Atomization control method and device, electronic atomizer and medium
The problem of unstable touch detection signals is solved by generating and maintaining virtual touch signals, ensuring that the electronic atomizer can reliably heat up during inhalation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- NEVILLA (HONG KONG) LTD
- Filing Date
- 2026-05-27
- Publication Date
- 2026-07-24
AI Technical Summary
Inconsistent touch switch operation and the effects of smoke can cause instability in the touch detection signal of the electronic atomizer.
By acquiring the touch detection signal generated by the touch sensor, a virtual touch signal is generated, and when the detection signal is at the first level, it is maintained at the first level for a period of time to ensure that the electronic atomizer responds to the inhalation action and generates heat during the period when the virtual touch signal is at the first level.
It achieves the generation of a stable virtual touch signal even when the touch detection signal is unstable, ensuring that the electronic atomizer can reliably respond to the heating of the inhalation action.
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Figure CN122439929A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic atomization technology, specifically to an atomization control method, device, electronic atomizer, and medium. Background Technology
[0002] When using an electronic atomizer, the touch detection signal generated by the touch switch may be interrupted due to inconsistencies in the touch switch, the influence of smoke, or the area of contact with the touch switch, resulting in an unstable touch detection signal. Summary of the Invention
[0003] The main technical problem addressed in this application is the instability of touch detection signals caused by the inconsistency of touch switches, the influence of smoke, and the influence of contact area.
[0004] According to the first aspect, this application provides an atomization control method applied to an electronic atomizer, comprising:
[0005] Acquire touch detection signals generated by touch sensors, and generate virtual touch signals in response to the state of the touch detection signals;
[0006] If the touch detection signal is at the first level, the virtual touch signal will be set to the first level for a first preset time.
[0007] During the period when the virtual touch signal is at the first level, the electronic atomizer is configured to generate heat in response to the inhalation action.
[0008] In some embodiments, it also includes:
[0009] If the touch detection signal switches from the first level to a non-trigger state, the duration of the non-trigger state is monitored.
[0010] After the duration reaches a first preset time, the virtual touch signal is reset.
[0011] In some embodiments, the electronic atomizer includes a mouthpiece assembly, and the touch sensor includes a first touch sensor; the first touch sensor is disposed on the mouthpiece assembly and is used to generate a first touch detection signal in response to contact with the user's lips;
[0012] The step of setting the virtual touch signal to the first level when the touch detection signal is at the first level for a first preset time includes:
[0013] When the first touch detection signal is at the first level, it indicates that the first touch sensor is in a triggered state;
[0014] If the first touch detection signal deviates from the first level, the virtual touch signal is controlled to maintain the first level for the first preset time.
[0015] In some embodiments, the electronic atomizer further includes a housing assembly, and the touch sensor further includes a second touch sensor disposed on the housing assembly; the second touch sensor is used to generate a second touch detection signal in response to a gripping operation of the housing assembly.
[0016] In some embodiments, the step of embedding the virtual touch signal at the first level when the touch detection signal is at the first level for a first preset time includes:
[0017] When the second touch detection signal is at the first level, it indicates that the second touch sensor is in a triggered state;
[0018] If the second touch detection signal deviates from the first level, the virtual touch signal is controlled to maintain the first level for the first preset time.
[0019] In some embodiments, the step of embedding the virtual touch signal at the first level when the touch detection signal is at the first level for a first preset time includes:
[0020] When both the first touch detection signal and the second touch detection signal are at the first level, the virtual touch signal is set to the first level and maintained.
[0021] If at least one of the first touch detection signal or the second touch detection signal deviates from the first level, the virtual touch signal is controlled to maintain the first level for the first preset time.
[0022] According to a second aspect, one embodiment provides an atomization control device applied to an electronic atomizer, comprising:
[0023] The signal acquisition module is used to acquire the touch detection signal generated by the touch sensor and generate a virtual touch signal in response to the state of the touch detection signal.
[0024] The signal setting module is used to set the virtual touch signal to the first level for a first preset time when the touch detection signal is at the first level.
[0025] A heating control module is configured to generate heat in response to a suction action during the period when the virtual touch signal is at a first level.
[0026] In some embodiments, the electronic atomizer includes a mouthpiece assembly, and the touch sensor includes a first touch sensor; the first touch sensor is disposed on the mouthpiece assembly and is used to generate a first touch detection signal in response to contact with the user's lips.
[0027] In some embodiments, the electronic atomizer further includes a housing assembly, and the touch sensor includes a second touch sensor; the second touch sensor is disposed on the housing assembly and is used to generate a second touch detection signal in response to a gripping operation of the housing assembly.
[0028] In some embodiments, the signal setting module includes a first signal setting module and a second signal setting module;
[0029] The first signal setting module is used to set the virtual touch signal to the first level and maintain it when both the first touch detection signal and the second touch detection signal are at the first level;
[0030] The second signal setting module is configured to control the virtual touch signal to maintain the first level for the first preset time if at least one of the first touch detection signal or the second touch detection signal deviates from the first level.
[0031] According to a third aspect, one embodiment provides an electronic atomizer, the electronic atomizer including a touch sensor and a processor;
[0032] The touch sensor is used to generate a touch detection signal in response to user operations;
[0033] The processor is used to implement the atomization control method.
[0034] According to a fourth aspect, one embodiment provides a computer-readable storage medium including a computer program and / or instructions that, when executed by a processor, implement the atomization control method.
[0035] According to the atomization control method, atomization control device, electronic atomizer, and computer-readable storage medium of the above embodiments, since the virtual touch signal is built into the first level for a first preset time when the touch detection signal is at the first level, the situation where the virtual touch signal is also intermittent due to the instability of the touch detection signal caused by the user's contact or other reasons is avoided, thereby generating a stable virtual touch signal. During the period when the virtual touch signal is at the first level, the electronic atomizer is configured to generate heat in response to the inhalation action. Attached Figure Description
[0036] Figure 1 This is a schematic diagram of the electronic atomizer in the embodiments of this application;
[0037] Figure 2 This is a flowchart of the atomization control method in the embodiments of this application;
[0038] Figure 3 A flowchart of the atomization control method in another embodiment;
[0039] Figure 4 This is a timing diagram of touch detection signals and virtual touch signals in one embodiment;
[0040] Figure 5 This is a timing diagram of the touch detection signal and the virtual touch signal in another embodiment;
[0041] Figure 6 This is a timing diagram of the touch detection signal and the virtual touch signal in another embodiment;
[0042] Figure 7 This is a flowchart illustrating how, in one embodiment, a virtual touch signal is embedded at the first level for a first preset time when the touch detection signal is at the first level.
[0043] Figure 8 This is a schematic diagram of the atomization control device in one embodiment. Detailed Implementation
[0044] The present application will now be described in further detail with reference to specific embodiments and accompanying drawings. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0045] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0046] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0047] Please refer to the structural diagram of the electronic atomizer 10. Figure 1 The electronic atomizer 10 includes a touch sensor 11, a processor 12, and a heating wire 13. The touch switch is an integrated design of the touch sensor 11 on the electronic atomizer 10. The consistency of the touch switch is the main factor affecting the stability of the touch detection signal generated by the touch switch. Touch switch consistency refers to the ability of the touch switch to maintain stable and reliable triggering performance under different usage conditions or multiple operations. Considering the consistency of the touch switch, the influence of vapor on the touch point of the electronic atomizer 10, and the influence of the touch point area when the user's lips or the user holds the device, the touch detection signal generated by the touch sensor 11 may experience occasional interruptions, making the touch detection signal unstable.
[0048] To address these issues, related technologies typically improve the sensitivity of touch detection signals. However, this approach can lead to frequent false triggering of the touch detection signal.
[0049] To avoid instability in the touch detection signal due to the inconsistency of the touch switch and the influence of the external contact area of the electronic atomizer 10, this application proposes an atomization control method applied to the electronic atomizer 10. In the atomization control method, the touch detection signal generated by the touch sensor 11 is acquired, and a virtual touch signal is generated in response to the state of the touch detection signal. If the touch detection signal is at a first level, the virtual touch signal is built into the first level for a first preset time. During the period when the virtual touch signal is at the first level, the electronic atomizer 10 is configured to generate heat in response to the inhalation action.
[0050] The atomization control method provided in the embodiments of this application is described below with reference to the accompanying drawings.
[0051] Figure 2 A flowchart of an atomization control method provided in an embodiment of this application is shown. This atomization control method is applied to an electronic atomizer 10, and will be described in detail below.
[0052] Step S10: Obtain the touch detection signal generated by the touch sensor 11, and generate a virtual touch signal in response to the state of the touch detection signal.
[0053] In some embodiments, touch points are provided on the electronic atomizer 10, allowing users to control the electronic atomizer 10 through actions such as tapping, swiping, or long-pressing. The touch sensor 11 is the core component for implementing the touch point function. The touch sensor 11 can be a capacitive or resistive touch sensor, identifying user operations by detecting changes in capacitance or resistance. When the user controls the electronic atomizer 10, a touch detection signal generated by the touch sensor 11 is acquired. The touch detection signal has states including a triggered state and a non-triggered state. The touch sensor 11 generates a triggered state touch detection signal when touched by the user, and a non-triggered state touch detection signal when not touched by the user. The triggered state touch detection signal can be represented in the form of a first level. Logical processing is performed on the touch detection signal in response to its state to generate a corresponding virtual touch signal.
[0054] Step S20: Check if the touch detection signal is at the first level.
[0055] In some embodiments, a fixed reference level is set, and the touch detection signal is compared with the reference level. If the touch detection signal is higher than the reference level, the touch detection signal is at the first level; otherwise, the touch detection signal is not at the first level.
[0056] If the touch detection signal is at the first level, execute step S30: embed the virtual touch signal into the first level for a first preset time.
[0057] In some embodiments, if the touch detection signal is at the first level at any time, the virtual touch signal is built into the first level for a first preset time. This is because the touch detection signal may be intermittent due to unstable contact. Building the virtual touch signal into the first level for a first preset time when the touch detection signal is at the first level can provide a buffer time to generate a stable virtual touch signal.
[0058] Step S40: During the period when the virtual touch signal is at the first level, the electronic atomizer 10 is configured to generate heat in response to the inhalation action.
[0059] In some embodiments, the electronic atomizer 10 further includes an airflow sensor for generating an airflow detection signal. When the airflow detection signal is detected, it indicates that the user has performed a puffing action. During the period when the virtual touch signal is at a first level, the electronic atomizer 10 is configured to generate heat in response to the puffing action.
[0060] According to the atomization control method of the above embodiment, when the touch detection signal is at the first level, the virtual touch signal is built into the first level for a first preset time, so as to avoid the situation where the touch detection signal is sometimes present and sometimes absent due to unstable user contact or other reasons, and thus the virtual touch signal is also sometimes present and sometimes absent. After the virtual touch signal is built into the first level for the first preset time, a stable virtual touch signal is generated. During the period when the virtual touch signal is at the first level, the electronic atomizer 10 is configured to generate heat in response to the inhalation action.
[0061] Please refer to Figure 3 In some embodiments, the atomization control method further includes steps S50 to S570, which are described in detail below.
[0062] Step S50: Whether the touch detection signal switches from the first level to the non-trigger state.
[0063] In some embodiments, the touch detection signal is detected by an edge-triggered circuit to switch from a first level to a non-triggered state. The edge-triggered circuit determines whether the touch detection signal has switched from the first level to a non-triggered state by directly detecting the level change of the touch detection signal and outputting a pulse signal. The edge-triggered circuit can be a D flip-flop or a Schmitt trigger.
[0064] If the touch detection signal switches from the first level to the non-trigger state, execute step S60: monitor the duration of the non-trigger state.
[0065] In some embodiments, if the touch detection signal is at the first level, it indicates that the touch sensor 11 is in a triggered state. At this time, the touch sensor 11 corresponding to the touch point detects the user's touch and generates a touch detection signal. The touch detection signal switching from the first level to the non-triggered state includes both the case where the user no longer touches the touch point, thus causing the touch detection signal to switch to the non-triggered state, and the case where the touch detection signal switches to the non-triggered state due to unstable contact. Therefore, if the touch detection signal switches from the first level to the non-triggered state, it is necessary to further monitor the duration of the non-triggered state and make subsequent judgments and corresponding signal processing based on the duration of the non-triggered state.
[0066] Step S70: After the duration reaches the first preset time, reset the virtual touch signal.
[0067] In some embodiments, after the duration of the non-triggering state reaches a first preset time, it indicates that the touch sensor 11 did not briefly switch to the non-triggering state due to unstable contact, but rather because the touch sensor 11 switched to the non-triggering state and remained in it for a certain period of time due to the user no longer touching the touch point or other reasons. At this time, the virtual touch signal needs to be reset. The virtual touch signal can be set to a second level.
[0068] In some embodiments, by monitoring the duration of the non-triggering state until a first preset time is reached before resetting the virtual touch signal, the phenomenon of the virtual touch signal being reset when the touch sensor 11 switches to the non-triggering state due to accidental interference can be avoided, thus enabling the electronic atomizer 10 to maintain a stable working state.
[0069] Please refer to Figures 4 to 6 In some embodiments, the analysis combines timing diagrams of the touch detection signal and the virtual touch signal, where the first level is high and the non-trigger state is low. Please refer to... Figure 4 If a touch detection signal is detected to be high at time t0, the corresponding virtual touch signal will also be high, and will remain high for the subsequent time t1. In other words, if a touch detection signal is detected to be high at any time, the corresponding virtual touch signal will also be set to high, with a delay of t1 between the high-level virtual touch signal and the high-level virtual touch signal, thus generating a virtual touch signal corresponding to the touch detection signal. Please refer to [reference needed]. Figure 5 If a touch detection signal is detected to be high at time t0, the corresponding virtual touch signal will also be high. When the touch detection signal switches from high to low, the duration of the low level is monitored. If the duration of the low level does not reach the first preset time, the corresponding virtual touch signal will remain high.
[0070] Please refer to Figure 6 If a touch detection signal is detected to be high at time t0, the corresponding virtual touch signal will also be high. When the touch detection signal switches from high to low, if the duration of the low level reaches the first preset time, the virtual touch signal will be reset, that is, the corresponding virtual touch signal will be set to low.
[0071] In some embodiments, the electronic atomizer 10 includes a mouthpiece assembly, and the touch sensor 11 includes a first touch sensor; the first touch sensor is disposed on the mouthpiece assembly and is used to generate a first touch detection signal in response to contact with the user's lips;
[0072] In some embodiments, when the first touch detection signal is at a first level, it indicates that the first touch sensor is in a triggered state. If the touch detection signal is at a first level, step S20: the virtual touch signal is built into the first level for a first preset time, including step S21, which is described in detail below.
[0073] If the first touch detection signal deviates from the first level, then step S21 is executed: control the virtual touch signal to maintain the first level for a first preset time.
[0074] In some embodiments, when the first touch detection signal is at the first level, it indicates that the first touch sensor is responding to the user's lip contact with the mouthpiece assembly and is in a triggered state. If the first touch detection signal deviates from the first level, the virtual touch signal is controlled to remain at the first level for a first preset time. This is because when the user's lips are briefly separated from the mouthpiece assembly, the first touch detection signal will deviate from the first level. However, this does not mean that the user has stopped using the electronic atomizer 10, but rather that it is an occasional or temporary adjustment. At this time, it is still necessary to keep the electronic atomizer 10 in a state where it can respond to inhalation and generate heat. Therefore, the virtual touch signal is controlled to remain at the first level for a first preset time.
[0075] In some embodiments, occasional interference (such as brief separation of the user's lips from the nozzle assembly) is usually short-lived, but may cause the first touch detection signal to deviate from the first level. By controlling the virtual touch signal to remain at the first level for a first preset time when the first touch detection signal deviates from the first level, occasional interference can be shielded to avoid affecting the accuracy of the virtual touch signal.
[0076] In some embodiments, the electronic atomizer 10 further includes a housing assembly, and the touch sensor 11 further includes a second touch sensor disposed on the housing assembly; the second touch sensor is used to generate a second touch detection signal in response to a gripping operation of the housing assembly;
[0077] In some embodiments, when the second touch detection signal is at the first level, it indicates that the second touch sensor is in a triggered state. If the touch detection signal is at the first level, step S20: the virtual touch signal is built into the first level for a first preset time, including step S22, which is described in detail below.
[0078] If the second touch detection signal deviates from the first level, then step S22 is executed: control the virtual touch signal to maintain the first level for a first preset time.
[0079] In some embodiments, when the second touch detection signal is at the first level, it indicates that the second touch sensor is responding to the user's gripping operation on the housing component and is in a triggered state. If the second touch detection signal deviates from the first level, the virtual touch signal is controlled to remain at the first level for a first preset time. This is because when the user briefly separates from the housing component while gripping, the second touch detection signal will deviate from the first level. However, this does not mean that the user has stopped using the electronic atomizer 10, but rather that it is an occasional or temporary adjustment situation. It is still necessary to keep the electronic atomizer 10 in a state where it can respond to inhalation and generate heat. Therefore, the virtual touch signal is controlled to remain at the first level for a first preset time.
[0080] In some embodiments, occasional interference (such as a brief separation of the hand from the housing component due to hand movement when the user is holding the housing component) is usually short-lived, but may cause the second touch detection signal to deviate from the first level. By controlling the virtual touch signal to remain at the first level for a first preset time when the second touch detection signal deviates from the first level, occasional interference can be shielded to avoid affecting the accuracy of the virtual touch signal.
[0081] Please refer to Figure 7 In some embodiments, step S200: whether the first touch detection signal and the second touch detection signal are at the first level, includes steps S25 to S26, which will be described in detail below.
[0082] When both the first touch detection signal and the second touch detection signal are at the first level, then step S25 is executed: set the virtual touch signal to the first level and maintain it;
[0083] If at least one of the first touch detection signal or the second touch detection signal deviates from the first level, then step S26 is executed: control the virtual touch signal to maintain the first level for a first preset time.
[0084] In some embodiments, when the first touch detection signal is at a first level, it indicates that the first touch sensor is in response to the user's lips contacting the mouthpiece assembly and is in a triggered state. When the second touch detection signal is at a second level, it indicates that the second touch sensor is in response to the user's gripping of the housing assembly and is in a triggered state. When both the first and second touch detection signals are at the first level, that is, when the user's lips are in contact with the mouthpiece assembly and the user is gripping the housing assembly, and both the first and second touch sensors are in a triggered state, the virtual touch signal is set to the first level and maintained. By designing the virtual touch signal to be set to the first level only when the mouthpiece assembly and the housing assembly are simultaneously contacted by the user, a double guarantee is provided to ensure that the e-atomizer 10 can only respond to the inhalation action and generate heat when both effective contacts are achieved. If at least one of the first or second touch detection signals deviates from the first level, the virtual touch signal is controlled to maintain the first level for a first preset time, so that the e-atomizer 10 can respond to the inhalation and generate heat without affecting the user's ability to do so when briefly leaving the mouthpiece assembly or the housing assembly.
[0085] In some embodiments, determining the virtual touch signal using a first touch detection signal and a second touch detection signal is a dual-protection method. When both the first and second touch detection signals are at a first level, it indicates that the mouthpiece assembly and the housing assembly have been touched by the user, and the user has triggered the atomizer 10 to generate heat. At this time, setting the virtual touch signal to the first level and maintaining it helps the atomizer 10 to respond to the virtual touch signal and generate heat in a timely manner. When at least one of the first or second touch detection signals deviates from the first level, occasional interference (such as the user's lips briefly separating from the mouthpiece assembly, or the user's hand briefly separating from the housing assembly due to hand movement while holding it) is usually short-lived, but may cause at least one of the first or second touch detection signals to deviate from the first level. By controlling the virtual touch signal to maintain the first level for a first preset time when at least one of the first or second touch detection signals deviates from the first level, the occasional interference received by at least one of the mouthpiece assembly and the housing assembly can be shielded, thus avoiding affecting the accuracy of the virtual touch signal.
[0086] In some embodiments, the first level is a high level or a low level;
[0087] And / or, the first preset time is 0 to 2 seconds.
[0088] In some embodiments, the first level can be a high level or a low level, and this application embodiment does not specifically limit it. If the touch detection signal has a non-trigger state for more than a first preset time, the virtual touch signal cannot be set to a signal containing a continuous first level. In this case, the first preset time is continuously increased to ensure that a signal containing a continuous first level is generated. The first preset time can be set to 0 seconds to 2 seconds.
[0089] Please refer to Figure 8 One embodiment provides an atomization control device applied to an electronic atomizer 10, comprising:
[0090] The signal acquisition module 100 is used to acquire the touch detection signal generated by the touch sensor 11 and generate a virtual touch signal in response to the state of the touch detection signal.
[0091] The signal setting module 200 is used to set the virtual touch signal to the first level for a first preset time if the touch detection signal is at the first level.
[0092] The heating control module 300 is configured to generate heat in response to a suction action when the virtual touch signal is at a first level.
[0093] In some embodiments, the electronic atomizer 10 includes a mouthpiece assembly, and the touch sensor 11 includes a first touch sensor; the first touch sensor is disposed on the mouthpiece assembly and is used to generate a first touch detection signal in response to contact with the user's lips.
[0094] In some embodiments, the electronic atomizer 10 further includes a housing assembly, and the touch sensor 11 includes a second touch sensor; the second touch sensor is disposed on the housing assembly and is used to generate a second touch detection signal in response to a gripping operation of the housing assembly.
[0095] In some embodiments, the signal setting module 200 includes a first signal setting module 201 and a second signal setting module 202;
[0096] The first signal setting module 201 is used to set the virtual touch signal to the first level and maintain it when both the first touch detection signal and the second touch detection signal are at the first level.
[0097] The second signal setting module 202 is used to control the virtual touch signal to maintain the first level for a first preset time if at least one of the first touch detection signal or the second touch detection signal deviates from the first level.
[0098] Please return to the reference. Figure 1 One embodiment provides an electronic atomizer 10, which includes a touch sensor 11 and a processor 12;
[0099] Touch sensor 11 is used to generate touch detection signals in response to user operations;
[0100] Processor 12 is used to implement the atomization control method of steps S10 to S30.
[0101] One embodiment provides a computer-readable storage medium including a computer program and / or instructions, which, when executed by a processor 12, implement a fogging control method.
[0102] Those skilled in the art will understand that all or part of the functions of the various methods in the above embodiments can be implemented by hardware or by computer programs. When all or part of the functions in the above embodiments are implemented by computer programs, the program can be stored in a computer-readable storage medium, which may include: read-only memory, random access memory, disk, optical disk, hard disk, etc., and the above functions are implemented by executing the program by a computer. For example, the program can be stored in the memory of a device, and when the program in the memory is executed by the processor, all or part of the above functions can be implemented.
[0103] In addition, when all or part of the functions in the above embodiments are implemented by computer programs, the programs can also be stored in storage media such as servers, other computers, disks, optical discs, flash drives, or portable hard drives. They can be downloaded or copied to the memory of the local device, or the system of the local device can be updated. When the program in the memory is executed by the processor, all or part of the functions in the above embodiments can be implemented.
[0104] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.
Claims
1. An atomization control method, applied to an electronic atomizer, characterized in that, include: Acquire touch detection signals generated by touch sensors, and generate virtual touch signals in response to the state of the touch detection signals; If the touch detection signal is at the first level, the virtual touch signal will be set to the first level for a first preset time. During the period when the virtual touch signal is at the first level, the electronic atomizer is configured to generate heat in response to the inhalation action.
2. The atomization control method as described in claim 1, characterized in that, Also includes: If the touch detection signal switches from the first level to a non-trigger state, the duration of the non-trigger state is monitored. After the duration reaches a first preset time, the virtual touch signal is reset.
3. The atomization control method as described in claim 1, characterized in that, The electronic atomizer includes a mouthpiece assembly, and the touch sensor includes a first touch sensor; the first touch sensor is disposed on the mouthpiece assembly and is used to generate a first touch detection signal in response to contact with the user's lips. The step of setting the virtual touch signal to the first level when the touch detection signal is at the first level for a first preset time includes: When the first touch detection signal is at the first level, it indicates that the first touch sensor is in a triggered state; If the first touch detection signal deviates from the first level, the virtual touch signal is controlled to maintain the first level for the first preset time.
4. The atomization control method as described in claim 1 or 3, characterized in that, The electronic atomizer also includes a housing assembly, and the touch sensor further includes a second touch sensor disposed on the housing assembly; the second touch sensor is used to generate a second touch detection signal in response to a gripping operation of the housing assembly.
5. The atomization control method as described in claim 4, characterized in that, The step of setting the virtual touch signal to the first level when the touch detection signal is at the first level for a first preset time includes: When the second touch detection signal is at the first level, it indicates that the second touch sensor is in a triggered state; If the second touch detection signal deviates from the first level, the virtual touch signal is controlled to maintain the first level for the first preset time.
6. The atomization control method as described in claim 4, characterized in that, The step of setting the virtual touch signal to the first level when the touch detection signal is at the first level for a first preset time includes: When both the first touch detection signal and the second touch detection signal are at the first level, the virtual touch signal is set to the first level and maintained. If at least one of the first touch detection signal or the second touch detection signal deviates from the first level, the virtual touch signal is controlled to maintain the first level for the first preset time.
7. An atomization control device, applied to an electronic atomizer, comprising: The signal acquisition module is used to acquire the touch detection signal generated by the touch sensor and generate a virtual touch signal in response to the state of the touch detection signal. The signal setting module is used to set the virtual touch signal to the first level for a first preset time when the touch detection signal is at the first level. A heating control module is configured to generate heat in response to a suction action during the period when the virtual touch signal is at a first level.
8. The atomization control device as described in claim 7, characterized in that, The electronic atomizer includes a mouthpiece assembly, and the touch sensor includes a first touch sensor; the first touch sensor is disposed on the mouthpiece assembly and is used to generate a first touch detection signal in response to contact with the user's lips.
9. The atomization control device as described in claim 8, characterized in that, The electronic atomizer also includes a housing assembly, and the touch sensor includes a second touch sensor; the second touch sensor is disposed on the housing assembly and is used to generate a second touch detection signal in response to a gripping operation of the housing assembly.
10. The atomization control device as described in claim 9, characterized in that, The signal setting module includes a first signal setting module and a second signal setting module; The first signal setting module is used to set the virtual touch signal to the first level and maintain it when both the first touch detection signal and the second touch detection signal are at the first level; The second signal setting module is configured to control the virtual touch signal to maintain the first level for the first preset time period if at least one of the first touch detection signal or the second touch detection signal deviates from the first level.
11. An electronic atomizer, characterized in that, The electronic atomizer includes a touch sensor and a processor; The touch sensor is used to generate a touch detection signal in response to user operations; The processor is used to implement the atomization control method as described in any one of claims 1-6.
12. A computer-readable storage medium comprising a computer program and / or instructions, characterized in that, When the computer program and / or instructions are executed by the processor, they implement the atomization control method as described in any one of claims 1-6.