Lifting / lowering method for atomization core assembly, and related products
By adjusting the lifting position of the atomizing core through the control chip and motor assembly, the problem of oil leakage caused by prolonged contact between the atomizing core and the oil in the atomizing device is solved, improving the user experience and providing intelligent vaping options.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- SHENZHEN DAOSEN SCIENCE & TECHNOLOGY CO LTD
- Filing Date
- 2025-06-30
- Publication Date
- 2026-07-30
AI Technical Summary
Existing atomizing devices suffer from leakage problems due to prolonged contact between the atomizing core and the liquid during use, affecting the user experience. Furthermore, transparent electronic cigarettes lack effective leak prevention measures.
The motor assembly is controlled by a control chip, which intelligently adjusts the lifting position of the atomizing core so that it rises to contact the oil during inhalation and falls to isolate the oil when not inhaling, thus avoiding prolonged contact. The assembly is optimized using linkage components and guide rod structures to reduce structural interference.
It achieves normal atomization during suction, prevents oil leakage when not suctioning, improves user experience, and enhances the intelligent experience through multiple start signal selections.
Smart Images

Figure CN2025106084_30072026_PF_FP_ABST
Abstract
Description
Atomizer coil assembly lifting method and related products
[0001] This application claims priority to Chinese Patent Application No. 2025100888707, filed on January 21, 2025, entitled "Method for Lifting Atomizing Core Components and Related Products", the entire contents of which are incorporated herein by reference. Technical Field
[0002] This application relates to the field of atomization technology, specifically to a lifting method for an atomizing core assembly and related products. Background Technology
[0003] An atomizing device, commonly known as an e-cigarette, typically includes an atomizer coil assembly, an e-liquid cup, and the e-liquid stored in the cup. In current technology, the atomizer coil is separated from the e-liquid at the factory to prevent contact and leakage during transportation or storage. When a consumer first uses the atomizer, they manually lift the coil to contact the e-liquid, and after that, the coil remains in a fixed position. This means the coil is constantly in contact with and immersed in the e-liquid. Excessive e-liquid can prevent proper vaping, causing e-liquid to seep into other components or even out of the atomizer, leading to leakage and malfunction. To address this leakage issue, many attempts have been made, such as using absorbent cotton in opaque e-cigarettes. However, this absorbent cotton absorbs some e-liquid, resulting in waste. Therefore, in order to improve the user experience, transparent e-cigarettes generally do not have absorbent cotton, so the problem of e-cigarette leakage still exists, which reduces the user's experience of using the atomizing device. Summary of the Invention
[0004] This application provides a method for raising and lowering an atomizing core assembly and related products. By controlling the raising and lowering of the atomizing core assembly, the atomizing core assembly is raised when the target needs to inhale, allowing the target to inhale normally without affecting the user experience; when the target does not need to inhale, the atomizing core assembly is lowered to prevent the atomizing core assembly from being in contact with the oil for a long time, avoiding oil leakage and improving the user experience of using the atomizing device.
[0005] In a first aspect, embodiments of this application provide a method for raising and lowering an atomizing core assembly. This method is applied to a control chip for intelligent control. The control chip is located in an atomizing device, which further includes an airflow sensor, an atomizing core assembly, a motor assembly, and an oil cup. The oil cup contains oil, and the atomizing core assembly has an oil inlet. The method includes:
[0006] Obtain a start signal, wherein the start signal is used to instruct the atomizing core assembly to be raised;
[0007] In response to the start signal, the motor assembly raises the atomizing core assembly to a first position relative to the oil cup, so that the oil inlet is entirely located inside the oil cup, allowing the oil in the oil cup to enter the atomizing core assembly through the oil inlet;
[0008] When the atomizing core assembly is in the first position, if no first suction signal is received from the airflow sensor within a first preset condition, the atomizing core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that all the oil inlets are located outside the oil cup, so that the oil in the oil cup cannot enter the atomizing core assembly through the oil inlets. The first suction signal is used to indicate that the target object is sucking on the atomizing device.
[0009] As can be seen, in this embodiment, the position of the atomizing core assembly is not fixed. The control chip can control the motor assembly to raise the atomizing core to the first position or lower the atomizing core to the second position. When the target needs to inhale from the atomizing device, that is, when the control chip receives a start signal, it responds to the start signal by raising the atomizing core assembly to the first position relative to the oil cup via the motor assembly, so that the oil inlet is entirely located inside the oil cup, allowing the oil in the oil cup to enter the atomizing core assembly through the oil inlet. The atomizing core assembly can atomize the entering oil for the target to inhale. When the atomizing core assembly is in the first position, if the target user does not need to inhale from the atomizing device (i.e., no first inhalation signal is received from the airflow sensor within a first preset condition), the motor assembly is controlled to lower the atomizing core assembly to a second position relative to the oil cup. This ensures that the oil inlet is entirely outside the oil cup, preventing oil from entering the atomizing core assembly through the inlet and thus preventing prolonged contact between the atomizing core assembly and the oil, avoiding oil leakage. In other words, the atomizing device of this application allows the target user to inhale normally when needed, without affecting the user experience; and also prevents the atomizing core assembly from prolonged contact with the oil when inhalation is not needed, thereby avoiding oil leakage and improving the user experience of using the atomizing device.
[0010] In one possible implementation, the motor assembly includes a motor and a first linkage, and the atomizing core assembly includes an atomizing core and a second linkage, wherein the first linkage and the second linkage are movably connected.
[0011] The step of raising the atomizing core assembly to a first position relative to the oil cup via the motor assembly in response to the activation signal includes:
[0012] In response to the start signal, the motor is controlled to drive the first linkage to rise, so that the rise of the first linkage drives the second linkage to rise, thereby raising the atomizing core assembly to a first position relative to the oil cup.
[0013] As can be seen, in this embodiment of the application, by setting the first linkage and the second linkage to drive the movement of the atomizing core, the relative position between the motor assembly and the atomizing core assembly is made more flexible, and the space of the internal components can be optimized by the appearance of the atomizing device; in addition, during the assembly process, the setting of the first linkage and the second linkage can reduce the structural interference between the atomizing core and the motor output shaft when they are directly connected, and reduce the assembly difficulty of the product.
[0014] In one possible implementation, the atomizing device further includes physical buttons;
[0015] The activation signal includes a second suction signal received from the airflow sensor and / or a first press signal from the target object against the physical button.
[0016] As can be seen, this application provides three methods for composing activation signals, corresponding to three different methods of lifting the atomizing core component caused by the behavior of the target object: suction behavior of the mouthpiece, pressing behavior of the physical button, and suction behavior of the mouthpiece and pressing behavior of the physical button. The target object can freely choose the behavior that can cause the atomizing core component to lift according to specific needs, providing users with multiple options and improving the user experience.
[0017] In one possible implementation, controlling the motor to drive the first linkage to rise includes:
[0018] If the start signal includes a first pressing signal, then the motor is controlled to drive the first linkage to rise at a first rate;
[0019] If the start signal includes a second suction signal, then the motor is controlled to drive the first linkage to rise at a second rate;
[0020] If the start signal includes the second suction signal and the first pressing signal, then control the motor to drive the first linkage to rise at a third speed;
[0021] Wherein, the third rate is greater than the first rate, and the third rate is greater than the second rate.
[0022] As can be seen from the embodiments of this application, different start signal compositions correspond to different rising rates of the first linkage component, that is, different rising rates of the atomizing core component, so that the target object can obtain a more intelligent experience when using the atomizing device.
[0023] In one possible implementation, the motor assembly includes a motor and a first linkage, and the atomizing core assembly includes an atomizing core and a second linkage, wherein the first linkage and the second linkage are movably connected.
[0024] The step of lowering the atomizing core assembly to a second position relative to the oil cup via the motor assembly includes:
[0025] The motor is controlled to drive the first linkage component to descend, so that the descent of the first linkage component drives the second linkage component to descend, thereby lowering the atomizing core to the second position.
[0026] In one possible implementation, the first preset condition includes a first preset duration;
[0027] The method further includes:
[0028] When the atomizing core assembly is located at the first position, if no suction signal is received from the airflow sensor within a second preset time period, the suction frequency of the target object within a third preset time period is obtained, wherein the start time of the third preset time period is the end time of the second preset time period, and the third preset time period is less than the difference between the first preset time period and the second preset time period.
[0029] If the suction frequency is less than a threshold, the atomizing core assembly is lowered to a third position relative to the oil cup by the motor assembly, so that part of the oil inlet is located inside the oil cup.
[0030] As can be seen, in this embodiment, the atomizer core assembly can be kept from storing too much e-liquid, which matches the vaping frequency of the target object at this time, making the control process more refined and intelligent. It can both match the amount of e-liquid in the atomizer core assembly with the vaping frequency of the target object and prevent the atomizer core assembly from storing too much e-liquid.
[0031] In one possible implementation, a second press signal of a fourth preset duration is received from the target object for the physical button;
[0032] Based on the second pressing signal, it is determined that the atomizing device has entered a preset mode, wherein the atomizing core assembly cannot be lifted by the motor assembly in the preset mode.
[0033] As can be seen in this embodiment, after entering the preset mode, even if the physical button is pressed unintentionally, the atomizer core assembly will not be raised. This prevents the atomizer core assembly from being raised due to accidental touch, causing oil to continuously enter the atomizer core assembly through the oil inlet, resulting in excessive oil storage in the atomizer core assembly and causing oil leakage.
[0034] Secondly, embodiments of this application provide a lifting device for an atomizing core assembly, the device comprising: a transceiver unit and a processing unit;
[0035] The transceiver unit is used to acquire a start signal, wherein the start signal is used to instruct the atomizing core assembly to be raised;
[0036] The processing unit is configured to respond to the start signal by raising the atomizing core assembly to a first position relative to the oil cup via the motor assembly, such that all the oil inlet holes are located inside the oil cup, so that the oil in the oil cup enters the atomizing core assembly through the oil inlet holes;
[0037] The processing unit is configured to, when the atomizing core assembly is in the first position, if it does not receive a first suction signal from the airflow sensor within a first preset condition, lower the atomizing core assembly to a second position relative to the oil cup via the motor assembly, so that all the oil inlets are located outside the oil cup, so that the oil in the oil cup cannot enter the atomizing core assembly through the oil inlets, wherein the first suction signal is used to indicate that the target object is sucking on the atomizing device.
[0038] Thirdly, embodiments of this application provide an atomizing device, the device comprising:
[0039] An oil cup has a receiving cavity for holding oil. The atomizing core assembly has a first position and a second position relative to the oil cup. When the atomizing core assembly is in the first position, all the oil inlets are located inside the receiving cavity, so that the oil in the oil cup enters the atomizing core assembly through the oil inlets. When the atomizing core assembly is in the second position, all the oil inlets are located outside the receiving cavity, so that the oil in the oil cup cannot enter the atomizing core assembly through the oil inlets.
[0040] A motor assembly is connected to the atomizing core assembly, and the motor assembly is used to lift or lower the atomizing core assembly to move the atomizing core assembly to the first position or the second position;
[0041] A control chip electrically connected to the motor assembly, the control chip being capable of performing the method as described in the first aspect, such that the motor assembly raises the atomizing core to the first position or lowers the atomizing core to the second position.
[0042] In one possible implementation, the motor assembly includes a motor and a first linkage, the atomizing core assembly includes an atomizing core and a second linkage, and the drive shaft of the motor is connected to the first linkage.
[0043] The first linkage component is connected to the atomizing core assembly via the second linkage component, so as to link the atomizing core assembly to the first position or the second position.
[0044] As can be seen, in this embodiment of the application, by setting the first linkage and the second linkage to drive the movement of the atomizing core, the relative position between the motor assembly and the atomizing core assembly is made more flexible, and the space of the internal components can be optimized by the appearance of the atomizing device; in addition, during the assembly process, the setting of the first linkage and the second linkage can reduce the structural interference between the atomizing core and the motor output shaft when they are directly connected, and reduce the assembly difficulty of the product.
[0045] In one possible implementation, the motor includes a motor body, a drive shaft, and a guide rod, the guide rod being connected to the motor body and used to guide the movement of the linkage.
[0046] The first linkage component is provided with a guide through hole and a drive through hole. The drive shaft of the motor body is connected to the drive through hole, and the guide rod passes through the guide through hole. The first linkage component is connected to the atomizing core assembly through the second linkage component.
[0047] As can be seen in this embodiment, since the drive shaft connects to the drive through-hole of the first linkage member, when the first linkage member moves up or down, the force of the motor body can be transmitted through the drive shaft, allowing the first linkage member to rise or fall, thereby driving the atomizing core assembly to rise or fall. Furthermore, since the guide rod connects to the guide through-hole of the first linkage member, when the first linkage member moves up or down, the guide rod can stabilize the first linkage member, making its movement more stable and precise. Even further, the smooth movement of the first linkage member along the lifting trajectory can guide the lifting trajectory of the second linkage member, thereby constraining the lifting trajectory of the atomizing core assembly and causing it to move along a preset trajectory.
[0048] In one possible implementation, the atomizing device further includes an airflow sensor electrically connected to the control chip, the control chip being able to receive a suction signal generated by the airflow sensor and control the operation of the motor assembly based on the suction signal.
[0049] As can be seen in this embodiment, when the target object is sucking, the motor assembly is controlled to raise the atomizing core to the first position. The oil inlet is located in the receiving cavity, and the oil in the oil cup enters the atomizing core assembly through the oil inlet. The atomizing core assembly can atomize the incoming oil for the target object to suck. In other words, the atomizing device in this application enables the target object to suck normally when needed without affecting the user experience.
[0050] In one possible implementation, the atomizing device further includes a physical button electrically connected to the control chip, the control chip being able to generate a pressing signal triggered by pressing the physical button, and controlling the operation of the motor assembly based on the pressing signal.
[0051] As can be seen, this application embodiment also provides another method for controlling the rise of the atomizing core component, which the target can freely choose according to specific needs, thereby improving the user experience.
[0052] In one embodiment of this application, the oil cup of the atomizing device is a transparent oil cup, and the atomizing core of the atomizing device is provided with oil-absorbing cotton, wherein the oil-absorbing cotton can absorb the e-liquid in the atomizing core and prevent oil leakage. Optionally, the oil-absorbing cotton and the atomizing core are integrally formed.
[0053] In one embodiment of this application, the control chip of the atomizing device can also obtain the working time of the atomizing core and raise or lower the atomizing core assembly based on the working time of the atomizing core.
[0054] Optionally, when the control chip detects that the atomizing core is in working mode, the control chip obtains the first working time of the atomizing core. If the first working time is greater than or equal to a first preset time, the motor assembly raises the atomizing core assembly to a first position relative to the oil cup, allowing the oil in the oil cup to enter the atomizing core assembly through the oil inlet. That is, if the first working time is greater than or equal to the first preset time, it can be determined that the user has a smoking need. At this time, raising the atomizing core assembly to the first position relative to the oil cup allows the oil to enter the atomizing core assembly, enabling the atomizing core to atomize the oil and meet the user's smoking needs. After raising the atomizer coil assembly to the first position, the second operating time of the atomizer coil is continuously monitored. If the second operating time is greater than or equal to the second preset time, the atomizer coil assembly will be lowered to the second position relative to the oil cup via the motor assembly. This prevents the oil in the oil cup from entering the atomizer coil assembly through the oil inlet. In other words, if the second operating time is greater than or equal to the second preset time, it can be determined that the user's smoking behavior has ended and the user no longer has a need to smoke. The atomizer coil assembly is then lowered to the second position relative to the oil cup to prevent excessive oil from entering the atomizer coil assembly and to prevent oil leakage from the atomizer coil assembly, thereby avoiding the problem of oil leakage.
[0055] Fourthly, embodiments of this application provide an electronic device, including: a processor and a memory, the processor being connected to the memory, the memory being used to store a computer program, and the processor being used to execute the computer program stored in the memory, so that the electronic device performs the method as described in the first aspect.
[0056] Fifthly, embodiments of this application provide a computer-readable storage medium storing a computer program that causes a computer to perform the method as described in the first aspect.
[0057] In a sixth aspect, embodiments of this application provide a computer program product, the computer program product including a non-transitory computer-readable storage medium storing a computer program, and a computer operable to perform the method as described in the first aspect. Attached Figure Description
[0058] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0059] Figure 1 is a schematic diagram of an atomizing device provided in an embodiment of this application;
[0060] Figure 2 is an exploded view of Figure 1 provided in an embodiment of this application;
[0061] Figure 3 is another exploded view of Figure 1 provided in an embodiment of this application;
[0062] Figure 4 is a schematic diagram of an atomizing core assembly provided in an embodiment of this application;
[0063] Figure 5 is a schematic diagram of an oil cup provided in an embodiment of this application;
[0064] Figure 6 is a schematic diagram of an atomizing core assembly in a descending state according to an embodiment of this application;
[0065] Figure 7 is a schematic diagram of an atomizing core assembly in a rising state according to an embodiment of this application;
[0066] Figure 8 is an exploded view of a motor assembly provided in an embodiment of this application;
[0067] Figure 9 is a flowchart illustrating a lifting method for an atomizing core assembly according to an embodiment of this application;
[0068] Figure 10 is a functional unit block diagram of a lifting device for an atomizing core assembly provided in an embodiment of this application;
[0069] Figure 11 is a schematic diagram of the structure of an electronic device provided in an embodiment of this application.
[0070] It should be noted that the accompanying drawings are not necessarily drawn to scale, but are shown only in a schematic manner without affecting the reader's understanding.
[0071] Explanation of reference numerals in the attached drawings: 1000-Atomizing device, 10-Mouthpiece, 20-First housing, 21-Second housing, 30-Physical button, 40-Atomizer core assembly, 41-Oil inlet, 42-Atomizer core, 43-Second linkage, 44-Part located inside the receiving cavity, 50-Motor assembly, 51-Motor, 511-Motor body, 512-Drive shaft, 513-Guide rod, 52-First linkage, 521-Guide through hole, 522-Drive through hole, 60-Oil cup, 61-Receiving cavity, 62-Lifting through hole, 70-Airflow sensor, 80-Control chip, 90-Battery. Detailed Implementation
[0072] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0073] The terms "first," "second," "third," and "fourth," etc., used in the specification, claims, and drawings of this application are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or apparatus that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or apparatuses.
[0074] In this document, the term "embodiment" means that a particular feature, result, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0075] To facilitate understanding of the technical solution of this application, the relevant technical terms involved in this application will be explained first.
[0076] Target object: The target object in this application can be a user, virtual human, robot, or digital human, etc. In this application, the target object is a user as an example.
[0077] Atomizing device: In this application, an atomizing device refers to a device that atomizes a liquid for inhalation by a target object.
[0078] Airflow sensor: The airflow sensor in this application can be a microphone, a capacitive microphone, or a switching microphone, used to convert changes in airflow into electrical signals. This application does not limit the type of microphone.
[0079] It should be noted that, in this application, the structure of the atomizing device 1000 involved in this application will be described first.
[0080] Referring first to Figures 1 to 8, Figure 1 is a schematic diagram of the structure of an atomizing device 1000 provided in an embodiment of this application. The atomizing device 1000 includes a mouthpiece 10, a first housing 20, a second housing 21, and a physical button 30.
[0081] Figure 2 is an exploded view of Figure 1 provided in an embodiment of this application. The atomizing device 1000 in Figure 2 includes a nozzle 10, a first housing 20, a second housing 21, an atomizing core assembly 40, a motor assembly 50, an oil cup 60, and a battery 90.
[0082] Figure 3 is another exploded view of Figure 1 provided in an embodiment of this application. The atomizing device 1000 in Figure 3 includes a nozzle 10, a first housing 20, a second housing 21, a physical button 30, an airflow sensor 70, and a control chip 80.
[0083] It should be noted that the atomizing core assembly 40 in the atomizing device 1000 of Figures 1 to 3 is in the second position relative to the oil cup 60, which can also be described as the atomizing core assembly 40 being in a descending state.
[0084] The atomizer core assembly 40 is provided with an oil inlet 41. Referring to Figure 4, Figure 4 is a structural schematic diagram of an atomizer core assembly 40 provided in an embodiment of this application. E-liquid in the oil cup 60 can enter the atomizer core assembly 40 through the oil inlet 41. It should be noted that this application does not limit the number of oil inlets 41, nor the radius of the oil inlets 41, nor the position of the oil inlets 41 in the atomizer core assembly 40. That is, the oil inlets 41 in this application can be arranged on the same plane on the outer wall of the atomizer core assembly 40, or they can be arranged on different planes on the outer wall of the atomizer core assembly 40. This application uses the example of the oil inlets being arranged on the same plane on the outer wall of the atomizer core assembly 40 for illustration.
[0085] The oil cup 60 has a receiving cavity 61 for holding oil. Referring to Figure 5, Figure 5 is a structural schematic diagram of an oil cup 60 provided in an embodiment of this application. The atomizing core assembly 40 has a first position and a second position relative to the oil cup 60. When the atomizing core assembly 40 is located in the first position, all the oil inlet holes 41 are located inside the receiving cavity 61, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet holes 41. When the atomizing core assembly 40 is located in the second position, all the oil inlet holes 41 are located outside the receiving cavity 61, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet holes 41.
[0086] Specifically, the atomizing core assembly 40 has a second position relative to the oil cup 60. When the atomizing core assembly 40 is in the second position, all the oil inlet holes 41 are located outside the receiving cavity 61, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet holes 41. For ease of understanding, the atomizing core assembly 40 having a second position relative to the oil cup 60 can also be understood as the atomizing core assembly 40 being in a lowered state. Referring to FIG6, FIG6 is a structural schematic diagram of an atomizing core assembly 40 in a lowered state according to an embodiment of this application. As shown in the first cross-sectional view of the atomizing device 1000 in FIG6, the position of the atomizing core assembly 40 in FIG6 is having a second position relative to the oil cup 60. In the first cross-sectional view, the oil cup 60 contains oil in its receiving cavity 61. When the atomizing coil assembly 40 is in a second position relative to the oil cup 60, the atomizing coil assembly 40 is in a lowered state, and the oil inlet 41 is located outside the receiving cavity 61, preventing the oil in the oil cup 60 from entering the atomizing coil assembly 40 through the oil inlet 41. Because the first cross-sectional view does not directly show the oil inlet 41 located outside the receiving cavity 61, as shown in the first structural diagram of the atomizing coil assembly 40 in its lowered state in Figure 6, the portion 44 of the atomizing coil assembly 40 located inside the receiving cavity 61 is in contact with the oil. In the first structural diagram, the portion inside the receiving cavity 61 does not include the oil inlet 41. Therefore, when the atomizing coil assembly 40 is in the second position relative to the oil cup 60, all the oil inlets 41 on the atomizing coil assembly 40 are located outside the receiving cavity 61, and the oil inlets 41 in Figure 6 are obscured and cannot be shown. All the oil inlet holes 41 on the atomizing core assembly 40 are located outside the receiving cavity 61, so the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet holes 41.
[0087] Specifically, the atomizing core assembly 40 has a first position relative to the oil cup 60. When the atomizing core assembly 40 is in the first position, all the oil inlets 41 are located in the receiving cavity 61, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlets 41. For ease of understanding, the atomizing core assembly 40 having a first position relative to the oil cup 60 can also be understood as the atomizing core assembly 40 being in a rising state. Referring to Figure 7, Figure 7 is a structural schematic diagram of an atomizing core assembly 40 in a rising state according to an embodiment of this application. The position of the atomizing core assembly 40 in Figure 7 is the first position relative to the oil cup 60. As shown in the second cross-sectional view of the atomizing device 1000 in Figure 7, the receiving cavity 61 of the oil cup 60 stores oil. When the atomizing core assembly 40 is in a first position relative to the oil cup 60, the atomizing core assembly 40 is raised, and the oil inlet 41 is located in the receiving cavity 61, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41. Comparing the position of the atomizing core assembly 40 in Figure 6, it can be seen that the position of the atomizing core assembly 40 in Figure 7 has been raised to a certain height. To observe the position of the oil inlet 41 more clearly, a second structural diagram of the atomizing core assembly 40 in the raised state in Figure 7 is shown. The portion 44 of the atomizing core assembly 40 located inside the receiving cavity 61 is in contact with the oil. In the second structural diagram, the portion 44 located inside the receiving cavity 61 includes all of the oil inlet 41. Therefore, due to the atomizing core assembly 40 being raised to the first position, the oil inlet 41 is entirely located inside the receiving cavity 61. The oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41.
[0088] A motor assembly 50 is connected to the atomizing core assembly 40. The motor assembly 50 is used to lift or lower the atomizing core assembly 40 to move the atomizing core assembly 40 to the first position or the second position.
[0089] And a control chip 80, which is electrically connected to the motor assembly 50. The control chip 80 can control the motor assembly 50 to raise the atomizing core 42 to the first position or lower the atomizing core 42 to the second position.
[0090] It should be noted that the operation of the atomizing device 1000 is powered by the battery 90.
[0091] As can be seen, in this embodiment, the position of the atomizing core assembly 40 is not fixed. The control chip 80 can control the motor assembly 50 to raise the atomizing core 42 to the first position or lower the atomizing core 42 to the second position. When the target needs to inhale from the atomizing device 1000, the motor assembly 50 is controlled to raise the atomizing core 42 to the first position, with the oil inlet 41 located in the receiving cavity 61. The oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41, and the atomizing core assembly 40 atomizes the incoming oil for the target to inhale. When the target does not need to inhale from the atomizing device 1000, the motor assembly 50 is controlled to lower the atomizing core assembly 40 to the second position, with the oil inlet 41 located outside the receiving cavity 61, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet 41, preventing prolonged contact between the atomizing core assembly 40 and the oil, and avoiding oil leakage. In other words, the atomizing device 1000 in this application can both enable the target user to inhale normally when inhalation is needed, thus improving the user experience, and prevent the atomizing core component 40 from being in contact for a long time when inhalation is not needed, thereby avoiding oil leakage and improving the user experience of using the atomizing device 1000.
[0092] Optionally, as shown in Figure 5, the oil cup 60 (as shown in Figure 2) has a lifting through-hole 62, and the receiving cavity 61 is connected to the external space of the oil cup 60 through the lifting through-hole 62. The outer periphery of the atomizing core assembly 40 is sealed to the wall of the lifting through-hole 62, and the atomizing core assembly 40 enters the receiving cavity 61 through the lifting through-hole 62 to move to the first position and the second position relative to the oil cup 60. Specifically, the oil cup 60 also includes a sealing silicone with a through-hole, the through-hole of which is the same size as the lifting through-hole 62. The outer periphery of the atomizing core assembly 40 passes through the through-hole of the sealing silicone and the lifting through-hole 62, and the sealing silicone seals the outer periphery of the atomizing core assembly 40 to the wall of the lifting through-hole 62 to prevent the oil in the receiving cavity 61 from flowing out of the cavity and contaminating other components inside the atomizing device 1000, thus affecting the normal use of the atomizing device 1000.
[0093] Optionally, as shown in FIG8, the motor assembly 50 includes a motor 51 and a first linkage 52, wherein the drive shaft 512 of the motor 51 is connected to the first linkage 52; as shown in FIG4, the atomizing core assembly 40 includes an atomizing core 42 and a second linkage 43, wherein the first linkage 52 is connected to the atomizing core assembly 40 through the second linkage 43 to actuate the atomizing core assembly 40 to the first position or the second position. Specifically, the motor 51 drives the first linkage 52 to rise through the drive shaft 512, and the first linkage 52 is movably connected to the second linkage 43, so that the rise of the first linkage 52 drives the second linkage 43 to rise, thereby raising the atomizing core 42 to the first position relative to the oil cup 60.
[0094] Furthermore, the motor 51 drives the first linkage 52 to descend, thereby driving the second linkage 43 to descend, thus lowering the atomizing core 42 to the second position. As shown in Figure 6, when the atomizing core assembly 40 is in the second position, the first linkage 52 in Figure 6 is at the bottom end of the drive shaft 512, and the atomizing core assembly 40 is in a descending state. As shown in Figure 7, Figure 7 shows the state of the atomizing core assembly 40 after it has risen to the first position in Figure 6. During the rising process, the motor 51 drives the first linkage 52 to rise via the drive shaft 512, thereby driving the second linkage 43 to rise, thus raising the atomizing core 42 to the first position relative to the oil cup 60.
[0095] As can be seen, in this embodiment of the application, by setting the first linkage 52 and the second linkage 43 to drive the movement of the atomizing core 42, the relative position between the motor assembly 50 and the atomizing core assembly 40 is made more flexible, and the space of the internal components can be optimized by the appearance of the atomizing device 1000; in addition, during the assembly process, the setting of the first linkage 52 and the second linkage 43 can reduce the structural interference between the atomizing core 42 and the output shaft of the motor 51 when they are directly connected, and reduce the assembly difficulty of the product.
[0096] Optionally, as shown in FIG8, FIG8 is an exploded schematic diagram of a motor assembly 50 provided in an embodiment of the present application. The motor assembly 50 includes a motor 51 and a first linkage member 52. The motor 51 includes a motor body 511, a drive shaft 512 and a guide rod 513. The guide rod 513 is connected to the motor body 511 and is used to guide the movement of the linkage member.
[0097] The first linkage 52 is provided with a guide through hole 521 and a drive through hole 522. The drive shaft 512 of the motor body 511 is connected to the drive through hole 522, and the guide rod passes through the guide through hole 521. The first linkage 52 and the second linkage 43 are movably connected, and the first linkage 52 is connected to the atomizing core assembly 40 through the second linkage 43.
[0098] As can be seen in this embodiment, since the drive shaft 512 is connected to the drive through hole 522 of the first linkage member 52, when the first linkage member 52 moves up or down, the force of the motor body 511 can be transmitted through the drive shaft 512, allowing the first linkage member 52 to rise or fall, thereby driving the atomizing core assembly 40 to rise or fall. Furthermore, since the guide rod is connected to the guide through hole 521 of the first linkage member 52, when the first linkage member 52 moves up or down, the guide rod can stabilize the first linkage member 52, making the movement of the first linkage member 52 more stable and precise. Even further, the smooth movement of the first linkage member 52 along the lifting trajectory can guide the lifting trajectory of the second linkage member 43, thereby constraining the lifting trajectory of the atomizing core assembly 40 and causing the atomizing core assembly 40 to move along a preset trajectory.
[0099] Optionally, as shown in FIG3, the atomizing device 1000 further includes an airflow sensor 70, which is electrically connected to the control chip 80. The control chip 80 can receive the suction signal generated by the airflow sensor 70 and control the motor assembly 50 to operate based on the pressing signal. Specifically, when the target object performs a suction action on the atomizing device 1000, the airflow sensor 70 generates a suction signal, and then the control chip 80 controls the motor assembly 50 to operate based on the suction signal. Specifically, the control chip 80 controls the motor assembly 50 to raise the atomizing core assembly 40 to a first position relative to the oil cup 60, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41.
[0100] As can be seen from this embodiment, when the target object is sucking, the motor assembly 50 is controlled to raise the atomizing core 42 to the first position. The oil inlet 41 is located in the receiving cavity 61, and the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41. The atomizing core assembly 40 can atomize the entering oil for the target object to suck. In other words, the atomizing device 1000 in this application enables the target object to suck normally when needed without affecting the user experience.
[0101] Optionally, the atomizing device 1000 further includes a physical button 30 electrically connected to the control chip 80. The control chip 80 generates a pressing signal triggered by pressing the physical button 30 and controls the motor assembly 50 to operate based on the pressing signal. Specifically, when a target object presses the physical button 30, the control chip 80 generates a pressing signal triggered by the physical button 30, and then controls the motor assembly 50 to operate based on the pressing signal. Specifically, the control chip 80 controls the motor assembly 50 to raise the atomizing core assembly 40 to a first position relative to the oil cup 60, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41.
[0102] Referring to Figures 1 to 11, it can be seen that in this embodiment of the application, another method for controlling the rise of the atomizing core assembly 40 is also provided. The target user can freely choose according to specific needs, thereby improving the user experience.
[0103] It should be noted that this application also provides a method for raising and lowering the atomizing core assembly 40. This method can be applied to the control chip 80 in the atomizing device 1000 described in the above embodiments. The control chip 80 realizes the raising and lowering method of the atomizing core assembly 40 by controlling the relevant structures in the atomizing device 1000. It should be noted that the structures involved in the raising and lowering method of the atomizing core assembly 40 provided in this application have all been described in the above-described structural embodiments, and will not be repeated here.
[0104] Specifically, the method is applied to a control chip 80, which is located in an atomizing device 1000. The atomizing device 1000 also includes an airflow sensor 70, an atomizing core assembly 40, a motor assembly 50, and an oil cup 60. The oil cup 60 contains oil, and the atomizing core assembly 40 is provided with an oil inlet 41. The control chip 80 receives a start signal, which instructs the control chip 80 to raise the atomizing core assembly 40 via the motor assembly 50. In response to the start signal, the control chip 80 raises the atomizing core assembly 40 to a first position relative to the oil cup 60 via the motor assembly 50, such that the oil inlet 41 is entirely inside the oil cup 60, allowing the oil in the oil cup 60 to enter the atomizing core assembly 40 through the oil inlet 41. If, when the atomizing core assembly 40 is in the first position, a first suction signal is not received from the airflow sensor 70 within a first preset condition, the motor assembly 50 lowers the atomizing core assembly 40 to a second position relative to the oil cup 60, such that the oil inlet 41 is entirely outside the oil cup 60, preventing the oil in the oil cup 60 from entering the atomizing core assembly 40 through the oil inlet 41. The first suction signal indicates that the target object is sucking on the atomizing device 1000.
[0105] As can be seen, in this embodiment, the position of the atomizing core assembly 40 is not fixed. The control chip 80 can control the motor assembly 50 to raise the atomizing core 42 to the first position or lower the atomizing core 42 to the second position. When the target needs to inhale from the atomizing device 1000, that is, when the control chip 80 receives a start signal, it responds to the start signal by raising the atomizing core assembly 40 to the first position relative to the oil cup 60 through the motor assembly 50, so that the oil inlet 41 is entirely located inside the oil cup 60, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41, and the atomizing core assembly 40 can atomize the entering oil for the target to inhale. When the atomizing core assembly 40 is in the first position, if the target user does not need to inhale from the atomizing device 1000 (i.e., no first inhalation signal is received from the airflow sensor 70 within the first preset conditions), the motor assembly 50 is controlled to lower the atomizing core assembly 40 to a second position relative to the oil cup 60. This ensures that the oil inlet 41 is entirely outside the oil cup 60, preventing the oil in the oil cup 60 from entering the atomizing core assembly 40 through the oil inlet 41. This prevents prolonged contact between the atomizing core assembly 40 and the oil, avoiding oil leakage. In other words, the atomizing device 1000 in this application allows the target user to inhale normally when needed, without affecting the user experience; and also prevents prolonged contact between the atomizing core assembly 40 and the target user when not inhaling, thereby avoiding oil leakage and improving the user experience of using the atomizing device 1000.
[0106] Referring to Figures 2 and 9, Figure 9 is a flowchart illustrating a method for raising and lowering an atomizing core assembly 40 according to an embodiment of this application. This method includes, but is not limited to, steps 901-903:
[0107] 901: Get the startup signal.
[0108] The activation signal is used to instruct the atomizing core assembly 40 to be raised.
[0109] It should be noted that the activation signal includes a second suction signal received from the airflow sensor 70 and / or a first press signal from the target object against the physical button 30.
[0110] Specifically, the activation signal includes a second suction signal received from the airflow sensor 70. The airflow sensor 70 is electrically connected to the control chip 80. When a target object inhales through the nozzle 10 of the atomizing device 1000, the airflow sensor 70 detects changes in airflow or capacitance, thereby generating an electrical signal (i.e., the second suction signal), which is then sent to the control chip 80 to instruct the atomizing core assembly 40 to be raised. It should be noted that the airflow sensor 70 can be either a switch type or a capacitive type; this application does not limit this to either.
[0111] Furthermore, the activation signal includes a first press signal from the target object to the physical button 30. The target object can generate the activation signal by pressing the physical button 30, which is electrically connected to the control chip 80. The control chip 80 is capable of generating a press signal triggered by pressing the physical button 30. That is, the first press signal from the target object to the physical button 30 is used to instruct the atomizing core assembly 40 to be raised.
[0112] Furthermore, the activation signal also includes a second suction signal received from the airflow sensor 70 and a first pressing signal from the target object against the physical button 30. That is, when the target object can simultaneously perform suction actions against the nozzle 10 and pressing actions against the physical button 30, the activation signal includes the second suction signal received from the airflow sensor 70 and the first pressing signal from the target object against the physical button 30.
[0113] As can be seen, this application embodiment provides three methods for composing activation signals, corresponding to three different methods of raising the atomizing core assembly 40 caused by the behavior of the target object: the sucking behavior of the mouthpiece 10, the pressing behavior of the physical button 30, and the sucking behavior of the mouthpiece 10 and the pressing behavior of the physical button 30. The target object can freely choose the behavior that can cause the atomizing core assembly 40 to rise according to specific needs, providing users with multiple choices and improving the user experience.
[0114] 902: In response to the start signal, the atomizing core assembly 40 is raised to a first position relative to the oil cup 60 by the motor assembly 50, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41.
[0115] For example, in response to the start signal, the motor assembly 50 raises the atomizing core assembly 40 to a first position relative to the oil cup 60, so that all the oil inlets 41 are located inside the oil cup 60, allowing the oil in the oil cup 60 to enter the atomizing core assembly 40 through the oil inlets 41. The atomizing core assembly 40 can atomize the entered oil for the target to inhale. It should be noted that this application does not limit the number of oil inlets 41, nor the radius of the oil inlets 41, nor the position of the oil inlets 41 in the atomizing core assembly 40. That is, the oil inlets 41 in this application can be arranged on the same plane on the outer wall of the atomizing core assembly 40, or they can be arranged on different planes on the outer wall of the atomizing core assembly 40. This application uses the example of the oil inlets being arranged on the same plane on the outer wall of the atomizing core assembly 40 for illustration.
[0116] As shown in Figure 6, when the atomizer coil assembly 40 is in the second position, the first linkage 52 in Figure 6 is at the bottom end of the drive shaft 512, and the atomizer coil assembly 40 is in a descending state, which can also be understood as the initial state. The control chip 80, in response to the start signal, raises the atomizer coil assembly 40 to the first position relative to the oil cup 60 via the motor assembly 50. Figure 7 shows the state after the atomizer coil assembly 40 in Figure 6 has been raised to the first position.
[0117] In response to the activation signal, the motor assembly 50 raises the atomizer coil assembly 40 to a first position relative to the oil cup 60, meaning all the oil inlets 41 are located inside the oil cup 60. The oil in the oil cup 60 can enter the atomizer coil assembly 40 through the entire diameter of each oil inlet 41. The number and size of the oil inlets 41 can be set based on specific usage scenarios. If faster oil entry into the atomizer coil assembly 40 is required, a larger oil inlet radius and a greater number of oil inlets 41 can be used, allowing for rapid oil entry into the atomizer coil assembly 40.
[0118] Specifically, the motor assembly 50 includes a motor 51 and a first linkage 52, and the atomizing core assembly 40 includes an atomizing core 42 and a second linkage 43. In response to the start signal, the control chip 80 controls the motor 51 to drive the first linkage 52 upwards, thereby driving the second linkage 43 upwards to raise the atomizing core 42 to a first position relative to the oil cup 60. As shown in Figure 7, during the upward movement, the motor 51 drives the first linkage 52 upwards via the drive shaft 512, thereby driving the second linkage 43 upwards to raise the atomizing core 42 to a first position relative to the oil cup 60. Comparing the positions of the first linkage 52 in Figure 7 and Figure 6, it can be seen that the first linkage 52 in Figure 7 is raised to a certain height compared to the first linkage 52 in Figure 6, thus causing the atomizing core assembly 40 in Figure 7 to be raised to a certain height relative to the atomizing core assembly 40 in Figure 6.
[0119] For example, corresponding to the composition of the start signal in step 901, different start signal compositions correspond to different ways of controlling the motor 51 to drive the first linkage 52 to rise.
[0120] Specifically, if the start signal includes a first pressing signal, then the motor 51 is controlled to drive the first linkage 52 to rise at a first rate; if the start signal includes a second suction signal, then the motor 51 is controlled to drive the first linkage 52 to rise at a second rate. If the start signal includes both the second suction signal and the first pressing signal, then the motor 51 is controlled to drive the first linkage 52 to rise at a third rate. The second rate is greater than the first rate, and the third rate is greater than the first rate, and the third rate is greater than the second rate. It should be noted that different rising rates correspond to different output power of the motor 51; the greater the rising rate of the first linkage 52, the greater the output power of the motor 51.
[0121] As can be seen in this embodiment, different activation signals correspond to different rising rates of the first linkage 52, which in turn correspond to different lifting rates of the atomizing core assembly 40. If the activation signal includes a first pressing signal, the motor 51 is controlled to drive the first linkage 52 to rise at a first rate. That is, the target object triggers the activation signal by pressing the physical button 30, but the target object may not have started actually inhaling with its mouth yet. Therefore, at this time, a relatively small first rate can be used to lift the atomizing core assembly 40.
[0122] Furthermore, if the activation signal includes a second suction signal, then the motor 51 is controlled to drive the first linkage 52 to rise at a second rate. That is, the target object triggers the activation signal by sucking on the mouthpiece 10, and the target object has begun to actually suck with its mouth. Therefore, at this time, it is necessary to raise the atomizing core assembly 40 at a relatively large second rate so that the atomizing core 42 can quickly atomize the oil for the target object to suck.
[0123] Furthermore, if the activation signal includes the second suction signal and the first pressing signal, then the motor 51 is controlled to drive the first linkage 52 to rise at a third rate. That is, the target object triggers the activation signal through pressing the physical button 30 and sucking from the mouthpiece 10, indicating a strong sucking intention at this time. Therefore, the atomizing core assembly 40 needs to be raised at the maximum third rate so that the atomizing core 42 can atomize the oil more quickly for the target object to inhale, meeting their requirements. Setting different atomizing core 42 lifting rates for different target object behaviors allows for a more intelligent experience when using the atomizing device 1000.
[0124] 903: When the atomizing core assembly 40 is in the first position, if the first suction signal is not received from the airflow sensor 70 within the first preset conditions, the atomizing core assembly 40 is lowered to the second position relative to the oil cup 60 by the motor assembly 50, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet 41.
[0125] The first suction signal is used to indicate that the target object is sucking the atomizing device 1000.
[0126] For example, when the atomizing core assembly 40 is in the first position, if no first suction signal is received from the airflow sensor 70 within a first preset condition, the atomizing core assembly 40 is lowered to a second position relative to the oil cup 60 by the motor assembly 50, so that the oil inlet 41 is completely located outside the oil cup 60, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet 41. The first suction signal is used to indicate that the target object is sucking the atomizing device 1000.
[0127] For example, the first preset condition includes one or more of the following: first preset duration, preset temperature range, preset humidity range, and preset air flow range. This application does not specifically limit this.
[0128] Optionally, if the first preset condition includes a first preset duration, when the atomizing core assembly 40 is in the first position, that is, when the atomizing core assembly 40 is in the rising state, if no first suction signal is received from the airflow sensor 70 within the first preset duration, it means that the target object has not performed any suction behavior on the mouthpiece 10 of the atomizing device 1000 within the first preset duration. At this time, it can be predicted that the target object has stopped its suction behavior, and the atomizing core assembly 40 is in an idle state. In order to prevent oil from continuing to enter the atomizing core assembly 40 through the oil inlet 41, resulting in oil leakage caused by prolonged contact between the atomizing core assembly 40 and the oil, in this case, the motor assembly 50 lowers the atomizing core assembly 40 to a second position relative to the oil cup 60, so that the oil inlet 41 is completely located outside the oil cup 60, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet 41. In this embodiment, the first preset condition is mainly described using the first preset duration as an example.
[0129] Optionally, if the first preset condition includes a preset temperature range, the atomizing device 1000 further includes a temperature sensor for measuring the temperature generated when the atomizing core 42 is inhaled. The temperature can be used to measure the frequency of the target object's inhalation behavior on the mouthpiece 10. The higher the temperature, the higher the frequency of the target object's inhalation behavior on the mouthpiece 10; the lower the temperature, the lower the frequency of the target object's inhalation behavior on the mouthpiece 10. Therefore, the temperature can be used to predict whether the target object has stopped inhaling. Specifically, a preset temperature range is determined based on historical data. This preset temperature range can represent the temperature range of the atomizing core 42 after the target object has stopped inhaling for a long time. When the atomizing core assembly 40 is in the first position, if no first inhalation signal is received from the airflow sensor 70 within the preset temperature range, it can be predicted that the target object has stopped inhaling, and the atomizing core assembly 40 is in an idle state. To prevent oil from continuing to enter the atomizer core assembly 40 through the oil inlet 41, which could lead to oil leakage due to prolonged contact between the atomizer core assembly 40 and the oil, the motor assembly 50 lowers the atomizer core assembly 40 to a second position relative to the oil cup 60, so that the oil inlet 41 is entirely located outside the oil cup 60, preventing oil in the oil cup 60 from entering the atomizer core assembly 40 through the oil inlet 41.
[0130] Optionally, if the first preset condition includes a preset humidity range, the atomizing device 1000 further includes a humidity sensor. When the atomizing core assembly 40 is working, it produces humidified smoke particles. The humidity sensor measures the humidity of the smoke particles produced by the atomizing core assembly 40 during operation. The humidity level can be used to measure the working state of the atomizing core assembly 40. Higher humidity indicates that the atomizing core assembly 40 is producing smoke particles more frequently, meaning the target object is inhaling from the mouthpiece 10 more frequently. Lower humidity indicates that the atomizing core assembly 40 produces fewer smoke particles, meaning the target object is inhaling from the mouthpiece 10 less frequently. Therefore, humidity can be used to predict whether the target object has stopped inhaling. Specifically, a preset humidity range is determined based on historical data. This preset humidity range can represent the humidity range of the smoke particles after the target object has stopped inhaling for a long time. When the atomizing core assembly 40 is in the first position, if no first inhalation signal is received from the airflow sensor 70 within the preset humidity range, it can be predicted that the target object has stopped inhaling, and the atomizing core assembly 40 is in an idle state. To prevent oil from continuing to enter the atomizer core assembly 40 through the oil inlet 41, which could lead to oil leakage due to prolonged contact between the atomizer core assembly 40 and the oil, the motor assembly 50 lowers the atomizer core assembly 40 to a second position relative to the oil cup 60, so that the oil inlet 41 is entirely located outside the oil cup 60, preventing oil in the oil cup 60 from entering the atomizer core assembly 40 through the oil inlet 41.
[0131] Optionally, if the first preset condition includes a preset airflow range, the airflow sensor 70 detects the airflow. The target object's sucking behavior on the mouthpiece 10 generates airflow. A higher airflow indicates a higher frequency of the target object's sucking behavior on the mouthpiece 10, and a lower airflow indicates a lower frequency. Therefore, the airflow can be used to predict whether the target object has stopped sucking. Specifically, a preset airflow range is determined based on historical data; this preset airflow range can represent the airflow range after the target object has stopped sucking for an extended period. When the atomizing core assembly 40 is in the first position, if no first sucking signal is received from the airflow sensor 70 within the preset airflow range, it can be predicted that the target object has stopped sucking, and the atomizing core assembly 40 is in an idle state. To prevent oil from continuing to enter the atomizer core assembly 40 through the oil inlet 41, which could lead to oil leakage due to prolonged contact between the atomizer core assembly 40 and the oil, the motor assembly 50 lowers the atomizer core assembly 40 to a second position relative to the oil cup 60, so that the oil inlet 41 is entirely located outside the oil cup 60, preventing oil in the oil cup 60 from entering the atomizer core assembly 40 through the oil inlet 41.
[0132] Furthermore, if the first preset conditions include a first preset duration and a preset temperature range, then when the atomizing core assembly 40 is in the first position, if no first suction signal is received from the airflow sensor 70 within the first preset duration and within the preset temperature range, that is, the target object has not engaged in suction behavior on the mouthpiece 10 of the atomizing device 1000 within the first preset duration, and the temperature of the atomizing core assembly 40 is within the preset temperature range, it can be predicted that the target object has paused its suction behavior, and the atomizing core assembly 40 is in an idle state. To prevent oil from continuing to enter the atomizing core assembly 40 through the oil inlet 41, causing oil leakage due to prolonged contact between the atomizing core assembly 40 and the oil, in this case, the motor assembly 50 lowers the atomizing core assembly 40 to a second position relative to the oil cup 60, so that the oil inlet 41 is entirely located outside the oil cup 60, preventing oil in the oil cup 60 from entering the atomizing core assembly 40 through the oil inlet 41.
[0133] After the control chip 80 lowers the atomizer core assembly 40 to the second position relative to the oil cup 60 via the motor assembly 50, the oil inlet 41 is completely outside the oil cup 60, preventing the oil in the oil cup 60 from entering the atomizer core assembly 40 through the oil inlet 41. At this time, only a small amount of e-liquid adsorbed in the atomizer core 42 will remain in the atomizer core assembly 40. Even if the atomizer 1000 is not used for a long time, or if the atomizer 1000 is transported, the atomizer core assembly 40 will not leak.
[0134] Optionally, the motor assembly 50 includes a motor 51 and a first linkage 52, and the atomizing core assembly 40 includes an atomizing core 42 and a second linkage 43; the step of lowering the atomizing core assembly 40 to a second position relative to the oil cup 60 by means of the motor assembly 50 includes: controlling the motor 51 to drive the first linkage 52 to descend, so that the descent of the first linkage 52 drives the second linkage 43 to descend, so as to lower the atomizing core 42 to the second position.
[0135] As shown in Figure 7, the atomizing core assembly 40 in Figure 7 is located in the first position, that is, the atomizing core assembly 40 is in an upward state. If the first suction signal is not received from the airflow sensor 70 within the first preset conditions, the motor 51 drives the first linkage 52 to descend via the drive shaft 512. The descent of the first linkage 52 drives the second linkage 43 to descend, thereby lowering the atomizing core 42 to the second position relative to the oil cup 60, that is, the position of the atomizing core assembly 40 as shown in Figure 6. Comparing the positions of the first linkage 52 in Figure 7 and the first linkage 52 in Figure 6, it can be seen that the first linkage 52 in Figure 6 has descended a certain height compared to the first linkage 52 in Figure 7, thus causing the atomizing core assembly 40 in Figure 6 to descend a certain height relative to the atomizing core assembly 40 in Figure 7.
[0136] As can be seen, in this embodiment of the application, a start signal is obtained, wherein the start signal is used to instruct the atomizing core assembly 40 to be raised; in response to the start signal, the atomizing core assembly 40 is raised to a first position relative to the oil cup 60 by the motor assembly 50, so that the oil inlet 41 is entirely located inside the oil cup 60, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41; when the atomizing core assembly 40 is in the first position, if a first suction signal is not received from the airflow sensor 70 within a first preset condition, the atomizing core assembly 40 is lowered to a second position relative to the oil cup 60 by the motor assembly 50, so that the oil inlet 41 is entirely located outside the oil cup 60, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet 41, wherein the first suction signal is used to indicate that the target object has suction behavior towards the atomizing device 1000. In this embodiment, the position of the atomizing core assembly 40 is not fixed. The control chip 80 can control the motor assembly 50 to raise the atomizing core 42 to the first position or lower the atomizing core 42 to the second position. When the target needs to inhale from the atomizing device 1000, that is, when the control chip 80 receives a start signal, it responds to the start signal by raising the atomizing core assembly 40 to the first position relative to the oil cup 60 via the motor assembly 50, so that the oil inlet 41 is entirely located inside the oil cup 60, allowing the oil in the oil cup 60 to enter the atomizing core assembly 40 through the oil inlet 41. The atomizing core assembly 40 can atomize the entering oil for the target to inhale. When the atomizing core assembly 40 is in the first position, if the target user does not need to inhale from the atomizing device 1000 (i.e., no first inhalation signal is received from the airflow sensor 70 within the first preset conditions), the motor assembly 50 is controlled to lower the atomizing core assembly 40 to a second position relative to the oil cup 60. This ensures that the oil inlet 41 is entirely outside the oil cup 60, preventing the oil in the oil cup 60 from entering the atomizing core assembly 40 through the oil inlet 41. This prevents prolonged contact between the atomizing core assembly 40 and the oil, avoiding oil leakage. In other words, the atomizing device 1000 in this application allows the target user to inhale normally when needed, without affecting the user experience; and also prevents prolonged contact between the atomizing core assembly 40 and the target user when not inhaling, thereby avoiding oil leakage and improving the user experience of using the atomizing device 1000.
[0137] In one embodiment of this application, if the first preset condition is a first preset duration, another method for raising and lowering the atomizing core assembly 40 is also provided, including:
[0138] When the atomizing core assembly 40 is in the first position, if no suction signal is received from the airflow sensor 70 within a second preset time period, the suction frequency of the target object within a third preset time period is obtained, wherein the start time of the third preset time period is the end time of the second preset time period, and the third preset time period is less than the difference between the first preset time period and the second preset time period; if the suction frequency is less than a threshold, the atomizing core assembly 40 is lowered to a third position relative to the oil cup 60 by the motor assembly 50, so that the oil inlet 41 is partially located inside the oil cup 60.
[0139] Specifically, when the atomizing core assembly 40 is in the first position, if no suction signal is received from the airflow sensor 70 within a second preset time period, that is, when the atomizing core assembly 40 is in an upward state, the target object has not sucked on the mouthpiece 10 of the atomizing device 1000 within the second preset time period. At this time, it can be predicted that the target object's sucking desire for the atomizing device 1000 is no longer strong. Therefore, the position of the atomizing core assembly 40 can be adjusted in advance to finely control the rate at which the oil passes through the oil inlet 41. Because the target object's sucking desire is no longer strong at this time, if the oil inlet 41 is still completely located within the oil cup 60, the oil intake speed is very fast, but the target object consumes very little oil, which may lead to excessive oil storage in the atomizing core assembly 40.
[0140] For example, if the first preset duration is 70 minutes, the second preset duration is 20 minutes, and the third preset duration is 20 minutes, the preset duration settings in this application are merely illustrative and do not constitute a limitation on the preset durations in this application. If no suction signal is received from the airflow sensor 70 within 20 minutes, that is, when the atomizing core assembly 40 is in the first position, the target object has not sucked on the mouthpiece 10 of the atomizing device 1000 for 20 minutes. At this time, it can be predicted that the target object's willingness to suck on the atomizing device 1000 is no longer strong. Therefore, the position of the atomizing core assembly 40 can be adjusted in advance, without having to wait until the first preset duration (i.e., 70 minutes) before controlling the atomizing core assembly 40 to descend to the second position.
[0141] Because if the target's vaping intention is no longer strong (i.e., no vaping signal is received from the airflow sensor 70 within the second preset time period), and if the vaping signal is not received from the airflow sensor 70 for another 70 minutes before the atomizer coil assembly 40 is lowered, the oil inlet 41 will be entirely within the oil cup 60 during this process. The rapid oil inflow will cause the atomizer coil assembly 40 to store excessive oil. Therefore, in order to match the oil inflow rate with the target's vaping behavior, it is necessary to obtain the target's vaping frequency to finely control the rate at which oil passes through the oil inlet 41.
[0142] Further, the suction frequency of the target object within a third preset time period is obtained, wherein the start time of the third preset time period is the end time of the second preset time period, and the third preset time period is less than the difference between the first preset time period and the second preset time period. Within the third preset time period, the number of suction signals received from the airflow sensor 70 is obtained; based on the number of times and the third preset time period, the suction frequency is determined. Continuing with the above example, when no suction signal is obtained from the airflow sensor 70 for 20 minutes, the suction frequency of the target object within the third preset time period is detected. Because each suction behavior of the target object corresponds to one suction signal from the airflow sensor 70, the control chip 80 can obtain the number of times the target object performs suction behavior within the third preset time period by obtaining the number of suction signals received from the airflow sensor 70 within the third preset time period. Then, based on the number of times and the third preset time period, the suction frequency is determined.
[0143] Optionally, if the vaping frequency is less than a threshold, the motor assembly 50 lowers the atomizing coil assembly 40 to a third position relative to the oil cup 60, so that the oil inlet 41 is partially located within the oil cup 60. If the vaping frequency is less than the threshold, it is determined that the target's vaping intention is not strong at this time, and the consumption of oil is low. Therefore, in order to match the target's vaping intention at this time, the motor assembly 50 should be controlled to lower the atomizing coil assembly 40 to a third position relative to the oil cup 60, so that the oil inlet 41 is partially located within the oil cup 60. The oil inlet rate is slower when the oil inlet 41 is partially located within the oil cup 60 compared to when the oil inlet 41 is entirely located within the oil cup 60, and the atomizing coil assembly 40 will not store excessive oil, thus matching the target's vaping frequency at this time.
[0144] Furthermore, when the atomizing core assembly 40 is in the third position, if no suction signal is received from the airflow sensor 70 within a fifth preset time period, the motor assembly 50 lowers the atomizing core assembly 40 to a second position relative to the oil cup 60, so that the oil inlet 41 is entirely located outside the oil cup 60, preventing the oil in the oil cup 60 from entering the atomizing core assembly 40 through the oil inlet 41. The fifth preset time period is less than or equal to the difference between the first preset time period and the second preset time period.
[0145] Optionally, if the vaping frequency is greater than or equal to a threshold, the position of the atomizing core assembly 40 is not moved. If the vaping frequency is greater than or equal to the threshold, it indicates that the target object has a strong vaping intention within the third preset time period and a large demand for oil. Therefore, all oil inlets 41 need to be located within the oil cup 60 to maintain a relatively high oil inlet rate to meet the vaping needs of the target object.
[0146] As can be seen in this embodiment, when the atomizing core assembly 40 is in the first position, if no suction signal is received from the airflow sensor 70 within a second preset time period, it is predicted that the target object's suction intention towards the atomizing device 1000 is no longer strong. Therefore, the position of the atomizing core assembly 40 is adjusted in advance to finely control the rate at which the oil passes through the oil inlet 41. Because the target object's suction desire is no longer strong at this time, if the oil inlet 41 is still completely located within the oil cup 60, the oil intake speed is fast, but the target object consumes very little oil, which may lead to excessive oil storage in the atomizing core assembly 40. If the suction frequency is less than a threshold, the atomizing core assembly 40 is lowered to a third position relative to the oil cup 60 by the motor assembly 50, so that the oil inlet 41 is partially located within the oil cup 60. If the suction frequency is less than the threshold, it is determined that the target object's suction intention is not strong at this time, and the consumption of oil is low. Therefore, in order to match the target's current vaping intention, the motor assembly 50 should be controlled to lower the atomizer coil assembly 40 to a third position relative to the oil cup 60, so that the oil inlet 41 is partially located inside the oil cup 60. The oil inlet rate is slower when the oil inlet 41 is partially located inside the oil cup 60 compared to when the oil inlet 41 is entirely located inside the oil cup 60. This prevents excessive oil storage in the atomizer coil assembly 40, matching the target's current vaping frequency. This makes the control process more refined and intelligent, ensuring that the amount of oil in the atomizer coil assembly 40 matches the target's vaping frequency while preventing excessive e-liquid storage in the atomizer coil assembly 40.
[0147] In one embodiment of this application, if a second press signal of a fourth preset duration is received from a target object on the physical button 30, based on the second press signal, it is determined that the atomizing device 1000 has entered a preset mode. In this preset mode, the atomizing core assembly 40 cannot be lifted by the motor assembly 50. That is, the target object can also use the physical button 30 to put the atomizing core 42 into the preset mode, which can also be understood as a locked mode. In this preset mode, the atomizing core assembly 40 cannot be lifted by the motor assembly 50. If the target object presses and holds the physical button 30 for the fourth preset duration, it indicates that the target object needs to set the atomizing device 1000 to the preset mode to prevent the motor assembly 50 from lifting the atomizing core assembly 40. For example, if the target object needs to carry the atomizing device 1000 on a long trip, it needs to place the atomizing device 1000 in its suitcase. During transportation, other objects may collide with the physical button 30, causing the control chip 80 to control the motor assembly 50 to lift the atomizer core assembly 40. Oil will continuously enter the atomizer core assembly 40 through the oil inlet 41, resulting in excessive oil storage in the atomizer core assembly 40. Violent shaking during the journey may cause the e-liquid in the atomizer core assembly 40 to leak, thereby affecting the normal use of the atomizing device 1000.
[0148] Therefore, this application provides a method for setting the preset mode, in which the atomizer core assembly 40 cannot be lifted by the motor assembly 50. That is, in the preset mode, even if the physical button 30 is pressed accidentally, the atomizer core assembly 40 will not be lifted, preventing the atomizer core assembly 40 from being lifted due to accidental touch, thus preventing oil from continuously entering the atomizer core assembly 40 through the oil inlet 41, causing excessive oil storage in the atomizer core assembly 40 and resulting in oil leakage.
[0149] Referring to Figure 10, Figure 10 is a functional unit block diagram of a lifting device for an atomizing core assembly 40 provided in an embodiment of this application. The lifting device 1100 of the atomizing core assembly 40 includes: a transceiver unit 1101 and a processing unit 1102;
[0150] The transceiver unit 1101 is used to acquire a start signal, wherein the start signal is used to instruct the atomizing core assembly 40 to be raised;
[0151] The processing unit 1102 is used to respond to the start signal by raising the atomizing core assembly 40 to a first position relative to the oil cup 60 through the motor assembly 50, so that the oil inlet 41 is completely located inside the oil cup 60, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41.
[0152] The processing unit 1102 is configured to, when the atomizing core assembly 40 is in the first position, if no first suction signal is received from the airflow sensor 70 within a first preset condition, lower the atomizing core assembly 40 to a second position relative to the oil cup 60 via the motor assembly 50, so that all the oil inlet holes 41 are located outside the oil cup 60, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet holes 41. The first suction signal is used to indicate that the target object is sucking the atomizing device 1000.
[0153] In one embodiment of this application, the motor assembly 50 includes a motor 51 and a first linkage 52, and the atomizing core assembly 40 includes an atomizing core 42 and a second linkage 43; in response to the start signal, the processing unit 1102, by means of the motor assembly 50, raises the atomizing core assembly 40 to a first position relative to the oil cup 60, specifically for:
[0154] In response to the start signal, the motor 51 is controlled to drive the first linkage 52 to rise, so that the rise of the first linkage 52 drives the second linkage 43 to rise, thereby raising the atomizing core 42 to a first position relative to the oil cup 60.
[0155] In one embodiment of this application, the atomizing device 1000 further includes a physical button 30; and a processing unit 1102.
[0156] The activation signal includes a second suction signal received from the airflow sensor 70 and / or a first press signal from the target object against the physical button 30.
[0157] In one embodiment of this application, in controlling the motor 51 to drive the first linkage 52 to rise, the processing unit 1102 is specifically used for:
[0158] If the start signal includes a first pressing signal, then control the motor 51 to drive the first linkage 52 to rise at a first rate;
[0159] If the start signal includes a second suction signal, then control the motor 51 to drive the first linkage 52 to rise at a second rate;
[0160] If the start signal includes the second suction signal and the first pressing signal, then control the motor 51 to drive the first linkage 52 to rise at a third rate;
[0161] Wherein, the third rate is greater than the first rate, and the third rate is greater than the second rate.
[0162] In one embodiment of this application, the motor assembly 50 includes a motor 51 and a first linkage 52, and the atomizing core assembly 40 includes an atomizing core 42 and a second linkage 43. In the process of lowering the atomizing core assembly 40 to a second position relative to the oil cup 60 via the motor assembly 50, the processing unit 1102 is specifically used for:
[0163] The motor 51 is controlled to drive the first linkage 52 to descend, so that the descent of the first linkage 52 drives the second linkage 43 to descend, thereby lowering the atomizing core 42 to the second position.
[0164] In one embodiment of this application, the processing unit 1102 is specifically used for:
[0165] When the atomizing core assembly 40 is located in the first position, if no suction signal is received from the airflow sensor 70 within the second preset time period, the suction frequency of the target object within the third preset time period is obtained, wherein the start time of the third preset time period is the end time of the second preset time period, and the third preset time period is less than the difference between the first preset condition and the second preset time period.
[0166] If the suction frequency is less than a threshold, the atomizing core assembly 40 is lowered to a third position relative to the oil cup 60 by the motor assembly 50, so that the oil inlet 41 is partially located inside the oil cup 60.
[0167] In one embodiment of this application, the processing unit 1102 is specifically configured to: obtain the suction frequency of the target object within a third preset time period.
[0168] Within the third preset time period, the number of times a suction signal is received from the airflow sensor 70 is obtained;
[0169] The suction frequency is determined based on the number of times and the third preset duration.
[0170] In one embodiment of this application, the atomizing device 1000 further includes a physical button 30 and a processing unit 1102, specifically used for:
[0171] The target object receives a second press signal for a fourth preset duration for the physical button 30;
[0172] Based on the second pressing signal, it is determined that the atomizing device 1000 has entered a preset mode, wherein the atomizing core assembly 40 cannot be lifted by the motor assembly 50 in the preset mode.
[0173] Referring to Figure 11, which is a schematic diagram of the structure of an electronic device provided in an embodiment of this application, the electronic device 1200 includes a transceiver 1201, a processor 1202, and a memory 1203. These are connected via a bus 1204. The memory 1203 is used to store computer programs and data, and can transmit data stored in the memory 1203 to the processor 1202.
[0174] Processor 1202 is used to read the computer program in memory 1203 and perform the following operations:
[0175] A start signal is obtained, wherein the start signal is used to instruct the atomizing core assembly 40 to be raised;
[0176] In response to the start signal, the motor assembly 50 raises the atomizing core assembly 40 to a first position relative to the oil cup 60, so that the oil inlet 41 is entirely located inside the oil cup 60, so that the oil in the oil cup 60 enters the atomizing core assembly 40 through the oil inlet 41.
[0177] When the atomizing core assembly 40 is in the first position, if no first suction signal is received from the airflow sensor 70 within the first preset conditions, the atomizing core assembly 40 is lowered to a second position relative to the oil cup 60 by the motor assembly 50, so that the oil inlet 41 is completely located outside the oil cup 60, so that the oil in the oil cup 60 cannot enter the atomizing core assembly 40 through the oil inlet 41. The first suction signal is used to indicate that the target object is sucking the atomizing device 1000.
[0178] Specifically, the transceiver 1201 can be the transceiver unit 1101 of the lifting device 1100 of the atomizing core assembly 40 in the embodiment of FIG10, and the processor 1202 can be the processing unit 1102 of the lifting device 1100 of the atomizing core assembly 40 in the embodiment of FIG10.
[0179] Specifically, the transceiver 1201 can be the transceiver unit 1101 of the lifting device 1100 of the atomizing core assembly 40 in the embodiment of FIG10, and the processor 1202 can be the processing unit 1102 of the lifting device 1100 of the atomizing core assembly 40 in the embodiment of FIG10. Therefore, the specific function of the processor 1202 can refer to the specific function of the processing unit 1102, and the specific function of the transceiver 1201 can refer to the specific function of the transceiver unit 1101.
[0180] It should be understood that the electronic devices mentioned in this application may include smartphones (such as Android phones, iOS phones, Windows Phones, etc.), tablet computers, PDAs, laptops, mobile internet devices (MIDs), or wearable devices. The above-mentioned electronic devices are merely examples and not exhaustive, and include, but are not limited to, the electronic devices described above. In practical applications, the above-mentioned electronic devices may also include: intelligent in-vehicle terminals, computer equipment, etc.
[0181] This application also provides a computer-readable storage medium storing a computer program that is executed by a processor to implement some or all of the steps of any of the lifting methods for the atomizing core assembly 40 as described in the above method embodiments.
[0182] This application also provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program operable to cause a computer to perform some or all of the steps of any of the lifting methods of the atomizing core assembly 40 as described in the above method embodiments.
[0183] It should be noted that, for the sake of simplicity, the foregoing method embodiments are all described as a series of actions. However, those skilled in the art should understand that this application is not limited to the described order of actions, as some steps may be performed in other orders or simultaneously according to this application. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are all optional embodiments, and the actions and modules involved are not necessarily essential to this application.
[0184] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.
[0185] In the several embodiments provided in this application, it should be understood that the disclosed apparatus can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between devices or units may be electrical or other forms.
[0186] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0187] Furthermore, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software program module.
[0188] If the integrated unit is implemented as a software program module and sold or used as an independent product, it can be stored in a computer-readable storage device (CMD). Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a memory and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods of the various embodiments of this application. The aforementioned memory includes various media capable of storing program code, such as a USB flash drive, read-only memory (ROM), random access memory (RAM), portable hard drive, magnetic disk, or optical disk.
[0189] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be implemented by a program instructing related hardware. The program can be stored in a computer-readable storage medium, which may include: flash drive, read-only memory (ROM), random access memory (RAM), disk or optical disk, etc.
[0190] The embodiments of this application have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this application. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of this application. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this application. Therefore, the content of this specification should not be construed as a limitation of this application.
Claims
1. A method for raising and lowering an atomizing core assembly, characterized in that, The method is applied to a control chip located in an atomizing device. The atomizing device further includes an airflow sensor, an atomizing core assembly, a motor assembly, and an oil cup. The oil cup contains oil, and the atomizing core assembly has an oil inlet. The method includes: Obtain a start signal, wherein the start signal is used to instruct the atomizing core assembly to be raised; In response to the start signal, the motor assembly raises the atomizing core assembly to a first position relative to the oil cup, so that the oil in the oil cup enters the atomizing core assembly through the oil inlet. When the atomizing core assembly is in the first position, if no first suction signal is received from the airflow sensor within the first preset conditions, the atomizing core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that the oil in the oil cup cannot enter the atomizing core assembly through the oil inlet. The first suction signal is used to indicate that the target object is sucking on the atomizing device.
2. The method according to claim 1, characterized in that, The motor assembly includes a motor and a first linkage component, and the atomizing core assembly includes an atomizing core and a second linkage component, wherein the first linkage component and the second linkage component are movably connected. The step of raising the atomizing core assembly to a first position relative to the oil cup via the motor assembly in response to the activation signal includes: In response to the start signal, the motor is controlled to drive the first linkage to rise, so that the rise of the first linkage drives the second linkage to rise, thereby raising the atomizing core assembly to a first position relative to the oil cup.
3. The method according to claim 1 or 2, characterized in that, The atomizing device also includes physical buttons; The activation signal includes a second suction signal received from the airflow sensor and / or a first press signal from the target object against the physical button.
4. The method according to claim 3, characterized in that, The control of the motor to drive the first linkage component to rise includes: If the start signal includes a first pressing signal, then the motor is controlled to drive the first linkage to rise at a first rate; If the start signal includes a second suction signal, then the motor is controlled to drive the first linkage to rise at a second rate; If the start signal includes the second suction signal and the first pressing signal, then control the motor to drive the first linkage to rise at a third speed; Wherein, the third rate is greater than the first rate, and the third rate is greater than the second rate.
5. The method according to any one of claims 1-4, characterized in that, The motor assembly includes a motor and a first linkage component, and the atomizing core assembly includes an atomizing core and a second linkage component, wherein the first linkage component and the second linkage component are movably connected. The step of lowering the atomizing core assembly to a second position relative to the oil cup via the motor assembly includes: The motor is controlled to drive the first linkage component to descend, so that the descent of the first linkage component drives the second linkage component to descend, thereby lowering the atomizing core to the second position.
6. The method according to any one of claims 1-5, characterized in that, The first preset conditions include one or more of the following: a first preset duration, a preset temperature range, a preset humidity range, and a preset air flow range.
7. The method according to any one of claims 1-6, characterized in that, If the first preset condition includes the first preset duration; The method further includes: When the atomizing core assembly is located at the first position, if no suction signal is received from the airflow sensor within a second preset time period, the suction frequency of the target object within a third preset time period is obtained, wherein the start time of the third preset time period is the end time of the second preset time period, and the third preset time period is less than the difference between the first preset time period and the second preset time period. If the suction frequency is less than a threshold, the atomizing core assembly is lowered to a third position relative to the oil cup by the motor assembly, so that part of the oil inlet is located inside the oil cup.
8. The method according to claim 7, characterized in that, The step of obtaining the suction frequency of the target object within a third preset time period includes: Within the third preset time period, the number of times the suction signal is received from the airflow sensor is obtained; The suction frequency is determined based on the number of times and the third preset duration.
9. The method according to any one of claims 1-8, characterized in that, The atomizing device also includes physical buttons, and the method further includes: Receive a second press signal from the target object for a fourth preset duration on the physical button; Based on the second pressing signal, it is determined that the atomizing device has entered a preset mode, wherein the atomizing core assembly cannot be lifted by the motor assembly in the preset mode.
10. An atomizing device, characterized in that, include: The atomizer core assembly is equipped with an oil inlet. An oil cup has a receiving cavity for holding oil. The atomizing core assembly has a first position and a second position relative to the oil cup. When the atomizing core assembly is in the first position, the oil in the oil cup enters the atomizing core assembly through the oil inlet. When the atomizing core assembly is in the second position, the oil in the oil cup cannot enter the atomizing core assembly through the oil inlet. A motor assembly is connected to the atomizing core assembly, and the motor assembly is used to lift or lower the atomizing core assembly to move the atomizing core assembly to the first position or the second position; as well as A control chip electrically connected to the motor assembly, the control chip being capable of performing the method as described in any one of claims 1 to 9, to cause the motor assembly to raise the atomizing core to the first position or lower the atomizing core to the second position.
11. The atomizing device as described in claim 10, characterized in that, The oil cup has a lifting passage, and the receiving cavity is connected to the external space of the oil cup through the lifting passage; The outer periphery of the atomizing core assembly is sealed to the wall of the lifting through hole, and the atomizing core assembly enters the receiving cavity through the lifting through hole to move to the first position and the second position relative to the oil cup.
12. The atomizing device as described in claim 10 or 11, characterized in that, The motor assembly includes a motor and a first linkage component, the atomizing core assembly includes an atomizing core and a second linkage component, and the drive shaft of the motor is connected to the first linkage component; The first linkage component is connected to the atomizing core assembly via the second linkage component, so as to link the atomizing core assembly to the first position or the second position.
13. The atomizing device as described in claim 12, characterized in that, The motor includes a motor body, a drive shaft, and a guide rod. The guide rod is connected to the motor body and is used to guide the movement of the linkage component. The first linkage component is provided with a guide through hole and a drive through hole. The drive shaft of the motor body is connected to the drive through hole, and the guide rod passes through the guide through hole. The first linkage component is connected to the atomizing core assembly through the second linkage component.
14. The atomizing device according to any one of claims 10-13, characterized in that, The atomizing device also includes an airflow sensor, which is electrically connected to the control chip. The control chip can receive the suction signal generated by the airflow sensor and control the operation of the motor assembly based on the suction signal.
15. The atomizing device according to any one of claims 10-14, characterized in that, The atomizing device also includes a physical button, which is electrically connected to the control chip. The control chip can generate a pressing signal triggered by pressing the physical button and control the motor assembly to operate based on the pressing signal.
16. A lifting device for an atomizing core assembly, characterized in that, The device includes a transceiver unit and a processing unit; The transceiver unit is used to acquire a start signal, wherein the start signal is used to instruct the atomizing core assembly to be raised; The processing unit is configured to respond to the start signal by raising the atomizing core assembly to a first position relative to the oil cup via the motor assembly, such that all the oil inlet holes are located inside the oil cup, so that the oil in the oil cup enters the atomizing core assembly through the oil inlet holes; The processing unit is configured to, when the atomizing core assembly is in the first position, if no first suction signal is received from the airflow sensor within a first preset condition, lower the atomizing core assembly to a second position relative to the oil cup via the motor assembly, so that all the oil inlets are located outside the oil cup, so that the oil in the oil cup cannot enter the atomizing core assembly through the oil inlets, wherein the first suction signal is used to indicate that the target object is sucking on the atomizing device.
17. An electronic device, characterized in that, include: A processor and a memory, the processor being connected to the memory, the memory being used to store a computer program, and the processor being used to execute the computer program stored in the memory to cause the electronic device to perform the method as described in any one of claims 1-9.
18. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that is executed by a processor to implement the method as described in any one of claims 1-9.