Control method of electronic atomization equipment and electronic atomization equipment
By using airflow sensors in electronic atomization equipment to determine the working status of the speakers and vibrating motors, imitating the bubble sound and vibrations during use of the hookah, the problem of the low similarity between the existing equipment and the real hookah is solved, and a more realistic hookah experience and a higher user immersion is achieved.
Patent Information
- Application Number
- CN202510245926.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-05-13
AI Technical Summary
When existing electronic atomization equipment imitates hookah, it is not very similar to real hookahs.
The airflow information inside the electronic atomization device is collected through the airflow sensor, and the working state of the speaker and the vibration motor are determined based on the airflow information, thereby controlling the speaker sound and vibration of the vibration motor, imitating the bubble sound and vibration during use of the hookah.
By analyzing airflow information in real time, electronic atomization equipment can reproduce the experience of hookah more realistically, enhance the user's immersion and use pleasure, and improve the similarity with real hookahs.
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Figure CN119969649A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of atomization technology, and in particular to a control method of an electronic atomization device and an electronic atomization device. Background Art
[0002] Existing electronic atomization devices mainly include an atomization device and a battery. The battery provides electrical energy to the atomization device, causing the atomization component in the atomization device to heat up, and then uses the atomization matrix in the atomization device to form an aerosol. This type of electronic atomization device is often used to simulate tobacco products to assist in quitting smoking. Among them, some electronic atomization devices are used to imitate hookahs, thereby assisting users to quit hookahs. However, this type of electronic atomization device that imitates hookahs is often not very similar to real hookahs. Summary of the invention
[0003] The main purpose of the present application is to propose a control method for an electronic atomization device and an electronic atomization device to solve the technical problem that the electronic atomization device imitating a hookah is often not very similar to a real hookah.
[0004] To achieve the above-mentioned purpose, the present application provides a control method of an electronic atomization device in a first aspect, comprising the following steps:
[0005] Collecting airflow information inside the electronic atomization device through an airflow sensor;
[0006] determining speaker operation information of the speaker and vibration motor operation information of the vibration motor according to the airflow information;
[0007] The working state of the speaker is controlled according to the speaker working information.
[0008] The working state of the vibration motor is controlled according to the working information of the vibration motor.
[0009] In some embodiments, determining speaker operation information of a speaker and vibration motor operation information of a vibration motor according to the airflow information comprises:
[0010] Determine the sound state of the speaker and the vibration state of the vibration motor according to the real-time air flow speed;
[0011] Determining sound information of the speaker according to the sound state and the real-time air flow speed;
[0012] Determining vibration information of the vibration motor according to the vibration state and the real-time air flow velocity;
[0013] The speaker working information includes the sound emission state and the sound emission information; the vibration motor working information includes the vibration state and the vibration information.
[0014] In some embodiments, determining the sound state of the speaker and the vibration state of the vibration motor according to the real-time air flow speed includes:
[0015] In response to the real-time airflow speed being greater than or equal to an airflow speed threshold, determining the sound emission state as allowing sound emission and determining the vibration state of the vibration motor as allowing vibration;
[0016] In response to the real-time airflow speed being less than an airflow speed threshold, the sound generation state is determined as sound generation is not allowed and the vibration state of the vibration motor is determined as vibration is not allowed.
[0017] In some embodiments, determining the sound emission information of the speaker according to the sound emission state and the real-time air flow speed includes: in response to the sound emission state being allowed to emit sound, determining the sound emission information according to the real-time air flow speed;
[0018] The determining the vibration information of the vibration motor according to the vibration state and the real-time airflow speed comprises: in response to the vibration state being vibration allowed, determining the vibration information according to the real-time airflow speed;
[0019] The sound information includes the sound effect frequency and / or the sound effect loudness; the vibration information includes the vibration frequency and / or the vibration amplitude.
[0020] In some embodiments, the sound effect frequency is positively correlated with the real-time airflow velocity, and the sound effect loudness is positively correlated with the real-time airflow velocity; the vibration frequency is positively correlated with the real-time airflow velocity, and the vibration amplitude is positively correlated with the real-time airflow velocity.
[0021] In some embodiments, determining speaker operation information of a speaker and vibration motor operation information of a vibration motor according to the airflow information comprises:
[0022] Determining a sound state of a speaker and a vibration state of a vibration motor according to the airflow information;
[0023] Determining sound information of the speaker according to the sound state and the airflow information;
[0024] determining vibration information of the vibration motor according to the vibration state and the airflow information;
[0025] Among them, the airflow information includes the real-time airflow velocity and the airflow volume within the collection time; the speaker working information includes the sound state and the sound information; the vibration motor working information includes the vibration state and the vibration information.
[0026] In some embodiments, determining the sound state of the speaker and the vibration state of the vibration motor according to the airflow information includes:
[0027] determining a suction intensity according to the airflow information;
[0028] In response to the suction intensity being greater than or equal to a suction threshold, determining the sound emission state as allowing sound emission and determining the vibration state of the vibration motor as allowing vibration;
[0029] In response to the suction intensity being less than the suction threshold, the sound generation state is determined as sound generation is not permitted and the vibration state of the vibration motor is determined as vibration is not permitted.
[0030] In some embodiments, the determining the sound information of the speaker according to the sound state and the airflow information comprises: in response to the sound state being allowed to sound, determining the sound information according to the airflow information;
[0031] The determining the vibration information of the vibration motor according to the vibration state and the airflow information comprises: in response to the vibration state being vibration allowed, determining the vibration information according to the airflow information;
[0032] The sound information includes the sound effect frequency and / or the sound effect loudness; the vibration information includes the vibration frequency and / or the vibration amplitude.
[0033] In some embodiments, in response to the utterance state being that utterance is allowed, determining the utterance information according to the airflow information comprises:
[0034] Determine an effective suction volume according to the airflow information, and determine the sound information and the vibration information according to the effective suction volume;
[0035] Among them, the sound effect frequency is positively correlated with the effective suction volume, and the sound effect loudness is positively correlated with the effective suction volume; the vibration frequency is positively correlated with the real-time air flow velocity, and the vibration amplitude is positively correlated with the real-time air flow velocity.
[0036] The second aspect of the present application provides an electronic atomization device, including an airflow sensor, a speaker, a vibration motor, a memory and a processor, wherein the memory is used to store computer program code, and the computer program code includes computer instructions. When the computer instructions are executed on the electronic atomization device, the electronic atomization device executes the control method of the electronic atomization device as described in any one of the first aspects above.
[0037] Compared with the prior art, the present application provides a control method for an electronic atomization device and an electronic atomization device, the method being capable of determining the speaker working information of a speaker and the vibration motor working information of a vibration motor according to airflow information, thereby controlling the speaker to make sounds and the vibration of the vibration motor to simulate the bubbling sound and bubbling vibration emitted when a hookah is used when the user inhales; in addition, the method being capable of determining the sound effect frequency and sound effect loudness of the speaker sound of the speaker, the vibration frequency and vibration amplitude of the vibration motor according to the airflow information, simulating the difference between the bubbling sound and bubbling vibration when inhaling the hookah quickly and deeply and when inhaling the hookah slowly, further improving the degree of similarity between the electronic atomization device and a real hookah. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on the structures shown in these drawings without paying any creative work.
[0039] Figure 1 It is a flow chart of a control method of an electronic atomization device provided in an embodiment of the present application;
[0040] Figure 2 It is a flowchart of determining speaker working information and vibration motor working information provided by an embodiment of the present application;
[0041] Figure 3 is another flowchart for determining speaker working information and vibration motor working information provided by an embodiment of the present application;
[0042] Figure 4 It is a structural schematic diagram of an electronic atomization device provided for an embodiment of the present application. DETAILED DESCRIPTION
[0043] In order to make the above-mentioned purpose, features and advantages of the present application more obvious and easy to understand, the specific implementation mode of the present application is described in detail below in conjunction with the accompanying drawings. In the following description, many specific details are set forth to facilitate a full understanding of the present application. However, the present application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar improvements without violating the connotation of the present application, so the present application is not limited by the specific embodiments disclosed below. Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art of the present application. The terms used herein in the specification of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application. The term "and / or" used herein includes any and all combinations of one or more related listed items.
[0044] See also Figures 1 to 3 The present application provides a control method for an electronic atomization device, the control method comprising the following steps:
[0045] S100: collecting airflow information inside the electronic atomization device through an airflow sensor;
[0046] S200: determining speaker operation information of the speaker and vibration motor operation information of the vibration motor according to the airflow information;
[0047] S300: Controlling the working state of the speaker according to the speaker working information;
[0048] S400: Controlling the working state of the vibration motor according to the working information of the vibration motor.
[0049] Specifically, the control method of the electronic atomization device realizes precise control by collecting the airflow information inside the device in real time. In actual applications, the airflow sensor will continuously monitor the airflow information inside the device, including but not limited to key parameters such as flow rate, flow, pressure and direction. When the user inhales, the airflow will change. The control method of the present application can simulate the unique sound and vibration effects of hookah by analyzing the airflow information in real time. By using the airflow information to achieve precise control of the sound effects emitted by the speaker and the vibration generated by the vibration motor, the electronic atomization device can more realistically reproduce the experience of hookah, enhancing the user's immersion and fun of use.
[0050] In some embodiments, S200 may include determining speaker operation information of the speaker and vibration motor operation information of the vibration motor according to the airflow information:
[0051] S210: determining a sound state of the speaker and a vibration state of the vibration motor according to the real-time air flow velocity;
[0052] S220: Determine the sound information of the speaker according to the sound state and the real-time air flow speed;
[0053] S230: Determining vibration information of the vibration motor according to the vibration state and the real-time air flow speed;
[0054] The speaker working information includes the sound emission state and the sound emission information; the vibration motor working information includes the vibration state and the vibration information.
[0055] The real-time airflow speed refers to the airflow intensity monitored by the airflow sensor inside the electronic atomization device, which reflects the current suction state of the device. Therefore, in some embodiments, S210 determines the sound state of the speaker and the vibration state of the vibration motor according to the real-time airflow speed, which may include:
[0056] In response to the real-time airflow speed being greater than or equal to an airflow speed threshold, determining the sound emission state as allowing sound emission and determining the vibration state of the vibration motor as allowing vibration;
[0057] In response to the real-time airflow speed being less than an airflow speed threshold, the sound generation state is determined as sound generation is not allowed and the vibration state of the vibration motor is determined as vibration is not allowed.
[0058] Specifically, it can be determined whether the user is taking a puff based on whether the airflow speed reaches or exceeds the airflow speed threshold. When the user takes a strong puff, the airflow speed is high, and it can be determined that the airflow state at this time meets the actual situation of hookah smoking. Therefore, the speaker is allowed to make a sound and the vibration motor is allowed to vibrate to simulate the sound effects and vibrations of the hookah device, thereby enhancing the user's immersion and sense of reality. When the airflow speed is low, it indicates that the user is not taking a puff, and the speaker is not allowed to make a sound and the vibration motor is not allowed to vibrate.
[0059] As for the airflow velocity threshold, it can be set through experiments and simulations of user behavior. The airflow velocity threshold is a parameter obtained through research and testing. It represents the average value or appropriate range of the airflow velocity when the user is puffing normally. For example, a reasonable airflow velocity range can be obtained by analyzing a large amount of user usage data. When the airflow velocity reaches the threshold, it can be considered that the suction action at this time is strong enough to make sound and vibrate; when the airflow velocity is lower than this threshold, it is judged that the suction action is relatively slight or insufficient to produce the expected sound effects and vibrations, so the sound state is determined as not allowing sound, and the vibration state is determined as not allowing vibration. By accurately setting the airflow velocity threshold, it can be ensured that the sound and vibration match the airflow state, avoiding the generation of unnatural sounds or sounds that do not meet user expectations, thereby improving the overall user experience.
[0060] In some embodiments, the air flow velocity, as an input signal, will directly affect the sound characteristics of the speaker and the vibration characteristics of the vibration motor. In order to ensure that the sound and vibration match the intensity of the user's suction action, S220 determines the sound information of the speaker according to the sound state and the real-time air flow velocity, including: in response to the sound state being "sound is allowed", determining the specific sound information according to the real-time air flow velocity; S230 determines the vibration information of the vibration motor according to the vibration state and the real-time air flow velocity, including: in response to the vibration state being vibration is allowed, determining the vibration information according to the real-time air flow velocity; wherein the sound information includes sound effect frequency and / or sound effect loudness; the vibration information includes vibration frequency and / or vibration amplitude.
[0061] It is easy to understand that after determining that the user is performing a puffing action, the sound information and vibration information, such as sound effect frequency, sound effect loudness, vibration frequency or vibration amplitude, etc., can be determined according to the real-time airflow speed, so as to simulate and adjust the sound and vibration emitted when actually smoking a hookah in real time, instead of playing pre-stored sound effects that cannot be changed and adjusted or causing the vibration motor to produce vibrations with preset frequency and amplitude.
[0062] Specifically, the sound effect frequency is positively correlated with the real-time air flow velocity, and the sound effect loudness is positively correlated with the real-time air flow velocity; the vibration frequency is positively correlated with the real-time air flow velocity, and the vibration amplitude is positively correlated with the real-time air flow velocity.
[0063] The greater the real-time airflow speed, the stronger the suction force. At this time, the real hookah should bubble quickly, and high-frequency bubbling sound and high-frequency vibration should be generated. Correspondingly, the sound information of the electronic atomizer should also determine the sound effect as high frequency according to the higher airflow speed. At the same time, the vibration information of the electronic atomizer should also determine the vibration as high frequency according to the higher airflow speed, so as to simulate the sound effect and vibration effect of fast bubbling when taking a big puff of hookah. When the real-time airflow speed is small, the speaker will generate lower-frequency sound effects and vibrations to simulate the sound and vibration of slow bubbling during slight suction, avoid emitting too high-frequency sound effects or producing too high-frequency vibrations, and maintain the naturalness and comfort of sound and vibration. In addition to the sound effect frequency and vibration frequency, the real-time airflow speed will also affect the loudness of the sound effect and vibration. When the airflow speed is large, the sound effect loudness of the speaker and the vibration amplitude of the vibration motor will be appropriately increased to match the airflow of strong suction, simulating the high-loudness sound effect and high-amplitude vibration of the hookah. On the contrary, when the airflow speed is low, the sound effect loudness and vibration amplitude will be reduced accordingly to avoid overly strong or unnatural sound effects or vibrations, thereby ensuring a balanced and natural overall experience. The technical solution of the present application simulates the difference between the bubbling sound and bubbling vibration when smoking a hookah with a large puff and a slow puff through the above settings, further improving the similarity between the electronic atomization device and the real hookah.
[0064] In some embodiments, 200 determining the speaker operation information of the speaker and the vibration motor operation information of the vibration motor according to the airflow information may include:
[0065] S240: determining a sound state of the speaker and a vibration state of the vibration motor according to the airflow information;
[0066] S250: Determine the sound information of the speaker according to the sound state and the airflow information;
[0067] S260: Determine vibration information of the vibration motor according to the vibration state and the airflow information;
[0068] Among them, the airflow information includes the real-time airflow velocity and the airflow volume within the collection time; the speaker working information includes the sound state and the sound information; the vibration motor working information includes the vibration state and the vibration information.
[0069] When users actually use hookahs, they sometimes inhale slowly for fun to control or listen to the different bubbling states of the hookah. At this time, it is impossible to determine whether the user is inhaling only by the airflow speed. Therefore, the airflow information may include real-time airflow speed and airflow volume during the collection time. Comprehensively judging whether the user is inhaling through multiple factors can cope with more usage scenarios and make more accurate judgments.
[0070] In some embodiments, S240 determining the sound state of the speaker and the vibration state of the vibration motor according to the airflow information may include:
[0071] determining a suction intensity according to the airflow information;
[0072] In response to the suction intensity being greater than or equal to a suction threshold, determining the sound emission state as allowing sound emission and determining the vibration state of the vibration motor as allowing vibration;
[0073] In response to the suction intensity being less than the suction threshold, the sound generation state is determined as sound generation is not permitted and the vibration state of the vibration motor is determined as vibration is not permitted.
[0074] In electronic atomization devices, determining the sound state of the speaker and the vibration state of the vibration motor is achieved by analyzing real-time airflow information. First, the suction intensity is determined based on the airflow information. The suction intensity is usually calculated by the real-time airflow velocity and the airflow volume during the acquisition time. Specifically, the real-time airflow velocity reflects the instantaneous intensity of the user's suction action, while the airflow volume is the accumulation of the total amount of airflow within a certain period of time, which can more comprehensively reflect the continuous intensity of the user's suction. The suction intensity can be calculated by multiplying the real-time airflow velocity and the airflow volume. This calculation method combines the real-time airflow velocity with the airflow volume, which can instantly reflect the user's suction intensity and take into account the continuity of the suction. When the suction intensity is high, it means that the user's suction action is more intense, and the airflow velocity and airflow volume are both high. This time it can be determined that the user is suctioning. In addition, the suction intensity can also be calculated in other ways. For example, the airflow volume is divided by the real-time airflow velocity to obtain the suction intensity. This calculation method emphasizes the relationship between the airflow volume and the airflow velocity, and can also reflect the continuity and intensity of the user's suction action. The weighted average of the real-time airflow velocity and the airflow volume can also be used as an indicator of the suction intensity. In this calculation method, the real-time airflow velocity needs to be multiplied by its corresponding real-time airflow velocity weight and the airflow volume needs to be multiplied by its corresponding airflow volume weight and then added together. The real-time airflow velocity weight and the airflow volume weight can be used to adjust the degree of influence of the real-time airflow velocity and airflow volume on the suction intensity. By adjusting the weight, the influence of a certain parameter on the suction intensity can be emphasized according to actual needs.
[0075] Next, in response to the suction intensity being greater than or equal to the suction threshold, the sounding state is determined to be allowed to sound, and at the same time, the vibration state of the vibration motor is determined to be allowed to vibrate. The suction threshold can be a preset standard value obtained through experiments and user behavior analysis, indicating that the speaker will be triggered to make a sound only when the suction intensity is above a certain level. The setting of the suction threshold can be an empirical value obtained based on a large number of user tests and data analysis, which can meet the usage habits of most users. When the suction intensity reaches the suction threshold, it is determined that the user is performing a suction action, which can produce sound effects and vibration effects similar to those of a hookah device, so the speaker is allowed to make a sound and the vibration motor is allowed to vibrate.
[0076] In response to the suction intensity being less than the suction threshold, the sounding state is determined as not allowing sounding, and the vibration state of the vibration motor is determined as not allowing vibration. When the suction intensity is low, it means that the user's suction action is relatively light, and the airflow speed and airflow volume are both small. In this case, it is determined that the user is not performing a suction action, so the speaker is not allowed to make a sound and the vibration motor is not allowed to vibrate. Through the above method, comprehensively judging whether the user is performing suction based on multiple factors can cope with more usage scenarios and make more accurate judgments.
[0077] In some embodiments, S250 determines the sound information of the speaker based on the sound state and the airflow information, which may include: in response to the sound state being that sound is allowed, determining the sound information based on the airflow information; S260 determines the vibration information of the vibration motor based on the vibration state and the airflow information, which may include: in response to the vibration state being that vibration is allowed, determining the vibration information based on the airflow information; wherein the sound information includes sound effect frequency, and / or sound effect loudness; and the vibration information includes vibration frequency, and / or vibration amplitude.
[0078] It is easy to understand that after determining that the user is performing a puffing action, the sound information and vibration information, such as sound effect frequency, sound effect loudness, vibration frequency or vibration amplitude, etc., can be determined according to the real-time airflow velocity and airflow volume, so as to simulate and adjust the sound and vibration emitted when actually smoking a hookah in real time, instead of playing pre-stored sound effects that cannot be changed and adjusted or causing the vibration motor to produce vibrations with preset frequency and amplitude.
[0079] Specifically, in response to the sounding state being that sounding is allowed, determining the sounding information according to the airflow information includes:
[0080] Determine an effective suction volume according to the airflow information, and determine the sound information and the vibration information according to the effective suction volume;
[0081] Among them, the sound effect frequency is positively correlated with the effective suction volume, the sound effect loudness is positively correlated with the effective suction volume; the vibration frequency is positively correlated with the real-time airflow velocity, and / or the vibration amplitude is positively correlated with the real-time airflow velocity.
[0082] It is easy to understand that in electronic atomization devices, determining the effective puff volume is a key step in evaluating the user's puffing behavior. The effective puff volume can be calculated by real-time airflow velocity and airflow volume. As for the calculation method of the effective puff volume, the real-time airflow velocity and the airflow volume can be multiplied to obtain the effective puff volume. This method can instantly reflect the intensity of the user's puff and take into account the continuity of the puff. In addition, the effective puff volume can also be calculated in other ways. For example, the effective puff volume is obtained by dividing the airflow volume by the real-time airflow velocity. This calculation method emphasizes the relationship between the airflow volume and the airflow velocity, and can also reflect the continuity and intensity of the user's puffing action; the real-time airflow velocity can also be multiplied by the weighted average of the airflow volume to obtain the effective puff volume. In this calculation method, the weight is used to adjust the degree of influence of the real-time airflow velocity and the airflow volume on the effective puff volume. The choice of these calculation methods depends on the design of the device and the definition of the effective puff volume. After determining the effective suction volume, the sound information and vibration information can be determined according to the effective suction volume; specifically, the sound effect frequency is positively correlated with the effective suction volume, the sound effect loudness is positively correlated with the effective suction volume; the vibration frequency is positively correlated with the real-time airflow speed, and the vibration amplitude is positively correlated with the real-time airflow speed. By accurately calculating the effective suction volume, the device can more accurately judge the user's suction action and the corresponding sound information, thereby controlling the sound state of the speaker and providing a better user experience.
[0083] See also Figure 4 The present application also proposes an electronic atomization device 100, including an airflow sensor 10, a speaker 20, a vibration motor 50, a memory 30 and a processor 40, wherein the memory 30 is used to store computer program codes, and the computer program codes include computer instructions. When the computer instructions are executed on the electronic atomization device, the electronic atomization device 100 executes the control method of the electronic atomization device as described in any of the above embodiments.
[0084] The above description is only a preferred embodiment of the present application, and does not limit the patent scope of the present application. All equivalent structural changes made by using the contents of the present application specification and drawings under the inventive concept of the present application, or directly / indirectly applied in other related technical fields are included in the patent protection scope of the present application.
Claims
1. A control method for an electronic atomization device, characterized in that: The following steps are involved: Collecting airflow information inside the electronic atomization device through an airflow sensor; determining speaker operation information of the speaker and vibration motor operation information of the vibration motor according to the airflow information; Controlling the working state of the speaker according to the speaker working information; The working state of the vibration motor is controlled according to the working information of the vibration motor.
2. The control method of the electronic atomization device according to claim 1, characterized in that: Determining speaker operation information of the speaker and vibration motor operation information of the vibration motor according to the airflow information includes: Determine the sound state of the speaker and the vibration state of the vibration motor according to the real-time air flow speed; Determining sound information of the speaker according to the sound state and the real-time air flow speed; Determining vibration information of the vibration motor according to the vibration state and the real-time air flow velocity; The speaker working information includes the sound emission state and the sound emission information; the vibration motor working information includes the vibration state and the vibration information.
3. The control method of the electronic atomization device according to claim 2, characterized in that: Determining the sound state of the speaker and the vibration state of the vibration motor according to the real-time air flow velocity includes: In response to the real-time airflow speed being greater than or equal to an airflow speed threshold, determining the sound emission state as allowing sound emission and determining the vibration state of the vibration motor as allowing vibration; In response to the real-time airflow speed being less than an airflow speed threshold, the sound generation state is determined as sound generation is not allowed and the vibration state of the vibration motor is determined as vibration is not allowed.
4. The control method of the electronic atomization device according to claim 3, characterized in that: Determining the sound information of the speaker according to the sound state and the real-time air flow speed includes: in response to the sound state being that sound is allowed, determining the sound information according to the real-time air flow speed; The determining the vibration information of the vibration motor according to the vibration state and the real-time airflow speed comprises: in response to the vibration state being vibration allowed, determining the vibration information according to the real-time airflow speed; The sound information includes the sound effect frequency and / or the sound effect loudness; the vibration information includes the vibration frequency and / or the vibration amplitude.
5. The control method of the electronic atomization device according to claim 4, characterized in that: The sound effect frequency is positively correlated with the real-time air flow velocity, and the sound effect loudness is positively correlated with the real-time air flow velocity; the vibration frequency is positively correlated with the real-time air flow velocity, and the vibration amplitude is positively correlated with the real-time air flow velocity.
6. The control method of the electronic atomization device according to claim 1, characterized in that: Determining speaker operation information of the speaker and vibration motor operation information of the vibration motor according to the airflow information includes: Determining a sound state of a speaker and a vibration state of a vibration motor according to the airflow information; Determining sound information of the speaker according to the sound state and the airflow information; determining vibration information of the vibration motor according to the vibration state and the airflow information; Among them, the airflow information includes the real-time airflow velocity and the airflow volume within the collection time; the speaker working information includes the sound state and the sound information; the vibration motor working information includes the vibration state and the vibration information.
7. The control method of the electronic atomization device according to claim 6, characterized in that: Determining the sound state of the speaker and the vibration state of the vibration motor according to the airflow information includes: determining a suction intensity according to the airflow information; In response to the suction intensity being greater than or equal to a suction threshold, determining the sound emission state as allowing sound emission and determining the vibration state of the vibration motor as allowing vibration; In response to the suction intensity being less than the suction threshold, the sound generation state is determined as sound generation is not permitted and the vibration state of the vibration motor is determined as vibration is not permitted.
8. The control method of the electronic atomization device according to claim 7, characterized in that: The determining the sound information of the speaker according to the sound state and the airflow information comprises: in response to the sound state being that sound is allowed, determining the sound information according to the airflow information; The determining the vibration information of the vibration motor according to the vibration state and the airflow information comprises: in response to the vibration state being vibration allowed, determining the vibration information according to the airflow information; The sound information includes the sound effect frequency and / or the sound effect loudness; the vibration information includes the vibration frequency and / or the vibration amplitude.
9. The control method of the electronic atomization device according to claim 8, characterized in that: In response to the sounding state being that sounding is allowed, determining the sounding information according to the airflow information includes: Determine an effective suction volume according to the airflow information, and determine the sound information and the vibration information according to the effective suction volume; Among them, the sound effect frequency is positively correlated with the effective suction volume, and the sound effect loudness is positively correlated with the effective suction volume; the vibration frequency is positively correlated with the real-time air flow velocity, and the vibration amplitude is positively correlated with the real-time air flow velocity.
10. An electronic atomization device, comprising an airflow sensor, a speaker, a vibration motor, a memory and a processor, characterized in that: The memory is used to store computer program code, which includes computer instructions. When the computer instructions are executed on the electronic atomization device, the electronic atomization device executes the control method of the electronic atomization device as described in any one of claims 1 to 9.