Atomization assembly and atomization device thereof
By setting multiple storage chambers and liquid guiding components in the atomizing component, the natural mixing of the aerosol matrix is achieved, which solves the problem of monotonous flavor in the existing technology and provides a rich vaping experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- NEVILLA (HONG KONG) LTD
- Filing Date
- 2025-01-22
- Publication Date
- 2026-07-24
AI Technical Summary
Existing atomizing components typically only have one liquid reservoir, resulting in a limited range of flavors and making it difficult to provide a rich vaping experience.
The design includes a first and a second storage chamber arranged adjacent to each other, which are connected by a liquid guide to achieve mixing between the aerosol matrix and allow the atomizing core to naturally change flavors during the heating process.
It achieves a natural flavor transition without manual operation, enriching the user's smoking experience.
Smart Images

Figure CN122439930A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of atomization technology, and in particular to an atomization component and atomization device thereof. Background Technology
[0002] Atomizing devices typically contain an atomizing component, which is the part of the atomizing device that stores the aerosol matrix and heats and atomizes it. Existing atomizing components generally store the aerosol matrix through a storage tank and atomize the aerosol matrix through an atomizing core. The atomized aerosol matrix is then transported to the mouthpiece through an atomizing air channel for the user to inhale.
[0003] However, existing atomizing components typically have only one liquid storage compartment, which stores an aerosol matrix of one flavor. This results in a limited variety of flavors offered by the atomizing components, making it difficult to provide users with a rich vaping experience. Summary of the Invention
[0004] The embodiments of this application provide an atomizing component and atomizing device thereof, which can achieve natural flavor switching and bring users a rich vaping experience.
[0005] In a first aspect, embodiments of this application provide an atomizing component, the atomizing component comprising: a storage element having a first storage cavity and a second storage cavity disposed adjacent to each other, the first storage cavity being used to store a first aerosol matrix, the second storage cavity being used to store a second aerosol matrix, the first aerosol matrix being different from the second aerosol matrix; a first liquid guiding element communicating with the first storage cavity and the second storage cavity; and an atomizing core disposed in the first storage cavity for atomizing the aerosol matrix in the first storage cavity; wherein the second aerosol matrix in the second storage cavity can enter the first storage cavity through the first liquid guiding element and mix with the first aerosol matrix in the first storage cavity to form a mixed aerosol matrix different from the first aerosol matrix and the second aerosol matrix.
[0006] In some embodiments, the storage device further includes an atomizing air channel, at least a portion of which is disposed within the first storage cavity; wherein the atomizing core is disposed within the atomizing air channel, and the first and second storage cavities are arranged along the extending direction of the atomizing air channel.
[0007] In some embodiments, the storage device further includes: a plurality of third storage cavities for storing a third aerosol matrix; the third storage cavities, the second storage cavities, and the first storage cavity are arranged sequentially along the extension direction of the atomizing air passage; and a second liquid guide, which communicates with the third storage cavity and the adjacent second storage cavity or another third storage cavity to achieve fluid communication.
[0008] In some embodiments, the atomizing air passage extends through the first storage cavity.
[0009] In some embodiments, the first liquid guide is disposed between the first storage cavity and the second storage cavity, and the vertical distance between the first liquid guide and the atomizing air channel is greater than or equal to half the vertical distance between the outer wall of the first storage cavity and the atomizing air channel.
[0010] In some embodiments, the atomizing assembly includes at least two first liquid guiding elements, and the plurality of first liquid guiding elements are symmetrically arranged relative to the atomizing air passage; or, the atomizing assembly includes at least two first liquid guiding elements, and the plurality of first liquid guiding elements are arranged around the atomizing air passage; or, the first liquid guiding element is an annular structure sleeved on the outside of the atomizing air passage.
[0011] In some embodiments, in the atomizing airway extension direction, the projection of the second liquid guide member onto a plane perpendicular to the atomizing airway extension direction does not coincide with that of the adjacent first liquid guide member or another second liquid guide member.
[0012] In some embodiments, the first storage cavity is provided with a first liquid storage device for storing the first aerosol matrix, the second storage cavity is provided with a second liquid storage device for storing the second aerosol matrix, and the third storage cavity is provided with a third liquid storage device for storing the third aerosol matrix; wherein the density of the first liquid storage device is greater than the density of the second liquid storage device, and the density of the second liquid storage device is greater than the density of the third liquid storage device.
[0013] In some embodiments, the storage device includes: a first sub-storage device having the first storage cavity; a second sub-storage device having the second storage cavity, the second sub-storage device being detachably connected to the first sub-storage device; wherein the first liquid guiding element is provided on the side of the first sub-storage device or the second sub-storage device facing each other.
[0014] Secondly, embodiments of this application provide an atomizing device, the atomizing device including an atomizing component and a battery component, the atomizing component being any of the atomizing components described above; the atomizing component is connected to the battery component, the battery component being used to provide power to the atomizing component and control the operation of the atomizing component.
[0015] The beneficial effects of this application are as follows: By setting a first liquid guide between the first and second storage cavities of the storage component, the second aerosol matrix in the second storage cavity can enter the first storage cavity through the first liquid guide. Thus, during the process of the atomizing core heating the aerosol matrix in the first storage cavity, the flavor can naturally transition from the flavor of the first aerosol matrix to the flavor of the second aerosol matrix, realizing a natural switching of the flavor of the atomizing component without manual operation, which can enrich the user's vaping experience. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of an atomizing device according to an embodiment of this application;
[0018] Figure 2 This is a schematic diagram of an atomizing device according to another embodiment of this application;
[0019] Figure 3 This is a schematic diagram of an atomizing component according to an embodiment of this application;
[0020] Figure 4 This is a schematic diagram of the arrangement of the first liquid guiding element in one embodiment of this application;
[0021] Figure 5 This is a schematic diagram of the arrangement of the first liquid guiding element in another embodiment of this application;
[0022] Figure 6 This is a schematic diagram of the arrangement of the first liquid guiding element in yet another embodiment of this application;
[0023] Figure 7 This is a schematic diagram of an atomizing component according to another embodiment of this application;
[0024] Figure 8 This is a schematic diagram of an atomizing device according to yet another embodiment of this application;
[0025] Figure 9This is a schematic diagram of the appearance of an atomizing device according to one embodiment of this application.
[0026] Explanation of reference numerals in the attached drawings: 10-Storage component; 11-Atomizing airway; 20-First storage chamber; 30-Second storage chamber; 40-First liquid guide component; 50-Atomizing core; 60-Third storage chamber; 70-Second liquid guide component; 21-Liquid guide hole; 22-First liquid guide connection hole; 31-Second liquid guide connection hole; 32-Third liquid guide connection hole; 61-Fourth liquid guide connection hole; 23-First liquid reservoir; 33-Second liquid reservoir; 62-Third liquid reservoir; 100-Atomizing device; 200-Atomizing assembly; 300-Battery assembly; 301-Battery; 302-Circuit board; 201-Mouth. Detailed Implementation
[0027] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0028] Please refer to Figure 1 An embodiment of this application provides an atomizing component, which includes: a storage component 10, having a first storage cavity 20 and a second storage cavity 30 disposed adjacent to each other, the first storage cavity 20 being used to store a first aerosol matrix, the second storage cavity 30 being used to store a second aerosol matrix, the first aerosol matrix being different from the second aerosol matrix;
[0029] The first liquid guiding element 40 is connected between the first storage cavity 20 and the second storage cavity 30;
[0030] The atomizing core 50 is disposed in the first storage cavity 20 and is used to atomize the aerosol matrix in the first storage cavity 20;
[0031] The second aerosol matrix in the second storage cavity 30 can enter the first storage cavity 20 through the first liquid guide 40 and mix with the first aerosol matrix in the first storage cavity 20 to form a mixed aerosol matrix that is different from the first aerosol matrix and the second aerosol matrix.
[0032] In this embodiment, unlike related technologies that only provide one storage cavity to store one aerosol matrix, this embodiment provides a first storage cavity 20 and a second storage cavity 30, which respectively store the first aerosol matrix and the second aerosol matrix.
[0033] In this embodiment, the atomizing core 50 is used to atomize the aerosol matrix in the first storage cavity 20, including atomizing the first aerosol matrix stored in the first storage cavity 20, and atomizing the mixed aerosol matrix of the first aerosol matrix and the second aerosol matrix in the first storage cavity 20 during use, as well as atomizing the second aerosol matrix that enters the first storage cavity 20.
[0034] In this embodiment, the first aerosol matrix is different from the second aerosol matrix. In one case, the first aerosol matrix and the second aerosol matrix can be two aerosol matrices with different flavors. That is, the first aerosol matrix and the second aerosol matrix can have different compositions to obtain different flavors. When using the atomizing component, since the two have different flavors, when the atomizing core 50 atomizes the second aerosol matrix, a gradual flavor experience can be obtained.
[0035] In another scenario, the first and second aerosol matrices can be of the same flavor, but differ in concentration, resulting in similar or identical flavors but different intensity of taste sensation. When using the atomizing component, due to the difference in concentration, when the atomizing core 50 atomizes the second aerosol matrix, a gradually stronger or gradually milder flavor effect can be obtained.
[0036] In another scenario, the first aerosol matrix and the second aerosol matrix have exactly the same flavor, that is, they are identical in composition and concentration. In this case, when the second aerosol matrix enters the first storage cavity 20, it only replenishes the first aerosol matrix in the first storage cavity 20 and does not cause any change in flavor.
[0037] In one embodiment, through the connection of the first liquid guiding element 40, the second aerosol matrix in the second storage cavity 30 can spontaneously enter the first storage cavity 20 through the first liquid guiding element 40 under capillary action.
[0038] In another embodiment, the first liquid guiding element 40 is configured as a connecting hole. Based on the fact that the first liquid guiding element 40 connects the first storage cavity 20 and the second storage cavity 30, the speed at which the second aerosol matrix enters the first storage cavity 20 can be controlled by controlling the size of the hole of the first liquid guiding element 40, thereby achieving control over the mixing speed or degree of mixing between the two.
[0039] In another embodiment, the first liquid guide 40 can be configured as a one-way valve structure. Based on the fact that the first liquid guide 40 connects the first storage cavity 20 and the second storage cavity 30, the speed at which the second aerosol matrix enters the first storage cavity 20 can be controlled by controlling the opening degree of the one-way valve, thereby achieving control over the mixing speed or degree of mixing between the two.
[0040] In the above embodiment, by providing the first liquid guiding element 40, an aerosol matrix can be formed within the storage unit 10, moving along the path from the second storage cavity 30, the first liquid guiding element 40, the first storage cavity 20 to the atomizing core 50 (please refer to...). Figure 1 , Figure 2 , Figure 3 and Figure 7 (The B symbol and the Y direction in the text). This allows the second aerosol matrix to move along the moving path B during its entry into the first storage cavity 20, and eventually mix with the first aerosol matrix in the first storage cavity 20. It is clear that the mixing of the second aerosol matrix and the first aerosol matrix can occur at any position within the first storage cavity 20.
[0041] The above-mentioned formation of a mixed aerosol matrix that is different from the first aerosol matrix and the second aerosol matrix will be explained. Before the atomization component is used, since the first aerosol matrix contained in the first storage cavity 20 is in a full state, the second aerosol matrix will basically not enter the first storage cavity 20, or a small amount will enter the first storage cavity 20 near the first liquid guide 40, and the first storage cavity 20 will not be completely transformed into a mixed aerosol matrix of the first aerosol matrix and the second aerosol matrix.
[0042] During the operation of the atomizing component, firstly, the atomizing core 50 heats the first aerosol matrix in the first storage chamber 20, allowing the user to experience the flavor of the first aerosol matrix when inhaling. Secondly, as the first aerosol matrix in the first storage chamber 20 is continuously consumed and through capillary action, the second aerosol matrix in the second storage chamber 30 gradually enters the first storage chamber 20 along the aforementioned movement path B and gradually mixes with the first aerosol matrix. This causes the atomizing core 50 to heat the aforementioned mixed aerosol matrix, allowing the user to experience the mixed flavor of the mixed aerosol matrix when inhaling. Thirdly, since the second aerosol matrix is actually mixed with the remaining portion of the first aerosol matrix after consumption, as the atomizing component continues to operate and the mixed aerosol matrix is continuously consumed, the unmixed remaining second aerosol matrix will travel along movement path B to the atomizing component and be atomized, allowing the user to experience the flavor of the second aerosol matrix when inhaling.
[0043] In this embodiment, it is clear that the movement path B can be controlled according to the setting position and arrangement of the first liquid guiding element 40. To ensure that users experience the flavors of the first aerosol matrix, the mixed flavors of the mixed aerosol matrix, and the flavors of the second aerosol matrix, thus providing a richer experience, the movement path B should be extended as much as possible to maximize the path of the second aerosol matrix to the atomizing core 50, thereby ensuring a richer user experience. The control and setting of this movement path B will be explained below through some embodiments.
[0044] Before proceeding, the arrangement of the first storage cavity 20 and the second storage cavity 30 will be improved. Please refer to [reference needed]. Figure 1 In one embodiment, the storage device 10 is further provided with an atomizing air channel 11, at least a portion of the atomizing air channel 11 is disposed in the first storage cavity 20; wherein, the atomizing core 50 is disposed in the atomizing air channel 11, and the first storage cavity 20 and the second storage cavity 30 are arranged along the extending direction of the atomizing air channel 11.
[0045] The atomizing component has a first direction X and a second direction Y, where the second direction Y is the reverse of the first direction X. Specifically, the first direction X is the air intake direction of the atomizing component, that is, the flow direction of the gas within the atomizing air passage 11. Please refer to the reference for details. Figure 1 , Figure 2 , Figure 3 and Figure 7 The X direction and A are indicated in the diagram. The second direction, Y, represents the direction of movement of the aerosol matrix; please refer to the reference for details. Figure 1 , Figure 2 , Figure 3 and Figure 7 The Y direction and B identifier are specified in the text. In this embodiment, the extension direction can be either the first direction X or the second direction Y.
[0046] In this embodiment, the first storage cavity 20 and the second storage cavity 30 are arranged along a first direction X or a second direction Y, so that the first storage cavity 20 and the second storage cavity 30 change with the extension direction of the atomizing air channel 11. For example, the atomizing air channel 11 is set as a straight atomizing air channel 11. When the atomizing component is in a vertical state, the atomizing air channel 11 is also set vertically. At this time, the first storage cavity 20 and the second storage cavity 30 are in an up-down position relationship (i.e., distributed along the direction of gravity). This arrangement allows the second aerosol matrix in the second storage cavity 30 to enter the first storage cavity 20 more easily with the help of gravity during the use of the atomizing component, resulting in a better flavor transition experience. Of course, the arrangement of the first storage cavity 20 and the second storage cavity 30 is not limited in this application. For example, the second storage cavity 30, the first storage cavity 20 and the atomizing air channel 11 can be arranged sequentially from one side to the other, or the second storage cavity 30, the first storage cavity 20 and the atomizing air channel 11 can be arranged sequentially from the outside to the inside, etc.
[0047] It should be noted that this application does not limit the extension shape of the atomizing airway 11; it can extend in a straight line, or it can extend in a curved or bent manner. It should also be noted that this application does not limit the cross-sectional shape of the first storage cavity 20, the second storage cavity 30, and the first liquid guiding element 40; their cross-sectional shapes can all be designed according to actual needs.
[0048] The flavor of the atomizing component will be further optimized below; please refer to [the relevant documentation / reference]. Figure 2 In one embodiment, the storage device 10 further includes: a plurality of third storage cavities 60, the third storage cavities 60 being used to store the third aerosol matrix; the third storage cavities 60, the second storage cavities 30 and the first storage cavities 20 are arranged sequentially along the extension direction of the atomizing air passage 11;
[0049] The second liquid guiding element 70 is connected between the third storage cavity 60 and the adjacent second storage cavity 30 or another third storage cavity 60 to achieve fluid communication.
[0050] In this embodiment, a third storage cavity 60 is added. Similarly, as described above, the third aerosol matrix in the third storage cavity 60 can enter the second storage cavity 30 through the second liquid guide 70. The third aerosol matrix stored in the third storage cavity 60 can be an aerosol matrix with a flavor different from both the first and second aerosol matrices, or it can be an aerosol matrix with the same flavor as the first and / or second aerosol matrices but a different concentration, or it can be an aerosol matrix that is the same as the first aerosol matrix but different from the second aerosol matrix. That is, the aerosol matrices stored in the two adjacent storage cavities are different. The flow direction of the aerosol matrix is also referenced... Figure 2The direction under the identifier B in the diagram is described in the previous embodiments, and will not be repeated here.
[0051] In this embodiment, by providing the second liquid guiding element 70, an aerosol matrix can be formed within the storage unit 10 in a direction that moves from the third storage cavity 60, the second liquid guiding element 70, the second storage cavity 30, the first liquid guiding element 40, the first storage cavity 20 to the atomizing core 50 (please refer to...). Figure 2 (See arrow B and the Y direction in the diagram). This allows the third aerosol matrix in the third storage cavity 60 to move along the moving path B as it enters the second storage cavity 30 from the second liquid guide 70, ultimately mixing with the second aerosol matrix in the second storage cavity 30. It is understood that the mixing of the third aerosol matrix and the second aerosol matrix can occur at any location within the second storage cavity 30.
[0052] Similarly, before the atomizing component is used, since the second aerosol matrix contained in the second storage chamber 30 is in a full state, the third aerosol matrix will basically not enter the second storage chamber 30, or a small amount will enter the second storage chamber 30 near the second liquid guide 70, and the second storage chamber 30 will not become a mixture of the third and second aerosol matrices. However, when the atomizing component is working, since the second aerosol matrix is actually mixed with the remaining first aerosol matrix after consumption, and similarly, the third aerosol matrix is actually mixed with the remaining second aerosol matrix after consumption, some unmixed second and third aerosol matrices can be retained, allowing the user to experience the flavor of the unmixed third aerosol matrix when inhaling.
[0053] During the operation of the atomizing component, please refer to the description of the movement process of the first and second aerosol matrices in the embodiments above. Similarly, when the user inhales, they can first experience the flavor of the first aerosol matrix. As the first aerosol matrix is consumed, the user then experiences the mixed flavor of the first and second aerosol matrices. As the mixed aerosol matrix of the first and second aerosol matrices is atomized and consumed, the user then experiences the flavor of the second aerosol matrix. As atomization continues, the user then experiences the mixed flavor of the mixed matrix of the second and third aerosol matrices. As the mixed flavor of the second and third aerosol matrices is consumed, the user finally experiences the flavor of the third aerosol matrix. There is also a possibility that the second and first aerosol matrices may still remain and mix with the third aerosol matrix, allowing the user to ultimately experience the mixed flavor of the first, second, and third aerosol matrices.
[0054] Similarly, in this embodiment, in order to ensure that the user can experience as many flavors as possible, the movement path B can be controlled according to the setting position and arrangement of the first liquid guide 40 and the second liquid guide 70 to extend it as much as possible. The control and setting of the movement path will also be explained through some embodiments below.
[0055] It should be noted that this application provides a plurality of third storage cavities 60, that is, this application does not limit the number of third storage cavities 60. According to the description of the embodiments provided in this application, it is also possible to further provide more third storage cavities 60 when the above-mentioned first storage cavity 20, first storage cavity 20 and third storage cavity 60 are provided, and adjacent storage cavities are connected by liquid guiding components to obtain a richer transitional flavor experience. This configuration is still within the protection scope of this application.
[0056] In one embodiment of this application, the first liquid guiding component 40 and the second liquid guiding component 70 may not be provided. That is, the first storage cavity 20, the second storage cavity 30 and the third storage cavity 60 are arranged in close proximity in sequence, and the first liquid storage component 23 in the first storage cavity 20, the second liquid storage component 33 in the second storage cavity 30 and the third liquid storage component 62 in the third storage cavity 60 are directly attached to each other. Specifically, one side is completely attached or one side is partially attached. This arrangement will also have a capillary effect to guide the third aerosol matrix to enter the second storage cavity 30. Similarly, the second aerosol matrix can also enter the first storage cavity 20 to obtain a taste transition experience. However, under this arrangement, it is difficult to control the corresponding movement path and mixing speed.
[0057] Before explaining the movement path B, it is necessary to first explain the setup of the atomizing air passage 11 and the first storage chamber 20 connected to the atomizing core 50. Please refer to... Figure 1 , Figure 2 , Figure 7 and Figure 8 In one embodiment, the atomizing air passage 11 extends through the first storage cavity 20.
[0058] In this embodiment, the atomizing air channel 11 is disposed through the first storage cavity 20, that is, the first storage cavity 20 is disposed around the atomizing air channel 11, and the atomizing core 50 is disposed in the atomizing air channel 11. At this time, the atomizing core 50 can maintain a more efficient heating effect and quickly atomize the first aerosol matrix in the first storage cavity 20 into aerogel. In addition, this arrangement can also reduce the volume of the atomizing component in terms of structure.
[0059] In one embodiment, the atomizing airway 11 is disposed through the middle of the first storage cavity 20. In this embodiment, only the arrangement of the atomizing airway 11 and the first storage cavity 20 is improved because the atomizing airway 11 is only connected to the first storage cavity 20 through the atomizing core 50, and the arrangement of the second storage cavity 30 or even the third storage cavity 60 does not affect its atomization effect. Therefore, no specific requirements are made for it in this embodiment. However, it is understandable that in order to further reduce the size of the atomizing component in terms of structure, the atomizing airway 11 can also be disposed through the second storage cavity 30, the third storage cavity 60, or even more storage cavities.
[0060] Please refer to Figure 3 In another embodiment, the atomizing airway 11 is disposed on one side of the first storage cavity 20. In this embodiment, the relationship between the atomizing airway 11 and the first storage cavity 20 is also limited, wherein the atomizing airway 11 is disposed on only one side of the first storage cavity 20, which can also achieve the desired atomization effect.
[0061] The following describes the configuration of the first liquid guiding element 40: Please refer to... Figure 1 In one embodiment, the first liquid guiding element 40 is disposed between the first storage cavity 20 and the second storage cavity 30, and the vertical distance between the first liquid guiding element 40 and the atomizing air channel 11 is greater than or equal to half of the vertical distance between the outer wall of the first storage cavity 20 and the atomizing air channel 11.
[0062] In this embodiment, to maximize the movement path, the vertical distance between the first liquid guide 40 and the atomizing airway 11, as well as the vertical distance between the outer wall of the first storage cavity 20 and the atomizing airway 11, are optimized. This ensures the vertical distance between the first liquid guide 40 and the atomizing airway 11 is greater than or equal to half the vertical distance between the outer wall of the first storage cavity 20 and the atomizing airway 11. This guarantees that the second aerosol matrix can enter the first storage cavity 20 at a position far from the atomizing core 50, extending the time it takes for the mixed matrix of the second and first aerosol matrices to reach the atomizing core 50. This allows the user to experience a richer and more pronounced gradual flavor transition during use. Conversely, if the first liquid guide 40 is positioned close to the atomizing airway 11, the movement path B will be shorter, causing the second aerosol matrix to mix with the first aerosol matrix too quickly, affecting the user's experience of the gradual flavor transition.
[0063] Please refer to Figure 4 , Figure 5 and Figure 6The configuration of the first liquid guiding element 40 is further optimized. In one embodiment, the atomizing assembly includes at least two first liquid guiding elements 40, and the plurality of first liquid guiding elements 40 are symmetrically arranged relative to the atomizing air channel 11; or, the atomizing assembly includes at least two first liquid guiding elements 40, and the plurality of first liquid guiding elements 40 are arranged around the atomizing air channel 11; or, the first liquid guiding element 40 is an annular structure sleeved on the outside of the atomizing air channel 11.
[0064] In this embodiment, please refer to Figure 4 First, the number of first liquid guiding elements 40 is not limited. Therefore, when at least two first liquid guiding elements 40 are provided (including single and double numbers of first liquid guiding elements 40), the multiple first liquid guiding elements 40 are symmetrically arranged relative to the atomizing airway 11. In this case, since the multiple first liquid guiding elements 40 are symmetrically arranged relative to the atomizing airway 11, the multiple movement paths B formed are generally more uniform, making the mixing area of the second aerosol matrix with the first aerosol matrix in the first storage cavity 20 more uniform. This can reduce the residue of the first aerosol matrix at the corners of the first storage cavity 20 in the later stages of atomization. Under this setting, by controlling the number and position of the first liquid guiding elements 40, the number and path of the aforementioned movement paths B can be controlled, thereby controlling the speed at which the second aerosol matrix in the second storage cavity 30 enters the first storage cavity 20, and controlling the mixing speed of the second aerosol matrix in the second storage cavity 30 with the first aerosol matrix in the first storage cavity 20, ultimately controlling the flavor gradient effect of the aerogel after atomization by the atomizing core 50. For example, the more first liquid guides 40 are set, the faster the mixed flavor effect will be experienced.
[0065] In this embodiment, please refer to Figure 5 Alternatively, multiple first liquid guiding elements 40 can be arranged around the atomizing air channel 11. In this case, the arrangement of the first liquid guiding elements 40 is not limited to symmetry. Therefore, in actual use, the number and position of the first liquid guiding elements 40 can be selectively set according to the heating area of the atomizing core 50 and the connection position between the atomizing core 50 and the first storage cavity 20. For example, the number of first liquid guiding elements 40 arranged on the side of the first storage cavity 20 closer to the connection position of the atomizing core 50 is greater than the number of first liquid guiding elements 40 arranged at other positions in the first storage cavity 20. This results in faster mixing speed and more uniform mixing area at the position closer to the connection position of the atomizing core 50, thereby reducing the residue of the first aerosol matrix at the corners of the first storage cavity 20 in the later stages of atomization, and thus precisely controlling the flavor effect.
[0066] In this embodiment, please refer to Figure 6Furthermore, the shape of the first liquid guiding element 40 can be improved. For example, it can be configured as a ring-shaped structure surrounding the atomizing air channel 11. In this case, the first liquid guiding element 40, which surrounds the atomizing air channel 11, increases its area and widens the movement path. This also makes the mixing area between the second aerosol matrix and the first aerosol matrix in the first storage cavity 20 more uniform, reducing the residue of the first aerosol matrix at the corners of the first storage cavity 20 during the later stages of atomization. It is clear that although this application only describes the arrangement and design of the first liquid guiding element 40, the arrangement and design of the second liquid guiding element 70 can also refer to the first liquid guiding element 40. Additional third liquid guiding elements, fourth liquid guiding elements, etc., can also be arranged and designed with reference to the first liquid guiding element 40, which will not be elaborated further here.
[0067] Next, the arrangement of the first liquid guiding component 40 and the second liquid guiding component 70 will be explained. Please refer to [link / reference needed]. Figure 2 , Figure 3 and Figure 7 In one embodiment, in the extending direction of the atomizing channel 11, the projection of the second liquid guide 70 onto a plane perpendicular to the extending direction of the atomizing channel 11 does not coincide with that of its adjacent first liquid guide 40 or another second liquid guide 70.
[0068] In this embodiment, the purpose of this setting is to extend the aforementioned movement path B as much as possible. For example, please refer to an example. Figure 2 and Figure 3 The first liquid guide 40 and the second liquid guide 70 are configured such that their projections on a plane perpendicular to the extension direction of the atomizing air channel 11 do not coincide. They can be staggered, with the projections of the first liquid guide 40 and the second liquid guide 70 on a plane perpendicular to the extension direction of the atomizing air channel 11 gradually moving away from the atomizing air channel 11 to form an inclined path. In this case, compared to a path parallel to the extension direction of the atomizing air channel 11, the inclined path can prolong the path and time of aerosol matrix movement, thereby delaying the mixing of the aerosol matrix.
[0069] For another example, please refer to Figure 7When there are three or more liquid guiding components, the staggered arrangement of the liquid guiding components can be such that adjacent liquid guiding components are arranged sequentially, with one located on the side closer to the atomizing air channel 11 and the other on the side farther away from the atomizing air channel 11, to form an approximately "S"-shaped path. Compared to a path parallel to the extension direction of the atomizing air channel 11, the "S"-shaped path can also prolong the path and time of aerosol matrix movement, thereby delaying the mixing of the aerosol matrix. It is understood that in other embodiments of this application, the number of storage cavities is not limited. When more storage cavities are provided, for example, when a fourth storage cavity is provided, a third liquid guiding component can also be provided to connect the third storage cavity and the fourth storage cavity. Based on this arrangement and connection, the arrangement of the first liquid guiding component 40, the second liquid guiding component 70, and the third liquid guiding component can also refer to the above arrangement and design. The same applies to the arrangement of more liquid guiding components to ensure a complete movement path, which will not be elaborated further here.
[0070] In one embodiment, please refer to Figure 1 The first storage chamber 20 is provided with a liquid guiding hole 21 communicating with the atomizing core 50, and the first storage chamber 20 is also provided with a first liquid guiding connection hole 22 communicating with the first liquid guiding component 40. The second storage chamber 30 is provided with a second liquid guiding connection hole 31 communicating with the first liquid guiding component 40. At this time, the first liquid guiding component 40 is respectively covered by the first liquid guiding connection hole 22 and the second liquid guiding connection hole 31 on both sides, or the two ends of the first liquid guiding component 40 are respectively located in the first liquid guiding connection hole 22 and the second liquid guiding connection hole 31. As the amount of the first aerosol matrix in the first storage chamber 20 is gradually consumed, the second aerosol matrix in the second storage chamber 30 is replenished to the first storage chamber 20 through the first liquid guiding component 40. By controlling the connection position, the transmission path of the second aerosol matrix can be effectively controlled, thereby achieving a gradual change in flavor.
[0071] In another embodiment, please refer to Figure 2 The second storage cavity 30 is provided with a third liquid guiding connection hole 32 communicating with the second liquid guiding component 70, and the third storage cavity 60 is provided with a fourth liquid guiding connection hole 61 communicating with the second liquid guiding component 70. At this time, the second liquid guiding component 70 is configured to cover the third liquid guiding connection hole 32 and the fourth liquid guiding connection hole 61 on both sides, or the two ends of the second liquid guiding component 70 are respectively located within the third liquid guiding connection hole 32 and the fourth liquid guiding connection hole 61. As the amount of the second aerosol matrix in the second storage cavity 30 is gradually consumed, the third aerosol matrix in the third storage cavity 60 is replenished to the second storage cavity 30 through the second liquid guiding component 70. By controlling the connection position, the transmission path of the third aerosol matrix can be effectively controlled, thereby achieving a gradual flavor change effect.
[0072] In one embodiment, please refer to Figure 2The first storage cavity 20 is provided with a first liquid storage component 23 for storing a first aerosol matrix, the second storage cavity 30 is provided with a second liquid storage component 33 for storing a second aerosol matrix, and the third storage cavity 60 is provided with a third liquid storage component 62 for storing a third aerosol matrix; wherein, the density of the first liquid storage component 23 is greater than the density of the second liquid storage component 33, and the density of the second liquid storage component 33 is greater than the density of the third liquid storage component 62.
[0073] In this embodiment, the density of the first liquid storage component 23 is set to be greater than the density of the second liquid storage component 33, and the density of the second liquid storage component 33 is greater than the density of the third liquid storage component 62. The purpose is to select different densities for matching and adjustment to ensure the smoothness of liquid conduction.
[0074] In one embodiment, the first liquid storage component 23, the second liquid storage component 33, and the third liquid storage component 62 are all liquid storage cotton. In another embodiment, the first storage cavity 20 is provided with the first liquid storage component 23, while the second storage cavity 30 directly stores the liquid aerogel matrix.
[0075] In another embodiment of this application, the storage component 10 of the atomizing component is optimized, and the storage component 10 includes: a first sub-storage component having a first storage cavity 20; a second sub-storage component having a second storage cavity 30, and the second sub-storage component being detachably connected to the first sub-storage component; wherein, a first liquid guiding component 40 is provided on the side of the first sub-storage component or the second sub-storage component facing each other.
[0076] In this embodiment, the atomizing core 50 is disposed within the first sub-storage unit and is used to atomize the aerosol matrix located in the first storage chamber 20. This embodiment differs from the previous embodiments in that each storage chamber is independently disposed within a different sub-storage unit, thereby achieving a detachable connection between the different storage chambers. The liquid guiding component can be disposed on one side of any sub-storage unit. In practical applications, the sub-storage units can be replaced according to actual needs. For example, when the aerosol matrix in a certain sub-storage unit is almost exhausted, it can be disassembled using the detachable connection structure and replaced with a new sub-storage unit, improving the user experience.
[0077] Similarly, in this embodiment, the atomizing core is used to atomize the aerosol matrix located in the first storage cavity. It can be the first aerosol matrix described above, a mixture of the first and second aerosol matrices, or the second aerosol matrix that enters the first storage cavity. If more storage components are provided, it can also be the aerosol matrix from other storage components.
[0078] In another embodiment of this application, the storage device 10 further includes: a third sub-storage device having a third storage cavity 60 for storing a third aerosol matrix; the third sub-storage device is detachably connected to an adjacent second sub-storage device or another third sub-storage device; wherein, a second liquid guide 70 is provided on the side of the third sub-storage device or the second sub-storage device facing each other, and the second liquid guide 70 is connected between the third storage cavity 60 and the second storage cavity 30; the third aerosol matrix in the third storage cavity 30 can enter the second storage cavity through the second liquid guide 70.
[0079] In this embodiment, the third sub-storage unit is also detachable, allowing it to be freely replaced during actual use and improving the user experience. It should be noted that this application does not limit the number of the aforementioned independently detachable sub-storage units; the number of sub-storage units can be selected and set according to actual needs.
[0080] The “liquid” described in this application is an atomizable aerosol matrix, which in one embodiment can be described as e-liquid.
[0081] Please continue to refer to this. Figure 8 and Figure 9 One embodiment of this application provides an atomizing device 100, which includes an atomizing component 200 and a battery component 300. The atomizing component 200 is the atomizing component of any of the above embodiments. The atomizing component 200 is connected to the battery component 300, which provides power to the atomizing component 200 and controls the operation of the atomizing component 200.
[0082] In this embodiment, the battery assembly 300 includes a battery 301 and a corresponding circuit board 302. The circuit board 302 is connected to both the battery 301 and the atomizing assembly 200 to control the operation of the atomizing assembly 200. In this embodiment, the atomizing assembly 200 is provided with a mouthpiece 201, which communicates with the atomizing air passage 11.
[0083] In this embodiment, the atomizing component described in the previous embodiment features a vertically segmented storage section, allowing the aerosol matrix to move along a set path, gradually changing from one flavor to another. This provides users with a rich and engaging vaping experience, addressing the issue of limited flavor variety in existing atomizing components. Furthermore, the atomizing component in this embodiment can spontaneously form a movement path, achieving natural flavor transitions without manual operation.
[0084] The above description is merely an embodiment of this application and does not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.
Claims
1. An atomizing component, characterized in that, The atomizing component includes: The storage device has a first storage cavity and a second storage cavity arranged adjacent to each other. The first storage cavity is used to store a first aerosol matrix, and the second storage cavity is used to store a second aerosol matrix. The first aerosol matrix is different from the second aerosol matrix. A first liquid guiding element is connected to the first storage cavity and the second storage cavity; An atomizing core is disposed in the first storage cavity and is used to atomize the aerosol matrix in the first storage cavity; The second aerosol matrix in the second storage cavity can enter the first storage cavity through the first liquid guide and mix with at least a portion of the first aerosol matrix in the first storage cavity to form a mixed aerosol matrix that is different from the first aerosol matrix and the second aerosol matrix.
2. The atomizing component according to claim 1, characterized in that, The storage device is also provided with an atomizing air channel, and at least a portion of the atomizing air channel is disposed within the first storage cavity; The atomizing core is disposed in the atomizing air passage, and the first storage cavity and the second storage cavity are arranged along the extension direction of the atomizing air passage.
3. The atomizing component according to claim 2, characterized in that, The storage device also includes: A plurality of third storage cavities are provided for storing a third aerosol matrix; the third storage cavities, the second storage cavities, and the first storage cavities are arranged sequentially along the extension direction of the atomizing air channel; The second liquid guide is connected between the third storage cavity and the adjacent second storage cavity or another third storage cavity to achieve fluid communication.
4. The atomizing component according to claim 2 or 3, characterized in that, The atomizing air channel extends through the first storage cavity.
5. The atomizing component according to claim 2, characterized in that, The first liquid guiding element is disposed between the first storage cavity and the second storage cavity, and the vertical distance between the first liquid guiding element and the atomizing air channel is greater than or equal to half the vertical distance between the outer wall of the first storage cavity and the atomizing air channel.
6. The atomizing component according to claim 4, characterized in that, The atomizing component includes at least two first liquid guiding elements, and the plurality of first liquid guiding elements are symmetrically arranged relative to the atomizing air passage; Alternatively, the atomizing assembly may include at least two of the first liquid guiding elements, and a plurality of the first liquid guiding elements may be arranged around the atomizing air passage; Alternatively, the first liquid guiding element may be an annular structure sleeved on the outside of the atomizing air passage.
7. The atomizing component according to claim 3, characterized in that, In the direction of extension of the atomizing air passage, the projection of the second liquid guide member onto a plane perpendicular to the direction of extension of the atomizing air passage does not coincide with that of the adjacent first liquid guide member or another second liquid guide member.
8. The atomizing component according to claim 3, characterized in that, The first storage cavity is provided with a first liquid storage device for storing the first aerosol matrix, the second storage cavity is provided with a second liquid storage device for storing the second aerosol matrix, and the third storage cavity is provided with a third liquid storage device for storing the third aerosol matrix. The density of the first liquid storage component is greater than that of the second liquid storage component, and the density of the second liquid storage component is greater than that of the third liquid storage component.
9. The atomizing component according to claim 1, characterized in that, The storage device includes: A first sub-storage device, the first sub-storage device having the first storage cavity; The second sub-storage unit has the second storage cavity and is detachably connected to the first sub-storage unit. The first liquid guiding element is provided on the side facing the first sub-storage unit or the second sub-storage unit.
10. An atomizing device, characterized in that, The atomizing device includes an atomizing component and a battery component, wherein the atomizing component is the atomizing component described in any one of claims 1-9; the atomizing component is connected to the battery component, and the battery component is used to provide power to the atomizing component and control the operation of the atomizing component.