Atomization device convenient to transport and electronic cigarette thereof
Patent Information
- Application Number
- CN202520593785.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-28
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-03-28
AI Technical Summary
[0003]电子烟包括雾化器及与雾化器电性连接的电源装置,雾化器包括用于存储烟液的储液组件以及用于加热烟液并使烟液生成烟雾的雾化组件,通常情况下,储液组件上的储液腔与雾化组件上的雾化腔始终保持液体连通,无法满足储液组件与雾化组件分开运输的需求,有必要提供一种使用时储液腔内的烟液才能够流出的储液组件及雾化组件
[0024] In summary, the beneficial effects of this application are as follows: the power supply device, oil tank, and atomizing component are all detachably connected to each other. This detachable modular structure design facilitates the separate transportation of accessories. When in use, different flavored oil tanks and atomizing components can be used, offering greater variety of choices and making it easier to try more flavors. At the same time, both the receiving cavity and the oil storage cavity store e-liquid, resulting in a larger oil storage capacity. When the e-liquid is used up, only the oil tank needs to be replaced, reducing user operating costs. In addition, the puncture part allows for normal e-liquid dispensing and use immediately upon assembly of the oil tank and atomizing component, making it convenient, quick, and highly playable.
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Figure CN224761323U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic atomization technology, and in particular to an easily transportable atomizing device and its atomizer. Background Technology
[0002] Electronic cigarettes (also known as "electronic cigarette packs") are electronic delivery systems that use an atomizing matrix to generate an aerosol for a user to inhale. The atomizing matrix can be a liquid (e.g., e-liquid) or a solid or gel (e.g., e-cream paste).
[0003] Electronic cigarettes include an atomizer and a power supply device electrically connected to the atomizer. The atomizer includes a liquid storage component for storing e-liquid and an atomizing component for heating the e-liquid and generating vapor. Normally, the liquid storage chamber on the liquid storage component and the atomizing chamber on the atomizing component are always in liquid communication, which cannot meet the requirement of separate transportation of the liquid storage component and the atomizing component. It is necessary to provide a liquid storage component and an atomizing component that allow the e-liquid in the liquid storage chamber to flow out during use. Summary of the Invention
[0004] To overcome the technical defects of the existing technology, this application provides a convenient atomizing device, including a detachably connected oil tank and an atomizing component. The oil tank includes a first housing with an oil storage chamber for storing the atomizing matrix. One end of the oil tank is provided with a seal for sealing the oil storage chamber. The atomizing component includes a second housing and an atomizing core for heating the atomizing matrix. The second housing has a receiving cavity for receiving the atomizing matrix, and the atomizing core is disposed in the receiving cavity. One end of the second housing has a protruding oil pipe for communicating with the oil storage cavity and the receiving cavity. One end of the oil pipe has a puncture portion for piercing the seal when the oil tank and the atomizing component are assembled and connected.
[0005] In one embodiment, the puncture portion includes at least one pointed protrusion, and each of the protrusions is arranged along the annular end edge of one end of the oil passage.
[0006] In one embodiment, a recess is provided between two adjacent protrusions, the lowest point of which is close to the surface of the seal facing the oil reservoir.
[0007] In one embodiment, the receiving cavity is provided with an oil storage component.
[0008] In one embodiment, the oil pipe is provided with an oil guiding component.
[0009] In one embodiment, the height of the end face of the oil guiding component facing the oil tank is higher than the height of the surface of the seal facing the oil storage cavity.
[0010] In one embodiment, the oil storage component and the oil guiding component abut against each other, the oil storage component fills the receiving cavity, and the oil guiding component fills the oil passage. The oil storage component and the oil guiding component are respectively made of cotton or fiber; the sealing element is made of silicone, plastic or kraft paper.
[0011] In one embodiment, a mouthpiece is formed at the end of the first housing away from the seal, the mouthpiece has a smoking port, a smoke guide tube is formed inside the first housing, the space between the outer wall of the smoke guide tube and the inner wall of the first housing serves as an oil storage chamber, a smoke exhaust channel is formed inside the smoke guide tube, and the smoke exhaust channel communicates with the smoking port.
[0012] In one embodiment, the atomizing core includes an atomizing tube and a heating core. The oil storage component surrounds the atomizing tube, and an atomizing channel is formed inside the atomizing tube. One end of the atomizing tube is used to connect with the smoke guide tube when the oil tank and the atomizing component are assembled and connected. The atomizing channel communicates with the smoke exhaust channel. The heating core includes an oil-absorbing component and a heating element. An oil-passing area is formed on the tube wall of the atomizing tube. The oil-absorbing component extends into the receiving cavity or is exposed in the receiving cavity from the oil-passing area. The oil-absorbing component abuts against the oil storage component.
[0013] In one embodiment, the atomizing assembly further includes a base and a sealing plug. The second housing has an opening at one end away from the puncture site and the sealing plug is sealed thereon. The base is located on the side of the sealing plug away from the puncture site. The base and the sealing plug are respectively provided with a first air hole and a second air hole communicating with the atomizing channel.
[0014] In one embodiment, the sealing member has a base on the side opposite to the oil storage cavity, and the base has a first through hole and a second through hole at positions corresponding to the puncture part and the smoke guide tube, respectively.
[0015] In one embodiment, the sealing member has a hard plate on the side facing the oil storage cavity, and the hard plate has a third through hole and a fourth through hole at positions corresponding to the puncture part and the smoke guide tube, respectively.
[0016] In one embodiment, the seal is made of silicone, plastic, or kraft paper.
[0017] In one embodiment, the outer periphery of the end of the atomizing tube that is connected to the smoke guide tube is covered with oil-absorbing cotton.
[0018] In one embodiment, a bottom oil-absorbing cotton is provided between the sealing plug and the base to prevent oil leakage, and the bottom oil-absorbing cotton is located around the atomizing tube.
[0019] In one embodiment, the oil tank and the atomizing component are detachably connected by means of snap-fit, plug-in, interference fit or magnetic attraction.
[0020] In one embodiment, the extending directions of the smoke guide tube and the atomizing tube are parallel to the extending direction of the oil passage tube.
[0021] This application also provides an electronic cigarette, including the aforementioned easily transportable atomizing device and a power supply device for supplying power to the atomizing component, wherein the atomizing device and the power supply device are detachably connected.
[0022] In one embodiment, the power supply device includes a third housing and a base. The third housing has an air inlet that communicates with the atomization channel in the atomization assembly. A battery cell and a control board are installed inside the third housing. The control board is electrically connected to the battery cell. The base has conductive electrodes. The battery cell is electrically connected to the atomization core through the conductive electrodes. The control board has a microphone assembly.
[0023] In one embodiment, the base of the atomizing component of the atomizing device is provided with a first conductive electrode, a second conductive electrode, a first magnetic pole, and a second magnetic pole. The conductive electrodes on the base of the power supply device include a third conductive electrode and a fourth conductive electrode. The base is also provided with a third magnetic pole and a fourth magnetic pole. The first conductive electrode and the second conductive electrode are electrically connected to the third conductive electrode and the fourth conductive electrode, respectively. The first magnetic pole and the second magnetic pole of the atomizing device are magnetically attracted to the third magnetic pole and the fourth magnetic pole, respectively.
[0024] In summary, the beneficial effects of this application are as follows: the power supply device, oil tank, and atomizing component are all detachably connected to each other. This detachable modular structure design facilitates the separate transportation of accessories. When in use, different flavored oil tanks and atomizing components can be used, offering greater variety of choices and making it easier to try more flavors. At the same time, both the receiving cavity and the oil storage cavity store e-liquid, resulting in a larger oil storage capacity. When the e-liquid is used up, only the oil tank needs to be replaced, reducing user operating costs. In addition, the puncture part allows for normal e-liquid dispensing and use immediately upon assembly of the oil tank and atomizing component, making it convenient, quick, and highly playable. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the structure of the electronic cigarette in this application; Figure 2 This is a schematic diagram illustrating the installation of the electronic cigarette in this application; Figure 3 This is a schematic diagram of the atomizing component in this application. Figure 1 ; Figure 4 This is a schematic diagram of the atomizing component in this application. Figure 2 ; Figure 5 This is a cross-sectional view of the electronic cigarette in this application; Figure 6 This is an exploded view of the oil tank in this application; Figure 7 This is an exploded view of the atomizing component in this application; Figure 8 This is an exploded view of the power supply device in this application; Figure 9 This is a schematic diagram of the assembly structure of the atomizing component and the oil tank in this application.
[0026] Explanation of reference numerals in the attached figures: 1. Oil tank body; 11. First housing; 110. Oil storage chamber; 111. Mouthpiece; 112. Smoke inlet; 113. Smoke guide tube; 114. Smoke exhaust channel; 12. Seal; 13. Base; 14. Hard plate; 141. Third through hole; 142. Fourth through hole; 2. Atomizing component; 21. Second shell; 211. Receiving cavity; 22. Atomizer core; 221. Atomizer tube; 223. Atomization channel; 224. Oil passage area; 2251. Oil suction component; 2252. Heating element; 23. Oil passage; 231. Puncture section; 232. Protrusion; 233. Recess; 234. Protective cap; 24. Oil reservoir component; 25. Oil guide component; 26. Base; 261. First air vent; 27. Sealing plug; 271. Second vent; 28. Upper oil-absorbing cotton; 29. Lower oil-absorbing cotton; 3. Power supply device; 31. Third housing; 310. Air inlet; 32. Base; 33. Battery cell; 34. Control board; 340. Microphone assembly. Detailed Implementation
[0027] The technical solutions of the embodiments of this disclosure 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 disclosure, and not all of the embodiments. Based on the embodiments of this disclosure, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this disclosure.
[0028] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this disclosure are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indication will also change accordingly.
[0029] In this disclosure, unless otherwise expressly specified and limited, the terms "connection," "fixed," etc., should be interpreted broadly. For example, they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this disclosure according to the specific circumstances.
[0030] In this document, “connection” refers to fluid connectivity, meaning that a fluid (including liquids and / or gases) can flow from one component to another. Furthermore, in this document, connectivity between two components can refer to direct connection between the two components, such as at least partial alignment between two holes, or connectivity via an intermediate medium.
[0031] In this disclosure, unless otherwise stated, all figures used in this specification and claims to represent component parameters, technical effects, etc., should in any instance be understood to be modified by the terms "approximately" or "roughly". Therefore, unless indicated to the contrary, the numerical parameters listed in the following specification and appended claims are approximate values. They will vary for those skilled in the art depending on the desired properties and effects sought to be obtained through this disclosure, and each numerical parameter should be interpreted according to the number of significant figures and conventional rounding methods or in a manner understood by those skilled in the art.
[0032] In this disclosure, the terminology used in the description of the various examples is for the purpose of describing particular examples only and is not intended to be limiting. Unless the context explicitly indicates otherwise, an element may be one or more unless the number of elements is specifically limited. Furthermore, the term "and / or" as used in this disclosure covers any one of the listed items and all possible combinations thereof.
[0033] "Atomizing matrix" refers to a mixture or auxiliary substance that can be wholly or partially atomized into an aerosol by an electronic device or similar device. Atomizing matrix can be liquid media such as e-cigarette liquids, medical drugs, and skin lotions. By atomizing these media, an aerosol that can be inhaled or absorbed can be delivered to the user.
[0034] "Aerosol" refers to a colloidal dispersion system formed by small solid or liquid particles dispersed and suspended in a gaseous medium.
[0035] A "nebulizer" is a device that uses heat or ultrasound to form an aerosol from a stored atomizable substrate. The atomizing core is one of the main components of an atomizer.
[0036] "E-cigarette" refers to a system that generates an aerosol (i.e., smoke) from an atomizing matrix, such as e-liquid, through atomization or other means for a person to inhale, suck, chew, or nasally inhale. In some examples, an e-cigarette may include an e-liquid reservoir and an atomizing core for adsorbing and atomizing the e-liquid to form smoke.
[0037] In electronic cigarette technology, the atomizer core includes a heating element and an wicking component. The heating element heats the e-liquid to form vapor, while the wicking component guides the e-liquid from the reservoir surrounding the atomizer core to the heating element. The heating element can be made of a conductive, heated metal wire, and the wicking component can be made of cotton or fiber materials, with the heating element encased within it. Alternatively, the heating element can be made of a conductive, heated metal sheet, and the wicking component can be made of materials such as ceramic and can be formed as a hollow, sheet-like wicking component, with the heating element partially embedded in the inner wall of the wicking component.
[0038] The following description, in conjunction with the accompanying drawings, further illustrates this application: See Figure 1-8 This application provides an electronic cigarette, including a transportable atomizing device A and a power supply device B. The power supply device B is used to supply power to the atomizing component 2. The transportable atomizing device A includes an oil tank 1 and an atomizing component 2. The power supply device B, the oil tank 1 and the atomizing component 2 are all detachably connected to each other.
[0039] like Figure 5 , 6 As shown, in some embodiments, the oil tank body 1 includes a first shell 11, the first shell 11 having an oil storage chamber 110 for storing the atomizing matrix, one end of the first shell 11 having a mouthpiece 111, and the other end of the first shell 11 having an opening with a sealing member 12 for sealing the oil storage chamber 110. Specifically, a smoke guide tube 113 is formed inside the first shell 11, and the space enclosed between the outer wall of the smoke guide tube 113 and the inner wall of the first shell 11 serves as the oil storage chamber 110. The sealing member 12 has a hole at a position corresponding to the smoke guide tube 113 for the smoke guide tube 113 to pass through. The mouthpiece 111 has a smoking port 112, and a smoke exhaust channel 114 is formed inside the smoke guide tube 113, the smoke exhaust channel 114 communicating with the smoking port 112.
[0040] In some embodiments, the sealing member 12 is provided with a base 13 on the side opposite to the oil storage cavity 110, and the base 13 is provided with a first through hole and a second through hole at positions corresponding to the puncture part and the smoke guide tube 113, respectively.
[0041] In some embodiments, the sealing member 12 is provided with a hard sheet 14 on the side facing the oil storage cavity 110. The hard sheet 14 is provided with a third through hole 141 and a fourth through hole 142 at positions corresponding to the puncture part and the smoke guide tube 113, respectively. The hard sheet 14 plays a supporting role to prevent the sealing member 12 from deforming under force and affecting the sealing performance. In this embodiment, the hard sheet 14 is a steel sheet. In other embodiments, the hard sheet 14 may be made of ceramic, glass, metal or other hard materials.
[0042] In some embodiments, the seal 12 is made of silicone, plastic or kraft paper, preferably silicone.
[0043] like Figure 3 , 4 As shown in Figures 5 and 7, in some embodiments, the atomizing component 2 includes a second housing 21 and an atomizing core 22 for heating the atomizing matrix. The second housing 21 has a receiving cavity 211 for receiving the atomizing matrix. The atomizing core 22 is disposed in the receiving cavity 211. One end of the second housing 21 has an oil passage 23 for communicating with the oil storage cavity 110 and the receiving cavity 211. One end of the oil passage 23 has a puncture part 231 for piercing the seal 12 when the oil tank body 1 and the atomizing component 2 are assembled and connected together. In use, the atomizing component 2 and the oil tank 1 are assembled together via a detachable structure. At this time, the piercing part 231 punctures the seal 12, and the oil storage chamber 110 and the receiving chamber 211 are connected through the oil passage 23. The atomizing matrix (e-liquid) in the oil storage chamber 110 can flow into the receiving chamber 211 to supply oil to the atomizing core 22 in the receiving chamber 211. The atomizing core 22 heats the atomizing matrix to produce smoke, which is discharged from the smoking port 112 through the smoke guide tube 113 for the user to inhale. This detachable structural design, combined with the piercing part 231, allows the atomizing component 2 and the oil tank 1 to be transported separately. Both the receiving chamber 211 and the oil storage chamber 110 store e-liquid, resulting in a larger oil storage capacity. When the e-liquid is used up, only the oil tank 1 needs to be replaced, reducing the user's operating cost and making it easier to try more flavors.
[0044] In some embodiments, refer to Figure 4The puncture portion 231 includes at least one pointed protrusion 232. Each of the protrusions 232 is arranged along the annular edge of one end of the oil passage 23. The seal 12 is punctured by the protrusions 232 at the edge of the puncture portion 231. After puncture, the e-liquid in the oil storage cavity 110 flows into the oil storage cavity 110 through the oil passage 23. There is a recess 233 between two adjacent protrusions 232. The lowest point of the recess 233 is close to the surface of the seal 12 facing the inside of the oil storage cavity 110, so that as much e-liquid as possible flows from the oil storage cavity 110 into the oil passage 23.
[0045] In some embodiments, a protective cover 234 is detachably installed on the second housing 21. During the transportation of the atomizing component 2, the protective cover 234 can be fastened to the puncture part 231. On the one hand, it can prevent foreign objects from entering the oil pipe 23, and on the other hand, it can prevent the puncture part 231 from tearing the packaging. The protective cover 234 needs to be removed before the atomizing component 2 is assembled with the oil tank body 1.
[0046] like Figure 3 As shown, in some embodiments, the oil passage 23 is provided with an oil guiding component 25, and the receiving cavity 211 is provided with an oil storage component 24. The oil storage component 24 and the oil guiding component 25 abut against each other. The e-liquid in the oil storage cavity 110 is absorbed by the oil guiding component 25 in the oil passage 23 and then transferred to the oil storage component 24 to supply e-liquid to the atomizing core 22 inside the oil storage component 24. The oil storage component 24 fills the receiving cavity 211, and the oil guiding component 25 fills the oil passage 23. Filling the cavity completely can maximize the use of the space inside the second housing 21 and ensure e-liquid supply. Of course, it can also be left unfilled, as long as the functions of guiding and storing e-liquid are achieved.
[0047] In some embodiments, the oil storage component 24 and the oil guiding component 25 are made of cotton or fiber, preferably cotton. In other embodiments, other oil storage and guiding materials may be selected as needed.
[0048] In some embodiments, the height of the end face of the oil guide component 25 facing the oil tank body 1 is higher than the height of the surface of the seal 12 facing the oil storage cavity 110. Since the puncture part 231 is a tubular structure, when the seal 12 is punctured, the seal 12 above the oil passage pipe 23 may fall off and cover the oil passage pipe 23, resulting in poor oil flow. Therefore, the height of the oil guide component 25 is set higher than the height of the surface of the seal 12 facing the oil storage cavity 110, so that the oil guide component 25 can more easily absorb oil and ensure the stability of oil supply.
[0049] In some embodiments, the atomizing core 22 includes an atomizing tube 221 and a heating core. The oil storage component 24 surrounds the atomizing tube 221. An atomizing channel 223 is formed inside the atomizing tube 221. When the oil tank 1 and the atomizing component 2 are assembled and connected to each other, one end of the atomizing tube 221 is connected to the smoke guide tube 113, and the atomizing channel 223 communicates with the smoke exhaust channel 114. The heating core includes an oil-absorbing component 2251 and a heating element 2252. An oil-passing area 224 is formed on the tube wall of the atomizing tube 221. The oil-absorbing component 2251 extends into the receiving cavity 211 or is exposed in the receiving cavity 211 from the oil-passing area 224. The oil-absorbing component 2251 abuts against the oil storage component 24. The e-liquid stored in the oil storage component 24 is transferred to the oil suction component 2251. The heating element 2252 heats the e-liquid on the atomizing oil suction component 2251, and the generated smoke passes sequentially through the atomization channel 223 and the smoke exhaust channel 114, and is finally discharged from the smoke outlet 112. The oil passage area 224 can be a hole or notch opened in the wall of the atomizing tube 221. The oil suction component 2251 is installed inside the atomizing tube 221. In some examples, the oil suction component 2251 can be cotton or fiber, extending from the oil passage area 224 and abutting against the oil storage component 24, or the portion of the oil suction component 2251 is exposed relative to the receiving cavity 211 through the oil passage area 221. In other examples, the oil suction component 2251 can be a rigid oil-absorbing body, such as ceramic, porous glass, quartz, or mica, with the portion of the oil suction component 2251 exposed relative to the receiving cavity 211 through the oil passage area 221. The heating element 24 is made of a conductive material that can generate heat when electricity is applied, such as conductive metals, graphite, graphene, or carbon-containing nanotube materials.
[0050] In some embodiments, the atomizing assembly 2 further includes a base 26 and a sealing plug 27. The second housing 21 has an opening at one end away from the puncture site and the sealing plug 27 is sealed thereon. The base 26 is disposed on the side of the sealing plug 27 opposite to the puncture site. The base 26 and the sealing plug 27 are respectively provided with a first air hole 261 and a second air hole 271 communicating with the atomizing channel 223, allowing external air to enter. The sealing plug 27 may be made of silicone, latex, or plastic, etc.
[0051] In some embodiments, the atomizing tube 221 is fitted with an upper oil-absorbing cotton 28 on the outer periphery of the end that is connected to the smoke guide tube 113 to prevent oil leakage at the connection point.
[0052] In some embodiments, a lower oil-absorbing cotton 29 for preventing oil leakage is provided between the sealing plug 27 and the base 26. The lower oil-absorbing cotton 29 is located around the atomizing tube 221 to prevent oil leakage from the bottom of the atomizing core 22 and contamination of the electronic components below.
[0053] In some embodiments, the extension directions of the smoke guide tube 113 and the atomizing tube 221 are parallel to the extension direction of the oil pipe 23, respectively, so that the oil supply is smoother. In other embodiments, the extension direction of the oil pipe 23 can be set as needed.
[0054] Reference Figure 5 and Figure 8 In some embodiments, the power supply device includes a third housing 31 and a base 32. The third housing 31 is provided with an air inlet 310 communicating with the atomization channel 223 in the atomization assembly 2. A battery cell 33 and a control board 34 are installed inside the third housing 31. The control board 34 is electrically connected to the battery cell 33. The base 32 is provided with conductive electrodes. The battery cell 33 is electrically connected to the atomization core 22 through the electrodes. The control board 34 is provided with a microphone assembly 340. When the user smokes, airflow enters the electronic cigarette through the air inlet 310. The microphone assembly 340 senses the airflow, and then the control board 34 controls the battery cell 33 to supply power to the atomization core 22. After the atomization core 22 is powered on, it heats the e-liquid to produce smoke. The generated smoke passes through the atomization channel 223 and the exhaust channel 114 in sequence, and is finally discharged from the smoking port 112 for the user to inhale.
[0055] See Figure 7-9 The atomizing device A has a base 26 with a first conductive electrode 262, a second conductive electrode 263, a first magnetic pole 264, and a second magnetic pole 265. The power supply device B has a base 32 with conductive electrodes including a third conductive electrode 35 and a fourth conductive electrode 36. The base 32 also has a third magnetic pole 37 and a fourth magnetic pole 38. When the atomizing device AA and the power supply device B are assembled, the first conductive electrode 262 and the second conductive electrode 263 are electrically connected to the third conductive electrode 35 and the fourth conductive electrode 36, respectively, and the first magnetic pole 264 and the second magnetic pole 265 are magnetically connected to the third magnetic pole 37 and the fourth magnetic pole 38, respectively.
[0056] In some embodiments, the easily transportable atomizing device A and the power supply device B are detachably connected. In this embodiment, the atomizing device A and the power supply device B are connected by magnetic attraction. In other embodiments, the atomizing device A and the power supply device B are detachably connected by snap-fit, plug-in, interference fit or magnetic attraction.
[0057] In some embodiments, the oil tank 1 and the atomizing component 2 are detachably connected. Specifically, the oil tank 1 and the atomizing component 2 are detachably connected by means of snap-fit, plug-in, interference fit or magnetic attraction, preferably by snap-fit connection.
[0058] See Figure 1 , 2 In step 9, when the user uses the device, the oil tank 1 and the atomizing component 2 are assembled to form the atomizing device A. During the assembly process, the piercing part 231 of the atomizing component 2 pierces the seal 12 of the oil tank 1, and the atomizing component 2 and the oil tank 1 are fixedly connected to each other. The atomizing matrix flows from the oil tank 1 to the receiving cavity 211 through the oil pipe 23. Then, the atomizing device A is assembled with the power supply device B. The third housing 31 of the power supply device B has a cavity and an opening. The atomizing device A is at least partially inserted into the cavity. At the same time, the first conductive electrode 262 and the second conductive electrode 263 of the atomizing device A are electrically connected to the third conductive electrode 35 and the fourth conductive electrode 36 of the power supply device B, respectively, so that the battery in the power supply device B supplies power to the heating element 2252 in the atomizing core 22 of the atomizing device A. The first magnetic pole 264 and the second magnetic pole 265 are magnetically connected to the third magnetic pole 37 and the fourth magnetic pole 38, respectively.
[0059] The above are merely embodiments or examples of this disclosure and do not limit the patent scope of this disclosure. Any equivalent structural transformations made based on the concept of this disclosure and the content of this specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of this disclosure. Various elements in the embodiments or examples may be omitted or replaced by equivalent elements. Furthermore, the steps may be performed in a different order than described in this disclosure. Further, various elements in the embodiments or examples may be combined in various ways. Importantly, as technology evolves, many elements described herein can be replaced by equivalent elements appearing after this disclosure.
Claims
1. An atomization device for ease of transport, characterized by, The device includes a detachably connected oil tank and an atomizing assembly. The oil tank includes a first housing with an oil storage chamber for storing the atomizing matrix. One end of the oil tank has a seal for sealing the oil storage chamber. The atomizing assembly includes a second housing and an atomizing core for heating the atomizing matrix. The second housing has a receiving cavity for receiving the atomizing matrix, and the atomizing core is disposed in the receiving cavity. One end of the second housing has a protruding oil pipe for communicating with the oil storage cavity and the receiving cavity. One end of the oil pipe has a puncture portion for piercing the seal when the oil tank and the atomizing assembly are assembled together.
2. The transportable atomization device of claim 1, wherein, The puncture portion includes at least one pointed protrusion, and each of the protrusions is arranged along the annular end edge of one end of the oil passage.
3. The transportable atomization device of claim 2, wherein, There is a recess between two adjacent protrusions, and the lowest point of the recess is close to the surface of the seal facing the oil reservoir.
4. The transportable atomization device of claim 1, wherein, The cavity is equipped with an oil storage component.
5. The transportable atomization device of claim 4, wherein, The oil passage is equipped with an oil guiding component.
6. The transportable atomization device of claim 5, wherein, The height of the end face of the oil guiding component facing the oil tank is higher than the height of the surface of the seal facing the oil storage cavity.
7. The transportable atomization device of claim 5, wherein, The oil storage component and the oil guiding component abut against each other. The oil storage component fills the receiving cavity, and the oil guiding component fills the oil passage. The oil storage component and the oil guiding component are made of cotton or fiber, respectively. The sealing element is made of silicone, plastic or kraft paper.
8. The transportable atomization device of claim 4, wherein, A mouthpiece is formed at the end of the first housing away from the seal, and the mouthpiece has a smoking port. A smoke guide tube is formed inside the first housing. The space enclosed between the outer wall of the smoke guide tube and the inner wall of the first housing serves as an oil storage chamber. A smoke exhaust channel is formed inside the smoke guide tube, and the smoke exhaust channel communicates with the smoking port.
9. The transportable atomization device of claim 8, wherein, The atomizing core includes an atomizing tube and a heating core. The oil storage component surrounds the atomizing tube. An atomizing channel is formed inside the atomizing tube. One end of the atomizing tube is used to connect with the smoke guide tube when the oil tank and the atomizing component are assembled and connected. The atomizing channel communicates with the smoke exhaust channel. The heating core includes an oil-absorbing component and a heating element. An oil-passing area is formed on the tube wall of the atomizing tube. The oil-absorbing component extends into the receiving cavity or is exposed in the receiving cavity from the oil-passing area. The oil-absorbing component abuts against the oil storage component.
10. The transportable atomization device of claim 9, wherein, The atomizing assembly further includes a base and a sealing plug. The second housing has an opening at one end away from the puncture site and the sealing plug is installed in a sealed manner. The base is located on the side of the sealing plug away from the puncture site. The base and the sealing plug are respectively provided with a first air hole and a second air hole communicating with the atomizing channel.
11. The transportable atomization device of claim 8, wherein, The sealing element has a base on the side opposite to the oil storage cavity, and the base has a first through hole and a second through hole at positions corresponding to the puncture part and the smoke guide tube, respectively.
12. The transportable atomization device of claim 8, wherein, The sealing element has a hard plate on the side facing the oil storage cavity, and the hard plate has a third through hole and a fourth through hole at the positions corresponding to the puncture part and the smoke guide tube, respectively.
13. The transportable atomization device of claim 1, wherein, The seal is made of silicone, plastic, or kraft paper.
14. The transportable atomization device of claim 9, wherein, The atomizing tube is fitted with an oil-absorbing cotton sleeve on the outer periphery of the end that is connected to the smoke guide tube.
15. The transportable atomization device of claim 10, wherein, A bottom oil-absorbing cotton is provided between the sealing plug and the base to prevent oil leakage, and the bottom oil-absorbing cotton is located around the atomizing tube.
16. The nebulizer device of claim 1, wherein, The oil tank and the atomizing component are detachably connected by means of snap-fit, plug-in, interference fit or magnetic attraction.
17. The transportable atomization device of claim 9, wherein, The extension directions of the smoke guide tube and the atomizing tube are parallel to the extension direction of the oil passage tube, respectively.
18. An electronic cigarette, characterized in that, The invention includes a transportable atomizing device as described in any one of claims 1-17 and a power supply device for supplying power to the atomizing assembly, wherein the atomizing device and the power supply device are detachably connected, and the power supply device has conductive electrodes on its base, the conductive electrodes including a third conductive electrode and a fourth conductive electrode.
19. The electronic cigarette of claim 18, wherein, The power supply device includes a third housing and a base. The third housing has an air inlet that communicates with the atomization channel in the atomization assembly. A battery cell and a control board are installed inside the third housing. The control board is electrically connected to the battery cell. The base has conductive electrodes. The battery cell is electrically connected to the atomization core through the conductive electrodes. The control board has a microphone assembly.
20. The electronic cigarette of claim 18, wherein, The base of the atomizing component of the atomizing device is provided with a first conductive electrode, a second conductive electrode, a first magnetic pole, and a second magnetic pole. The conductive electrodes on the base of the power supply device include a third conductive electrode and a fourth conductive electrode. The base is also provided with a third magnetic pole and a fourth magnetic pole. The first conductive electrode and the second conductive electrode are electrically connected to the third conductive electrode and the fourth conductive electrode, respectively. The first magnetic pole and the second magnetic pole of the atomizing device are magnetically attracted to the third magnetic pole and the fourth magnetic pole, respectively.