 10 is replaced, so that the atomizing host 20 can be reused, thereby reducing the user's operating costs.

[0041] The display module 30 is located at the end of the atomizing host 20 furthest from the mouthpiece 11, as shown in Figures 1-3. Exemplarily, the atomizing device 100 may be cylindrical, having a length direction, which may be the Z-axis direction in Figure 3. The display module 30 is located at the end of the atomizing device 100 furthest from the mouthpiece 11 in the length direction. Positioning the display module 30 at the end of the atomizing host 20 furthest from the mouthpiece 11 creates a larger distance between the display module 30 and the mouthpiece 11, increasing the user's viewing range when looking at the display module 30 from the mouthpiece 11 end, thus facilitating the user's viewing of the displayed information output by the display module 30 during inhalation. The display module 30 is communicatively connected to the atomizing host 20. The communication connection between the display module 30 and the atomizing host 20 can be wired, for example, connected by a wire; or wireless, for example, connected via WiFi, Bluetooth, ZigBee, or 2.4G short-range communication. The display module 30 is configured to display image information, and the presentation of the image information is adapted to the user's line of sight when inhaling the atomizing device 100. This configuration ensures that the image information is within the user's line of sight when inhaling the atomizing device 100, allowing the user to view the image information while inhaling, facilitating timely understanding of the atomizing device 100's status information during inhalation, thereby improving the user experience.

[0042] In one embodiment, the image information includes one of text, logos, and patterns, or other images that can convey information to the user. Text information may include one or more of the following: battery level, heating mode, heating power, and remaining atomizing matrix, allowing the user to understand the status of the atomizing device 100. Logos may be brand logos or logos indicating the status of the atomizing device 100, such as warning or reminder logos. Patterns may be game patterns such as dice or Tetris, allowing the atomizing device 100 to interact with the user during inhalation, thereby enhancing the user experience.

[0043] In the above embodiments, the presentation of image information is adapted to the user's line of sight when inhaling the atomizing device 100, as can be understood with reference to Figure 4. In one embodiment shown in Figure 4, the image information is presented in an upright state under the user's line of sight when inhaling the atomizing device 100. In this case, it can be considered that the user can obtain image information from the display module 30 when inhaling the atomizing device 100, and the image information is adapted to the user's line of sight when inhaling the atomizing device 100.

[0044] For comparison, please refer to Figure 5. If the display module 30 displays image information in the state shown in Figure 5 when the user is inhaling the atomizing device 100, the user will observe an inverted image or text. At this time, it is considered that the image information is not compatible with the user's line of sight when inhaling the atomizing device 100.

[0045] In one embodiment, the atomizing device 100 has different postures in the suction state (as shown in Figure 4) and the non-suction state (as shown in Figure 5), which causes the relative position relationship between the user's eyes and the display module 30 to change, and the user's line of sight to view the image information is different. Setting the image information to be presented in an upright state under the user's line of sight when inhaling the atomizing device 100 is conducive to the user's quick recognition of the image information and can facilitate the user to view the information.

[0046] It should be noted that the presentation of the image information is adapted to the user's line of sight when inhaling the atomizing device 100, and is not limited to the upright or inverted display of the image. The following implementation will combine various methods such as "air display" and "built-in tilt display module 30", which will be explained in detail later.

[0047] Referring to Figure 3, the atomizer 10 also includes an oil cup 12 and an atomizing coil 13. The oil cup 12 stores the atomizing substrate, and the atomizing coil 13 is installed inside the oil cup 12. The atomizing coil 13 heats the atomizing substrate to generate an aerosol. Understandably, the atomizing coil 13 includes at least a heating element 131 and a liquid guide 132. The liquid guide 132 transfers the atomizing substrate to the heating element 131, and the heating element 131 heats the atomizing substrate by electricity, thereby atomizing it. Exemplarily, the heating element 131 is a cylindrical MESH heating element, and the liquid guide 132 is a cylindrical cotton liquid guide, which wraps around the outer circumferential surface of the MESH heating element 131. The mouthpiece 11 is connected to one end of the oil cup 12 to allow the aerosol to be transferred to the mouthpiece 11.

[0048] The atomizing device 20 may include a battery 21, a circuit board 221, and an airflow sensor 222, as shown in Figure 3. The battery 21 provides electrical energy to the atomizing device 100 during operation. The battery 21 may be a rechargeable battery. The circuit board 221 is used for data processing to control the operating state of the atomizing device 100. The airflow sensor 222 controls the connection between the atomizer 10 and the battery 21 by sensing changes in airflow. Specifically, when the user inhales through the mouthpiece 11, the airflow sensor 222 senses the change in airflow and controls the atomizer 10 to connect to the battery 21, allowing the atomizer 10 to heat the atomizing matrix and generate an aerosol. When the user stops inhaling, if the airflow sensor 222 does not detect a change in airflow within a preset time, it controls the atomizer 10 to disconnect from the battery 21, and the atomizer 10 stops heating.

[0049] The following describes some exemplary configurations of the display module 30. In one embodiment, as shown in Figures 6 and 7, the display module 30 includes a display 31. The display 31 may include a digital tube, LED, mini LED, LCD, or OLED, or a three-color laser capable of generating image projection, etc., without specific limitations here. The display 31 is communicatively connected to the atomizing host 20, enabling the display 31 to output the information that the atomizing host 20 needs to display. When the user is inhaling the atomizing device 100, the display surface of the display 31 faces the mouthpiece 11, and the display surface is configured to present image information within the user's field of vision, facilitating the user's timely understanding of the status information of the atomizing device 100 during inhalation.

[0050] In one embodiment, as shown in FIG6, the display 31 is installed inside the housing of the atomizer 10 or the atomizing host 20. By placing the display 31 inside the housing, on the one hand, the housing can cover the display 31, preventing it from being exposed on the outer surface of the atomizing device 100 and affecting its appearance; on the other hand, it makes the outer surface of the atomizing device 100 relatively flat, facilitating its carrying and storage. The display surface forms an angle with the extending direction of the atomizing device 100. This arrangement allows the presentation of image information to adapt to the user's line of sight when inhaling the atomizing device 100, making it convenient for the user to view image information while inhaling.

[0051] Referring to Figure 7, in one embodiment, the display 31 is mounted outside the housing of the atomizer 10 or the atomizing host 20. Positioning the display 31 outside the housing reduces its footprint within the housing, facilitating the arrangement of other components inside. From the user's line of sight when inhaling the atomizing device 100, the display surface forms an angle with the extending direction of the atomizing device 100. This arrangement allows the presentation of image information to be adapted to the user's line of sight when inhaling the atomizing device 100, making it convenient for the user to view image information while inhaling.

[0052] The display 31 can be fixedly connected to the atomizer 10 or the atomizing host 20. For example, the display 31 is fixedly installed on one side of the atomizer 10 or the atomizing host 20, wherein the display surface of the display 31 has a preset angle with the extension direction of the atomizing device 100 and faces the mouthpiece 11. When the user performs a vaping action through the mouthpiece 11, the display information can be viewed without adjusting the position of the display 31.

[0053] In one embodiment, as shown in FIG7, the display 31 is rotatably connected to the atomizer 10 or the atomizing host 20. For example, the display 31 can be connected to the atomizer 10 or the atomizing host 20 via a pivot, allowing the display 31 to rotate relative to the atomizer 10 or the atomizing host 20. The rotation of the display 31 can be manual rotation by the user applying force to the display 31, or automatic rotation driven by a motor. When the user inhales from the atomizing device 100, the display surface of the display 31 can be rotated to face the mouthpiece 11, so that the presentation of the image information can be adapted to the user's line of sight when inhaling from the atomizing device 100, making it convenient for the user to view the image information while inhaling. The display 31 is rotatably connected to the atomizer 10 or the atomizing host 20. On one hand, when the user does not need to view the information displayed on the display 31, the display 31 can be rotated and stored within the atomizer 10 or the atomizing host 20, thereby reducing the protrusion of the display 31 in the vertical extension direction of the atomizing device 100, making it easier to carry and store the atomizing device 100. On the other hand, the relative rotation between the display 31 and the atomizer 10 or the atomizing host 20 allows the user to change the angle between the display surface of the display 31 and the extension direction of the atomizing device 100, thus meeting personalized needs. Furthermore, the different postures of the atomizing device 100 in inhalation and non-inhalation states cause changes in the relative position between the user's eyes and the display module 30, resulting in different viewing angles for the image information. By changing the angle between the display surface of the display 31 and the extension direction of the atomizing device 100, information can be viewed both in inhalation and non-inhalation states.

[0054] In the above exemplary embodiment, image information is imaged on display 31, and the user obtains image information by viewing display 31.

[0055] Image information can also be projected outside the display 31. In one embodiment, as shown in FIG8, the display module 30 includes a display 31 and an imaging component 32, which are disposed within the housing of the atomizer 10 or the atomizing host 20. The display 31 is communicatively connected to the atomizing host 20, enabling the display 31 to output information that the atomizing host 20 needs to display. The display 31 is used to generate image light, and the imaging component 32 is used to propagate the image light and form an image that is presented within the user's line of sight when inhaling the atomizing device 100. The image is located outside the housing of the atomizer 10 or the atomizing host 20. Setting the image outside the housing of the atomizer 10 or the atomizing host 20 reduces the limitations imposed by the installation position and screen size of the display 31 on the displayed image, making the display position and size of the image more flexible and beneficial for the user to view information.

[0056] Images can be imaged using a physical screen. In one embodiment, the display module 30 also includes a water mist generator (not shown) that can generate a thin water mist wall outside the housing of the atomizer 10 or the atomizing host 20. The water mist wall serves as the imaging screen, and the imaging component 32 projects light onto the water mist wall, thereby forming a virtual image outside the housing of the atomizer 10 or the atomizing host 20.

[0057] Images can also be formed without the aid of a physical screen. In one embodiment, as shown in FIG9, the imaging component 32 is disposed in the optical path of the image light rays. The imaging component 32 converges the image light rays and projects the converged image light rays into the air to present a floating real image. Since imaging does not require a physical screen, image display is more convenient.

[0058] In one embodiment, the imaging component 32 includes one of the following: an optical waveguide array reflector, a microlens array, a retroreflector, a negative refractive plate lens, a Fresnel lens, and a concave mirror. For example, based on the light field manipulation of the micro / nano structure, the incident, refraction, and reflection of light can be precisely controlled through the optical waveguide array reflector, refocusing diverging light rays in the air to form a real image without the need for a medium. As another example, a negative refractive plate lens utilizes the optical negative refraction properties to form a micro-array structure, periodically changing the light path to generate negative refraction. All light rays within the divergence angle of the light source converge to an axisymmetric position about the plate's cross-section after passing through the plate lens, thus obtaining a real image and achieving aerial imaging.

[0059] Referring to Figure 10, in one embodiment, the display module 30 includes a light-directing element 33, which is disposed in the optical path of the image light rays to change the transmission direction of the image light rays. By setting the light-directing element 33 to change the transmission direction of the image light rays, the display 31 can be placed outside the optical axis of the imaging component 32, which is beneficial for the arrangement of the display 31 and the imaging component 32, and can reduce the size of the atomizing device 100 in a certain dimension, thus facilitating the miniaturization of the atomizing device 100.

[0060] In one embodiment, the light steering element 33 includes at least one of a reflector and a semi-transparent mirror. Both the reflector and the semi-transparent mirror can change the transmission direction of the image light, so that the display 31 is not on the optical axis of the imaging component 32, which is beneficial to the arrangement of the display 31 and the imaging component 32 and can reduce the size of the atomizing device 100.

[0061] During the use of the atomizing device 100, the display module 30 can remain constantly lit. That is, information can be displayed even during the intervals between inhalation actions, allowing the user to conveniently check the displayed information at any time throughout the entire usage process.

[0062] In one embodiment, as shown in FIG3, the atomizing host 20 includes a control component 22, which can send a display command to the display module 30, and the display module 30 responds to the display command to start the display. By setting the control component 22 to control the display module 30 to start the display, the user can start the display of the display module 30 as needed. When no information is needed, the display module 30 can be in a standby or off state, thereby reducing the power consumption of the display module 30 and improving the battery life of the atomizing device 100.

[0063] The following describes some exemplary configurations of the control component 22. In one embodiment, as shown in FIG11, the control component 22 includes an airflow sensor 222 and a processor 223. The airflow sensor 222 and the processor 223 are communicatively connected. The processor 223 controls the atomizer 10 to be electrically connected to the atomizing host 20 based on the airflow change signal detected by the airflow sensor 222, and simultaneously sends a display command to the display module 30. The processor 223 may be a general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or other programmable logic devices, discrete gate or transistor logic devices, or discrete hardware components. The processor 223 and the airflow sensor 222 may be mounted on a circuit board 221, so that multiple components are integrated on the circuit board 221, reducing the amount of materials when assembling the atomizing device 100 and improving production efficiency. An airflow sensor 222 sends a display command to the display module 30, enabling information to be displayed simultaneously with aerosol generation. The airflow sensor 222 can also be used to generate signals to control the atomizer 10 and the display module 30, which not only makes it convenient for users to view the display information while inhaling, but also reduces the number of devices that generate control signals. In addition, when the user stops inhaling, the atomizer 10 stops heating the atomization matrix, and the display module 30 is in standby or off state, which can reduce the power consumption of the display module 30 and help improve the battery life of the atomizing device 100.

[0064] In one embodiment, as shown in FIG12, the control component 22 includes a control key 224 and a processor 223. The control key 224 is communicatively connected to the processor 223, and the processor 223 sends a display command to the display module 30 based on the operation signal of the control key 224. The triggering method of the control key 224 can be touch-sensitive, push-pull, or press-sensitive. The control key 224 can be installed on the housing of the atomizer 10, the display module 30, or the atomizing host 20 to facilitate user operation. By setting the display module 30 to be activated based on the operation signal of the control key 224, even during inhalation, the user can flexibly choose to turn the display module 30 on or off using the control key 224, thereby meeting the user's personalized display needs.

[0065] In one embodiment, as shown in FIG13, the control component 22 includes an anomaly detection module 225 and a processor 223. The anomaly detection module 225 is communicatively connected to the processor 223 and is used to detect abnormal states of the atomizing device 100. Abnormal states may include one or more of the following: overvoltage, undervoltage, inhalation timeout, insufficient atomizing matrix, and insufficient power. The processor 223 sends a display command to the display module 30 based on the abnormal state signal detected by the anomaly detection module 225. The anomaly detection module 225 may include a sensor and a detection circuit. Setting the display module 30 to be activated based on the abnormal state signal detected by the anomaly detection module 225 facilitates timely troubleshooting by displaying information to remind the user, thereby ensuring the normal operation of the atomizing device 100.

[0066] Understandably, the display module 30 may include any combination of more than one startup method, and the user may selectively set one or more startup methods as the startup method of the display module 30.

[0067] The display module 30 can be fixedly connected to the atomizer 10 or the atomizing host 20. For example, the display module 30 is integrated into the atomizer 10 or the atomizing host 20, or the display module 30 is fixedly connected to the outside of the atomizer 10 or the atomizing host 20.

[0068] In one embodiment, the display module 30 is detachably connected to the atomizer 10 or the atomizing host 20. Exemplarily, the connection between the display module 30 and the atomizer 10 or the atomizing host 20 can be achieved through bonding, snap-fitting, or screwing. This detachable connection allows the display module 30 to be relatively independent of the atomizer 10 or the atomizing host 20, enabling users to easily separate them. This facilitates the disassembly and recycling of the display module 30, allowing for reuse and reducing product operating costs. Furthermore, the recyclability of the display module 30 allows for the use of high-value display modules, facilitating the application of more feature-rich display modules. This enriches the displayed content, improves display quality, and meets users' personalized display needs.

Claims

1. An atomizing device, characterized in that, It includes an atomizer, an atomizing main unit, and a display module. The atomizer is equipped with a mouthpiece, and the atomizing main unit is located at the end of the atomizer away from the mouthpiece. The atomizer is electrically connected to the atomizing main unit. The atomizer can heat the atomizing matrix to generate an aerosol under the action of electricity. The display module is located at the end of the atomizing host away from the mouthpiece. The display module is communicatively connected to the atomizing host. The display module is configured to display image information, and the presentation format of the image information is adapted to the user's line of sight when inhaling the atomizing device.

2. The atomizing device according to claim 1, characterized in that, The image information includes at least one of text, logo, and pattern, and is presented in an upright position when the user is inhaling the atomizing device.

3. The atomizing device according to claim 1, characterized in that, The display module includes a display, which is communicatively connected to the atomizing host. When the user inhales through the atomizing device, the display surface of the monitor faces the mouthpiece, and the display surface is configured to present the image information within the user's field of vision.

4. The atomizing device according to claim 3, characterized in that, The display is installed inside the housing of the atomizer or the atomizing host, and the display surface forms an angle with the extending direction of the atomizing device.

5. The atomizing device according to claim 3, characterized in that, The display is mounted outside the housing of the atomizer or the atomizing host, and the display surface forms an angle with the extending direction of the atomizing device when the user is inhaling the atomizing device.

6. The atomizing device according to claim 5, characterized in that, The display is rotatably connected to the atomizer or the atomizing host. When the user inhales through the atomizing device, the display surface of the monitor can be rotated to face the mouthpiece.

7. The atomizing device according to claim 1, characterized in that, The display module includes a display and an imaging component, which are disposed within the housing of the atomizer or the atomizing host. The display is communicatively connected to the atomizing host. The display is used to generate image light, and the imaging component is used to propagate the image light and form an image that is presented within the user's line of sight when inhaling the atomizing device. The image is located outside the housing of the atomizer or the atomizing host.

8. The atomizing device according to claim 7, characterized in that, The imaging component is disposed in the optical path of the image light, the imaging component converges the image light and projects the converged image light into the air to present a floating real image.

9. The atomizing device according to claim 8, characterized in that, The imaging component includes one of the following: an optical waveguide array reflector, a microlens array, a retroreflector, a negative refractive plate lens, a Fresnel lens, and a concave mirror.

10. The atomizing device according to claim 7, characterized in that, The display module includes a light steering element, which is disposed in the optical path of the image light rays to change the transmission direction of the image light rays.

11. The atomizing device according to claim 10, characterized in that, The light steering element includes at least one of a reflector and a semi-transparent mirror.

12. The atomizing device according to claim 1, characterized in that, The atomizing host includes a control component, which can send display commands to the display module, and the display module responds to the display commands to start displaying.

13. The atomizing device according to claim 12, characterized in that, The control component includes an airflow sensor and a processor. The airflow sensor is communicatively connected to the processor. Based on the airflow change signal detected by the airflow sensor, the processor controls the atomizer to be electrically connected to the atomizing host while sending the display command to the display module.

14. The atomizing device according to claim 12, characterized in that, The control component includes control keys and a processor. The control keys are communicatively connected to the processor, and the processor sends the display command to the display module based on the operation signal of the control keys.

15. The atomizing device according to claim 12, characterized in that, The control component includes an anomaly detection module and a processor. The anomaly detection module is communicatively connected to the processor. The anomaly detection module is used to detect abnormal states of the atomizing device. The abnormal states include one or more of the following: overvoltage, undervoltage, inhalation timeout, insufficient atomizing matrix, and insufficient power. The processor sends the display command to the display module based on the abnormal state signal detected by the anomaly detection module.

16. The atomizing device according to any one of claims 1-15, characterized in that, The display module is detachably connected to the atomizer or the atomizing host.