Electronic atomizer
By designing an extension tube in the electronic atomizer to connect the chambers of the atomizing component and the battery component, the problem of insufficient air intake when taking small breaths or with insufficient inhalation strength is solved, thus improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN TRANSPRING ENTERPRISE LTD
- Filing Date
- 2021-10-18
- Publication Date
- 2026-07-21
AI Technical Summary
Existing electronic atomizers may not be able to form a negative pressure zone at the connection between the atomizing component and the battery component when taking small inhalations or with insufficient inhalation strength, resulting in insufficient air intake and affecting the user experience.
Design an electronic atomizer so that when the atomizing component is assembled with the battery component, the first chamber and the second chamber are connected by an extension tube, ensuring that the negative pressure zone of gas convergence is located inside the atomizing component, and ensuring that sufficient gas can still flow into the atomizing component and mix with the droplets even when the inhalation is small or the inhalation intensity is insufficient.
This design ensures that the negative pressure zone of the gas confluence is closer to the mouth during the user's use of the atomizer, guaranteeing sufficient gas flow into the atomizing component to mix with the droplets and improving the user experience.
Smart Images

Figure CN113854633B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of liquid atomization, and more particularly to an electronic atomizer. Background Technology
[0002] Most existing electronic atomizers feature a detachable connection between the atomizer and battery components, with an opening at the connection point to facilitate gas flow from the battery into the atomizer. However, with this open-inlet design, the negative pressure zone for gas flow occurs at the connection point. If the user takes small sips or uses insufficient inhalation, this negative pressure zone may not form, resulting in insufficient airflow into the atomizer and negatively impacting the user experience. Summary of the Invention
[0003] The purpose of this invention is to provide an electronic atomizer in which the negative pressure zone of the gas confluence is located within the atomizing component, ensuring that sufficient gas can flow into the atomizing component and mix with the atomized droplets.
[0004] To achieve the objectives of this invention, the following technical solution is provided:
[0005] This invention provides an electronic atomizer, comprising an atomizing component and a battery component; the atomizing component encloses a first chamber and includes a first end face; the battery component encloses a second chamber and includes a second end face; when the atomizing component and the battery component are assembled, the first end face and the second end face are in contact; the first chamber further accommodates at least a portion of an extension tube, the extension direction of which forms an angle with the first end face, and the extension tube connects the first chamber and the second chamber.
[0006] In one embodiment, the extension tube is connected to the first end face, and a second opening communicating with the second chamber is provided on the second end face. The second opening is used to communicate with the lumen of the extension tube.
[0007] In one embodiment, one end of the extension tube is connected to the first end face; or, the extension tube extends at least partially from the first end face from the first chamber.
[0008] In one embodiment, a first opening communicating with the first chamber is provided on the first end face, the extension tube is connected to the second end face, and the lumen of the extension tube is communicating with the second chamber. The extension tube is used to extend into the first chamber from the first opening.
[0009] In one embodiment, one end of the extension tube is connected to the second end face; or, the extension tube extends at least partially from the second end face into the second chamber.
[0010] In one embodiment, the number of extension tubes is multiple, and the multiple extension tubes are arranged in a rotationally symmetrical manner.
[0011] In one embodiment, the electronic atomizer includes a start tube, a second chamber accommodating a microphone start chamber, and a third opening communicating with the microphone start chamber from the second end face. The start tube communicates with the third opening and the first chamber.
[0012] In one embodiment, the starting tube is connected to the first end face and extends into the first chamber, and there are multiple starting tubes arranged in a rotationally symmetrical manner, with the third opening communicating with one of the starting tubes; or, the starting tube is connected to the second end face, and the first end face has multiple starting holes arranged in a rotationally symmetrical manner, with the starting tube passing through one of the starting holes to enter the first chamber.
[0013] In one embodiment, the shape and structure of the starting tube are the same as those of the extension tube.
[0014] In one embodiment, the battery assembly has a first air inlet and a second air inlet, and the battery assembly also encloses a third chamber. The first air inlet connects the second chamber to the external space, and the second air inlet connects the third chamber to the external space. A control valve is provided between the third chamber and the second chamber, and the control valve is used to regulate the flow of air from the third chamber into the second chamber.
[0015] This invention provides an electronic atomizer having a first chamber enclosed by an atomizing component and a second chamber enclosed by a battery component. When the atomizing component and the battery component are assembled, the first and second chambers can be connected through an extension tube, and the first chamber also accommodates at least part of the extension tube. This allows the negative pressure zone of the gas convergence at the connection between the atomizing component and the battery component to move closer to the atomizing component than to the user's mouth when the user inhales in small sips or when the inhalation intensity is insufficient. This ensures that sufficient gas flows into the atomizing component to mix with the atomized droplets before being inhaled by the user. Attached Figure Description
[0016] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0017] Figure 1 This is a cross-sectional structural diagram of an electronic atomizer according to one embodiment;
[0018] Figure 2 This is a cross-sectional structural diagram of an atomizing component according to one embodiment;
[0019] Figure 3 This is a cross-sectional structural diagram of an atomizing component according to one embodiment;
[0020] Figure 4 This is a cross-sectional structural diagram of a battery assembly according to one embodiment;
[0021] Figure 5 This is a structural diagram of the first end face of one embodiment;
[0022] Figure 6 This is a structural diagram of the first end face of one embodiment;
[0023] Figure 7 This is a structural diagram of the first end face of one embodiment;
[0024] Figure 8 This is a structural diagram of the second end face of one embodiment;
[0025] Figure 9 This is a cross-sectional structural diagram of an extension tube according to one embodiment;
[0026] Figure 10 This is a cross-sectional structural diagram of an extension tube according to one embodiment;
[0027] Figure 11 This is a cross-sectional structural diagram of an extension tube according to one embodiment;
[0028] Figure 12 This is a cross-sectional structural diagram of an extension tube according to one embodiment.
[0029] Figure label explanation: 100 - Electronic atomizer;
[0030] 10-Atomizing component, 11-First housing, 111-First chamber, 112-First wall panel, 1121-First end face, 1122-First opening, 1123-Starting hole, 12-Liquid storage component, 13-Liquid guiding component, 14-Atomizing component, 15-Positive electrode component, 16-Negative electrode component, 17-First magnet;
[0031] 20-Battery assembly, 21-Second housing, 211-Second chamber, 2111-Mic head start chamber, 212-Third chamber, 213-Assembly slot, 214-Second wall panel, 2141-Second end face, 2142-Second opening, 2143-Third opening, 2144-Guide channel, 215-Third wall panel, 2151-Control valve, 216-First air inlet, 217-Second air inlet, 22-Mic head, 23-Battery, 24-Controller, 25-Spring electrode, 26-Second magnet;
[0032] 30 - Extension tube, 31 - Lumen of extension tube, 40 - Starter tube, 41 - Lumen of starter tube. Detailed Implementation
[0033] The technical solutions of the embodiments of the present invention 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 the present invention, and not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0034] This invention provides an electronic atomizer 100, please refer to [reference needed]. Figure 1 The electronic atomizer 100 includes an atomizing component 10 and a battery component 20, which are detachably assembled.
[0035] The atomizing component 10 surrounds the first chamber 111 and includes a first end face 1121; the battery component 20 surrounds the second chamber 211 and includes a second end face 2141; when the atomizing component 10 and the battery component 20 are assembled, the first end face 1121 and the second end face 2141 are mated; the first chamber 111 also accommodates at least a portion of the extension tube 30, the extension direction of the extension tube 30 is at an angle to the first end face 1121, and the extension tube 30 connects the first chamber 111 and the second chamber 211.
[0036] For details, please refer to Figure 2 The atomizing assembly 10 includes a first housing 11, a liquid reservoir 12, a liquid guide 13, and an atomizing element 14. The first housing 11 encloses a first chamber 111, and the liquid reservoir 12, the liquid guide 13, and the atomizing element 14 are all housed within the first chamber 111. The liquid reservoir 12 stores the liquid to be atomized, which may be, but is not limited to, e-liquid, medicinal liquid, or purified water. When the electronic atomizer 100 is in operation, the liquid in the liquid reservoir 12 flows to the liquid guide 13 and is atomized by the atomizing element 14 for the user to inhale.
[0037] The first housing 11 can be made of plastic, including but not limited to PC (polycarbonate), ABS (acrylonitrile-butadiene-styrene copolymer), epoxy resin, etc.; of course, it can also be made of metal, including stainless steel, copper or aluminum alloy, etc.
[0038] Please refer to Figure 1 and Figure 4 The battery assembly 20 includes a second housing 21, a microphone 22, a battery 23, and a controller 24. The second housing 21 encloses a second chamber 211, a third chamber 212, and an assembly slot 213. The microphone 22 is housed in the second chamber 211, and the battery 23 and controller 24 are housed in the third chamber 212. When the atomizing assembly 10 is assembled with the battery assembly 20, the first housing 11 is at least partially housed in the assembly slot 213. When a user inhales through the electronic atomizer 100, the microphone 22 can be triggered to transmit an electrical signal to the controller 24, and the controller 24 can control the battery 23 to supply power to the atomizing component 14.
[0039] The material of the second shell 21 can be plastic, including but not limited to PC (polycarbonate), ABS (acrylonitrile-butadiene-styrene copolymer), epoxy resin, etc.; of course, it can also be metal, including stainless steel, copper, aluminum alloy, etc.
[0040] Further, please refer to Figure 1 , Figure 2 and Figure 4 The first housing 11 includes a first wall panel 112, a first end face 1121 located on the first wall panel 112, and the first end face 1121 is located on the outer periphery of the first housing 11. The second housing 21 includes a second wall panel 214 located inside the second housing 21 and separating the interior of the second housing 21 to form a second chamber 211 and an assembly groove 213; a second end face 2141 is located on the second wall panel 214 and is located on the inner periphery of the assembly groove 213.
[0041] When the atomizing component 10 is assembled with the battery component 20, the atomizing component 10 extends into the assembly groove 213, the outer periphery of the first housing 11 is connected to the inner periphery of the second housing 21, and the first wall panel 112 and the second wall panel 214 are connected and parallel, so that the first end face 1121 faces the second end face 2141.
[0042] Furthermore, an extension tube 30 is connected to the first wall panel 112 or the second wall panel 214. When the atomizing assembly 10 is assembled with the battery assembly 20, the extension tube 30 extends from the first wall panel 112 into the first chamber 111, and can extend in a straight line within the first chamber 111, or it can extend in a curve within the first chamber 111. When the extension tube 30 extends in a straight line, the angle it forms with the first end face 1121 can be 90°, 85°, or 95°. It can be understood that the angle should be any angle other than 0°, and the extension height of the extension tube 30 can be flush with the position of the liquid guide 13.
[0043] After the atomizing component 10 is assembled with the battery component 20, the extension tube 30 is used to connect the first chamber 111 and the second chamber 211. When the user inhales using the electronic atomizer 100, a negative pressure is formed in the first chamber 111. The air in the second chamber 211 can flow into the first chamber 111 through the extension tube 30 and mix with the atomizing liquid in the first chamber 111 before being inhaled by the user.
[0044] The extension tube 30 can be circular or polygonal in shape. The extension tube 30 can be made of plastic, including but not limited to PC (polycarbonate), ABS (acrylonitrile-butadiene-styrene copolymer), epoxy resin, etc.; of course, it can also be made of metal, including stainless steel, copper, aluminum alloy, etc.
[0045] This invention provides an electronic atomizer 100, which has a first chamber 111 enclosed by an atomizing component 10 and a second chamber 211 enclosed by a battery component 20. When the atomizing component 10 and the battery component 20 are assembled, the first chamber 111 and the second chamber 211 can be connected through an extension tube 30, and the first chamber 111 also accommodates at least a portion of the extension tube 30. This allows the negative pressure area of the gas convergence at the connection between the atomizing component 10 and the battery component 20 to move closer to the user's mouth when the user uses the electronic atomizer 100. This ensures that when the user inhales in small sips or when the inhalation intensity is insufficient, the negative pressure area of the gas convergence is closer to the mouth, ensuring that sufficient gas flows into the atomizing component 10 to mix with the atomized droplets and be inhaled by the user.
[0046] In one implementation method, please refer to Figure 4 The battery assembly 20 has a first air inlet 216 and a second air inlet 217. The battery assembly 20 also encloses a third chamber 212. The first air inlet 216 connects the second chamber 211 and the external space, and the second air inlet 217 connects the third chamber 212 and the external space. A control valve 2151 is provided between the third chamber 212 and the second chamber 211. The control valve 2151 is used to regulate the flow of air from the third chamber 212 into the second chamber 211.
[0047] Specifically, the first housing 11 is also provided with a third wall plate 215. The third wall plate 215 is used to separate the interior of the first housing 11 to form a second chamber 211 and a third chamber 212. The control valve 2151 is provided on the third wall plate 215, and the control valve 2151 can be closed or opened according to the air pressure difference between the second chamber 211 and the third chamber 212.
[0048] When a user inhales using the electronic atomizer 100, air from the second chamber 211 flows into the first chamber 111. External air can enter the second chamber 211 through the first air inlet 216 to balance the air pressure in the second chamber 211. When the air pressure in the second chamber 211 continues to drop to the point that the air flowing into the first air inlet 216 cannot balance it, the control valve 2151 can open under the action of the air pressure difference, allowing air from the third chamber 212 to flow into the second chamber 211.
[0049] In one embodiment, please refer to Figure 4 and Figure 10 The extension tube 30 is connected to the first end face 1121, and a second opening 2142 is provided on the second end face 2141 to communicate with the second chamber 211. The second opening 2142 is used to communicate with the lumen 31 of the extension tube.
[0050] Specifically, the second opening 2142 can be offset from the lumen 31 of the extension tube. The second opening 2142 is arc-shaped and can be located at the edge where the second wall plate 214 connects to the second housing 21, that is, the second wall plate 214 and the second housing 21 together enclose the second opening 2142. The first air inlet 216 can be located on the second housing 21 that encloses the part of the second opening 2142.
[0051] Please refer to Figure 8 The second end face 2141 is also provided with a guide channel 2144, which is connected to the second opening 2142. When the user inhales using the electronic atomizer 100, the air in the second chamber 211 and the air flowing in through the first air inlet 216 simultaneously enter the guide channel 2144 and flow into the first chamber 111 through the extension tube 30.
[0052] In other embodiments, the second opening 2142 may also be circular or polygonal, and the diameter of the second opening 2142 may be the same as the diameter of the extension tube 30. The second opening 2142 may also be arranged side by side with the lumen 31 of the extension tube.
[0053] By connecting the extension tube 30 to the first end face 1121 and opening the second opening 2142, the air in the second chamber 211 can flow out through the second opening 2142 and then converge in the first chamber 111 after changing its flow direction through the extension tube 30; furthermore, the gas flows in the same direction inside the extension tube 30 and converges, which reduces the convection effect when the gas converges.
[0054] In one embodiment, please refer to Figure 9 and Figure 10 One end of the extension tube 30 is connected to the first end face 1121; or, the extension tube 30 extends at least partially from the first end face 1121 from the first chamber 111.
[0055] Specifically, the extension tube 30 is integrally fixed to the first wall panel 112, meaning that the extension tube 30 and the first housing 11 can be manufactured as a single piece, which can be achieved by molding and drilling a plate, injection molding, or 3D printing. Of course, the extension tube 30 can also be detachably fixed to the first wall panel 112, meaning that the extension tube 30 and the first housing 11 are connected by threads or by snap-fit connections.
[0056] In this embodiment, the extension tube 30 and the first wall panel 112 are an integral structure, and the extension tube 30 does not protrude from the first end face 1121. When the user inhales using the electronic atomizer 100, the air in the second chamber 211 can flow through the second opening 2142 into the gap between the first wall panel 112 and the second wall panel 214, and then flow along the gap into the lumen 31 of the extension tube to the first chamber 111.
[0057] In other embodiments, the extension tube 30 and the first wall panel 112 are integrally formed, and at least a portion of the extension tube 30 can extend from the first end face 1121, i.e., the extension tube 30 protrudes from the first end face 1121. When the atomizing assembly 10 is assembled with the battery assembly 20, the protruding portion of the extension tube 30 can extend into the second opening 2142, thereby allowing the cavity 31 of the extension tube to communicate directly with the second opening 2142; when the user inhales using the electronic atomizer 100, the air in the second chamber 211 can flow into the cavity 31 of the extension tube and into the first chamber 111 through the second opening 2142.
[0058] By designing the connection method between the extension tube 30 and the first end face 1121, different connection methods between the atomizing component 10 and the battery component 20 can be designed, which further unifies the direction of air flowing from the second chamber 211 into the first chamber 111, reduces the impact effect of gas convection, and makes it easier for gas to flow into the first chamber 111.
[0059] In one embodiment, please refer to Figure 11A first opening 1122 communicating with the first chamber 111 is provided on the first end face 1121. An extension tube 30 is connected to the second end face 2141, and the lumen 31 of the extension tube is communicating with the second chamber 211. The extension tube 30 is used to extend into the first chamber 111 from the first opening 1122.
[0060] Specifically, the shape of the first opening 1122 can be circular or polygonal. Understandably, the shape of the first opening 1122 should be consistent with the cross-sectional shape of the extension tube 30, and the diameter of the first opening 1122 should not be less than the outer diameter of the extension tube 30. A sealing ring can be provided at the connection between the first opening 1122 and the extension tube 30 to prevent air leakage when the user inhales; of course, the first opening 1122 and the extension tube 30 can also be sealed by adding a rough surface or other methods.
[0061] Before the atomizing component 10 is assembled with the battery component 20, the first opening 1122 can be sealed with a thin film (not shown in the figure) to prevent external contamination of the first chamber 111 when the atomizing component 10 is stored separately; the thin film can be made of plastic or metal. When the atomizing component 10 is assembled with the battery component 20, the extension tube 30 can pierce the thin film and extend into the first chamber 111.
[0062] By connecting the extension tube 30 to the second end face 2141 and opening the first opening 1122, the extension tube 30 can be fixed to the second wall panel 214. When the atomizing component 10 and the battery component 20 are assembled, the extension tube 30 can extend into the first chamber 111 through the first opening 1122. Furthermore, gas can flow directly from the second chamber 211 into the first chamber 111 through the extension tube 30. The gas on the wall flows between the first wall and the second wall, resulting in air leakage.
[0063] In one embodiment, please refer to Figure 11 and Figure 12 One end of the extension tube 30 is connected to the second end face 2141; or, at least part of the extension tube 30 extends into the second chamber 211 from the second end face 2141.
[0064] Specifically, the extension tube 30 is integrally fixed to the second wall panel 214, meaning that the extension tube 30 and the second housing 21 can be manufactured as a single piece, which can be achieved by molding and drilling plates, injection molding, or 3D printing. Of course, the extension tube 30 can also be detachably fixed to the second wall panel 214, meaning that the extension tube 30 and the first housing 11 are connected by threads or by snap-fit connections.
[0065] In other embodiments, the extension tube 30 and the second wall panel 214 are integrally formed. One end of the extension tube 30 extends in a straight line in the mounting groove 213, and the other end does not protrude from the second wall panel 214 and extends into the second chamber 211. When the atomizing assembly 10 is assembled with the battery assembly 20, the portion of the extension tube 30 located in the mounting groove 213 passes through the first opening 1122 and extends into the first chamber 111. In other embodiments, the extension tube 30 and the first wall panel 112 are integrally formed. One end of the extension tube 30 extends in a straight line in the mounting groove 213, and the other end protrudes from the second wall panel 214 and extends into the second chamber 211. When a user inhales using the electronic atomizer 100, air in the second chamber 211 can flow into the first chamber 111 through the lumen 31 of the extension tube.
[0066] By designing the connection method of the extension tube 30 and the second end face 2141, different connection methods of the atomizing component 10 and the battery component 20 can be designed, which further unifies the direction of air flowing from the second chamber 211 into the first chamber 111, reduces the impact effect of gas convection, and makes it easier for gas to flow into the first chamber 111.
[0067] Please refer to one embodiment. Figures 5 to 7 There are multiple extension tubes 30, and the multiple extension tubes 30 are arranged in a rotationally symmetrical manner.
[0068] Specifically, the number of extension tubes 30 can be four, and the extension tubes 30 can be arranged in a spiral square around the center of the first end face 1121 or the second end face 2141. The shape of the first end face 1121 and the second wall can be circular, elliptical or polygonal.
[0069] Of course, in other embodiments, the extension tubes 30 may also be arranged in a circular pattern; or they may be arranged in a straight line along one direction.
[0070] By designing a rotationally symmetrical arrangement of multiple extension tubes 30, the airflow into the first chamber 111 through the extension tubes 30 can be increased, and the blind insertion of the atomizing component 10 and the battery component 20 can be realized, that is, the atomizing component 10 and the battery component 20 can be assembled after being aligned at any angle.
[0071] In one implementation method, please refer to Figure 3 , Figure 4 and Figure 8 The electronic atomizer 100 includes a start tube 40, a second chamber 211 containing a microphone start chamber 2111, and a third opening 2143 communicating with the microphone start chamber 2111 from the second end face 2141. The start tube 40 communicates with the third opening 2143 and the first chamber 111.
[0072] Specifically, the microphone 22 is housed in the microphone start chamber 2111. The air in the microphone start chamber 2111 can flow into the first chamber 111 through the third opening 2143 and the lumen 41 of the start tube. When the microphone 22 senses that the air pressure in the microphone start chamber 2111 is negative, it can transmit an electrical signal to the controller 24 to start the electronic atomizer 100.
[0073] By designing the start tube 40 and the third opening 2143, the first chamber 111 and the microphone start chamber 2111 can be connected separately, making it easier to start the microphone 22. When the user uses the electronic atomizer 100, the air in the microphone start chamber 2111 directly enters the first chamber 111 through the third opening 2143 and the lumen 41 of the start tube, creating a negative pressure in the microphone start chamber 2111. The microphone 22 can thus sense the negative pressure and transmit an electrical signal to the controller 24. Moreover, external air is less likely to flow back into the microphone start chamber 2111, causing the microphone 22 to lose its sensing function.
[0074] In one implementation method, please refer to Figure 9 and Figure 10 The starter tube 40 is connected to the first end face 1121 and extends into the first chamber 111. There are multiple starter tubes 40 arranged in a rotationally symmetrical manner. The third opening 2143 is connected to one of the starter tubes 40.
[0075] Specifically, the starting pipe 40 is integrally fixed to the first wall panel 112, that is, the starting pipe 40 and the first housing 11 can be manufactured as a single piece, and the manufacturing method can be plate molding, injection molding, or 3D printing. Of course, the starting pipe 40 can also be detachably fixed to the first wall panel 112, that is, the starting pipe 40 and the first housing 11 are connected by threads or by snap-fit.
[0076] In this embodiment, the start tube 40 and the first wall panel 112 are an integral structure, and the start tube 40 does not protrude from the first end face 1121. A silicone ring (not shown in the figure) can be provided between the start tube 40 and the third opening 2143, so that the third opening 2143 and the cavity 41 of the start tube are sealed. When the user inhales using the electronic atomizer 100, the air in the microphone start chamber 2111 can flow through the third opening 2143 through the cavity 41 of the start tube to the first chamber 111. The microphone start chamber 2111 is in a negative pressure state, and the microphone 22 is activated.
[0077] The start tube 40 can also extend at least partially from the first end face 1121, that is, the start tube 40 protrudes from the first end face 1121. When the atomizing assembly 10 is assembled with the battery assembly 20, the protruding part of the start tube 40 can extend into the third opening 2143.
[0078] In other embodiments, please refer to Figure 11and Figure 12 The start tube 40 is connected to the second end face 2141. The first end face 1121 has multiple start holes 1123. The multiple start holes 1123 are arranged in a rotationally symmetrical manner. The start tube 40 passes through one of the start holes 1123 and enters the first chamber 111.
[0079] Specifically, the starter tube 40 can be integrally fixed to the second wall panel 214, that is, the starter tube 40 and the second housing 21 can be integrally molded and manufactured, and the manufacturing method can be plate molded and drilled, injection molded or 3D printed. Of course, the starter tube 40 can also be detachably fixed to the second wall panel 214, that is, the starter tube 40 and the first housing 11 are connected by threads or by snaps.
[0080] Furthermore, one end of the start tube 40 extends in a straight line in the assembly groove 213, and the other end can protrude from the second wall plate 214 and extend into the microphone start chamber 2111, or it can extend into the microphone start chamber 2111. When the atomizing assembly 10 is assembled with the battery assembly 20, the portion of the start tube 40 located in the assembly groove 213 passes through the start hole 1123 and extends into the first chamber 111.
[0081] The material of the starter tube 40 can be plastic, including but not limited to PC (polycarbonate), ABS (acrylonitrile-butadiene-styrene copolymer), epoxy resin, etc.; of course, it can also be metal, including stainless steel, copper, aluminum alloy, etc.
[0082] By designing the connection method between the start tube 40 and the first end face 1121, or the connection method between the start tube 40 and the second end face 2141, the start tube 40 will not leak after it is connected to the microphone start chamber 2111; that is, when the gas flows out of the microphone start chamber 2111 and the negative pressure intensity is small, the gas outside the microphone start chamber 2111 will not flow into the microphone start chamber 2111 through the gap between the atomizing component 20 and the battery component 30.
[0083] In one implementation method, please refer to Figure 3 and Figure 5 The shape and structure of the starting tube 40 are the same as those of the extension tube 30. Specifically, the lumen 41 of the starting tube and the lumen 31 of the extension tube can both be circular or polygonal. Furthermore, the angles formed by the starting tube 40 and the extension tube 30 with the first end face 1121 can be the same. Multiple starting tubes 40 and multiple extension tubes 30 can be arranged at intervals. Of course, in other embodiments, the shape and structure of the starting tube 40 may differ from those of the extension tube 30.
[0084] By setting the starting pipe 40 in the same way as the extension pipe 30, it is beneficial for the gas flowing into the first chamber 111 through the starting pipe 40 and the gas flowing into the first chamber 111 through the extension pipe 30 to converge in the same direction, and the flow rate when the gas converges is also the same, which reduces the convection effect between the gases.
[0085] In one embodiment, please refer to Figure 1 , Figure 2 and Figure 4 The atomizing assembly 10 also includes an atomizing element 14, and the battery assembly 20 also includes a controller 24. The atomizing element 14 is housed in a first chamber 111, and the controller 24 is housed in a third chamber 212. The controller 24 is electrically connected to the atomizing element 14.
[0086] Specifically, the atomizing assembly 10 further includes a positive electrode 15, a negative electrode 16, and a first magnet 17, while the battery assembly 20 further includes a spring electrode 25 and a second magnet 26. The positive electrode 15, negative electrode 16, and first magnet 17 are housed in the first chamber 111 and partially embedded in the first wall panel 112, not protruding from the first end face 1121. The positive electrode 15 and negative electrode 16 are sleeved on the outer periphery of the atomizing component 14 for supplying power to the atomizing component 14. The spring electrode 25 and second magnet 26 are housed in the second chamber 211 and partially embedded in the second wall panel 214, with the spring electrode 25 at least partially protruding from the second end face 2141. The spring electrode 25 is connected to the battery 23 for transmitting current.
[0087] When the atomizing component 10 is assembled with the battery component 20, the spring electrode 25 is connected to the positive electrode 15 and the negative electrode 16 respectively, so that the battery 23 and the atomizing component 14 form a circuit. When the microphone 22 transmits the signal to the controller 24, the controller 24 controls the battery 23 to supply power to the atomizing component 14, so that the electronic atomizer 100 starts to work.
[0088] The above description discloses only one preferred embodiment of the present invention, and should not be construed as limiting the scope of the present invention. Those skilled in the art will understand that all or part of the processes of the above embodiments can be implemented, and equivalent changes made in accordance with the claims of the present invention are still within the scope of the invention.
Claims
1. An electronic atomizer, characterized in that, The electronic atomizer includes an atomizing component and a battery component; The atomizing component includes a first housing that encloses a first chamber. The first housing includes a first wall panel that includes a first end face located on the outer periphery of the first housing. The battery assembly includes a second housing, the second housing includes a second wall panel, the second wall panel separates the interior of the second housing to form a second chamber and an assembly groove, and the second wall panel includes a second end face; The first wall panel or the second wall panel has an integral extension tube. When the atomizing component is assembled with the battery component, the atomizing component is at least partially housed in the assembly groove. The first end face is in contact with the second end face. The extension tube extends from the first wall panel into the first chamber. The extension direction of the extension tube is at an angle to the first end face. The extension tube connects the first chamber and the second chamber.
2. The electronic atomizer as described in claim 1, characterized in that, The extension tube is connected to the first end face, and a second opening is provided on the second end face to communicate with the second chamber. The second opening is used to communicate with the lumen of the extension tube.
3. The electronic atomizer as described in claim 2, characterized in that, One end of the extension tube is connected to the first end face; or, the extension tube extends at least partially from the first end face from the first chamber.
4. The electronic atomizer as described in claim 1, characterized in that, A first opening communicating with the first chamber is provided on the first end face, the extension tube is connected to the second end face, and the lumen of the extension tube is communicating with the second chamber. The extension tube is used to extend into the first chamber from the first opening.
5. The electronic atomizer as described in claim 4, characterized in that, One end of the extension tube is connected to the second end face; or, the extension tube extends at least partially from the second end face into the second chamber.
6. The electronic atomizer as described in claim 1, characterized in that, The number of extension tubes is multiple, and the multiple extension tubes are arranged in a rotationally symmetrical manner.
7. The electronic atomizer as described in claim 6, characterized in that, The electronic atomizer includes a start tube, a second chamber housing a microphone start chamber, and a third opening communicating with the microphone start chamber is provided from the second end face. The start tube communicates with the third opening and the first chamber.
8. The electronic atomizer as described in claim 7, characterized in that, The starting tube is connected to the first end face and extends into the first chamber. There are multiple starting tubes arranged in a rotationally symmetrical manner. The third opening communicates with one of the starting tubes. Alternatively, the starting tube is connected to the second end face. The first end face has multiple starting holes arranged in a rotationally symmetrical manner. The starting tube passes through one of the starting holes and enters the first chamber.
9. The electronic atomizer as described in claim 7, characterized in that, The shape and structure of the starting tube are the same as those of the extension tube.
10. The electronic atomizer as described in claim 1, characterized in that, The battery assembly has a first air inlet and a second air inlet. The battery assembly also encloses a third chamber. The first air inlet connects the second chamber to the external space, and the second air inlet connects the third chamber to the external space. A control valve is provided between the third chamber and the second chamber. The control valve is used to regulate the flow of air from the third chamber into the second chamber.