Atomization core assembly lifting method and related product

By using control chips and motor components in the atomization device to achieve lift control of the atomized core components, the oil leakage problem in the prior art is solved, the user experience is improved and the waste of e-liquid is avoided.

CN119969655APending Publication Date: 2025-05-13SHENZHEN DAOSEN SCIENCE & TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510088870.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-21
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

Existing atomization devices are prone to oil leakage during use, resulting in a reduced user experience. Although existing solutions such as setting up oil-absorbing cotton can prevent oil leakage, it will lead to waste of e-liquid.

Method used

By providing a control chip and a motor assembly in the atomization device, the lifting control of the atomization core assembly is realized. When the user needs to suction, the atomizing core assembly rises to contact the oil; when the user does not need to suction, the atomizing core assembly falls to avoid long-term contact with the oil and prevent oil leakage.

Benefits of technology

It effectively prevents oil leakage, improves the user's experience of using atomization device, and avoids the waste of e-liquid.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a lifting method of an atomizing core assembly and a related product. The method comprises the steps that a starting signal is obtained, and the starting signal is used for indicating the atomization core assembly to be lifted; in response to the starting signal, the atomizing core assembly is lifted to a first position relative to the oil cup through the motor assembly, so that oil in the oil cup enters the atomizing core assembly through the oil inlet hole; under the condition that the atomizing core assembly is located at the first position, if a first suction signal is not received from an airflow sensor within a first preset condition, the atomizing core assembly is lowered to a second position relative to the oil cup through the motor assembly; therefore, oil in the oil cup cannot enter the atomizing core assembly through the oil inlet hole.
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Description

Technical Field

[0001] The present application relates to the field of atomization technology, and in particular to a lifting method of an atomization core assembly and related products. Background Art

[0002] Atomizer, commonly known as electronic cigarette. The inside of the atomizer usually includes an atomizer core assembly, an oil cup, and the oil stored in the oil cup. In the prior art, when the atomizer is shipped from the factory, the atomizer core will be separated from the oil to prevent the oil from contacting the atomizer core, thereby leaking oil during transportation or storage. The first time the consumer uses the atomizer, the atomizer core is manually lifted up, and after contacting the oil, the atomizer core has been in a fixed state. In other words, the atomizer core has been in contact with the oil, and the atomizer core has been in a state of being soaked in oil. The atomizer core may not be able to be sucked normally due to excessive oil, causing the oil to penetrate into other components in the atomizer, or seep out of the atomizer, causing oil leakage, so that the product cannot work normally. In order to solve the problem of oil leakage, many attempts have been made. For example, oil-absorbing cotton is set in the opaque electronic cigarette to prevent the electronic cigarette from leaking oil, but the oil-absorbing cotton absorbs part of the oil, causing waste of oil. Therefore, in order to improve the user experience, transparent electronic cigarettes are generally not provided with oil-absorbing cotton, so the oil leakage problem of electronic cigarettes still exists, which reduces the user experience of using the atomization device. Summary of the invention

[0003] The embodiments of the present application provide a lifting method of an atomizer core assembly and related products. By controlling the rise and fall of the atomizer core assembly, when the target object needs to inhale, the atomizer core assembly is raised, so that the target object can inhale normally without affecting the user experience; when the target object does not need to inhale, the atomizer core assembly is lowered to prevent the atomizer core assembly from contacting oil for a long time, avoiding oil leakage, and improving the user experience of using the atomization device.

[0004] In a first aspect, an embodiment of the present application provides a method for lifting an atomizer core assembly, which is applied to a control chip for intelligent control. The control chip is located in an atomizer device, and the atomizer device further includes an airflow sensor, an atomizer core assembly, a motor assembly, and an oil cup; the oil cup is filled with oil, and an oil inlet hole is provided on the atomizer core assembly; the method includes:

[0005] Obtaining a start signal, wherein the start signal is used to instruct lifting of the atomizer core assembly;

[0006] In response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes;

[0007] When the atomizer core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset condition, the atomizer core assembly is lowered to a second position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

[0008] It can be seen that in the embodiment of the present application, the position of the atomizer core assembly is not fixed, and the control chip can control the motor assembly to lift the atomizer core to the first position, or lower the atomizer core to the second position. When the target object needs to inhale the atomizer device, that is, when the control chip obtains the start signal, it responds to the start signal and lifts the atomizer core assembly to the first position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole, and the atomizer core assembly can atomize the incoming oil for the target object to inhale. When the atomizer core assembly is located at the first position and the target object does not need to inhale the atomizer device, that is, when the first suction signal is not received from the airflow sensor within the first preset condition, the motor assembly is controlled to lower the atomizer core assembly to the second position relative to the oil cup, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet holes, preventing the atomizer core assembly from being in contact with the oil for a long time and avoiding oil leakage. In other words, the atomizer device in the present application can enable the target object to inhale normally when it needs to inhale, without affecting the user experience; and can also prevent the atomizer core assembly from being in contact with the oil for a long time when the target object does not need to inhale, thereby avoiding oil leakage and improving the user experience of using the atomizer device.

[0009] In a possible implementation, the motor assembly includes a motor and a first linkage member, the atomizer core assembly includes an atomizer core and a second linkage member, and the first linkage member and the second linkage member are movably connected;

[0010] In response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, comprising:

[0011] In response to the start signal, the motor is controlled to drive the first linkage member to rise, so that the second linkage member is driven to rise by the rise of the first linkage member, so as to lift the atomizer core assembly to a first position relative to the oil cup.

[0012] It can be seen that in the embodiment of the present application, the first linkage and the second linkage are provided to drive the movement of the atomizer core, so that the relative position between the motor assembly and the atomizer core assembly is more flexible, and the space of the internal components can be optimized through the appearance of the atomizer device; in addition, during the assembly process, the provision of the first linkage and the second linkage can reduce the structural interference between the atomizer core when the atomizer core is directly connected to the motor output shaft, thereby reducing the difficulty of product assembly.

[0013] In a possible implementation, the atomization device further includes a physical button;

[0014] The start signal includes a second suction signal received from the airflow sensor and / or a first pressing signal of the target object on the physical button.

[0015] It can be seen that in the embodiment of the present application, three methods of forming the start signal are provided, corresponding to three different methods of lifting the atomizer core assembly caused by the target object's behavior, namely, the suction behavior of the suction nozzle, the pressing behavior of the physical button, the suction behavior of the suction nozzle and the pressing behavior of the physical button. The target object can freely select the behavior that can cause the atomizer core assembly to be lifted according to specific needs, providing users with multiple choices and improving user experience.

[0016] In a possible implementation manner, controlling the motor to drive the first linkage member to rise includes:

[0017] If the start signal includes a first pressing signal, controlling the motor to drive the first linkage member to rise at a first speed;

[0018] If the start signal includes a second suction signal, controlling the motor to drive the first linkage member to rise at a second speed;

[0019] If the start signal includes the second suction signal and the first pressing signal, controlling the motor to drive the first linkage member to rise at a third rate;

[0020] The third rate is greater than the first rate, and the third rate is greater than the second rate.

[0021] It can be seen that in the embodiment of the present application, different start signal compositions correspond to different rising rates of the first linkage member, that is, to different lifting rates of the atomizer core assembly, so that the target object can obtain a more intelligent experience when using the atomizer device.

[0022] In a possible implementation, the motor assembly includes a motor and a first linkage member, the atomizer core assembly includes an atomizer core and a second linkage member, and the first linkage member and the second linkage member are movably connected;

[0023] The step of lowering the atomizer core assembly to a second position relative to the oil cup by the motor assembly comprises:

[0024] The motor is controlled to drive the first linkage member to descend, so that the second linkage member is driven to descend by the descent of the first linkage member, so as to descend the atomizer core to the second position.

[0025] In a possible implementation manner, if the first preset condition includes a first preset duration;

[0026] The method further comprises:

[0027] When the atomizer core assembly is located at the first position, if no puff signal is received from the airflow sensor within the second preset time period, the puff 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;

[0028] If the suction frequency is less than a threshold value, the atomizer core assembly is lowered to a third position relative to the oil cup by the motor assembly, so that a portion of the oil inlet hole is located in the oil cup.

[0029] It can be seen that in the embodiment of the present application, too much oil can be prevented from being stored in the atomizer core assembly, which matches the puffing frequency of the target object at this time, making the control process more refined and intelligent, which can not only match the amount of oil in the atomizer core assembly with the puffing frequency of the target object, but also prevent excessive smoke oil from being stored in the atomizer core assembly.

[0030] In a possible implementation, a second pressing signal of a target object for a fourth preset duration on the physical key is received;

[0031] Based on the second pressing signal, it is determined that the atomization device enters a preset mode, wherein in the preset mode, the atomization core assembly cannot be lifted by the motor assembly.

[0032] It can be seen that in the embodiment of the present application, after entering the preset mode, the atomizer core assembly will not be lifted even if the physical button is pressed accidentally, thereby preventing the atomizer core assembly from being lifted due to accidental touch, and the oil continues to enter the atomizer core assembly through the oil inlet hole, causing excessive oil to be stored in the atomizer core assembly and causing oil leakage.

[0033] In a second aspect, an embodiment of the present application provides a lifting device for an atomizer core assembly, the device comprising: a transceiver unit and a processing unit;

[0034] The transceiver unit is used to obtain a start signal, wherein the start signal is used to instruct to lift the atomizer core assembly;

[0035] The processing unit is used for, in response to the start signal, lifting the atomizer core assembly to a first position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes;

[0036] The processing unit is used for lowering the atomizer core assembly to a second position relative to the oil cup through the motor assembly if the first suction signal is not received from the airflow sensor within a first preset condition when the atomizer core assembly is located at the first position, so that all the oil inlet holes are located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

[0037] In a third aspect, an embodiment of the present application provides an atomization device, the device comprising:

[0038] The oil cup has a receiving cavity for holding oil, the atomizer core assembly has a first position and a second position relative to the oil cup, when the atomizer core assembly is located at the first position, the oil inlet holes are all located inside the receiving cavity, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes; when the atomizer core assembly is located at the second position, the oil inlet holes are all located outside the receiving cavity, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet holes;

[0039] a motor assembly connected to the atomizer core assembly, the motor assembly being used to lift or lower the atomizer core assembly to move the atomizer core assembly to the first position or the second position;

[0040] A control chip, wherein the control chip is electrically connected to the motor assembly, and the control chip is capable of executing the method of the first aspect, so that the motor assembly lifts the atomizer core to the first position, or lowers the atomizer core to the second position.

[0041] In a possible implementation, the motor assembly includes a motor and a first linkage member, the atomizer core assembly includes an atomizer core and a second linkage member, and the drive shaft of the motor is connected to the first linkage member;

[0042] The first linkage is connected to the atomizer core assembly through the second linkage to link the atomizer core assembly to the first position or the second position.

[0043] It can be seen that in the embodiment of the present application, the first linkage and the second linkage are provided to drive the movement of the atomizer core, so that the relative position between the motor assembly and the atomizer core assembly is more flexible, and the space of the internal components can be optimized through the appearance of the atomizer device; in addition, during the assembly process, the provision of the first linkage and the second linkage can reduce the structural interference between the atomizer core when the atomizer core is directly connected to the motor output shaft, thereby reducing the difficulty of product assembly.

[0044] In a possible implementation manner, the motor includes a motor body, a driving shaft and a guide rod, the guide rod is connected to the motor body, and the guide rod is used to guide the movement of the linkage member;

[0045] The first linkage member 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 member is connected to the atomizer core assembly through the second linkage member.

[0046] It can be seen that in the embodiment of the present application, since the drive shaft is connected to the drive through hole of the first linkage, when the first linkage is in the process of rising or moving down, the force of the motor body can be transmitted through the drive shaft, so that the first linkage can rise or fall, thereby driving the atomizer core assembly to rise or fall. Further, since the guide rod is connected to the guide through hole of the first linkage, when the first linkage is in the process of rising or moving down, the first linkage can be stabilized by the guide rod, so that the first linkage is more stable and more accurate during the movement. Furthermore, through the smooth movement of the first linkage along the lifting trajectory, the lifting trajectory of the second linkage can be guided, thereby constraining the lifting trajectory of the atomizer core assembly and causing the atomizer core assembly to move along the preset trajectory.

[0047] In a possible implementation, the atomization device further includes an airflow sensor, which is electrically connected to the control chip. The control chip is capable of receiving a suction signal generated by the airflow sensor and controlling the operation of the motor assembly according to the suction signal.

[0048] It can be seen that in the embodiment of the present application, when the target object has a suction behavior, the motor assembly is controlled to lift the atomizer core to the first position, the oil inlet hole is located in the accommodating cavity, and the oil in the oil cup enters the atomizer core assembly through the oil inlet hole, and the atomizer core assembly can atomize the incoming oil for the target object to inhale. In other words, the atomizer device in the present application can enable the target object to inhale normally when it needs to inhale, without affecting the user experience.

[0049] In a possible implementation, the atomization device further includes a physical button, which is electrically connected to the control chip. The control chip is capable of generating a pressing signal triggered by pressing the physical button, and controlling the operation of the motor assembly according to the pressing signal.

[0050] It can be seen that in the embodiment of the present application, another method for controlling the rise of the atomizer core assembly is also provided, and the target object can freely choose according to specific needs to improve the user experience.

[0051] In one embodiment of the present application, the oil cup of the atomizer device of the present application is a transparent oil cup, and oil-absorbing cotton is arranged in the atomizer core of the atomizer device, wherein the oil-absorbing cotton can absorb the smoke oil in the atomizer core to prevent oil leakage. Optionally, the oil-absorbing cotton is integrally formed with the atomizer core.

[0052] In one embodiment of the present application, the control chip of the atomization device of the present application can also obtain the working time of the atomization core, and raise or lower the atomization core assembly based on the working time of the atomization core.

[0053] Optionally, when the control chip detects that the atomizer core is in the working mode, the control chip obtains a first working time of the atomizer core. If the first working time is greater than or equal to a first preset time, the atomizer core assembly is lifted to a first position relative to the oil cup through the motor assembly, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole. That is, when the first working time is greater than or equal to the first preset time, it can be determined that the user has a smoking demand. At this time, the atomizer core assembly is lifted to the first position relative to the oil cup, so that the oil enters the atomizer core assembly, so that the atomizer core can atomize the oil to meet the user's smoking demand. After the atomizer core assembly is lifted to the first position, the second working time of the atomizer core is continuously detected; if the second working time is greater than or equal to the second preset time, the atomizer core assembly is lowered to the second position relative to the oil cup through the motor assembly, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, that is, when the second working time is greater than or equal to the second preset time, it can be determined that the user's smoking behavior is over and the user has no smoking demand, and the atomizer core assembly is lowered to the second position relative to the oil cup to prevent excessive oil from entering the atomizer core assembly and to prevent oil from leaking from the atomizer core assembly, thereby avoiding the problem of oil leakage.

[0054] In a fourth aspect, an embodiment of the present application provides an electronic device, comprising: 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 executes the method of the first aspect.

[0055] In a fifth aspect, an embodiment of the present application provides a computer-readable storage medium, wherein the computer-readable storage medium stores a computer program, and the computer program enables a computer to execute the method of the first aspect.

[0056] In a sixth aspect, an embodiment of the present application provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and is computer-operable to cause the computer to execute the method of the first aspect. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0058] Figure 1 A schematic diagram of the structure of an atomization device provided in an embodiment of the present application;

[0059] Figure 2 Provided in the embodiments of this application Figure 1 An exploded view of

[0060] Figure 3 Provided in the embodiments of this application Figure 1 Another exploded view of

[0061] Figure 4 A schematic diagram of the structure of an atomizer core assembly provided in an embodiment of the present application;

[0062] Figure 5 A schematic diagram of the structure of an oil cup provided in an embodiment of the present application;

[0063] Figure 6 A schematic diagram of a structure of an atomizer core assembly provided in an embodiment of the present application in a descending state;

[0064] Figure 7 A schematic diagram of the structure of an atomizer core assembly in an ascending state provided in an embodiment of the present application;

[0065] Figure 8 An exploded schematic diagram of a motor assembly provided in an embodiment of the present application;

[0066] Fig. 9 A schematic diagram of a flow chart of a method for lifting an atomizer core assembly provided in an embodiment of the present application;

[0067] Fig.10 A block diagram of the functional units of a lifting device for an atomizer core assembly provided in an embodiment of the present application;

[0068] Fig.11 A schematic diagram of the structure of an electronic device provided in an embodiment of the present application.

[0069] It should be noted that the drawings are not necessarily drawn to scale, but are merely shown in a schematic manner that does not affect the reader's understanding.

[0070] Description of reference numerals:

[0071] 1000-atomization device, 10-suction nozzle, 20-first shell, 21-second shell, 30-physical button, 40-atomization core assembly, 41-oil inlet hole, 42-atomization core, 43-second linkage member, 44-portion located inside the accommodating chamber, 50-motor assembly, 51-motor, 511-motor body, 512-driving shaft, 513-guide rod, 52-first linkage member, 521-guide through hole, 522-driving through hole, 60-oil cup, 61-accommodating chamber, 62-lifting through hole, 70-airflow sensor, 80-control chip, 90-battery. DETAILED DESCRIPTION

[0072] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0073] The terms "first", "second", "third" and "fourth" etc. in the specification, claims and drawings of the present application are used to distinguish different objects, rather than to describe a specific order. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device that includes a series of steps or units is not limited to the listed steps or units, but optionally includes steps or units that are not listed, or optionally includes other steps or units inherent to these processes, methods, products or devices.

[0074] Reference to "embodiments" herein means that a particular feature, result, or characteristic described in conjunction with the embodiments may be included in at least one embodiment of the present application. The appearance of the phrase in various locations in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0075] In order to facilitate understanding of the technical solution of the present application, the relevant technical terms involved in the present application are first explained.

[0076] Target object: The target object in this application can be a user, a virtual person, a robot, a digital person, etc. In this application, the target object is a user as an example.

[0077] Atomizing device: In the present 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 the present application may be a microphone, a capacitive microphone or a switch microphone, which is used to convert airflow changes into electrical signals. The present application does not limit the type of microphone.

[0079] It should be noted that in this application, the structural content of the atomization device involved in this application is first described.

[0080] See first Figures 1 to 3 , Figure 1 The atomizing device 1000 is a schematic diagram of a structure of an atomizing device provided in an embodiment of the present application. The atomizing device 1000 includes a nozzle 10 , a first shell 20 , a second shell 21 , and a physical button 30 .

[0081] Figure 2 Provided in the embodiments of this application Figure 1 An exploded diagram of . Figure 2 The atomizing device includes a nozzle 10, a first shell 20, a second shell 21, an atomizing core assembly 40, a motor assembly 50, an oil cup 60, and a battery 90;

[0082] Figure 3 Provided in the embodiments of this application Figure 1 Another exploded diagram of . Figure 3 The atomization device includes a nozzle 10 , a first shell 20 , a second shell 21 , a physical button 30 , an airflow sensor 70 , and a control chip 80 .

[0083] It should be stated that Figures 1 to 3 The atomizer core assembly in the atomizer device is in a second position relative to the oil cup, which can also be referred to as the atomizer core assembly being in a descending state.

[0084] The atomizing core assembly 40 is provided with an oil inlet hole 41, see Figure 4 , Figure 4A schematic diagram of the structure of an atomizer core assembly provided in an embodiment of the present application. The smoke oil in the oil cup can enter the atomizer core assembly through the oil inlet hole. It should be noted that the present application does not limit the number of oil inlet holes, nor the radius of the oil inlet holes, nor the position of the oil inlet holes in the atomizer core assembly. That is, the oil inlet holes in the present application can be set on the same plane on the outer wall of the atomizer core assembly, or on different planes on the outer wall of the atomizer core assembly. The present application is described by taking the same plane on the outer wall of the atomizer core assembly as an example.

[0085] The oil cup 60 has a receiving cavity 61 for containing oil, see Figure 5 , Figure 5 A schematic diagram of the structure of an oil cup provided in an embodiment of the present application. The atomizer core assembly has a first position and a second position relative to the oil cup, and when the atomizer core assembly is in the first position, the oil inlet holes are all located in the accommodating cavity, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes; when the atomizer core assembly is in the second position, the oil inlet holes are all located outside the accommodating cavity, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet holes.

[0086] Specifically, the atomizer core assembly has a second position relative to the oil cup. When the atomizer core assembly is in the second position, the oil inlet holes are all located outside the accommodating cavity, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet holes. For ease of understanding, the atomizer core assembly having the second position relative to the oil cup can also be understood as the atomizer core assembly being in a descending state. Figure 6 , Figure 6 This is a schematic diagram of the structure of an atomizer core assembly in a descending state provided in an embodiment of the present application. Figure 6 As shown in the first cross-sectional view of the atomizing device, Figure 6 The position of the atomizer core assembly 40 in the first cross-sectional view is a second position relative to the oil cup. The oil cup in the first cross-sectional view stores oil in the receiving cavity 61. When the atomizer core assembly has the second position relative to the oil cup, the atomizer core assembly is in a descending state, and the oil inlet hole is located outside the receiving cavity, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole. Because the first cross-sectional view cannot intuitively see that the oil inlet hole is located outside the receiving cavity, as shown in FIG. Figure 6 As shown in the first structural diagram in which the atomizer core assembly is in a descending state, the portion 44 of the atomizer core assembly 40 located inside the accommodating chamber 61 is in contact with the oil, and the portion located inside the accommodating chamber 61 in the first structural diagram does not include the oil inlet hole. Therefore, when the atomizer core assembly 40 has the second position relative to the oil cup, all the oil inlet holes on the atomizer core assembly are located outside the accommodating chamber 61. Figure 6 The oil inlet holes in the atomizer core assembly are blocked and cannot be shown. The oil inlet holes on the atomizer core assembly are all located outside the accommodating cavity 61, and the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet holes.

[0087] Specifically, the atomizer core assembly has a first position relative to the oil cup. When the atomizer core assembly is in the first position, the oil inlet holes are all located in the accommodating cavity, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes. For ease of understanding, the atomizer core assembly having the first position relative to the oil cup can also be understood as the atomizer core assembly being in an ascending state. Figure 7 , Figure 7 This is a schematic diagram of the structure of an atomizer core assembly in an ascending state provided in an embodiment of the present application. Figure 7 The position of the atomizer core assembly 40 in the embodiment is a first position relative to the oil cup. Figure 7 As shown in the second cross-sectional view of the atomizer device in FIG. 1 , the oil cup has oil stored in the accommodating cavity 61. When the atomizer core assembly has a first position relative to the oil cup, the atomizer core assembly is lifted, and the oil inlet hole is located in the accommodating cavity, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole. Figure 6 The position of the atomizer core assembly in Figure 7 The position of the atomizer core assembly in the atomizer is raised to a certain height. In order to be able to observe the position of the oil inlet hole more clearly, such as Figure 7 As shown in the second structural diagram in which the atomizer core assembly is in the ascending state. The portion 44 of the atomizer core assembly 40 located inside the accommodating chamber 61 is in contact with the oil, and the portion 44 located inside the accommodating chamber 61 in the second structural diagram includes all the oil inlet holes. Therefore, since the atomizer core assembly is lifted to the first position, all the oil inlet holes are located inside the accommodating chamber 61. The oil in the oil cup enters the atomizer core assembly through the oil inlet hole.

[0088] a motor assembly 50, connected to the atomizer core assembly, and used to lift or lower the atomizer core assembly to move the atomizer core assembly to the first position or the second position; and

[0089] A control chip 80 is electrically connected to the motor assembly, and the control chip can control the motor assembly to lift the atomizer core to the first position, or lower the atomizer core to the second position.

[0090] It should be noted that the atomizing device is powered by a battery 90 .

[0091] It can be seen that in the embodiment of the present application, the position of the atomizer core assembly is not fixed, and the control chip can control the motor assembly to lift the atomizer core to the first position, or lower the atomizer core to the second position. When the target object needs to suck the atomizer device, the motor assembly is controlled to lift the atomizer core to the first position, the oil inlet hole is located in the accommodating chamber, and the oil in the oil cup enters the atomizer core assembly through the oil inlet hole. The atomizer core assembly can atomize the entering oil for the target object to suck. When the target object does not need to suck the atomizer device, the motor assembly is controlled to lower the atomizer core assembly to the second position, and the oil inlet hole is located outside the accommodating chamber, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, preventing the atomizer core assembly from being in contact with the oil for a long time, and avoiding oil leakage. That is to say, the atomizer device in the present application can enable the target object to inhale normally when it needs to inhale, thereby improving the user experience; it can also prevent the target object from being in contact with the atomizer core assembly for a long time when it does not need to inhale, thereby avoiding oil leakage and improving the user experience of using the atomizer device.

[0092] Alternatively, if Figure 5 As shown, the oil cup 60 has a lifting through hole 62, and the accommodating chamber 61 is connected to the external space of the oil cup through the lifting through hole 62; the periphery of the atomizer core assembly is sealed and connected to the hole wall 62 of the lifting through hole, and the atomizer core assembly enters the accommodating chamber through the lifting through hole to move to the first position and the second position relative to the oil cup. The periphery of the atomizer core assembly is sealed and connected to the hole wall of the lifting through hole. Specifically, the oil cup also includes a sealing silicone with a through hole, and the through hole of the sealing silicone is the same size as the lifting through hole. The periphery of the atomizer core assembly passes through the through hole of the sealing silicone and the lifting through hole, and the periphery of the atomizer core assembly is sealed and connected to the hole wall 62 of the lifting through hole through the sealing silicone to prevent the oil in the accommodating chamber from flowing out of the cavity, contaminating other components inside the atomizer device, and affecting the normal use of the atomizer device.

[0093] Alternatively, if Figure 8 The motor assembly 50 includes a motor 51 and a first linkage member 52, and the driving shaft 512 of the motor is connected to the first linkage member 52; Figure 4As shown, the atomizer core assembly 40 includes an atomizer core 42 and a second linkage 43, and the first linkage 52 is connected to the atomizer core assembly through the second linkage 43 to link the atomizer core assembly to the first position or the second position. Specifically, the motor 51 drives the first linkage 52 to rise through the driving shaft 512, and the first linkage 52 is movably linked with the second linkage 43, so that the second linkage 43 is driven to rise through the rise of the first linkage 52, so as to lift the atomizer core to the first position relative to the oil cup.

[0094] Furthermore, the motor drives the first linkage member to descend, so that the descent of the first linkage member drives the second linkage member to descend, so as to descend the atomizer core to the second position. Figure 6 As shown, when the atomizer core assembly is in the second position, Figure 6 The first linkage member is at the bottom end of the drive shaft 512, and the atomizer core assembly is in a descending state. Figure 7 As shown, Figure 7 yes Figure 6 After the atomizer core assembly in the embodiment rises to the first position, during the rising process, the motor drives the first linkage member 52 to rise through the driving shaft, so as to drive the second linkage member 43 to rise through the rising of the first linkage member 52, so as to lift the atomizer core to the first position relative to the oil cup.

[0095] It can be seen that in the embodiment of the present application, the first linkage and the second linkage are provided to drive the movement of the atomizer core, so that the relative position between the motor assembly and the atomizer core assembly is more flexible, and the space of the internal components can be optimized through the appearance of the atomizer device; in addition, during the assembly process, the provision of the first linkage and the second linkage can reduce the structural interference between the atomizer core when the atomizer core is directly connected to the motor output shaft, thereby reducing the difficulty of product assembly.

[0096] Alternatively, if Figure 8 As shown, Figure 8 The motor assembly 50 is an exploded schematic diagram of an embodiment of the present application. The motor assembly 50 includes a motor 51 and a first linkage 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.

[0097] The first linkage member 52 is provided with a guide through hole 521 and a drive through hole 522, 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 member and the second linkage member are movably connected, and the first linkage member is connected to the atomizer core assembly through the second linkage member.

[0098] It can be seen that in the embodiment of the present application, since the drive shaft is connected to the drive through hole of the first linkage, when the first linkage is in the process of rising or moving down, the force of the motor body can be transmitted through the drive shaft, so that the first linkage can rise or fall, thereby driving the atomizer core assembly to rise or fall. Further, since the guide rod is connected to the guide through hole of the first linkage, when the first linkage is in the process of rising or moving down, the first linkage can be stabilized by the guide rod, so that the first linkage is more stable and more accurate during the movement. Furthermore, through the smooth movement of the first linkage along the lifting trajectory, the lifting trajectory of the second linkage can be guided, thereby constraining the lifting trajectory of the atomizer core assembly and causing the atomizer core assembly to move along the preset trajectory.

[0099] Optionally, the atomization device further includes an airflow sensor, which is electrically connected to the control chip, and the control chip is capable of receiving a suction signal generated by the airflow sensor and controlling the operation of the motor assembly according to the pressing signal. Specifically, when the target object performs a suction action on the atomization device, the airflow sensor generates a suction signal, and then the control chip controls the operation of the motor assembly based on the suction signal. Specifically, the control chip controls the motor assembly to lift the atomization core assembly to a first position relative to the oil cup, so that the oil in the oil cup enters the atomization core assembly through the oil inlet hole.

[0100] It can be seen that in the embodiment of the present application, when the target object has a suction behavior, the motor assembly is controlled to lift the atomizer core to the first position, the oil inlet hole is located in the accommodating cavity, and the oil in the oil cup enters the atomizer core assembly through the oil inlet hole. The atomizer core assembly can atomize the incoming oil for the target object to inhale. In other words, the atomizer device in the present application can enable the target object to inhale normally when it needs to inhale, without affecting the user experience.

[0101] Optionally, the atomization device further includes a physical button, which is electrically connected to the control chip, and the control chip is capable of generating a pressing signal triggered by pressing the physical button, and controlling the operation of the motor assembly according to the pressing signal. Specifically, when the target object presses the physical button, the control chip is capable of generating a pressing signal triggered by the physical button, and then the control chip controls the operation of the motor assembly based on the pressing signal. Specifically, the control chip controls the motor assembly to lift the atomization core assembly to a first position relative to the oil cup, so that the oil in the oil cup enters the atomization core assembly through the oil inlet hole.

[0102] It can be seen that in the embodiment of the present application, another method for controlling the rise of the atomizer core assembly is also provided, and the target object can freely choose according to specific needs to improve the user experience.

[0103] It should be noted that the present application also provides a method for lifting an atomizer core assembly, which can be applied to the control chip in the atomizer device described in the above embodiment. The control chip realizes the method for lifting an atomizer core assembly by controlling the relevant structures in the atomizer device. It should be noted that the structures involved in the method for lifting an atomizer core assembly provided in the present application have been described in the above structure-related embodiments, and the present application will not repeat them here.

[0104] Specifically, the method is applied to a control chip, the control chip is located in an atomization device, and the atomization device further includes an airflow sensor, an atomization core assembly, a motor assembly, and an oil cup; the oil cup is filled with oil, and the atomization core assembly is provided with an oil inlet hole. The control chip obtains a start signal, wherein the start signal is used to instruct the control chip to lift the atomization core assembly through the motor assembly; the control chip responds to the start signal, and lifts the atomization core assembly to a first position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomization core assembly through the oil inlet hole; when the atomization core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset condition, the atomization core assembly is lowered to a second position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomization core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

[0105] It can be seen that in the embodiment of the present application, the position of the atomizer core assembly is not fixed, and the control chip can control the motor assembly to lift the atomizer core to the first position, or lower the atomizer core to the second position. When the target object needs to inhale the atomizer device, that is, when the control chip obtains the start signal, it responds to the start signal and lifts the atomizer core assembly to the first position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole, and the atomizer core assembly can atomize the incoming oil for the target object to inhale. When the atomizer core assembly is located at the first position and the target object does not need to inhale the atomizer device, that is, when the first suction signal is not received from the airflow sensor within the first preset condition, the motor assembly is controlled to lower the atomizer core assembly to the second position relative to the oil cup, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet holes, preventing the atomizer core assembly from being in contact with the oil for a long time and avoiding oil leakage. In other words, the atomizer device in the present application can enable the target object to inhale normally when it needs to inhale, without affecting the user experience; and can prevent the target object from being in contact with the atomizer core assembly for a long time when it does not need to inhale, thereby avoiding oil leakage and improving the user experience of using the atomizer device.

[0106] See also Fig. 9 , Fig. 9 A schematic flow chart of a method for lifting an atomizer core assembly provided in an embodiment of the present application, the method includes but is not limited to steps 901-903:

[0107] 901: Get the start signal.

[0108] Wherein, the start signal is used to instruct to lift the atomizer core assembly.

[0109] It should be noted that the start signal includes a second suction signal received from the airflow sensor and / or a first pressing signal of the target object on the physical button.

[0110] Specifically, the start signal includes a second suction signal received from the airflow sensor. The airflow sensor is electrically connected to the control chip. When the target object performs suction on the nozzle of the atomizer, the airflow sensor can detect the change in airflow or capacitance, thereby generating an electrical signal (i.e., the second suction signal), and sending the second suction signal to the control chip to instruct the atomizer core assembly to be lifted. It should be noted that the airflow sensor can be a switch type or a capacitive type, and this application does not limit this.

[0111] Further, the start signal includes a first pressing signal of the target object for the physical button. The target object can generate a start signal by pressing the physical button, and the physical button is electrically connected to the control chip, and the control chip can generate a pressing signal triggered by pressing the physical button. That is, the first pressing signal of the target object for the physical button is used to indicate lifting the atomizer core assembly.

[0112] Furthermore, the start signal also includes a second suction signal received from the airflow sensor and a first pressing signal of the target object on the physical key. That is, when the target object can perform suction behavior on the nozzle and pressing behavior on the physical key at the same time, the start signal includes the second suction signal received from the airflow sensor and the first pressing signal of the target object on the physical key.

[0113] It can be seen that in the embodiment of the present application, three methods of forming the start signal are provided, corresponding to three different methods of lifting the atomizer core assembly caused by the target object's behavior, namely, the suction behavior of the suction nozzle, the pressing behavior of the physical button, the suction behavior of the suction nozzle and the pressing behavior of the physical button. The target object can freely select the behavior that can cause the atomizer core assembly to be lifted according to specific needs, providing users with multiple choices and improving user experience.

[0114] 902: In response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole.

[0115] Exemplarily, in response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole. The atomizer core assembly can atomize the incoming oil for the target object to inhale. It should be noted that the present application does not limit the number of oil inlet holes, nor does it limit the radius of the oil inlet holes, nor does it limit the position of the oil inlet holes in the atomizer core assembly. That is, the oil inlet holes in the present application can be set on the same plane on the outer wall of the atomizer core assembly, or on different planes on the outer wall of the atomizer core assembly. The present application is described by taking the same plane set on the outer wall of the atomizer core assembly as an example.

[0116] like Figure 6 As shown, when the atomizer core assembly is in the second position, Figure 6The first linkage member is at the bottom end of the drive shaft 512, and the atomizer core assembly is in a descending state, which can also be understood as an initial state. The control chip, in response to the start signal, raises the atomizer core assembly to a first position relative to the oil cup through the motor assembly. Figure 7 As shown, Figure 7 Yes Figure 6 The state after the atomizer core assembly is lifted to the first position.

[0117] In response to the start signal, the motor assembly lifts the atomizer core assembly to a first position relative to the oil cup, that is, all the oil inlet holes are located inside the oil cup, and the oil in the oil cup can enter the atomizer core assembly through the entire aperture of each oil inlet hole. The number and size of the oil inlet holes can be set based on specific usage scenarios. If the oil needs to enter the atomizer core assembly faster, a larger oil inlet hole radius and more oil inlet holes can be set. This allows the oil to quickly enter the atomizer core assembly.

[0118] Specifically, the motor assembly includes a motor and a first linkage, and the atomizer core assembly includes an atomizer core and a second linkage; the control chip controls the motor to drive the first linkage to rise in response to the start signal, so as to drive the second linkage to rise through the rise of the first linkage, so as to lift the atomizer core to a first position relative to the oil cup. Figure 7 As shown, during the rising process, the motor drives the first linkage member 52 to rise through the driving shaft, so that the rising of the first linkage member 52 drives the second linkage member 43 to rise, so as to lift the atomizer core to the first position relative to the oil cup. Figure 7 The first linkage 52 and Figure 6 From the position of the first linkage 52, it can be seen that Figure 7 The first linkage 52 in the Figure 6 The first linkage member 52 in the embodiment rises to a certain height, so that, Figure 7 The atomizer core assembly in Figure 6 The atomizer core assembly in the machine has risen to a certain height.

[0119] Exemplarily, corresponding to the composition of the start signal in step 901, different start signal composition methods correspond to different methods of controlling the motor to drive the first linkage member to rise.

[0120] Specifically, if the start signal includes a first pressing signal, the motor is controlled to drive the first linkage member to rise at a first rate; if the start signal includes a second suction signal, the motor is controlled to drive the first linkage member to rise at a second rate. If the start signal includes the second suction signal and the first pressing signal, the motor is controlled to drive the first linkage member to rise at a third rate. The second rate is greater than the first rate, 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 powers of the motor. The greater the rising rate of the first linkage member, the greater the output power of the motor.

[0121] It can be seen that in the embodiment of the present application, different start signal components correspond to different rising rates of the first linkage, that is, to different lifting rates of the atomizer core assembly. If the start signal includes a first pressing signal, the motor is controlled to drive the first linkage to rise at a first rate. That is, the target object triggers the start signal by pressing the physical button, and the target object may not have actually started to inhale with the mouth. Therefore, the atomizer core assembly can be lifted at a relatively small first rate at this time.

[0122] Furthermore, if the start signal includes a second suction signal, the motor is controlled to drive the first linkage member to rise at a second rate. That is, the target object triggers the start signal by sucking on the suction nozzle, and the target object has actually started to suck with the mouth. Therefore, at this time, the atomizer core assembly needs to be lifted at a relatively large second rate so that the atomizer core can quickly atomize the oil for the target object to suck.

[0123] Furthermore, if the start signal includes the second suction signal and the first pressing signal, the motor is controlled to drive the first linkage to rise at a third rate. That is, the target object triggers the start signal by pressing the physical button and sucking the nozzle, and it can be predicted that the target object has a strong desire to suck at this time. Therefore, it is necessary to lift the atomizer core assembly at the maximum third rate at this time so that the atomizer core can atomize the oil more quickly for the target object to suck and meet the requirements of the target object. Different atomizer core lifting rates are set for different behaviors of the target object, so that the target object can have a more intelligent experience when using the atomization device.

[0124] 903: When the atomizer core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset condition, the atomizer core assembly is lowered to a second position relative to the oil cup through the motor assembly, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole.

[0125] The first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

[0126] Exemplarily, when the atomizer core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset condition, the atomizer core assembly is lowered to the second position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

[0127] Exemplarily, the first preset condition includes one or more of a first preset time duration, a preset temperature range, a preset humidity range, and a preset air flow range, and the present application does not make any specific limitation on this.

[0128] Optionally, if the first preset condition includes a first preset duration, when the atomizer core assembly is located at the first position, that is, when the atomizer core assembly is in an ascending state, if the first suction signal is not received from the airflow sensor within the first preset duration. That is, the target object has not inhaled the suction nozzle of the atomizer device within the first preset duration. At this time, it can be predicted that the target object has paused the suction behavior and the atomizer core assembly is in an idle state. In order to prevent the oil from continuing to enter the atomizer core assembly through the oil inlet hole, resulting in oil leakage caused by the atomizer core assembly being in contact with the oil for a long time, therefore, in this case, the atomizer core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole. In the embodiment of the present application, the first preset condition is mainly used as an example for explanation.

[0129] Optionally, if the first preset condition includes a preset temperature interval, the atomization device also includes a temperature sensor for measuring the temperature generated when the atomizer core is sucked, and the temperature can be used to measure the frequency of the target object's suction behavior on the nozzle. The higher the temperature, the higher the frequency of the target object's suction behavior on the nozzle, and the lower the temperature, the lower the frequency of the target object's suction behavior on the nozzle. Therefore, the temperature can be used to predict whether the target object has paused the suction behavior. Specifically, a preset temperature interval is determined based on historical data, and the preset temperature interval can represent the temperature interval of the atomizer core after the target object stops sucking for a long time. When the atomizer core assembly is located in the first position, if the first suction signal is not received from the airflow sensor within the preset temperature interval, it can be predicted that the target object has paused the suction behavior and the atomizer core assembly is in an idle state. In order to prevent the oil from continuing to enter the atomizer core assembly through the oil inlet hole, resulting in oil leakage caused by the atomizer core assembly being in contact with the oil for a long time, therefore, in this case, the atomizer core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole.

[0130] Optionally, if the first preset condition includes a preset humidity interval, the atomization device also includes a humidity sensor, and the atomization core assembly will produce smoke particles with humidity when working, and the humidity sensor is used to measure the humidity of the smoke particles generated by the atomization core assembly when working. The humidity can be used to measure the working state of the atomization core assembly. The higher the humidity, the more smoke particles are frequently generated by the atomization core assembly, that is, the higher the frequency of the target object's suction behavior on the suction nozzle. The lower the humidity, the fewer smoke particles are generated by the atomization core assembly, which means that the frequency of the target object's suction behavior on the suction nozzle is lower. Therefore, the humidity can be used to predict whether the target object has suspended the suction behavior. Specifically, a preset humidity interval is determined based on historical data, and the preset humidity interval can represent the humidity interval of the smoke particles after the target object stops the suction behavior for a long time. When the atomization core assembly is located in the first position, if the first suction signal is not received from the airflow sensor within the preset humidity interval, it can be predicted that the target object has suspended the suction behavior and the atomization core assembly is in an idle state. In order to prevent the oil from continuing to enter the atomizer core assembly through the oil inlet hole, resulting in oil leakage caused by the atomizer core assembly being in contact with the oil for a long time, therefore, in this case, the atomizer core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole.

[0131] Optionally, if the first preset condition includes a preset air flow interval, the air flow rate is detected by an airflow sensor. The target object's suction behavior on the nozzle will generate airflow. The higher the air flow rate, the higher the frequency of the target object's suction behavior on the nozzle, and the lower the air flow rate, the lower the frequency of the target object's suction behavior on the nozzle. Therefore, the air flow rate can be used to predict whether the target object has paused the suction behavior. Specifically, a preset air flow interval is determined based on historical data, and the preset air flow interval can represent the air flow interval after the target object stops suctioning for a long time. When the atomizer core assembly is located in the first position, if the first suction signal is not received from the airflow sensor within the preset air flow interval, it can be predicted that the target object has paused the suction behavior and the atomizer core assembly is in an idle state. In order to prevent the oil from continuing to enter the atomizer core assembly through the oil inlet hole, resulting in oil leakage caused by the atomizer core assembly being in contact with the oil for a long time, therefore, in this case, the atomizer core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole.

[0132] Further, if the first preset condition includes a first preset duration and a preset temperature range, then when the atomizer core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset duration and within the preset temperature range. That is, the target object has not inhaled the nozzle of the atomizer device within the first preset duration, and the temperature of the atomizer core assembly is within the preset temperature range. At this time, it can be predicted that the target object has paused the suction behavior and the atomizer core assembly is in an idle state. In order to prevent the oil from continuing to enter the atomizer core assembly through the oil inlet hole, resulting in oil leakage caused by the atomizer core assembly being in contact with the oil for a long time, therefore, in this case, the atomizer core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole.

[0133] When the control chip lowers the atomizer core assembly to the second position relative to the oil cup through the motor assembly, all the oil inlet holes are located outside the oil cup, and the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet holes. At this time, there is only a small amount of smoke oil adsorbed in the atomizer core in the atomizer core assembly, and even if the atomizer device is not used for a long time or is transported, the atomizer core assembly will not leak oil.

[0134] Optionally, the motor assembly includes a motor and a first linkage, and the atomizer core assembly includes an atomizer core and a second linkage; and lowering the atomizer core assembly to a second position relative to the oil cup through the motor assembly includes: controlling the motor to drive the first linkage to descend, so as to drive the second linkage to descend through the descent of the first linkage, so as to lower the atomizer core to the second position.

[0135] like Figure 7 As shown, Figure 7 The atomizer core assembly is located in the first position, that is, the atomizer core assembly is in the ascending state. If the first suction signal is not received from the airflow sensor within the first preset condition, the motor drives the first linkage member 52 to descend through the driving shaft, so as to drive the second linkage member 43 to descend through the descending of the first linkage member 52, so as to descend the atomizer core to the second position relative to the oil cup, that is, Figure 6 The position of the atomizer core assembly is shown. Figure 7 The first linkage 52 and Figure 6 From the position of the first linkage 52, it can be seen that Figure 6 The first linkage 52 in the Figure 7 The first linkage member 52 in the embodiment is lowered to a certain height, so that, Figure 6 The atomizer core assembly in Figure 7 The atomizer core assembly in the machine has dropped to a certain height.

[0136] It can be seen that in the embodiment of the present application, a start signal is obtained, wherein the start signal is used to indicate the lifting of the atomizer core assembly; in response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole; when the atomizer core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset condition, the atomizer core assembly is lowered to a second position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device. In the embodiment itself, the position of the atomizer core assembly is not fixed, and the control chip can control the motor assembly to lift the atomizer core to the first position, or lower the atomizer core to the second position. When the target object needs to suck the atomizer device, that is, when the control chip obtains the start signal, in response to the start signal, the motor assembly is used to lift the atomizer core assembly to the first position relative to the oil cup, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole, and the atomizer core assembly can atomize the entering oil for the target object to suck. When the atomizer core assembly is located at the first position, when the target object does not need to suck the atomizer device, that is, the first suction signal is not received from the airflow sensor within the first preset condition, the motor assembly is controlled to lower the atomizer core assembly to the second position relative to the oil cup, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, preventing the atomizer core assembly from being in contact with the oil for a long time and avoiding oil leakage. That is to say, the atomizer device in the present application can enable the target object to inhale normally when it needs to inhale without affecting the user experience; it can also prevent the target object from being in contact with the atomizer core assembly for a long time when it does not need to inhale, thereby avoiding oil leakage and improving the user experience of using the atomizer device.

[0137] In one embodiment of the present application, if the first preset condition is the first preset duration, another method for lifting the atomizer core assembly is also provided, including:

[0138] When the atomizer core assembly is located at the first position, if no puff signal is received from the airflow sensor within a second preset time period, the puff frequency of the target object within a third preset time period is obtained, wherein the starting time of the third preset time period is the ending 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 puff frequency is less than a threshold value, the atomizer core assembly is lowered to a third position relative to the oil cup by the motor assembly, so that the oil inlet hole is partially located in the oil cup.

[0139] Specifically, when the atomizer core assembly is located at the first position, if no suction signal is received from the airflow sensor within the second preset time period, that is, when the atomizer core assembly is in the rising state, the target object has not sucked the nozzle of the atomizer device within the second preset time period. At this time, it can be predicted that the target object's desire to suck the atomizer device is no longer strong. Therefore, the position of the atomizer core assembly can be adjusted in advance to finely control the rate at which the oil passes through the oil inlet hole. Because the target object's desire to suck is no longer strong at this time, if the oil inlet holes are still all located in the oil cup at this time, the oil inlet speed is very fast, but the target object consumes very little oil, which may cause too much oil to be stored in the atomizer core assembly.

[0140] For example, if the first preset time is 70 minutes, the second preset time is 20 minutes, and the third preset time is 20 minutes, the setting of the preset time in this application is only for illustration and does not constitute a limitation on the preset time in this application. If no suction signal is received from the airflow sensor within 20 minutes, that is, when the atomizer core assembly is in the first position, the target object has not had any suction behavior on the nozzle of the atomizer device for 20 minutes. At this time, it can be predicted that the target object's desire to suck the atomizer device is no longer strong. Therefore, the position of the atomizer core assembly can be adjusted in advance without having to wait until the first preset time (i.e., 70 minutes) before controlling the atomizer core assembly to drop to the second position.

[0141] Because when the target object's inhalation intention is no longer strong (i.e., no inhalation signal is received from the airflow sensor within the second preset time), if the inhalation signal is still not received from the airflow sensor after 70 minutes, and the atomizer core assembly is controlled to descend, the oil inlet holes are all located in the oil cup during this process, and the oil inlet speed is very fast, which will cause the atomizer core assembly to store too much oil during this process. Therefore, in order to match the oil inlet rate with the target object's inhalation behavior, it is necessary to obtain the target object's inhalation frequency to finely control the rate at which the oil passes through the oil inlet hole.

[0142] Further, the puffing frequency of the target object within a third preset time length is obtained, wherein the starting time of the third preset time length is the ending time of the second preset time length, and the third preset time length is less than the difference between the first preset time length and the second preset time length. Within the third preset time length, the number of times the puffing signal is received from the airflow sensor is obtained; based on the number and the third preset time length, the puffing frequency is determined. Continuing with the above example, when no puffing signal is obtained from the airflow sensor for 20 minutes, the puffing frequency of the target object within the third preset time length is detected. Because each puffing behavior of the target object corresponds to a puffing signal of the airflow sensor, the control chip can obtain the number of times the target object performs a puffing behavior within the third preset time length by obtaining the number of times the puffing signal is received from the airflow sensor within the third preset time length. Then, the puffing frequency is determined based on the number and the third preset time length.

[0143] Optionally, if the suction frequency is less than a threshold value, the atomizer core assembly is lowered to a third position relative to the oil cup by the motor assembly so that the oil inlet hole is partially located in the oil cup. If the suction frequency is less than the threshold value, it is determined that the target object's suction intention at this time is not strong, and the consumption of oil is less. Therefore, in order to match the suction intention of the target object at this time, the motor assembly should be controlled to lower the atomizer core assembly to a third position relative to the oil cup so that the oil inlet hole is partially located in the oil cup. The oil inlet rate when the oil inlet hole is partially located in the oil cup is slower than when the oil inlet hole is completely located in the oil cup, and too much oil will not be stored in the atomizer core assembly, which matches the suction frequency of the target object at this time.

[0144] Further, when the atomizer core assembly is located at the third position, if no suction signal is received from the airflow sensor within the fifth preset time, the atomizer core assembly is lowered to the second position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole. Wherein, the fifth preset time is less than or equal to the difference between the first preset time and the second preset time.

[0145] Optionally, if the suction frequency is greater than or equal to a threshold value, the position of the atomizer core assembly is not moved. If the suction frequency is greater than or equal to the threshold value, it means that the target object has a strong desire to smoke within the third preset time period and has a large demand for oil consumption. Therefore, all the oil inlet holes need to be located in the oil cup to maintain a relatively large oil inlet rate to meet the suction needs of the target object.

[0146] It can be seen that in the embodiment of the present application, when the atomizer core assembly is located in the first position, if the suction signal is not received from the airflow sensor within the second preset time. At this time, it is predicted that the target object's desire to suck the atomizer device is no longer strong, so the position of the atomizer core assembly is adjusted in advance to finely control the rate at which the oil passes through the oil inlet hole. Because the target object's desire to suck is no longer strong at this time, if the oil inlet holes are still all located in the oil cup at this time, the oil inlet speed is very fast, but the target object consumes very little oil, which may cause too much oil to be stored in the atomizer core assembly. If the suction frequency is less than the threshold, the atomizer core assembly is lowered to a third position relative to the oil cup by the motor assembly, so that the oil inlet hole is partially located in the oil cup. If the suction frequency is less than the threshold, it is determined that the target object's desire to suck at this time is not strong and the consumption of oil is less. Therefore, in order to match the target object's desire to suck at this time, the motor assembly should be controlled to lower the atomizer core assembly to a third position relative to the oil cup so that the oil inlet hole is partially located in the oil cup. The oil inlet hole is partially located in the oil cup, and the oil inlet rate is slower than that of the oil inlet hole being completely located in the oil cup. Too much oil will not be stored in the atomizer core assembly, which matches the puffing frequency of the target object at this time, making the control process more refined and intelligent, which can not only match the amount of oil in the atomizer core assembly with the puffing frequency of the target object, but also prevent excessive smoke oil from being stored in the atomizer core assembly.

[0147] In one embodiment of the present application, if a second pressing signal of a fourth preset duration of the target object for the physical button is received; based on the second pressing signal, it is determined that the atomizer device enters a preset mode, wherein, in the preset mode, the atomizer core assembly cannot be lifted by the motor assembly. That is to say, the target object can also use a physical button to make the atomizer core device enter a preset mode, which can also be understood as a lock mode, and in the preset mode, the atomizer core assembly cannot be lifted by the motor assembly. If the target object long presses the fourth preset duration physical button, it indicates that the target object needs to set the atomizer device to a preset mode to prevent the motor assembly from lifting the atomizer core assembly. For example, if the target object needs to carry the atomizer device for a long journey, the atomizer device needs to be placed in a suitcase. During transportation, other objects may collide with the physical button, causing the control chip to control the motor assembly to lift the atomizer core assembly, and the oil has been entering the atomizer core assembly through the oil inlet hole, causing too much oil to be stored in the atomizer core assembly. The violent shaking during the journey may cause the smoke oil in the atomizer core assembly to leak, thereby affecting the normal use of the atomizer device.

[0148] Therefore, the present application provides a method for setting the preset mode, in which the atomizer core assembly cannot be lifted by the motor assembly. That is, in the preset mode, the atomizer core assembly will not be lifted even if the physical button is pressed accidentally, so as to prevent the atomizer core assembly from being lifted due to accidental touch, and the oil from entering the atomizer core assembly through the oil inlet hole, causing excessive oil to be stored in the atomizer core assembly and causing oil leakage.

[0149] See also Fig.10 , Fig.10 This is a functional unit composition block diagram of a lifting device for an atomizer core assembly provided in an embodiment of the present application. The lifting device 1100 for the atomizer core assembly includes: a transceiver unit 1101 and a processing unit 1102;

[0150] The transceiver unit 1101 is used to obtain a start signal, wherein the start signal is used to instruct to lift the atomizer core assembly;

[0151] The processing unit 1102 is used for, in response to the start signal, lifting the atomizer core assembly to a first position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes;

[0152] The processing unit 1102 is used for lowering the atomizer core assembly to a second position relative to the oil cup through the motor assembly if the first suction signal is not received from the airflow sensor within the first preset condition when the atomizer core assembly is located at the first position, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

[0153] In one embodiment of the present application, the motor assembly includes a motor and a first linkage, and the atomizer core assembly includes an atomizer core and a second linkage; in response to the start signal, in raising the atomizer core assembly to a first position relative to the oil cup by the motor assembly, the processing unit 1102 is specifically used to:

[0154] In response to the start signal, the motor is controlled to drive the first linkage member to rise, so that the second linkage member is driven to rise by the rise of the first linkage member, so as to lift the atomizer core to a first position relative to the oil cup.

[0155] In one embodiment of the present application, the atomization device further includes a physical button; the processing unit 1102,

[0156] The start signal includes a second suction signal received from the airflow sensor and / or a first pressing signal of the target object on the physical button.

[0157] In one embodiment of the present application, in controlling the motor to drive the first linkage member to rise, the processing unit 1102 is specifically configured to:

[0158] If the start signal includes a first pressing signal, controlling the motor to drive the first linkage member to rise at a first speed;

[0159] If the start signal includes a second suction signal, controlling the motor to drive the first linkage member to rise at a second speed;

[0160] If the start signal includes the second suction signal and the first pressing signal, controlling the motor to drive the first linkage member to rise at a third rate;

[0161] The third rate is greater than the first rate, and the third rate is greater than the second rate.

[0162] In one embodiment of the present application, the motor assembly includes a motor and a first linkage, the atomizer core assembly includes an atomizer core and a second linkage, and in terms of lowering the atomizer core assembly to a second position relative to the oil cup by the motor assembly, the processing unit 1102 is specifically configured to:

[0163] The motor is controlled to drive the first linkage member to descend, so that the second linkage member is driven to descend by the descent of the first linkage member, so as to descend the atomizer core to the second position.

[0164] In one embodiment of the present application, the processing unit 1102 is specifically configured to:

[0165] When the atomizer core assembly is located at the first position, if no puff signal is received from the airflow sensor within the second preset time period, the puff 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 condition and the second preset time period;

[0166] If the suction frequency is less than a threshold value, the atomizer core assembly is lowered to a third position relative to the oil cup by the motor assembly, so that the oil inlet hole is partially located in the oil cup.

[0167] In one embodiment of the present application, in terms of obtaining the puffing frequency of the target object within the third preset time period, the processing unit 1102 is specifically configured to:

[0168] Within the third preset time period, obtaining the number of times the suction signal is received from the airflow sensor;

[0169] The puffing frequency is determined based on the number of times and the third preset time length.

[0170] In one embodiment of the present application, the atomization device further includes a physical button, a processing unit 1102, which is specifically used to:

[0171] receiving a second pressing signal of a fourth preset duration from a target object on the physical key;

[0172] Based on the second pressing signal, it is determined that the atomization device enters a preset mode, wherein in the preset mode, the atomization core assembly cannot be lifted by the motor assembly.

[0173] See also Fig.11 , Fig.11 This is a schematic diagram of the structure of an electronic device provided in an embodiment of the present application. Fig.11 As shown, the electronic device 1200 includes a transceiver 1201, a processor 1202, and a memory 1203. They are connected via a bus 1204. The memory 1203 is used to store computer programs and data, and can transmit the data stored in the memory 1203 to the processor 1202.

[0174] The processor 1202 is used to read the computer program in the memory 1203 and perform the following operations:

[0175] Obtaining a start signal, wherein the start signal is used to instruct lifting of the atomizer core assembly;

[0176] In response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes;

[0177] When the atomizer core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset condition, the atomizer core assembly is lowered to a second position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

[0178] Specifically, the transceiver 1201 may be Fig.10 The transceiver unit 1101 of the lifting device 1100 of the atomizer core assembly of the embodiment, the processor 1202 may be Fig.10 The processing unit 1102 of the lifting device 1100 of the atomizer core assembly of the embodiment.

[0179] Specifically, the transceiver 1201 may be Fig.10 The transceiver unit 1101 of the lifting device 1100 of the atomizer core assembly of the embodiment described above, the processor 1202 may be Fig.10 The processing unit 1102 of the lifting device 1100 of the atomizer core assembly of the embodiment. Therefore, the specific functions of the processor 1202 can refer to the specific functions of the processing unit 1102, and the specific functions of the transceiver 1201 can refer to the specific functions of the transceiver unit 1101.

[0180] It should be understood that the electronic devices in this application may include smart phones (such as Android phones, iOS phones, Windows Phone phones, etc.), tablet computers, PDAs, laptops, mobile Internet devices MID (Mobile Internet Devices, referred to as: MID) or wearable devices, etc. The above electronic devices are only examples, not exhaustive, and include but are not limited to the above electronic devices. In practical applications, the above electronic devices may also include: smart vehicle terminals, computer equipment, etc.

[0181] The embodiment of the present application also provides a computer-readable storage medium, which stores a computer program. The computer program is executed by a processor to implement part or all of the steps of any method for lifting an atomizer core assembly as described in the above method embodiments.

[0182] The embodiment of the present application also provides a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to execute part or all of the steps of any one of the methods for lifting an atomizer core assembly as described in the above method embodiments.

[0183] It should be noted that, for the aforementioned method embodiments, for the sake of simplicity, they are all described as a series of action splicing, but those skilled in the art should be aware that this application is not limited by the order of the actions described, because according to this application, some steps can be performed in other orders or simultaneously. Secondly, those skilled in the art should also be aware that the embodiments described in the specification are all optional embodiments, and the actions and modules involved are not necessarily required by this application.

[0184] In the above embodiments, the description of each embodiment has its own emphasis. For parts that are not described in detail in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.

[0185] In the several embodiments provided in the present application, it should be understood that the disclosed devices can be implemented in other ways. For example, the device embodiments described above are only schematic, such as the division of units, which is only a logical function division. There may be other division methods in actual implementation, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, and the indirect coupling or communication connection of devices or units can be electrical or other forms.

[0186] The units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed on multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution of this embodiment.

[0187] In addition, each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit. The above integrated unit may be implemented in the form of hardware or in the form of a software program module.

[0188] If the integrated unit is implemented in the form of a software program module and sold or used as an independent product, it can be stored in a computer-readable memory. Based on this understanding, the technical solution of the present application, 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, which is stored in a memory and includes several instructions for a computer device (which can be a personal computer, server or network device, etc.) to perform all or part of the steps of each embodiment method of the present application. The aforementioned memory includes: U disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), mobile hard disk, disk or optical disk and other media that can store program codes.

[0189] A person skilled in the art can understand that all or part of the steps in the various methods of the above embodiments can be completed by instructing related hardware through a program, and the program can be stored in a computer-readable memory, and the memory can include: a flash drive, a read-only memory (English: Read-Only Memory, abbreviated as: ROM), a random access memory (English: Random Access Memory, abbreviated as: RAM), a magnetic disk or an optical disk, etc.

[0190] The embodiments of the present application are introduced in detail above. Specific examples are used in this article to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea. At the same time, for those skilled in the art, according to the idea of ​​the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.

Claims

1. A method for lifting an atomizer core assembly, characterized in that: The method is applied to a control chip, the control chip is located in an atomization device, the atomization device also includes an airflow sensor, an atomization core assembly, a motor assembly and an oil cup; the oil cup is filled with oil, and the atomization core assembly is provided with an oil inlet hole; the method includes: Obtaining a start signal, wherein the start signal is used to instruct lifting of the atomizer core assembly; In response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet hole; When the atomizer core assembly is located at the first position, if the first suction signal is not received from the airflow sensor within the first preset condition, the atomizer 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 atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomizer device.

2. The method according to claim 1, characterized in that: The motor assembly includes a motor and a first linkage member, the atomizer core assembly includes an atomizer core and a second linkage member, and the first linkage member and the second linkage member are movably connected; In response to the start signal, the atomizer core assembly is lifted to a first position relative to the oil cup by the motor assembly, comprising: In response to the start signal, the motor is controlled to drive the first linkage member to rise, so that the second linkage member is driven to rise by the rise of the first linkage member, so as to lift the atomizer core assembly to a first position relative to the oil cup.

3. The method according to claim 1 or 2, characterized in that: The atomization device also includes a physical button; The start signal includes a second suction signal received from the airflow sensor and / or a first pressing signal of the target object on the physical button.

4. The method according to claim 3, characterized in that The controlling the motor to drive the first linkage member to rise includes: If the start signal includes a first pressing signal, controlling the motor to drive the first linkage member to rise at a first speed; If the start signal includes a second suction signal, controlling the motor to drive the first linkage member to rise at a second speed; If the start signal includes the second suction signal and the first pressing signal, controlling the motor to drive the first linkage member to rise at a third rate; 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 to 4, characterized in that: The motor assembly includes a motor and a first linkage member, the atomizer core assembly includes an atomizer core and a second linkage member, and the first linkage member and the second linkage member are movably connected; The step of lowering the atomizer core assembly to a second position relative to the oil cup by the motor assembly comprises: The motor is controlled to drive the first linkage member to descend, so that the second linkage member is driven to descend by the descent of the first linkage member, so as to descend the atomizer core to the second position.

6. The method according to any one of claims 1 to 5, characterized in that: The first preset condition includes one or more of a first preset time period, a preset temperature range, a preset humidity range, and a preset air flow range.

7. The method according to any one of claims 1 to 6, characterized in that: If the first preset condition includes a first preset duration; The method further comprises: When the atomizer core assembly is located at the first position, if no puff signal is received from the airflow sensor within the second preset time period, the puff 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 value, the atomizer core assembly is lowered to a third position relative to the oil cup by the motor assembly, so that a portion of the oil inlet hole is located in the oil cup.

8. The method according to claim 7, characterized in that The obtaining the puffing frequency of the target object within a third preset time period includes: Within the third preset time period, obtaining the number of times the suction signal is received from the airflow sensor; The puffing frequency is determined based on the number of times and the third preset time length.

9. The method according to any one of claims 1 to 8, characterized in that: The atomization device further includes a physical button, and the method further includes: receiving a second pressing signal of a fourth preset duration from a target object on the physical key; Based on the second pressing signal, it is determined that the atomization device enters a preset mode, wherein in the preset mode, the atomization core assembly cannot be lifted by the motor assembly.

10. An atomizing device, characterized in that: include: The atomizer core assembly is provided with an oil inlet hole; The oil cup has a containing cavity for containing oil, the atomizer core assembly has a first position and a second position relative to the oil cup, when the atomizer core assembly is located at the first position, the oil in the oil cup enters the atomizer core assembly through the oil inlet hole; when the atomizer core assembly is located at the second position, the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole; a motor assembly connected to the atomizer core assembly, the motor assembly being used to lift or lower the atomizer core assembly to move the atomizer core assembly to the first position or the second position; as well as A control chip, wherein the control chip is electrically connected to the motor assembly, and the control chip is capable of executing the method according to any one of claims 1 to 9, so that the motor assembly lifts the atomizer core to the first position, or lowers the atomizer core to the second position.

11. The atomizing device according to claim 10, characterized in that The oil cup has a lifting through hole, and the accommodating cavity is connected with the external space of the oil cup through the lifting through hole; The outer periphery of the atomizer core assembly is sealed and connected to the hole wall of the lifting through hole, and the atomizer core assembly enters the accommodating 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 according to claim 10 or 11, characterized in that: The motor assembly includes a motor and a first linkage member, the atomizer core assembly includes an atomizer core and a second linkage member, and the driving shaft of the motor is connected to the first linkage member; The first linkage is connected to the atomizer core assembly through the second linkage to link the atomizer core assembly to the first position or the second position.

13. The atomizing device according to claim 12, characterized in that The motor comprises a motor body, a driving shaft and a guide rod, wherein the guide rod is connected to the motor body and is used to guide the movement of the linkage member; The first linkage member 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 member is connected to the atomizer core assembly through the second linkage member.

14. The atomizing device according to any one of claims 10 to 13, characterized in that: The atomization device further includes an airflow sensor, which is electrically connected to the control chip. The control chip is capable of receiving a suction signal generated by the airflow sensor and controlling the operation of the motor assembly according to the suction signal.

15. The atomizing device according to any one of claims 10 to 14, characterized in that: The atomization device also includes a physical button, which is electrically connected to the control chip. The control chip can generate a pressing signal triggered by a pressing operation on the physical button, and control the operation of the motor component according to the pressing signal.

16. A lifting device for an atomizer core assembly, characterized in that: The device comprises a transceiver unit and a processing unit; The transceiver unit is used to obtain a start signal, wherein the start signal is used to instruct to lift the atomizer core assembly; The processing unit is used for, in response to the start signal, lifting the atomizer core assembly to a first position relative to the oil cup through the motor assembly, so that the oil inlet holes are all located inside the oil cup, so that the oil in the oil cup enters the atomizer core assembly through the oil inlet holes; The processing unit is used for lowering the atomizer core assembly to a second position relative to the oil cup through the motor assembly if the first suction signal is not received from the airflow sensor within a first preset condition when the atomizer core assembly is located at the first position, so that all the oil inlet holes are located outside the oil cup, so that the oil in the oil cup cannot enter the atomizer core assembly through the oil inlet hole, wherein the first suction signal is used to indicate that the target object has a suction behavior on the atomization device.

17. An electronic device, characterized in that: include: A processor and a memory, the processor is connected to the memory, the memory is used to store a computer program, and the processor is used to execute the computer program stored in the memory, so that the electronic device executes the method as described in any one of claims 1 to 9.

18. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, and the computer program is executed by a processor to implement the method according to any one of claims 1 to 9.

Citation Information

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