How to assemble the atomizer

Through the insert injection molding process of using a first bracket made of plastic or rubber in the atomizer and a resistive heating sheet, the existing atomizer has solved the complex structure and high cost problems, and achieved simple assembly and automated production of heating components and oil guides, which improved assembly efficiency.

CN115245210BActive Publication Date: 2025-08-19SHENZHEN SMISS TECH CO LTD
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Patent Information

Application Number
CN202210499961.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-09
Publication Date
2025-08-19
Estimated Expiration
2042-05-09

AI Technical Summary

Technical Problem

The atomization structure of existing atomizers is complex, costly, poor oil conductivity and unsuitable for automated production, resulting in low assembly efficiency.

Method used

The first bracket made of plastic or rubber is combined with the resistive heating sheet through an insert injection molding process. The heating assembly is in direct contact with the oil guide and automated production is achieved through a simple assembly process, including the assembly of the heating assembly and the oil guide and other components.

Benefits of technology

The simple assembly method of the atomizer is realized, the assembly efficiency is improved, and the heating assembly and oil guide can be assembled into an atomizer as a whole to meet the needs of automated production.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for assembling an atomizer includes providing a heating component, the heating component including a first bracket and a resistive heating plate at least partially embedded in the first bracket, the first bracket including a first base plate and a first side wall extending upward from the four sides of the first base plate, a receiving cavity formed between the first base plate and the first side wall, an atomizing groove is provided through the first base plate, the heating portion of the resistive heating plate spans above the atomizing groove, and the upper surface of the heating portion is located on the same horizontal plane as the upper surface of the first base plate; an oil guide is provided, the oil guide is installed in the receiving cavity, and the oil guide is in direct contact with the heating portion and the first base plate. The assembly method of the atomizer of the present invention is simple in assembly and can realize automated assembly production. The present invention also provides a method for manufacturing a heating component.
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Description

Technical Field

[0001] The present invention relates to the technical field of atomizers, and in particular to an assembling method of an atomizer and a manufacturing method of a heating component. Background Art

[0002] The atomizer is the core part of the electronic atomization product, and the reliability of the atomizer quality determines the quality of the entire atomization product.

[0003] One of the existing atomization structures is: a ceramic porous material surface is printed with a heating paste or a metal resistive heating element is embedded in the surface; both methods use porous ceramics as the oil-conducting material to adsorb the tobacco oil to the surface of the resistive heating element, and when the resistive heating element is energized, heat is generated to atomize the tobacco oil; the atomization structures of these methods have complex ceramic molding processes, low yields, and poor ceramic consistency, resulting in high product costs, and slightly poor ceramic oil conductivity, which is prone to produce a burnt smell and slightly poor taste restoration.

[0004] Another existing atomization structure is: a spiral resistance heating wire is wrapped around the surface of a horizontal cotton core. The horizontal cotton core absorbs the e-liquid to the surface of the resistance heating wire. When the resistance heating wire is energized, heat is generated to atomize the e-liquid. The horizontal cotton core of this type of atomization structure is extremely easy to deform, making assembly difficult, and the long oil conduction distance easily produces a burnt smell.

[0005] There is also an existing atomization structure: the outer surface of the vertical cotton core resistor heating body is wrapped with oil-conducting cotton, and the inner side of the resistor heating body is hollow; the oil-conducting cotton wrapped on the outer surface absorbs the tobacco oil to the surface of the resistor heating body, and generates heat when the resistor heating wire is energized to atomize the tobacco oil; this type of atomization structure has a vertical cotton core structure composed of many parts, and the assembly is complicated, resulting in high product cost.

[0006] The manufacturing process of the above atomization structure is complicated, and the atomization structure is formed by assembling multiple parts. The efficiency of assembling it into an atomizer is low and cannot meet the requirements of automated production. Summary of the Invention

[0007] In view of this, the present invention provides an assembly method for an atomizer, which has a simple assembly method and can realize automated assembly production.

[0008] A method for assembling an atomizer, comprising:

[0009] A heating component is provided, which includes a first bracket and a resistance heating sheet at least partially embedded in the first bracket, the first bracket includes a first base plate and a first side wall extending upward from the four sides of the first base plate, a receiving cavity is formed between the first base plate and the first side wall, an atomization groove is provided through the first base plate, the heating part of the resistance heating sheet spans above the atomization groove, and the upper surface of the heating part and the upper surface of the first base plate are located in the same horizontal plane; an oil guide member is provided, the oil guide member is installed in the receiving cavity, and the oil guide member is in direct contact with the heating part and the first base plate.

[0010] In an embodiment of the present invention, the above-mentioned first bracket is made of plastic, rubber or silicone, and the resistive heating sheet is combined with the first bracket through an insert injection molding process. The resistive heating sheet includes two first connecting parts, two electrode parts and the heating part. The heating part is connected between the two first connecting parts, and the two electrode parts are respectively connected to the two first connecting parts. The two electrode parts are exposed outside the first bracket, and the two electrode parts are respectively in contact with the lower surface of the first base plate.

[0011] In an embodiment of the present invention, the above-mentioned heating portion is provided with a plurality of through holes, and a resistance heating wire is provided between two adjacent through holes. The heating portion includes two oppositely arranged embedded portions, and the resistance heating wire is connected between the two embedded portions. The embedded portion includes a plurality of embedded pins spaced apart from each other, and a gap is formed between two adjacent embedded pins and between the first connecting portion and the adjacent embedded pin, and the gap is at least partially suspended above the atomization groove; the embedded pin includes a suspended section, a fourth embedded section and a fifth embedded section, and the fourth embedded section is connected between the suspended section and the fifth embedded section, and the suspended section is arranged corresponding to the atomization groove, the lower surface of the fourth embedded section is embedded in the first bottom plate, the upper surface of the fourth embedded section is exposed in the receiving cavity, and the fifth embedded section is buried in the connection between the first bottom plate and the first side wall.

[0012] In an embodiment of the present invention, the above-mentioned first bottom plate includes two oppositely arranged inclined portions, and the two inclined portions are respectively arranged corresponding to the two embedded portions. The upper surface of the inclined portion and the upper surface of the heating portion are located in the same horizontal plane, and the thickness of the inclined portion gradually decreases from the first side wall toward the direction close to the atomization groove.

[0013] In an embodiment of the present invention, the above-mentioned first connecting portion includes a middle section and two first embedded sections, the middle section is connected between the two first embedded sections; the lower surfaces of the two middle sections are embedded in the first bottom plate, the upper surfaces of the two middle sections are exposed in the receiving cavity, and the two first embedded sections are buried in the connection between the first bottom plate and the first side wall.

[0014] In an embodiment of the present invention, the assembling method of the atomizer further comprises:

[0015] Providing a second bracket, the second bracket being provided with a first liquid inlet and a first air outlet, and the bottom end of the second bracket being provided with an annular pressing wall;

[0016] The heating component is docked with the second bracket, so that the pressing wall extends into the receiving cavity and contacts the oil guide member with pressing force, and the first liquid inlet is communicated with the receiving cavity.

[0017] In an embodiment of the present invention, the assembling method of the atomizer further comprises:

[0018] Provide a sealing sheet, and install the sealing sheet on the second bracket before docking the heating component with the second bracket. After docking the heating component with the second bracket, press the end surface of the first side wall away from the first bottom plate against the sealing sheet.

[0019] In an embodiment of the present invention, the assembling method of the atomizer further comprises:

[0020] Providing a base, the base comprising a second bottom plate and second side walls extending upward from four sides of the second bottom plate, wherein the second bottom plate is provided with an air inlet hole;

[0021] The second bracket is docked with the base, the heating component is located between the second bracket and the base, and the atomization groove is corresponding to the air inlet.

[0022] In an embodiment of the present invention, before docking the base with the second bracket, the method further includes:

[0023] Providing two conductive electrodes, and installing the two conductive electrodes on the base, or installing the two conductive electrodes on the base after the base is docked with the second bracket;

[0024] providing an oil absorbing member, and mounting the oil absorbing member on the second bottom plate;

[0025] Providing a sealing ring, and sleeve-mounting the sealing ring on the outer side of the second side wall, or forming the sealing ring and the second side wall into one piece by two-color injection molding;

[0026] When the base is docked with the second bracket, the two conductive electrodes are respectively in contact with the two electrode parts of the resistance heating plate.

[0027] In an embodiment of the present invention, the assembling method of the atomizer further comprises:

[0028] Providing a sealing cover, wherein the sealing cover is provided with a second air outlet and a second liquid inlet;

[0029] The sealing cover is connected to the second bracket, and the second air outlet is connected to the first air outlet, and the second liquid inlet is connected to the first liquid inlet.

[0030] In an embodiment of the present invention, the assembling method of the atomizer further comprises:

[0031] An oil storage bin is provided, wherein the oil storage bin is provided with an oil storage cavity and a smoke outlet channel;

[0032] The open end of the oil storage bin is docked with the base, and the second bracket, the heating component and the sealing cover are located in the oil storage bin, the oil storage cavity is connected to the second liquid inlet, and the smoke outlet channel is connected to the second air outlet.

[0033] In an embodiment of the present invention, an air outlet channel is formed between the above-mentioned oil storage bin and the first side wall of the first bracket, the base is provided with an inner cavity connected to the air inlet hole, the air outlet channel connects the first air outlet hole and the inner cavity, the air inlet hole, the inner cavity, the air outlet channel, the first air outlet hole, the second air outlet hole and the smoke outlet channel constitute an airflow path; the oil storage cavity, the second liquid inlet hole, the first liquid inlet hole and the receiving cavity constitute a smoke oil path.

[0034] The present invention also provides a method for manufacturing a heating component, comprising:

[0035] A heating device is provided, comprising a frame and a heating assembly connected to the frame, the heating assembly comprising a first bracket and a heating resistor at least partially embedded in the first bracket, the heating resistor extending two second connecting portions from two sides of the first bracket, the two second connecting portions being respectively connected to the frame;

[0036] Separate the heat generating assembly from the frame.

[0037] In an embodiment of the present invention, a first crease groove is provided at a connection between each of the second connecting portions and the frame, and the heating component can be separated from the frame by bending along the first crease groove.

[0038] In an embodiment of the present invention, the method of bending the second connecting portion includes:

[0039] Positioning the heating component;

[0040] bending the two second connecting parts to a vertical direction;

[0041] The two second connection parts are bent to a horizontal direction to form two electrode parts of the heating component, and the two electrode parts are located on the bottom surface of the first bracket.

[0042] In an embodiment of the present invention, the method of bending the electrode portion includes:

[0043] Providing a positioning mechanism, and utilizing the positioning mechanism to position the heating component;

[0044] Providing a first bending mechanism, wherein the first bending mechanism is arranged in a vertical direction, and utilizing the first bending mechanism to bend the two second connecting portions into a vertical direction;

[0045] A second bending mechanism is provided, and the second bending mechanism is arranged in a horizontal direction. The second bending mechanism is used to bend the two second connecting parts to the horizontal direction.

[0046] In an embodiment of the present invention, the first bending mechanism includes a first driver and a second driver, wherein the first driver and the second driver are respectively provided corresponding to the two second connecting portions, and the first driver can push one of the second connecting portions to bend along the first direction via a first driving shaft, and the second driver can push the other of the second connecting portions to bend along the first direction via a second driving shaft;

[0047] The second bending mechanism includes a third driver and a fourth driver, and the electrode parts of the third driver and the fourth driver are relatively arranged on both sides of the first bracket. The third driver can push one of the second connecting parts to bend along the second direction through the third driving axis, and the fourth driver can push the other second connecting part to bend along the second direction through the fourth driving axis. The first direction is perpendicular to the second direction.

[0048] In an embodiment of the present invention, the above-mentioned first bracket is made of plastic, rubber or silicone, and the resistance heating sheet is combined with the first bracket through an insert injection molding process; the first bracket includes a first base plate and a first side wall extending upward from the four sides of the first base plate, and a receiving cavity is formed between the first base plate and the first side wall. An atomization groove is provided through the first base plate, and the heating part of the resistance heating sheet spans above the atomization groove, and the upper surface of the heating part and the upper surface of the first base plate are located on the same horizontal plane.

[0049] In an embodiment of the present invention, the above-mentioned resistance heating sheet also includes two first connecting parts, the heating part is connected between the two first connecting parts, and the two second connecting parts are respectively connected to the two first connecting parts; the heating part is provided with a plurality of through holes, and the resistance heating wire is provided between two adjacent through holes, and the heating part includes two oppositely arranged embedded parts, the resistance heating wire is connected between the two embedded parts, and the embedded part includes a plurality of embedded pins arranged at intervals from each other, and a gap is formed between two adjacent embedded pins and between the first connecting part and the adjacent embedded pin, and the gap is at least partially suspended above the atomization slot; the embedded pin includes a suspended section, a first Four embedded sections and a fifth embedded section, the fourth embedded section is connected between the suspended section and the fifth embedded section, the suspended section is arranged corresponding to the atomization groove, the lower surface of the fourth embedded section is embedded in the first bottom plate, the upper surface of the fourth embedded section is exposed in the receiving cavity, and the fifth embedded section is buried in the connection between the first bottom plate and the first side wall. In an embodiment of the present invention, the above-mentioned first bottom plate includes two oppositely arranged inclined portions, and the two inclined portions are respectively arranged corresponding to the two embedded portions, the upper surface of the inclined portion and the upper surface of the heating portion are located in the same horizontal plane, and the thickness of the inclined portion gradually decreases from the first side wall toward the direction close to the atomization groove.

[0050] In an embodiment of the present invention, the above-mentioned first connecting part includes a middle section and two first embedded sections, and the middle section is connected between the two first embedded sections; the lower surfaces of the two middle sections are embedded in the first bottom plate, the upper surfaces of the two middle sections are exposed in the receiving cavity, and the two first embedded sections are buried in the connection between the first bottom plate and the first side wall; the second connecting part includes a second embedded section, a third embedded section, a bending section and an electrode section, the second embedded section is connected to the first connecting part, the third embedded section is connected between the second embedded section and the bending section, and the electrode section is connected to the bending section; the lower surface of the second embedded section is embedded in the first bottom plate, the upper surface of the second embedded section is exposed in the receiving cavity, the third embedded section is buried in the connection between the first bottom plate and the first side wall, the bending section is arranged outside the first bracket and located at the edge of the first bottom plate, and the electrode section is in contact with the lower surface of the first bottom plate.

[0051] The assembly method of the atomizer of the present invention can assemble the heating component and the oil guide component together. The assembly method is simple and can realize automated assembly production. The heating component and the oil guide component can be assembled into an atomizer as a whole, which can improve the assembly efficiency of the atomizer. BRIEF DESCRIPTION OF THE DRAWINGS

[0052] Figure 1 It is a schematic diagram of the disassembled structure of the heating component and the oil guide member of the present invention.

[0053] Figure 2a It is a schematic diagram of the assembled heating component and oil guide member of the present invention.

[0054] Figure 2b yes Figure 2a The schematic diagram of the structure of the heating component and the oil guide part from another perspective is shown.

[0055] Figure 2c yes Figure 2b A partially enlarged schematic diagram of the heating component shown.

[0056] Figure 2d yes Figure 2a The schematic diagram of the cross-sectional structure of the heating component and the oil guide member along the second direction is shown.

[0057] Figure 2e It is a schematic cross-sectional structural diagram of the heating component of the present invention along the first direction.

[0058] Figure 2f It is a schematic cross-sectional structural diagram of the heating component of the present invention along the second direction.

[0059] Figures 3 to 6 It is a schematic diagram of the process of docking the second bracket with the heating component of the present invention.

[0060] Figures 7 to 14 It is a schematic diagram of the process of docking the base and the second bracket of the present invention.

[0061] Figure 15 and Figure 16 It is a schematic diagram of the process of docking the second bracket and the sealing cover of the present invention.

[0062] Figure 17 and Figure 18 It is a schematic diagram of the process of docking the second bracket and the sealing cover of the present invention.

[0063] Figure 19 It is a schematic cross-sectional structural diagram of the atomizer of the present invention along one direction.

[0064] Figure 20 It is a schematic cross-sectional structural diagram of the atomizer of the present invention along another direction.

[0065] Figure 21 It is a schematic diagram of the three-dimensional structure of the heating device of the present invention.

[0066] Figure 22 It is a schematic diagram of the three-dimensional structure of the heating component of the present invention.

[0067] Figure 23 yes Figure 22 A schematic diagram of the three-dimensional structure of the heating component from another perspective is shown.

[0068] Figure 24 It is a structural schematic diagram of the frame and the resistance heating plate of the present invention.

[0069] Figure 25 and Figure 26 It is a schematic structural diagram of the process in which the electrode portion of the present invention is bent.

[0070] Figures 27 to 29 It is a schematic structural diagram of the electrode portion of the present invention being mechanically bent. DETAILED DESCRIPTION

[0071] The invention provides an assembling method of an atomizer.

[0072] In order to enable those skilled in the art to better understand the solutions of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of the present invention.

[0073] To facilitate understanding by those skilled in the art, the present invention illustrates the specific implementation process of the technical solution provided by the present invention through the following embodiments.

[0074] Figure 1 This is a schematic diagram of the split structure of the heating component and the oil guide member of the present invention. Figure 2a This is a schematic diagram of the assembled heating component and oil guide member of the present invention. Figure 2b yes Figure 2a The schematic diagram of the structure of the heating component and the oil guide from another perspective is shown in FIG. Figure 1 、 Figure 2a and Figure 2b As shown, the assembling method of the atomizer of the present invention includes:

[0075] A heating element 10 is provided. The heating element 10 includes a first bracket 13 and a heating resistor 12 at least partially embedded in the first bracket 13. The first bracket 13 includes a first bottom plate 131 and a first side wall 132 extending upward from the first bottom plate 131. A receiving cavity 103 is formed between the first bottom plate 131 and the first side wall 132. An atomizing groove 104 is formed through the first bottom plate 131. A heating portion 123 of the heating resistor 12 spans the atomizing groove 104. The upper surface of the heating portion 123 is located on the same horizontal plane as the upper surface of the first bottom plate 131.

[0076] An oil guide member 30 is provided and installed in the receiving cavity 103 . The oil guide member 30 is in direct contact with the heating portion 123 and the first bottom plate 131 .

[0077] The assembly method of the atomizer of the present invention can assemble the heating component 10 and the oil guide member 30 together. The assembly method is simple and can realize automated assembly production. The heating component 10 and the oil guide member 30 can be assembled into an atomizer as a whole, which can improve the assembly efficiency of the atomizer.

[0078] Optionally, the heating resistor 12 is a sheet-like structure, and the heating resistor 12 is made of a metal sheet, such as a nickel-chromium alloy, iron-chromium-aluminum, S316L stainless steel or other alloy materials.

[0079] Optionally, the first bracket 13 is made of plastic, rubber or silicone, and the heating resistor 12 is combined with the first bracket 13 through an insert injection molding process.

[0080] Optionally, the resistance heating sheet 12 includes two first connecting parts 121, two electrode parts 1225 and a heating part 123, the heating part 123 is connected between the two first connecting parts 121, the two electrode parts 1225 are respectively connected to the two first connecting parts 121, the two electrode parts 123 are exposed outside the first bracket 13, and the two electrode parts 123 are respectively in contact with the lower surface of the first bottom plate 131. In this embodiment, the resistance heating sheet 12 includes a first surface 124 and a second surface 125 that are relatively arranged, the first surface 124 is the upper surface of the resistance heating sheet 12, and the second surface 125 is the lower surface of the resistance heating sheet 12. The oil guide member 30 includes a third surface 31 and a fourth surface 32 that are relatively arranged, the third surface 31 is the lower surface of the oil guide member 30, and the fourth surface 32 is the upper surface of the oil guide member 30. The first surface 124, the second surface 125, the third surface 31 and the fourth surface 32 are all planes. When the oil guide member 30 is installed in the receiving cavity 103, the third surface 31 of the oil guide member 30 is in complete contact with the first surface 124 of the resistance heating plate 12, which effectively improves the atomization effect and avoids the generation of burnt smell during atomization and affects the taste of smoking.

[0081] Optionally, Figure 2c yes Figure 2b The enlarged schematic diagram of the heating component shown in FIG. Figure 2d yes Figure 2a The schematic cross-sectional view of the heating component and the oil guide member along the second direction is shown. Figure 2e is a schematic cross-sectional view of the heating component of the present invention along the first direction, Figure 2f This is a schematic diagram of the cross-sectional structure of the heating component of the present invention along the second direction, please refer to Figures 1 to 2fThe heating part 123 is provided with a plurality of through holes 102, and a resistance heating wire 1231 is provided between two adjacent through holes 102. The heating part 123 includes two oppositely arranged embedded parts 1232, and the resistance heating wire 1231 is connected between the two embedded parts 1232. The embedded part 1232 includes a plurality of embedded pins 1233 spaced apart from each other. A gap 107 is formed between two adjacent embedded pins 1233 and between the first connecting part 121 and the adjacent embedded pin 1233. The first end of the embedded pin 1233 is connected to the resistance heating wire 1231, and the second end of the embedded pin 1233 is away from the resistance heating wire 1231 and is buried between the first bottom plate 131 and the first side wall 132.

[0082] Optionally, the embedded pin 1233 includes a suspended section 1234, a fourth embedded section 1235 and a fifth embedded section 1236, the suspended section 1234 is arranged corresponding to the atomization groove 104, the suspended section 1234 is connected between the resistance heating wire 1231 and the fourth embedded section 1235, and the fifth embedded section 1236 is connected to the fourth embedded section 1235; the lower surface of the fourth embedded section 1235 is embedded in the first bottom plate 131, the upper surface of the fourth embedded section 1235 is exposed in the accommodating cavity 103, and the fifth embedded section 1236 is buried in the connection between the first bottom plate 131 and the first side wall 132.

[0083] Alternatively, as Figure 1 、 Figure 2c and Figure 2e As shown, the first bottom plate 131 includes two oppositely disposed inclined portions 1311, and the two inclined portions 1311 are respectively disposed corresponding to the two embedded portions 1232. The upper surface of the inclined portion 1311 is located at the same horizontal plane as the upper surface of the heating portion 123, and the thickness of the inclined portion 1311 gradually decreases from the first side wall 132 toward the direction close to the atomization groove 104. The inclined portion 1311 does not completely cover or fill each notch 107. In this embodiment, the lower surface of the fourth embedded section 1235 is embedded in the inclined portion 1311, and the upper surface of the fourth embedded section 1235 is exposed in the receiving cavity 103. The fifth embedded section 1236 is embedded in the connection between the inclined portion 1311 and the first side wall 132. Optionally, the first connecting portion 121 includes a middle section 1211 and two first embedded sections (not shown), and the middle section 1211 is connected between the two first embedded sections; the lower surfaces of the middle sections 1211 of the two first connecting portions 121 are embedded in the first bottom plate 131, and the upper surfaces of the middle sections 1211 of the two first connecting portions 121 are exposed in the accommodating cavity 103, and the first embedded sections of the two first connecting portions 121 are buried in the connection between the first bottom plate 131 and the first side wall 132.

[0084] Optionally, the resistance heating sheet 12 includes two second connecting parts 122, and the two second connecting parts 122 are respectively connected to the two first connecting parts 121; the two second connecting parts 122 each include a second embedded section 1221, a third embedded section 1222, a bent section 1224 and an electrode section 1225, the second embedded section 1221 is connected to the first connecting part 121, the third embedded section 1222 is connected between the second embedded section 1221 and the bent section 1224, and the electrode section 1225 is connected to the bent section 1224; the two second connecting parts The lower surface of the second embedded section 1221 of 122 is embedded in the first base plate 131, and the upper surface of the second embedded section 1221 of the two second connecting parts 122 is exposed in the accommodating cavity 103; the third embedded section 1222 of the two second connecting parts 122 is buried in the connection between the first base plate 131 and the first side wall 132; the bending section 1224 and the electrode part 1225 are arranged outside the first bracket 13, the bending section 1224 is located at the edge of the first base plate 131, and the electrode part 1225 is in contact with the lower surface of the first base plate 131.

[0085] Optionally, the first bottom plate 131 is located on the upper surface of the accommodating cavity 103 and is located on the same horizontal plane as the first surface 124 of the resistor heating plate 12. That is, when the oil guide member 30 is installed in the accommodating cavity 103, the third surface 31 of the oil guide member 30 is in complete contact with the first surface 124 of the resistor heating plate 12 and the upper surface of the first bottom plate 131.

[0086] Optionally, the outer contour of the oil guide member 30 matches the shape of the receiving chamber 103, and the oil guide member 30 is placed in the receiving chamber 103 through the opening at the upper end of the receiving chamber 103. The oil guide member 30 is flatly arranged in the receiving chamber 103 of the first bracket 13. The oil guide member 30 is independently arranged from the first bracket 13 and the resistance heating plate 12. The oil guide member 30 can be detachably accommodated in the receiving chamber 103, that is, the oil guide member 30 can be placed in the receiving chamber 103 or removed from the receiving chamber 103. The oil guide member 30 has the ability to absorb oil, but the first bracket 13 does not have the ability to absorb oil. The first bracket 13 is only used to combine with the resistance heating plate 12 and to accommodate and support the oil guide member 30.

[0087] Optionally, Figures 3 to 6 This is a flow chart of the second bracket of the present invention when docking with the heating component. Please refer to Figures 3 to 6 , the assembling method of the atomizer further comprises:

[0088] A second bracket 40 is provided. The second bracket 40 is provided with a first liquid inlet 401 and a first air outlet 402. The bottom end of the second bracket 40 is provided with an annular pressing wall 41.

[0089] The heating component 10 is docked with the second bracket 40 so that the pressing wall 41 extends into the receiving chamber 103 and presses against the oil guide member 30. The first liquid inlet 401 is connected to the receiving chamber 103, and the smoke oil can be transferred to the oil guide member 30 via the first liquid inlet 401. In this embodiment, the pressing wall 41 extends into the receiving chamber 103 and presses against the outer periphery of the fourth surface 32 of the oil guide member 30. The pressing wall 41 applies a downward pressing force to the oil guide member 30, and the oil guide member 30 is clamped between the pressing wall 41 and the first bottom plate 131 of the first bracket 13, which can prevent the oil guide member 30 from loosening and shifting, and the oil guide member 30 can better fit and contact the resistance heating plate 12, thereby improving the atomization effect.

[0090] Optionally, the second bracket 40 is provided with two first liquid inlet holes 401 and one first air outlet hole 402 . The first air outlet hole 402 is provided in the middle of the second bracket 40 , and the first air outlet hole 402 is located between the two first liquid inlet holes 401 .

[0091] Optionally, two baffles 42 are disposed opposite each other at the bottom end of the second bracket 40, the pressing wall 41 is located between the two baffles 42, and a gap 401 is formed between the pressing wall 41 and the two baffles 42. The first side wall 132 of the first bracket 13 is inserted into the gap 401. By confining the first side wall 132 of the first bracket 13 within the gap 401, the first bracket 13 can be stably installed in the atomizer.

[0092] Optionally, the assembling method of the atomizer further comprises:

[0093] A sealing sheet 43 is provided. Before docking the heating component 10 with the second bracket 40, the sealing sheet 43 is first installed on the second bracket 40. After docking the heating component 10 with the second bracket 40, the end surface of the first side wall 132 facing away from the first bottom plate 131 presses against the sealing sheet 43. In this embodiment, the sealing sheet 43 is a sheet-like structure with a through-hole (not shown) in the middle for the pressing wall 41 to pass through. The sealing sheet 43 prevents the smoke liquid absorbed into the receiving chamber 103 from leaking out through the end surface of the first side wall 132.

[0094] Optionally, Figures 7 to 14 This is a schematic diagram of the process of docking the base and the second bracket of the present invention, please refer to Figures 7 to 14 , the assembling method of the atomizer further comprises:

[0095] like Figure 13 and Figure 14 As shown, a base 50 is provided, the base 50 includes a second bottom plate 51 and a second side wall 52 extending upward from the periphery of the second bottom plate 51, and the second bottom plate 51 is provided with an air inlet hole 501;

[0096] The second bracket 40 is docked with the base 50, the heating component 10 is located between the second bracket 40 and the base 50, and the atomizing groove 104 is correspondingly arranged with the air inlet 501. In this embodiment, the second bracket 40 and the first bracket 13 are assembled and docked by means of a block and a slot. For example, the outer walls of the two baffles 42 of the second bracket 40 are provided with a block, and the inner side of the second side wall 52 of the first bracket 13 is provided with a slot.

[0097] Alternatively, as Figures 7 to 12 As shown, before docking the base 50 with the second bracket 40, the following steps are also included:

[0098] Provide two conductive electrodes 54 and install the two conductive electrodes 54 on the base 50, or install the two conductive electrodes 54 on the base 50 after the base 50 is docked with the second bracket 40;

[0099] Provide an oil suction member 55 and install the oil suction member 55 on the second bottom plate 51;

[0100] Providing a sealing ring 56, and sleeved the sealing ring 56 on the outer side of the second side wall 52, or the sealing ring 56 and the second side wall 52 are integrally formed by two-color injection molding;

[0101] When the base 50 is docked with the second bracket 40, the two conductive electrodes 54 respectively contact the two electrode portions 1225 of the resistance heating element 12. In this embodiment, two positioning posts 53 are provided upwardly extending from the inner surface of the second bottom plate 51. The two positioning posts 53 have mounting holes 502 defined therein. The two conductive electrodes 54 are respectively mounted in the mounting holes 502 of the two positioning posts 53. The bottom ends of the two conductive electrodes 54 are exposed from the base 50 for conductive connection with the power supply device, and the top ends of the two conductive electrodes 54 respectively contact the two electrode portions 1225.

[0102] Optionally, the oil absorber 55 is a sheet-like structure, disposed on the inner surface of the second bottom plate 51 of the base 50 and sleeved over the two positioning posts 53. The oil absorber 55 absorbs condensation or e-liquid generated during atomization, preventing leakage. The oil absorber 55 is an oil-absorbing cotton pad.

[0103] Optionally, the sealing ring 56 is made of elastic material, and the sealing ring 56 is used to cooperate with the oil storage bin 70 to prevent the leakage of the smoke oil.

[0104] Optionally, the sealing ring 56 and the second bracket 40 are integrally formed by two-color injection molding.

[0105] Optionally, Figure 15 and Figure 16 This is a schematic diagram of the process of docking the second bracket and the sealing cover of the present invention. Figure 15 and Figure 16 As shown, the assembling method of the atomizer further includes:

[0106] A sealing cover 60 is provided, wherein the sealing cover 60 is provided with a second air outlet 601 and a second liquid inlet 602;

[0107] The sealing cover 60 is attached to the second bracket 40, connecting the second air outlet 601 and the air inlet 501 to the first air outlet 403, and the second liquid inlet 602 to the first liquid inlet 401. In this embodiment, the sealing cover 60 is positioned above the second bracket 40. Two second liquid inlet holes 602 are provided on either side of the sealing cover 60. Each second liquid inlet hole 602 connects the oil storage chamber 701 to a corresponding first liquid inlet hole 401, allowing the liquid to be transferred to the oil guide 30 sequentially through the second liquid inlet holes 602 and the first liquid inlet hole 401.

[0108] Optionally, Figure 17 and Figure 18 This is a schematic diagram of the process of docking the second bracket and the sealing cover of the present invention. Figure 17 and Figure 18 As shown, the assembling method of the atomizer further includes:

[0109] An oil storage tank 70 is provided, wherein an oil storage cavity 701 and a smoke outlet channel 702 are provided in the oil storage tank 70;

[0110] The open end of the oil storage bin 70 is docked with the base 50, and the second bracket 40, the heating component 10, and the sealing cover 60 are positioned within the oil storage bin 70. The oil storage cavity 701 is connected to the second liquid inlet 602, and the smoke outlet 702 is connected to the second air outlet 601. In this embodiment, the base 50 and the oil storage bin 70 are assembled and docked by means of a locking block and a locking slot. For example, a locking block is provided on the outer side of the second side wall 52 of the base 50, and a locking slot is provided on the inner side of the oil storage bin 70.

[0111] Optionally, Figure 19 is a schematic cross-sectional structural diagram of the atomizer of the present invention along one direction, Figure 20 : is a schematic cross-sectional view of the atomizer of the present invention along another direction, as shown in FIG. Figure 19 and Figure 20 As shown, an air outlet channel 703 is formed between the oil storage tank 70 and the first side wall 132 of the first bracket 13. The base 50 is provided with an inner cavity communicating with the air inlet hole 501. The air outlet channel 703 communicates with the first air outlet hole 403 and the inner cavity. The air inlet hole 501, the inner cavity, the air outlet channel 703, the first air outlet hole 403, the second air outlet hole 601 and the smoke outlet channel 702 constitute an air flow path. Figure 19 As shown; the oil storage chamber 701, the second liquid inlet hole 602, the first liquid inlet hole 402, the receiving chamber 103 constitutes the smoke oil path, as shown Figure 20 shown.

[0112] Optionally, the oil storage tank 70 includes an outer shell 71 and an inner shell 72 located within the outer shell 71. The bottom end of the outer shell 71 is an open end, and the inner shell 72 is connected to the top end of the outer shell 71. An oil storage chamber 701 is formed between the outer shell 71 and the inner shell 72. Specifically, the oil storage chamber 701 is an annular groove arranged around the inner shell. A smoke outlet channel 702 is formed inside the inner shell 72. In this embodiment, the inner shell 72 and the top end of the outer shell 71 are an integral structure, that is, the inner shell 72 and the outer shell 71 are made as one piece.

[0113] Optionally, before docking the oil storage tank 70 with the base 50, the steps include:

[0114] An oil suction member 55 is provided and installed in the oil storage cavity 701 , and an oil injector is used to inject oil into the oil storage tank 70 .

[0115] When the atomizer is working, the tobacco oil stored in the oil storage cavity 701 in the oil storage bin 70 enters the fourth surface 32 of the oil guide member 30 through the second liquid inlet hole 602 on the sealing cover 60 and the first liquid inlet hole 401 on the second bracket 40, and is absorbed by the oil guide member 30 and transferred to the third surface 31 that is completely in contact with the resistance heating plate 12. When powered on, the resistance heating plate 12 generates heat, and the tobacco oil in contact with the first surface 124 of the resistance heating plate 12 is atomized to form smoke. The atomized smoke passes through the heating part 123 and the atomization groove 104 into the inner cavity of the base 50, and is discharged through the air outlet channel 703, the first air outlet hole 403, the second air outlet hole 601 and the smoke outlet channel 702 for the user to inhale.

[0116] Figure 21 is a schematic diagram of the three-dimensional structure of the heating device of the present invention, Figure 22 It is a schematic diagram of the three-dimensional structure of the heating component of the present invention. Figure 23 yes Figure 22 A schematic diagram of the three-dimensional structure of the heating component from another perspective is shown in FIG. Figure 21 、 Figure 22 and Figure 23 As shown, the present invention also provides a method for manufacturing a heating component, including:

[0117] A heating device is provided, comprising a frame 11 and a heating assembly 10 connected to the frame 11. The heating assembly 10 comprises a first bracket 13 and a heating resistor 12 at least partially embedded in the first bracket 13. The heating resistor 12 extends from two sides of the first bracket 13 with two second connecting portions 122, and the two second connecting portions 122 are respectively connected to the frame 11.

[0118] The heating component 10 is separated from the frame 11. The heating component 10 of this embodiment has the same structure and function as the above-mentioned heating component 10, and please refer to the above for details.

[0119] Optionally, Figure 24 This is a schematic diagram of the structure of the frame and the resistance heating plate of the present invention, as shown in FIG. Figure 24 As shown, in order to facilitate the removal of the heating component 10 from the frame 11, a first fold groove 105 is provided at the connection between each second connecting portion 122 of the heating resistor 12 and the frame 11. The heating component 10 can be separated from the frame 11 by bending along the first fold groove 105. In this embodiment, the first fold groove 105 is formed by a local depression in the second surface 125 of the heating resistor 12.

[0120] Alternatively, as Figure 24 As shown, the frame 11 is formed by connecting a plurality of connecting plates 111 end to end. To facilitate the disassembly of the frame 11, a second folding groove 106 is provided at the connection between two adjacent connecting plates 111. Each connecting plate 111 can be disassembled by bending along the second folding groove 106. In this embodiment, the second folding groove 106 is formed by a local depression in the second surface 125 of the frame 11.

[0121] Optionally, Figure 25 and Figure 26 This is a schematic diagram of the process structure of the electrode portion being bent in the present invention, as shown in FIG. Figure 25 and Figure 26 As shown, the method of bending the second connecting portion 122 includes:

[0122] Positioning the heating component 10;

[0123] Bend the two second connecting parts 122 to a vertical direction;

[0124] The two second connecting portions 122 are bent horizontally to form two electrode portions 1225 of the heating component 10. The two electrode portions 1225 are located on the bottom surface of the first bracket 13. In this embodiment, when the electrode portions 1225 are in a vertical direction, the electrode portions 1225 are perpendicular to the outer surface of the first bottom plate 131; when the electrode portions 1225 are in a horizontal direction, the electrode portions 1225 are parallel to the outer surface of the first bottom plate 131.

[0125] Optionally, Figures 27 to 29 Schematic diagram of the structure of the electrode portion of the present invention being mechanically bent, as shown in FIG. Figure 27 、 Figure 28 and Figure 29 As shown, the method of bending the second connecting portion 122 includes:

[0126] A positioning mechanism 81 is provided, and the heating component 10 is positioned by using the positioning mechanism 81; a plurality of clamping arms 811 are provided on the positioning mechanism, and the plurality of clamping arms 811 can clamp and position the heating component 10;

[0127] A first bending mechanism 82 is provided, and the first bending mechanism 82 is arranged in a vertical direction. The first bending mechanism 82 is used to bend the two second connecting parts 122 into the vertical direction;

[0128] A second bending mechanism 83 is provided and arranged in a horizontal direction. The second bending mechanism 83 is used to bend the two second connecting portions 122 into a horizontal direction. When the second connecting portions 122 need to be bent, the heating component 10 is first placed on the bending station. At this time, the positioning mechanism 81, for example, clamps and fixes the first bracket 13. Then, the first bending mechanism 82 pushes the two second connecting portions 122 to bend into a vertical direction. Finally, the second bending mechanism 83 pushes the two second connecting portions 122 to bend into a horizontal direction. The entire process is performed at a single station, which can reduce the number of assembly steps and improve production efficiency.

[0129] Alternatively, as Figure 27 、 Figure 28 and Figure 29 As shown, the first bending mechanism 82 includes a first driver 821 and a second driver 823. The first driver 821 and the second driver 823 are respectively arranged corresponding to the two second connecting parts 122. The first driver 821 can push one second connecting part 122 to bend via the first driving shaft 822, and the second driver 823 can push the other second connecting part 122 to bend via the second driving shaft 824.

[0130] The second bending mechanism 83 includes a third driver 831 and a fourth driver 833. The third driver 831 and the fourth driver 833 are respectively arranged corresponding to the two second connecting parts 122. The third driver 831 can push one second connecting part 122 to bend through the third driving shaft 832, and the fourth driver 833 can push the other second connecting part 122 to bend through the fourth driving shaft 834.

[0131] Optionally, the first bracket 13 is made of plastic, rubber or silicone, and the resistance heating sheet 12 is combined with the first bracket 13 through an insert injection molding process; the first bracket 13 includes a first bottom plate 131 and a first side wall 132 extending upward from the four sides of the first bottom plate 131, and a receiving cavity 103 is formed between the first bottom plate 131 and the first side wall 132. The first bottom plate 131 is penetrated by an atomization groove 102, and the heating portion 123 of the resistance heating sheet 12 spans above the atomization groove 102. The upper surface of the heating portion 123 and the upper surface of the first bottom plate 123 are located on the same horizontal plane. The second connecting portion 122 and the second connecting portion 122. Please refer to the above for the structure of the heating component 10, which will not be repeated here.

[0132] The preferred embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the specific details in the above embodiments. Within the scope of the technical concept of the present invention, various simple modifications can be made to the technical solution of the present invention, and these simple modifications all fall within the scope of protection of the present invention. The various specific technical features described in the above specific embodiments can be combined in any suitable manner unless there is any contradiction. In order to avoid unnecessary repetition, the present invention will not further describe various possible combinations.

Claims

1. A method for assembling an atomizer, characterized in that: include: A heating assembly is provided, comprising a first bracket and a heating resistor at least partially embedded in the first bracket, the first bracket comprising a first bottom plate and first side walls extending upward from the first bottom plate, a receiving cavity being formed between the first bottom plate and the first side walls, an atomizing groove being provided through the first bottom plate, a heating portion of the heating resistor spanning the atomizing groove, and an upper surface of the heating portion being coplanar with an upper surface of the first bottom plate; Providing an oil guide member, installing the oil guide member in the receiving cavity, and the oil guide member directly contacts the heating portion and the first bottom plate; The resistive heating sheet includes two first connecting parts, two electrode parts and the heating part, the heating part is connected between the two first connecting parts, the two electrode parts are respectively connected to the two first connecting parts, the two electrode parts are exposed outside the first bracket, and the two electrode parts are respectively in contact with the lower surface of the first bottom plate; the first connecting part includes a middle section and two first embedded sections, the middle section is connected between the two first embedded sections; the lower surfaces of the two middle sections are embedded in the first bottom plate, the upper surfaces of the two middle sections are exposed in the receiving cavity, and the two first embedded sections are buried in the connection between the first bottom plate and the first side wall.

2. The method for assembling an atomizer according to claim 1, wherein: The first bracket is made of plastic, rubber or silicone, and the resistance heating sheet is combined with the first bracket through an insert injection molding process.

3. The method for assembling an atomizer according to claim 2, wherein: The heating portion is provided with a plurality of through holes, and a resistance heating wire is provided between two adjacent through holes. The heating portion includes two oppositely arranged embedded portions, and the resistance heating wire is connected between the two embedded portions. The embedded portion includes a plurality of embedded pins spaced apart from each other, and a gap is formed between two adjacent embedded pins and between the first connecting portion and the adjacent embedded pin, and the gap is at least partially suspended above the atomization groove; the embedded pin includes a suspended section, a fourth embedded section and a fifth embedded section, and the fourth embedded section is connected between the suspended section and the fifth embedded section, and the suspended section is arranged corresponding to the atomization groove, the lower surface of the fourth embedded section is embedded in the first bottom plate, the upper surface of the fourth embedded section is exposed in the receiving cavity, and the fifth embedded section is buried in the connection between the first bottom plate and the first side wall.

4. The method for assembling an atomizer according to claim 3, wherein: The first bottom plate includes two oppositely arranged inclined portions, which are respectively arranged corresponding to the two embedded portions. The upper surface of the inclined portion and the upper surface of the heating portion are located in the same horizontal plane, and the thickness of the inclined portion gradually decreases from the first side wall toward the direction close to the atomization groove.

5. The method for assembling an atomizer according to claim 1, wherein: The assembling method of the atomizer further comprises: Providing a second bracket, the second bracket being provided with a first liquid inlet and a first air outlet, and the bottom end of the second bracket being provided with an annular pressing wall; The heating component is docked with the second bracket, so that the pressing wall extends into the receiving cavity and contacts the oil guide member with pressing force, and the first liquid inlet is communicated with the receiving cavity.

6. The method for assembling an atomizer according to claim 5, wherein: The assembling method of the atomizer further comprises: Provide a sealing sheet, and install the sealing sheet on the second bracket before docking the heating component with the second bracket. After docking the heating component with the second bracket, press the end surface of the first side wall away from the first bottom plate against the sealing sheet.

7. The method for assembling an atomizer according to claim 5, wherein: The assembling method of the atomizer further comprises: Providing a base, the base comprising a second bottom plate and second side walls extending upward from four sides of the second bottom plate, wherein the second bottom plate is provided with an air inlet hole; The second bracket is docked with the base, the heating component is located between the second bracket and the base, and the atomization groove is corresponding to the air inlet.

8. The method for assembling an atomizer according to claim 7, wherein: Before docking the base with the second bracket, the following steps are further included: Providing two conductive electrodes, and installing the two conductive electrodes on the base, or installing the two conductive electrodes on the base after the base is docked with the second bracket; providing an oil absorbing member, and mounting the oil absorbing member on the second bottom plate; Providing a sealing ring, and sleeve-mounting the sealing ring on the outer side of the second side wall, or forming the sealing ring and the second side wall into one piece by two-color injection molding; When the base is docked with the second bracket, the two conductive electrodes are respectively in contact with the two electrode parts of the resistance heating plate.

9. The method for assembling an atomizer according to claim 8, wherein: The assembling method of the atomizer further comprises: Providing a sealing cover, wherein the sealing cover is provided with a second air outlet and a second liquid inlet; The sealing cover is connected to the second bracket, and the second air outlet is connected to the first air outlet, and the second liquid inlet is connected to the first liquid inlet.

10. The method for assembling an atomizer according to claim 9, wherein: The assembling method of the atomizer further comprises: An oil storage bin is provided, wherein the oil storage bin is provided with an oil storage cavity and a smoke outlet channel; The open end of the oil storage bin is docked with the base, and the second bracket, the heating component and the sealing cover are located in the oil storage bin, the oil storage cavity is connected to the second liquid inlet, and the smoke outlet channel is connected to the second air outlet.

11. The method for assembling an atomizer according to claim 10, wherein: An air outlet channel is formed between the oil storage bin and the first side wall of the first bracket, the base is provided with an inner cavity connected to the air inlet hole, the air outlet channel connects the first air outlet hole and the inner cavity, the air inlet hole, the inner cavity, the air outlet channel, the first air outlet hole, the second air outlet hole and the smoke outlet channel constitute an air flow path; the oil storage cavity, the second liquid inlet hole, the first liquid inlet hole and the receiving cavity constitute a smoke oil path.

12. A method for manufacturing a heating component, characterized in that: include: A heating device is provided, comprising a frame and a heating assembly connected to the frame, the heating assembly comprising a first bracket and a heating resistor at least partially embedded in the first bracket, the heating resistor extending two second connecting portions from two sides of the first bracket, the two second connecting portions being respectively connected to the frame; separating the heating component from the frame; The first bracket includes a first bottom plate and a first side wall extending upward from the first bottom plate. A receiving cavity is formed between the first bottom plate and the first side wall. An atomization groove is provided on the first bottom plate. The heating portion of the resistance heating element spans over the atomization groove. The upper surface of the heating portion is located on the same horizontal plane as the upper surface of the first bottom plate. Providing an oil guide member, installing the oil guide member in the receiving cavity, and the oil guide member directly contacts the heating portion and the first bottom plate; The resistive heating sheet includes two first connecting parts, two electrode parts and the heating part, the heating part is connected between the two first connecting parts, the two electrode parts are respectively connected to the two first connecting parts, the two electrode parts are exposed outside the first bracket, and the two electrode parts are respectively in contact with the lower surface of the first bottom plate; the first connecting part includes a middle section and two first embedded sections, the middle section is connected between the two first embedded sections; the lower surfaces of the two middle sections are embedded in the first bottom plate, the upper surfaces of the two middle sections are exposed in the receiving cavity, and the two first embedded sections are buried in the connection between the first bottom plate and the first side wall.

13. The method for manufacturing a heating element according to claim 12, wherein: A first crease groove is provided at a connection point between each second connection portion and the frame. The heating component can be separated from the frame by bending along the first crease groove.

14. The method for manufacturing a heating component according to any one of claims 12 or 13, wherein: The method of bending the second connecting portion includes: Positioning the heating component; bending the two second connecting parts to a vertical direction; The two second connection parts are bent to a horizontal direction to form two electrode parts of the heating component, and the two electrode parts are located on the bottom surface of the first bracket.

15. The method for manufacturing a heating component according to claim 14, wherein: The method of bending the second connecting portion includes: Providing a positioning mechanism, and utilizing the positioning mechanism to position the heating component; Providing a first bending mechanism, wherein the first bending mechanism is arranged in a vertical direction, and utilizing the first bending mechanism to bend the two second connecting portions into a vertical direction; A second bending mechanism is provided, and the second bending mechanism is arranged in a horizontal direction. The second bending mechanism is used to bend the two second connecting parts to the horizontal direction.

16. The method for manufacturing a heating element according to claim 15, wherein: The first bending mechanism includes a first driver and a second driver, the first driver and the second driver are respectively arranged corresponding to the two second connecting parts, the first driver can push one of the second connecting parts to bend along the first direction via a first driving shaft, and the second driver can push the other of the second connecting parts to bend along the first direction via a second driving shaft; The second bending mechanism includes a third driver and a fourth driver, and the electrode parts of the third driver and the fourth driver are relatively arranged on both sides of the first bracket. The third driver can push one of the second connecting parts to bend along the second direction through the third driving axis, and the fourth driver can push the other second connecting part to bend along the second direction through the fourth driving axis. The first direction is perpendicular to the second direction.

17. The method for manufacturing a heating component according to claim 14, wherein: The first bracket is made of plastic, rubber or silicone, and the resistance heating sheet is combined with the first bracket through an insert injection molding process; the first bracket includes a first base plate and a first side wall extending upward from the four sides of the first base plate, and a receiving cavity is formed between the first base plate and the first side wall. An atomization groove is provided through the first base plate, and the heating part of the resistance heating sheet spans above the atomization groove, and the upper surface of the heating part and the upper surface of the first base plate are located on the same horizontal plane.

18. The method for manufacturing a heating element according to claim 17, wherein: The resistive heating sheet also includes two first connecting parts, the heating part is connected between the two first connecting parts, and the two second connecting parts are respectively connected to the two first connecting parts; the heating part is provided with a plurality of through holes, and a resistive heating wire is provided between two adjacent through holes, the heating part includes two oppositely arranged embedded parts, the resistive heating wire is connected between the two embedded parts, the embedded part includes a plurality of embedded pins arranged at intervals from each other, and a gap is formed between two adjacent embedded pins and between the first connecting part and the adjacent embedded pin, and the gap is at least partially suspended above the atomization groove; the embedded pin includes a suspended section, a fourth embedded section and a fifth embedded section, the fourth embedded section is connected between the suspended section and the fifth embedded section, the suspended section is arranged corresponding to the atomization groove, the lower surface of the fourth embedded section is embedded in the first bottom plate, the upper surface of the fourth embedded section is exposed in the receiving cavity, and the fifth embedded section is buried in the connection between the first bottom plate and the first side wall.

19. The method for manufacturing a heating component according to claim 18, wherein: The first bottom plate includes two oppositely arranged inclined portions, which are respectively arranged corresponding to the two embedded portions. The upper surface of the inclined portion and the upper surface of the heating portion are located in the same horizontal plane, and the thickness of the inclined portion gradually decreases from the first side wall toward the direction close to the atomization groove.

20. The method for manufacturing a heating component according to claim 18, wherein: The first connecting part includes a middle section and two first embedded sections, and the middle section is connected between the two first embedded sections; the lower surfaces of the two middle sections are embedded in the first bottom plate, the upper surfaces of the two middle sections are exposed in the receiving cavity, and the two first embedded sections are buried in the connection between the first bottom plate and the first side wall; the second connecting part includes a second embedded section, a third embedded section, a bending section and an electrode section, the second embedded section is connected to the first connecting part, the third embedded section is connected between the second embedded section and the bending section, and the electrode section is connected to the bending section; the lower surface of the second embedded section is embedded in the first bottom plate, the upper surface of the second embedded section is exposed in the receiving cavity, the third embedded section is buried in the connection between the first bottom plate and the first side wall, the bending section and the electrode section are arranged outside the first bracket, the bending section is located at the edge of the first bottom plate, and the electrode section is in contact with the lower surface of the first bottom plate.

Citation Information

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