Discharging method of electronic atomization device, electronic atomization device and storage medium

By using a controller in an electronic atomizing device to control the discharge component to discharge the battery, the environmental pollution and safety risks caused by shortened battery life are solved, realizing a green and environmentally friendly method for terminating the use of electronic atomizing devices.

CN121753972APending Publication Date: 2026-03-31SHENZHEN INNOKIN TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-10
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

The batteries in electronic atomizing devices have a shortened lifespan after repeated charging and use, leading to environmental pollution and potential safety risks, including fire and explosion hazards.

Method used

The controller controls the discharge assembly to discharge the battery and terminates the heating assembly before discarding the electronic atomization device, ensuring that the battery is fully discharged and preventing recharging.

Benefits of technology

It effectively prevents environmental pollution and safety hazards, avoids fires or explosions, and protects the lives of people in the surrounding area.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention discloses a discharging method of an electronic atomization device, the electronic atomization device and a storage medium, and is used for controlling a discharging assembly to discharge a battery through a controller before the electronic atomization device is discarded, so that the green environment is protected, and potential safety hazards of fire disasters and explosions are prevented. The electronic atomization device comprises a controller, a battery, a heating assembly and a discharging assembly, the battery, the heating assembly and the discharging assembly are electrically connected with the controller, and the heating assembly and the discharging assembly are connected with the battery in parallel. The discharging method comprises the steps that the controller sends a discharging instruction to the discharging assembly; the controller controls the discharging assembly to discharge the battery; the controller sends a work termination instruction to the heating assembly; and the controller controls the heating assembly to stop working.
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Description

Technical Field

[0001] This application relates to the field of electronic atomization technology, and in particular to a discharge method for an electronic atomization device, as well as the electronic atomization device and storage medium. Background Technology

[0002] Electronic atomizing devices are battery-powered devices. During normal use, a fully charged battery provides power to the controller and atomizer. As the electronic atomizing device continues to work, the battery power decreases, requiring recharging. After repeated charging and use of the battery, the battery's lifespan will be shortened until the battery or electronic atomizing device becomes waste and is discarded.

[0003] However, as the number of people using electronic atomizing devices continues to grow, society as a whole faces the social problem of increasing discarded e-cigarettes and the discarded batteries inside them. These discarded products not only pollute the environment and are not environmentally friendly, but also pose potential safety risks. If they are accidentally ignited by high temperatures or violent vibrations, they can cause fires or explosions, and even injure innocent lives. Summary of the Invention

[0004] This application provides a discharge method for an electronic atomizing device, as well as the electronic atomizing device and storage medium. The controller can control the discharge component to discharge the battery before the electronic atomizing device is discarded, which not only protects the green environment but also prevents safety hazards such as fire and explosion.

[0005] This application provides a discharge method for an electronic atomizing device. The electronic atomizing device includes a controller, a battery, a heating component, and a discharge component. The battery, the heating component, and the discharge component are electrically connected to the controller, and the heating component and the discharge component are connected in parallel with the battery. The discharge method includes:

[0006] The controller sends a discharge command to the discharge component;

[0007] The controller controls the discharge assembly to discharge the battery;

[0008] The controller sends a stop operation command to the heating component;

[0009] The controller controls the heating component to stop operating.

[0010] Optionally, the controller is further configured to prevent the charging power source from charging the battery, wherein the charging power source is an external power source.

[0011] Optionally, the electronic atomizing device further includes an input device, which is electrically connected to the controller, wherein...

[0012] Before the controller sends a discharge command to the discharge component, the discharge method further includes:

[0013] The controller receives the discharge command sent by the input device.

[0014] Optionally, before the controller sends the discharge command to the discharge component, the discharge method further includes:

[0015] When the heating component is working, the control component disables the discharge component.

[0016] Optionally, the electronic atomizing device further includes a memory electrically connected to the controller, the memory storing a preset cumulative operating time threshold for the battery, wherein, before the controller sends a discharge command to the discharge component, the discharge method further includes:

[0017] The controller detects the actual cumulative working time of the battery, which is the actual cumulative working time of the electronic atomizing device since it was manufactured and put into use.

[0018] The controller determines whether the actual cumulative working time is greater than the preset cumulative working time threshold.

[0019] If so, the controller determines that the actual working time is greater than the preset cumulative working time threshold.

[0020] Optionally, after the controller determines whether the actual cumulative working time is greater than the preset cumulative working time threshold, the discharge method further includes:

[0021] If not, the controller will repeatedly execute the above steps in a loop.

[0022] Optionally, the electronic atomizing device further includes a memory electrically connected to the controller, the memory storing a preset cumulative charge threshold of the battery, wherein, before the controller sends a discharge command to the discharge component, the discharge method further includes:

[0023] The controller detects the actual cumulative charge of the battery, which is the actual cumulative charge of the electronic atomizing device since it was manufactured and put into use.

[0024] The controller determines whether the actual cumulative charging power is greater than the preset cumulative charging power threshold.

[0025] If so, the controller determines that the actual cumulative charging power is greater than the preset cumulative charging power threshold.

[0026] Optionally, after the controller determines whether the actual accumulated charging capacity is greater than the preset accumulated charging capacity threshold, the discharging method further includes:

[0027] If not, the controller repeats the above steps.

[0028] This application also provides an electronic atomizing device, which includes a controller, a battery, a heating component, and a discharging component. The battery, the heating component, and the discharging component are each electrically connected to the controller, and the heating component and the discharging component are each connected in parallel with the battery, wherein:

[0029] The controller is used to send a discharge command to the discharge component to control the discharge component to discharge the battery, and to send a stop operation command to the heating component to control the heating component to stop operating.

[0030] Optionally, the electronic atomizing device further includes an input device electrically connected to the controller, wherein the controller is also configured to receive the discharge command sent by the input device.

[0031] Optionally, when the heating component is operating, the control component is used to disable the discharge component.

[0032] Optionally, the electronic atomizing device further includes a memory electrically connected to the controller. The memory stores a preset cumulative working time threshold for the battery. The controller is also used to detect the actual cumulative working time of the battery, which is the cumulative working time of the electronic atomizing device since it was manufactured and put into use. The controller determines whether the actual cumulative working time is greater than the preset cumulative working time threshold. If the actual cumulative working time is determined to be greater than the preset cumulative working time threshold, the controller sends the discharge command to the discharge component.

[0033] Optionally, the controller is further configured to repeatedly execute the above steps after determining that the actual cumulative working time is less than or equal to the preset cumulative working time threshold.

[0034] Optionally, the electronic atomizing device further includes a memory electrically connected to the controller. The memory stores a preset cumulative charge threshold for the battery. The controller is also used to detect the actual cumulative charge of the battery, which is the actual cumulative charge of the electronic atomizing device since it was manufactured and used until now. The controller determines whether the actual cumulative charge is greater than the preset cumulative charge threshold. When it is determined that the actual cumulative charge is greater than the preset cumulative charge threshold, the controller sends a discharge command to the discharge component.

[0035] Optionally, the controller is further configured to repeatedly execute the above steps after determining that the actual cumulative charging capacity is less than or equal to the preset cumulative charging capacity threshold.

[0036] Optionally, the discharge assembly includes a discharge switch and a discharge load, wherein the discharge switch is electrically connected to the controller, the discharge load, and the power supply, respectively.

[0037] The heating assembly includes a heating switch and a heating load, wherein the heating switch is electrically connected to the controller, the heating load and the battery respectively.

[0038] Optionally, the discharge load is a resistor, a discharge circuit structure, or a display device.

[0039] Optionally, the electronic atomizing device is an electronic cigarette, a medical electronic atomizing product, or a cosmetic electronic atomizing product.

[0040] This application also provides a readable storage medium for an electronic atomizing device, the readable storage medium for storing software instructions used by the aforementioned electronic atomizing device, including programs designed for executing the electronic atomizing device.

[0041] This application also provides a program product for an electronic atomizing device, which includes software instructions that can be loaded by a controller to implement the discharge method process of the electronic atomizing device described above.

[0042] The electronic atomizing device provided in this embodiment includes a controller, a battery, a heating component, and a discharging component. The battery, heating component, and discharging component are electrically connected to the controller, and the heating component and discharging component are connected in parallel with the battery. In the discharging method of this electronic atomizing device, when the electronic atomizing device has reached its service life, or when the user wants to discard the electronic atomizing device, the controller sends a discharge command to the discharging component, thereby controlling the discharging component to discharge the battery. Furthermore, the controller can send a stop-work command to the heating component before, during, or after the battery discharge, thereby controlling the heating component to stop working. In this way, before discarding the electronic atomizing device, all the power in the electronic atomizing device is released, preventing environmental pollution when discarding the device. It is very green and environmentally friendly, and does not pose any safety hazards, avoiding fires or battery explosions and protecting the lives of surrounding people. Attached Figure Description

[0043] Figure 1 This is a schematic diagram of an electronic atomizing device in an embodiment of this application;

[0044] Figure 2 This is a schematic flowchart of a discharge method for an electronic atomizing device in an embodiment of this application;

[0045] Figure 3 This is another structural schematic diagram of the electronic atomizing device in the embodiments of this application;

[0046] Figure 4 This is a schematic diagram of another method flow for the electronic atomizing device in the embodiments of this application;

[0047] Figure 5 This is another structural schematic diagram of the electronic atomizing device in the embodiments of this application;

[0048] Figure 6 This is a schematic diagram of another method flow for the electronic atomizing device in the embodiments of this application;

[0049] Figure 7 This is a schematic diagram of another method flow for the electronic atomizing device in the embodiments of this application;

[0050] Figure 8 This is another circuit structure diagram of the electronic atomizing device in the embodiments of this application. Detailed Implementation

[0051] This application provides a discharge method for an electronic atomizing device and an electronic atomizing device, which is used to control the discharge component to discharge the battery before discarding the electronic atomizing device, thereby protecting the green environment and preventing safety hazards such as fire and explosion.

[0052] Electronic atomizing devices typically include an atomizer and a battery. The atomizer usually includes a controller and a heating element. During use, the controller controls the battery to supply power to the heating element in the atomizer. The heating element heats the atomizing liquid or low-temperature non-combustible cigarettes or tobacco, thereby producing smoke for the user to enjoy.

[0053] like Figure 1 As shown, the electronic atomizing device 100 in this embodiment includes a controller 101, a battery 102, a heating component 103, and a discharging component 104. The battery 102, the heating component 103, and the discharging component 104 are electrically connected to the controller 101, and the heating component 103 and the discharging component 104 are connected in parallel with the battery 102.

[0054] Reference Figure 2 The discharge method of the electronic atomizing device in this application embodiment includes the following steps:

[0055] 210. The controller sends a discharge command to the discharge component;

[0056] In this embodiment, before discarding the electronic atomizing device 100 that is no longer in use, the controller 101 may first send a discharge command to the discharge component 104.

[0057] 220. The controller controls the discharge assembly to discharge the battery;

[0058] After receiving a discharge command, the controller 101 can control the discharge component 104 to discharge the battery 103, releasing all the remaining charge in the battery 103.

[0059] 230. The controller sends a stop operation command to the heating component;

[0060] Before discarding the electronic atomizing device 100 that is no longer in use, the controller 101 may send a termination command to the heating assembly 103.

[0061] 240. The controller stops the heating component from operating.

[0062] After receiving a termination command, the controller 101 can control the heating component 103 to stop working, and stop heating the atomizing liquid or low-temperature non-combustible cigarettes and tobacco, and stop generating smoke for the user to enjoy.

[0063] It should be noted that steps 230 and 240 can be executed before step 210 or after step 220. Step 230 can also be executed simultaneously with step 210. No specific restrictions are made here.

[0064] In this embodiment, the electronic atomizing device 100 can be an electronic cigarette, a medical electronic atomizing product, or a beauty electronic atomizing product; no specific limitation is made here.

[0065] In the discharge method of the electronic atomizing device 100 provided in this embodiment, when the electronic atomizing device 100 has reached its service life, or when the user wants to discard the electronic atomizing device 100, the controller 101 sends a discharge command to the discharge assembly 104, thereby controlling the discharge assembly 104 to discharge the battery 103. Furthermore, the controller 101 can send a stop-work command to the heating assembly 103 before, during, or after the battery 102 is discharging, thereby controlling the heating assembly 103 to stop working. In this way, discarding the electronic atomizing device 100 will not cause environmental pollution, making it very green and environmentally friendly, and will not pose any safety hazards, avoiding fires or battery explosions, and protecting the lives of surrounding people.

[0066] Please refer to Figure 3 , Figure 3 This is a schematic diagram of the electronic atomizing device 300 in another embodiment of this application. Figure 3 As can be seen, in this embodiment, the electronic atomizing device 300 includes a controller 301, a battery 302, a heating component 303, and a discharging component 304, and may also include an input device 305. The battery 302, the heating component 303, the discharging component 304, and the input device 305 are electrically connected to the controller 301, and the heating component 303 and the discharging component 304 are connected in parallel with the battery 302.

[0067] Furthermore, referring to Figure 4 The discharge method of the electronic atomizing device 300 in another embodiment of this application has the following steps:

[0068] 410. The controller receives the discharge command sent by the input device;

[0069] In this embodiment, the controller 301 can first receive a discharge command sent by the input device 305. When the user wants to discard the electronic atomizing device 300, they can send a discharge command to the controller 301 through the input device 305 on the electronic atomizing device 300. The input device 305 can be a physical button, a sound sensor, or a pressure sensor; the specific type is not limited here.

[0070] 420. The controller sends a discharge command to the discharge component;

[0071] 430. The controller controls the discharge assembly to discharge the battery;

[0072] In this embodiment, steps 420 and 430 are the same as those described above. Figure 2Steps 210 and 220 in the illustrated embodiment are similar and will not be described in detail here.

[0073] 440. The controller prevents external power sources from charging the battery;

[0074] In this embodiment, after completing step 420 or step 430, the controller 301 can prevent the external power source from charging the battery 302. This design is because the battery 302 is intended for disposal after discharge. If the electronic atomizing device 300 is found by a passerby or scavenger after being discharged and discarded, and they intend to recharge it for continued use, the battery 302 is highly likely to still have residual charge when it is discarded again, causing it to pollute the surrounding environment and posing a safety risk. Therefore, to avoid such a situation, step 440 is executed after steps 420 and 430.

[0075] 450. The controller sends a stop operation command to the heating component;

[0076] 460. The controller stops the heating component from operating.

[0077] In this embodiment, steps 450 and 460 are the same as those described above. Figure 2 Steps 230 and 240 are similar, and will not be described in detail here.

[0078] However, it should be noted that in this embodiment, steps 450 and 460 can be performed before or after any step after step 410 is completed, and no specific limitation is made here.

[0079] In this embodiment, the controller 301 first receives a discharge command sent by the input device 305, then sends a discharge command to the discharge assembly 304, and then controls the discharge assembly 304 to discharge the battery 302. After the controller 301 sends a discharge command to the discharge assembly 304, or after the controller 301 controls the discharge assembly 304 to discharge the battery 302, the controller 301 prohibits the external power supply from charging the battery 302. Then, the controller 301 sends a stop-work command to the heating assembly 303 and controls the heating assembly 303 to stop working. In this way, after the electronic atomizing device 300 has completed discharging and is discarded, it will not be recharged and reused by others, thereby preventing environmental pollution, personal injury, or fire damage during secondary disposal.

[0080] Please refer to the following: Figure 5In another embodiment of this application, the electronic atomizing device 500 includes a controller 501, a battery 502, a heating component 503, a discharging component 504, and an input device 505, and may also include a memory 506. The battery 502, the heating component 503, the discharging component 504, the input device 505, and the memory 506 are electrically connected to the controller 501.

[0081] See Figure 6 , Figure 6 This is a schematic flowchart of the discharge method of the electronic atomizing device 500 in another embodiment of this application. In this embodiment, the memory 506 may store a preset cumulative operating time threshold of the battery 502.

[0082] 610. The controller detects the actual cumulative working time of the battery;

[0083] In this embodiment, the controller 501 can first detect the actual cumulative working time of the battery 502. The actual cumulative working time refers to the actual cumulative working time of the electronic atomizing device 500 since it was manufactured and put into use.

[0084] 620. The controller determines whether the actual cumulative working time exceeds the preset cumulative working time threshold;

[0085] After the controller 501 detects the actual cumulative working time of the battery 502, it can determine whether the actual cumulative working time is greater than the preset cumulative working time threshold in the memory 506. If yes, then step 630 is executed; otherwise, the process returns to step 610.

[0086] It should be noted that in this embodiment, the controller 501 determines whether the actual cumulative working time is greater than the preset cumulative working time threshold to determine whether the electronic atomizing device 500 has reached its disposable lifespan.

[0087] 630. The controller determines that the actual cumulative working time is greater than the preset cumulative working time threshold;

[0088] 640. The controller sends a stop operation command to the heating component;

[0089] In this embodiment, after the controller 501 determines that the actual cumulative working time is greater than the preset cumulative working time threshold, the controller 501 can send a termination working command to the heating component 503.

[0090] 650. The controller stops the heating assembly from operating.

[0091] After sending a stop operation command to the heating component 503, the controller 501 can control the heating component 503 to stop working.

[0092] 660. The controller prohibits external power sources from charging the battery;

[0093] 670. The controller sends a discharge command to the discharge assembly;

[0094] 680. The controller controls the discharge assembly to discharge the battery.

[0095] In this embodiment, step 660 is the same as described above. Figure 4 Step 440 in the illustrated embodiment is similar and will not be described in detail here; steps 670 and 680 are the same as those described above. Figure 2 Steps 210 and 220 in the illustrated embodiment are similar to those described above. Figure 4 Steps 420 and 430 in the illustrated embodiment are similar and will not be described in detail here.

[0096] Furthermore, steps 640 and 650 in this embodiment can be executed after step 660 and before step 670, or after step 670 or step 680; the specific execution is not limited here.

[0097] In this embodiment, the controller 501 determines whether the electronic atomizing device 500 has reached its service life and can no longer be used normally by comparing the detected actual cumulative working time of the battery 502 with a preset cumulative working time threshold stored in the memory 506. After determining that the actual cumulative working time of the battery 502 exceeds the preset cumulative working time threshold, the controller controls the heating component 503 to stop working, prohibits external power from charging the battery 502, and controls the discharging component 504 to discharge the battery 502. Through the specific implementation of this embodiment, the practical performance of the technical solution of this application is improved, making it more operable in actual production and easier to realize the practical function of the discharging method in this embodiment.

[0098] Then combine Figure 5 , refer to Figure 7 , Figure 7 This is a schematic diagram of another discharge method for the electronic atomizing device 500 of this application. Figure 7 The discharge method shown is as described above. Figure 6 A variation of the discharge method shown is described below, with the following specific steps:

[0099] 710. The controller detects the actual cumulative charge of the battery;

[0100] In this embodiment, the controller 501 can first detect the actual accumulated charge of the battery 502. The actual accumulated charge refers to the actual accumulated charge of the electronic atomizing device 500 since it was manufactured and put into use.

[0101] 720. The controller determines whether the actual cumulative charging amount is greater than the preset cumulative charging amount threshold;

[0102] After the controller 501 detects the actual accumulated charge of the battery 502, it can determine whether the actual accumulated charge is greater than the preset accumulated charge threshold in the memory 506. If yes, step 730 is executed; otherwise, step 710 is returned to be executed.

[0103] It should be noted that in this embodiment, the controller 501 determines whether the actual accumulated charging power is greater than the preset accumulated working time threshold to determine whether the electronic atomizing device 500 has reached its disposable lifespan.

[0104] 730. The controller determines that the actual cumulative charging amount is greater than the preset cumulative charging amount threshold;

[0105] 740. The controller sends a discharge command to the discharge assembly;

[0106] 750. The controller controls the discharge assembly to discharge the battery;

[0107] In this embodiment, steps 740 and 750 are the same as those described above. Figure 2 Steps 210 and 220 in the illustrated embodiment are similar to those described above. Figure 4 Steps 420 and 430 in the illustrated embodiment are similar to those described above. Figure 6 Steps 670 and 680 in the illustrated embodiment are similar and will not be described in detail here.

[0108] 760. The controller sends a stop operation command to the heating component;

[0109] 770. The controller stops the heating assembly from operating;

[0110] In this embodiment, steps 760 and 770 are the same as those described above. Figure 2 Steps 230 and 240 in the illustrated embodiment are similar to those described above. Figure 4 Steps 450 and 460 in the illustrated embodiment are similar to those described above. Figure 6 Steps 640 and 650 in the illustrated embodiment are similar and will not be described in detail here.

[0111] 780. The controller prohibits external power sources from charging the battery.

[0112] In this embodiment, step 780 is the same as described above. Figure 4 Step 440 in the illustrated embodiment is similar to that described above. Figure 6 Step 660 in the illustrated embodiment is similar and will not be described in detail here.

[0113] In this embodiment, the controller 501 determines whether the electronic atomizing device 500 has reached its service life and can no longer be used normally by comparing the detected actual accumulated charge of the battery 502 with a preset accumulated charge threshold stored in the memory 506. After determining that the actual accumulated charge of the battery 502 is greater than the preset accumulated charge threshold, the controller controls the heating component 503 to stop working, prohibits external power from charging the battery 502, and controls the discharging component 504 to discharge the battery 502. Through the specific implementation of this embodiment, the practical performance of the technical solution of this application is improved, making it more operable in actual production and easier to realize the practical function of the discharging method in this embodiment. Figure 7 Examples of the discharge method shown Figure 6 The embodiments of the discharge method shown provide two different ways to determine whether the battery 502 has reached its service life, thus providing more diverse options for achieving the purpose of this invention in actual production applications.

[0114] The discharge method of the electronic atomizing device of this application has been described in detail above. The electronic atomizing device of this application will be described below.

[0115] Please refer to this again. Figure 1 , Figure 1 The image shown is an electronic atomizing device 100 provided in an embodiment of this application. For the specific structure of the electronic atomizing device 100, please refer to the foregoing description. Figure 1 Specific details will not be repeated here. Specifically, the controller 101 in the electronic atomizing device 100 is used to send a discharge command to the discharge assembly 104 to control the discharge assembly 104 to discharge the battery 102, and to send a stop operation command to the heating assembly 103 to control the heating assembly 103 to stop operating.

[0116] Figure 1 When the electronic atomizing device 100 reaches the end of its service life, or when the user wants to discard the electronic atomizing device 100, the controller 101 sends a discharge command to the discharge assembly 104, thereby controlling the discharge assembly 104 to discharge the battery 103. Furthermore, the controller 101 can send a stop-operation command to the heating assembly 103 before, during, or after the battery 102 is discharging, thereby controlling the heating assembly 103 to stop operating. In this way, discarding the electronic atomizing device 100 will not cause environmental pollution, making it very green and environmentally friendly, and will not pose any safety hazards, avoiding fires or battery explosions and protecting the lives of those around it.

[0117] Furthermore, the controller 101 is also used to prevent external power sources from charging the battery 102.

[0118] With this design, even if the electronic atomizing device 100 is discarded and then picked up by passersby or scavengers, it cannot be reused after being recharged, thus preventing environmental pollution when it is discarded again and avoiding safety hazards.

[0119] Please refer to Figure 3 , Figure 3 The image shows an electronic atomizing device 300 according to another embodiment of this application.

[0120] Furthermore, the electronic atomizing device 300 also includes an input device 305, which is electrically connected to the controller 301. The controller 301 is also used to receive discharge commands sent by the input device 305.

[0121] When a user wants to discard the electronic atomizing device 300, they can send a discharge command to the controller 301 through the input device 305. After receiving the discharge command, the controller 301 will continue to perform a series of subsequent operations.

[0122] Furthermore, when the heating component 303 is working, the controller 301 is used to disable the discharge component 304 from working.

[0123] Please refer to Figure 5 , Figure 5 The diagram shows another electronic atomizing device 500 of this embodiment. The electronic atomizing device 500 also includes a memory 506. For the specific structure of the electronic atomizing device 500, please refer to the foregoing description. Figure 5 Detailed descriptions are omitted here.

[0124] Furthermore, the controller 501 is also used to detect the actual cumulative working time of the battery 502. The actual cumulative working time is the cumulative working time of the electronic atomizing device 500 since it was manufactured and put into use. It determines whether the actual cumulative working time is greater than the preset cumulative working time threshold. When it is determined that the actual cumulative working time is greater than the preset cumulative working time threshold, a discharge command is sent to the discharge component 504.

[0125] Furthermore, the controller 501 is also used to repeatedly execute the above steps after determining that the actual cumulative working time is less than or equal to a preset cumulative working time threshold.

[0126] The specific implementation methods in this embodiment improve the practicality of the technical solution of this application, making it more operable in actual production processes and easier to realize the practical function of the discharge method in this embodiment.

[0127] Similarly, refer to Figure 5In another embodiment of the electronic atomizing device 500, the memory 506 stores a preset cumulative charging capacity threshold of the battery 502. The controller 501 is also used to detect the preset cumulative charging capacity threshold of the battery 502. The controller 501 is also used to detect the actual cumulative charging capacity of the battery, which is the actual cumulative charging capacity of the electronic atomizing device 500 since it was manufactured and used until now. The controller determines whether the actual cumulative charging capacity is greater than the preset cumulative charging capacity threshold. When it is determined that the actual cumulative charging capacity is greater than the preset cumulative charging capacity threshold, a discharge command is sent to the discharge component 504.

[0128] Furthermore, the controller 501 is also used to repeatedly execute the above steps after determining that the actual cumulative charging power is less than or equal to a preset cumulative charging power threshold.

[0129] The specific implementation methods in this embodiment improve the practicality of the technical solution of this application, making it more operable in actual production processes and easier to realize the practical function of the discharge method in this embodiment.

[0130] These two embodiments, which include a memory 506, provide two different ways to determine whether the battery 502 has reached the end of its service life, thus providing more diverse options for achieving the purpose of this invention in actual production applications.

[0131] To facilitate understanding, a specific example is given below for reference. Figure 8 , Figure 8 The diagram shown is a specific structural schematic of an electronic atomizing device. Figure 8 The electronic atomizing device includes a controller MCU, a battery P, a heating component, and a discharging component. The battery P, the heating component, and the discharging component are electrically connected to the controller MCU, and the heating component and the discharging component are connected in parallel with the battery P.

[0132] Furthermore, the discharge assembly may include a discharge switch K' and a discharge load R. L The discharge switch K' is connected to the controller MCU and the discharge load R respectively. L 'And the battery P electrical connection.'

[0133] In addition, the heating assembly may include a heating switch K and a heating load R. L The heating switch K is connected to the controller MCU and the heating load R respectively. L And the battery P electrical connection.

[0134] In this embodiment, the discharge switch K' is in the off state during the initial setup of the electronic atomizing device, while the heating switch K can be turned on or off according to user needs. When the user wants to discard the electronic atomizing device, or when the controller MCU in the electronic atomizing device receives a discharge command sent from the outside, the controller MCU can send a discharge command to the discharge component, thus turning on the discharge switch K', and the battery P and the discharge load R... L A circuit is formed, and battery P discharges through load R. L Release all remaining power. Simultaneously, the controller MCU can send a stop-operation command to the heating component, thus opening the heating switch K and releasing the heating load R. L Work terminated.

[0135] It should be noted that the controller MCU can send a discharge command to the discharge component and then send a stop operation command to the heating component, or it can send a stop operation command to the heating component after controlling the discharge component to discharge the battery. Alternatively, if the electronic atomization device has a memory, the controller MCU can determine that the actual cumulative working time of battery P is greater than a preset cumulative working time threshold, or the controller MCU can determine that the actual cumulative charging capacity of battery P is greater than a preset cumulative charging capacity threshold. In this case, the controller MCU can send a stop operation command to the heating component first and then send a discharge command to the discharge component. The specifics are not limited here.

[0136] It should be noted that when a new battery P is inserted into the electronic atomizing device, the controller MCU can reset the discharge switch K, causing it to open again. The controller MCU will only resume the aforementioned process after receiving a discharge command again. Figures 1 to 2 , Figure 4 , Figure 6 and Figure 7 The steps of the method shown will release all the remaining charge of battery P again.

[0137] Furthermore, the discharge load R L It can be a resistor used for discharge, a circuit structure used for discharge, or a display device; the specifics are not limited here. When the display device acts as the discharge load R... L At this time, the remaining power in battery P can be released by keeping the display screen on continuously, or the remaining power in battery P can be released by keeping the LED light on continuously. The specific structure of the display device is not limited here.

[0138] Furthermore, the electronic atomizing device can be an electronic cigarette, a medical electronic atomizing product, or a cosmetic electronic atomizing product.

[0139] This application also provides a readable storage medium for an electronic atomizing device, the readable storage medium being used to store software instructions for the aforementioned electronic atomizing device, including programs designed for executing the electronic atomizing device.

[0140] This application also provides a program product for an electronic atomizing device, which includes computer software instructions that can be loaded by a controller to implement the method flow shown in the aforementioned embodiments.

[0141] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working processes of the systems, devices, and units described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here.

[0142] In the several embodiments provided in this application, it should be understood that the disclosed apparatus and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative, and in actual implementation, there may be other division methods.

[0143] Furthermore, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause an electronic atomizing device (which may be an electronic cigarette, a medical electronic atomizing device, or a beauty electronic atomizing device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as read-only memory (ROM), random access memory (RAM), and magnetic disks.

[0144] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application.

Claims

1. A discharge method of an electronic atomization device, characterized by, The electronic atomization device comprises a controller, a battery, a heating assembly and a discharging assembly, the battery, the heating assembly and the discharging assembly are electrically connected with the controller respectively, and the heating assembly and the discharging assembly are connected with the battery in parallel, wherein the discharging method comprises: The controller sends a discharging instruction to the discharging assembly; The controller controls the discharging assembly to discharge the battery; The controller sends a termination working instruction to the heating assembly; The controller controls the heating assembly to terminate working.

2. The electrical discharge method of claim 1, wherein, After the controller controls the discharging assembly to discharge the battery, the discharging method further comprises: The controller prohibits an external power supply to charge the battery.

3. The electrical discharge method of claim 1, wherein, The electronic atomization device further comprises an input device, the input device is electrically connected with the controller, wherein Before the controller sends a discharging instruction to the discharging assembly, the discharging method further comprises: The controller receives the discharging instruction sent by the input device.

4. The discharge method according to any one of claims 1 to 3, characterized by, Before the controller sends the discharging instruction to the discharging assembly, the discharging method further comprises: When the heating assembly works, the control assembly prohibits the discharging assembly from working.

5. The electrical discharge method according to any one of claims 1 to 3, characterized by, The electronic atomization device further comprises a memory, the memory is electrically connected with the controller, and the memory stores a preset working cumulative time threshold of the battery, wherein before the controller sends a discharging instruction to the discharging assembly, the discharging method further comprises: The controller detects an actual working cumulative time of the battery, the actual working cumulative time is an actual working cumulative time of the electronic atomization device since it is used after leaving the factory; The controller judges whether the actual working cumulative time is greater than the preset working cumulative time threshold; If yes, the controller determines that the actual working time is greater than the preset working cumulative time threshold.

6. The electrical discharge method of claim 5, wherein, After the controller judges whether the actual working cumulative time is greater than the preset working cumulative time threshold, the discharging method further comprises: If no, the controller repeatedly and cyclically executes the above steps.

7. The electrical discharge method according to any one of claims 1 to 3, characterized by, The electronic atomization device further comprises a memory, the memory is electrically connected with the controller, and the memory stores a preset cumulative charging power threshold of the battery, wherein before the controller sends a discharging instruction to the discharging assembly, the discharging method further comprises: The controller detects an actual cumulative charging power of the battery, the actual cumulative charging power is an actual cumulative charging power of the electronic atomization device since it is used after leaving the factory; The controller judges whether the actual cumulative charging power is greater than the preset cumulative charging power threshold; If yes, the controller determines that the actual cumulative charging power is greater than the preset cumulative charging power threshold.

8. The electrical discharge method of claim 7, wherein, After the controller judges whether the actual cumulative charging power is greater than the preset cumulative charging power threshold, the discharging method further comprises: If no, the controller repeatedly and cyclically executes the above steps.

9. An electronic atomizing device, characterized by, The electronic atomization device comprises a controller, a battery, a heating assembly and a discharging assembly, the battery, the heating assembly and the discharging assembly are electrically connected with the controller respectively, the heating assembly and the discharging assembly are connected with the battery in parallel, wherein: The controller is configured to send a discharging instruction to the discharging assembly, control the discharging assembly to discharge the battery, send a termination working instruction to the heating assembly, and control the heating assembly to terminate working.

10. The electronic atomizing device of claim 9, wherein, The controller is further configured to prohibit an external power supply to charge the battery.

11. The electronic atomizing device of claim 9, wherein, The electronic atomization device further comprises an input device, the input device is electrically connected with the controller, wherein the controller is further configured to receive the discharging instruction sent by the input device.

12. The electronic atomizing device according to any one of claims 9 to 11, characterized in that, When the heating assembly is working, the controller is configured to prohibit the discharging assembly from working.

13. The electronic atomizing device according to any one of claims 9-11, wherein, The electronic atomization device further comprises a memory, the memory is electrically connected with the controller, and the memory stores a preset working cumulative time threshold of the battery, wherein the controller is further configured to detect an actual working cumulative time of the battery, the actual working cumulative time is an actual working cumulative time of the electronic atomization device since it is put into use, judge whether the actual working cumulative time is greater than the preset working cumulative time threshold, and when it is determined that the actual working cumulative time is greater than the preset working cumulative time threshold, send the discharging instruction to the discharging assembly.

14. The electronic atomizing device of claim 13, wherein, The controller is further configured to repeatedly execute the above steps after it is determined that the actual working cumulative time is less than or equal to the preset working cumulative time threshold.

15. The electronic atomizing device of any one of claims 9-11, wherein, The electronic atomization device further comprises a memory, the memory is electrically connected with the controller, and the memory stores a preset cumulative charging power threshold of the battery, wherein the controller is further configured to detect an actual cumulative charging power of the battery, the actual cumulative charging power is an actual cumulative charging power of the electronic atomization device since it is put into use, judge whether the actual cumulative charging power is greater than the preset cumulative charging power threshold, and when it is determined that the actual cumulative charging power is greater than the preset cumulative charging power threshold, send the discharging instruction to the discharging assembly.

16. The electronic atomizing device of claim 15, wherein, The controller is further configured to repeatedly execute the above steps after it is determined that the actual cumulative charging power is less than or equal to the preset cumulative charging power threshold.

17. The electronic atomizing device of any one of claims 9-11, wherein, The discharging assembly comprises a discharging switch and a discharging load, the discharging switch is electrically connected with the controller, the discharging load and the battery respectively; and / or The heating assembly comprises a heating switch and a heating load, the heating switch is electrically connected with the controller, the heating load and the battery respectively.

18. The electronic atomizing device of claim 17, wherein, The discharging load is a resistor, a discharging circuit structure or a display device.

19. The electronic atomizing device of any one of claims 9-11, wherein, The electronic atomization device is an electronic cigarette, a medical electronic atomization product or a beauty electronic atomization product.

20. A readable storage medium of an electronic atomizing device, characterized in that, The program comprises instructions, when the instructions are run on an electronic atomization device, the electronic atomization device executes the method according to any one of claims 1 to 8.

21. A program product of an electronic atomizing device comprising instructions, characterized in that, When it is run on an electronic atomizing device, the electronic atomizing device performs the method as claimed in any one of claims 1 to 8.