Heating method and electronic atomization device

By detecting the trigger signal of the emergency soothing atomization mode in the electronic atomization device, controlling the heating time, number of pulses or air flow to heat and atomize the liquid aerosol generation matrix, the problem that users cannot quickly obtain a soothing experience in emergency scenarios is solved, and a rapid soothing and convenient user experience is improved.

CN120695309APending Publication Date: 2025-09-26HG INNOVATION LTD
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Patent Information

Application Number
CN202511000281.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-18
Publication Date
2025-09-26

AI Technical Summary

Technical Problem

Existing technologies cannot quickly and conveniently help users achieve a soothing experience in emergency situations. Medications have side effects, breathing exercises lack external assistance and quantitative feedback, and aromatherapy equipment needs to be carried separately.

Method used

A heating method is provided. By detecting the trigger signal of the emergency relief atomization mode, the electronic atomization device heats and atomizes the liquid aerosol-generating matrix according to the heating mode of a single puff in the emergency relief atomization mode when detecting the puffing action, including controlling the heating time, the number of heating pulses or the air flow to control the liquid delivery.

Benefits of technology

In emergency situations, it can quickly and conveniently help users relieve their emotions, improve their concentration, and enhance user experience and stickiness.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a heating method and an electronic atomization device.The heating method is applied to the electronic atomization device.The heating method comprises the following steps that an emergency relieving atomization mode is started according to a detected trigger signal of the emergency relieving atomization mode; and when the smoking action is detected, heating and atomizing the liquid aerosol generating matrix with the soothing effect according to a heating mode of single smoking in the emergency soothing atomization mode. When the user faces an emergency scene, the emergency soothing atomization mode of the electronic atomization device can be started, so that the user is helped to relieve the emergency scene, improve the emotion and improve the concentration quickly and conveniently, the user experience of the electronic atomization device is improved, and the user stickiness is improved.
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Description

Technical Field

[0001] The present application relates to the field of electronic atomization technology, and in particular to a heating method and an electronic atomization device. Background Art

[0002] In emergency situations (facing sudden stress, anxiety, or intense discomfort), users seek relief. Relevant relief methods include medication, breathing exercises, or specialized aromatherapy equipment. However, medications have side effects and are difficult to carry around; breathing exercises lack external support and quantitative feedback; and aromatherapy equipment requires users to carry around additional equipment. Therefore, these relief methods cannot quickly and conveniently help users achieve relief in emergency situations. Summary of the Invention

[0003] The present application provides a heating method and an electronic atomization device to solve the problem that related technologies cannot quickly and conveniently help users obtain a soothing experience in emergency situations.

[0004] In one embodiment, a heating method is provided for use in an electronic atomization device, the heating method comprising the following steps: Turning on the emergency relief atomization mode according to the detected trigger signal of the emergency relief atomization mode; When a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized according to the heating pattern of a single puff in the emergency soothing atomization mode.

[0005] In one embodiment, when a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized according to the heating mode of a single puff in the emergency soothing atomization mode, including: when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode; or, when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized by controlling the heating pulse in the emergency soothing atomization mode and the total number of heating pulses for a single puff in the emergency soothing atomization mode; or, when the puffing action is detected, the amount of liquid to be delivered in the emergency soothing atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix with a soothing effect.

[0006] In one embodiment, when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode, including: when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized and timing is performed, and when the heating time reaches the total heating time of a single puff in the emergency soothing atomization mode, the heating and atomization is stopped.

[0007] In one embodiment, when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode, and further includes: presetting the atomization efficiency, wherein the atomization efficiency is the unit liquid volume that can be atomized within a unit heating time under a fixed heating power; presetting the total liquid volume target required to be delivered in a single puff in the emergency soothing atomization mode; and calculating the total heating time of a single puff in the emergency soothing atomization mode based on the total liquid volume target required to be delivered in a single puff in the emergency soothing atomization mode and the atomization efficiency.

[0008] In one embodiment, when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized by controlling the heating pulses in the emergency soothing atomization mode and the total number of heating pulses in a single puff in the emergency soothing atomization mode, including: when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is periodically heated according to the heating pulses in the emergency soothing atomization mode, and the number of heating pulses issued is calculated, and when the number of heating pulses reaches the total number of heating pulses in a single puff in the emergency soothing atomization mode, the heating and atomization is stopped.

[0009] In one embodiment, when the puffing action is detected, the amount of liquid required to be delivered in the emergency soothing nebulization mode is controlled by coordinating with the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix with a soothing effect, including: when the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized and the inhaled air flow rate is calculated in real time; the amount of liquid required to be delivered in the emergency soothing nebulization mode is calculated based on the inhaled air flow rate; when the amount of liquid delivered reaches the total liquid amount target required to be delivered for a single puff in the emergency soothing nebulization mode, the heating and atomization is stopped.

[0010] In one embodiment, when the puffing action is detected, the amount of liquid required to be delivered in the emergency soothing atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix with a soothing effect, and also includes: dynamically adjusting the heating power according to the inhaled air flow rate.

[0011] In one embodiment, the heating power is dynamically adjusted according to the inhaled air flow rate, including: when the inhaled air flow rate is less than a first threshold value, the heating power is reduced; when the inhaled air flow rate is greater than the first threshold value, the heating power is increased.

[0012] In one embodiment, according to the detected trigger signal of the emergency soothing atomization mode, the emergency soothing atomization mode is activated, including: After detecting the trigger signal of the emergency relief atomization mode, it is determined whether the information of the liquid storage device and / or the state of the electronic atomization device meets the preset conditions. If so, the emergency relief atomization mode is turned on.

[0013] In one embodiment, an electronic atomization device is provided, comprising: a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the heating method as described above can be implemented.

[0014] By implementing this application, the following beneficial effects are achieved: When the user faces an emergency situation, the present application can turn on the emergency relief atomization mode of the electronic atomization device. When the electronic atomization device detects the occurrence of a puffing action, it can heat and atomize the liquid aerosol generating matrix with a soothing effect according to the heating mode of a single puff in the emergency relief atomization mode, thereby quickly and conveniently helping the user to relieve the emergency situation, improve mood and enhance concentration, thereby enhancing the user experience of the electronic atomization device and increasing user stickiness. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] The present application will be further described below with reference to the accompanying drawings and embodiments, in which: Figure 1 A flow chart showing an embodiment of the heating method of the present application is shown; Figure 2 A schematic diagram showing the interface of an application on a terminal connected to the electronic atomization device of the present application; Figure 3 A flow chart illustrating an embodiment of controlling the total heating time of a single puff in the emergency relief atomization mode in the heating method of the present application is shown; Figure 4A flow chart illustrating an embodiment of controlling heating pulses in the emergency relief atomization mode and the total number of heating pulses per puff in the emergency relief atomization mode in the heating method of the present application is shown; Figure 5 A flow chart showing an embodiment of the heating method of the present application for controlling the amount of liquid to be delivered in the emergency relief atomization mode by coordinating the inhaled air flow rate; Figure 6 The figure shows a logical structure diagram of an embodiment of the electronic atomization device of the present application. DETAILED DESCRIPTION

[0016] In order to have a clearer understanding of the technical features, purposes and effects of this application, the specific implementation methods of this application are now described in detail with reference to the accompanying drawings.

[0017] It should be noted that the flowcharts shown in the accompanying drawings are for illustrative purposes only and do not necessarily include all content and operations / steps, nor must they be executed in the order described. For example, some operations / steps may be decomposed, while others may be combined or partially combined. Therefore, the actual execution order may vary depending on the actual situation.

[0018] The block diagrams shown in the accompanying drawings are merely functional entities and do not necessarily correspond to physically separate entities. That is, these functional entities may be implemented in software, in one or more hardware modules or integrated circuits, or in different networks and / or processor devices and / or microcontroller devices.

[0019] With the increasing popularity of electronic atomizing devices and the increasing dependence of users, traditional electronic atomizing devices have shortcomings in intelligent functions. For example, they are unable to quickly and conveniently help users get a soothing experience in emergency situations (facing sudden stress, anxiety or strong discomfort).

[0020] Therefore, if Figure 1 As shown, some embodiments of the present application disclose a heating method applied to an electronic atomization device, the heating method comprising the following steps: Turning on the emergency relief atomization mode according to the detected trigger signal of the emergency relief atomization mode; When a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized according to the heating mode of a single puff in the emergency soothing atomization mode to generate an aerosol with a soothing effect.

[0021] This application utilizes the portable nature of the electronic atomizer device. When the user faces an emergency situation, the emergency relief atomization mode of the electronic atomizer device can be turned on, thereby quickly and conveniently helping the user to relieve the emergency situation, improve mood, and enhance concentration, thereby enhancing the user experience of the electronic atomizer device and increasing user stickiness.

[0022] In some embodiments, the trigger signal for the emergency relief atomization mode is a button operation, touch operation, or voice input operation by the user on the electronic atomization device, such as short pressing a button five times in a row.

[0023] In some other embodiments, the trigger signal for the emergency soothing atomization mode is a trigger signal sent by an application on the terminal. Figure 2 As shown, after the terminal application establishes a communication connection with the electronic atomization device (such as a Bluetooth connection), the user inputs instructions by touch on the application interface (such as clicking on the application interface to turn on the emergency relief atomization mode) or by voice input, etc., and then the terminal application sends a trigger signal to the electronic atomization device.

[0024] In some embodiments, for an electronic atomization device with a replaceable liquid storage device, before activating the emergency relief atomization mode based on a detected trigger signal of the emergency relief atomization mode, the heating method further includes: Automatically identify the identification on the liquid storage device and obtain information about the liquid storage device; for example, the identification is a specific ID such as a QR code, and the information of the liquid storage device includes the remaining liquid volume, the type of liquid aerosol generating matrix, and the expiration date; The information of the liquid storage device is sent to the terminal application, so that the terminal application can obtain the usage and effect of the corresponding liquid storage device from the cloud, and Figure 2 The user is provided with learning instructions through text or video, including instructions on how to turn on the emergency soothing atomization mode and related soothing techniques.

[0025] In some other embodiments, for an electronic atomization device that manually adds an aerosol generating matrix to a liquid storage device, the added aerosol generating matrix has an instruction manual. The user can establish a communication connection between the electronic atomization device and the terminal application through the guidance of the instruction manual. The terminal application obtains the usage and effect of the corresponding aerosol generating matrix from the cloud, and Figure 2 The content is shown in text or video format for users to learn.

[0026] In some embodiments, for an electronic atomization device with a replaceable liquid storage device, the emergency relief atomization mode is activated according to a detected trigger signal of the emergency relief atomization mode, including: After detecting the trigger signal of the emergency relief atomization mode, it is determined whether the information of the liquid storage device and / or the state of the electronic atomization device meets the preset conditions. If so, the emergency relief atomization mode is turned on. For example, determining whether the information of the liquid storage device meets the preset conditions includes: determining whether the remaining liquid volume of the liquid storage device is greater than the liquid volume threshold, determining whether the type of liquid aerosol generating matrix has a soothing effect, and determining whether the liquid storage device is within the validity period. At least one of the three conditions is understandable. The at least one can be one, two or three. For another example, determining whether the state of the electronic atomization device meets the preset conditions includes: determining whether the interval time for the electronic atomization device to turn on the emergency relief atomization mode is within the safety interval time. The safety interval time is the shortest time that the electronic atomization device must wait between exiting the emergency relief atomization mode once and re-starting the emergency relief atomization mode next time.

[0027] In some embodiments, after the electronic atomization device turns on the emergency relief atomization mode, the atomization functions of other atomization modes can be temporarily disabled, such as disabling the power output algorithms of other atomization modes, to ensure that only heating atomization is performed in the emergency relief atomization mode.

[0028] In some embodiments, the heating temperature range for the emergency soothing aerosol mode (or aerosol-generating substrate with a soothing effect) is between 50°C and 200°C, which is lower than the heating temperature range for other aerosol modes (or other aerosol-generating substrates without a soothing effect) (e.g., between 180°C and 250°C). Heating and atomizing at a lower temperature can preserve the activity or flavor of the soothing component in the liquid aerosol-generating substrate and avoid the production of irritants. It is understood that the heating temperature range for the emergency soothing aerosol mode (or aerosol-generating substrate with a soothing effect) can be adjusted based on the optimal release temperature of the soothing component in the aerosol-generating substrate and the user's desired sensory experience.

[0029] In some embodiments, the soothing liquid aerosol-generating base comprises a natural extract containing aromatic ingredients or other non-drugs. Furthermore, to achieve a specific aerosol particle size and optimize the sensory experience, the soothing liquid aerosol-generating base may also include an adjusted VG / PG (vegetable glycerin / propylene glycol) ratio, adjusted water content, and the addition of a small amount of special additives.

[0030] In some embodiments, the heating method further comprises: When the emergency soothing atomization mode is turned on, a mode status signal is output, such as a mode status signal such as an LED color change, an LED flashing, or a screen icon, to inform the user that the emergency soothing atomization mode has been turned on.

[0031] In some embodiments, the heating method further comprises: When a puffing action is detected, a breathing guidance signal is output. This breathing guidance signal is used to guide the user to inhale and exhale at a preset rhythm. For example, the breathing guidance signal is a change in LED brightness, with the LED slowly lighting up during inhalation and slowly turning off during exhalation. The LED brightness change here is only an example and is not intended to limit the present application. Other variations are also possible, such as color gradients or vibrations.

[0032] In some embodiments, such as Figure 3 As shown, under a fixed heating power, the longer the heating time, the more liquid is atomized. Therefore, a heating mode for controlling the heating time is disclosed. This heating mode is relatively intuitive and only requires controlling the timer and switch, as follows: When a puff is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized according to the heating mode of a single puff in the emergency soothing atomization mode, specifically including: When a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode.

[0033] In some embodiments, when a puff is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode, specifically comprising: When a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized and timed. When the heating time reaches the total heating time of a single puff in the emergency soothing atomization mode, the heating and atomization are stopped.

[0034] In some embodiments, when a puff is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode, specifically including: The preset atomization efficiency is the unit liquid volume (or the required liquid volume to be delivered) that can be atomized per unit heating time (or unit power-on time) under a fixed heating power. That is, Y microliters of aerosol-generating matrix can be atomized per X milliseconds of heating (or power-on); Preset the total liquid volume target required to be delivered in a single puff in emergency relief nebulization mode; Based on the total liquid volume target and atomization efficiency required for a single puff in the emergency relief atomization mode, the total heating time for a single puff in the emergency relief atomization mode is calculated.

[0035] In some embodiments, such as Figure 4 As shown, a heating mode for controlling heating pulses is disclosed, which is as follows: When a puff is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized according to the heating mode of a single puff in the emergency soothing atomization mode, specifically including: When a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized by controlling the heating pulse in the emergency soothing atomization mode and the total number of heating pulses in a single puff in the emergency soothing atomization mode.

[0036] In some embodiments, when a puff is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the heating pulse in the emergency soothing atomization mode and the total number of heating pulses per puff in the emergency soothing atomization mode, specifically comprising: When a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is periodically heated according to the heating pulse in the emergency soothing atomization mode (for example, heating for 10 milliseconds every 50 milliseconds using a heating pulse, followed by a pause of 40 milliseconds), and the number of heating pulses issued is calculated. When the number of heating pulses reaches the total number of heating pulses for a single puff in the emergency soothing atomization mode, the heating atomization is stopped.

[0037] In some embodiments, when a puff is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the heating pulse in the emergency soothing atomization mode and the total number of heating pulses per puff in the emergency soothing atomization mode, specifically including: By adjusting the parameters of the heating pulse in emergency soothing atomization mode, the size of the generated aerosol particles can be dynamically adjusted to optimize the sensory experience. The heating pulse parameters include the pulse frequency, duty cycle, and instantaneous power. For example, a faster pulse frequency may produce smaller particles, while a slower pulse frequency may produce larger particles.

[0038] This type of heating pulse control is more flexible and precise, and can optimize taste and heat dissipation because it takes power changes into account, avoids sudden increases and decreases in power or temperature, and pursues a smooth and gentle atomization process to reduce irritation.

[0039] In some embodiments, such as Figure 5 As shown, a heating mode in which heating is linked to actual airflow is disclosed, as follows: When a puff is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized according to the heating mode of a single puff in the emergency soothing atomization mode, specifically including: When a puffing action is detected, the amount of liquid required to be delivered in the emergency soothing atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix with a soothing effect.

[0040] In some embodiments, when a puffing action is detected, the amount of liquid to be delivered in the emergency relief atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix having a soothing effect, specifically comprising: When a puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized, and the inhaled air flow is calculated in real time. The electronic atomization device has a built-in air flow sensor that can monitor the air flow or air flow rate inhaled by the user in real time; Calculate the amount of liquid required to be delivered in emergency relief nebulization mode based on the inhaled air flow; When the amount of liquid delivered reaches the total amount of liquid required to be delivered in a single puff in the emergency relief atomization mode, the heated atomization is stopped.

[0041] In some embodiments, when a puffing action is detected, the amount of liquid to be delivered in the emergency relief atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix having a soothing effect, specifically including: The heating power is dynamically adjusted based on the inhaled air flow rate. For example, when the inhaled air flow rate is less than a first threshold, the heating power is reduced; when the inhaled air flow rate is greater than a second threshold, the heating power is increased, where the second threshold is greater than or equal to the first threshold.

[0042] In some embodiments, the amount of liquid required to be delivered in the emergency relief atomization mode is calculated based on the inhaled air flow, specifically including: The volume of liquid required for emergency relief nebulization mode is calculated based on the relationship between the unit air flow rate inhaled and the unit liquid volume required for delivery in emergency relief nebulization mode, as well as the inhaled air flow rate. The relationship between the unit air flow rate inhaled and the unit liquid volume required for delivery in emergency relief nebulization mode refers to the requirement for Z microliters of liquid aerosol-forming matrix to be delivered for every X liters of air inhaled. The volume of liquid required for each inhalation in emergency relief nebulization mode is preset and precisely controlled, rather than solely dependent on the user's inhalation duration and force.

[0043] The ultimate goal of this heating mode is to ensure that the effective unit liquid volume delivered for each unit air flow inhaled is constant, and the delivered liquid volume does not exceed the total liquid volume target required for a single puff in the emergency relief atomization mode. This can accurately control the actual amount of liquid delivered, avoid over-delivery, reduce the risk of dry burning, and better match the user's inhalation, providing a more natural experience because it takes the user's inhalation behavior into account.

[0044] In some embodiments, the heating method further comprises: Receive parameters and / or instructions sent by the terminal application. Parameters include atomization efficiency, the target total liquid volume delivered per puff in emergency soothing nebulization mode, heating pulse parameters, and the relationship between the unit air flow rate inhaled and the unit liquid volume delivered in emergency soothing nebulization mode. Instructions include whether to output a mode status signal and whether to output a breathing guidance signal.

[0045] In some embodiments, to produce particles of a specific size, it is necessary to precisely control the aerosol concentration and the cooling rate, so the heating method further includes: The heating power (or the temperature of the heating element) and the air flow rate inhaled by the user are monitored in real time, and the size of the generated aerosol particles is dynamically adjusted according to the heating power and the inhaled air flow rate.

[0046] In some embodiments, the size of the generated aerosol particles is dynamically adjusted according to the heating power and the inhaled air flow rate, specifically including: When the inhaled air flow rate is less than the third threshold value (ie, when the air flow rate is slow), the heating power is increased to maintain the aerosol concentration so that the generated aerosol particles grow larger through coalescence.

[0047] Alternatively, when the inhaled air flow rate exceeds a fourth threshold (i.e., a relatively fast air flow rate), the heating power is increased to maintain the aerosol concentration, while the inhaled air flow rate is simultaneously utilized for cooling (i.e., rapid cooling using a relatively fast air flow rate) to reduce the size of the generated aerosol particles. The fourth threshold is greater than or equal to the third threshold.

[0048] Alternatively, when the heating power is less than the fifth threshold, an inhalation enhancement signal is output to prompt the user to increase the inhaled air flow rate to make the generated aerosol particles smaller.

[0049] Alternatively, when the heating power is greater than a sixth threshold, a signal indicating reduced inhalation is output, prompting the user to reduce the inhaled air flow rate so that the generated aerosol particles grow larger through agglomeration. The sixth threshold is greater than or equal to the fifth threshold.

[0050] In some embodiments, the heating method further comprises: Records the use of emergency soothing atomization mode, including usage time and frequency. It can also send the use of emergency soothing atomization mode to the terminal application for user review.

[0051] In some embodiments, the heating method further comprises: Displays the current status of the liquid reservoir, including the remaining liquid volume, the type of liquid aerosol generating substrate, and the expiration date.

[0052] In some embodiments, the heating method further comprises: The emergency relief atomization mode exit signal is detected, the usage time of the emergency relief atomization mode reaches the seventh threshold, or the battery level of the electronic atomization device falls below the eighth threshold, then the emergency relief atomization mode is exited. The emergency relief atomization mode exit signal can also be a key operation, touch operation, or voice input operation on the electronic atomization device by the user, or an exit signal sent by the terminal application.

[0053] like Figure 6 As shown, some embodiments of the present application disclose an electronic atomization device, including: a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the heating method described in any of the above embodiments can be implemented, which will not be described in detail here. For example, the processor is an MCU. The MCU here is only an example and is not intended to limit the present application. Others are also possible.

[0054] In some embodiments, the electronic atomization device further includes an atomizer and a power supply device, wherein the atomizer includes a liquid storage device and an atomizing assembly. During use, the atomizing assembly is connected to the liquid storage device for liquid conduction, and the atomizing assembly absorbs the soothing liquid aerosol from the liquid storage device to generate a matrix. The power supply device supplies power to the atomizing assembly, which is energized and heated, causing the absorbed liquid aerosol to generate atomized matrix. The user inhales through the atomizer's suction port, and air enters the atomizing assembly from the atomizer's air inlet under the action of suction. The air mixes with the atomized aerosol and is discharged from the suction port after passing through the atomizer's air outlet.

[0055] In some embodiments, the electronic atomization device further includes an output indicator for outputting a mode status signal or a breathing guidance signal.

[0056] In some embodiments, the electronic atomization device further includes a timer provided on the atomizer for calculating the heating time.

[0057] In some embodiments, the electronic atomization device further includes an airflow sensor provided on the atomizer for monitoring the air flow or air flow rate inhaled by the user in real time.

[0058] In some embodiments, the atomizer assembly of the electronic atomizer device includes multiple heating elements with different heating characteristics or different airflow channel diameters. For example, one element produces a high-concentration aerosol, while another element produces a small number of condensation nuclei at a lower temperature. By switching or combining these elements, the size of the aerosol particles can be controlled.

[0059] It is understandable that the above embodiments only express some of the implementation methods of the present application, and the description thereof is relatively specific and detailed, but it cannot be understood as limiting the scope of the patent of the present application. It should be pointed out that for ordinary technicians in this field, without departing from the concept of the present application, the above embodiments or technical features can be freely combined, and several deformations and improvements can be made, which all fall within the scope of protection of the present application, that is, the embodiments described in "some embodiments" can be freely combined with any of the above and below embodiments. Therefore, all equivalent transformations and modifications made to the scope of the claims of the present application should fall within the scope of coverage of the claims of the present application.

Claims

1. A heating method, applied to an electronic atomization device, characterized in that: The heating method comprises the following steps: Turning on the emergency relief atomization mode according to the detected trigger signal of the emergency relief atomization mode; When a puffing action is detected, the liquid aerosol-generating matrix having a soothing effect is heated and atomized according to the heating mode of a single puff in the emergency soothing atomization mode.

2. The heating method according to claim 1, characterized in that When a puffing action is detected, the liquid aerosol-generating matrix having a soothing effect is heated and atomized according to the heating mode of a single puff in the emergency soothing atomization mode, including: When the puffing action is detected, the liquid aerosol-generating matrix having a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode; Alternatively, when the puffing action is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the heating pulse in the emergency soothing atomization mode and the total number of heating pulses in a single puff in the emergency soothing atomization mode; Alternatively, when the puffing action is detected, the amount of liquid required to be delivered in the emergency relief atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix with a soothing effect.

3. The heating method according to claim 2, characterized in that When the puffing action is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode, comprising: When the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized and timed. When the heating time reaches the total heating time of a single puff in the emergency soothing atomization mode, the heating and atomization is stopped.

4. The heating method according to claim 3, characterized in that When the puffing action is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the total heating time of a single puff in the emergency soothing atomization mode, further comprising: Preset atomization efficiency, which is the unit amount of liquid that can be atomized within a unit heating time at a fixed heating power; Presetting a target total liquid volume required to be delivered in a single puff in the emergency relief atomization mode; The total heating time for a single puff in the emergency relief atomization mode is calculated based on the total liquid volume target required to be delivered in a single puff in the emergency relief atomization mode and the atomization efficiency.

5. The heating method according to claim 2, characterized in that When the puffing action is detected, the liquid aerosol-generating substrate having a soothing effect is heated and atomized by controlling the heating pulse in the emergency soothing atomization mode and the total number of heating pulses in a single puff in the emergency soothing atomization mode, comprising: When the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is periodically heated according to the heating pulses in the emergency soothing atomization mode, and the number of heating pulses issued is calculated. When the number of heating pulses reaches the total number of heating pulses for a single puff in the emergency soothing atomization mode, the heating atomization is stopped.

6. The heating method according to claim 2, characterized in that When the puffing action is detected, the amount of liquid required to be delivered in the emergency relief atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix having a soothing effect, comprising: When the puffing action is detected, the liquid aerosol-generating matrix with a soothing effect is heated and atomized and the inhaled air flow rate is calculated in real time; Calculating the amount of liquid required to be delivered in the emergency relief atomization mode according to the inhaled air flow rate; When the amount of liquid delivered reaches the total amount of liquid required to be delivered in a single puff in the emergency relief atomization mode, heating atomization is stopped.

7. The heating method according to claim 6, characterized in that When the puffing action is detected, the amount of liquid required to be delivered in the emergency relief atomization mode is controlled by coordinating the inhaled air flow rate to heat and atomize the liquid aerosol-generating matrix with a soothing effect, further comprising: The heating power is dynamically adjusted according to the inhaled air flow rate.

8. The heating method according to claim 7, characterized in that Dynamically adjusting the heating power according to the inhaled air flow rate, including: When the inhaled air flow rate is less than a first threshold, the heating power is reduced; when the inhaled air flow rate is greater than the first threshold, the heating power is increased.

9. The heating method according to claim 1, wherein: According to the detected trigger signal of the emergency relief atomization mode, the emergency relief atomization mode is turned on, including: After detecting the trigger signal of the emergency relief atomization mode, it is determined whether the information of the liquid storage device and / or the state of the electronic atomization device meets the preset conditions. If so, the emergency relief atomization mode is turned on.

10. An electronic atomization device, characterized in that: include: A memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor can implement the heating method according to any one of claims 1 to 9 when executing the computer program.