Atomization module, atomization device and atomization method
By combining the atomization module of inductive heating parts and ultrasonic atomization parts, the problem that existing atomization devices can only heat one raw material is solved, and different taste experiences and heating efficiency are achieved, enhancing the practicality and reliability of the atomization module.
Patent Information
- Application Number
- CN202310304070.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-23
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2043-03-23
AI Technical Summary
The existing atomization device can only heat one atomization raw material, resulting in poor user experience, and the high viscosity of the liquid matrix leads to low heating efficiency.
Atomization module combining an inductive heating element and an ultrasonic atomizer is used to heat different substrates separately or jointly. The inductive heating element can preheat the second substrate to improve fluidity, and the ultrasonic atomizer generates an aerosol.
It is possible to experience different tastes without replacing the module, improve heating efficiency and matrix supply rate, enhance the uniformity and reliability of the module, and extend the service life.
Smart Images

Figure CN116268581B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of atomizers, and in particular to an atomization module, an atomization device and an atomization method. Background Art
[0002] The atomizing raw materials of the atomizing device include a liquid matrix and an HNB (Heat Not Burning) matrix, and the two raw materials have different tastes. The atomizing module of the existing atomizing device can only heat one of the atomizing raw materials to generate an aerosol. To experience the different tastes brought by the two atomizing raw materials, the atomizing module needs to be replaced, which makes it inconvenient to use and the user experience is poor. In addition, due to the high viscosity of the liquid matrix, the supply rate of the matrix is insufficient, and the heating efficiency of the atomizing module is not high. Therefore, providing an atomizing module that can experience the different tastes brought by the two atomizing matrices and has high heating efficiency has become a technical problem that needs to be solved urgently. Summary of the Invention
[0003] The present application provides an atomization module, which can solve the problem of needing to replace the atomization module to experience the different tastes brought by two atomization raw materials and the low heating efficiency of the atomization module.
[0004] In order to solve the above technical problems, the present application provides an atomization module, including an inductive heating element, an ultrasonic atomization element and a bracket. The inductive heating element is installed on the bracket. The inductive heating element and the bracket are surrounded by a receiving cavity, and the ultrasonic atomization element is arranged in the receiving cavity; the inductive heating element and the ultrasonic atomization element can work independently to heat the first matrix and the second matrix respectively to generate aerosol; the inductive heating element can work in combination with the ultrasonic atomization element, the inductive heating element preheats the second matrix, and the ultrasonic atomization element heats the second matrix preheated by the inductive heating element to generate aerosol.
[0005] The present application provides an atomization device, comprising a battery module, a control module, the atomization module as described above, and a storage module that are interconnected; the battery module provides power for the atomization device, and the control module is used for power management, atomization control, and human-computer interaction; the storage module is used to store a matrix and transfer the matrix to the atomization module; the storage module is provided with a first storage bin and a second storage bin for storing a first matrix and a second matrix, the second storage bin being arranged around the periphery of the first storage bin, and the first storage bin can transfer heat to the second storage bin.
[0006] The present application provides an atomization method, which is used to operate the atomization device as described above, and the atomization method includes:
[0007] Obtain interaction information, which is used to specify the atomization mode;
[0008] Controlling the atomization module according to the specified atomization pattern to heat at least a portion of the substrate according to the preset atomization pattern to generate an aerosol;
[0009] Among them, the atomization mode includes an independent working mode and a combined working mode. In the independent working mode, the inductive heating element or the ultrasonic atomization element works independently; in the combined working mode, the inductive heating element and the ultrasonic atomization element work simultaneously.
[0010] The atomization module provided in the present application is provided with an inductive heating element and an ultrasonic atomization element, which can heat the first matrix and the second matrix respectively. The different tastes brought by the two atomization matrices can be experienced without replacing the atomization module, thereby improving the user experience; in addition, the inductive heating element can preheat the second matrix to improve the fluidity of the second matrix and speed up the supply rate of the second matrix. The ultrasonic atomization element heats the second matrix preheated by the inductive heating element to generate an aerosol. The combination of the inductive heating element and the ultrasonic atomization element can improve the heating efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0011] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0012] Figure 1 This is a schematic diagram of the exploded structure of an embodiment of the atomization module provided by the present application;
[0013] Figure 2 1 is a schematic cross-sectional structural diagram of an embodiment of an atomization module provided by the present application along a viewing angle;
[0014] Figure 3 This is a schematic cross-sectional view of an embodiment of the atomization module provided by the present application taken from another perspective;
[0015] Figure 4 This is a schematic structural diagram of an embodiment of an induction heating element provided by the present application;
[0016] Figure 5 This is a structural diagram of an embodiment of a base provided by this application;
[0017] Figure 6 This is a schematic structural diagram of an embodiment of a conductive sheet provided by the present application;
[0018] Figure 7 This is a structural diagram of an embodiment of an ultrasonic atomizer provided by the present application;
[0019] Figure 8 This is a structural diagram of an embodiment of the atomization device provided by the present application;
[0020] Figure 9This is a schematic diagram of a partial cross-sectional structure of an embodiment of the atomization device provided by the present application;
[0021] Figure 10 This is a schematic structural diagram of an embodiment of a storage module provided by the present application;
[0022] Figure 11 This is a flow chart of an embodiment of the atomization method provided by this application. DETAILED DESCRIPTION
[0023] The present invention will be described in further detail below with reference to the accompanying drawings and examples. It is particularly noted that the following examples are intended only to illustrate the present invention and are not intended to limit the scope of the present invention. Similarly, the following examples are only some embodiments of the present invention and are not intended to be all embodiments. All other embodiments obtained by those of ordinary skill in the art without creative effort are intended to fall within the scope of protection of the present invention.
[0024] In the description of the present invention, the meaning of "multiple" is at least two, such as two, three, etc., unless otherwise specifically defined. The terms "first", "second", and "third" in the embodiments of the present application are only used for descriptive purposes and should not be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first", "second", and "third" can explicitly or implicitly include at least one of such features. All directional indications in the embodiments of the present application (such as up, down, left, right, front, back, etc.) are only used to explain the relative positional relationship, movement, etc. between the components under a specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly. The terms "including" and "having" in the embodiments of the present application 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 may optionally include steps or units that are not listed, or may optionally include other steps or components inherent to these processes, methods, products, or devices.
[0025] References herein to "embodiments" mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present invention. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute a separate or alternative embodiment that is mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0026] This application provides an atomization module. Please also refer to Figures 1 to 3The atomizer module 100 may include an inductive heating element 10, an ultrasonic atomizer 20, and a bracket 30. The inductive heating element 10 is mounted on the bracket 30. The inductive heating element 10 and the bracket 30 enclose a receiving cavity 31, and the ultrasonic atomizer 20 is disposed within the receiving cavity 31. The inductive heating element 10 and the ultrasonic atomizer 20 can operate independently to heat a first substrate and a second substrate, respectively, to generate an aerosol. The first substrate may be an HNB substrate, such as tobacco, and the second substrate may be e-liquid.
[0027] The atomization module 100 provided in the present application can heat the first matrix and the second matrix respectively by providing an inductive heating element 10 and an ultrasonic atomization element 20. The user can experience the taste of two different atomized matrices without changing the atomization module, thereby improving the user experience.
[0028] The inductive heating element 10 can work in combination with the ultrasonic atomizer 20. The inductive heating element 10 heats the first substrate, and a second substrate is stored adjacent to the first substrate. The first substrate heats the second substrate through heat conduction, allowing the inductive heating element 10 to preheat the second substrate, thereby reducing the viscosity of the second substrate, increasing the fluidity of the second substrate, and improving the supply rate of the second substrate. The ultrasonic atomizer 20 heats the second substrate preheated by the inductive heating element 10 to generate an aerosol, thereby improving heating efficiency.
[0029] The atomizer module 100 may also be provided with a base 40, in which the bracket 30 and the inductive heating element 10 are all housed. By providing the base 40, the inductive heating element 10, the ultrasonic atomizer 20, and the bracket 30 are all integrally encapsulated within the base 40, making the atomizer module 100 an independent module. It can be transplanted into a similar type of atomizer device by simply reserving a circuit plug interface on the base 40, thereby enhancing the versatility and practicality of the atomizer module 100.
[0030] See also Figure 2 、 Figure 4 The inductive heating element 10 includes an inductive bottom plate 11, a heating body 12, an inductive inner wall 13 and an inductive outer wall 14. The inductive bottom plate 11 is mounted on a bracket 30, and the heating body 12, the inductive inner wall 13 and the inductive outer wall 14 are connected to the side of the inductive bottom plate 11 away from the accommodating cavity 31. The inductive inner wall 13 is arranged around the periphery of the heating body 12, and the inductive inner wall 13 and the heating body 12 are enclosed to form an atomizing airway 15. An inductive coil 16 is wound around the inductive inner wall 13, and the inductive outer wall 14 is arranged outside the inductive coil 16. When high-frequency alternating current passes through the inductive coil 16, a continuously changing magnetic field can be generated. The changing magnetic field generates eddy currents in the heating body 12, thereby causing the heating body 12 to heat up rapidly.
[0031] The ultrasonic atomizer 20 includes an atomizer sheet 21 and an ultrasonic oscillation sheet 22 stacked in a direction away from the inductive heating element 10. The ultrasonic oscillation sheet 22 is mounted on a bracket 30. Figure 2 As shown. A plurality of micropores are provided on the atomizing sheet 21 and the ultrasonic oscillation sheet 22. The ultrasonic oscillation sheet 22 can vibrate at high frequency under the excitation of high-frequency alternating current, thereby ultrasonically atomizing the second matrix on the surface of the atomizing sheet 21. The material of the ultrasonic oscillation sheet 22 can be piezoelectric ceramic. The ultrasonic oscillation sheet 22 drives the atomizing sheet 21 to vibrate at high frequency and beat the second matrix on the surface of the atomizing sheet 21, so that the second matrix is atomized and ejected from the micropores of the atomizing sheet 21. The diameter of the micropores of the atomizing sheet 21 will affect the size of the atomized particles of the second matrix, so the diameter of the micropores can be set as needed.
[0032] See also Figure 2 、 Figure 5 The bracket 30 includes a bracket base plate 32 and a bracket side wall 33. The bracket side wall 33 is connected to the side of the bracket base plate 32 close to the inductive heating element 10. The bracket base plate 32, the bracket side wall 33 and the inductive base plate 11 are surrounded to form an accommodating cavity 31.
[0033] An inductor retaining groove 141 is provided on the outer wall of the inductor outer side wall 14, and an inductor retaining post 331 is correspondingly provided on the bracket side wall 33. The inductor retaining post 331 is inserted into the inductor retaining groove 141, thereby fixing the inductor heating element 10 to the bracket 30. The provision of the mutually cooperating inductor retaining post 331 and inductor retaining groove 141 not only facilitates the installation and alignment of the inductor heating element 10, preventing incorrect installation position and playing a foolproof role; but also secures the inductor heating element 10, preventing displacement of the inductor heating element 10 when subjected to vibration, which could result in poor electrical contact, thereby improving the reliability of the atomization module 100.
[0034] The atomizing module 100 includes a liquid guide column 50 and a pressing ring 60. Figures 1 to 3 The liquid guide column 50 passes through the inductor bottom plate 11 and contacts the atomizing plate 21 to transfer the second matrix to the atomizing plate 21 .
[0035] The clamping ring 60 is accommodated in the accommodating cavity 31. The clamping ring 60 is hollow cylindrical. The outer wall of the clamping ring 60 abuts against the side wall 33 of the bracket. The opposite ends of the clamping ring 60 abut against the inductor base plate 11 and the atomizing sheet 21 respectively, thereby fixing the ultrasonic atomizing element 20 in the accommodating cavity 31, preventing the ultrasonic atomizing element 20 from shifting, and further improving the reliability of the atomizing module 100.
[0036] The inductive heating element 10 is provided with a conductive sheet 17 and a first conductive column 18. Figure 3As shown, the conductive sheet 17 is partially embedded in the bracket side wall 33 , the first conductive column 18 is inserted into the bracket bottom plate 32 , and the conductive sheet 17 is electrically connected to the inductive heating element 10 and the first conductive column 18 respectively.
[0037] Specifically, see Figure 3 、 Figure 6 The conductive sheet 17 includes a lower terminal 171, a vertical conductive segment 172, a horizontal conductive segment 173, and an upper terminal 174, which are connected in sequence. The lower terminal 171 is embedded in the bracket base 32. One side of the lower terminal 171 is electrically connected to the first conductive post 18, and the opposite side of the lower terminal 171 is flush with the inner surface of the bracket base 32. This prevents the lower terminal 171 from protruding and affecting the assembly of the ultrasonic atomizer 20. A conductive sheet limiting groove 332 is provided on the side wall 33 of the bracket, and the vertical conductive segment 172 is embedded in the conductive sheet limiting groove 332. On the one hand, the inner wall of the base 40 and the outer wall of the clamping ring 60 fix the vertical conductive segment 172 on the side wall 33 of the bracket, which can prevent the conductive sheet 17 from shifting and causing the inductive heating element 10 to be short-circuited, thereby improving the reliability of the atomization module 100; on the other hand, the vertical conductive segment 172 is embedded in the conductive sheet limiting groove 332, and the vertical conductive segment 172 is not exposed to the side wall 33 of the bracket, which can reduce the impact on the layout of other components, make full use of the space of the side wall 33 of the bracket, and improve the utilization rate of the internal space of the atomization module 100. Transverse conductive segment 173 extends into accommodating cavity 31. One side of transverse conductive segment 173 abuts against a surface of inductor base plate 11 near accommodating cavity 31. The opposite side of transverse conductive segment 173 abuts against the end of clamping ring 60, further preventing displacement of conductive sheet 17 and causing a short circuit in inductive heating element 10. Upper terminal 174 is inserted into inductive base plate 11 and electrically connected to inductive heating element 10.
[0038] The ultrasonic oscillation plate 22 is provided with an ultrasonic plate contact 23 on the side close to the support bottom plate 32. Figure 2 、 Figure 7 As shown. A second conductive post 24 is inserted into the bracket base plate 32. The second conductive post 24 is spaced apart from the first conductive post 18 on the bracket base plate 32 and is electrically connected to the ultrasonic plate contact 23. The first conductive post 18 and the second conductive post 24 are inserted into the base 40. The ends of the first conductive post 18 and the second conductive post 24 can be flush with the outer surface of the base 40 or protrude from the outer surface of the base 40 to facilitate connection to a power source.
[0039] Please continue reading Figure 2The base 40, the bracket bottom plate 32, and the inductor bottom plate 11 are respectively provided with base air holes 41, bracket air holes 321, and inductor air holes 111. External air can enter the atomization airway 15 through the base air holes 41, bracket air holes 321, accommodating cavity 31, and inductor air holes 111, so that the atomization airway 15 can maintain communication with the external air. The aerosol generated by the ultrasonic atomizer 20 can enter the atomization airway 15 through the inductor air holes 111.
[0040] This application provides an atomizing device, please refer to Figure 8 、 Figure 10 The interconnected atomization device 500 includes a battery module 510, a control module 520, the atomization module 100 as described above, and a storage module 530. The battery module 510 provides power for the atomization device 500, and the control module 520 is used for power management, atomization control, and human-computer interaction. The storage module 530 is used to store the matrix and transfer the matrix to the atomization module 100. The storage module 530 is provided with a first storage bin 531 and a second storage bin 532 for storing the first matrix and the second matrix. The second storage bin 532 is arranged around the outer periphery of the first storage bin 531, and the first storage bin 531 can transfer heat to the second storage bin 532. A suction nozzle 533 is provided at one end of the storage module 530 away from the atomization module 100. The suction nozzle 533 is connected to the first storage bin 531 and the atomization module 100, and the aerosol generated by the atomization module 100 can reach the suction nozzle 533.
[0041] One end of the heating element 12 of the inductive heating element 10 is inserted into the first storage chamber 531 for heating the first substrate. One end of the liquid guide column 50 of the atomization module 100 is inserted into the second storage chamber 532 for transferring the second substrate to the atomization sheet 21.
[0042] The present application provides an atomization method, the atomization method 700 is used to operate the atomization device 500 as described above, see Figure 11 , Figure 11 Flowchart of an embodiment of the atomization method provided by the present application. The atomization method 700 includes steps S710 to S720:
[0043] S710, obtaining interaction information, where the interaction information is used to specify an atomization mode;
[0044] S720, controlling the atomization module 100 according to the specified atomization mode to heat at least a portion of the substrate according to the preset atomization mode to generate an aerosol;
[0045] Among them, the atomization mode includes an independent working mode and a combined working mode. In the independent working mode, the inductive heating element 10 or the ultrasonic atomization element 20 works independently; in the combined working mode, the inductive heating element 10 and the ultrasonic atomization element 20 work simultaneously.
[0046] The independent working mode includes the first atomization mode and the second atomization mode:
[0047] In the first atomization mode, the inductive heating element 10 is connected to the battery module 510, and the ultrasonic atomization element 20 is disconnected from the battery module 510. The inductive heating element 10 works independently to heat at least a portion of the first matrix to generate an aerosol.
[0048] In the second atomization mode, the inductive heating element 10 is disconnected from the battery module 510, and the ultrasonic atomization element 20 is connected to the battery module 510. The ultrasonic atomization element 20 works independently to heat at least a portion of the second matrix to generate aerosol.
[0049] The combined working mode includes the third atomization mode:
[0050] In the third atomization mode, the inductive heating element 10 and the ultrasonic atomizer 20 are both connected to the battery module 510, and the inductive heating element 10 and the ultrasonic atomizer 20 work in combination. The inductive heating element 10 heats the first matrix according to the set temperature, and the first matrix transfers heat to the second storage bin 531 through the first storage bin 532 to preheat the second matrix to reduce the viscosity of the second matrix. The ultrasonic atomizer 20 heats at least part of the second matrix to generate an aerosol.
[0051] The atomization method 700 provided in the present application has multiple working atomization modes. In the independent working mode, the inductive heating element 10 and the ultrasonic atomization element 20 can heat the first matrix and the second matrix respectively. The user can freely choose the atomization mode and experience the different tastes brought by the two atomization matrices without changing the atomization module, thereby improving the user experience. In the third atomization mode, on the one hand, the second matrix is preheated by the inductive heating element 10, which can reduce the viscosity of the second matrix. The preheated second matrix is then atomized by the ultrasonic atomizer 20, which can greatly improve the working efficiency of the ultrasonic atomizer 20; on the other hand, the preheated second matrix has good fluidity, which can reduce the risk of the micropores of the ultrasonic atomizer 20 being blocked, thereby increasing the service life of the ultrasonic atomizer 20; on the other hand, compared with the atomization module that only has the inductive heating element 10 or the ultrasonic atomizer 20, the atomization module 100 is provided with both the inductive heating element 10 and the ultrasonic atomizer 20, which can reduce the operating frequency of the inductive heating element 10 or the ultrasonic atomizer 20, thereby increasing the service life of the atomization module 100.
[0052] In the first atomization mode, the heating temperature of the inductive heating element 10 is 200-300°C, which can quickly atomize the first matrix. In the third atomization mode, the heating temperature of the inductive heating element 10 is 50-100°C. If the heating temperature of the inductive heating element 10 is less than 50°C, the temperature of the first matrix is low, the temperature gradient between the first matrix and the second matrix is small, the heat transferred from the first matrix to the second matrix is small, the preheating effect on the second matrix is poor, and the effect of improving the fluidity of the second matrix cannot be achieved; if the heating temperature of the inductive heating element 10 is greater than 100°C, the temperature of the first matrix is high, and part of the first matrix may be atomized, while the user does not need to atomize the first matrix at this time. In addition, the power consumption of the inductive heating element 10 will be increased, which is not conducive to the endurance of the atomization device 500. When the heating temperature of the inductive heating element 10 in the third atomization mode is within the above range, it can effectively reduce the viscosity of the second matrix to prevent the micropores of the ultrasonic atomization element 20 from being blocked, and it can also improve the atomization efficiency of the ultrasonic atomization element 20, and it is beneficial to reduce the power consumption of the atomization device 500.
[0053] The atomization module and atomization method provided in this application have at least the following beneficial effects:
[0054] 1. The atomization module 100 provided in this application, by providing an inductive heating element 10 and an ultrasonic atomization element 20, can experience the taste brought by two different atomization matrices without changing the atomization module; the inductive heating element 10 can work in combination with the ultrasonic atomization element 20 to improve heating efficiency.
[0055] 2. The atomization module 100 is provided with a base 40 , which integrally encapsulates the inductive heating element 10 , the ultrasonic atomization element 20 and the bracket 30 in the base 40 , making the atomization module 100 an independent module, thereby enhancing the versatility and practicality of the atomization module 100 .
[0056] 3. The clamping ring 60 is accommodated in the accommodating cavity 31 . The clamping ring 60 fixes the ultrasonic atomizing element 20 in the accommodating cavity 31 , preventing the ultrasonic atomizing element 20 from shifting, thereby improving the reliability of the atomizing module 100 .
[0057] 4. The conductive sheet 17 is partially embedded in the bracket side wall 33. On the one hand, the inner wall of the base 40 and the outer wall of the clamping ring 60 fix the vertical conductive segment 172 on the bracket side wall 33, which can improve the reliability of the atomization module 100; on the other hand, it can reduce the impact on the layout of other components, make full use of the space of the bracket side wall 33, and improve the utilization rate of the internal space of the atomization module 100.
[0058] 5. The atomization method 700 provided in this application has multiple working atomization modes. Users can freely choose the atomization mode and experience the different tastes brought by the two atomization matrices without having to change the atomization module.
[0059] 6. In the third atomization mode, on the one hand, the inductive heating element 10 is used to preheat the second substrate, which can greatly improve the working efficiency of the ultrasonic atomizer 20; on the other hand, the risk of the micropores of the ultrasonic atomizer 20 being blocked can be reduced, thereby increasing the service life of the ultrasonic atomizer 20; on the other hand, the operating frequency of the inductive heating element 10 or the ultrasonic atomizer 20 can be reduced, thereby increasing the service life of the atomization module 100.
[0060] 7. In the third atomization mode, the heating temperature of the inductive heating element 10 is 50-100°C, which can effectively reduce the viscosity of the second matrix to prevent the clogging of the micropores of the ultrasonic atomization element 20, improve the atomization efficiency of the ultrasonic atomization element 20, and help reduce the power consumption of the atomization device 500.
[0061] The above descriptions are only some embodiments of the present invention and do not limit the scope of protection of the present invention. Any equivalent device or equivalent process transformation made by using the contents of the description and drawings of the present invention, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.
Claims
1. An atomization module, characterized in that: The atomization module is used to heat the substrate in the storage module. The storage module is provided with a first storage bin for storing the first substrate and a second storage bin for storing the second substrate. The second storage bin is arranged around the first storage bin. The atomization module includes an inductive heating element, an ultrasonic atomizing element, a bracket, and a liquid guide column. The inductive heating element is mounted on the bracket. One end of the heating body of the inductive heating element is used to be inserted into the first storage bin. The inductive heating element and the bracket form a receiving cavity. The ultrasonic atomizing element is disposed in the receiving cavity. One end of the liquid guide column passes through the inductive bottom plate of the inductive heating element and is used to be inserted into the second storage bin. The other end abuts against the ultrasonic atomizing element to transfer the second matrix to the ultrasonic atomizing element. The inductive heating element and the ultrasonic atomizing element can work independently to heat the first matrix and the second matrix respectively to generate aerosol; The inductive heating element can work in combination with the ultrasonic atomizing element. The first storage bin can transfer heat to the second storage bin. The inductive heating element preheats the second matrix. The ultrasonic atomizing element heats the second matrix preheated by the inductive heating element to generate an aerosol.
2. The atomization module according to claim 1, characterized in that: The inductive heating element comprises the inductive bottom plate, the heating body, the inner wall of the inductive element, and the outer wall of the inductive element. The inductive bottom plate is mounted on the bracket, and the heating body, the inner wall of the inductive element, and the outer wall of the inductive element are connected to a side of the inductive bottom plate away from the accommodating cavity. The inner side wall of the inductor is arranged around the periphery of the heating body, and the inner side wall of the inductor and the heating body are enclosed to form an atomizing air channel; An inductor coil is wound on the inner side wall of the inductor, and the outer side wall of the inductor is arranged outside the inductor coil.
3. The atomization module according to claim 2, characterized in that: The ultrasonic atomizer comprises an atomizer sheet and an ultrasonic oscillation sheet stacked in a direction away from the inductive heating element, and the ultrasonic oscillation sheet is mounted on the bracket; A plurality of micropores are provided on the atomizing sheet and the ultrasonic oscillation sheet. The ultrasonic oscillation sheet can vibrate at a high frequency under the excitation of a high-frequency alternating current to ultrasonically atomize the second matrix on the surface of the atomizing sheet.
4. The atomization module according to claim 3, characterized in that: The bracket includes a bracket bottom plate and a bracket side wall. The bracket side wall is connected to a side of the bracket bottom plate close to the inductive heating element. The bracket bottom plate, the bracket side wall and the inductive bottom plate are arranged to form the accommodating cavity.
5. The atomization module according to claim 4, characterized in that: An inductor limiting groove is provided on the outer wall of the outer side wall of the inductor, and an inductor limiting column is correspondingly provided on the side wall of the bracket, and the inductor limiting column is inserted into the inductor limiting groove.
6. The atomization module according to claim 3, characterized in that: The liquid-conducting column abuts against the atomizing sheet to transfer the second matrix to the atomizing sheet.
7. The atomization module according to claim 4, characterized in that: The atomization module includes a compression ring accommodated in the accommodating cavity. The compression ring is hollow cylindrical. The outer wall of the compression ring abuts against the side wall of the bracket. The opposite ends of the compression ring abut against the inductor bottom plate and the atomization sheet respectively.
8. The atomization module according to claim 4, characterized in that: The inductive heating element is provided with a conductive sheet and a first conductive column. The conductive sheet is partially embedded in the side wall of the bracket, and the first conductive column is inserted into the bottom plate of the bracket. The conductive sheet is electrically connected to the inductive heating element and the first conductive column respectively.
9. The atomization module according to claim 8, characterized in that: The conductive sheet includes a lower terminal, a vertical conductive segment, a horizontal conductive segment and an upper terminal connected in sequence; The lower terminal is embedded in the bracket bottom plate, one side of the lower terminal is electrically connected to the first conductive post, and the opposite side of the lower terminal is flush with the inner surface of the bracket bottom plate; A conductive sheet limiting groove is provided on the side wall of the bracket, and the vertical conductive segment is embedded in the conductive sheet limiting groove; The transverse conductive segment extends into the accommodating cavity, and one side of the transverse conductive segment abuts against a side of the inductor bottom plate close to the accommodating cavity; The upper terminal is inserted into the inductive bottom plate, and the upper terminal is electrically connected to the inductive heating element.
10. The atomization module according to claim 8, characterized in that: The ultrasonic oscillation plate is provided with an ultrasonic plate contact on one side close to the bottom plate of the bracket; A second conductive column is inserted on the support bottom plate. The second conductive column and the first conductive column are arranged on the support bottom plate at intervals. The second conductive column is electrically connected to the ultrasonic sheet contact.
11. The atomization module according to claim 10, characterized in that: The atomization module includes a base, the bracket and the inductive heating element are both accommodated in the base, and the first conductive column and the second conductive column are inserted into the base.
12. The atomization module according to claim 11, characterized in that: The base, the bracket bottom plate and the inductor bottom plate are respectively provided with base air holes, bracket air holes and inductor air holes, and external air can enter the atomization air channel through the base air holes, the bracket air holes, the accommodating cavity and the inductor air holes.
13. An atomizing device, characterized in that: include: A battery module, a control module, an atomization module according to any one of claims 1 to 12, and a storage module connected to each other; The battery module provides power for the atomization device, and the control module is used for power management, atomization control, and human-computer interaction; The storage module is used to store the matrix and transfer the matrix to the atomization module, and the atomization module is used to heat the matrix; The storage module is provided with a first storage bin for storing a first matrix and a second storage bin for storing a second matrix. The second storage bin is arranged around the outer periphery of the first storage bin. The first storage bin can transfer heat to the second storage bin. One end of the heating body of the inductive heating element is inserted into the first storage bin, one end of the liquid guide column passes through the inductive bottom plate of the inductive heating element and is inserted into the second storage bin, and the other end is in contact with the ultrasonic atomization element to transfer the second matrix to the ultrasonic atomization element.
14. An atomization method for operating the atomization device according to claim 13, characterized in that: The atomization method comprises: Acquiring interaction information, where the interaction information is used to specify an atomization mode; According to the specified atomization mode, the atomization module is controlled to heat at least a portion of the substrate according to the preset atomization mode to generate an aerosol; Among them, the atomization mode includes an independent working mode and a combined working mode. In the independent working mode, the inductive heating element or the ultrasonic atomization element works independently; in the combined working mode, the inductive heating element and the ultrasonic atomization element work simultaneously.
15. The atomization method according to claim 14, characterized in that: The independent working mode includes a first atomization mode and a second atomization mode: The first atomization mode is that the inductive heating element is connected to the battery module, the ultrasonic atomization element is disconnected from the battery module, and the inductive heating element works independently to heat at least a portion of the first matrix to generate aerosol; The second atomization mode is that the inductive heating element is disconnected from the battery module, the ultrasonic atomization element is connected to the battery module, and the ultrasonic atomization element works independently to heat at least a portion of the second matrix to generate aerosol; The combined working mode includes a third atomization mode: The third atomization mode is that the inductive heating element and the ultrasonic atomization element are both connected to the battery module, and the inductive heating element and the ultrasonic atomization element work in combination. The inductive heating element heats the first matrix at a set temperature, and the first matrix transfers heat to the second storage bin through the first storage bin to preheat the second matrix to reduce the viscosity of the second matrix. The ultrasonic atomization element heats at least a portion of the second matrix to generate an aerosol.
16. The atomization method according to claim 15, characterized in that: The heating temperature of the inductive heating element in the first atomization mode is 200-300° C., and the heating temperature of the inductive heating element in the third atomization mode is 50-100° C.
Citation Information
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