Atomization assembly, atomization module and electronic atomization device
Patent Information
- Application Number
- CN202521885695.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-02
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2035-09-02
AI Technical Summary
[0004]本申请的主要目的在于提供一种雾化组件、雾化模块及电子雾化装置,以解决现有技术中引脚装配时歪曲形变不变弯折的问题
[0037] In the atomizing assembly of this application, by providing the sealing hole and a plurality of insertion holes adjacent to the sealing hole on the first sealing member, inserting one end of the atomizing core into the sealing hole, and passing each of the pins of the atomizing core through the sealing hole respectively, and bending the portion of each pin extending out of the sealing hole and inserting it into the adjacent insertion hole, the pins can be prevented from being distorted or deformed during the process of passing through the first sealing member. This allows each pin to maintain its original shape after passing through the first sealing member, facilitates bending, and maintains consistency after bending.
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Figure CN224710555U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of aerosol generation technology, and more specifically, to an atomizing component, an atomizing module, and an electronic atomizing device. Background Technology
[0002] Electronic atomizing devices are devices that use an atomizing core to heat an aerosol matrix, causing the heated aerosol matrix to atomize and generate an aerosol for the user to inhale.
[0003] In existing atomizing components, the pins of the heating element are usually directly pierced through the sealing seat during assembly and electrically connected to the electrode inside the sealing seat. Since each pin pierces the sealing seat independently, the pins are distorted and deformed during the piercing process, and are not easy to bend, affecting the consistency after bending. Utility Model Content
[0004] The main objective of this application is to provide an atomizing component, atomizing module, and electronic atomizing device to solve the problem of distorted deformation without bending during pin assembly in the prior art.
[0005] On one hand, this application provides an atomizing assembly, the atomizing assembly including a first sealing member and an atomizing core, the first sealing member having a sealing hole and at least two insertion holes, the sealing hole penetrating the first sealing member along a first direction, one end of the atomizing core being inserted into the sealing hole along the first direction, and the end of the atomizing core inserted into the sealing hole not protruding from the sealing hole, each of the insertion holes being adjacent to the sealing hole, and each of the insertion holes not penetrating the first sealing member along the first direction, and the opening end of each of the insertion holes facing away from the atomizing core;
[0006] The atomizing core includes at least two pins, each of which passes through the sealing hole along the first direction, and the portion of each pin extending out of the sealing hole is bent and inserted into the adjacent insertion hole.
[0007] Furthermore, the sealing hole includes a first hole and a second hole, wherein the first hole and the second hole communicate along the first direction;
[0008] The diameter of the second hole is smaller than that of the first hole, so that there is a limiting surface between the first hole and the second hole facing the atomizing core. The atomizing core is inserted into the first hole and abuts against the limiting surface.
[0009] Furthermore, the second hole includes an air passage area and multiple wire passage areas, the multiple wire passage areas are respectively connected to the outer periphery of the air passage area, each pin passes through its corresponding wire passage area along the first direction, and the portion of each pin extending out of the wire passage area is bent and inserted into the adjacent socket.
[0010] Furthermore, during the process of inserting the atomizing core into the sealing hole along the first direction, each of the pins is directly opposite a wire-passing area.
[0011] Furthermore, the atomizing core includes three pins, the second hole includes three wire passage areas, the first seal has three insertion holes, each insertion hole is adjacent to one wire passage area, the three pins pass through one wire passage area along the first direction, and the portion of each pin extending out of the wire passage area is bent and inserted into the adjacent insertion hole.
[0012] Furthermore, the wall of the first hole protrudes inward along the radial direction of the first hole to form at least one sealing flange;
[0013] The atomizing core also includes a tube body, a liquid guiding component, and a heating element. The liquid guiding component is inserted into the first hole along the first direction at one end of the tube body near the first sealing component and is sealed and connected to the sealing flange. The liquid guiding component is at least partially curled and attached to the inner wall of the tube body. The heating element is curled and attached to the inner wall of the liquid guiding component and is electrically connected to each of the pins.
[0014] Furthermore, the atomizing assembly also includes a liquid storage component and a liquid storage chamber. The liquid storage component is sleeved on the outer periphery of the atomizing core along the first direction and abuts against the first sealing component. The liquid storage chamber is sleeved on the outer periphery of the liquid storage component along the first direction and is sealed to the first sealing component.
[0015] The liquid storage tank includes a first section and a second section arranged sequentially along the first direction. The first inner wall of the first section is inclinedly connected to the second inner wall of the second section, and the aperture of the end of the first section away from the second section is larger than the aperture of the second section.
[0016] Furthermore, the liquid storage device includes a central hole and a slit. The central hole penetrates the liquid storage device along the first direction, the slit penetrates the liquid storage device along the first direction, and penetrates the central hole and the outer wall of the liquid storage device along the second direction, so that the liquid storage device located on both sides of the slit can move away from each other under the action of external force to open the central hole. The second direction and the first direction are two directions perpendicular to each other.
[0017] The liquid guiding component includes a first part and a second part. The first part is curled and attached to the inner wall of the tube, and the second part extends out of the tube along the second direction and is located in the slit. The heating element is curled and attached to the inner wall of the first part.
[0018] Furthermore, the tube body includes a first tube and a second tube. The first tube has a liquid passage hole and a notch. The liquid passage hole penetrates the first tube in the radial direction. The second part extends out of the first tube at the notch and is located within the slit. The second tube is inserted into the first tube in the first direction.
[0019] When the liquid storage component is sleeved on the outer periphery of the atomizing core along the first direction, the end of the first tube away from the second tube is inserted into the sealing hole, and the end of the second tube away from the first tube extends out of the liquid storage component.
[0020] Furthermore, the first seal has a first sealing connection portion and a first sealing body, wherein the first sealing connection portion is located on one side of the first sealing body along the first direction;
[0021] The end of the liquid storage tank near the first section is sealed and inserted into the outer periphery of the first sealing connection, and the end face of the liquid storage tank near the first section abuts against the first sealing body.
[0022] The first inner wall does not contact the outside of the first sealing connection, and the second inner wall is sealed to the first sealing connection.
[0023] Furthermore, the liquid storage tank also includes a third section, which is connected to the end of the second section away from the first section along the first direction, and the third inner wall of the third section is provided with a limiting rib;
[0024] When the atomizing component is sleeved on the outer periphery of the liquid storage member along the first direction and is sealed to the first sealing member, the end of the liquid storage member away from the first sealing member abuts against the limiting rib.
[0025] On the other hand, this application also provides an atomizing module, the atomizing module including any of the atomizing components described above; and
[0026] The nozzle is connected along the first direction to the end of the atomizing assembly away from the first seal and is in communication with the atomizing core.
[0027] Furthermore, the atomizing module also includes a second sealing element, which is sealed and connected along the first direction between the end of the liquid storage chamber away from the first sealing element and the mouthpiece, and the second sealing element has an air passage hole that connects the atomizing core and the mouthpiece.
[0028] Furthermore, the liquid storage tank includes a first opening and a second opening, the first sealing element is sealed to the first opening, and the second sealing element is sealed to the second opening;
[0029] Before the second seal and the nozzle are assembled, the second opening is the inlet for the aerosol matrix.
[0030] Furthermore, the atomizing module also includes a liquid suction element, which is disposed between the nozzle and the second sealing element along the first direction, and the liquid suction element is provided with a through hole along the first direction, the through hole connecting the nozzle and the air passage.
[0031] Furthermore, this application also provides an electronic atomizing device, the electronic atomizing device comprising the atomizing module described in any of the preceding claims; and
[0032] A control module, wherein the atomizing module is connected to the control module along the first direction.
[0033] Furthermore, the control module includes:
[0034] The bracket includes a first frame and a second frame, the first frame extending along a first direction, the second frame extending along a second direction perpendicular to the first direction, and the atomizing module connected to the second frame along the first direction and parallel to the first frame;
[0035] A power supply component and a control component are provided. The power supply component is located on the first frame, and the control component is located on the second frame, and are electrically connected to the power supply component and the atomizing module, respectively.
[0036] Furthermore, the electronic atomizing device also includes a housing module, which includes a first housing and a second housing. The first housing is connected to the first frame along the second direction, and the second housing is connected to the outside of the second frame and the atomizing component along the second direction, and is connected to the first housing and / or the first frame. The mouthpiece passes through the second housing along the first direction and is connected to the end of the atomizing component away from the second frame.
[0037] In the atomizing assembly of this application, by providing the sealing hole and a plurality of insertion holes adjacent to the sealing hole on the first sealing member, inserting one end of the atomizing core into the sealing hole, and passing each of the pins of the atomizing core through the sealing hole respectively, and bending the portion of each pin extending out of the sealing hole and inserting it into the adjacent insertion hole, the pins can be prevented from being distorted or deformed during the process of passing through the first sealing member. This allows each pin to maintain its original shape after passing through the first sealing member, facilitates bending, and maintains consistency after bending. Attached Figure Description
[0038] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:
[0039] Figure 1 This is a schematic diagram of an atomizing component in one embodiment of this application.
[0040] Figure 2 This is a schematic diagram of the atomizing component from another perspective in one embodiment of this application.
[0041] Figure 3 for Figure 1 Overall sectional view along the A-A1 direction.
[0042] Figure 4 for Figure 1 A cross-sectional view along the A-A1 direction, showing the liquid storage tank.
[0043] Figure 5 This is a schematic diagram of a liquid storage device in one embodiment of this application.
[0044] Figure 6 for Figure 1 A cross-sectional view along the A-A1 direction, showing the first seal.
[0045] Figure 7 This is a schematic diagram of the overall atomizing core in one embodiment of this application.
[0046] Figure 8 for Figure 1 A cross-sectional view along the A-A1 direction, showing the atomizing core.
[0047] Figure 9 This is a schematic diagram of the atomizing module in one embodiment of this application.
[0048] Figure 10 for Figure 9 Overall sectional view along the B-B1 direction.
[0049] Figure 11 This is a schematic diagram of the overall electronic atomizing device in one embodiment of this application.
[0050] Figure 12 for Figure 11 Overall sectional view along the C-C1 direction.
[0051] Figure 13 for Figure 11 Overall sectional view along the D-D1 direction.
[0052] Figure 14This is a schematic diagram of an electronic atomizing device in one embodiment of this application, where the first housing is hidden.
[0053] Figure 15 This is a schematic diagram of the control module in one embodiment of this application.
[0054] Figure 16 for Figure 15 An overall sectional view along the F-F1 direction shows the adjusting member in the second position.
[0055] Figure 17 for Figure 11 Overall sectional view along the E-E1 direction.
[0056] Figure 18 This is a schematic diagram of an electronic atomizing device in another embodiment of this application, where the first housing is hidden.
[0057] Figure 19 This is a schematic diagram of the control module in another embodiment disclosed in this application.
[0058] Figure 20 for Figure 19 An overall sectional view along the G-G1 direction shows the adjusting member in the first position.
[0059] Figure 21 This is a schematic diagram of the adjusting member in one embodiment of this application.
[0060] The above figures include the following reference numerals:
[0061] Electronic atomizing device 100, atomizing module 10, atomizing component 11, first seal 111, sealing hole 1111, first hole 11111, second hole 11112, air passage area 111121, wire passage area 111122, limiting surface 11113, sealing flange 11114, first sealing connection part 1112, first sealing body 1113, insertion hole 1114, first annular sealing body 1115, atomizing core 112, tube body 1121, first tube 11211, liquid passage hole 112111, notch 112112, second tube 11212, liquid guide 1122, first part 11 221, Second Part 11222, Heating Element 1123, Mounting Element 1124, Pin 1125, Wiring Hole 1126, Liquid Storage Element 113, Center Hole 1131, Slit 1132, First Groove 1133, Second Groove 1134, Liquid Storage Chamber 114, First Section 1141, First Inner Wall 11411, Second Section 1142, Second Inner Wall 11421, Third Section 1143, Third Inner Wall 11431, Limiting Rib 1144, First Opening 1145, Second Opening 1146, Suction Nozzle 12, Second Sealing Element 13, Vent Hole 131, Liquid Suction Element 14, Through Hole 141, Control Module 20, control component 21, first control circuit board 211, electrode 212, adjusting component 213, air inlet 2131, adjusting plate 2132, limiting connection 2133, elastic snap-fit 2134, pressure regulating switch 214, bracket 22, first frame 221, positioning post 2211, second frame 222, power supply component 23, battery 231, charging interface 232, third seal 24, plug-in part 241, air vent 242, third annular seal 243, third sealing body 244, plug-in groove 25, receiving cavity 26, limiting support component 27, display component 28, second The system includes a control circuit board 281, a light-emitting component 282, a light guide component 283, an annular light-emitting surface 2831, a first limiting frame 2832, a first latching arm 2833, an annular curved surface 2834, a positioning hole 2835, a light-shielding component 284, a second limiting frame 2841, a second latching arm 2842, a display component 285, a curved surface 2851, a light-transmitting pattern 2852, a first display portion 2853, a second display portion 2854, a light-transmitting plane 2855, a display screen 286, a housing module 30, a first housing 31, a second housing 32, a toggle component 40, a battery compartment 50, a first direction L1, and a second direction L2. Detailed Implementation
[0062] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0063] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0064] Unless otherwise specifically stated, the relative arrangement, numerical expressions, and values of the components and steps described in these embodiments do not limit the scope of this application. It should also be understood that, for ease of description, the dimensions of the various parts shown in the drawings are not drawn to actual scale. Techniques, methods, and devices known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and devices should be considered part of the specification. In all examples shown and discussed herein, any specific values should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters in the following drawings denote similar items; therefore, once an item is defined in one drawing, it need not be further discussed in subsequent drawings.
[0065] Please see Figure 1-21 As shown, this application provides an atomizing component 11, an atomizing module 10, and an electronic atomizing device 100. The electronic atomizing device 100 includes the atomizing module 10, and the atomizing module 10 includes the atomizing component 11.
[0066] Please see Figure 1-8 As shown, the atomizing assembly 11 includes a first sealing element 111, an atomizing core 112, a liquid storage element 113, and a liquid storage chamber 114. The first sealing element 111 has a sealing hole 1111, which penetrates the first sealing element 111 along a first direction L1; the atomizing core 112 is inserted into the sealing hole 1111 along the first direction L1, and one end of the atomizing core 112 inserted into the sealing hole 1111 does not protrude from the sealing hole 1111; the liquid storage element 113 is sleeved on the outer periphery of the atomizing core 112 along the first direction L1 and abuts against the first sealing element 111; the liquid storage chamber 114 is sleeved on the outer periphery of the liquid storage element 113 along the first direction L1 and is sealed to the first sealing element 111.
[0067] The liquid storage chamber 114 includes a first segment 1141 and a second segment 1142 arranged sequentially along the first direction L1. The first inner wall 11411 of the first segment 1141 is inclinedly connected to the second inner wall 11421 of the second segment 1142, and the aperture of the end of the first segment 1141 away from the second segment 1142 is larger than the aperture of the second segment 1142. This allows the liquid storage component 113 to be assembled on the outer periphery of the atomizing core 112, and then the liquid storage chamber 114 to be assembled on the outer periphery of the liquid storage component 113 and connected to the first sealing member 1. During the sealing connection process, the inclined first inner wall 11411 can be used to align with the liquid storage component 113 and the first sealing component 111, respectively, thereby reducing the difficulty of aligning the liquid storage tank 114 with the liquid storage component 113 and the first sealing component 111. This makes the assembly of the liquid storage tank 114 with the liquid storage component 113 and the first sealing component 111 simpler and more efficient. Furthermore, the inclined first inner wall 11411 can be used to achieve automated assembly of the liquid storage tank 114, further improving assembly efficiency.
[0068] In addition, by assembling the atomizing core 112, the liquid storage component 113, and the liquid storage chamber 114 sequentially along the first direction L1, the assembly difficulty can be reduced and the assembly efficiency improved.
[0069] Please see Figure 3 as well as Figure 6 As shown, the first sealing member 111 has a first sealing connection portion 1112 and a first sealing body 1113. The first sealing connection portion 1112 is located on one side of the first sealing body 1113 along the first direction L1. The end of the liquid storage tank 114 near the first segment 1141 is sealed and inserted into the outer periphery of the first sealing connection portion 1112, and the end face of the first segment 1141 away from the second segment 1142 abuts against the first sealing body 1113, so that the first sealing member 111 is sealed and connected to the liquid storage tank 114.
[0070] Wherein, the first inner wall 11411 does not contact the outside of the first sealing connection 1112, and the second inner wall 11421 is sealed to the first sealing connection 1112. Therefore, during the assembly process of the liquid storage tank 114 with the liquid storage component 113 and the first sealing component 111, the first inner wall 11411 can be aligned and guided with the outer periphery of the liquid storage component 113 and with the outer periphery of the first sealing connection 1112, thereby enabling the liquid storage tank 114 to be quickly and accurately assembled with the first sealing component 111.
[0071] Please see Figure 3-4As shown, the liquid storage tank 114 further includes a third segment 1143, which is connected along the first direction L1 to the end of the second segment 1142 away from the first segment 1141, so that the first segment 1141, the second segment 1142, and the third segment 1143 are arranged sequentially along the first direction L1. The third inner wall 11431 of the third segment 1143 is provided with limiting ribs 1144, which extend along the first direction L1 toward the first segment 1141.
[0072] When the atomizing component 11 is sleeved on the outer periphery of the liquid storage component 113 along the first direction L1 and is sealed to the first sealing component 111, the end of the liquid storage component 113 away from the first sealing component 111 abuts against the limiting rib 1144, thereby enabling the liquid storage component 113 to be stably confined within the liquid storage chamber 114 along the first direction L1.
[0073] The inner wall of the third segment 1143 is provided with a plurality of limiting ribs 1144 at intervals, and the plurality of limiting ribs 1144 abut against the end of the liquid storage component 113 away from the first sealing component 111. The liquid storage component 113 is made of porous expandable cotton material. Therefore, when an aerosol matrix is added into the liquid storage chamber 114, the liquid storage component 113 will absorb the added aerosol matrix and expand. Therefore, the provision of a plurality of spaced limiting ribs 1144 can also form an expansion space between adjacent limiting ribs 1144, so that the liquid storage component 113 can absorb more aerosol matrix.
[0074] Please see Figure 5 As shown, the liquid storage component 113 includes a central hole 1131 and a slit 1132. The central hole 1131 penetrates the liquid storage component 113 along the first direction L1, and the slit 1132 penetrates the liquid storage component 113 along the first direction L1 and penetrates the central hole 1131 and the outer wall of the liquid storage component 113 along the second direction L2, so that the portions of the liquid storage component 113 located on both sides of the slit 1132 can be moved away from each other under the action of external force to unfold the central hole 1131. This allows the central hole 1131 to be easily unfolded and allowed to pass through the atomizing core 112 along the first direction L1 during the assembly of the liquid storage component 113 to the outer periphery of the atomizing core 112.
[0075] Wherein, the second direction L2 and the first direction L1 are two mutually perpendicular directions, so that the portions of the liquid storage component 113 on both sides of the cut 1132 are moved away from each other under the action of external force, so that the unfolded central hole 1131 is regular. Therefore, the difficulty of the atomizing core 112 passing through the unfolded central hole 1131 can be further reduced.
[0076] Please see Figure 7-8 As shown, the atomizing core 112 includes a tube body 1121, a liquid guiding component 1122, and a heating element 1123. The liquid guiding component 1122 is at least partially coiled on the inner wall of the tube body 1121, and the heating element 1123 is coiled on the inner wall of the coiled portion of the liquid guiding component 1122. The tube body 1121 has a liquid passage hole 112111, and the outer wall of the tube body 1121 is fitted against the wall of the central hole 1131. This allows the aerosol matrix absorbed by the liquid storage component 113 to flow through the liquid passage 112111 to the liquid guide component 1122, and to wet the liquid guide component 1122 and the heating element 1123. As a result, the heating element 1123, which is curled and attached to the inner sidewall of the curled portion of the liquid guide component 1122, can heat the contacted aerosol matrix when energized, so that the heated aerosol matrix is atomized to generate aerosol.
[0077] The liquid guiding component 1122 may be completely coiled and attached to the inner wall of the tube body 1121, without extending beyond the tube body 1121, thereby allowing the aerosol matrix to be supplied between the liquid storage component 113 and the liquid guiding component 1122 solely through the liquid passage hole 112111; alternatively, the liquid guiding component 1122 may also have a first part 11221 and a second part 11222, with the first part 11221 coiled and attached to the inner wall of the tube body 1121, and the second part 11222... The second part 11222 is connected to the first part 11221, and the second part 11222 extends out of the tube 1121 and is located in the slit 1132, so that the liquid storage component 113 and the liquid guiding component 1122 are in direct contact, thereby effectively increasing the contact area between the liquid storage component 113 and the liquid guiding component 1122, and thus enabling the aerosol matrix absorbed by the liquid storage component 113 to be supplied to the heating element 1123 more efficiently through the liquid guiding component 1122.
[0078] The tube body 1121 includes a first tube 11211 and a second tube 11212. The second tube 11212 and the first tube 11211 are inserted into each other along the first direction L1. One end of the second tube 11212 abuts against the liquid guide 1122. The other end of the second tube 11212 extends into the central hole 1131 toward the third segment 1143 and out of the liquid storage component 113, so as to cooperate with the tube body 1121 to prevent the aerosol matrix absorbed by the liquid storage component 113 from leaking into the hole wall of the central hole 1131.
[0079] The first tube 11211 has a notch 112112 and a liquid passage 112111. The liquid passage 112111 penetrates the first tube 11211 in the radial direction. The second portion 11222 extends out of the first tube 11211 through the notch 112112 and is located within the slit 1132, so that the aerosol matrix absorbed in the liquid storage component 113 can be more efficiently delivered to the heating element 1123. Furthermore, when the liquid storage component 113 is fitted around the atomizing core 112 along the first direction L1, one end of the first tube 11211 away from the second tube 11212 is inserted into the sealing hole 1111, and the other end of the second tube 11212 away from the first tube 11211 extends out of the liquid storage component 113.
[0080] The atomizing core 112 further includes a mounting member 1124 and at least two pins 1125. Each pin 1125 is connected to the heating element 1123. The mounting member 1124 is inserted into the end of the tube body 1121 away from the second tube 11212. A plurality of wire-passing holes 1126 extending along the first direction L1 are formed between the outer wall of the mounting member 1124 and the inner wall of the tube body 1121. The number of wire-passing holes 1126 is greater than or equal to the number of pins 1125, and each pin 1125 passes through an adjacent wire-passing hole 1126.
[0081] Please see Figure 5 As shown, the liquid storage component 113 has a first groove 1133, the bottom of which extends along the first direction L1, such that the first groove 1133 is formed on the side of the liquid storage component 113 along the first direction L1 and faces the second inner wall 11421. The slit 1132 connects the bottom of the first groove 1133 and the central hole 1131. By providing the first groove 1133, the liquid storage component 113 has an expansion space at the first groove 1133, so that the liquid storage component 113 can adaptively expand in the first groove 1133 after absorbing the aerosol matrix. In addition to the expansion at the groove 1133, the first groove 1133 is configured to connect with the slit 1132 so that the liquid storage component 113 has a large operating space on both sides of the slit 1132 corresponding to the first groove 1133. This allows the slit 1132 to be quickly opened by the first groove 1133 on both sides of the slit 1132 when the liquid storage component 1133 is assembled to the outside of the atomizing core 112, whether manually or automatically. This improves the ease and efficiency of opening the center hole 1131, and thus improves the assembly efficiency between the liquid storage component 113 and the atomizing core 112.
[0082] The liquid storage component 113 also has a second groove 1134, which is opposite to the first groove 1133 along the second direction L2. By setting the second groove 1134, the expandable space of the liquid storage component 113 can be further increased, thereby enabling the liquid storage component 113 to absorb more aerosol matrix.
[0083] Wherein, the distance between the bottom of the second groove 1134 along the second direction L2 and the center hole 1131 is less than the distance between the bottom of the first groove 1133 along the second direction L2 and the center hole 1131. Therefore, when the slit 1132 is unfolded, the portion of the liquid storage component 113 near the second groove 1134 can be easily deformed so that the slit 1132 can be easily unfolded, thereby facilitating the assembly between the liquid storage component 113 and the atomizing core 112.
[0084] Please see Figure 9-10 As shown, the atomizing module 10 also includes a mouthpiece 12, which is connected to the end of the atomizing assembly 11 away from the first seal 111 along the first direction L1 and communicates with the atomizing core 112. The mouthpiece 12 is used for users to inhale.
[0085] The atomizing module 10 further includes a second sealing element 13, which is sealed and connected along the first direction L1 between the end of the liquid storage chamber 114 away from the first sealing element 111 and the mouthpiece 12. The second sealing element 13 has an air passage 131, which connects the atomizing core 112 and the mouthpiece 12.
[0086] By setting the second sealing element 13, the atomizing core 112 and the mouthpiece 12 can be sealed and connected, thereby preventing external airflow from entering through the gap between the liquid storage tank 114 and the mouthpiece 12 and affecting the user's inhalation experience.
[0087] Please see Figure 3-4 As shown, the liquid storage chamber 114 includes a first opening 1145 and a second opening 1146. The first opening 1145 and the second opening 1146 are opposite to each other along the first direction L1. The first sealing member 111 is sealed to the first opening 1145, and the second sealing member 13 is sealed to the second opening 1146.
[0088] Before assembling the second seal 13 and the nozzle 12, the second opening 1146 is the injection port for the aerosol matrix. The injection needle for injecting the aerosol matrix can be directly inserted into the reservoir 113 from the first opening 1145 to inject the aerosol matrix.
[0089] Please see Figure 9-10 As shown, the atomizing module 10 further includes a liquid-absorbing component 14, which is disposed between the nozzle 12 and the second sealing component 13 along the first direction L1. The liquid-absorbing component 14 has a through hole 141 along the first direction L1, which connects the nozzle 12 and the air passage 131. By providing the liquid-absorbing component 14, the condensate adhering to the nozzle 12 can be effectively absorbed.
[0090] Please see Figure 2 as well as Figure 6-7 As shown, the first sealing member 111 further has at least two insertion holes 1114, each insertion hole 1114 being adjacent to the sealing hole 1111. Each insertion hole 1114 does not penetrate the first sealing member 111 along the first direction L1, and the opening end of each insertion hole 1114 faces away from the liquid reservoir 113. Each lead 1125 passes through the sealing hole 1111 along the first direction L1, so that each lead 1125 will not be distorted or deformed during the process of passing through the first sealing member 111. This allows each lead 1125 to maintain its original shape after passing through the first sealing member 111, making it easy to bend and maintain consistency after bending. The portion of each lead 1125 extending out of the sealing hole 1111 is bent and inserted into the adjacent insertion hole 1114.
[0091] The sealing hole 1111 includes a first hole 11111 and a second hole 11112. The first hole 11111 and the second hole 11112 communicate along the first direction L1, and the first hole 11111 is close to the liquid storage device 113, while the second hole 11112 is away from the liquid storage device 113.
[0092] Wherein, the diameter of the second hole 11112 is smaller than the diameter of the first hole 11111, so that there is a limiting surface 11113 facing the liquid storage component 113 between the first hole 11111 and the second hole 11112. The atomizing core 112 is inserted into the first hole 11111 and abuts against the limiting surface 11113, so that the end of the atomizing core 112 inserted into the sealing hole 1111 does not protrude from the sealing hole 1111.
[0093] The wall of the first hole 11111 protrudes radially inward along the first hole 11111 to form at least one sealing flange 11114. The tube body 1121 is inserted into the first hole 11111 at one end near the first sealing member 111 along the first direction L1 and is sealed to the sealing flange 11114, thereby enabling a stable sealing connection between the outer periphery of the tube body 1121 and the sealing flange 11114 to prevent the aerosol matrix contained in the liquid storage tank 114 from leaking between the first hole 11111 and the tube body 1121.
[0094] Please see Figure 6 As shown, the second hole 11112 includes an air passage area 111121 and multiple wire passage areas 111122. The multiple wire passage areas 111122 are respectively connected to the outer periphery of the air passage area 111121. Each pin 1125 passes through its corresponding wire passage area 111122 along the first direction L1, and the portion of each pin 1125 extending beyond the wire passage area 111122 is bent and inserted into an adjacent insertion hole 1114. This allows each pin 1125 to maintain its original shape as it passes through its corresponding wire passage area 111122, facilitating bending of the pins 1125 passing through their respective wire passage areas 111122 and ensuring consistency after bending.
[0095] The original shape can refer to each of the pins 1125 being in a straight line along the first direction L1. Each of the passing areas 111122, in addition to allowing a corresponding pin 1125 to pass through while maintaining its original shape, also serves to limit the passage of a pin 1125, preventing contact between the pins 1125 and thus reducing the risk of short circuits. Furthermore, each of the passing areas 111122 can also allow airflow to pass through and enter the atomizing core 112.
[0096] During the process of inserting the atomizing core 112 into the sealing hole 1111 along the first direction L1, each of the pins 1125 is respectively aligned with a wire passing area 111122, thereby reducing the difficulty of aligning each of the pins 1125 with the corresponding wire passing area 111122 and improving assembly efficiency during the assembly of the atomizing core 112 and the first sealing member 111.
[0097] The atomizing core 112 includes three pins 1125, the second hole 11112 includes three wire passage areas 111122, the first sealing member 111 has three insertion holes 1114, each insertion hole 1114 is adjacent to one of the wire passage areas 111122, the three pins 1125 pass through one of the wire passage areas 111122 along the first direction L1, and the portion of each pin 1125 extending out of the wire passage area 111122 is bent and inserted into the adjacent insertion hole 1114.
[0098] Please see Figure 11-21 As shown, the electronic atomizing device 100 also includes a control module 20. The atomizing module 10 is connected to the control module 20 along the first direction L1, and heats or stops heating the aerosol matrix under the control of the control module 20.
[0099] Please refer to Figure 12-16 As shown, the control module 20 includes a bracket 22, a first control circuit board 211, and at least two electrodes 212. The first control circuit board 211 is disposed on the bracket 22, and each electrode 212 is electrically connected to the first control circuit board 211. The number of electrodes 212, sockets 1114, and pins 1125 is the same, and each pin 1125, each socket 1114, and each electrode 212 corresponds one-to-one.
[0100] When the atomizing module 10 is connected to the control module 20, the side of the first sealing member 111 facing away from the atomizing core 112 is connected to the bracket 22, so that each electrode 212 is inserted into a socket 1114 and electrically connected to a pin 1125 inserted into the corresponding socket 1114. This makes the electrical connection structure between the atomizing module 10 and the control module 20 simple and stable, and the modular design facilitates the automated assembly of the electronic atomizing device 100.
[0101] Please see Figure 16 As shown, the control module 20 further includes a power supply component 23 and a control component 21. The control component 21 includes the first control circuit board 211 and the electrode 212. The bracket 22 includes a first frame 221 and a second frame 222. The first frame 221 extends along the first direction L1. The power supply component 23 is disposed on the first frame 221. The second frame 222 extends along the second direction L2. The control component 21 is disposed on the second frame 222 and is electrically connected to the power supply component 23. Since the second direction L2 is perpendicular to the first direction L1, the first frame 221 and the second frame 222 are perpendicular to each other.
[0102] The atomizing component 11 is connected to the second frame 222 along the first direction L1 and is parallel to the first frame 221, and is electrically connected to the control component 21. This allows the power supply component 23 to be arranged parallel to the atomizing component 11, thereby effectively controlling the overall length of the electronic atomizing device 100 along the first direction L1, and enabling the electronic atomizing device 100 to complete the assembly of each component only along the two mutually perpendicular directions of the first direction L1 and the second direction L2, thereby reducing the assembly difficulty and effectively improving the assembly efficiency.
[0103] Please see Figure 11-12 As shown, the electronic atomizing device 100 further includes a housing module 30, which includes a first housing 31 and a second housing 32. The first housing 31 is connected to the first frame 221 along the second direction L2. The second housing 32 is connected to the outside of the second frame 222 and the atomizing component 11 along the second direction L2, and is connected to at least one of the first housing 31 and the first frame 221. The mouthpiece 12 passes through the second housing 32 along the first direction L1 and is connected to the end of the atomizing component 11 away from the second frame 222.
[0104] By setting the first housing 31 and the second housing 32 to be connected relative to each other along the second direction L2, the electronic atomizing device 100 can complete the assembly of each component only along the two mutually perpendicular directions L1 and L2, thereby reducing the assembly difficulty and effectively improving the assembly efficiency.
[0105] Please see Figure 15-16 As shown, the control module 20 further includes a third sealing element 24, which is connected to the first sealing element 111 and located on the side of the first sealing element 111 close to the first control circuit board 211. The third sealing element 24 has a plug-in portion 241 and an air guide hole 242. The air guide hole 242 passes through the plug-in portion 241 along the first direction L1 and communicates with the sealing hole 1111, so that the airflow flows sequentially through the air guide hole 242, the sealing hole 1111, the atomizing core 112, the through hole 141 and the nozzle 12.
[0106] Please see Figure 12 as well as Figure 16As shown, the control component 21 further includes an adjusting member 213, which is movably connected to the second frame 222 along the second direction L2 and away from the atomizing component 11. The adjusting member 213 is provided with an air inlet 2131. The adjusting member 213 moves along the second direction L2 so that the air inlet 2131 is connected to the air guide hole 242 or not connected to the air guide hole 242.
[0107] The electronic atomizing device 100 further includes a toggle member 40. After the second housing 32 is connected to the first housing 31 along the second direction L2, the toggle member 40 passes through the second housing 32 along the first direction L1 and is connected to the adjusting member 213. By applying an external force to the toggle member 40, the toggle member 40 drives the adjusting member 213 to move along the second direction L2, and controls the air inlet 2131 to connect with the air guide 242, so that the airflow can flow sequentially through the air inlet 2131, the air guide 242, the sealing hole 1111, the atomizing core 112, the through hole 141, and the mouthpiece 12; or, the air inlet 2131 is controlled not to connect with the air guide 242, so that the airflow cannot pass through the air inlet 2131 and flow to the air guide 242.
[0108] Please see Figure 6 , Figure 12 As shown in 15-16, the first seal 111 also has a first annular sealing body 1115. The first annular sealing body 1115 is located on the side of the first seal body closer to the second frame 222 along the first direction L1, that is, the first sealing connection portion 1112 and the first annular sealing body 1115 are located on opposite sides of the first sealing body 1113 along the first direction L1.
[0109] The third sealing element 24 also has a third annular sealing body 243 and a third sealing body 244. The third annular sealing body 243 and the insertion portion 241 are located on opposite sides of the third sealing body 244 along the first direction L1, and an insertion groove 25 is formed between the third annular sealing body 243 and the second frame 222.
[0110] When the atomizing assembly 11 is connected to the second frame 222 along the first direction L1, the first annular sealing body 1115 is sealed and inserted into the insertion groove 25, thereby making the first sealing member 111 and the third sealing member 24 in a sealed communication, and each of the electrodes 212 extending out of the third sealing member 24 is respectively inserted into the corresponding insertion hole 1114, thereby avoiding the exposure of each electrode 212 at the connection between the first sealing member 111 and the third sealing member 24, and thus avoiding the corrosion of each electrode 212 by condensate or water vapor carried in the airflow.
[0111] A receiving cavity 26 is formed between the first sealing body 1113, the third sealing body 244, and the third annular sealing body 243. The receiving cavity 26 is connected between the sealing hole 1111 and the air guide hole 242. The airflow flows sequentially through the air guide hole 242, the receiving cavity 26, the sealing hole 1111, the atomizing core 112, the through hole 141, and the nozzle 12.
[0112] Please see Figure 15-16 As shown, the control module 20 also includes a limiting support 27, which is disposed in the receiving cavity 26 and supported on the inner side wall of the third annular sealing body 243. Since the insertion groove 25 is formed between the third annular sealing body 243 and the second frame 222, and the first annular sealing body 1115 is inserted into the insertion groove 25, under the rigid limiting of the second frame 222, the support member supported in the third annular sealing body 243 will enable effective sealing connections between the first sealing body and the second frame 222, between the first sealing body and the third sealing body, and between the support member and the third sealing body.
[0113] The control component 21 also includes a voltage regulating switch 214. The voltage regulating switch 214 is disposed on the side of the first control circuit board 211 opposite to the atomizing component 11 and is electrically connected to the first control circuit board 211.
[0114] Please see Figure 16 as well as Figure 20-21As shown, the adjusting member 213 includes an adjusting plate portion 2132, a limiting connecting portion 2133, and two elastic locking portions 2134. The adjusting plate portion 2132 is provided with at least one air inlet 2131 along the first direction L1. The limiting connecting portion 2133 is connected to the side of the adjusting plate portion 2132 near the first control circuit board 211 and is connected to the pressure regulating switch 214. The two elastic locking portions 2134 are respectively provided on opposite sides of the adjusting plate portion 2132 and are elastically locked to the second frame 222, so that the adjusting member 213 moves relative to the second frame 222 along the second direction L2 and has a first position and a second position.
[0115] Please see Figure 20 As shown, when the adjusting member 213 is in the first position, the air inlet 2131 is not connected to the air guide hole 242, and the pressure regulating switch 214 is in the closed state. Please refer to [link / reference]. Figure 16 As shown, when the adjusting member 213 is in the second position, the air inlet 2131 is connected to the air guide hole 242, and the pressure regulating switch 214 is in the open state. This allows the adjusting member 213 to simultaneously perform the dual functions of controlling airflow and controlling the pressure regulating switch 214, thereby achieving synchronous control of airflow interruption and circuit interruption.
[0116] Please see Figure 16 As shown, the power supply component 23 includes a battery 231 and a charging interface 232. The battery 231 and the charging interface 232 are connected along the first direction L1 to opposite sides of the first control circuit board 211. The battery 231 is arranged side-by-side with the atomizing component 11, and the charging interface 232 is directly connected to the first control circuit board 211, thereby further compressing the length of the electronic atomizing device 100 along the first direction L1.
[0117] Please see Figure 14-16 as well as Figure 18-20 As shown, the control module 20 also includes a display component 28, which is disposed on the first frame 221 of the bracket 22 and is arranged side by side with the atomizing component 11 along the second direction L2, so that the display component 28 can be displayed on one side of the atomizing module 10.
[0118] The display component 28 includes a second control circuit board 281, a light-emitting element 282, and a light guide 283. The light-emitting element 282 is integrated on the side of the second control circuit board 281 facing away from the atomizing component 11, so that the light emitted by the light-emitting element 282 is away from the atomizing component 11. The light guide 283 is connected to the bracket 22 and has an annular light-emitting surface 2831. The annular light-emitting surface 2831 is located on the outer periphery of the second control circuit board 281. The light emitted by the light-emitting element 282 is conducted through the light guide 283 and then emitted from the annular light-emitting surface 2831, and is displayed outward through the housing module 30.
[0119] By placing the atomizing component 11 on the bracket 22 and aligning it alongside the display component 28 along the second direction L2, connecting the nozzle 12 to the atomizing component 11 along the first direction L1 and extending it out of the second housing 32, connecting the first housing 31 and the second housing 32 relative to each other along the second direction L2, connecting the light guide 283 to the bracket 22, and setting the annular light-emitting surface 2831 of the light guide 283 to be located on the outer periphery of the second control circuit board 281, the light emitted by the light-emitting element 282 is conducted through the light guide 283 and emitted from the annular light-emitting surface 2831, thereby enabling the electronic atomization... The electronic atomizing device 100 can control and drive the light-emitting element 282 through the second control circuit board 281, so that the light-emitting element 282 emits light of different colors or different modes to interact with the user. Since the annular light-emitting surface 2831 is located on one side of the atomizing module 10 and is displayed outward through the housing module 30, at least part of the annular light-emitting surface 2831 can be displayed outward through the housing module 30 to interact with the user, whether the electronic atomizing device 100 is held by the user or placed in a designated position. This avoids the problem of the electronic atomizing device 100 and the user being unable to interact due to visual blind spots.
[0120] Please see Figure 17As shown, the light guide 283 includes a first limiting frame 2832 and a plurality of first snap-fit arms 2833. The plurality of first snap-fit arms 2833 extend along a second direction L2 and are respectively connected to the side of the first limiting frame 2832 facing the first frame 221. The plurality of first snap-fit arms 2833 are respectively connected to the first frame 221 for limiting the second control circuit board 281, thereby allowing the second control circuit board 281 to be directly fixed and installed between the first frame 221 and the light guide 283. This avoids the need for fixing components to install the light guide 283 and the second control circuit board 281, thus simplifying the installation steps between the second control circuit board 281, the light guide 283, and the first frame 221 and improving installation efficiency. The outer periphery of the first limiting frame 2832 is the annular light-emitting surface 2831.
[0121] Please see Figure 14-17 As shown in the embodiments of this application, the display component 28 further includes a light-shielding member 284 and a display screen 286. The light-shielding member 284 includes a second limiting frame 2841 and a plurality of second latching arms 2842. The plurality of second latching arms 2842 extend along the second direction L2 and are connected to the side of the second limiting frame 2841 facing the first frame 221. The plurality of second latching arms 2842 are respectively limited and connected to the first limiting frame 2832. The display screen 286 is limited within the second limiting frame 2841 and can be displayed outward through the first housing 31 from the second limiting frame 2841.
[0122] By setting the light-shielding component 284, the light from the side of the light guide component 283 near the display screen 286 can be effectively blocked, thereby making the annular light-emitting surface 2831 and the display surface of the display screen 286 spaced apart from each other. This ensures that the annular light emitted from the annular light-emitting surface 2831 and the image displayed on the display screen 286 will not interfere with each other and affect the display effect.
[0123] The first frame 221 is made of an opaque material, and the light guide 283 forms the annular light-emitting surface 2831 between the first frame 221 and the light-shielding member 284.
[0124] Please see Figure 18-20As shown in the embodiment of this application, the display component 28 further includes a display element 285, which is connected to the first frame 221 and covers the outer periphery of the second control circuit board 281. The display element 285 has a curved surface, and a light-transmitting pattern 2852 is provided on the curved surface 2851. The light emitted by the light-emitting element 282 is conducted through the display element 285 and emitted at the light-transmitting pattern 2852, and then transmitted through the first housing 31 to be displayed outward.
[0125] By integrating the light-emitting element 282 onto the second control circuit board 281, and setting the display element 285 to cover the outer periphery of the second control circuit board 281, and setting a light-transmitting pattern 2852 on the curved surface 2851 of the display element 285, the electronic atomizing device 100 can control and drive the light-emitting element 282 through the second control circuit board 281, so that the light-emitting element 282 emits light of different colors or different modes, which is transmitted through the display element 285 and emitted at the light-transmitting pattern 2852 on the curved surface 2851, thereby realizing the display of the electronic atomizing device 100 in the curved area. This solves the problem of limited display area caused by the limited installation area of traditional flexible display modules. In addition, compared with existing flexible display modules, the display component 28 in this application, which is composed of the second control circuit board 281, the light-emitting element 282, and the display element 285, can also effectively reduce production costs and assembly difficulty.
[0126] Please see Figure 20 As shown, the second control circuit board 281 has a plurality of light-emitting elements 282 uniformly arranged on one side of the display screen 286, and each light-emitting element 282 is located on the outer periphery of the display screen 286; or, the second control circuit board 281 has a plurality of light-emitting elements 282 uniformly arranged on the side away from the display screen 286; or, the second control circuit board 281 has a plurality of light-emitting elements 282 respectively on one side of the display screen 286 and on the side away from the display screen 286.
[0127] The number of light-emitting elements 282 is multiple, and the multiple light-emitting elements 282 are evenly arranged on the second control circuit board 281 so that the light emitted by the multiple light-emitting elements 282 toward the light incident surface of the light guide 283 is uniform.
[0128] The display screen 286 and the light-emitting element 282 are both integrated on the side of the second control circuit board 281 away from the atomizing component 11, thereby avoiding the need for a separate mounting structure for the display screen 286 and effectively compressing the overall size of the electronic atomizing device 100 along the second direction L2. The light-emitting element 282 is located on the outer periphery of the display screen 286, and the display screen 286 passes through the first limiting frame 2832 and the second limiting frame 2841, thereby allowing the first limiting frame 2832 and the second limiting frame 2841 to limit the display screen 286.
[0129] The first housing 31 is made of a light-transmitting material, and the second housing 32 is made of an opaque material. The display screen 286 can be displayed outward through the first housing 31 on the side away from the second control circuit board 281. The light emitted by the light-emitting element 282 is conducted by the light guide element 283 and emitted through the annular light-emitting surface 2831, and is displayed outward through the first housing 31. The annular light-emitting surface 2831 is close to the second housing 32 along the second direction L2, and the display screen 286 is away from the second housing 32 along the second direction L2.
[0130] The light-emitting element 282 can be an LED bead, which can be composed of three independent RGB chips packaged together, so that each of the light-emitting elements 282 can change in brightness, color and dynamic effects under the drive of the second control circuit board 281.
[0131] Furthermore, the surface 2851 is at least partially a non-developable surface, and the light-transmitting pattern 2852 is at least partially disposed on the non-developable surface, thereby allowing the light emitted by the light-emitting element 282 to be emitted from the non-developable surface. The non-developable surface refers to a surface that cannot be unfolded into a plane in a "deformation-free" manner without stretching, compression, or tearing. Essentially, the inherent geometric properties of the surface (such as Gaussian curvature) determine that it does not have an "equidistant mapping" relationship with a plane. Therefore, the unfolding process of a non-developable surface inevitably involves changes in shape or size. The non-developable surface can be a sphere, an ellipsoid, a torus with different inner and outer radii (e.g., a torus or torus surface), a hyperboloid parabola (e.g., a saddle-shaped surface with opposite curvature signs), a paraboloid of revolution (formed by rotating a parabola around an axis, with complex curvature changes), and a convex surface, etc.
[0132] Compared to using a flexible display screen to form a developable surface, this embodiment cleverly sets the light-transmitting pattern 2852 on the non-developable surface of the display element 285, so that the display assembly 28 composed of the display element 285, the second control circuit board 281 and the light-emitting element 282 can realize the pattern display on the non-developable surface, thereby further enriching the display effect of the electronic atomizing device 100.
[0133] Further, please refer to Figure 20 As shown, the outer side of the first limiting frame 2832 has the annular light-emitting surface 2831 and the annular curved surface 2834. The annular light-emitting surface 2831 is close to the first frame 221. The display element 285 is covered on the annular curved surface 2834, and the inner side of the display element 285 is in contact with the corresponding outer side of the annular curved surface 2834. This allows a portion of the light transmitted by the light guide 283 to be emitted from the annular light-emitting surface 2831 to form a halo, which is then displayed through the first housing 31. Another portion of the light transmitted by the light guide 283 continues to be transmitted to the display element 285 and is emitted from the light-transmitting pattern 2852 on the non-developable curved surface, as well as being displayed through the first housing 31.
[0134] The light-transmitting pattern 2852 can be any kind of pattern, such as at least one of circles, hearts, triangles, thin lines, five-pointed stars, or a combination of multiple patterns, and is not limited here.
[0135] The light-transmitting pattern 2852 is formed by spraying with a spraying process and then laser engraving. Alternatively, the light-transmitting pattern 2852 can also be formed by printing the pattern with a thin film printing process and then forming it with a high pressure forming process, and then cutting it and assembling it with the light guide 283.
[0136] Please see Figures 19-20 As shown, the display component 285 includes a first display portion 2853 and a second display portion 2854. The second display portion 2854 is plate-shaped. The first display portion 2853 extends from the periphery of the second display portion 2854 toward the second control circuit board 281 and surrounds the periphery of the second control circuit board 281.
[0137] The display component 285 further has a light-transmitting plane 2855, the second display portion 2854 is configured to form the light-transmitting plane 2855, the display surface of the display screen 286 faces the light-transmitting plane 2855, so that the image displayed on the display screen 286 is displayed outward through the light-transmitting plane 2855 and the first housing 31 at the same time, and the first display portion 2853 is configured to form the non-developable curved surface.
[0138] The side of the light guide 283 closest to the light-emitting element 282 is the light-incident surface, which is a frosted surface. When the light emitted by the light-emitting element 282 enters the light guide 283 through the light-incident surface, it undergoes diffuse reflection, thereby allowing the light entering the light guide 283 to pass through the light guide 283 evenly, avoiding specular highlights. Consequently, the light emitted through the annular light-emitting surface 2831 is uniform and soft, avoiding glare.
[0139] The light guide 283 has a diffuser layer. The light emitted by the light-emitting element 282 can be further scattered through the diffuser layer, so that the light entering the light guide 283 can pass through the light guide 283 evenly, and thus the light emitted through the annular light-emitting surface 2831 is uniform and soft.
[0140] Alternatively, the light guide 283 may be composed of a substrate and a light diffusing agent dispersed within the substrate, so that the light guide 283 scatters the passing light, thereby allowing the light passing through the light guide 283 to pass through the light guide 283 more uniformly, and thus making the light emitted by the annular light emitting element uniform and soft.
[0141] Please see Figure 16 As shown, the light guide 283 and one of the first frame 221 are provided with a positioning hole 2835, and the other of the light guide 283 and the first frame 221 are provided with a positioning post 2211 adapted to the positioning hole 2835. The positioning post 2211 is inserted into the positioning hole 2835 to position and limit the connection between the light guide 283 and the first frame 221, thereby reducing the assembly difficulty of assembling the light guide 283 on the first frame 221, and cooperating with the first snap-fit arm 2833 to assemble the light guide 283 at a designated position on the first frame 221.
[0142] Each of the second snap-fit arms 2842 passes through the first limiting frame 2832 and is snapped onto the side of the first limiting frame 2832 facing the first snap-fit arm 2833. Therefore, it is not necessary to set a snap-fit structure corresponding to each of the second snap-fit arms 2842 on the light guide 283. This simplifies the overall structure of the light guide 283 and reduces the processing difficulty of the light guide 283.
[0143] Please see Figure 17As shown, a battery compartment 50 is formed by enclosing the atomizing component 11, the first frame 221, and the second control circuit board 281, and the battery 231 is disposed within the battery compartment 50. The battery compartment 50 is formed by enclosing the atomizing component 11, the first frame 221, and the second control circuit board 281, so that the battery 231 can be effectively confined within the battery compartment 50.
[0144] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.
[0145] Furthermore, it should be noted that the use of terms such as "first" and "second" to define components is merely for the purpose of distinguishing the corresponding components. Unless otherwise stated, the above terms have no special meaning and therefore cannot be construed as limiting the scope of protection of this application.
[0146] The above are merely preferred embodiments of this application and are not intended to limit this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. An atomizing component, characterized in that, The device includes a first sealing element and an atomizing core. The first sealing element has a sealing hole and at least two insertion holes. The sealing hole extends through the first sealing element along a first direction. One end of the atomizing core is inserted into the sealing hole along the first direction, and the end of the atomizing core inserted into the sealing hole does not protrude from the sealing hole. Each insertion hole is adjacent to the sealing hole, and each insertion hole does not extend through the first sealing element along the first direction. The opening end of each insertion hole is away from the atomizing core. The atomizing core includes at least two pins, each of which passes through the sealing hole along the first direction, and the portion of each pin extending out of the sealing hole is bent and inserted into the adjacent insertion hole.
2. The atomizing component according to claim 1, characterized in that, The sealing hole includes a first hole and a second hole, wherein the first hole and the second hole communicate along the first direction; The diameter of the second hole is smaller than that of the first hole, so that there is a limiting surface between the first hole and the second hole facing the atomizing core. The atomizing core is inserted into the first hole and abuts against the limiting surface.
3. The atomizing component according to claim 2, characterized in that, The second hole includes an air passage area and multiple wire passage areas. The multiple wire passage areas are respectively connected to the outer periphery of the air passage area. Each pin passes through its corresponding wire passage area along the first direction, and the portion of each pin extending out of the wire passage area is bent and inserted into the adjacent socket.
4. The atomizing component according to claim 3, characterized in that, During the process of inserting the atomizing core into the sealing hole along the first direction, each of the pins is directly opposite a wire-passing area.
5. The atomizing component according to claim 3, characterized in that, The atomizing core includes three pins, the second hole includes three wire passage areas, the first seal has three insertion holes, each insertion hole is adjacent to one of the wire passage areas, the three pins pass through one of the wire passage areas along the first direction, and the portion of each pin extending out of the wire passage area is bent and inserted into the adjacent insertion hole.
6. The atomizing component according to claim 2, characterized in that, The wall of the first hole protrudes inward along the radial direction of the first hole to form at least one sealing flange; The atomizing core also includes a tube body, a liquid guiding component, and a heating element. The liquid guiding component is inserted into the first hole along the first direction at one end of the tube body near the first sealing component and is sealed and connected to the sealing flange. The liquid guiding component is at least partially curled and attached to the inner wall of the tube body. The heating element is curled and attached to the inner wall of the liquid guiding component and is electrically connected to each of the pins.
7. The atomizing component according to claim 6, characterized in that, The atomizing assembly further includes a liquid storage component and a liquid storage chamber. The liquid storage component is sleeved on the outer periphery of the atomizing core along the first direction and abuts against the first sealing component. The liquid storage chamber is sleeved on the outer periphery of the liquid storage component along the first direction and is sealed to the first sealing component. The liquid storage tank includes a first section and a second section arranged sequentially along the first direction. The first inner wall of the first section is inclinedly connected to the second inner wall of the second section, and the aperture of the end of the first section away from the second section is larger than the aperture of the second section.
8. The atomizing component according to claim 7, characterized in that, The liquid storage device includes a central hole and a slit. The central hole penetrates the liquid storage device along a first direction, and the slit penetrates the liquid storage device along the first direction and penetrates the central hole and the outer wall of the liquid storage device along a second direction, so that the liquid storage device located on both sides of the slit can move away from each other under the action of external force to open the central hole. The second direction and the first direction are two directions that are perpendicular to each other. The liquid guiding component includes a first part and a second part. The first part is curled and attached to the inner wall of the tube, and the second part extends out of the tube along the second direction and is located in the slit. The heating element is curled and attached to the inner wall of the first part.
9. The atomizing component according to claim 8, characterized in that, The tube body includes a first tube and a second tube. The first tube has a liquid passage hole and a notch. The liquid passage hole penetrates the first tube in the radial direction. The second part extends out of the first tube at the notch and is located in the cut. The second tube is inserted into the first tube in the first direction. When the liquid storage component is sleeved on the outer periphery of the atomizing core along the first direction, the end of the first tube away from the second tube is inserted into the sealing hole, and the end of the second tube away from the first tube extends out of the liquid storage component.
10. The atomizing component according to claim 7, characterized in that, The first sealing element has a first sealing connection portion and a first sealing body, wherein the first sealing connection portion is located on one side of the first sealing body along the first direction; The end of the liquid storage tank near the first section is sealed and inserted into the outer periphery of the first sealing connection, and the end face of the liquid storage tank near the first section abuts against the first sealing body. The first inner wall does not contact the outside of the first sealing connection, and the second inner wall is sealed to the first sealing connection.
11. The atomizing component according to claim 10, characterized in that, The liquid storage tank further includes a third section, which is connected to the end of the second section away from the first section along the first direction, and the third inner wall of the third section is provided with a limiting rib. When the atomizing component is sleeved on the outer periphery of the liquid storage member along the first direction and is sealed to the first sealing member, the end of the liquid storage member away from the first sealing member abuts against the limiting rib.
12. An atomizing module, characterized in that, The atomizing module includes the atomizing component according to any one of claims 1-11; and The nozzle is connected along the first direction to the end of the atomizing assembly away from the first seal and is in communication with the atomizing core.
13. The atomizing module according to claim 12, characterized in that, The atomizing module further includes a second sealing element, which is sealed and connected along the first direction between the end of the liquid storage chamber away from the first sealing element and the mouthpiece, and the second sealing element has an air passage hole that connects the atomizing core and the mouthpiece.
14. The atomizing module according to claim 13, characterized in that, The liquid storage tank includes a first opening and a second opening, the first sealing element is sealed to the first opening, and the second sealing element is sealed to the second opening; Before the second seal and the nozzle are assembled, the second opening is the filling port for the aerosol matrix.
15. The atomizing module according to claim 14, characterized in that, The atomizing module further includes a liquid suction element, which is disposed between the nozzle and the second sealing element along the first direction, and the liquid suction element is provided with a through hole along the first direction, the through hole connecting the nozzle and the air passage.
16. An electronic atomizing device, characterized in that, The electronic atomizing device includes the atomizing module according to any one of claims 12-15; and A control module, wherein the atomizing module is connected to the control module along the first direction.
17. The electronic atomizing device according to claim 16, characterized in that, The control module includes: The bracket includes a first frame and a second frame, the first frame extending along a first direction, the second frame extending along a second direction perpendicular to the first direction, and the atomizing module connected to the second frame along the first direction and parallel to the first frame; A power supply component and a control component are provided. The power supply component is located on the first frame, and the control component is located on the second frame, and are electrically connected to the power supply component and the atomizing module, respectively.
18. The electronic atomizing device according to claim 17, characterized in that, The electronic atomizing device further includes a housing module, which includes a first housing and a second housing. The first housing is connected to the first frame along the second direction, and the second housing is connected to the outside of the second frame and the atomizing component along the second direction, and is connected to the first housing and / or the first frame. The mouthpiece passes through the second housing along the first direction and is connected to the end of the atomizing component away from the second frame.