Heating release assembly and electronic suction device
By employing a heating release component in the electronic suction device, the rotating part and the liquid storage part share a single heating structure, thus solving the problems of complexity and high cost caused by the built-in heating structure in the storage silo, achieving a simple structure and smokeless effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HG INNOVATION LTD
- Filing Date
- 2025-05-19
- Publication Date
- 2026-04-24
AI Technical Summary
In existing electronic suction devices, each storage bin has a built-in heating structure, resulting in a complex structure and high cost.
A heating release assembly is used, including a fixed part, a rotating part and multiple liquid storage parts. The rotating part is rotatably connected to the fixed part. The multiple liquid storage parts share a heating structure. Different liquid storage parts can be switched by direct or indirect heating. The liquid storage parts have a second gas channel that is connected to a first gas channel.
It achieves a simple structure, easy assembly, and low cost, and prevents the generation of high-temperature smoke through indirect heating, thus achieving a smokeless effect.
Smart Images

Figure CN224155152U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic suction device technology, specifically to a heating release component and an electronic suction device. Background Technology
[0002] An electronic aspiration device is a device that generates flavor gases and / or aerosols for users to inhale.
[0003] In related technologies, in order to meet the diverse needs of users, electronic suction devices are usually designed to have a structure that allows for the replacement of different flavors. This type of electronic suction device includes multiple storage bins, which can be rotated and switched.
[0004] However, each storage silo has a built-in heating structure, making the structure complex. Utility Model Content
[0005] This application provides a heating release component and an electronic suction device to solve the problem that each storage compartment of an electronic suction device capable of changing different flavors has a built-in heating structure, resulting in a complex structure.
[0006] In one embodiment, a heat release assembly is provided, including a fixing member, a rotating member, a plurality of liquid storage members, and a heating structure;
[0007] The heating structure is disposed on the fixing member;
[0008] Multiple liquid storage units are disposed within the rotating member, each liquid storage unit storing a substance to be heated. The rotating member is rotatably connected to the fixed member and rotates relative to the heating structure, so that different liquid storage units are switched to the working position corresponding to the heating structure.
[0009] The heating structure has a first gas channel, and the liquid storage device has a second gas channel. The second gas channel in the liquid storage device at the working position is connected to the first gas channel. The heating structure is configured to directly heat or indirectly heat the substance to be heated stored in the liquid storage device at the working position, so that the heated substance to be heated and the flowing gas are output together from the first gas channel and / or the second gas channel.
[0010] In one embodiment, the substance to be heated includes a volatile substance; the heating structure is used to heat the gas flowing through the first gas channel, the heated gas flows through the second gas channel, and heats the volatile substance in the liquid storage device at the working position, so that the volatile substance evaporates into the second gas channel and is output together with the flowing gas.
[0011] In one embodiment, the rotating component has a plurality of air inlets at its first end near the heating structure, and the plurality of air inlets are respectively connected to the second gas channels in the plurality of liquid storage components, and the first gas channel is connected to the second gas channel through the air inlets;
[0012] The heating structure is mounted on the fixing member by a sealing member. The sealing member includes a first sealing structure, which covers the outer periphery of the heating structure. The side of the first sealing structure near the rotating member seals against the first end of the rotating member and surrounds the air inlet that communicates with the second gas channel in the liquid storage member in the working position.
[0013] In one embodiment, the first sealing structure has a mounting hole, and the heating structure is interference-fitted into the mounting hole;
[0014] The fixing member has a through hole, and the first sealing structure is at least partially inserted into the through hole. The heating release component has a first air inlet that communicates with the outside gas, and the first gas channel communicates with the first air inlet.
[0015] In one embodiment, the rotating member has an opening at its second end away from the heating structure, and a cover is provided on the rotating member to cover the opening;
[0016] The cover has multiple vent holes, which are respectively connected to the second gas channel in the multiple liquid storage components.
[0017] In one embodiment, the rotating member is provided with a plurality of first limiting structures corresponding to a plurality of liquid storage components, and the fixing member is provided with a second limiting structure. The second limiting structure is used to cooperate with different first limiting structures to position different liquid storage components to switch to the working position.
[0018] In one embodiment, the first limiting structure is a limiting groove, the fixing member includes a cantilever, and the second limiting structure is a limiting protrusion provided on the cantilever, the limiting protrusion being elastically abutted against the limiting groove by the cantilever.
[0019] In one embodiment, the rotating component has multiple compartments, adjacent compartments are separated by a partition plate, and multiple liquid storage components are located in the multiple compartments respectively.
[0020] In one embodiment, the heating structure includes a hollow cylindrical ceramic substrate and a heating mesh embedded in the inner wall of the ceramic substrate.
[0021] In one embodiment, an electronic suction device is provided, including the heating release component as described above.
[0022] According to the heating release assembly of the above embodiment, the heating release assembly includes a rotating member, multiple liquid storage units, and a heating structure. The rotating member rotates to position different liquid storage units in a working position. The heating structure is used to directly or indirectly heat the substance to be heated stored in the liquid storage units in the working positions. Multiple liquid storage units share one heating structure, resulting in a simple structure, easy assembly, and low cost. Furthermore, each liquid storage unit has a second gas channel, which is connected to a first gas channel in the liquid storage unit in the working position. The second gas channel allows the heating structure to indirectly heat the substance to be heated stored in the liquid storage unit in the working position. Attached Figure Description
[0023] Figure 1 This is a three-dimensional structural schematic diagram of the heating release component in one embodiment;
[0024] Figure 2 A cross-sectional view of the heat release component in one embodiment. Figure 1 ;
[0025] Figure 3 for Figure 2 Enlarged view of point A in the middle;
[0026] Figure 4 This is a schematic diagram of the structure of multiple liquid storage components in a heating release assembly in one embodiment;
[0027] Figure 5 This is a schematic diagram of the structure of the rotating component in one embodiment of the heating release assembly. Figure 1 ;
[0028] Figure 6 This is a schematic diagram of the structure of the rotating component in one embodiment of the heating release assembly. Figure 2 ;
[0029] Figure 7 This is a three-dimensional structural diagram of the seal in the heating release assembly in one embodiment;
[0030] Figure 8 This is a cross-sectional schematic diagram of the seal in the heat release assembly in one embodiment;
[0031] Figure 9 This is a schematic diagram of the structure of the fixing member in the heating release assembly in one embodiment;
[0032] Figure 10 This is a schematic diagram of the structure of the rotating component in one embodiment of the heating release assembly. Figure 3 ;
[0033] Figure 11 This is a schematic diagram of the structure of the rotating component and the cover in one embodiment of the heating release assembly;
[0034] Figure 12 This is a schematic diagram of the structure of the cover in one embodiment of the heating release assembly;
[0035] Figure 13 This is a schematic diagram of the cantilever and limiting protrusion in the heating release assembly in one embodiment;
[0036] Figure 14 This is a schematic diagram of the heating structure in the heating release assembly in one embodiment;
[0037] Figure 15 This is a schematic diagram of the structure of the support in the heating release assembly in one embodiment;
[0038] Figure 16 This is a schematic diagram of the structure of the fixing member and the rotating member in one embodiment of the heating release assembly;
[0039] Figure 17 A cross-sectional view of the heat release component in one embodiment. Figure 2 .
[0040] The accompanying diagrams are labeled as follows:
[0041] 10-Rotating component, 11-Compartment, 12-Divider plate, 13-Air inlet, 14-Shell, 15-Internal structure, 16-Limiting groove, 17-First hole, 18-Second hole, 19-Shaft hole;
[0042] 20 - Liquid storage component; 21 - Second gas passage;
[0043] 30-Heating structure, 31-First gas channel, 311-Inlet end, 32-Ceramic substrate, 33-Heating mesh;
[0044] 40-Fixed component, 41-Fixed shaft, 411-Threaded hole, 42-Through hole, 43-Cantilever, 44-Limiting protrusion, 45-Main compartment, 46-Air outlet, 47-Mounting cavity;
[0045] 50 - Seal, 51 - First sealing structure, 511 - Sealing protrusion ring, 512 - Mounting hole, 513 - Third hole, 514 - Fourth hole, 52 - Second sealing structure;
[0046] 60 - bracket, 61 - first air inlet, 62 - second air inlet;
[0047] 70-Cover body, 71-Vent hole, 72-Circumferential side wall, 73-Limiting step surface, 74-Protrusion;
[0048] 80-Atomizing structure, 81-Oil reservoir, 82-Atomizing core, 83-Third gas channel.
[0049] 90 - Limiting component. Detailed Implementation
[0050] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0051] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0052] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. Unless otherwise specified, the terms "connection" and "linkage" used in this application include both direct and indirect connections (linkages).
[0053] refer to Figures 1 to 4 In one embodiment, a heating release assembly is provided, including a fixing member 40, a rotating member 10, multiple liquid storage units 20, and a heating structure 30. The heating structure 30 is disposed on the fixing member 40. Multiple liquid storage units 20 are disposed within the rotating member 10, and each liquid storage unit 20 stores a substance to be heated. The rotating member 10 is rotatably connected to the fixing member 40 and rotates relative to the heating structure 30, so that different liquid storage units 20 are switched to the corresponding working positions of the heating structure 30. The heating structure 30 has a first gas channel 31, and each liquid storage unit 20 has a second gas channel 21. The second gas channel 21 in the liquid storage unit 20 in the working position is connected to the first gas channel 31. The heating structure 30 is configured to directly heat or indirectly heat the substance to be heated stored in the liquid storage unit 20 in the working position, so that the heated substance to be heated and the flowing gas are output from the first gas channel 31 and / or the second gas channel 21.
[0054] The fixing component 40 and the rotating component 10 can be made of plastic. The rotating component 10 is rotatably connected to the right side of the fixing component 40. (See reference) Figure 2 and Figure 9 The fastener 40 includes a fixed shaft 41, see reference. Figure 6 The rotating part 10 has a shaft hole 19, and the fixed shaft 41 is inserted into the shaft hole 19. The rotating part 10 rotates around the axis of the fixed shaft 41.
[0055] Different liquid reservoirs 20 are used to store substances of different flavors to be heated. By rotating the rotating component 10, different liquid reservoirs 20 can be positioned in their working positions, thereby switching between different flavors. Multiple liquid reservoirs 20 are evenly arranged circumferentially around the fixed axis 41. The number of liquid reservoirs 20 can be set according to actual needs; for example, it can be set to two, three, four, five, six, etc. The rotating component 10 is located above the heating structure 30, with its working position being directly above the heating structure 30.
[0056] The first gas passage 31 is connected to the second gas passage 21 in the liquid storage unit 20 in the working position, allowing gas to flow from the first gas passage 31 into the second gas passage 21. The gas flow direction in the first gas passage 31 can be from bottom to top, and the gas flow direction in the second gas passage 21 can also be from bottom to top. External gas can enter from the bottom of the first gas passage 31, then flow to the second gas passage 21, and exit from the top of the second gas passage 21.
[0057] The substance to be heated can be an atomizing matrix, volatile substances, etc. The liquid storage component 20 can be a liquid storage shell, oil storage cotton, etc. Direct heating means that the heating structure 30 directly contacts and heats the substance to be heated. Indirect heating means that the heating structure does not directly contact the substance to be heated, but indirectly heats the substance through a heat transfer medium, such as hot air.
[0058] As an example, the heating structure 30 is used to indirectly heat the substance to be heated stored in the liquid storage container 20 in the working position. The substance to be heated includes volatile substances. The heating structure 30 is used to heat the gas flowing through the first gas channel 31. The heated gas flows through the second gas channel 21 and heats the volatile substances adsorbed by the liquid storage container 20 in the working position, so that the volatile substances evaporate into the second gas channel 21 and are output together with the flowing gas.
[0059] As another example, the heating structure 30 is used to directly heat the substance to be heated stored in the liquid storage container 20 in the working position. The substance to be heated is an atomizing matrix. The bottom of the liquid storage container 20 is provided with a first liquid guiding structure, and the heating structure 30 is provided with a second liquid guiding structure. The first liquid guiding structure in the liquid storage container 20 in the working position is connected to the second liquid guiding structure. The substance to be heated stored in the liquid storage container 20 in the working position is transported to the heating structure 30 for heating through the first liquid guiding structure and the second liquid guiding structure. The heating structure 30 heats the substance to be heated into an atomizing matrix so that it is atomized into an aerosol. The aerosol and the flowing gas are output from the first gas channel 31 and the second gas channel 21.
[0060] In related technologies, to meet diverse user needs, electronic suction devices are typically designed with interchangeable flavors. These devices include multiple storage compartments that can be rotated and switched. However, each compartment has a built-in heating structure, resulting in a complex structure and high cost.
[0061] In this embodiment, the heating release assembly includes a rotating member 10, multiple liquid storage units 20, and a heating structure 30. The rotating member 10 rotates to position the different liquid storage units 20 in their working positions. The heating structure 30 is used to directly or indirectly heat the substance to be heated stored in the liquid storage units 20 in their working positions. Multiple liquid storage units 20 share one heating structure 30, resulting in a simple structure, easy assembly, and low cost. Furthermore, each liquid storage unit 20 has a second gas channel 21. The second gas channel 21 in the liquid storage unit 20 in its working position is connected to the first gas channel 31. The second gas channel 21 allows the heating structure 30 to indirectly heat the substance to be heated stored in the liquid storage unit 20 in its working position.
[0062] In one embodiment, the substance to be heated includes a volatile substance; the heating structure 30 is used to heat the gas flowing through the first gas channel 31, and the heated gas flows through the second gas channel 21 and heats the volatile substance adsorbed by the liquid storage device 20 in the working position, so that the volatile substance evaporates to the second gas channel 21 and is output together with the flowing gas.
[0063] In this embodiment, the volatile substance can evaporate into gas upon heating. The liquid storage component 20 adsorbs the volatile substance; the liquid storage component 20 can be a liquid storage cotton or other liquid storage medium with a porous structure. The bottom end of the heating structure 30 is the air inlet 311, and the top end is the air outlet. External gas enters the first gas channel 31 from the air inlet 311. The heating structure 30 can generate heat to heat the gas flowing through the first gas channel 31. The heated gas flows into the second gas channel 21 in the liquid storage component 20 in the working position to heat the volatile substance adsorbed by the liquid storage component 20.
[0064] In this embodiment, the gas heated by the heated structure 30 is used to heat the volatile substances adsorbed by the liquid storage component 20. The heated structure 30 heats the volatile substances adsorbed by the liquid storage component 20 through indirect heating. Compared with direct heating, the heating temperature of indirect heating is relatively lower. Thus, while heating the volatile substances and causing them to evaporate into gas, the generation of smoke caused by high temperature is prevented, achieving a smokeless effect.
[0065] In one embodiment, reference is made to Figure 3 , Figures 5 to 8 The rotating component 10 has multiple air inlets 13 at its first end near the heating structure 30. The multiple air inlets 13 are respectively connected to the second gas channels 21 in the multiple liquid storage components 20. The first gas channel 31 is connected to the second gas channel 21 through the air inlets 13. The heating structure 30 is mounted on the fixing component 40 by a sealing component 50. The sealing component 50 includes a first sealing structure 51, which covers the outer periphery of the heating structure 30. The side of the first sealing structure 51 near the rotating component 10 is in sealing contact with the first end of the rotating component 10 and surrounds the air inlets 13 that are connected to the second gas channels 21 in the liquid storage component 20 in the working position.
[0066] The air inlet 13 can be circular, oval, rectangular, or other shapes. The sealing element 50 can be made of silicone. The first sealing structure 51 includes a sealing ring 511 on the side near the rotating member 10. The sealing ring 511 seals against the first end of the rotating member 10 and surrounds the air inlet 13, which communicates with the second gas channel 21 in the liquid storage member 20 in the working position. The sealing ring 511 can be a rectangular ring structure or a circular ring structure. The heating structure 30 can be connected to the sealing element 50, and the connection between the heating structure 30 and the sealing element 50 can be an interference fit, adhesive bonding, etc. In this embodiment, the first sealing structure 51 can seal the gas flowing from the first gas channel 31 to the air inlet 13, thereby preventing the gas from escaping through an unexpected path.
[0067] In one embodiment, reference is made to Figure 3 , Figures 7 to 9 The first sealing structure 51 has a mounting hole 512, and the heating structure 30 is interference-fitted into the mounting hole 512; the fixing member 40 has a through hole 42, and the mounting part 53 is at least partially inserted into the through hole 42; the heating release assembly has a first air inlet 61 that communicates with the outside gas, and the first gas passage 31 communicates with the first air inlet 61.
[0068] The mounting part 53 further includes a third hole 513 and a fourth hole 514, which are located above and below the mounting hole 512, respectively. A first stepped surface is formed at the junction of two third holes 513, and a second stepped surface is formed at the junction of two fourth holes 514 and three third holes 513. The first and second stepped surfaces contact the top and bottom surfaces of the heating structure 30, respectively, to prevent the heating structure 30 from detaching. When the heating structure 30 is installed, it can be inserted into the mounting hole 512 through the fourth hole 514. In this embodiment, the assembly method of the heating structure 30 is simple.
[0069] Reference Figure 3 , Figure 7 , Figure 8 , Figure 15 and Figure 16 The heating and releasing assembly also includes a bracket 60, a first air inlet 61 formed on the bracket 60, a seal 50 connected to the bracket 60, a fixing member 40 having a mounting cavity 47, the seal 50 located within the mounting cavity 47, the bracket 60 connected to the fixing member 40 and partially extending into the mounting cavity 47, and the seal 50 further including a second sealing structure 52, which seals against the inner wall of the mounting cavity 47 to prevent gas from escaping through unintended paths. The connection method between the seal 50 and the bracket 60 can be snap-fit, adhesive, etc. The connection method between the bracket 60 and the fixing member 40 can be snap-fit, screw connection, etc. The second sealing structure 52 can be a raised ring structure.
[0070] The first gas passage 31 is specifically connected to the second gas passage 21 in the liquid storage component 20 in the working position through the third hole 513 and the air inlet 13. The sealing convex ring 511 is specifically arranged around the third hole 513. External gas enters from the first air inlet 61 and flows through the first gas passage 31. The gas flowing through the first gas passage 31 is heated by the heating structure 30. The heated gas flows through the third hole 513 and the air inlet 13 through the second gas passage 21, and heats the volatile substances adsorbed by the liquid storage component 20 in the working position, so that the volatile substances evaporate into the second gas passage 21 and are output together with the flowing gas.
[0071] In one embodiment, reference is made to Figures 10 to 12 The rotating part 10 has an opening at the second end away from the heating structure 30, and a cover 70 is provided on the rotating part 10 to cover the opening; the cover 70 has multiple air outlets 71, which are respectively connected to the second gas channels 21 in the multiple liquid storage components 20.
[0072] The shape of the vent 71 can be circular, oblong, rectangular, etc. The cover 70 can be made of silicone and includes a circumferential sidewall 72. The circumferential sidewall 72 is interference-fitted with the inner wall of the top of the housing 14 in the rotating component 10 to achieve a sealing effect and allow the cover 70 to rotate synchronously with the rotating component 10. The cover 70 also includes a limiting step surface 73, which contacts the top surface of the housing 14. When the cover 70 is in place, it is pressed down until the limiting step surface 73 contacts the top surface of the housing 14, indicating that the cover 70 is properly installed. In this embodiment, the second end of the rotating component 10 has an opening to facilitate the insertion of the liquid storage component 20 into the rotating component 10; the cover 70 prevents external dust, impurities, etc., from affecting the liquid storage component 20 inside the rotating component 10.
[0073] In one embodiment, the rotating member 10 is provided with a plurality of first limiting structures corresponding to a plurality of liquid storage members 20, and the fixing member 40 is provided with a second limiting structure. The second limiting structure is used to cooperate with different first limiting structures to position different liquid storage members 20 to switch to the working position.
[0074] The number of first limiting structures is equal to the number of liquid storage components 20. One of the first limiting structures or the second limiting structure can be a groove or hole, and the other can be a protrusion. The protrusion can be provided on the cantilever structure, or it can be connected to an elastic element, such as a spring. In this embodiment, the second limiting structure cooperates with the first limiting structure to prevent the rotating component 10 from rotating accidentally, thereby preventing the liquid storage component 20 currently in the working position from accidentally leaving the working position.
[0075] In one embodiment, reference is made to Figure 1 , Figure 6 , Figure 13 The first limiting structure is a limiting groove 16, the fixing member 40 includes a cantilever 43, and the second limiting structure is a limiting protrusion 44 provided on the cantilever 43. The limiting protrusion 44 is elastically abutted against the limiting groove 16 by the cantilever 43.
[0076] When there are four liquid storage components 20, there are correspondingly four limiting grooves 16, and the positions of the four limiting grooves 16 correspond one-to-one with the positions of the four liquid storage components 20. The limiting grooves 16 can be arc-shaped grooves, and correspondingly, the limiting protrusions 44 are arc-shaped protrusions. As an example, the cantilever 43 and the limiting protrusions 44 are located on the right side of the fixing member 40. The limiting protrusions 44 cooperate with the limiting grooves 16 corresponding to the liquid storage components 20 on the right side to limit another liquid storage component 20 opposite to it in the working position.
[0077] In this embodiment, the limiting protrusion 44 is provided on the cantilever 43. When the user manually rotates the rotating component 10, the cantilever 43 can be lifted outward due to its elasticity, so that the limiting protrusion 44 can disengage from the limiting groove 16, thereby making it easier for the user to rotate the rotating component 10 smoothly.
[0078] In one embodiment, reference is made to Figure 5 and Figure 10 The rotating component 10 has multiple chambers 11, with adjacent chambers 11 separated by partition plates 12. Multiple liquid storage units 20 are located within each of the multiple chambers 11. The number of chambers 11 is equal to the number of liquid storage units 20. The rotating component 10 includes a shell 14 and an inner structure 15, which, along with the adjacent partition plates 12, form a chamber 11. In this embodiment, the partition plates 12 separate the liquid storage units 20 within adjacent chambers 11, preventing cross-contamination of odors; furthermore, the partition plates 12 can push the liquid storage units 20 to rotate together with the rotating component 10 during rotation.
[0079] In one embodiment, reference is made to Figure 14 The heating structure 30 includes a hollow cylindrical ceramic substrate 32 and a heating mesh 33 embedded in the inner wall of the ceramic substrate 32. A first gas channel 31 is formed in the hollow part of the ceramic substrate 32, and the heating mesh 33 can be made of metal. The heating structure 30 can be integrally sintered. In this embodiment, the heating mesh 33 has a large surface area and excellent heating performance; the ceramic substrate 32 has excellent electrical insulation properties, which can isolate the metal heating mesh 33 from the external structure and prevent leakage or short circuit.
[0080] In one embodiment, reference is made to Figure 2 , Figure 5 , Figure 6 , Figure 9 and Figure 10 The heating release assembly also includes a limiting member 90, which includes a head and a rod. The rod of the limiting member 90 is connected to the fixed shaft 41, and the head of the limiting member 90 contacts the rotating member 10 to limit the axial movement of the rotating member 10 along the fixed shaft 41 and prevent the rotating member 10 from shaking up and down.
[0081] The rotating component 10 has a first hole 17 and a second hole 18 communicating with the first hole 17. The second hole 18 communicates with a shaft hole 19. The first hole 17, the second hole 18, and the shaft hole 19 are arranged sequentially from the second end of the rotating component 10 to the first end. The junction of the first hole 17 and the second hole 18 forms a third stepped surface. The head of the limiting component 90 is located inside the first hole 17, and the bottom surface of the head of the limiting component 90 contacts the third stepped surface. The fixed shaft 41 has a threaded hole 411. The rod of the limiting component 90 passes through the second hole 18 and is threadedly connected to the threaded hole 411. The limiting component 90 can be a screw, bolt, etc. (Refer to...) Figure 2 and Figure 12The cover 70 also includes a protrusion 74 that extends into the first hole 17 to block the first hole 17 from the second gas passage 21, thereby preventing gas from escaping through an unintended path.
[0082] In one embodiment, reference is made to Figures 15 to 17 The fixing component 40 has a main chamber 45, within which an atomizing structure 80 is provided. The atomizing structure 80 includes an oil storage component 81, an atomizing core 82, and a third gas channel 83. The oil storage component 81 stores the atomizing substrate, and the atomizing core 82 is used to heat the atomizing substrate to atomize it into an aerosol. The gas in the third gas channel 83 flows from bottom to top. The oil storage component 81 can be oil-absorbing cotton, and the atomizing core 82 can be a heating element such as a heating mesh or heating ceramic.
[0083] The fixing member 40 has an air outlet 46, which is connected to the third gas channel 83. The bracket 60 has a second air inlet 62, which is also connected to the third gas channel 83. Air enters through the second air inlet 62, flows into the third gas channel 83, mixes with the aerosol, and then flows out through the air outlet 46.
[0084] In one embodiment, an electronic suction device is provided, including the heating release component as described in the above embodiment. Since the electronic suction device includes the aforementioned heating release component, it also possesses the beneficial effects of the aforementioned heating release component, which will not be elaborated upon here.
[0085] The electronic suction device may also include a power supply component, which supplies electrical energy to the heating structure 30 in the heating release component and to the atomizing core 82 in the heating release component. The connection between the power supply component and the heating release component can be a fixed connection or a detachable connection.
[0086] The above-described specific examples are for illustrative purposes only and are not intended to limit the scope of this invention. Those skilled in the art can make various simple deductions, modifications, or substitutions based on the concept of this invention.
Claims
1. A heating release component, characterized in that, It includes a fixing component, a rotating component, multiple liquid storage components, and a heating structure; The heating structure is disposed on the fixing member; Multiple liquid storage units are disposed within the rotating member, and the liquid storage units store the substance to be heated; the rotating member is rotatably connected to the fixed member, and the rotating member rotates relative to the heating structure, so that different liquid storage units are switched to the working position corresponding to the heating structure; The heating structure has a first gas channel, and the liquid storage device has a second gas channel. The second gas channel in the liquid storage device at the working position is connected to the first gas channel. The heating structure is configured to directly heat or indirectly heat the substance to be heated stored in the liquid storage device at the working position, so that the heated substance to be heated and the flowing gas are output together from the first gas channel and / or the second gas channel.
2. The heating release assembly according to claim 1, characterized in that, The substance to be heated includes volatile substances; the heating structure is used to heat the gas flowing through the first gas channel, the heated gas flows through the second gas channel, and heats the volatile substances in the liquid storage device in the working position, so that the volatile substances evaporate into the second gas channel and are output together with the flowing gas.
3. The heating release assembly according to claim 1 or 2, characterized in that, The rotating component has multiple air inlets at its first end near the heating structure. The multiple air inlets are respectively connected to the second gas channels in the multiple liquid storage components. The first gas channel is connected to the second gas channel through the air inlets. The heating structure is mounted on the fixing member by a sealing member. The sealing member includes a first sealing structure, which covers the outer periphery of the heating structure. The side of the first sealing structure near the rotating member seals against the first end of the rotating member and surrounds the air inlet that communicates with the second gas channel in the liquid storage member in the working position.
4. The heating release assembly according to claim 3, characterized in that, The first sealing structure has a mounting hole, and the heating structure is interference-fitted into the mounting hole; The fixing member has a through hole, and the first sealing structure is at least partially inserted into the through hole. The heating release component has a first air inlet that communicates with the outside gas, and the first gas channel is connected to the first air inlet.
5. The heating release assembly according to claim 1 or 2, characterized in that, The rotating component has an opening at its second end away from the heating structure, and a cover is provided on the rotating component to cover the opening; The cover has multiple vent holes, which are respectively connected to the second gas channel in the multiple liquid storage components.
6. The heating release assembly according to claim 1 or 2, characterized in that, The rotating component is provided with a plurality of first limiting structures corresponding to the plurality of liquid storage components, and the fixing component is provided with a second limiting structure. The second limiting structure is used to cooperate with different first limiting structures to position different liquid storage components to switch to the working position.
7. The heating release assembly according to claim 6, characterized in that, The first limiting structure is a limiting groove, the fixing member includes a cantilever, and the second limiting structure is a limiting protrusion provided on the cantilever, the limiting protrusion being elastically abutted against the limiting groove by the cantilever.
8. The heating release assembly according to claim 1 or 2, characterized in that, The rotating component has multiple compartments, with adjacent compartments separated by partitions, and multiple liquid storage components located within the multiple compartments respectively.
9. The heating release assembly according to claim 1 or 2, characterized in that, The heating structure includes a hollow cylindrical ceramic matrix and a heating mesh embedded in the inner wall of the ceramic matrix.
10. An electronic suction device, characterized in that, Includes the heating release component as described in any one of claims 1 to 9.