Atomizer and atomizing device
By setting up multiple isolated oil storage chambers and connected atomized air ducts in the atomizer, the mixing of atomized substrates with different flavors is solved, and the problem of aerosols in the atomizer is single taste and improved the user experience.
Patent Information
- Application Number
- CN202422264978.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2034-09-14
AI Technical Summary
The existing atomizer can only store one atomizing matrix and cannot atomize aerosols of different flavors, resulting in a single taste of the aerosol and poor user experience.
A atomizer is designed, including at least two oil chambers, each of which is provided with at least two oil storage chambers isolated from each other, an atomized airway is provided in the oil storage chamber, and the atomized airways of adjacent oil chambers are connected, and the generated aerosol is output after mixing, and a mixed airway is provided in the suction nozzle to achieve the mixing of aerosols.
By storing atomized substrates of different flavors and mixing them in the atomized airway, a rich aerosol taste is generated to enhance the user experience.
Smart Images

Figure CN223195527U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of electronic atomization equipment, and in particular to an atomizer and an atomization device. Background Art
[0002] An atomizer includes an atomizing assembly that stores an atomizing matrix, which generates an aerosol upon heating. In related art, atomizers typically store only one atomizing matrix, making it impossible to produce aerosols with different flavors. This results in a monotonous aerosol taste, failing to meet the diverse needs of users and resulting in a poor user experience. Utility Model Content
[0003] The present application provides an atomizer and an atomizing device, which can solve the technical problems of aerosol having a single taste and poor user experience.
[0004] In order to solve the above technical problems, the present application provides a nebulizer on the one hand, which includes at least two oil tanks, each oil tank is provided with at least two oil storage chambers isolated from each other, the oil storage chamber is used to store the atomized matrix, and each oil storage chamber is provided with an atomizing airway. The oil tanks are arranged along a first direction. In any two oil tanks arranged adjacent to each other in the first direction, at least one atomizing airway located in one of the oil tanks is connected to at least one atomizing airway located in the other oil tank; an atomizing core is installed in each atomizing airway, and the atomizing core can heat the atomizing matrix to generate an aerosol, and the aerosols generated in at least two atomizing airways are mixed and output.
[0005] In one embodiment, at least two oil storage chambers are configured to store atomized substrates of different flavors, and aerosols generated by heating at least two atomized substrates of different flavors are mixed and output.
[0006] In one embodiment, the nebulizer includes a nozzle, which includes a nozzle shell, and the nozzle shell is detachably connected to the output end of the oil tank; the nozzle shell is provided with an air outlet and a mixing air channel, and the mixing air channel connects the air outlet with at least two atomizing air channels so that the aerosols generated in the at least two atomizing air channels are mixed and output.
[0007] In one embodiment, at least two atomizing air channels connected along a first direction are connected to a mixing air channel, so that aerosols generated in at least two atomizing air channels are output through the mixing air channel; and / or, at least two atomizing air channels that are not connected along the first direction are respectively connected to the mixing air channel, so that aerosols generated in at least two atomizing air channels are mixed in the mixing air channel and then output.
[0008] In one embodiment, the nozzle includes a partition, which is arranged in the nozzle shell near one end of the oil tank; the partition divides at least part of the mixing air channel into at least two sub-air channels isolated from each other, and each sub-air channel is connected to an atomization air channel to guide the aerosols generated in different atomization air channels to be mixed and output at a preset mixing position of the mixing air channel.
[0009] In one embodiment, at least a portion of the partition is movably connected to the nozzle housing, and at least a portion of the partition is movable along a first direction to change a preset mixing position of the mixing air passage.
[0010] In one embodiment, the oil tank includes a first oil tank and a second oil tank, and the second oil tank is detachably connected to the first oil tank.
[0011] In one embodiment, at least two connecting grooves are provided at one end of the first oil tank adjacent to the second oil tank, and each connecting groove is respectively connected to an atomizing air duct in the first oil tank; at least two connecting pipes are provided at one end of the second oil tank adjacent to the first oil tank, and each connecting pipe is respectively connected to an atomizing air duct in the second oil tank; the connecting pipes are inserted into the connecting grooves so that the second oil tank can be detachably connected to the first oil tank and connected to two atomizing air ducts adjacent in the first direction.
[0012] In one embodiment, at least one of the oil tanks includes at least two independent liquid storage tank bodies, each liquid storage tank body is provided with an oil storage cavity, the liquid storage tank bodies are arranged along the second direction and assembled and connected to form an oil tank; and / or, at least one of the oil tanks includes an oil tank shell and an oil tank partition, the oil tank partition is connected to the inner wall of the oil tank shell, and divides the inner space of the oil tank shell into at least two oil storage cavities.
[0013] In one embodiment, the number of oil storage chambers provided in at least two adjacent oil bins is the same, and the atomizing air passages in the two oil bins are correspondingly connected.
[0014] In one embodiment, at least two adjacent oil bins are rotatably connected so that at least one atomizing air passage in one of the oil bins can selectively communicate with at least one atomizing air passage in the other oil bin.
[0015] On the other hand, the present application provides an atomization device, which includes the atomizer as described above and an atomization host, and the atomizer is electrically connected to the atomization host.
[0016] The atomizer provided in the present application includes at least two oil tanks, each of which is provided with at least two oil storage chambers isolated from each other, so that the oil storage chambers are not connected to each other. The oil tank can store at least two atomization matrices of different flavors, and the various atomization matrices will not mix with each other; the oil tanks are arranged along a first direction, and in any two oil tanks adjacent to each other in the first direction, at least one atomization airway located in one of the oil tanks is connected to at least one atomization airway located in the other oil tank, and the aerosols generated in the at least two atomization airways are mixed and output, so that the user can experience the taste of the mixed aerosols generated by atomization matrices of different flavors. The taste of the aerosol is richer, which can improve the user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present application, 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 application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0018] Figure 1 This is a structural diagram of an embodiment of the atomization device provided by the present application;
[0019] Figure 2 This is a schematic diagram of the assembly structure of an embodiment of the atomizer provided by the present application;
[0020] Figure 3 This is a schematic diagram of the exploded structure of an embodiment of the atomizer provided by the present application;
[0021] Figure 4 1 is a schematic cross-sectional structural diagram of an embodiment of the atomizer provided by the present application along a viewing angle;
[0022] Figure 5 is a schematic cross-sectional structural diagram of an embodiment of the atomizer provided by the present application taken from another viewing angle;
[0023] Figure 6 is a schematic cross-sectional structural diagram of an embodiment of the atomizer provided by the present application along another viewing angle;
[0024] Figure 7 1 is a schematic cross-sectional structural diagram of an embodiment of a nozzle provided by the present application along a viewing angle;
[0025] Figure 8 is a schematic cross-sectional structural diagram of another embodiment of the nozzle provided by the present application along a viewing angle;
[0026] Figure 9 This is a schematic cross-sectional structure diagram of another embodiment of the suction nozzle provided in the present application along a viewing angle. DETAILED DESCRIPTION
[0027] The present application will be further described in detail below in conjunction with the accompanying drawings and examples. It is particularly noted that the following examples are only intended to illustrate the present application and are not intended to limit the scope of the present application. Similarly, the following examples are only some examples of the present application and not all examples. All other examples obtained by those of ordinary skill in the art without creative work are intended to fall within the scope of protection of this application.
[0028] In the description of this application, 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 this application are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, a feature defined as "first", "second", and "third" may explicitly or implicitly include at least one of such features. All directional indications in the embodiments of this 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 this 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.
[0029] 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 application. The appearance of this phrase in various places in the specification does not necessarily refer to the same embodiment, nor does it constitute an independent 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.
[0030] This application provides an atomizing device. Figure 1The atomizing device 100 may include a nebulizer 10 and a nebulizing main unit 20. The nebulizer 10 stores a nebulized matrix, and the nebulizer 10 can atomize the nebulized matrix into an aerosol. The nebulizer 10 is electrically connected to the nebulizing main unit 20, and the nebulizing main unit 20 can control the working state of the nebulizer 10. For example, the nebulizing main unit 20 can control the nebulizer 10 to heat the nebulized matrix to generate an aerosol or stop heating according to the user's inhalation action. The nebulizer 10 and the nebulizing main unit 20 can be fixedly connected or detachably connected. When the nebulizer 10 and the nebulizing main unit 20 are detachably connected, if the remaining amount of nebulized matrix in the nebulizer 10 is less than a preset value, the user can easily separate the nebulizer 10 from the nebulizing main unit 20, and the atomizing device 100 can continue to be used after replacing the nebulizer 10, so that the nebulizing main unit 20 can be used multiple times, thereby reducing the user's usage cost.
[0031] See also Figure 2-Figure 6 , the atomizer 10 has a first direction and a second direction. The first direction may be the length or height direction of the atomizer 10. The second direction may be perpendicular to the first direction. Considering the limitations of the processing technology, the angle between the second direction and the first direction may have a tolerance of ±5°. For example, the first direction may be Figure 4 The Z-axis direction in the second direction can be Figure 4 The X-axis direction in the atomizer 10. The atomizer 10 includes an atomizing assembly 12, and the atomizing assembly 12 includes at least two oil tanks 126. The number of oil tanks 126 can be two, three or more, which is not specifically limited here. Each oil tank 126 is provided with at least two oil storage chambers 1261 isolated from each other, and the oil storage chamber 1261 is used to store the atomizing matrix. The number of oil storage chambers 1261 can be two, three or more. When the number of oil storage chambers 1261 is greater than three, the oil storage chambers 1261 can be arranged side by side along the second direction, or they can be arranged in a ring shape in a plane perpendicular to the first direction. The oil storage chambers 1261 are isolated from each other so that the oil storage chambers 1261 are not connected to each other. The oil tank 126 can store at least two atomizing matrices of different flavors, and the various atomizing matrices will not mix.
[0032] See also Figure 4, an atomizing air channel 1262 is provided in each oil storage chamber 1261, and the aerosol can flow along the atomizing air channel 1262. The oil tanks 126 are arranged along the first direction. In any two oil tanks 126 arranged adjacent to each other in the first direction, at least one atomizing air channel 1262 located in one of the oil tanks 126 is connected to at least one atomizing air channel 1262 located in the other oil tank 126. For example, two atomizing air channels 1262 are provided in each of the two adjacent oil tanks 126, and one atomizing air channel 1262 in one of the oil tanks 126 is connected to one atomizing air channel 1262 in the other oil tank 126; or, one atomizing air channel 1262 in one of the oil tanks 126 is connected to two atomizing air channels 1262 in the other oil tank 126; or, two atomizing air channels 1262 in one of the oil tanks 126 are connected to two atomizing air channels 1262 in the other oil tank 126, respectively. Each atomizing air channel 1262 is equipped with an atomizing core 123, which heats the atomizing matrix to generate aerosol. The aerosols generated in at least two atomizing air channels 1262 are mixed and output. At least two atomizing air channels 1262 located in two adjacent oil reservoirs 126 in the first direction are connected, and the aerosols generated in at least two atomizing air channels 1262 are mixed and output. This allows users to experience the taste of a mixture of aerosols generated from atomizing matrixes of different flavors, resulting in a richer taste and an enhanced user experience.
[0033] The atomizer matrix in the oil storage chamber 1261 can be pre-filled before the atomizer 10 arrives at the user's location, or the user can fill it themselves after purchasing the atomizer 10. In one embodiment, at least two oil storage chambers 1261 are configured to store atomizer matrices of different flavors. The aerosols generated by heating at least two atomizer matrices of different flavors are mixed and then output. This configuration allows for pre-filling of atomizer matrices of corresponding flavors based on the taste preferences of users in different regions. Users can experience the taste of the mixed aerosols generated by atomizer matrices of different flavors, thereby meeting the personalized needs of users in different regions. For example, if users in a certain area expect the aerosol to have a sweeter taste, one of the oil storage cavities 1261 can be set as a flavor bin, such as strawberry flavor or kiwi flavor, and the other oil storage cavity 1261 can be set as a sweetener adjustable bin to increase the sweetness; for another example, if users in a certain area expect the aerosol to have a cooler taste, one of the oil storage cavities 1261 can be set as a flavor bin, such as strawberry flavor or kiwi flavor, and the other oil storage cavity 1261 can be set as an ice adjustable bin to increase the coolness.
[0034] See also Figure 2-Figure 4 、 Figure 7The atomizer 10 includes a nozzle 11, which can be used to perform a suction action. The nozzle 11 includes a nozzle shell 111, and the nozzle shell 111 is detachably connected to the output end of the oil tank 126. The nozzle shell 111 is detachably connected to the oil tank 126, which can facilitate the disassembly or installation of the nozzle 11, so that the user can replace different nozzles 11 as needed to meet personalized needs. The nozzle shell 111 is provided with an air outlet 115 and a mixing air channel 113. The mixing air channel 113 connects the air outlet 115 with at least two atomizing air channels 1262, so that the aerosols generated in the at least two atomizing air channels 1262 are mixed and output, which can enrich the taste of the aerosol and thus enhance the user experience.
[0035] The aerosols generated in different atomizing airways 1262 can be mixed in a variety of ways. Exemplarily, the atomizing cores 123 in each atomizing airway 1262 can be selectively combined to work so that the aerosols generated in different atomizing airways 1262 are mixed in different ways. In some embodiments where aerosol mixing is achieved, the aerosols generated in different atomizing airways 1262 are mixed in the atomizing airway 1262. At least two atomizing airways 1262 connected along a first direction are connected to the mixing airway 113 so that the aerosols generated in at least two atomizing airways 1262 are output through the mixing airway 113. That is, the atomizing cores 123 in at least two atomizing airways 1262 connected along the first direction work in combination to heat the atomized matrix. At least two atomizing air channels 1262 connected along the first direction are arranged to communicate with the mixing air channel 113, so that the aerosols are mixed in the atomizing air channel 1262 before entering the mixing air channel 113, the aerosols are mixed more fully, and the aerosols of different flavors are more evenly integrated.
[0036] like Figure 4As shown, the oil storage chamber 1261 of each oil tank 126 is arranged along the second direction. Arranging the oil storage chamber 1261 of each oil tank 126 along the second direction, while arranging the oil tanks 126 along the first direction, allows multiple oil storage chambers 1261 to be arranged in the second direction and the first direction, respectively. This helps control the size of the atomizer 10 in the second direction and the first direction, so that the size of the atomizer 10 in a certain direction is not too large. The size of the atomizer 10 in the second direction is coordinated with the size in the first direction, which can enhance the appearance of the atomizer 10. In some embodiments of aerosol mixing, aerosols generated in different atomizing airways 1262 are mixed outside the atomizing airway 1262. At least two atomizing airways 1262 that are not connected along the first direction are respectively connected to the mixing airway 113, so that the aerosols generated in at least two atomizing airways 1262 are mixed in the mixing airway 113 and then output. That is, the atomizer cores 123 in at least two atomizer air channels 1262 spaced apart along the second direction work in combination to heat the atomized substrate. For example, the atomizer core 123 in one atomizer air channel 1262 works in combination with the atomizer core 123 in another atomizer air channel 1262 spaced apart from each other. In another example, the atomizer core 123 in one atomizer air channel 1262 works in combination with the atomizer cores 123 in two other atomizer air channels 1262 spaced apart from each other and not connected along the first direction. At least two atomizing air channels 1262 that are not connected along the first direction are arranged to be connected to the mixing air channel 113 respectively. Since the atomizing air channels 1262 spaced apart in the second direction are not directly connected, the aerosols generated in the spaced apart atomizing air channels 1262 will not be mixed in the atomizing air channels 1262. The aerosols can be mixed after flowing through the atomizing air channels 1262 and entering the mixing air channel 113, which delays the mixing time of the aerosols and prevents the aerosols from being mixed too early to cause the taste to decay, thereby improving the taste of the aerosols.
[0037] In some embodiments where aerosol mixing is achieved, a portion of the aerosol generated within the atomizing airway 1262 is mixed within the atomizing airway 1262, while another portion of the aerosol generated within the atomizing airway 1262 is mixed outside the atomizing airway 1262. Aerosols generated within at least two atomizing airway 1262 connected along a first direction and aerosol generated within at least one atomizing airway 1262 not connected along the first direction are mixed within the mixing airway 113 and then output. That is, the atomizing cores 123 within at least two atomizing airway 1262 connected along the first direction and the atomizing core 123 within at least one atomizing airway 1262 spaced apart along the second direction work together to heat the atomized substrate. Such a configuration can not only allow a portion of the aerosol generated in the atomizing airway 1262 connected along the first direction to be mixed in the atomizing airway 1262, so that the mixing of this portion of the aerosol is more sufficient, and the fusion of this portion of the aerosol with different flavors is more uniform; it can also allow a portion of the aerosol generated in the atomizing airway 1262 arranged at intervals to be mixed after flowing through the atomizing airway 1262, which delays the mixing time of this portion of the aerosol, prevents this portion of the aerosol from being mixed too early and causing taste attenuation, thereby improving the taste of the aerosol.
[0038] The nozzle 11 can be directly connected to the oil tank 126. For example, the nozzle 11 is connected to one end of the oil tank 126 in an interference fit manner, so that the aerosol from each atomizing air channel 1262 can be output through the mixing air channel 113. Alternatively, the nozzle 11 is indirectly connected to the oil tank 126 through other components. Figure 3 、 Figure 4 As shown, the atomization assembly 12 includes a seal 13, which is arranged between the oil tank 126 and the suction nozzle 11. The seal 13 seals the connection between the suction nozzle 11 and the oil tank 126, which can enhance the air tightness of the connection between the mixing air channel 113 and the atomization air channel 1262.
[0039] See also Figure 3-Figure 4 The atomizer assembly 12 includes a liquid absorbent 14 and a base 15. The liquid absorbent 14 is disposed between the seal 13 and the nozzle 11. The liquid absorbent 14 is a porous medium, for example, cellulose cotton. The liquid absorbent 14 can absorb condensed liquid in the aerosol or un-atomized atomized matrix mixed in the aerosol, thereby improving the taste of the aerosol. The base 15 is connected to one end of the oil tank 126 to facilitate assembly and connection of the atomizer 10 with the atomizer main unit 20 via the base 15.
[0040] In one embodiment, see Figure 8The mouthpiece 11 includes a partition 112, which is disposed within the mouthpiece housing 111 near one end of the oil tank 126. The partition 112 divides at least part of the mixing air channel 113 into at least two mutually isolated sub-air channels 114. Each sub-air channel 114 is connected to an atomizing air channel 1262, so as to guide the aerosols generated in different atomizing air channels 1262 to mix at a preset mixing position in the mixing air channel 113 before output. By providing the partition 112 to divide at least part of the mixing air channel 113 into at least two mutually isolated sub-air channels 114, the aerosols from each atomizing air channel 1262 do not mix when flowing through the sub-air channels 114. The aerosols are mixed only after reaching the end of the mixing air channel 113 away from the partition 112, thereby delaying the mixing time of the aerosols. This can prevent the aerosols from each atomizing air channel 1262 from mixing prematurely and causing taste degradation, thereby improving the taste of the aerosol.
[0041] In one embodiment, the partition 112 is at least partially movably connected to the nozzle shell 111, and the partition 112 is at least partially movable along a first direction to change the preset mixing position of the mixing air channel 113. For example, a portion of the partition 112 is fixedly connected to the nozzle shell 111, and another portion of the partition 112 is slidably connected to the nozzle shell 111. When the two portions of the partition 112 slide relative to each other along the first direction, the length of the sub-air channel 114 can be changed, and the preset mixing position of the mixing air channel 113 can be changed. By providing that the partition 112 is at least partially movably connected to the nozzle shell 111, the length of the sub-air channel 114 is adjustable, that is, the preset mixing position of the mixing air channel 113 is adjustable, which facilitates the user to control the mixing time of the aerosol, thereby meeting personalized needs.
[0042] Optionally, the size of the partition 112 in the first direction is equal to the size of the mixing air passage 113. Figure 9 As shown, in one embodiment, the partition 112 divides the mixing air channel 113 into at least two mutually isolated sub-air channels 114 along a first direction. Each sub-air channel 114 is connected to an atomizing air channel 1262, and the aerosol from each atomizing air channel 1262 is output through the corresponding sub-air channel 114. The partition 112 is provided to divide the mixing air channel 113 into at least two mutually isolated sub-air channels 114 along a first direction. The aerosol from each atomizing air channel 1262 is output through the corresponding sub-air channel 114, so that the aerosol from each atomizing air channel 1262 does not mix when flowing through the sub-air channels 114. The aerosol is mixed after reaching the user's mouth, thereby making the aerosols of different flavors present a layered sense of feeling, which can meet the personalized needs of the user.
[0043] In one embodiment, the atomizer 10 includes at least two suction nozzles 11. The number of suction nozzles 11 can be two, three or more, which is not specifically limited here. The mixed air passages 113 provided on each suction nozzle 11 are different from each other, and any one of the suction nozzles 11 can be selectively connected to one end of the oil tank 126. The atomizer 10 is provided to include at least two suction nozzles 11, and the mixed air passages 113 of each suction nozzle 11 are different from each other, so that the user can select one of the suction nozzles 11 whose mixed air passage 113 meets the personalized needs and connect it to the oil tank 126, thereby adjusting the output mode of the aerosol to meet the personalized needs of the user.
[0044] In one embodiment, the number of oil storage chambers 1261 provided in adjacent oil bins 126 is different, and accordingly, the number of atomizing air passages 1262 provided in adjacent oil bins 126 is also different. For example, there are two oil bins 126, with two atomizing air passages 1262 provided in the oil bin 126 near the suction nozzle 11, and four atomizing air passages 1262 provided in the oil bin 126 away from the suction nozzle 11. Each atomizing air passage 1262 in the oil bin 126 near the suction nozzle 11 can be connected to two corresponding atomizing air passages 1262 in the oil bin 126 away from the suction nozzle 11, thereby allowing the aerosol generated in at least two atomizing air passages 1262 to be mixed and output. Specifically, two of the atomizing air passages 1262 in the oil bin 126 away from the suction nozzle 11 can be bent at the connection point with the atomizing air passage 1262 in the oil bin 126 near the suction nozzle 11 to facilitate communication between the atomizing air passages 1262.
[0045] In one embodiment, the number of oil storage chambers 1261 provided in at least two adjacent oil bins 126 is the same, and the atomizing air passages 1262 in the two oil bins 126 are correspondingly connected, so that the aerosols generated in the at least two atomizing air passages 1262 are mixed and output. For example, two adjacent oil bins 126 are each provided with two atomizing air passages 1262, and the two atomizing air passages 1262 in one oil bin 126 are correspondingly connected to the two atomizing air passages 1262 in the other oil bin 126. Generally speaking, the volumes of two adjacent oil tanks 126 are roughly equal, and the number of atomizing air ducts 1262 set in at least two adjacent oil tanks 126 is the same, so that the opening positions of the atomizing air ducts 1262 in the two oil tanks 126 can be roughly the same. When the atomizing air ducts 1262 are respectively connected, the atomizing air duct 1262 in one oil tank 126 can directly connect to the atomizing air duct 1262 in the other oil tank 126, and the connection between the two atomizing air ducts 1262 will not form a bend, and the flow of aerosol in the atomizing air duct 1262 is smoother.
[0046] Adjacent oil bins 126 can be fixedly connected, so that the communication pattern of the atomizing air passages 1262 within the two oil bins 126 is also relatively fixed. For example, if the oil storage chamber 1261 within one oil bin 126 is configured to have a strawberry flavor, and the oil storage chamber 1261 within the other oil bin 126 is configured to have a sweetener adjustable reservoir, the atomizing air passages 1262 within the two oil storage chambers 1261 can be connected, thereby increasing the sweetness of the aerosol.
[0047] In one embodiment, at least two adjacent oil bins 126 are rotatably connected so that at least one atomizing air channel 1262 located in one of the oil bins 126 can selectively communicate with at least one atomizing air channel 1262 located in another oil bin 126. For example, a rotating shaft can be provided between the two adjacent oil bins 126 to rotatably connect the two. The rotatable connection between at least two adjacent oil bins 126 allows the atomizing air channel 1262 in one of the oil bins 126 to communicate with a different atomizing air channel 1262 in another oil bin 126, thereby forming a combination of aerosols with more flavors, enriching the taste of the aerosols and improving the user experience.
[0048] The oil storage cavity 1261 can be a split structure. In one embodiment, at least one of the oil tanks 126 includes at least two independent liquid storage tank bodies (not shown in the figure), each of which is provided with an oil storage cavity 1261. The liquid storage tank bodies are arranged along the second direction and assembled and connected to form the oil tank 126, thereby forming at least two oil storage cavities 1261 isolated from each other, so that the oil tank can store at least two atomized matrices of different flavors, and the various atomized matrices will not mix. In one embodiment, if Figure 4-Figure 6 As shown, the oil storage chamber 1261 is an integrated structure. At least one of the oil tanks 126 includes an oil tank shell (such as the first shell 1211 or the second shell 1221 described below) and an oil tank partition (such as the first partition 1214 or the second partition 1224 described below). The oil tank partition is connected to the inner wall of the oil tank shell and divides the inner space of the oil tank shell into at least two oil storage chambers 1261. By setting an oil tank partition, the oil tank shell is separated into at least two oil storage chambers 1261, so that the various oil storage chambers of the oil tank 126 form an integrated structure, and the various oil storage chambers 1261 are isolated and adjacent to each other. On the one hand, compared with the split structure, the various oil storage chamber structures can form a whole, and the oil tank has better integrity; on the other hand, the oil tank partition is set as the common cavity wall of the various oil storage chambers 1261 of the oil tank 126, which can not only reduce the material usage and reduce costs, but also make the various oil storage chambers 1261 adjacent to each other, and the arrangement of the oil storage chambers 1261 is more compact, with high space utilization, which is conducive to the miniaturization of the product.
[0049] As mentioned above, the number of oil tanks 126 can be two, three or more. Figure 3 、 Figure 4 As shown, there are two oil tanks 126, which include a first oil tank 121 and a second oil tank 122. The number of oil tanks 126 is set to two, so that the number of oil tanks 126 is moderate, which can simplify the processing technology of the oil tanks 126. The second oil tank 122 and the first oil tank 121 can be integrally processed, that is, the second oil tank 122 and the first oil tank 121 are connected as a single piece, so that the atomizer assembly 12 has better integrity. Or, as Figure 4 As shown, the second oil tank 122 is detachably connected to the first oil tank 121. The detachable connection between the second oil tank 122 and the first oil tank 121 allows for easy detachment of the second oil tank 122 or the first oil tank 121, thereby replacing the oil tank storing atomized substrates of different flavors to adjust the taste of the aerosol and meet the personalized needs of users.
[0050] The adjustment of the aerosol taste is described by taking the first oil tank 121 and the second oil tank 122 as an example, both of which include two oil storage chambers 1261. For example, if the user expects the aerosol to taste sweet, the two oil storage chambers 1261 of the first oil tank 121 can be set as flavor chambers, such as Figure 4 The left middle tank is strawberry flavored, and the right middle tank is kiwi flavored. Accordingly, the two oil storage chambers 1261 of the second oil tank 122 are both configured as sweetener adjustable tanks, and the sweetness is increased by adjusting the heating power of the atomizer core in the second oil tank 122.
[0051] For example, if the user expects the aerosol to have a cooler taste, the two oil storage chambers 1261 of the first oil tank 121 can be set as flavor tanks, such as Figure 4 The left middle tank is strawberry flavored, and the right middle tank is kiwi flavored. Correspondingly, the two oil storage chambers 1261 of the second oil tank 122 are both configured as ice-sense adjustable tanks, and the cool taste is increased by adjusting the heating power of the atomization core in the second oil tank 122.
[0052] For example, if the user expects the aerosol to have a throat hit, the two oil storage chambers 1261 of the first oil tank 121 can be set as flavor tanks, such as Figure 4 The left middle tank is strawberry flavored, and the right middle tank is kiwi flavored. Accordingly, one of the two oil storage chambers 1261 of the second oil tank 122 is set as a nicotine adjustable tank, and the other is set to produce a sour feeling or a flavor tank. The throat hit feeling is increased by adjusting the heating power of the atomizer core in the second oil tank 122.
[0053] The atomized matrix can be stored in the oil storage chamber 1261 in the form of liquid, or can be stored with the aid of a storage medium. For example, the atomizing assembly 12 further includes a liquid storage member 124, such as Figure 4-Figure 6As shown, the liquid storage member 124 is filled in the oil storage chamber 1261 and wrapped around the atomizer core 123. The liquid storage member 124 is a porous medium, such as fiber cotton. The liquid storage member 124 can absorb the atomized matrix, thereby storing the atomized matrix in the oil storage chamber 1261, and the atomized matrix is not prone to leakage. A partial atomization airway 1262 can be formed in the liquid storage member 124, eliminating the need for a separate airway pipe component, such as a fiberglass tube, thereby reducing costs.
[0054] The detachable connection between the second oil tank 122 and the first oil tank 121 can be adhesive or screwed to facilitate the detachment or installation of the second oil tank 122 or the first oil tank 121. Figure 4-Figure 6 As shown, the second oil tank 122 is connected to the first oil tank 121 via a plug-in connection. At least two connecting grooves 1215 are provided at one end of the first oil tank 121 adjacent to the second oil tank 122. Each connecting groove 1215 is connected to an atomizing air passage 1262 in the first oil tank 121. At least two connecting pipes 1225 are provided at one end of the second oil tank 122 adjacent to the first oil tank 121. Each connecting pipe 1225 is connected to an atomizing air passage 1262 in the second oil tank 122. The connecting pipes 1225 are inserted into the connecting grooves 1215, allowing the second oil tank 122 to be removably connected to the first oil tank 121 and connecting two adjacent atomizing air passages 1262 in the first direction. Providing the connecting pipes 1225 inserted into the connecting grooves 1215 not only facilitates the plug-in connection between the second oil tank 122 and the first oil tank 121, but also enhances the airtightness of the connection between two adjacent atomizing air passages 1262.
[0055] like Figure 4-Figure 6As shown, the first oil tank 121 includes a first shell 1211, a first top plate 1212, a first bottom plate 1213, and a first partition 1214. A connecting groove 1215 may be provided on the first bottom plate 1213. The first top plate 1212 and the first bottom plate 1213 are connected to opposite ends of the first shell 1211 along a first direction. The first partition 1214 is housed within the first shell 1211 and is connected to the inner wall of the first shell 1211. The first partition 1214 divides the inner space enclosed by the first shell 1211, the first top plate 1212, and the first bottom plate 1213 into at least two oil storage chambers 1261. The second oil tank 122 includes a second shell 1221, a second top plate 1222, a second bottom plate 1223, and a second partition 1224. A connecting pipe 1225 may be connected to the second top plate 1222. The second top plate 1222 and the second bottom plate 1223 are respectively connected to the opposite ends of the second shell 1221 along the first direction, and the second partition plate 1224 is accommodated in the second shell 1221. The second partition plate 1224 is connected to the inner wall of the second shell 1221, and divides the inner space formed by the second shell 1221, the second top plate 1222 and the second bottom plate 1223 into at least two oil storage chambers 1261. By setting the first partition 1214 and the second partition 1224, the first oil tank 121 and the second oil tank 122 are respectively separated to form at least two oil storage chambers 1261, so that the various oil storage chambers of the first oil tank 121 and the second oil tank 122 respectively form an integrated structure, and the various oil storage chambers 1261 are isolated from each other and adjacent to each other. On the one hand, compared with the split structure, the various oil storage chamber structures can form a whole, and the oil tank has better integrity; on the other hand, the first partition 1214 and the second partition 1224 are respectively arranged as the common cavity walls of the various oil storage chambers 1261 of the first oil tank 121 and the second oil tank 122, which can not only reduce the material usage and reduce costs, but also make the various oil storage chambers 1261 arranged adjacent to each other, and the arrangement of the oil storage chambers 1261 is more compact, with high space utilization, which is conducive to the miniaturization of the product.
[0056] Optionally, the first top plate 1212 and the first bottom plate 1213 can be assembled and connected with the first shell 1211 and the first partition 1214 to facilitate the assembly of components in the first oil tank 121. The first top plate 1212 and the first bottom plate 1213 can be seals made of silicone material to enhance the airtightness of each oil storage cavity 1261 in the first oil tank 121. Similarly, the second top plate 1222 and the second bottom plate 1223 can be assembled and connected with the second shell 1221 and the second partition 1224 to facilitate the assembly of components in the second oil tank 122. The second top plate 1222 and the second bottom plate 1223 can be seals made of silicone material to enhance the airtightness of each oil storage cavity 1261 in the second oil tank 122. Alternatively, one of the first top plate 1212 and the first bottom plate 1213 can be connected to the first shell 1211 and the first partition 1214 as a single piece, while the other can be assembled and connected to the first shell 1211 and the first partition 1214. This can both enhance the integrity of the first oil tank 121 and facilitate the assembly of components in the first oil tank 121. Similarly, one of the second top plate 1222 and the second bottom plate 1223 can be connected to the second shell 1221 and the second partition 1224 as a single piece, while the other can be assembled and connected to the second shell 1221 and the second partition 1224. This can both enhance the integrity of the second oil tank 122 and facilitate the assembly of components in the second oil tank 122.
[0057] like Figure 4 As shown, the first bottom plate 1213 is assembled and connected with the first shell 1211 and the first partition 1214, and the second top plate 1222 is connected with the second shell 1221 and the second partition 1224 as an integral part; or, the first bottom plate 1213 is connected with the first shell 1211 and the first partition 1214 as an integral part, and the second top plate 1222 is assembled and connected with the second shell 1221 and the second partition 1224. One of the first bottom plate 1213 and the second top plate 1222 is assembled and connected with its corresponding oil tank shell and partition plate, and the other is connected with its corresponding oil tank shell and partition plate as an integral part, so that one of the components can be made of a material different from that of the oil tank shell and the partition plate, for example, silicone with relatively low hardness and elasticity can be used, so that the component can produce elastic deformation during assembly, thereby enhancing the airtightness of the connection between the first bottom plate 1213 and the second top plate 1222, that is, the component can also serve as a seal, and there is no need to set up additional seals, which can reduce the amount of materials and reduce costs; and the other component is connected with the oil tank shell and the partition plate as an integral part, which can enhance the integrity of the oil tank, thereby reducing the deformation of the connection between the first bottom plate 1213 and the second top plate 1222, and making the connection between the second oil tank 122 and the first oil tank 121 more reliable.
[0058] See also Figure 3-Figure 6The atomizer core 123 may include a heating element 1231 and a liquid guide 1232. The liquid guide 1232 transfers the atomized substrate to the heating element 1231. The heating element 1231 generates heat when powered, thereby heating the atomized substrate and atomizing it. For example, the heating element 1231 is cylindrical, and the liquid guide 1232 wraps around the outer periphery of the heating element 1231.
[0059] like Figure 3-Figure 6 As shown, the atomizer assembly 12 includes an atomizer tube 125 installed within the second oil reservoir 122 and the first oil reservoir 121. The heating element 1231 and the liquid guide 1232 are housed within the atomizer tube 125, minimizing deformation of the heating element 1231 and the liquid guide 1232 during assembly. When the atomizer tube 125 is provided, a partial atomizing airway 1262 may be formed within the atomizer tube 125 to facilitate installation of the atomizer core 123.
[0060] The atomizer host 20 may include a battery (not shown in the figure), a circuit board (not shown in the figure) and an airflow sensor (not shown in the figure), etc. The battery is used to provide electrical energy for the atomizer device 100 when it is working. The airflow sensor can be installed on the circuit board, which is convenient for modular assembly of components and can improve production efficiency. The airflow sensor is configured to control the electrical connection between the atomizer 10 and the battery according to the user's suction action. Specifically, when the user inhales, the airflow sensor senses the change in airflow, and the airflow sensor controls the atomizer 10 to be connected to the battery, and the atomizer 10 can heat the atomization matrix to generate aerosol; when the user stops inhaling, the airflow sensor does not sense the change in airflow within a preset time, and the airflow sensor controls the atomizer 10 to be disconnected from the battery, and the atomizer 10 stops heating. The specific internal structure of the atomizer host 20 is not repeated here.
[0061] The above descriptions are only some embodiments of the present application and do not limit the scope of protection of the present application. Any equivalent device or equivalent process transformation made using the contents of the description and drawings of this application, or directly or indirectly applied in other related technical fields, are also included in the scope of patent protection of this application.
Claims
1. An atomizer, characterized in that: The atomizer includes at least two oil tanks, each of which is provided with at least two oil storage chambers isolated from each other, the oil storage chambers being used to store atomized substrates, and each of which is provided with an atomizing air channel. The oil tanks are arranged along a first direction, and in any two oil tanks adjacent to each other in the first direction, at least one atomizing air channel in one of the oil tanks is connected to at least one atomizing air channel in the other oil tank. An atomizing core is installed in each of the atomizing air channels. The atomizing core can heat the atomizing matrix to generate aerosol. The aerosols generated in at least two of the atomizing air channels are mixed and then output.
2. The atomizer according to claim 1, characterized in that At least two of the oil storage chambers are configured to store the atomized substrates of different flavors, and the aerosols generated by heating the atomized substrates of at least two different flavors are mixed and output.
3. The atomizer according to claim 1, characterized in that The atomizer includes a nozzle, and the nozzle includes a nozzle shell, and the nozzle shell is detachably connected to the output end of the oil tank; The nozzle shell is provided with an air outlet and a mixing air channel, and the mixing air channel connects the air outlet with at least two of the atomizing air channels, so that the aerosols generated in the at least two atomizing air channels are mixed and then output.
4. The atomizer according to claim 3, characterized in that At least two of the atomizing air passages connected along the first direction are connected to the mixing air passage, so that the aerosol generated in the at least two atomizing air passages is output through the mixing air passage; And / or, at least two of the atomizing air passages that are not connected along the first direction are respectively connected to the mixing air passage, so that the aerosols generated in at least two of the atomizing air passages are mixed in the mixing air passage and then output.
5. The atomizer according to claim 3, characterized in that The suction nozzle includes a separator, which is arranged in the suction nozzle shell near one end of the oil tank; The partition divides at least part of the mixing air channel into at least two mutually isolated sub-air channels, each of which is connected to an atomization air channel to guide the aerosols generated in different atomization air channels to be mixed at a preset mixing position of the mixing air channel and then output.
6. The atomizer according to claim 5, characterized in that At least a portion of the partition is movably connected to the nozzle housing, and at least a portion of the partition is movable along the first direction to change a preset mixing position of the mixed air passage.
7. The atomizer according to any one of claims 1 to 6, characterized in that: The oil tank includes a first oil tank and a second oil tank, and the second oil tank is detachably connected to the first oil tank.
8. The atomizer according to claim 7, characterized in that At least two connecting grooves are formed at one end of the first oil tank adjacent to the second oil tank, and each connecting groove is connected to one of the atomizing air channels in the first oil tank; At least two connecting pipes are provided at one end of the second oil tank adjacent to the first oil tank, and each connecting pipe is connected to one of the atomizing air passages in the second oil tank; The connecting pipe is inserted into the connecting groove so that the second oil tank can be detachably connected to the first oil tank and communicates with the two atomizing air passages adjacent to each other in the first direction.
9. The atomizer according to claim 1, characterized in that At least one of the oil tanks comprises at least two mutually independent liquid storage tank bodies, each of which is provided with an oil storage cavity, and the liquid storage tank bodies are arranged along the second direction and assembled and connected to form the oil tank; And / or, at least one of the oil tanks includes an oil tank shell and an oil tank partition, and the oil tank partition is connected to the inner wall of the oil tank shell and divides the inner space of the oil tank shell into at least two oil storage chambers.
10. The atomizer according to claim 1, characterized in that The number of the oil storage chambers provided in at least two adjacent oil bins is the same, and the atomizing air passages in the two oil bins are respectively connected to each other.
11. The atomizer according to claim 1, characterized in that At least two adjacent oil bins are rotatably connected so that at least one atomizing air passage in one of the oil bins can selectively communicate with at least one atomizing air passage in the other oil bin.
12. An atomizing device, characterized in that: It comprises the atomizer according to any one of claims 1 to 11 and an atomizing host, wherein the atomizer is electrically connected to the atomizing host.