Electronic atomization device and ad hoc network method and system thereof
By introducing an antenna module, touch sensor, and signal processor into the electronic atomizing device, communication connectivity and network sharing with external devices are achieved, solving the problem of the limited functionality of electronic atomizing devices and improving the user experience.
Patent Information
- Application Number
- CN202511129824.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-12
- Publication Date
- 2025-11-18
AI Technical Summary
Existing electronic atomizing devices have limited functionality and cannot meet the diverse needs of users.
By introducing an antenna module, touch sensor, and signal processor into the electronic atomization device, communication connection and network sharing with external devices are achieved, supporting self-organizing network functions for WiFi and Bluetooth signals.
It adds interactive functionality between the electronic atomizing device and external devices, enabling data sharing and remote control, thus enhancing the user experience.
Smart Images

Figure CN120959476A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of electronic atomization technology, specifically to an electronic atomization device and its self-organizing network method and system. Background Technology
[0002] Existing electronic atomizing devices are popular in the market due to their portability and large vapor production. The aerosol-forming matrix inside the device generates vapor upon heating, which the user can then inhale. However, current electronic atomizing devices are limited to inhalation, offering relatively simple functionality and failing to meet the diverse needs of users. Summary of the Invention
[0003] The present invention provides an electronic atomizing device and its self-organizing network method and system, which effectively solves the problem of the limited functionality of existing electronic atomizing devices.
[0004] According to the first aspect, one embodiment provides an electronic atomizing device, including an antenna module, a touch sensor, and a signal processor;
[0005] The touch sensor is used to send a connection signal to the signal processor after detecting a touch action from an external touch device;
[0006] The signal processor is used to control the antenna module to establish a communication connection with the touch device after receiving the connection signal;
[0007] The antenna module is also used to receive antenna signals within a preset range and send the antenna signals to the signal processor;
[0008] The signal processor is also used to enable network sharing between the electronic atomizing device and the device that emits the antenna signal, based on the antenna signal.
[0009] In one feasible implementation, the antenna module includes an antenna, an inductor, a first capacitor, and a second capacitor; the antenna is provided with a first port and a second port.
[0010] The positive terminal of the first capacitor is connected to the first pin of the signal processor, and the negative terminal of the first capacitor is grounded.
[0011] The first end of the inductor is connected to the positive terminal of the first capacitor, and the second end of the inductor is connected to the first port of the antenna;
[0012] The positive terminal of the second capacitor is connected to the second terminal of the inductor, and the negative terminal of the second capacitor is grounded.
[0013] The second port of the antenna is grounded.
[0014] In one feasible implementation, the antenna signal includes a WiFi signal and a Bluetooth signal.
[0015] In one feasible implementation, the adjustment formulas for the first capacitor, the second capacitor, and the inductor are as follows:
[0016]
[0017] In the formula, C1 is the first capacitor, C2 is the second capacitor, L is the inductance, Q is the quality factor, f is the frequency, and Z is the capacitance. source Z is the source impedance. load This is the load impedance.
[0018] In one feasible implementation, enabling network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal includes:
[0019] The frequency of the electronic atomizing device is adjusted according to the frequency of the antenna signal so that the electronic atomizing device can achieve network sharing with the device that emits the antenna signal.
[0020] According to a second aspect, one embodiment provides a self-organizing network method for an electronic atomizing device, employing the electronic atomizing device as described above, the method comprising:
[0021] Acquire antenna signals within a preset range;
[0022] The electronic atomizing device and the device emitting the antenna signal are connected to a network based on the antenna signal.
[0023] In one feasible implementation, enabling network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal includes:
[0024] The frequency of the electronic atomizing device is adjusted according to the frequency of the antenna signal so that the electronic atomizing device can achieve network sharing with the device that emits the antenna signal.
[0025] In one feasible implementation, adjusting the frequency of the atomizing device according to the frequency of the antenna signal includes:
[0026] The first capacitor, the second capacitor, and the inductor of the antenna module are determined based on the frequency of the antenna signal, the quality factor of the inductor in the antenna module, the load impedance, and the source impedance.
[0027] The frequency of the atomizing device is determined based on the first capacitor, the second capacitor, and the inductor.
[0028] In one feasible implementation, the method further includes: synchronizing or sharing data with devices that are networked with the electronic atomizing device.
[0029] According to a third aspect, one embodiment provides a self-organizing network system for an electronic atomizing device, comprising:
[0030] The acquisition module is used to acquire antenna signals within a preset range;
[0031] A sharing module is used to enable network sharing between the electronic atomizing device and the device that emits the antenna signal, based on the antenna signal.
[0032] According to a fourth aspect, one embodiment provides a computer-readable storage medium storing a computer program that can be executed by a processor to implement the method described above.
[0033] According to the above embodiment of an electronic atomizing device and its self-organizing network method / system, after a touch sensor touches an external touch device, it receives a connection signal from the external touch device. The touch sensor sends this connection signal to a signal processor, which controls an antenna module to establish a communication connection with the external touch device, thereby enabling data sharing between the electronic atomizing device and the external touch device. Furthermore, the antenna module can also receive antenna signals within a preset range and then send the received antenna signals to the signal processor. After the signal processor processes the antenna signals accordingly, network sharing between the electronic atomizing device and the device that emitted the antenna signal is achieved, realizing the networking function. By adopting the above solution of this application, interactive functions between multiple products are added, effectively solving the problem of the limited functionality of existing electronic atomizing devices. Attached Figure Description
[0034] Figure 1 This is a structural block diagram of the electronic atomization device provided in this embodiment;
[0035] Figure 2 This is a schematic diagram of the circuit structure of the antenna module provided in this embodiment;
[0036] Figure 3 A flowchart of the self-organizing network method for the electronic atomizing device provided in this embodiment;
[0037] Figure 4 This is a structural block diagram of the self-organizing network system of the electronic atomizing device provided in this embodiment.
[0038] Reference numerals: 10, antenna module; 20, signal processor; 30, touch sensor; 100, acquisition module; 200, sharing module. Detailed Implementation
[0039] The present invention will now be described in further detail with reference to specific embodiments and accompanying drawings. Similar elements in different embodiments are referred to by associated similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of this application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to this application are not shown or described in the specification. This is to avoid obscuring the core parts of this application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0040] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0041] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0042] like Figure 1 As shown, this embodiment provides an electronic atomizing device, including an antenna module 10, a touch sensor 30, and a signal processor 20. The touch sensor 30 sends a connection signal to the signal processor 20 after detecting a touch action from an external touch device. Upon receiving the connection signal, the signal processor 20 controls the antenna module 10 to establish a communication connection with the touch device. The antenna module 10 also receives antenna signals within a preset range and sends these signals to the signal processor 20. The signal processor 20 further enables network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal.
[0043] The electronic atomizing device in this embodiment can perform local communication in a point-to-point manner. Specifically, after the touch sensor 30 touches an external touch device, it receives a connection signal from the external touch device. The touch sensor 30 sends this connection signal to the signal processor 20, which then controls the antenna module 10 to establish a communication connection with the external touch device, facilitating data sharing between the electronic atomizing device and the external touch device. Furthermore, the antenna module 10 can also receive antenna signals within a preset range and then send the received antenna signals to the signal processor 20. After the signal processor 20 processes the antenna signals accordingly, network sharing between the electronic atomizing device and the device emitting the antenna signal can be achieved, realizing a networking function. In practical applications, the touch sensor 30 can specifically be an NFC sensor, enabling communication between the two devices by touching them together.
[0044] Furthermore, the antenna signal includes both WiFi and Bluetooth signals. In practical applications, when the antenna signal is a WiFi signal, the signal processor 20 uses Wi-FiDirect or Zigbee as its self-organizing network protocol; when the antenna signal is a Bluetooth signal, the signal processor 20 uses Bluetooth Low Energy (BLE) Mesh as its self-organizing network protocol. In this embodiment, the electronic atomizing device can establish communication connections with devices such as computers, mobile phones, and tablets via WiFi or Bluetooth signals, thereby realizing the Internet of Things (IoT) for the electronic atomizing device.
[0045] As a further improvement to this embodiment, enabling network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal specifically includes: adjusting the frequency of the electronic atomizing device according to the frequency of the antenna signal so that the electronic atomizing device can achieve network sharing with the device emitting the antenna signal.
[0046] Specifically, if the received antenna signal is not on the same frequency as the antenna signal of the electronic atomizing device of this application, the electronic atomizing device of this application cannot communicate with the external device (the device emitting the antenna signal). Only by adjusting the electronic atomizing device of this application and the external device to the same frequency can network sharing between multiple devices be achieved. Therefore, specifically, after receiving an antenna signal within a preset range, this embodiment analyzes the frequency of the antenna signal to determine its frequency. Then, based on this frequency, it adjusts the signal frequency of the electronic atomizing device to ensure that its signal frequency is consistent with the frequency of the external antenna signal, thereby achieving network sharing between the electronic atomizing device and the device emitting the antenna signal. Furthermore, by adjusting the signal frequency of the device, this embodiment enables network sharing between the electronic atomizing device and the device emitting the antenna signal, thus providing a point-to-point communication connection and preventing interference from other frequency signal devices that could disrupt the network formed by this solution.
[0047] Specifically, such as Figure 2 As shown, the antenna module 10 of this embodiment includes an antenna, an inductor L, a first capacitor C1, and a second capacitor C2. The antenna has a first port and a second port. The positive terminal of the first capacitor C1 is connected to the first pin of the signal processor 20, and the negative terminal of the first capacitor C1 is grounded. The first end of the inductor L is connected to the positive terminal of the first capacitor C1, and the second end of the inductor L is connected to the first port of the antenna. The positive terminal of the second capacitor C1 is connected to the second end of the inductor L, and the negative terminal of the second capacitor C1 is grounded. The second port of the antenna is grounded. In practical applications, the signal frequency of this device is adjusted by adjusting the inductor L, the first capacitor C1, and the second capacitor C2 in the antenna module 10.
[0048] Furthermore, taking the reception of a Bluetooth signal as an example, when the antenna signal is a Bluetooth signal, the adjustment formulas for the first capacitor C1, the second capacitor C2, and the inductor L are as follows:
[0049]
[0050] In the formula, C1 is the first capacitor, C2 is the second capacitor, L is the inductance, Q is the quality factor, f is the frequency, and Z is the capacitance. source Z is the source impedance. load This is the load impedance.
[0051] refer to Figure 2 The antenna module 10 is adjusted according to the frequency of the received external antenna signal. Specifically, the signal frequency of the device is adjusted by adjusting the first capacitor C1, the second capacitor C2, and the inductor L. For example, if the received antenna signal is a 2.4G Bluetooth signal, then with a quality factor Q = 5, according to the above calculation formula, the first capacitor... Second capacitor inductance
[0052] Based on the above calculations, the actual standard values selected are: C1 = C2 = 6.8 pF, L = 0.68 nH.
[0053] refer to Figure 3 This embodiment provides a self-organizing network method for an electronic atomizing device, using the electronic atomizing device described above. The method specifically includes the following steps:
[0054] Step 100: Obtain antenna signals within a preset range;
[0055] Step 200: Enable network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal.
[0056] The self-organizing network method in this embodiment acquires antenna signals within a preset range through the acquisition module 100. After acquiring the antenna signals, the sharing module 200 enables network sharing between the electronic atomizing device and the device emitting the antenna signals. In practical applications, when the acquired antenna signals and the electronic atomizing device of this application use the same communication protocol, they can connect to the same local area network via WiFi or Bluetooth, using the MQTT protocol as the communication protocol to achieve data interoperability between devices. For example, between a mobile app and the electronic atomizing device, the user can send commands through the mobile app or voice assistant. These commands are forwarded to the electronic atomizing device through a cloud server, enabling remote control or automation. For example, multiple electronic atomizers can share vaping history or behavior, or share targets among users (such as family members or social groups).
[0057] In addition, a program can be pre-written into the system so that if a device in the shared network exceeds the preset range or enters a restricted area, the device will send a prompt message to the shared device to realize the function of area awareness.
[0058] Furthermore, in devices on a shared network, if a device is disassembled or damaged and triggers a preset signal, that device will send an alarm message to other devices through the shared network to alert other users that a device has been damaged.
[0059] Furthermore, the electronic atomizing device and the device emitting the antenna signal can achieve network sharing based on the antenna signal. Specifically, this includes adjusting the frequency of the electronic atomizing device according to the frequency of the antenna signal so that the electronic atomizing device can achieve network sharing with the device emitting the antenna signal.
[0060] Specifically, if the received antenna signal is not on the same frequency as the antenna signal of the electronic atomizing device of this application, the electronic atomizing device of this application cannot communicate with the external device (the device emitting the antenna signal). Only by adjusting the electronic atomizing device of this application and the external device to the same frequency can network sharing between multiple devices be achieved. Therefore, specifically, after receiving an antenna signal within a preset range, this embodiment analyzes the frequency of the antenna signal to determine its frequency. Then, based on this frequency, it adjusts the signal frequency of the electronic atomizing device to ensure that its signal frequency is consistent with the frequency of the external antenna signal, thereby achieving network sharing between the electronic atomizing device and the device emitting the antenna signal. Furthermore, by adjusting the signal frequency of the device, this embodiment enables network sharing between the electronic atomizing device and the device emitting the antenna signal, thus providing a point-to-point communication connection and preventing interference from other frequency signal devices that could disrupt the network formed by this solution.
[0061] Furthermore, the frequency of the atomizing device is adjusted according to the frequency of the antenna signal, including:
[0062] The first capacitor, the second capacitor, and the inductor of the antenna module 10 are determined based on the frequency of the antenna signal, the quality factor of the inductor in the antenna module 10, the load impedance, and the source impedance.
[0063] The frequency of the atomizing device is determined based on the first capacitor, the second capacitor, and the inductor.
[0064] Specifically, Figure 2 As shown, the antenna module 10 of this embodiment includes an antenna, an inductor L, a first capacitor C1, and a second capacitor C2. The antenna has a first port and a second port. The positive terminal of the first capacitor C1 is connected to the first pin of the signal processor 20, and the negative terminal of the first capacitor C1 is grounded. The first end of the inductor L is connected to the positive terminal of the first capacitor C1, and the second end of the inductor L is connected to the first port of the antenna. The positive terminal of the second capacitor C1 is connected to the second end of the inductor L, and the negative terminal of the second capacitor C1 is grounded. The second port of the antenna is grounded. In practical applications, the signal frequency of this device is adjusted by adjusting the inductor L, the first capacitor C1, and the second capacitor C2 in the antenna module 10.
[0065] Furthermore, taking the reception of a Bluetooth signal as an example, when the antenna signal is a Bluetooth signal, the adjustment formulas for the first capacitor C1, the second capacitor C2, and the inductor L are as follows:
[0066]
[0067] In the formula, C1 is the first capacitor, C2 is the second capacitor, L is the inductance, Q is the quality factor, f is the frequency, and Z is the capacitance. sourceZ is the source impedance. load This is the load impedance.
[0068] refer to Figure 2 The antenna module 10 is adjusted according to the frequency of the received external antenna signal. Specifically, the signal frequency of the device is adjusted by adjusting the first capacitor C1, the second capacitor C2, and the inductor L. For example, if the received antenna signal is a 2.4G Bluetooth signal, then with a quality factor Q = 5, according to the above calculation formula, the first capacitor... Second capacitor inductance
[0069] Based on the above calculations, the actual standard values selected are: C1 = C2 = 6.8 pF, L = 0.68 nH.
[0070] Furthermore, the self-organizing network method in this embodiment also includes: synchronizing or sharing data with devices sharing the network with the electronic atomizing device. In practical applications, the system records data from devices sharing the network with this device in a local database, and when accessing the network, it shares the stored data among the devices.
[0071] refer to Figure 4 This embodiment provides a self-organizing network system for an electronic atomizing device, including an acquisition module 100 and a sharing module 200. The acquisition module 100 is used to acquire antenna signals within a preset range; the sharing module 200 is used to enable network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal.
[0072] This embodiment of an electronic atomizing device self-organizing network system includes an acquisition module 100 and a sharing module 200. The acquisition module 100 acquires antenna signals within a preset range, and then the sharing module 200 enables network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal. Specifically, the sharing module 200 adjusts the frequency of the electronic atomizing device according to the frequency of the antenna signal to enable network sharing between the electronic atomizing device and the device emitting the antenna signal. By adopting this self-organizing network system, network sharing between the electronic atomizing device and different devices can be achieved, realizing the networking function. Since the functions and roles of the acquisition module 100 and the sharing module 200 have been described in detail in the above self-organizing network method embodiment, they will not be repeated here.
[0073] This embodiment provides a computer-readable storage medium storing a computer program that can be executed by a processor to implement the self-organizing network method described above. Since the above embodiments have already described in detail a self-organizing network method for an electronic atomizing device, this embodiment will not repeat that description further.
[0074] Those skilled in the art will understand that all or part of the functions of the various methods in the above embodiments can be implemented by hardware or by computer programs. When all or part of the functions in the above embodiments are implemented by computer programs, the program can be stored in a computer-readable storage medium, which may include: read-only memory, random access memory, disk, optical disk, hard disk, etc., and the program is executed by a computer to achieve the above functions. For example, the program can be stored in the memory of a device, and when the program in the memory is executed by the processor, all or part of the above functions can be achieved. In addition, when all or part of the functions in the above embodiments are implemented by computer programs, the program can also be stored in a server, another computer, disk, optical disk, flash drive, or external hard drive, etc., and can be downloaded or copied to the memory of a local device, or the system of the local device can be updated. When the program in the memory is executed by the processor, all or part of the functions in the above embodiments can be achieved.
[0075] The above examples illustrate the present invention only to aid in understanding it and are not intended to limit the scope of the invention. Those skilled in the art can make various simple deductions, modifications, or substitutions based on the principles of this invention.
Claims
1. An electronic atomizing device, characterized in that, Includes antenna module, touch sensor and signal processor; The touch sensor is used to send a connection signal to the signal processor after detecting a touch action from an external touch device; The signal processor is used to control the antenna module to establish a communication connection with the touch device after receiving the connection signal; The antenna module is also used to receive antenna signals within a preset range and send the antenna signals to the signal processor; The signal processor is also used to enable network sharing between the electronic atomizing device and the device that emits the antenna signal, based on the antenna signal.
2. The electronic atomizing device as described in claim 1, characterized in that, The antenna module includes an antenna, an inductor, a first capacitor, and a second capacitor; the antenna is provided with a first port and a second port. The positive terminal of the first capacitor is connected to the first pin of the signal processor, and the negative terminal of the first capacitor is grounded. The first end of the inductor is connected to the positive terminal of the first capacitor, and the second end of the inductor is connected to the first port of the antenna; The positive terminal of the second capacitor is connected to the second terminal of the inductor, and the negative terminal of the second capacitor is grounded. The second port of the antenna is grounded.
3. The electronic atomizing device as described in claim 1, characterized in that, The antenna signals include WiFi signals and Bluetooth signals.
4. The electronic atomizing device as described in claim 2, characterized in that, The adjustment formulas for the first capacitor, the second capacitor, and the inductor are as follows: In the formula, C1 is the first capacitor, C2 is the second capacitor, L is the inductance, Q is the quality factor, f is the frequency, and Z is the capacitance. source Z is the source impedance. load This is the load impedance.
5. The electronic atomizing device as described in claim 1, characterized in that, The step of enabling network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal includes: The frequency of the electronic atomizing device is adjusted according to the frequency of the antenna signal so that the electronic atomizing device can achieve network sharing with the device that emits the antenna signal.
6. A self-organizing network method for an electronic atomizing device, characterized in that, The method using the electronic atomizing device according to any one of claims 1-5 includes: Acquire antenna signals within a preset range; The electronic atomizing device and the device emitting the antenna signal are connected to a network based on the antenna signal.
7. The self-organizing network method as described in claim 6, characterized in that, The step of enabling network sharing between the electronic atomizing device and the device emitting the antenna signal based on the antenna signal includes: The frequency of the electronic atomizing device is adjusted according to the frequency of the antenna signal so that the electronic atomizing device can achieve network sharing with the device that emits the antenna signal.
8. The self-organizing network method as described in claim 7, characterized in that, The step of adjusting the frequency of the atomizing device according to the frequency of the antenna signal includes: The first capacitor, the second capacitor, and the inductor of the antenna module are determined based on the frequency of the antenna signal, the quality factor of the inductor in the antenna module, the load impedance, and the source impedance. The frequency of the atomizing device is determined based on the first capacitor, the second capacitor, and the inductor.
9. The self-organizing network method as described in claim 6, characterized in that, Also includes: Data synchronization or data sharing is performed with devices that share the network with the electronic atomizing device.
10. A self-organizing network system for an electronic atomizing device, characterized in that, include: The acquisition module is used to acquire antenna signals within a preset range; A sharing module is used to enable network sharing between the electronic atomizing device and the device that emits the antenna signal, based on the antenna signal.
11. A computer-readable storage medium, characterized in that, The medium stores a computer program that can be executed by a processor to implement the method as described in any one of claims 6-9.