Electronic atomization equipment, mode control method of electronic atomization equipment and related device

By integrating storage units and control units in electronic atomization equipment, combining the child lock function and heating element status, data exchange is achieved safe and convenient, solving the problem of simple functions of HNB atomization equipment, and improving the user experience and security of the equipment.

CN120052600APending Publication Date: 2025-05-30SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Application Number
CN202510248169.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-03
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

Currently, HNB atomization equipment has simple functions and only provides basic heating atomization function. It has failed to fully realize its potential, especially in portable use scenarios, which lacks the security and convenience of data exchange functions.

Method used

An electronic atomization device is designed, integrating a storage unit, a control unit and an operating component. Through the trigger signal, a child lock function and the state of the heating element, the working mode of the storage unit is determined, and the data exchange is enabled or disabled.

Benefits of technology

It expands the functions of electronic atomization equipment, provides convenient and secure data exchange capabilities, meets users' different usage needs, and ensures the security of the data exchange process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses electronic atomization equipment, a mode control method of the electronic atomization equipment and a related device, and belongs to the technical field of electronic equipment. The electronic atomization equipment comprises an electronic atomization main body, wherein the electronic atomization main body comprises an atomized substance storage element and a heating element; the battery assembly comprises a battery unit and a charging circuit; the operation part is used for being operated by a user to control the electronic atomization equipment; the control unit is used for controlling the electronic atomization equipment to start a child lock function and acquiring the working state of the heating element; the storage unit comprises a storage port and a storage body, the storage port is used for being connected with external equipment, and the storage body can exchange data with the external equipment through the storage port; the control unit is further used for determining the working mode of the storage unit based on whether the electronic atomization equipment starts the child lock function or not and whether the heating element is in the heating state or not after receiving the trigger signal. According to the electronic atomization equipment, the safe and convenient data exchange function can be achieved.
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Description

Technical Field

[0001] The present application relates to the technical field of electronic devices, and particularly relates to an electronic atomization device, a mode control method for an electronic atomization device, and related devices. Background Art

[0002] The HNB (Heat Not Burning) atomization device achieves the atomization effect through a high-temperature heating mechanism rather than a combustion heating mechanism. Therefore, compared with traditional atomization devices, the HNB atomization device has a better harm reduction effect. However, current HBN atomization devices have simple functions and only provide basic heating and atomization functions. In fact, HNB atomization devices have the potential to perform more functions to facilitate some users, such as users who carry HBN atomization devices with them. Summary of the Invention

[0003] The present application provides an electronic atomization device, a mode control method for an electronic atomization device, and related devices, which can perform convenient and safe data exchange functions. The technical solutions are as follows:

[0004] On the one hand, an electronic atomization device is provided. The electronic atomization device includes:

[0005] An electronic atomization main body, which includes an atomization substance storage element and a heating element; the heating element is used to heat the atomization substance when the electronic atomization device performs the atomization function to atomize the atomization substance;

[0006] A battery assembly, which includes a battery unit and a charging circuit. The battery unit is used to supply power to the electronic atomization device. The charging circuit is connected to the battery unit, and when the charging circuit is turned on, the battery unit can be charged;

[0007] An operation component for a user to operate to control the electronic atomization device;

[0008] A control unit, which is used to control the electronic atomization device to turn on the child lock function when the user turns on the child lock through the operation component; the control unit is also used to obtain the working state of the heating element;

[0009] A storage unit, which includes a storage port and a storage body. The storage port is electrically connected to the storage body. The storage port is used to connect to an external device, and the storage body can perform data exchange with the external device through the storage port;

[0010] The control unit is further configured to, after receiving a trigger signal, determine the working mode of the storage unit based on whether the electronic atomization device enables the child lock function and whether the heating element is in a heating state. The trigger signal is used to indicate that the storage port is connected to the external device. The working modes include a prohibited mode and an enabled mode. In the prohibited mode, the storage body cannot perform data exchange with the external device. In the enabled mode, the storage body can perform data exchange with the external device.

[0011] Optionally, the control unit determines the working mode of the storage unit based on whether the electronic atomization device enables the child lock function and whether it is in a heating state, including:

[0012] When the child lock function of the electronic atomization device is not enabled, determine whether the heating element is in the heating state;

[0013] If it is not in the heating state, determine the working mode of the storage unit as the enabled mode;

[0014] If it is in the heating state, determine the working mode of the storage unit as the prohibited mode.

[0015] Optionally, the control unit is further configured to:

[0016] When the child lock function of the electronic atomization device is enabled, determine the working mode of the storage unit as the prohibited mode.

[0017] Optionally, when the child lock function of the electronic atomization device is enabled, the control unit is further configured to:

[0018] In response to an unlocking signal, control the child lock function to be turned off. The unlocking signal is used to indicate that the user turns off the child lock through the operating component and / or an unlocking gesture;

[0019] Determine whether the heating element is in the heating state;

[0020] If it is not in the heating state, determine the working mode of the storage unit as the enabled mode.

[0021] Optionally, the control unit is further configured to:

[0022] When the storage port is connected to the external device, in response to a charging signal, control the charging circuit to conduct to charge the battery unit;

[0023] When the storage port is disconnected from the external device, in response to the disconnection signal, the charging circuit is controlled to disconnect to end the charging of the battery unit, and after receiving the disconnection signal, if the trigger signal and / or the charging signal are not received within the time threshold, the electronic atomization device is controlled to enter the sleep state.

[0024] Optionally, the electronic atomization device further includes:

[0025] A chute located on the outer sidewall of the electronic atomization device;

[0026] The storage unit further includes a sliding button that is slidably limited within the chute. When the sliding button is toggled, the storage unit can move along the length direction of the chute, so that the storage port can be telescoped as the sliding button is toggled.

[0027] A mouthpiece located on the outer side of the electronic atomization device on a different side from the storage port.

[0028] On the other hand, a method for controlling the mode of an electronic atomization device is provided. The electronic atomization device includes a heating unit and a storage unit. The storage unit includes a storage port and a storage body. The storage port is used to connect to an external device, and the storage body can exchange data with the external device through the storage port. The method includes:

[0029] Receiving a trigger signal for indicating that the storage port is connected to the external device;

[0030] Judging whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state;

[0031] Based on whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state, determining the working mode of the storage unit. The working mode includes a prohibited mode and an enabled mode. Wherein, in the prohibited mode, the storage body cannot exchange data with the external device, and in the enabled mode, the storage body can exchange data with the external device.

[0032] On the other hand, a mode control device for an electronic atomization device is provided. The device includes:

[0033] A receiving module for receiving a trigger signal for indicating that the storage port in the storage unit is connected to an external device;

[0034] A judging module for judging whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state;

[0035] A determination module, configured to determine an operating mode of the storage unit based on whether a child lock function of the electronic atomization device is enabled and whether a heating element is in a heating state, where the operating mode includes a prohibited mode and an enabled mode; wherein, in the prohibited mode, a storage body in the storage unit cannot perform data exchange with an external device, and in the enabled mode, the storage body in the storage unit can perform data exchange with the external device.

[0036] On the other hand, a computer-readable storage medium is provided, in which a computer program is stored, and the computer program can be executed by a processor to implement the steps of the mode control method of the above-mentioned electronic atomization device.

[0037] On the other hand, a computer program product including instructions is provided, and when the instructions run on a computer, the computer is caused to execute the steps of the mode control method of the above-mentioned electronic atomization device.

[0038] The technical solution provided by this application can at least bring the following beneficial effects:

[0039] By adding a storage unit in the electronic atomization device in this application, and the storage unit includes a storage port and a storage body, not only can data be stored, but also data exchange with an external device can be performed. Thus, by expanding the functions of the electronic atomization device, different usage requirements of users for the electronic atomization device can be met, bringing more convenience to users; moreover, the control unit will determine the operating mode of the storage unit according to whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state, which can ensure the safe use of the data exchange function of the electronic atomization device by users. BRIEF DESCRIPTION OF THE DRAWINGS

[0040] Figure 1 It is a schematic structural diagram of an electronic atomization device provided by an embodiment of this application;

[0041] Figure 2 It is a schematic diagram of a state where a storage port is in an extended state provided by an embodiment of this application;

[0042] Figure 3 It is a schematic diagram of a state where a storage port is in a retracted state provided by an embodiment of this application;

[0043] Figure 4 It is a flowchart of a mode control method of an electronic atomization device provided by an embodiment of this application;

[0044] Figure 5 It is a schematic structural diagram of a mode control device of an electronic atomization device provided by an embodiment of this application. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0045] The present invention will be further described in detail below in conjunction with the accompanying drawings through specific embodiments. Similar elements in different embodiments are labeled with related similar element numbers. In the following embodiments, many detailed descriptions are provided to enable a better understanding of the present application. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other elements, materials, or methods. In some cases, some operations related to the present application are not shown or described in the specification, which is to avoid the core part of the present application being overwhelmed by excessive descriptions. For those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the descriptions in the specification and general technical knowledge in the art.

[0046] In addition, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can also be reordered or adjusted in a manner obvious to those skilled in the art. Therefore, the various sequences in the specification and drawings are only for clearly describing a certain embodiment and do not mean that they are the necessary sequences, unless it is stated otherwise that a certain sequence must be followed.

[0047] The serial numbers assigned to the components in this article, such as "first", "second", etc., are only used to distinguish the described objects and do not have any sequential or technical meaning. And the "connection" and "coupling" mentioned in this application, unless otherwise specified, both include direct and indirect connection (coupling).

[0048] Please refer to Figure 1 , Figure 1 which is a schematic structural diagram of an electronic atomization device provided by an embodiment of the present application. From Figure 1As can be seen, the electronic atomization device includes an electronic atomization main body 1, and the electronic atomization main body 1 includes an atomization substance storage element 11 and a heating element 12; the heating element 12 is used to heat the atomization substance when the electronic atomization device performs the atomization function, so as to atomize the atomization substance. A battery assembly 2, the battery assembly 2 includes a battery unit 21 and a charging circuit 22, the battery unit 21 is used to supply power to the electronic atomization device, the charging circuit 22 is connected to the battery unit 21, and when the charging circuit 22 is turned on, the battery unit 21 can be charged. An operation component 3, which is used for the user to operate to control the electronic atomization device. A control unit 4, which is used to control the electronic atomization device to turn on the child lock function when the user turns on the child lock through the operation component 3; the control unit 4 is also used to obtain the working state of the heating element 12. A storage unit 5, the storage unit 5 includes a storage port 51 and a storage body 52, the storage port 51 is electrically connected to the storage body 52, the storage port 51 is used to connect to an external device, and the storage body 52 can exchange data with the external device through the storage port 51. The control unit 4 is also used to determine the working mode of the storage unit 5 based on whether the electronic atomization device turns on the child lock function and whether the heating element 12 is in the heating state after receiving a trigger signal, the trigger signal is used to indicate that the storage port 51 is connected to an external device, and the working mode includes a prohibited mode and an enabled mode; wherein, in the prohibited mode, the storage body 52 cannot exchange data with the external device, and in the enabled mode, the storage body 52 can exchange data with the external device.

[0049] The electronic atomization device is an HBN appliance. Therefore, the electronic atomization device heats the atomization substance in the atomization substance storage element 11 through the heating element 12, so as to atomize the atomization substance, and further make the electronic atomization device perform the atomization work.

[0050] Moreover, the electronic atomization device further includes a battery assembly 2, and the battery unit 21 therein is used to supply power to the electronic atomization device. However, when the battery unit 21 runs out of power, the electronic atomization device cannot work. Therefore, the battery assembly 2 can also include a charging circuit 22, and the charging circuit 22 is connected to the battery unit 21. Thus, the battery unit 21 can be charged through the charging circuit 22. As an example, when the charging circuit 22 is turned on, the battery unit 21 can be charged, and when the charging circuit 22 is turned off, the battery unit 21 cannot be charged.

[0051] In some embodiments, the electronic atomization device may further include an operation component 3. Thus, the user can control the electronic atomization device through the operation component 3. For example, the operation component 3 may be located outside the electronic atomization device and is a protruding button. The user can press the button to control the electronic atomization device. For example, the user can press the button to activate the child lock. When the user presses the button to activate the child lock, the user can also press the button to deactivate the child lock. As another example, the operation component may also be a touch button located outside the electronic atomization device. Thus, the user can control the electronic atomization device by touching the button.

[0052] To avoid accidental touch of the electronic atomization device when the user does not use it, which may cause potential safety hazards, or to prevent children from accidentally touching the electronic atomization device and causing harm to children, the control unit 4 can control the electronic atomization device to activate the child lock function when the user activates the child lock through the operation component 3. Moreover, when the electronic atomization device is in use, that is, when the electronic atomization device is performing atomization work, the control unit 4 will directly control the heating element 12 to generate heat. Therefore, for subsequent processes, the control unit 4 also needs to obtain the working state of the current heating element 12, that is, whether the heating element 12 is in a heating state.

[0053] To expand the functions of the electronic atomization device and bring more convenience to the user when using the electronic atomization device, the electronic atomization device may further include a storage unit 5. The storage unit 5 can store relevant data of the electronic atomization device through its own storage body 52, and can also store the data required by the user, such as work files, etc. Moreover, the storage unit 5 may further include a storage port 51. The storage port 51 is used to connect to an external device, and the storage port 51 is electrically connected to the storage body 52. Therefore, when the storage port 51 is connected to an external device and meets the conditions, the storage body 52 can exchange data with the external device through the storage port 51. That is to say, the user can view the data stored in the storage body 52 through the external device, and can copy or transfer the data in the storage body 52 to the external device, and can also copy or transfer the data in the external device to the storage body 52.

[0054] It should be noted that the storage unit 5 can be a USB (Universal Serial Bus) flash drive, or other storage devices. The embodiments of the present application do not limit this.

[0055] In some embodiments, please refer to Figure 2 and Figure 3, the electronic atomization device further includes a chute 6 located on the outer wall of the electronic atomization device. The storage unit 5 further includes a sliding button 53 which is slidably limited within the chute 6. When the sliding button 53 is toggled, the storage unit 5 can move along the length direction of the chute 6, so that the storage port 51 can be extended and retracted as the sliding button 53 is toggled. A mouthpiece 7 is located on the outer side of the electronic atomization device on a side different from the storage port 51.

[0056] In order to enable users to conveniently and safely use the storage function in the electronic atomization device, therefore, the electronic atomization device may further include a chute 6, and the storage unit 5 may further include a sliding button 53 which is slidably limited within the chute 6. Thus, when a user needs to use the storage unit 5, as Figure 2 shown, by toggling the sliding button 53, the storage port 51 can be extended, so that the storage port 51 can be connected to an external device. After the user finishes using it, as Figure 3 shown, the sliding button 53 can also be toggled back to retract the storage port 51.

[0057] It should be noted that the above is described by taking that the storage port in the electronic atomization device can be extended and retracted through a sliding button. Or, in application, the storage port may be able to directly connect to an external device without being extended, or the storage port may be folded on the outer wall of the electronic atomization device when not in use and needs to be manually opened by the user when in use. That is to say, the embodiments of the present application do not limit the position and retention manner of the storage port on the electronic atomization device.

[0058] Moreover, in order to enable users to conveniently use the atomization function and data exchange function of the electronic atomization device, as Figure 2 and Figure 3 shown, the mouthpiece 7 can be located on the outer side of the electronic atomization device on a side different from the storage port 51. Thus, when the user uses the atomization function of the electronic atomization device, the storage port 51 will not interfere with the user, and when the user uses the data exchange function of the electronic atomization device, the mouthpiece 7 will not affect the connection between the storage port 51 and the external device.

[0059] In addition, in some embodiments, in order to prevent potential safety hazards when the user uses the storage function of the electronic atomization device, after the storage port 51 is connected to an external device (i.e., after the control unit 4 receives a trigger signal), the control unit 4 also needs to determine whether the storage unit 5 can currently work safely based on whether the electronic atomization device has enabled the child lock function and whether the heating element 12 is in a heating state. That is to say, the control unit 4 needs to determine the working mode of the storage unit 5 to ensure safe data exchange between the storage unit 5 and the external device.

[0060] In some embodiments, the process by which the control unit 4 determines the operating mode of the storage unit 5 may be as follows: when the child lock function of the electronic atomization device is not enabled, it is determined whether the heating element 12 is in a heating state; if it is not in a heating state, the operating mode of the storage unit 5 is determined to be the enabled mode; if it is in a heating state, the operating mode of the storage unit 5 is determined to be the prohibited mode.

[0061] Based on the above description, it can be seen that when the user activates the child lock through the operating component 3, the control unit 4 can control the electronic atomization device to activate the child lock function. Thus, after receiving the trigger signal, the control unit 4 can directly determine whether the child lock function of the electronic atomization device is enabled.

[0062] When the child lock function of the electronic atomization device is not enabled, in order to ensure the safe use of the storage unit 5 and that neither the storage unit 5 itself nor external devices are damaged during use, the control unit 4 also needs to obtain the operating state of the heating element 12 to determine whether the heating element 12 is in a heating state.

[0063] When the heating element 12 is not in a heating state, it indicates that the current storage body 52 and external devices can perform safe data exchange. Therefore, the control unit 4 can determine the operating mode of the storage unit 5 to be the enabled mode, allowing the storage body 52 to exchange data with external devices.

[0064] When the heating element 12 is in a heating state, if the storage body 52 and external devices are allowed to exchange data at this time, it may cause damage to the storage body 52 due to the high internal temperature of the electronic atomization device, and may even damage external devices. Therefore, the control unit 4 can determine the operation of the storage unit 5 to be the prohibited mode, preventing the storage body 52 from exchanging data with external devices.

[0065] In some embodiments, when the child lock function of the electronic atomization device is enabled, the control unit 4 can also determine the operating mode of the storage unit 5 to be the prohibited mode. That is to say, to prevent children from using the storage unit 5, resulting in data loss or damage to the storage body 52; or, to encrypt the storage unit 5 through the child lock to prevent the leakage of important data, the control unit 4 can control the child lock function of the electronic atomization device to be enabled. After enabling the child lock function, it also means that the current storage unit 5 cannot be used. Thus, when the child lock function of the electronic atomization device is enabled, the control unit 4 can also determine the operating mode of the storage unit 5 to be the prohibited mode, preventing the storage body 52 and external devices from exchanging data, thereby improving the security of the data stored in the storage unit 5 of the electronic atomization device.

[0066] In addition, in some embodiments, when the child lock function of the electronic atomization device is turned on, the control unit 4 can also respond to an unlocking signal to control the child lock function to turn off. The unlocking signal is used to instruct the user to turn off the child lock through the operating component 3 and / or an unlocking gesture. Then, it is determined whether the heating element 12 is in a heating state; if it is not in a heating state, the working mode of the storage unit 5 is determined as the enabled mode.

[0067] That is to say, when the control unit 4 determines that the child lock function of the electronic atomization device is turned on, in order to be able to use the storage unit 5 normally, when the user manually turns off the child lock, the control unit 4 can also respond to the unlocking signal to control the child lock function to turn off.

[0068] Based on the above description, it can be seen that when the user turns on the child lock through the operating component 3, the control unit 4 can control the electronic atomization device to turn on the child lock function. Thus, after the child lock function is turned on, when the user can also turn off the child lock through the operating component 3, the control unit 4 can also respond to the unlocking signal to control the child lock function to turn off.

[0069] Since in order to avoid the leakage of the data stored in the storage body 52, the user can also encrypt the storage unit 5 through the child lock. Therefore, after the user turns on the child lock through the operating component 3 and the control unit 4 also controls the atomization device to turn on the child lock function, the user needs to make a corresponding unlocking gesture to trigger the unlocking signal, so that the control unit 4 responds to the unlocking signal to control the child lock function to turn off. For example, the unlocking gesture can be to hold the electronic atomization device and rotate it clockwise three times. Thus, when the child lock function of the electronic atomization device is turned on, if the user holds the electronic atomization device and rotates it clockwise three times, an unlocking signal will be triggered inside the electronic atomization device, and the control unit 4 will also respond to the unlocking signal to control the child lock function of the electronic atomization device to turn off.

[0070] In some embodiments, after the control unit 4 turns on the child lock function, the user only needs to make a corresponding unlocking gesture to trigger the unlocking signal. That is to say, when the user makes a corresponding unlocking gesture, the control unit 4 will respond to the unlocking signal to control the child lock function to turn off.

[0071] It should be noted that the above is described based on the user being able to turn off the child lock through the unlocking gesture. Alternatively, in the application, the user can also turn off the child lock by entering a password. The embodiments of the present application do not limit this.

[0072] Continuing the above description, after the control unit 4 controls the child lock function of the electronic atomization device to turn off, in order to determine whether the storage unit 5 can be used safely at present, the control unit 5 also needs to determine whether the heating element 12 is in a heating state.

[0073] When the heating element 12 is not in the heating state, it indicates that the current storage body 52 and the external device can safely exchange data. Therefore, the control unit 4 can determine the working mode of the storage unit 5 as the enabled mode; when the heating element 12 is in the heating state, it means that if the storage unit 5 is used at this time, it may cause damage to the storage body 52 due to the relatively high internal temperature of the electronic atomization device, and may even damage the external device. Therefore, the control unit 4 can determine the operation of the storage unit 5 as the prohibited mode.

[0074] In some embodiments, when the storage port 51 is connected to an external device, the control unit 4 can also, in response to a charging signal, control the charging circuit 22 to conduct to charge the battery unit 21; and when the storage port 51 is disconnected from the external device, in response to a connection disconnection signal, control the charging circuit 22 to disconnect to end the charging of the battery unit 21, and after receiving the connection disconnection signal, if no trigger signal and / or charging signal is received within a time threshold, control the electronic atomization device to enter the sleep state.

[0075] That is to say, in order to use the corresponding functions in the storage unit 5, it is required that the external device can supply power, that is, can charge the electronic atomization device. Thus, when the storage port 51 is connected to an external device, the control unit 4 can also, in response to a charging signal, control the charging circuit 22 to conduct to charge the battery unit 21, and then charge the electronic atomization device. In this way, during the user's use of the electronic atomization device, if the electronic atomization device runs out of power and the charging cable is not carried, the electronic atomization device can be charged through the storage port, which can improve the user experience of the electronic atomization device.

[0076] Continuing the above description, after the storage port 51 is disconnected from the external device, it indicates that the current electronic atomization device can no longer be charged. Therefore, when the storage port is disconnected from the external device, the control unit 4 can, in response to a connection disconnection signal, control the charging circuit 22 to disconnect, end the charging of the battery unit 21, and then end the charging of the electronic atomization device.

[0077] In order to determine whether the user still has a usage requirement for the storage unit 5 after the storage port 51 is disconnected from the external device and to save the power of the electronic atomization device, the control unit 4 can also start timing after the storage port 51 is disconnected from the external device, and if no trigger signal and / or charging signal is received within a time threshold, control the electronic atomization device to enter the sleep state.

[0078] That is to say, when the storage port 51 is disconnected from the external device, if no trigger signal is received within the time threshold, it indicates that the current user has no demand for the storage unit 5. Therefore, the control unit 4 can control the electronic atomization device to enter the sleep state, thereby saving the power of the electronic atomization device. If a trigger signal is received within the time threshold, it indicates that the current user still has a demand for the storage unit 5. Therefore, the control unit 4 does not need to control the electronic atomization device to enter the sleep state, so that the electronic atomization device can operate.

[0079] If no charging signal is received within the time threshold, it indicates that the electronic atomization device is not charged again. Therefore, in order to save the power of the electronic atomization device, the controller can control the electronic atomization device to enter the sleep state. If the charging signal is received within the time threshold, it indicates that the electronic atomization device can be charged currently, then the control unit 4 does not need to control the electronic atomization device to enter the sleep state.

[0080] In the embodiment of the present application, by adding a storage unit to the electronic atomization device, and the storage unit includes a storage port and a storage body, not only can data be stored, but also data can be exchanged with an external device. Thus, by expanding the functions of the electronic atomization device, it can meet different usage requirements of users for the electronic atomization device and bring more convenience to users. Moreover, the control unit determines the working mode of the storage unit according to whether the child lock function of the electronic atomization device is turned on and whether the heating element is in the heating state. That is to say, when the child lock function of the electronic atomization device is turned off and the heating element is not in the heating state, the control unit will determine the working mode of the storage unit as the enabled mode. Otherwise, the working mode of the storage unit will be determined as the prohibited mode, which can ensure that users can safely use the data exchange function of the electronic atomization device. In addition, the electronic atomization device can also encrypt the storage unit through the child lock, thereby preventing the data stored in the storage body from being leaked.

[0081] Next, a detailed explanation of the mode control method of the electronic atomization device provided in the embodiment of the present application will be given.

[0082] Figure 4 is a flowchart of a mode control method of an electronic atomization device provided in the embodiment of the present application. The electronic atomization device includes a storage unit and a heating element. The storage unit includes a storage port and a storage body. The storage port is used to connect to an external device, and the storage body can exchange data with the external device through the storage port. Please refer to Figure 4 , the method includes the following steps:

[0083] Step 401: Receive a trigger signal, where the trigger signal is used to indicate that the storage port is connected to an external device.

[0084] Step 402: Determine whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state.

[0085] Step 403: Based on whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state, determine the working mode of the storage unit. The working mode includes a prohibited mode and an enabled mode. Among them, in the prohibited mode, the storage body cannot exchange data with external devices, and in the enabled mode, the storage body can exchange data with external devices.

[0086] In the embodiment of the present application, by adding a storage unit to the electronic atomization device, and the storage unit includes a storage port and a storage body, not only can data be stored, but also data can be exchanged with external devices. Therefore, by expanding the functions of the electronic atomization device, it can meet different usage requirements of users for the electronic atomization device and bring more convenience to users. Moreover, it can determine the working mode of the storage unit according to whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state, which can ensure that users use the data exchange function safely.

[0087] It should be noted that the mode control method of the electronic atomization device provided in the above embodiment belongs to the same concept as the electronic atomization device embodiment described above. For the specific implementation process, please refer to the electronic atomization device embodiment and will not be elaborated here.

[0088] Figure 5 is a schematic structural diagram of a mode control device of an electronic atomization device provided in an embodiment of the present application. Refer to Figure 5 , the mode control device includes: a receiving module 501, a judging module 502, and a determining module 503.

[0089] The receiving module 501 is configured to receive a trigger signal, and the trigger signal is used to indicate that the storage port in the storage unit is connected to an external device;

[0090] The judging module 502 is configured to judge whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state;

[0091] The determining module 503 is configured to determine the working mode of the storage unit based on whether the child lock function of the electronic atomization device is enabled and whether the heating element is in a heating state. The working mode includes a prohibited mode and an enabled mode. Among them, in the prohibited mode, the storage body in the storage unit cannot exchange data with external devices, and in the enabled mode, the storage body in the storage unit can exchange data with external devices.

[0092] In the embodiment of the present application, by adding a storage unit in the electronic atomization device, and the storage unit includes a storage port and a storage body, not only can data be stored, but also data can be exchanged with external devices. Thus, by expanding the functions of the electronic atomization device, it can meet different usage requirements of users for the electronic atomization device and bring more convenience to users; moreover, it can determine the working mode of the storage unit according to whether the child lock function of the electronic atomization device is turned on and whether the heating element is in a heating state, which can ensure that users use the data exchange function safely.

[0093] It should be noted that when the mode control device provided in the above embodiment controls the mode of the electronic atomization device, only the division of the above functional modules is used for illustration. In actual application, the above functions can be allocated to different functional modules according to needs, that is, the internal structure of the mode control device is divided into different functional modules to complete all or part of the functions described above. In addition, the mode control device of the electronic atomization device provided in the above embodiment and the embodiment of the electronic atomization device belong to the same concept, and the specific implementation process is detailed in the embodiment of the electronic atomization device, which will not be elaborated here.

[0094] Those skilled in the art can understand that all or part of the functions of the above methods can be implemented in a hardware manner or in a computer program manner. When all or part of the functions in the above embodiments are implemented in a computer program manner, the program can be stored in a computer-readable storage medium. The storage medium can include: read-only memory, random access memory, magnetic disk, optical disk, hard disk, etc. The above functions are realized by the computer executing the program. For example, the program is stored in the memory of the device, and when the processor executes the program in the memory, the above all or part of the functions can be realized. In addition, when all or part of the functions in the above embodiments are implemented in a computer program manner, the program can also be stored in a storage medium such as a server, another computer, magnetic disk, optical disk, flash drive or mobile hard disk, downloaded or copied and saved to the memory of the local device, or the system of the local device is updated, and when the processor executes the program in the memory, the above all or part of the functions in the embodiments can be realized.

[0095] The above uses specific examples to elaborate on the present invention, which is only used to help understand the present invention and is not intended to limit the present invention. For those skilled in the art of the present invention, according to the idea of the present invention, several simple deductions, deformations or substitutions can also be made.

Claims

1. An electronic atomization device, characterized in that: The electronic atomization device comprises: An electronic atomization body, the electronic atomization body comprising an atomization material storage element and a heating element; the heating element is used to heat the atomization material when the electronic atomization device performs an atomization function, so as to atomize the atomization material; A battery assembly, wherein the battery assembly comprises a battery unit and a charging circuit, wherein the battery unit is used to power the electronic atomization device, and the charging circuit is connected to the battery unit, and when the charging circuit is turned on, the battery unit can be charged; An operating component, used for a user to operate to control the electronic atomization device; A control unit, used to control the electronic atomization device to turn on the child lock function when the user turns on the child lock through the operating component; the control unit is also used to obtain the working state of the heating element; A storage unit, the storage unit comprising a storage port and a storage body, the storage port being electrically connected to the storage body, the storage port being used to connect to an external device, and the storage body being able to exchange data with the external device through the storage port; The control unit is also used to determine the working mode of the storage unit after receiving a trigger signal, based on whether the child lock function of the electronic atomization device is turned on and whether the heating element is in a heating state. The trigger signal is used to indicate that the storage port is connected to the external device, and the working mode includes a prohibited mode and an enabled mode; wherein, in the prohibited mode, the storage body cannot exchange data with the external device, and in the enabled mode, the storage body can exchange data with the external device.

2. The electronic atomization device according to claim 1, characterized in that: The control unit determines the working mode of the storage unit based on whether the electronic atomization device has a child lock function turned on and is in a heating state, including: When the child lock function of the electronic atomization device is not turned on, determining whether the heating element is in the heating state; If the storage unit is not in the heating state, the operation mode of the storage unit is determined to be the enabling mode; If in the heating state, the operation mode of the storage unit is determined to be the prohibited mode.

3. The electronic atomization device according to claim 2, characterized in that: The control unit is also used for: When the child lock function of the electronic atomization device is turned on, the working mode of the storage unit is determined to be the prohibited mode.

4. The electronic atomization device according to claim 3, characterized in that: When the child lock function of the electronic atomization device is turned on, the control unit is further used to: In response to an unlocking signal, controlling the child lock function to be turned off, the unlocking signal being used to instruct the user to turn off the child lock through the operating component and / or an unlocking gesture; determining whether the heating element is in the heating state; If the storage unit is not in the heating state, the operation mode of the storage unit is determined to be the enabling mode.

5. The electronic atomization device according to claim 1, characterized in that: The control unit is also used for: When the storage port is connected to the external device, in response to a charging signal, the charging circuit is controlled to be turned on to charge the battery unit; When the storage port is disconnected from the external device, in response to a disconnection signal, the charging circuit is controlled to disconnect to end the charging of the battery unit, and after receiving the disconnection signal, if the trigger signal and / or the charging signal is not received within a time threshold, the electronic atomization device is controlled to enter a sleep state.

6. The electronic atomization device according to claim 1, characterized in that: The electronic atomization device also includes: A slide groove, the slide groove is located on the outer side wall of the electronic atomization device; The storage unit further includes a sliding button, which is slidably limited in the slide slot. When the sliding button is pushed, the storage unit can move along the length direction of the slide slot, so that the storage port can be extended and retracted as the sliding button is pushed; A suction nozzle is located on the outside of the electronic atomization device on a different side from the storage port.

7. A mode control method for an electronic atomization device, characterized in that: The electronic atomization device comprises a heating unit and a storage unit, the storage unit comprises a storage port and a storage body, the storage port is used to connect an external device, and the storage body can exchange data with the external device through the storage port; the method comprises: receiving a trigger signal, wherein the trigger signal is used to indicate that the storage port is connected to the external device; Determine whether the child lock function of the electronic atomization device is turned on and whether the heating element is in a heating state; Based on whether the child lock function of the electronic atomization device is turned on and whether the heating element is in a heating state, the working mode of the storage unit is determined, and the working mode includes a prohibited mode and an enabled mode; wherein, in the prohibited mode, the storage body cannot exchange data with the external device, and in the enabled mode, the storage body can exchange data with the external device.

8. A mode control device for an electronic atomization device, characterized in that: The device comprises: A receiving module, used for receiving a trigger signal, wherein the trigger signal is used for indicating that a storage port in the storage unit is connected to an external device; A judgment module, used to judge whether the child lock function of the electronic atomization device is turned on and whether the heating element is in a heating state; A determination module is used to determine the working mode of the storage unit based on whether the child lock function of the electronic atomization device is turned on and whether the heating element is in a heating state, and the working mode includes a prohibited mode and an enabled mode; wherein, in the prohibited mode, the storage body in the storage unit cannot exchange data with the external device, and in the enabled mode, the storage body in the storage unit can exchange data with the external device.

9. A computer-readable storage medium, characterized in that: The medium stores a computer program, which can be executed by a processor to implement the method according to claim 7.

10. A computer program product comprising a computer program and / or instructions, characterized in that: When the computer program and / or the instructions are executed by a processor, the method according to claim 7 is implemented.