Atomization equipment control method and device and atomization equipment

By using temperature sensors and tactile sensors to monitor user information in multi-flavor atomization equipment, and automatically adjusting the atomization power of the atomization chamber, the problem of cumbersome operation of existing equipment is solved, and a more flexible and efficient multi-flavor mixing effect is achieved.

CN119949579APending Publication Date: 2025-05-09HG INNOVATION LTD
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Patent Information

Application Number
CN202411907299.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-05-09

AI Technical Summary

Technical Problem

The existing multi-flavor atomization equipment is cumbersome to operate, and cannot flexibly cope with different usage environments, making it difficult to meet user needs.

Method used

Temperature sensors and tactile sensors are used to monitor the user's lip temperature and interface touch information in real time, and control instructions are generated based on these information, and the atomization power of the atomization chamber is automatically adjusted.

Benefits of technology

The multi-flavor mixing effect of the atomization device is synchronized with the user's usage actions, simplifying the operation process, improving the user experience, and enhancing the stability of the device's operation.

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Abstract

The invention provides an atomization equipment control method and device and atomization equipment, the atomization equipment comprises at least two atomization bins, a temperature sensor and a touch sensor are embedded in a connector of the atomization equipment, and the method comprises the steps that all the atomization bins are controlled to be started at preset atomization power; under the condition that the lip temperature information of the user is obtained through the temperature sensor, a first control instruction is generated according to the change condition of the lip temperature information of the user, and the atomization power of each atomization bin is adjusted through the first control instruction; and under the condition that touch information of the interface is obtained through the touch sensor, a second control instruction is generated according to the change condition of the touch information, and the atomization power of each atomization bin is adjusted through the second control instruction. The multi-taste mixing control of the atomization equipment can be realized in a simpler and more flexible manner.
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Description

Technical Field

[0001] The embodiments of the present application relate to the field of electronic atomization technology, and in particular to an atomization device control method, device and atomization device. Background Art

[0002] Atomization equipment is used to convert atomization matrix into aerosol for users to inhale. In order to enhance the user experience, multi-flavor atomization equipment came into being.

[0003] In the related art, multi-flavor atomization equipment uses multiple atomization chambers, each of which is loaded with a different atomization matrix. The user manually operates a physical button or touches the screen to trigger the opening and closing of each atomization chamber, so that the aerosols generated by the different atomization matrices are mixed with each other, thereby achieving a multi-flavor effect.

[0004] However, manually operating physical buttons or touch screens is cumbersome and inflexible, and the triggering conditions of each atomization chamber are generally preset and single, which cannot cope with different usage environments and is difficult to meet user needs. Summary of the invention

[0005] In view of the above problems, the embodiments of the present application propose an atomization device control method, device and atomization device to overcome the above problems or at least partially solve the above problems.

[0006] The present application provides a method for controlling an atomization device, wherein the atomization device comprises at least two atomization bins, a temperature sensor and a touch sensor are embedded at the interface of the atomization device, and the method comprises: controlling all the atomization bins to start at a preset atomization power;

[0007] In the case of obtaining the user's lip temperature information through the temperature sensor, generating a first control instruction according to the change of the user's lip temperature information, and adjusting the atomization power of each atomization bin through the first control instruction;

[0008] In the case where the touch information of the interface is acquired through the touch sensor, a second control instruction is generated according to the change of the touch information, and the atomization power of each atomization bin is adjusted through the second control instruction.

[0009] In one embodiment, the atomization bin includes: a main atomization bin and at least one auxiliary atomization bin, the main atomization bin is used to output a main flavor aerosol, the auxiliary atomization bin is used to output an auxiliary taste aerosol, each of the auxiliary atomization bins is configured with a weight, and the auxiliary atomization bins have a sorting sequence according to the weight; the atomization power of each atomization bin is adjusted by the first control instruction, including:

[0010] The atomization power of the main atomization chamber is adjusted by the first control instruction, and the atomization power of the auxiliary atomization chamber is adjusted in sequence according to the order in the sorting sequence.

[0011] In one embodiment, the adjusting the atomization power of the main atomization chamber by the first control instruction and adjusting the atomization power of the auxiliary atomization chamber in sequence according to the order in the sorting sequence include:

[0012] When the user lip temperature information indicates that the user lip temperature rises, controlling the atomization power of the main atomization chamber to decrease, and controlling the atomization power of the auxiliary atomization chambers in the sorting sequence to increase in sequence;

[0013] When the user lip temperature information indicates that the user lip temperature has dropped, the atomization power of the main atomization chamber is controlled to increase, and the atomization power of the auxiliary atomization chambers in the sorting sequence is controlled to decrease in sequence.

[0014] In one embodiment, the step of adjusting the atomization power of the auxiliary atomization chamber in sequence according to the order in the sorting sequence comprises:

[0015] When the rate of change of the user's lip temperature within the period represented by the user's lip temperature information increases, sequentially controlling the atomization rates of the auxiliary atomization bins in the sorting sequence to speed up;

[0016] When the rate of change of the user's lip temperature within the period represented by the user's lip temperature information decreases, the atomization rates of the auxiliary atomization bins in the sorting sequence are controlled to slow down in sequence.

[0017] In one embodiment, the user lip temperature includes an initial user lip temperature, and the initial user lip temperature refers to the user lip temperature obtained when the atomizing device is started; the method further includes:

[0018] When simultaneously acquiring the user lip temperature information through the temperature sensor and acquiring the touch information of the interface through the touch sensor, acquiring the difference between the current user lip temperature and the initial user lip temperature;

[0019] When the difference is less than or equal to the set threshold, the step of generating a first control instruction according to the change of the user's lip temperature information and adjusting the atomization power of each atomization bin by the first control instruction is entered;

[0020] When the difference is greater than the set threshold, the step of generating a second control instruction according to the change of the tactile information and adjusting the atomization power of each atomization bin by the second control instruction is entered.

[0021] In one embodiment, the touch sensor includes a first spring sheet and a second spring sheet, the first spring sheet and the second spring sheet form an equivalent capacitance structure, and the touch information includes a capacitance value of the equivalent capacitance structure; and acquiring the touch information of the interface through the touch sensor includes:

[0022] The distance between the first spring sheet and the second spring sheet is obtained, and the capacitance value of the equivalent capacitance structure currently formed by the first spring sheet and the second spring sheet is obtained according to the distance.

[0023] In one embodiment, the atomization bin includes: a main atomization bin and at least one auxiliary atomization bin, the main atomization bin is used to output a main flavor aerosol, the auxiliary atomization bin is used to output an auxiliary taste aerosol, each of the auxiliary atomization bins is configured with a weight, and the auxiliary atomization bins have a sorting sequence according to the weight; the atomization power of each atomization bin is adjusted according to the second control instruction, including:

[0024] The atomization power of the main atomization chamber is adjusted by the second control instruction, and the direction of change of the atomization power of the main atomization chamber is consistent with the direction of change of the capacitance value in the tactile information. At the same time, the atomization power of the auxiliary atomization chamber is adjusted in sequence according to the order in the sorting sequence, and the direction of change of the atomization power of the auxiliary atomization chamber is consistent with the direction of change of the capacitance value in the tactile information.

[0025] In one embodiment, the touch sensor includes a first spring sheet and a second spring sheet, and the controlling all the atomization bins to start with a preset atomization power includes:

[0026] When the touch sensor detects that the user's lips are in contact with the first elastic sheet and the second elastic sheet of the touch sensor at the same time, all the atomization bins are controlled to start with a preset atomization power.

[0027] The present application provides an atomization device control device, the atomization device control device comprising:

[0028] Starting module: used to control all the atomization bins to start with a preset atomization power;

[0029] A first processing module: used for generating a first control instruction according to a change in the user's lip temperature information when the user's lip temperature information is obtained through a temperature sensor, and adjusting the atomization power of each atomization bin through the first control instruction;

[0030] The second processing module is used to generate a second control instruction according to the change of the touch information obtained by the touch sensor, and adjust the atomization power of each atomization bin through the second control instruction.

[0031] The present application provides an atomization device, the atomization device comprising: a memory and a processor, the memory storing a computer program, and when the computer program is executed by the processor, any one of the atomization device control methods described above is executed.

[0032] The atomization device control method provided in the embodiment of the present application, after the multiple atomization chambers of the atomization device are started with a preset atomization power, detects lip temperature information through a temperature sensor at the interface of the atomization device, or detects tactile information through a tactile sensor, and adjusts the atomization power of each atomization chamber according to the lip temperature information or tactile information, so that the atomization power adjustment process of the atomization chamber is adapted to the user's usage action, avoiding the user's manual operation of physical buttons or touch screens, and realizing the multi-flavor mixing effect of the atomization device in a simpler and more flexible manner. At the same time, the method also realizes the adjustment of the atomization power control strategy of the atomization chamber in different ways. On the one hand, different ways can trigger the adjustment of the atomization power control strategy of the atomization chamber, thereby increasing the stability of the operation of the atomization device. On the other hand, different atomization chambers can each output an aerosol that meets the expectations based on the adjusted atomization power control strategy, so that the mixed aerosol better meets the needs of the user. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 is a flow chart of a method for controlling an atomization device provided in an embodiment of the present application;

[0034] Figure 2 This is a flow chart of another atomization device control method provided in an embodiment of the present application.

[0035] Figure 3a It is a structural schematic diagram of an atomization device provided in an embodiment of the present application;

[0036] Figure 3b is another structural schematic diagram of the atomization device provided in an embodiment of the present application;

[0037] Figure 4 This is a schematic diagram of the control principle of an atomization device provided in an embodiment of the present application;

[0038] Figure 5 It is a schematic diagram of a control strategy of an atomization device provided in an embodiment of the present application;

[0039] Figure 6 is a block diagram of an atomization device control device provided in an embodiment of the present application;

[0040] Figure 7 is a block diagram of an atomization device provided in an embodiment of the present application;

[0041] Figure 8It is a block diagram of another atomization device provided in an embodiment of the present application.

[0042] Among them, 31 is an interface, 32 is a touch sensor, 33 is a temperature sensor, 34 is a control mainboard, 35 is an atomization chamber, 321 is a first spring piece, and 322 is a second spring piece. DETAILED DESCRIPTION

[0043] The present application is further described in detail below in conjunction with the accompanying drawings and examples. It is particularly noted that the following examples are only used to illustrate the present application, but are not intended to limit the scope of the present application. Similarly, the following examples are only some embodiments of the present application rather than all embodiments, and all other embodiments obtained by ordinary technicians in the field without making creative work are within the scope of protection of the present application.

[0044] Reference to an "embodiment" herein means that a particular feature, structure, or characteristic described in conjunction with the embodiment is included in at least one embodiment of the present application. The appearance of the phrase in various places in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein are combined with other embodiments.

[0045] It should be noted that the terms "first", "second" and "third" in this application are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of indicated technical features. Thus, the features defined as "first", "second" and "third" explicitly or implicitly include at least one of the features. In the description of this application, the meaning of "multiple" is at least two, such as two, three, etc., unless otherwise clearly and specifically defined. In the embodiments of this application, all directional indications (such as up, down, left, right, front, back...) are only used to explain the relative position relationship, movement, etc. between the components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication also changes accordingly. In addition, the terms "including" and "having" and any of their variations are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device that includes a series of steps or units is not limited to the listed steps or units, but optionally also includes steps or units that are not listed, or optionally also includes other steps or units inherent to these processes, methods, products or devices.

[0046] refer to Figure 1 , which shows a flow chart of a method for controlling an atomization device provided in an embodiment of the present application, wherein the atomization device includes at least two atomization bins, and a temperature sensor and a touch sensor are embedded at the interface of the atomization device, and the method includes:

[0047] Step 101: Control all the atomization chambers to start with a preset atomization power.

[0048] In the embodiment of the present application, when the atomization device is started, all the atomization bins will be started with a preset atomization power and maintained in the power state. The preset atomization power represents the minimum atomization power value of the atomization bin when the atomization device can operate normally. In some embodiments, after the atomization bin is started with the preset atomization power, the atomization bin can just convert the atomization matrix carried by itself into an aerosol, and the aerosol generated by the conversion can be mixed to the minimum extent, and the atomization bin will maintain a low energy consumption; by starting all the atomization bins and maintaining the atomization bins at the preset atomization power, the atomization device can be placed in a startup state. In the startup state, the atomization device can achieve the initial mixing of different aerosols with low energy consumption, achieve the most basic flavor mixing effect, and provide users with a basic suction experience. At the same time, in the startup state, the atomization device no longer needs to execute the relevant control logic of opening or closing the atomization bin, and can achieve the expected aerosol mixing effect faster, improving the user experience.

[0049] Step 102: When the temperature information of the user's lips is obtained through the temperature sensor, a first control instruction is generated according to a change in the temperature information of the user's lips, and the atomization power of each atomization bin is adjusted through the first control instruction.

[0050] In the atomization device control method provided in the embodiment of the present application, the atomization power of the atomization bin is adjusted so that the desired atomization bin achieves the best aerosol conversion effect, and the mixed aerosol further satisfies the user's suction needs, so that the atomization device achieves the expected flavor mixing effect. The atomization device control method provided in the embodiment of the present application can trigger the adjustment of the atomization power of the atomization bin through a temperature sensor; the temperature sensor is embedded in the interface of the atomization device. When the user uses the atomization device, the user will hold the interface of the atomization device, and the user's lips will contact the temperature sensor. The temperature sensor can obtain the user's lip temperature information. During the user's use of the atomization device, the user's lip temperature information changes. According to the change of the user's lip temperature information, the atomization device will generate a first control instruction, and the first control instruction is used to adjust the atomization power of each atomization bin. Through the temperature sensor and the user's lip temperature information obtained by the temperature sensor, the atomization power of the atomization bin is finally adjusted. This process is adapted to the process of the user using the atomization device, especially synchronized with the user's suction action, avoiding the cumbersome operation and poor user experience caused by the user manually operating the physical buttons or touch screen.

[0051] Step 103: When the touch information of the interface is acquired through the touch sensor, a second control instruction is generated according to a change in the touch information, and the atomization power of each atomization bin is adjusted through the second control instruction.

[0052] The atomization device control method provided in the embodiment of the present application can also trigger the adjustment of the atomization power of the atomization bin through a touch sensor; the touch sensor is embedded in the interface of the atomization device. When the user uses the atomization device, he will hold the interface of the atomization device and make his lips act on the touch sensor. Thus, the touch sensor can obtain the touch information of the user's lips on the interface. During the user's use of the atomization device, the touch information changes. According to the change of the touch information, the atomization device will generate a second control instruction, and the second control instruction can also be used to adjust the atomization power of each atomization bin. The atomization power of the atomization bin is finally adjusted through the touch sensor and the touch information obtained by the touch sensor. Similarly, this process is adapted to the process of the user using the atomization device, especially synchronized with the user's suction action, avoiding the cumbersome operation and poor user experience caused by the user manually operating the physical buttons or touch screen.

[0053] In summary, in the embodiments of the present application, after multiple atomization chambers of the atomization device are started with a preset atomization power, the lip temperature information is detected by a temperature sensor at the interface of the atomization device, or the tactile information is detected by a tactile sensor, and the atomization power of each atomization chamber is adjusted according to the lip temperature information or the tactile information, so that the atomization power adjustment process of the atomization chamber is adapted to the user's usage actions, avoiding the user's manual operation of physical buttons or touch screens, and achieving the multi-flavor mixing effect of the atomization device in a simpler and more flexible manner. At the same time, the method also realizes the adjustment of the atomization power control strategy of the atomization chamber in different ways. On the one hand, different ways can trigger the adjustment of the atomization power control strategy of the atomization chamber, thereby increasing the stability of the operation of the atomization device. On the other hand, different atomization chambers can each output an aerosol that meets the expectations based on the adjusted atomization power control strategy, so that the mixed aerosol better meets the needs of the user.

[0054] refer to Figure 2 , is a flow chart of another atomization device control method provided in an embodiment of the present application, wherein the atomization device comprises at least two atomization bins, a temperature sensor and a touch sensor are embedded at the interface of the atomization device, and the atomization device control method comprises:

[0055] Step 201: Control all the atomization chambers to start with a preset atomization power.

[0056] This step may refer to the above step 101 and will not be described in detail here.

[0057] refer to Figure 3a and Figure 3b , are two structural schematic diagrams of atomization devices provided in the embodiments of the present application. In some embodiments, such as Figure 3a As shown, the temperature sensor 33 and the touch sensor 32 can be embedded in the interface 31 of the atomizing device. In this case, the temperature sensor 33 can obtain the temperature information of the user's lips by holding the mouthpiece with the user's lips; in some embodiments, such as Figure 3b As shown, the temperature sensor 33 can be embedded in the shoulder of the atomizing device, and the touch sensor is embedded in the interface 31 of the atomizing device. Figure 3b In the embodiment shown, the interface 31 can be removed from the atomizing device for replacement. At this time, the temperature sensor 33 can obtain the user's lip temperature information or the ambient temperature information by abutting the shoulder of the atomizing device with the outside of the user's lips. Figure 3b In the illustrated embodiment, the temperature sensor 33 is embedded in the shoulder of the atomizing device, which can ensure that the temperature sensor 33 works independently of the interface 31, thereby preventing the aerosol generated by the atomizing matrix from directly adhering to the temperature sensor 33 when inhaled by the user, thereby affecting the measurement accuracy of the temperature sensor 33.

[0058] Optionally, the touch sensor includes a first spring sheet and a second spring sheet, and step 201 may include:

[0059] Sub-step 2011: when the touch sensor detects that the user's lips are in contact with the first elastic sheet and the second elastic sheet of the touch sensor at the same time, control all the atomization bins to start with a preset atomization power.

[0060] refer to Figure 3a and Figure 3b In some embodiments, the first spring piece 321 and the second spring piece 322 in the touch sensor 32 at the interface 31 can be brought into contact with the user's lips, and when the touch sensor 32 detects that the user's lips are in contact with the first spring piece 321 and the second spring piece 322 at the same time, the atomization bin 35 in the atomization device is started by controlling the microcontroller unit (MCU) on the main board 34; that is, when the atomization device has not been started, the first spring piece 321 and the second spring piece 322 are in contact with the user's lips at the same time, and at this time the touch sensor 32 will send a signal to the MCU of the atomization device, and through the signal, the MCU will start the atomization bin 35 in the atomization device with a preset atomization power.

[0061] The preset atomization power represents the minimum atomization power value of the atomization chamber when the atomization device can operate normally. When the atomization chamber is started with the preset atomization power, the atomization chamber will generate less aerosol with lower power consumption. The generated aerosol is mixed at the interface of the atomization device for the user to use, achieving a preliminary flavor mixing effect. Since the tactile sensor is in the form of a first spring and a second spring, when the user's upper and lower lips touch the tactile sensor at the same time, the MCU will be triggered to start the atomization chamber of the atomization device, so that the atomization device startup process is synchronized with the user's lip movement when using the atomization device, reducing the waiting time when the user uses the atomization device, while avoiding the self-starting problem caused by accidental touch, ensuring the stability and reliability of the atomization device.

[0062] Step 202: When the temperature information of the user's lips is obtained through the temperature sensor, a first control instruction is generated according to a change in the temperature information of the user's lips.

[0063] In some embodiments, the atomization device triggers the atomization power control of the atomization chamber through a temperature sensor; the temperature sensor is embedded in the interface of the atomization device. When the user uses the atomization device, the user holds the interface of the atomization device, so that the user's lips contact the temperature sensor. The temperature sensor can obtain the user's lip temperature information. In the process of the user using the atomization device, because the user's lips contact the external environment, and the aerosol in the atomization chamber reaches the user's lips and exchanges heat with the lips, the user's lip temperature information will change. According to the change of the user's lip temperature information, the atomization device will generate a first control instruction, and the first control instruction will be further used to control the atomization power of each atomization chamber.

[0064] The atomization chamber includes: a main atomization chamber and at least one auxiliary atomization chamber, the main atomization chamber is used to output aerosol of main flavor, and the auxiliary atomization chamber is used to output aerosol of auxiliary taste, each of the auxiliary atomization chambers is configured with a weight, and the auxiliary atomization chambers have a sorting sequence according to the weight.

[0065] In some embodiments, the atomization chamber can be divided into a main atomization chamber and a sub-atomization chamber. There can be one atomization chamber and two or more sub-atomization chambers. The main atomization chamber is used to output aerosols with a main flavor. When a user uses the atomization device, the aerosol with a main flavor provides the user with more aerosols, which determines the main flavor of the mixed aerosol inhaled. The sub-atomization chamber is used to output auxiliary taste aerosols. The auxiliary taste aerosols may include auxiliary ice aerosols, auxiliary sour aerosols, auxiliary sweet aerosols, auxiliary bitter aerosols, etc. When a user uses the atomization device, the auxiliary taste aerosols are output according to demand and mixed with the main flavor aerosols to obtain the expected mixed aerosol, thereby achieving the expected multi-flavor mixing effect.

[0066] In some embodiments, different weights can be configured for each auxiliary atomization chamber, and the auxiliary atomization chambers are sorted in descending order of weight to obtain a sorting sequence; the sorting sequence represents the order in which the atomization device adjusts the atomization power of the auxiliary atomization chamber; for example: in one embodiment, the atomization device includes three auxiliary atomization chambers X, Y, and Z, wherein the weight of the auxiliary atomization chamber X is configured to be 0.2, the weight of the auxiliary atomization chamber Y is configured to be 0.5, and the weight of the auxiliary atomization chamber Z is configured to be 0.3, then the sorting sequence is: 1.Y, 2.Z, 3.X.

[0067] For different usage scenarios, the weight of the auxiliary atomization bin can be dynamically adjusted to obtain different sorting sequences; for example: in one embodiment, the weight of the auxiliary atomization bin that outputs auxiliary icy aerosol can be increased so that the auxiliary atomization bin that outputs auxiliary icy aerosol is closer to the front in the sorting sequence. When the atomization power of the auxiliary atomization bin is adjusted, the adjustment of the auxiliary atomization bin that outputs auxiliary icy aerosol will be performed earlier. Under relatively hot environmental conditions, the adjustment of the auxiliary atomization bin that outputs auxiliary icy aerosol will be performed earlier, which can enable users to obtain a cool taste earlier and improve the user experience.

[0068] Step 203: adjusting the atomization power of the main atomization chamber through the first control instruction, and adjusting the atomization power of the auxiliary atomization chamber in sequence according to the order in the sorting sequence.

[0069] In some embodiments, the main atomization chamber and the auxiliary atomization chamber respectively carry different atomization matrices and output different aerosols. Among the multiple auxiliary atomization chambers, each carries a different atomization matrix and outputs a different aerosol. In the atomization equipment control method provided in the embodiment of the present application, while adjusting the atomization power of the main atomization chamber, the auxiliary atomization chambers can be adjusted in sequence according to the sorting sequence of the auxiliary atomization chambers.

[0070] For example, in one embodiment, the atomization device includes three auxiliary atomization chambers X, Y, and Z, and the order is 1.Y, 2.Z, 3.X. When executing step 203, the auxiliary atomization chamber Y is adjusted first, the auxiliary atomization chamber Z is adjusted secondly, and the auxiliary atomization chamber X is adjusted last.

[0071] Optionally, step 203 may include:

[0072] Sub-step 2031: when the user lip temperature information indicates that the user lip temperature has risen, the atomization power of the main atomization chamber is controlled to decrease, and the atomization power of the auxiliary atomization chambers in the sorting sequence is controlled to increase in sequence.

[0073] Sub-step 2032: when the user lip temperature information indicates that the user lip temperature has dropped, controlling the atomization power of the main atomization chamber to increase, and controlling the atomization power of the auxiliary atomization chambers in the sorting sequence to decrease in sequence.

[0074] When the atomization power of the atomization chamber is adjusted according to the lip temperature information, the direction of change of the atomization power of the main atomization chamber and the auxiliary atomization chamber is adjusted according to the direction of change of the lip temperature information. In some embodiments, the user's lips contact the temperature sensor when using the atomization device, and the aerosol generated by the atomization chamber exchanges heat with the user's lips. At the same time, the user's environment may change, causing the lips in contact with the external environment to exchange heat with the external environment. The above heat exchange process will cause the user's lip temperature information to change, and the change is obtained by the temperature sensor. The atomization device adjusts the atomization power of the main atomization chamber and the auxiliary atomization chamber according to the change of the user's lip temperature information.

[0075] Step 204: adjusting the atomization rate of the auxiliary atomization chamber through a first control instruction.

[0076] Users have different ways of using or habits of using atomization devices, including the speed of inhaling aerosols, such as rapidly inhaling the aerosols produced by the atomization device or slowly inhaling the aerosols produced by the atomization device. In some embodiments, the speed of inhaling aerosols can be represented by the rate of change of the user's lip temperature in the user's lip temperature information; in some embodiments, when the user rapidly inhales the aerosols produced by the atomization device, the aerosol flow rate increases, the aerosol reaching the user's lips in adjacent cycles increases, and the frequency of heat exchange between the aerosol and the lips increases, which increases the rate of change of the user's lip temperature acquired by the temperature sensor in adjacent cycles; in some embodiments, when the user slowly inhales the aerosols produced by the atomization device, the aerosol flow rate decreases, the aerosol reaching the user's lips in adjacent cycles decreases, and the frequency of heat exchange between the aerosol and the lips decreases, which increases the rate of change of the user's lip temperature acquired by the temperature sensor in adjacent cycles. The rate of change of the user's lip temperature obtained by the temperature sensor in adjacent cycles is reduced; therefore, the atomization device can obtain the urgency of the user's inhalation of aerosol by obtaining the rate of change of the user's lip temperature within the cycle time, and make corresponding adjustments to the atomization rate of the auxiliary atomization chamber accordingly. The atomization rate characterizes the speed at which the atomization chamber reaches the target atomization power, and reflects the speed of the auxiliary atomization chamber's intervention in the user's use of the atomization device process. If the atomization rate is accelerated, the degree of intervention of the auxiliary atomization chamber in the user's use of the atomization device process will be accelerated, and if the atomization rate is slowed down, the degree of intervention of the auxiliary atomization chamber in the user's use of the atomization device process will be slowed down; for example: in one embodiment, the initial atomization power of the atomization chamber is W1, and the atomization power of the atomization chamber increases to the target atomization power W2 within the time period T1, then the atomization rate of the atomization chamber is (W2-W1) / T1.

[0077] Optionally, step 204 may include:

[0078] Sub-step 2041: when the rate of change of the user's lip temperature within the period represented by the user's lip temperature information increases, sequentially controlling the atomization rates of the auxiliary atomization bins in the sorting sequence to speed up.

[0079] Sub-step 2042: when the rate of change of the user's lip temperature within the period represented by the user's lip temperature information decreases, control the atomization rates of the auxiliary atomization chambers in the sorting sequence to slow down in sequence.

[0080] It can be understood that step 203 includes sub-step 2031 and sub-step 2032, that is, step 203 includes two control strategies, step 204 includes sub-step 2041 and sub-step 2042, that is, step 204 also includes two control strategies, and step 204 and step 203 are performed simultaneously, so the following 2×2=4 different control strategies can be obtained:

[0081] 1) When the user lip temperature information indicates that the user lip temperature rises, the atomization power of the main atomization chamber is controlled to decrease, and the atomization power of the auxiliary atomization chambers in the sorting sequence is controlled to increase in sequence; when the user lip temperature information indicates that the rate of change of the user lip temperature within the cycle time increases, the atomization rate of the auxiliary atomization chambers in the sorting sequence is controlled to increase in sequence.

[0082] 2) When the user lip temperature information indicates that the user lip temperature rises, the atomization power of the main atomization chamber is controlled to decrease, and the atomization power of the auxiliary atomization chambers in the sorting sequence is controlled to increase in sequence; when the user lip temperature information indicates that the rate of change of the user lip temperature within the cycle time decreases, the atomization rate of the auxiliary atomization chambers in the sorting sequence is controlled to slow down in sequence;

[0083] 3) When the user lip temperature information indicates that the user lip temperature decreases, the atomization power of the main atomization chamber is controlled to increase, and the atomization power of the auxiliary atomization chambers in the sorting sequence is controlled to decrease in sequence; when the user lip temperature information indicates that the rate of change of the user lip temperature within the cycle time increases, the atomization rate of the auxiliary atomization chambers in the sorting sequence is controlled to increase in sequence;

[0084] 4) When the user lip temperature information indicates that the user lip temperature has dropped, the atomization power of the main atomization chamber is controlled to increase, and the atomization power of the auxiliary atomization chambers in the sorting sequence is controlled to decrease in sequence; when the user lip temperature information indicates that the rate of change of the user lip temperature within the period time has decreased, the atomization rate of the auxiliary atomization chambers in the sorting sequence is controlled to slow down in sequence.

[0085] For example: Figure 4 This is a schematic diagram of the control principle of an atomization device provided in an embodiment of the present application, with reference to Figure 4 The atomization chamber of the atomization device includes a main atomization chamber Z, whose atomization power is Pz. The atomization device also includes auxiliary atomization chambers A, B, C, and D, whose corresponding atomization powers are Pa, Pb, Pc, and Pd, respectively, and whose corresponding atomization rates are Va, Vb, Vc, and Vd, respectively. The obtained sorting sequence is 1.A, 2.B, 3.C, and 4.D. When the user inhales, the temperature change information of the user's lips is obtained through the interface temperature detection, that is, the temperature sensor buried in the interface obtains the temperature value of the user's lips. The temperature value of the user's lips is T, and the rate of change of the temperature value of the user's lips is K. Then, through the MCU calculation and control output of the atomization device, there is the following control strategy:

[0086] 1) When T and K become larger, Pz decreases, Pa, Pb, Pc, and Pd increase in turn, and Va, Vb, Vc, and Vd accelerate in turn;

[0087] 2) When T increases and K decreases, Pz decreases, Pa, Pb, Pc, and Pd increase in turn, and Va, Vb, Vc, and Vd slow down in turn;

[0088] 3) When T decreases and K increases, Pz increases, Pa, Pb, Pc, and Pd decrease in turn, and Va, Vb, Vc, and Vd increase in turn;

[0089] 4) When T becomes smaller and K becomes smaller, Pz increases, Pa, Pb, Pc, and Pd decrease successively, and Va, Vb, Vc, and Vd slow down successively.

[0090] Step 205: When the touch information of the interface is acquired through the touch sensor, a second control instruction is generated according to a change in the touch information.

[0091] In some embodiments, the atomization device triggers the atomization power control of the atomization bin through a touch sensor; the touch sensor is buried in the interface of the atomization device. When the user uses the atomization device, the user holds the interface of the atomization device, and the user's lips therefore contact the touch sensor. Tactile information of the interface can be obtained through the touch sensor. During the process of the user using the atomization device, the user's lips will change according to the different ways in which the user uses the atomization device, so the tactile information of the interface will change accordingly. According to the change of the tactile information, the atomization device will generate a second control instruction, and the second control instruction will be further used to control the atomization power of each atomization bin.

[0092] Optionally, the touch sensor includes a first spring sheet and a second spring sheet, the first spring sheet and the second spring sheet form an equivalent capacitance structure, the touch information includes a capacitance value of the equivalent capacitance structure, and step 205 may include:

[0093] Sub-step 2051: obtaining a distance between the first spring sheet and the second spring sheet, and obtaining a capacitance value of an equivalent capacitance structure currently formed by the first spring sheet and the second spring sheet according to the distance.

[0094] In some embodiments, the touch sensor can be in the form of a first spring clip and a second spring clip, the first spring clip and the second spring clip correspond to the user's lips one by one, the first spring clip and the second spring clip form an equivalent capacitor structure, the first spring clip and the second spring clip are equivalent to the plates in the equivalent capacitor structure, and the capacitance value of the equivalent capacitor structure can be determined according to the distance between the first spring clip and the second spring clip, and the touch information includes the capacitance value of the equivalent capacitor structure; when the user's lips contact the first spring clip and the second spring clip, and change due to the use of the atomization device, the distance between the first spring clip and the second spring clip will change, and the capacitance value of the equivalent parallel plate capacitor structure will change accordingly, then the touch information changes, and the touch sensor transmits the change to the MCU of the atomization device, and the MCU of the atomization device generates a second control instruction based on the change information of the touch information.

[0095] Optionally, the touch sensor includes a first spring sheet and a second spring sheet, the lips of the user may include a first lip and a second lip, the first spring sheet and the first lip form a first equivalent capacitance structure, the second spring sheet and the second lip form a second equivalent capacitance structure, the touch information may include a capacitance value of the first equivalent capacitance structure and a capacitance value of the second equivalent capacitance structure, and step 206 may include:

[0096] Sub-step 2052, obtaining the capacitance value of the current first equivalent capacitance structure and the capacitance value of the second equivalent capacitance structure, and generating a second control instruction according to the change of the sum of the capacitance value of the first equivalent capacitance structure and the capacitance value of the second equivalent capacitance structure.

[0097] In some embodiments, the touch sensor can use the form of a first spring sheet and a second spring sheet, and the first spring sheet and the second spring sheet and the user's first lip and the user's second lip correspond one to one. When the user's first lip contacts the first spring sheet and the user's second lip contacts the second spring sheet, the first spring sheet and the first lip form a first equivalent capacitor structure, and the second spring sheet and the user's second lip form a second equivalent capacitor structure. The first spring sheet and the first lip are equivalent to two plates in the first equivalent capacitor structure, and the second spring sheet and the second lip are equivalent to two plates in the second equivalent capacitor structure. The tactile information can also include the capacitance value of the first equivalent capacitor structure and the capacitance value of the second equivalent capacitor structure. When the user's first lip and the second lip contact the first spring sheet and the second spring sheet respectively, the tactile information can also include the capacitance value of the first equivalent capacitor structure and the capacitance value of the second equivalent capacitor structure. When the distance between the two plates of the first equivalent capacitor structure and the distance between the two plates of the second equivalent capacitor structure are changed due to the use of the atomization device, the capacitance value of the first equivalent capacitor structure and / or the capacitance value of the second equivalent capacitor structure are changed, that is, the capacitance value of the first equivalent capacitor structure and / or the capacitance value of the second equivalent capacitor structure may change at the same time, or the capacitance value of the first equivalent capacitor structure may change, or the capacitance value of the second equivalent capacitor structure may change; the capacitance value of the first equivalent capacitor structure and / or the capacitance value of the second equivalent capacitor structure changes, so that the tactile information changes, and the tactile sensor transmits the change to the MCU of the atomization device, and the MCU of the atomization device generates a second control instruction according to the change information of the tactile information.

[0098] Sub-step 2051 and sub-step 2052 are two steps that can replace each other, that is, step 205 can be implemented by sub-step 2051, and can also be implemented by sub-step 2052; in the embodiment of the present application, the capacitance value of the equivalent capacitance structure composed of the first spring clip and the second spring clip in sub-step 2051 is used as the capacitance value in each step below to illustrate the present application scheme, but the capacitance value described in each step below can also be equivalently replaced by the sum of the capacitance value of the first equivalent capacitance structure and the capacitance value of the second equivalent capacitance structure in sub-step 2052.

[0099] The atomization chamber includes: a main atomization chamber and at least one auxiliary atomization chamber, the main atomization chamber is used to output aerosol of main flavor, and the auxiliary atomization chamber is used to output aerosol of auxiliary taste, each of the auxiliary atomization chambers is configured with a weight, and the auxiliary atomization chambers have a sorting sequence according to the weight.

[0100] Step 206: adjust the atomization power of the main atomization chamber through the second control instruction, and adjust the atomization power of the auxiliary atomization chamber in sequence according to the order in the sorting sequence.

[0101] Optionally, step 206 may include:

[0102] Sub-step 2061: when the capacitance value represented by the touch information increases, controlling the atomization power of the main atomization chamber to increase, and at the same time, adjusting the atomization power of the auxiliary atomization chamber to increase in sequence according to the order in the sorting sequence;

[0103] Sub-step 2062: when the capacitance value represented by the touch information increases, controlling the atomization power of the main atomization chamber to increase, and adjusting the atomization power of the auxiliary atomization chamber to increase in sequence according to the order in the sorting sequence;

[0104] It can be understood that in the process of adjusting the atomization power of the atomization chamber, the change direction of the atomization power of the main atomization chamber is consistent with the change direction of the capacitance value in the touch information, and the change direction of the atomization power of the auxiliary atomization chamber is consistent with the change direction of the capacitance value in the touch information.

[0105] Sub-step 2061 represents the control strategy in the following scenario: when the user uses the atomization device, the lips are tightened, so that the distance between the first spring sheet and the second spring sheet is shortened, and the capacitance value of the equivalent capacitance structure composed of the first spring sheet and the second spring sheet increases. In this case, the atomization power of the main atomization chamber is controlled to increase to output more main flavor aerosols, and the main mouth aerosols entering the user's mouth increase, thereby improving the user's perception of the main flavor aerosols. At the same time, the atomization power of the auxiliary atomization chamber is controlled to increase in sequence to output more auxiliary flavor aerosols, further enhancing the mixing effect of the main flavor aerosol and the auxiliary flavor aerosol, and improving the mixing effect of multiple flavors.

[0106] Sub-step 2062 represents the control strategy in the following scenario: when the user is using the atomization device, the lips are relaxed, so that the distance between the first spring and the second spring increases, and the capacitance value of the equivalent capacitance structure composed of the first spring and the second spring decreases. In this case, the atomization power of the main atomization chamber is controlled to increase or decrease to reduce the output of the main flavor aerosol and reduce the consumption of the atomization matrix carried therein by the main atomization chamber. At the same time, the atomization power of the auxiliary atomization chamber is controlled to decrease in sequence to reduce the output of the auxiliary flavor aerosol and reduce the consumption of the atomization matrix carried therein by the auxiliary atomization chamber, thereby reducing the mixing effect of the main flavor aerosol and the auxiliary flavor aerosol, so that the user can obtain a pure atomization device usage experience.

[0107] The user lip temperature includes an initial user lip temperature, and the initial user lip temperature refers to the user lip temperature obtained when the atomizing device is started;

[0108] Step 207: Acquire the difference between the current user lip temperature and the initial user lip temperature while simultaneously acquiring the user lip temperature information through the temperature sensor and acquiring the touch information of the interface through the touch sensor;

[0109] Step 208: When the difference is less than or equal to the set threshold, the step of generating a first control instruction according to the change of the user's lip temperature information and adjusting the atomization power of each atomization bin according to the first control instruction is entered;

[0110] Step 209: When the difference is greater than the set threshold, enter the step of generating a second control instruction according to the change of the tactile information, and adjusting the atomization power of each atomization chamber through the second control instruction.

[0111] Sub-steps 207-209 represent how to trigger the power control of the atomization chamber when the user's lip temperature information is obtained through the temperature sensor and the tactile information of the interface is obtained through the tactile sensor at the same time; in this case, the difference between the current user's lip temperature and the initial user's lip temperature is first obtained, and then the difference is compared with the set threshold value, and the set threshold value represents the optimal range of the user's lip temperature information, that is, when the difference exceeds the set threshold value, it indicates that the first control instruction generated by using the change of the user's lip temperature information in this case will become inaccurate, and the final multi-flavor mixing effect will be worse. Therefore, when the difference exceeds the threshold value, the tactile sensor and the change of the tactile information obtained by it are used to trigger the control of the atomization power of the atomization chamber. Otherwise, the temperature sensor and the change of the user's lip temperature information obtained by it are still used to trigger the control of the atomization power of the atomization chamber.

[0112] In summary, in the embodiments of the present application, after multiple atomization chambers of the atomization device are started with a preset atomization power, the lip temperature information is detected by a temperature sensor at the interface of the atomization device, or the tactile information is detected by a tactile sensor, and the atomization power of each atomization chamber is adjusted according to the lip temperature information or the tactile information, so that the atomization power adjustment process of the atomization chamber is adapted to the user's usage actions, avoiding the user's manual operation of physical buttons or touch screens, and achieving the multi-flavor mixing effect of the atomization device in a simpler and more flexible manner. At the same time, the method also realizes the adjustment of the atomization power control strategy of the atomization chamber in different ways. On the one hand, different ways can trigger the adjustment of the atomization power control strategy of the atomization chamber, thereby increasing the stability of the operation of the atomization device. On the other hand, different atomization chambers can each output an aerosol that meets the expectations based on the adjusted atomization power control strategy, so that the mixed aerosol better meets the needs of the user.

[0113] Figure 5 Schematic diagram of a control strategy for an atomization device provided in an embodiment of the present application; the embodiment of the present application does not limit the control strategy of the atomization bin, and an independent control strategy can be provided for each atomization bin, refer to Figure 5In one embodiment, the atomization device includes an MCU, a main atomization chamber, and two auxiliary atomization chambers, namely, auxiliary atomization chamber 1 and auxiliary atomization chamber 2. Constant average voltage control can be adopted for the main atomization chamber, so that when the atomization power of the main atomization chamber increases, the main flavor aerosol entering the user's oral cavity per unit time increases, which is reflected in the user's use experience and can improve the explosive power of the main atomization chamber; constant effective voltage control is adopted for the auxiliary atomization chamber 1, so that the atomization rate of the auxiliary atomization chamber 1 is relatively stable, which is reflected in the user's use experience and can increase the linearity of the taste of the auxiliary atomization chamber 1. Constant power value control is adopted for the auxiliary atomization chamber 2. At this time, the weight configured by the auxiliary atomization chamber 2 is 0, and the auxiliary atomization chamber 2 does not enter the sorting sequence. Therefore, the atomization device no longer adjusts the atomization power of the auxiliary atomization chamber 2, so that the auxiliary atomization chamber 2 always maintains constant power operation, which is reflected in the user's use experience, and can enable the user to continuously and stably obtain the auxiliary taste aerosol generated by the auxiliary atomization chamber 2, and improve the stability of the auxiliary taste aerosol generated by the auxiliary atomization chamber 2.

[0114] Assigning different control strategies to the atomization chamber can be achieved through a temperature sensor, that is, before all the atomization chambers are started, the ambient temperature information can be first obtained by the temperature sensor, and different control strategies can be assigned to the atomization according to the ambient temperature information; Figure 5 In the embodiment shown, the ambient temperature information can be first obtained before the temperature sensor contacts the user's lips, and the control strategies can be allocated to the three atomization chambers through the ambient temperature information; for example, when the ambient temperature information indicates that the ambient temperature is cold, constant average voltage control is adopted for the main atomization chamber, and constant effective voltage control is adopted for the auxiliary atomization chamber 1, and constant power control is adopted for the auxiliary atomization chamber 2; after different control strategies are allocated to the atomization chambers, when the touch sensor of the atomization device detects the user's lips, all the atomization chambers can be controlled to start with a preset atomization power, and the atomization device control method can be executed.

[0115] Figure 6 The embodiment of the present application provides an atomization device control device 60, which includes:

[0116] Starting module 601: used to control all the atomization bins to start with a preset atomization power;

[0117] The first processing module 602 is used to generate a first control instruction according to the change of the user's lip temperature information when the user's lip temperature information is obtained through the temperature sensor, and adjust the atomization power of each atomization bin through the first control instruction;

[0118] The second processing module 603 is used to generate a second control instruction according to the change of the touch information when the touch information of the interface is obtained through the touch sensor, and adjust the atomization power of each atomization bin through the second control instruction.

[0119] Optionally, the atomization bin includes: a main atomization bin and at least one auxiliary atomization bin, the main atomization bin is used to output a main flavor aerosol, the auxiliary atomization bin is used to output an auxiliary taste aerosol, each of the auxiliary atomization bins is configured with a weight, and the auxiliary atomization bins have a sorting sequence according to the weight; the first processing module 602 may include:

[0120] The first execution submodule is used to adjust the atomization power of the main atomization chamber through a first control instruction, and at the same time, adjust the atomization power of the auxiliary atomization chamber in sequence according to the order in the sorting sequence.

[0121] Optionally, the first execution submodule may include:

[0122] A first atomization power control unit is used for controlling the atomization power of the main atomization chamber to decrease, and controlling the atomization power of the auxiliary atomization chambers in the sorting sequence to increase in sequence when the user lip temperature information indicates that the user lip temperature has increased;

[0123] The second atomization power control unit controls the atomization power of the main atomization bin to increase, and controls the atomization power of the auxiliary atomization bins in the sorting sequence to decrease in sequence, when the user lip temperature information indicates that the user lip temperature has dropped.

[0124] Optionally, the first execution submodule may include:

[0125] A first atomization rate control unit is used to control the atomization rates of the auxiliary atomization bins in the sorting sequence to increase in sequence when the rate of change of the user's lip temperature increases within the period of time represented by the user's lip temperature information;

[0126] The second atomization rate control unit is used to control the atomization rates of the auxiliary atomization bins in the sorting sequence to slow down in sequence when the rate of change of the user's lip temperature decreases within the period represented by the user's lip temperature information.

[0127] Optionally, the user lip temperature includes an initial user lip temperature, and the initial user lip temperature refers to the user lip temperature obtained when the atomizing device is started. The device 60 may further include:

[0128] The temperature difference module 604 is used to obtain the difference between the current user lip temperature and the initial user lip temperature when the user lip temperature information is obtained through the temperature sensor and the touch information of the interface is obtained through the touch sensor;

[0129] A first selection module, configured to execute the first processing module 602 when the difference is less than or equal to a set threshold;

[0130] The second selection module is used to execute the second processing module 603 when the difference is greater than the set threshold.

[0131] Optionally, the touch sensor includes a first spring sheet and a second spring sheet, the first spring sheet and the second spring sheet correspond to the lips of the user one by one, the first spring sheet and the second spring sheet form an equivalent capacitance structure, and the touch information includes a capacitance value of the equivalent capacitance structure; the second processing module 603 may include:

[0132] Capacitance acquisition submodule: used to acquire the distance between the first spring sheet and the second spring sheet, and acquire the capacitance value of the equivalent capacitance structure currently formed by the first spring sheet and the second spring sheet according to the distance.

[0133] Optionally, the atomization bin includes: a main atomization bin and at least one auxiliary atomization bin, the main atomization bin is used to output a main flavor aerosol, the auxiliary atomization bin is used to output an auxiliary taste aerosol, each of the auxiliary atomization bins is configured with a weight, and the auxiliary atomization bins have a sorting sequence according to the weight; the second processing module 603 may include:

[0134] The second execution submodule is used to adjust the atomization power of the main atomization chamber through the second control instruction, and the change direction of the atomization power of the main atomization chamber is consistent with the change direction of the capacitance value in the tactile information. At the same time, the atomization power of the auxiliary atomization chamber is adjusted in sequence according to the order in the sorting sequence, and the change direction of the atomization power of the auxiliary atomization chamber is consistent with the change direction of the capacitance value in the tactile information.

[0135] Optionally, the touch sensor includes a first spring sheet and a second spring sheet, and the control of all the atomization bins to start with a preset atomization power, the starting module 601 may include:

[0136] The start-up determination submodule is used to control all the atomization bins to start with the same preset atomization power when the touch sensor detects that the user's lips are in contact with the first elastic sheet and the second elastic sheet of the touch sensor at the same time.

[0137] In summary, in the embodiments of the present application, after multiple atomization chambers of the atomization device are started with a preset atomization power, the lip temperature information is detected by a temperature sensor at the interface of the atomization device, or the tactile information is detected by a tactile sensor, and the atomization power of each atomization chamber is adjusted according to the lip temperature information or the tactile information, so that the atomization power adjustment process of the atomization chamber is adapted to the user's usage actions, avoiding the user's manual operation of physical buttons or touch screens, and achieving the multi-flavor mixing effect of the atomization device in a simpler and more flexible manner. At the same time, the method also realizes the adjustment of the atomization power control strategy of the atomization chamber in different ways. On the one hand, different ways can trigger the adjustment of the atomization power control strategy of the atomization chamber, thereby increasing the stability of the operation of the atomization device. On the other hand, different atomization chambers can each output an aerosol that meets the expectations based on the adjusted atomization power control strategy, so that the mixed aerosol better meets the needs of the user.

[0138] Reference Figure 7 The atomization device 1700 may include one or more of the following components: a processing component 1702 , a memory 1704 , a power component 1706 , a multimedia component 1708 , an audio component 1710 , an input / output (I / O) interface 1712 , a sensor component 1714 , and a communication component 1716 .

[0139] The processing component 1702 generally controls the overall operation of the atomizing device 1700, such as operations associated with display, phone calls, data communications, camera operations, and recording operations. The processing component 1702 may include one or more processors 1720 to execute instructions to complete all or part of the steps of the above-mentioned method. In addition, the processing component 1702 may include one or more modules to facilitate the interaction between the processing component 1702 and other components. For example, the processing component 1702 may include a multimedia module to facilitate the interaction between the multimedia component 1708 and the processing component 1702.

[0140] The memory 1704 is used to store various types of data to support the operation of the atomization device 1700. Examples of such data include instructions for any application or method operating on the atomization device 1700, contact data, phone book data, messages, pictures, multimedia, etc. The memory 1704 can be implemented by any type of volatile or non-volatile storage terminal or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic disk or optical disk.

[0141] The power supply assembly 1706 provides power to the various components of the atomizing device 1700. The power supply assembly 1706 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power to the atomizing device 1700.

[0142] The multimedia component 1708 includes a screen providing an output interface between the atomizing device 1700 and the user. In some embodiments, the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen can be implemented as a touch screen to receive input signals from the user. In some embodiments, the multimedia component 1708 includes a front camera and / or a rear camera. When the atomizing device 1700 is in an operating mode, such as a shooting mode or a multimedia mode, the front camera and / or the rear camera can receive external multimedia data. Each front camera and rear camera can be a fixed optical lens system or have a focal length and optical zoom capability.

[0143] The audio component 1710 is used to output and / or input audio signals. For example, the audio component 1710 includes a microphone (MIC), and when the atomization device 1700 is in an operation mode, such as a call mode, a recording mode, and a voice recognition mode, the microphone is used to receive an external audio signal. The received audio signal can be further stored in the memory 1704 or sent via the communication component 1716. In some embodiments, the audio component 1710 also includes a speaker for outputting audio signals.

[0144] I / O interface 1712 provides an interface between processing component 1702 and peripheral interface modules, such as keyboards, click wheels, buttons, etc. These buttons may include, but are not limited to, a home button, a volume button, a start button, and a lock button.

[0145] The sensor assembly 1714 includes one or more sensors for providing various aspects of status assessment for the atomizing device 1700. For example, the sensor assembly 1714 can detect the open / closed state of the atomizing device 1700, the relative positioning of the components, such as the display and keypad of the atomizing device 1700, and the sensor assembly 1714 can also detect the position change of the atomizing device 1700 or a component of the atomizing device 1700, the presence or absence of contact between the user and the atomizing device 1700, the orientation or acceleration / deceleration of the atomizing device 1700 and the temperature change of the atomizing device 1700. The sensor assembly 1714 may include a proximity sensor configured to detect the presence of a nearby object without any physical contact. The sensor assembly 1714 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications. In some embodiments, the sensor assembly 1714 may also include an accelerometer, a gyroscope sensor, a magnetic sensor, and a pressure sensor.

[0146] The communication component 1716 is used to facilitate wired or wireless communication between the atomization device 1700 and other terminals. The atomization device 1700 can access a wireless network based on a communication standard, such as WiFi, an operator network (such as 2G, 3G, 4G or 5G), or a combination thereof. In an exemplary embodiment, the communication component 1716 receives a broadcast signal or broadcast-related information from an external broadcast management system via a broadcast channel. In an exemplary embodiment, the communication component 1716 also includes a near field communication (NFC) module to facilitate short-range communication. For example, the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.

[0147] In an exemplary embodiment, the atomization device 1700 can be implemented by one or more application-specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing terminals (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), controllers, microcontrollers, microprocessors or other electronic components to implement the atomization device control method provided in the embodiments of the present application.

[0148] In an exemplary embodiment, a non-transitory computer-readable storage medium including instructions is also provided, such as a memory 1704 including instructions, and the instructions can be executed by a processor 1720 of the atomization device 1700 to complete the above method. For example, the non-transitory storage medium can be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, an optical data storage terminal, etc.

[0149] Figure 8FIG. 1 is a block diagram of an atomization device 1800 shown in an exemplary embodiment. Figure 8 , the atomization device 1800 includes a processing component 1822, which further includes one or more processors, and a memory resource represented by a memory 1832, for storing instructions that can be executed by the processing component 1822, such as an application. The application stored in the memory 1832 may include one or more modules, each corresponding to a set of instructions. In addition, the processing component 1822 is configured to execute instructions to perform a method for controlling an atomization device provided in an embodiment of the present application.

[0150] The atomizing device 1800 may also include a power supply component 1826 configured to perform power management of the atomizing device 1700, a wired or wireless network interface 1850 configured to connect the atomizing device 1800 to a network, and an input / output (I / O) interface 1858. The atomizing device 1800 may operate based on an operating system stored in the memory 1832, such as Windows ServerTM, Mac OS XTM, UnixTM, LinuxTM, FreeBSDTM or the like.

[0151] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the application disclosed herein. The present application is intended to cover any variations, uses or adaptations of the present application, which follow the general principles of the present application and include common knowledge or customary techniques in the art that are not disclosed in the present application. The specification and examples are intended to be exemplary only, and the true scope and spirit of the present application are indicated by the following claims.

[0152] It should be understood that the present application is not limited to the precise structures that have been described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present application is limited only by the appended claims.

Claims

1. A method for controlling an atomizing device, wherein the atomizing device comprises at least two atomizing chambers, and a temperature sensor and a touch sensor are embedded at the interface of the atomizing device, characterized in that: The method comprises: Controlling all the atomization bins to start at a preset atomization power; In the case of obtaining the user's lip temperature information through the temperature sensor, generating a first control instruction according to the change of the user's lip temperature information, and adjusting the atomization power of each atomization bin through the first control instruction; In the case where the touch information of the interface is acquired through the touch sensor, a second control instruction is generated according to the change of the touch information, and the atomization power of each atomization bin is adjusted through the second control instruction.

2. The method according to claim 1, characterized in that The atomization bin includes: a main atomization bin and at least one auxiliary atomization bin, the main atomization bin is used to output a main flavor aerosol, the auxiliary atomization bin is used to output an auxiliary taste aerosol, each of the auxiliary atomization bins is configured with a weight, and the auxiliary atomization bins have a sorting sequence according to the weight; the atomization power of each atomization bin is adjusted by the first control instruction, including: The atomization power of the main atomization chamber is adjusted by the first control instruction, and the atomization power of the auxiliary atomization chamber is adjusted in sequence according to the order in the sorting sequence.

3. The method according to claim 2, characterized in that The adjusting the atomization power of the main atomization chamber by the first control instruction and adjusting the atomization power of the auxiliary atomization chamber in sequence according to the order in the sorting sequence include: When the user lip temperature information indicates that the user lip temperature rises, controlling the atomization power of the main atomization chamber to decrease, and controlling the atomization power of the auxiliary atomization chambers in the sorting sequence to increase in sequence; When the user lip temperature information indicates that the user lip temperature has dropped, the atomization power of the main atomization chamber is controlled to increase, and the atomization power of the auxiliary atomization chambers in the sorting sequence is controlled to decrease in sequence.

4. The method according to claim 2, characterized in that: The step of adjusting the atomization power of the auxiliary atomization chamber in sequence according to the order in the sorting sequence comprises: When the rate of change of the user's lip temperature within the period represented by the user's lip temperature information increases, sequentially controlling the atomization rates of the auxiliary atomization bins in the sorting sequence to speed up; When the rate of change of the user's lip temperature within the period represented by the user's lip temperature information decreases, the atomization rates of the auxiliary atomization bins in the sorting sequence are controlled to slow down in sequence.

5. The method according to claim 1, characterized in that The user lip temperature includes an initial user lip temperature, and the initial user lip temperature refers to the user lip temperature obtained when the atomizing device is started; the method further includes: When simultaneously acquiring the user lip temperature information through the temperature sensor and acquiring the touch information of the interface through the touch sensor, acquiring the difference between the current user lip temperature and the initial user lip temperature; When the difference is less than or equal to the set threshold, the step of generating a first control instruction according to the change of the user's lip temperature information and adjusting the atomization power of each atomization bin by the first control instruction is entered; When the difference is greater than the set threshold, the step of generating a second control instruction according to the change of the tactile information and adjusting the atomization power of each atomization bin by the second control instruction is entered.

6. The method according to claim 1, characterized in that The touch sensor includes a first spring sheet and a second spring sheet, the first spring sheet and the second spring sheet form an equivalent capacitance structure, the touch information includes a capacitance value of the equivalent capacitance structure; and acquiring the touch information of the interface through the touch sensor includes: The distance between the first spring sheet and the second spring sheet is obtained, and the capacitance value of the equivalent capacitance structure currently formed by the first spring sheet and the second spring sheet is obtained according to the distance.

7. The method according to claim 6, characterized in that The atomization bin includes: a main atomization bin and at least one auxiliary atomization bin, the main atomization bin is used to output a main flavor aerosol, the auxiliary atomization bin is used to output an auxiliary taste aerosol, each of the auxiliary atomization bins is configured with a weight, and the auxiliary atomization bins have a sorting sequence according to the weight; the atomization power of each atomization bin is adjusted according to the second control instruction, including: The atomization power of the main atomization chamber is adjusted by the second control instruction, and the direction of change of the atomization power of the main atomization chamber is consistent with the direction of change of the capacitance value in the tactile information. At the same time, the atomization power of the auxiliary atomization chamber is adjusted in sequence according to the order in the sorting sequence, and the direction of change of the atomization power of the auxiliary atomization chamber is consistent with the direction of change of the capacitance value in the tactile information.

8. The method according to claim 1, characterized in that The touch sensor includes a first spring sheet and a second spring sheet, and the controlling all the atomization bins to start with a preset atomization power includes: When the touch sensor detects that the user's lips are in contact with the first elastic sheet and the second elastic sheet of the touch sensor at the same time, all the atomization bins are controlled to start with a preset atomization power.

9. A control device for atomizing equipment, characterized in that: The atomization equipment control device comprises: Starting module: used to control all the atomization bins to start with a preset atomization power; A first processing module: used for generating a first control instruction according to a change in the user's lip temperature information when the user's lip temperature information is obtained through a temperature sensor, and adjusting the atomization power of each atomization bin through the first control instruction; The second processing module is used to generate a second control instruction according to the change of the touch information obtained by the touch sensor, and adjust the atomization power of each atomization bin through the second control instruction.

10. An atomization device, characterized in that: include: A memory and a processor, wherein a computer program is stored in the memory, and when the computer program is executed by the processor, the method according to any one of claims 1 to 8 is performed.