Atomizing device, atomizing device assembly method, and atomizing apparatus
By using an elastic clamping arm to clamp the conductive pin in the atomization device, the problem of cumbersome connection and deformation between the conductive pin and the conductive electrode is solved, stable connection and fully automated processing are achieved, and the installation process is simplified.
Patent Information
- Application Number
- CN202110668818.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-06-16
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2041-06-16
AI Technical Summary
The electrical connection between the conductive pins and the conductive electrode sheets in the atomizer assembly is cumbersome and easily deformed due to squeezing thrust, posing a risk of leakage.
The conductive pins are clamped by elastic clamping arms, and the traditional connection between the conductive pins and the mounting holes of the conductive electrode sheets is replaced by the elastic clamping structure in the plug-in cavity, thereby achieving stable clamping of the conductive pins and simplifying the installation process.
The deformation problem of the conductive pins due to the extrusion thrust is avoided, the stability of the connection and the ease of installation are improved, and the fully automated processing of the atomization component is realized.
Smart Images

Figure CN115474712B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of electronic cigarettes, and in particular relates to an atomizing device, an atomizing device assembly method, and an atomizing device. Background Art
[0002] The electronic atomization device includes an atomizer and a power supply for supplying power to the atomizer. The atomizer is internally constructed with a liquid storage chamber, an air flow channel, and an electronic atomization component. The power supply is provided with a receiving slot, the atomizer is installed in the receiving slot, and is electrically connected to the power supply. The atomizer is internally provided with an atomization component, and when the conductive pin of the atomization component is installed, it is usually passed through the wire hole provided in the atomizer base, bent and attached to the surface of the atomizer base, and then pressed into the conductive electrode, and finally the excess conductive pin is cut off. The process is relatively cumbersome. At the same time, if the conductive pin is directly inserted into the mounting hole of the conductive electrode, pressing the conductive electrode will generate an extrusion thrust on the conductive pin, causing the atomization component to deform. When the wire hole of the conductive pin and the mounting hole of the conductive electrode are designed independently, there is an additional hole, which increases the risk of leakage. Summary of the Invention
[0003] The purpose of the embodiments of the present application is to provide an atomization device, an atomization device assembly method and an atomization device, aiming to solve the problem of complicated electrical connection between the conductive pins and the conductive electrodes in the atomization assembly.
[0004] To achieve the above-mentioned purpose, the technical solution adopted in the present application is: to provide an atomization device, including a main body, a liquid storage chamber and an atomization component provided in the main body, the atomization component is used to atomize the solution in the liquid storage chamber into an aerosol; the atomization device is provided with a plug-in chamber, and the conductive pin portion of the atomization component extends into the plug-in chamber; the atomization device also includes an electrical connection seat, and the electrical connection seat includes: an insulating seat and a conductive electrode fixed to the insulating seat; the insulating seat is plugged into the plug-in chamber, one end of the conductive electrode is exposed to the outside world from the surface of the insulating seat, for establishing an electrical connection with an external power supply device, and the other end is suspended in the plug-in chamber to form an elastic clamping arm, and a clamping space is formed between one side of the elastic clamping arm and the corresponding inner wall of the plug-in chamber; when the conductive pin is inserted into the clamping space, it is pressed against the inner wall of the plug-in chamber by the elastic clamping arm.
[0005] In one embodiment, the conductive electrode sheet suspended in the plug cavity is bent or folded to form the elastic clamping arm.
[0006] In one embodiment, the end of the elastic clamping arm is tilted to form a guide portion, and a wire hole is provided inside the main body for the conductive pin of the atomizer assembly to pass through. The wire hole is arranged opposite to the tilted upper end of the guide portion, and the tilted lower end of the guide portion is arranged corresponding to the clamping space. After one end of the conductive pin passes through the wire hole, it is inserted into the clamping space along the guide portion.
[0007] In one embodiment, a side of the elastic clamping arm facing away from the clamping space abuts against a side wall of the plug cavity, causing an opposite side of the elastic clamping arm to squeeze the conductive pin into the clamping space.
[0008] In one embodiment, a first positioning plate and a second positioning plate are protruded from the inner wall of one side of the plug-in cavity around the wire hole toward the insulating seat, and the elastic clamping arm is inserted between the first positioning plate and the second positioning plate, and the clamping space is formed between one side of the first positioning plate and the corresponding side of the elastic clamping arm, and one side of the second positioning plate presses against the side of the elastic clamping arm facing away from the clamping space.
[0009] In one embodiment, the second positioning plate presses against the side of the elastic clamping arm away from the clamping space to form an inclined structure, and the elastic clamping arm is bent into an inclined structure corresponding to the contact with the second positioning plate section.
[0010] In one embodiment, one end of the conductive pin passes through the clamping space and is bent toward the first positioning plate under the action of an external force to form a hook portion, and the hook portion hooks the side of the first positioning plate away from the clamping space.
[0011] In one embodiment, a groove is formed at the end of the first positioning plate extending into the plug-in cavity, and the bent portion of the hook is clamped in the groove.
[0012] A method for assembling an atomizing device comprises the following steps:
[0013] S1: Provide a base, comprising a lower end surface and an upper end surface, wherein the lower end surface of the base is provided with the plug-in cavity, and the upper end surface of the base is penetrated by the wire hole in the direction from the lower end surface thereof, and the lower end of the wire hole is connected to the plug-in cavity;
[0014] S2: providing an atomizer assembly, installing the atomizer assembly on the upper end surface of the base, and inserting one end of the conductive pin in the atomizer assembly through the wire hole and into the plug cavity;
[0015] S3: providing the electrical connection base, comprising the insulating base and the conductive electrode; the conductive electrode is disposed on the insulating base, and the elastic clamping arm extends from one end of the conductive electrode;
[0016] S4: Insert the insulating seat into the plug-in cavity, and the elastic clamping arm is inserted into the plug-in cavity along with the insulating seat, and forms the clamping space between the elastic clamping arm and the inner wall of the plug-in cavity. During the plug-in process, the elastic clamping arm elastically abuts the conductive pin against the inner wall of the clamping space under the action of the elastic restoring force, and establishes an electrical connection.
[0017] In one embodiment, the following steps are also included:
[0018] S5: Provide a shell assembly, and plug the shell assembly into the base.
[0019] In one embodiment, when the conductive pin extends too long into the clamping space, the following steps are further included between step S2 and step S3:
[0020] S2.1: Provide a jig, insert the jig into the plug-in cavity to squeeze the lower end of the conductive pin so that the lower end of the conductive pin is bent and hooked on the inner wall of the plug-in cavity, and then remove the jig.
[0021] An atomizing device is characterized by comprising a power supply device and the atomizing device, wherein the atomizing device establishes an electrical connection with the power supply device when plugged into the power supply device.
[0022] The beneficial effect of the present application is that the conductive pin is clamped into the plug-in cavity by an elastic clamping arm, which replaces the traditional method of connecting the conductive pin with the mounting hole on the conductive electrode sheet, effectively avoiding the problem that pressing in the conductive electrode will generate an extrusion thrust on the conductive pin, causing deformation of the atomization component, and the use of an elastic clamping structure to clamp the conductive pin makes the connection between the conductive electrode sheet and the conductive pin more stable and easier to install, and realizes fully automated processing of cotton core horizontal yarns. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments or descriptions of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0024] Figure 1 A three-dimensional diagram of the atomization device provided in the first embodiment of the present application;
[0025] Figure 2 An exploded view of the atomization device provided in the first embodiment of the present application;
[0026] Figure 3 A cross-sectional view of the atomization device provided in the first embodiment of the present application;
[0027] Figure 4 yes Figure 3 A partial enlarged view of point A in the middle;
[0028] Figure 5 A structural diagram of the base provided in the first embodiment of the present application;
[0029] Figure 6 A perspective view of an atomization device provided in a second embodiment of the present application;
[0030] Figure 7 An exploded view of the atomization device provided in the second embodiment of the present application;
[0031] Figure 8 A partial exploded view of the atomization device provided in the second embodiment of the present application;
[0032] Figure 9 A three-dimensional diagram of a conductive electrode provided in the second embodiment of the present application;
[0033] Figure 10 An exploded view of an atomization device provided in the third embodiment of the present application;
[0034] Figure 11 A cross-sectional view of an atomizing device provided in a third embodiment of the present application;
[0035] Figure 12 A three-dimensional diagram of a conductive connector provided in a third embodiment of the present application;
[0036] Figure 13 A three-dimensional diagram of the atomization device provided in this application.
[0037] Among them, the reference numerals in the figures are:
[0038] 1. Atomization device 2. Power supply device
[0039] 10. Main body 11. Atomization component
[0040] 111. Conductive pin 1111. Hook
[0041] 12. First positioning plate 121, groove
[0042] 13. Second positioning plate 14. Base
[0043] 15. Housing assembly 101, plug-in cavity
[0044] 102. Clamping space 103. Wire hole
[0045] 104, mounting hole 1041, small diameter section
[0046] 1042, large diameter section 20, electrical connection seat
[0047] 21. Insulation seat 211. Notch
[0048] 22. Conductive electrode sheet 221. Elastic clamping arm
[0049] 222, guide portion 223, contact end
[0050] 224, connection structure 30, conductive connector
[0051] 31. Connecting rod 311. Guide part
[0052] 312, pre-fixing part 313, fixing part
[0053] 32. Contact head 301. Groove
[0054] 302, sealing groove 40, sealing ring. DETAILED DESCRIPTION
[0055] In order to make the technical problems, technical solutions and beneficial effects to be solved by this application more clearly understood, this application is further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.
[0056] It should be noted that when an element is referred to as being “fixed on” or “disposed on” another element, it may be directly on the other element or indirectly on the other element. When an element is referred to as being “connected to” another element, it may be directly connected to the other element or indirectly connected to the other element.
[0057] It should be understood that the terms "length", "width", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on this application.
[0058] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the features. Throughout the description of this application, "plurality" means two or more, unless otherwise specifically defined.
[0059] See also Figures 1 to 5The first embodiment of the present application provides an atomization device 1, which comprises a main body 10, a liquid storage cavity and an atomization assembly 11 arranged in the main body. The atomization assembly 11 is used to atomize the solution in the liquid storage cavity into an aerosol. The solution includes but is not limited to water, aromatic liquid, smoke liquid, and mosquito repellent liquid, etc.
[0060] A plug-in cavity 101 is arranged in the main body 10, and the plug-in cavity 101 is located on the plug-in end of the main body 10 and the power supply device 2. The conductive pin 111 of the atomization assembly 11 partially extends into the plug-in cavity 101, that is, the lower end of the conductive pin 111 extends into the plug-in cavity 101. The atomization device further comprises an electric connection seat 20, which comprises an insulating seat 21 and a conductive tab 22 fixed to the insulating seat 21. The insulating seat 21 is plugged into the plug-in cavity 101, and one end of the conductive tab 22 is exposed to the outside from the surface of the insulating seat 21, used to establish electrical connection with the external power supply device 2, and the other end is suspended in the plug-in cavity 101 to form a elastic clamping arm 221, and the side surface of the elastic clamping arm 221 and the corresponding inner wall of the plug-in cavity 101 form a clamping space 102. Of course, the clamping space 102 can also be formed between the side wall of the groove on the side surface of the elastic clamping arm 221 and the corresponding end surface of the insulating seat 21. When the conductive pin 111 is inserted into the clamping space 102, it is pressed in the clamping space 102 by the elastic clamping arm 221. By clamping the part of the conductive pin 111 extending into the plug-in cavity 101 with the elastic clamping arm 221, the traditional connection mode of the conductive pin and the mounting hole of the conductive tab is replaced, which effectively avoids the problem that the conductive electrode will generate extrusion force on the conductive pin, causing the deformation of the atomization assembly. Moreover, the use of the elastic clamping structure to clamp the conductive pin 111 makes the connection between the conductive tab 22 and the conductive pin 111 more stable.
[0061] The traditional cotton core horizontal wire cannot be completely automatically produced due to the need for the conductive pin of the heating wire and the conductive electrode to be wound completely. The automatic part can only process the ceramic core automatically because the heating wire and the conductive pin of the ceramic core are printed on the ceramic surface. The structure of the elastic clamping arm 221 clamping the conductive pin 111 only needs to insert one end of the conductive pin 111 into the clamping space 102, which will be clamped and contacted by the elastic clamping arm 221. The installation is simple, and the full-automatic processing of the cotton core horizontal wire is realized.
[0062] In one embodiment, the conductive tab 22 suspended in the plug-in cavity 101 is bent or folded to form the elastic clamping arm 221. The elastic clamping arm 221 is formed by bending one end of the conductive tab 22 integrally, which guarantees the elastic force and structural strength. Of course, the connection mode of the elastic clamping arm 221 and the conductive tab 22 is not limited. For example, the elastic clamping arm 221 can also be an elastic sheet welded on one end of the conductive tab 22.
[0063] In one embodiment, the distal end of the elastic clamping arm 221 is tilted to form a guide portion 222. A wire hole 103 is provided inside the main body 10 for the conductive pin 111 of the atomizer assembly to pass through. The wire hole 103 is disposed directly opposite the tilted upper end of the guide portion 22, and the tilted lower end of the guide portion 222 corresponds to the clamping space 102. After one end of the conductive pin 111 passes through the wire hole 103, it is inserted into the clamping space 102 along the guide portion 222. The provision of the guide portion 222 facilitates installation and guidance of the conductive pin 111 when inserted into the clamping space 102, saving production time and improving production efficiency.
[0064] In one embodiment, the side of the elastic clamping arm 221 facing away from the clamping space 102 abuts against the side wall of the insertion cavity 101, causing the opposite side of the elastic clamping arm 221 to squeeze the conductive pin 111 within the clamping space 102. The side wall of the insertion cavity 101 squeezes the elastic clamping arm 221, thereby enhancing the elastic performance of the elastic clamping arm 221.
[0065] Optionally, a first positioning plate 12 and a second positioning plate 13 are provided on the inner wall of one side of the insertion cavity 101, surrounding the wire hole 103 and protruding toward the insulating seat 21. The elastic clamping arm 221 is inserted between the first positioning plate 12 and the second positioning plate 13, and a clamping space 102 is formed between a side surface of the first positioning plate 12 and a corresponding side surface of the elastic clamping arm 221. One side of the second positioning plate 13 presses against the side of the elastic clamping arm 221 facing away from the clamping space 102, thereby enhancing the elastic performance of the elastic clamping arm 221.
[0066] In one embodiment, the second positioning plate 13 presses against the side of the elastic clamping arm 221 facing away from the clamping space 102, forming an inclined structure. The elastic clamping arm 221 is bent into an inclined structure corresponding to the contact portion of the second positioning plate 13. The corresponding contact portions of the two are both inclined, thereby forming a directional extrusion, making the elastic clamping arm 221 more stable in clamping the conductive pin 111.
[0067] In one embodiment, after passing through the clamping space 102, one end of the conductive pin 111 is bent toward the first positioning plate 12 under the action of an external force, forming a hook portion 1111. The hook portion 1111 hooks onto the side of the first positioning plate 12 facing away from the clamping space 102. The provision of the hook portion 1111 makes the installation and connection of the conductive pin 111 more secure.
[0068] In one embodiment, a groove 121 is provided at the end of the first positioning plate 12 extending into the plug-in cavity 101, and the bending part of the hook 1111 is stuck in the groove 121. The setting of the groove 121 facilitates the bending of the hook 1111 and effectively reduces the extrusion stress at the bending part of the hook 1111.
[0069] like Figures 6 to 9As shown, in the second embodiment of the present application, the atomizing device further comprises a conductive connecting piece 30. The other end of the conductive tab 22 is exposed on the surface of the insulating seat 21 to form a contact end 223, and the other end of the conductive tab 22 is the corresponding end away from the conductive pin 111. The conductive connecting piece 30 is inserted into the main body 10 and is in contact with the contact end 223 to establish an electrical connection. By exposing the contact end 223 of the conductive tab 22 between the corresponding surfaces of the insulating seat 21, when the conductive connecting piece 30 is inserted into the main body 10, it is directly in contact with the contact end 223 to establish a conductive connection. The contact surface of the conductive connecting piece 30 is in contact with the conductive spring needle on the power supply device 2, so that the conductive spring needle does not need to be inserted into the main body 10, effectively avoiding the risk of oil leakage caused by the conductive spring needle being pressed into the main body 10.
[0070] In one embodiment, a notch 211 is formed on the outer surface of the insulating seat 21, the contact end 223 extends into the notch 211, the conductive connecting piece 30 abuts the notch 211, and the contact end 223 is in contact with the conductive connecting piece 30 to establish an electrical connection. The notch 211 forms a clearance position for the corresponding parts of the contact end 223 and the conductive connecting piece 30, and at the same time, it also serves as a positioning function for the conductive connecting piece 30. Alternatively, the notch 211 is located on the bottom surface or the side surface of the insulating seat 21. Of course, the side wall of the insulating seat 21 can also have an opening, and the conductive tab 22 extends out of the side wall opening. When the conductive connecting piece 30 is inserted into the main body 10, it is in contact with the side wall of the conductive tab 22 to establish an electrical connection, which is also within the protection scope of the present technical solution.
[0071] In one embodiment, the main body 10 is provided with a mounting hole 104, the conductive connecting piece 30 is inserted into the mounting hole 104, the contact end 223 extends into the mounting hole 104, and the contact end 223 is located at the opening of the mounting hole 104 and is in contact with the conductive connecting piece 30 to establish an electrical connection. Alternatively, the mounting hole 104 is a counterbore, which includes a small-diameter section 1041 and a large-diameter section 1042 connected in a through manner, and the notch 221 is located on the bottom surface of the insulating seat 21 and forms a part of the large-diameter section 1042. Therefore, when the conductive connecting piece 30 is pressed into the mounting hole 104, the electrical connecting seat 20 is pressed tightly against the main body 10, so that the electrical connecting seat 20 does not need additional structures for fixation. The conductive connecting piece 30 includes an insertion rod 31 and a contact head 32 connected to the insertion rod 31. The insertion rod 31 is in interference fit with the small-diameter section 1041, so that the conductive connecting piece 30 is stably inserted into the mounting hole 104. The contact head 32 abuts the large-diameter section 1042 and is in contact with the contact end 223 located on the large-diameter section 1042 to establish an electrical connection. The contact head 32 is radially enlarged at the lower end of the insertion rod 31, so that the contact area with the contact end 223 is larger and the current transmission is more stable. The bottom surface of the contact head 32 is flush with the bottom surface of the main body 10, or the bottom surface of the contact head 32 is recessed in the bottom surface of the main body 10, so as to reduce the occupied space.
[0072] In one embodiment, a connection structure 224 is provided on the contact end 223 to enhance the stable connection with the conductive connector 30. Optionally, the connection structure 224 is a convex wave point or a punched block formed by punching. The punched block can be an elastic structure. The provision of the connection structure 224 ensures contact between the contact end 223 and the conductive connector 30, thereby enhancing the stability of the electrical connection between the two.
[0073] In one embodiment, the contact end 223 is a radially enlarged structure, which increases the contact area with the conductive connector 30. And / or, the conductive electrode 22 and the insulating seat 21 are integrally formed by in-mold injection molding, making the connection between the two more secure and more convenient to produce.
[0074] In one embodiment, the contact end 223 has a stress hole 201 extending through the bent portion thereof. The stress hole 201 reduces the bending stress of the conductive electrode 22 when the conductive electrode 22 is bent to form the contact end 223, thereby effectively preventing the bent portion of the contact end 223 from breaking due to excessive stress during processing.
[0075] like Figures 10 to 12 As shown, in the third embodiment of the present application, the conductive connector 30 is made of a magnetizable and conductive material; as described above, the conductive connector 30 is in contact with the conductive electrode 22 and is electrically connected. And the corresponding end of the conductive connector 30 exposed at the plug-in end (i.e., the bottom surface of the contact head 32) is magnetically contacted with the power supply device 2 to establish an electrical connection. The first part of the corresponding end surface of the conductive connector 30 exposed at the plug-in end is arranged correspondingly to the conductive elastic needle of the power supply device 2, and the other part is arranged correspondingly to the magnet of the power supply device 2. When the magnet is magnetically fixed to the conductive connector 30, the conductive elastic needle fits tightly with the conductive connector 30 to establish a stable electrical connection. The conductive connector 30 replaces the magnet on the traditional atomization device 1, which reduces the occupied space, solves the problem that the plastic shell material is easily cracked and damaged when the magnet is pressed, and the positioning and assembly process is relatively cumbersome, simplifies the assembly process, and ensures the quality of the product.
[0076] In one embodiment, the conductive connecting member 30 is made of iron. Of course, the material of the conductive connecting member 30 is not limited thereto, and may also be other magnetizable and conductive metal materials or composite metal materials.
[0077] In one embodiment, the surface of the conductive connector 30 is provided with an anti-rust layer to prevent the iron conductive connector 30 from rusting. Optionally, the anti-rust layer can be made of gold, copper, or the like, and is attached to the iron conductive electrode through an electroplating process. The specific material is again not limited, but gold plating is preferably used.
[0078] In one embodiment, the end face of the conductive connector 30 exposed at the plug end is provided with a groove 301. When the conductive connector 30 is electrically connected to the power supply device 2, the conductive elastic pin of the power supply device 2 elastically abuts against the groove 301. Since the conductive connector 30 is fixed by magnetic attraction to the magnet, the force between the conductive connector 30 and the conductive elastic pin is relatively large. Therefore, a groove 301 is provided on the end face of the conductive connector 30. When the atomization device 1 is installed on the power supply device 2, the end of the conductive elastic pin is inserted into the groove 301, thereby effectively preventing the occurrence of the phenomenon of over-compression of the conductive elastic pin. Optionally, the groove 301 is an annular groove that surrounds the middle part of the conductive connector 30. The middle part of the ring is magnetically attracted to the magnet, and the cavity area of the annular groove forms a channel for airflow. The setting of the channel prevents the problem of a small gap for airflow after the magnet contacts the conductive connector 30.
[0079] In one embodiment, a sealing groove 302 is formed on the outer periphery of the plug rod 31. A sealing ring 40 is sleeved on the sealing groove 302. The sealing ring 40 forms an interference seal with the inner wall of the mounting hole. The provision of the sealing ring 40 ensures the airtightness of the product.
[0080] In one embodiment, the end of the plug rod 31 away from the contact head 32 is tapered to form a guide portion 311, which is inserted into the upper portion of the small diameter section 1041. The provision of the guide portion 311 makes it smoother for the conductive connector 30 to be inserted into the mounting hole 104.
[0081] In one embodiment, the outer diameter of the middle portion of the plug rod 31 is larger than the outer diameter of the guide portion, forming a pre-fixed portion 312 , and the pre-fixed portion 312 is interference fit with the middle portion of the small-diameter section 1041 .
[0082] In one embodiment, the outer diameter of the connecting section between the plug rod 31 and the contact head 32 is larger than the pre-fixing section 312, forming a fixing section 313. The fixing section 313 has an interference fit with the lower section of the small-diameter section 1041. The fixing section 313 and the pre-fixing section 312 are fixedly mounted on the inner wall of the mounting hole 104, thereby firmly connecting the conductive connector 30 to the mounting hole 104. The sealing groove 302 is located between the pre-fixing section 312 and the fixing section 313.
[0083] Optionally, one end of the conductive electrode sheet 22 (i.e., the contact end 223) is located between the pre-fixing portion 312 and the small diameter section 1041, or between the fixing portion 313 and the small diameter section 1041, or between the contact head 32 and the step surface of the large diameter section 1042, so that the conductive electrode sheet 22 is electrically connected to the conductive connector 30.
[0084] The present application also provides an assembly method of the atomizing device 1, comprising the following steps:
[0085] S1: Provide a base 14, including a lower end surface and an upper end surface. The lower end surface of the base is provided with a plug-in cavity 101, and a wire hole 103 is passed through the upper end surface of the base 14 toward the lower end surface. The lower end of the wire hole 103 is connected to the plug-in cavity 101;
[0086] S2: Provide an atomizer assembly 11, install the atomizer assembly 11 on the upper end surface of the base 14, and insert one end of the conductive pin 11 of the atomizer assembly 11 through the wire hole 103 and into the plug cavity 101;
[0087] S3: Provide an electrical connection base 20, including an insulating base 21 and a conductive electrode sheet 22; the conductive electrode sheet 22 is disposed on the insulating base 21, and an elastic clamping arm 221 extends from one end of the conductive electrode sheet 22;
[0088] S4: Insert the insulating seat 21 into the insertion cavity 101. The elastic clamping arm 221 is inserted into the insertion cavity 101 along with the insulating seat 21, forming a clamping space 102 between the elastic clamping arm 221 and the inner wall of the insertion cavity 101. During the insertion process, the elastic clamping arm 221 elastically abuts the conductive pin 11 against the inner wall of the clamping space 102 under the action of the elastic restoring force, establishing an electrical connection. By assembling the atomizer device in this manner, it is suitable for automated production, and the contact between the conductive pin 111 and the conductive electrode 22 is more stable.
[0089] In one embodiment, the following steps are also included:
[0090] S5: Provide a housing assembly 15 and plug the housing assembly 15 into the base 14 .
[0091] In one embodiment, when the conductive pin 111 extends too long into the clamping space 102, the following steps are further included between step S2 and step S3:
[0092] S2.1: Provide a jig. Insert it into the insertion cavity 101 and squeeze the lower end of the conductive pin 111 until the lower end of the conductive pin 111 bends and hooks onto the inner wall of the insertion cavity 101. Then remove the jig. This eliminates the need to manually trim overlong conductive pins 111, saving production time and improving efficiency. Furthermore, the conductive pin 111 is more stably connected to the base 14.
[0093] like Figure 13 As shown, the present application also provides an atomization device, including a power supply device 2 and an atomization device 1. When the atomization device 1 is plugged into the power supply device 2, it establishes an electrical connection with the power supply device 2. Optionally, the conductive connector 30 is magnetically attracted to the power supply device 2 to establish a conductive connection. The power supply device 2 charges the atomization device 1. Optionally, the power supply device 2 is a battery or a PCB with an integrated power storage module.
[0094] The above only describes preferred embodiments of the present application and is not used to limit the present application, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application should be included in the protection scope of the present application.
Claims
1. An atomizing device, comprising a main body, a liquid storage chamber and an atomizing assembly provided therein, wherein the atomizing assembly is used to atomize the solution in the liquid storage chamber into an aerosol; characterized in that: The main body is provided with a plug-in cavity, the atomizer device includes a base, the base includes a lower end surface and an upper end surface, the lower end surface is provided with the plug-in cavity, the main body is provided with a wire hole for the conductive pin of the atomizer component to pass through, the wire hole is passed through the upper end surface toward the lower end surface, and the lower end of the wire hole is connected to the plug-in cavity; the conductive pin portion of the atomizer component extends into the plug-in cavity through the wire hole; The atomization device also includes an electrical connection seat, which includes: an insulating seat and a conductive electrode fixed to the insulating seat; the insulating seat is inserted into the plug-in cavity; one end of the conductive electrode is exposed to the outside from the surface of the insulating seat, for establishing an electrical connection with an external power supply device, and the other end is suspended in the plug-in cavity to form an elastic clamping arm, and a clamping space is formed between one side of the elastic clamping arm and the corresponding inner wall of the plug-in cavity; when the conductive pin is inserted into the clamping space, it is pressed against the inner wall of the clamping space by the elastic clamping arm; the end of the elastic clamping arm is inclined to form a guide part, the wire hole is arranged opposite to the inclined upper end of the guide part, and the inclined lower end of the guide part is arranged corresponding to the clamping space, and one end of the conductive pin passes through the wire hole and is inserted into the clamping space along the guide part; the side of the elastic clamping arm facing away from the clamping space abuts against the side wall of the plug-in cavity, prompting the opposite side of the elastic clamping arm to squeeze the conductive pin into the clamping space; A mounting hole is provided on the lower end surface of the base, and the atomizing device includes a conductive connector, which includes a plug-in rod and a contact head connected to the plug-in rod. The conductive connector is plugged into the mounting hole, and an electrical connection is established between the conductive connector and the end of the conductive electrode exposed to the outside world from the surface of the insulating seat, and the bottom surface of the conductive connector is used to establish an electrical connection with an external power supply device.
2. The atomizing device according to claim 1, characterized in that: The conductive electrode sheet suspended in the plug-in cavity is bent or folded to form the elastic clamping arm.
3. The atomizing device according to claim 1, characterized in that: A first positioning plate and a second positioning plate are provided on the inner wall of one side of the plug-in cavity, surrounding the wire hole and protruding toward the insulating seat. The elastic clamping arm is inserted between the first positioning plate and the second positioning plate, and the clamping space is formed between one side of the first positioning plate and the corresponding side of the elastic clamping arm. One side of the second positioning plate presses against the side of the elastic clamping arm facing away from the clamping space.
4. The atomizing device according to claim 3, characterized in that: The second positioning plate presses against the side of the elastic clamping arm away from the clamping space to form an inclined structure, and the elastic clamping arm is bent into an inclined structure corresponding to the contact with the second positioning plate section.
5. The atomizing device according to claim 3, characterized in that: One end of the conductive pin passes through the clamping space and is bent toward the first positioning plate under the action of an external force to form a hook portion, which hooks the side of the first positioning plate away from the clamping space.
6. The atomizing device according to claim 5, characterized in that: The end of the first positioning plate extending into the plug-in cavity is provided with a groove, and the bent portion of the hook portion is clamped in the groove.
7. A method for assembling the atomizing device according to claim 1, characterized in that: The following steps are involved: S1: Provide a base, comprising a lower end surface and an upper end surface, wherein the lower end surface of the base is provided with a plug-in cavity, and a wire hole is passed through the upper end surface of the base toward the lower end surface, wherein the lower end of the wire hole is connected to the plug-in cavity; S2: providing an atomizer assembly, installing the atomizer assembly on the upper end surface of the base, and inserting one end of a conductive pin in the atomizer assembly through the wire hole and into the plug cavity; S3: providing an electrical connection base, comprising an insulating base and a conductive electrode; the conductive electrode is disposed on the insulating base, and an elastic clamping arm extends from one end of the conductive electrode; S4: Inserting the insulating seat into the plug-in cavity, the elastic clamping arm is inserted into the plug-in cavity along with the insulating seat, and forms the clamping space between the elastic clamping arm and the inner wall of the plug-in cavity. During the plug-in process, the elastic clamping arm elastically abuts the conductive pin against the inner wall of the clamping space under the action of the elastic restoring force, thereby establishing an electrical connection; A mounting hole is provided on the lower end surface of the base, a conductive connector is provided, the conductive connector is plugged into the mounting hole, and an electrical connection is established between the conductive connector and the end of the conductive electrode exposed to the outside from the surface of the insulating seat.
8. The method for assembling an atomizing device according to claim 7, wherein: The following steps are also included: S5: Provide a shell assembly, and plug the shell assembly into the base.
9. The method for assembling an atomizing device according to claim 7, wherein: When the conductive pin extends too far into the clamping space, the following steps are further included between step S2 and step S3: S2.1: Provide a jig, insert the jig into the plug-in cavity to squeeze the lower end of the conductive pin so that the lower end of the conductive pin is bent and hooked on the inner wall of the plug-in cavity, and then remove the jig.
10. An atomizing device, characterized in that: It comprises a power supply device and an atomizing device as described in any one of claims 1-6, and when the atomizing device is plugged into the power supply device, it establishes an electrical connection with the power supply device; or, it comprises a power supply device and an atomizing device, and the atomizing device is prepared using the assembly method of the atomizing device as described in any one of claims 7-9.
Citation Information
Patent Citations
Atomization device and atomization equipment
CN216983624U
Electronic cigarette
US20150181944A1