Aerosol generating device including a thermal insulator

The integration of a thermal insulator with dual sealings in aerosol generating devices addresses the issue of heat management, ensuring efficient and safe operation by maintaining temperature control.

JP7813866B2Active Publication Date: 2026-02-13KT&G CO LTD
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Patent Information

Application Number
JP2024502692
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-10-07
Filing Date
2023-07-10
Publication Date
2026-02-13
Estimated Expiration
2043-07-10

AI Technical Summary

Technical Problem

Existing aerosol generating devices lack effective thermal insulation, which can lead to inefficiencies and potential damage from excessive heat buildup.

Method used

Incorporation of a thermal insulator within the aerosol generating device, featuring a housing with a flange and dual sealings to protect electrical lines, maintaining thermal insulation and ensuring safe operation.

Benefits of technology

The thermal insulator effectively maintains temperature control, protecting electrical components and enhancing device performance and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The aerosol generating device includes a heater, a printed circuit board, electrical lines, and a thermal insulator, the thermal insulator including an insulated housing, a flange protruding from a second side of the insulated housing, a passage through which the electrical lines pass, the passage including the passage defined in the flange, a first sealing surrounding the flange, and a second sealing overlapping the first sealing and the at least one electrical line.
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Description

[Technical Field]

[0001] The present disclosure relates generally to aerosol generating devices, for example, to aerosol generating devices that include thermal insulation. [Background technology]

[0002] In order to realize atomization performance, technologies for injecting airflow into an aerosol-generating article have been developed. For example, aerosol generators that generate aerosols from aerosol-generating articles using a non-combustion method have been developed. The background art described above is held or learned in the process of deriving this disclosure, but it is not necessarily publicly known art that was disclosed to the general public prior to the filing of this disclosure. Summary of the Invention [Problem to be solved by the invention]

[0003] One aspect of the present disclosure is to provide an insulator that maintains thermal insulation and an aerosol generating device including the same. [Means for solving the problem]

[0004] According to one embodiment, the aerosol generating device includes a heater, a printed circuit board, electrical lines configured to connect the heater and the printed circuit board, an insulated housing including a first surface, a second surface opposite the first surface, and a side surface between the first surface and the second surface and surrounding the heater as an insulator, a flange protruding from the second surface, a passage through which the electrical lines pass, the passage being defined in the flange, a first sealing surrounding the flange, and a second sealing overlapping the first sealing and the electrical lines.

[0005] In one embodiment, the first sealing may include an outer enclosure disposed outside the flange, an inner enclosure disposed inside the flange and in the passage, and a connecting enclosure connecting the outer enclosure and the inner enclosure.

[0006] In one embodiment, the first ceiling may include a first base disposed on the second surface and a second base disposed on the first base, and the width of the first base may be greater than the width of the second base in a direction away from the flange.

[0007] In one embodiment, the second ceiling may include a groove configured to at least partially accommodate the electrical line.

[0008] In one embodiment, the first ceiling may include an opening through which the electrical line passes, and the second ceiling may be at least partially disposed in the opening.

[0009] In one embodiment, the first ceiling and the second ceiling are separable from each other.

[0010] In an embodiment, the first and second seals may each include an elastic material.

[0011] In one embodiment, the flange may protrude from the second surface in a direction from the first surface toward the second surface.

[0012] In one embodiment, the aerosol generating device may further include a temperature sensor configured to detect a temperature of the heater, and an additional electrical line configured to connect the temperature sensor and the printed circuit board.

[0013] In one embodiment, the aerosol generating device includes an insertion detection sensor configured to detect an aerosol-generating article, and the aerosol generating device may include an additional electrical line configured to connect the insertion detection sensor and the printed circuit board.

[0014] In one embodiment, the insulator includes an insulated housing including a first surface, a second surface opposite the first surface, and a side surface between the first surface and the second surface, a flange protruding from the second surface, a passage defined in the flange, a first sealing surrounding the flange, and a second sealing overlapping the first sealing.

[0015] In one embodiment, the first sealing may include an outer enclosure disposed outside the flange, an inner enclosure disposed inside the flange and in the passage, and a connecting enclosure connecting the outer enclosure and the inner enclosure.

[0016] In one embodiment, the first ceiling includes a first base disposed on the second surface and a second base disposed on the first base, the first base having a width greater than a width of the second base in a direction away from the flange.

[0017] In one embodiment, the second ceiling may include a groove.

[0018] In one embodiment, the first ceiling includes an opening, and the second ceiling can be at least partially disposed in the opening. [Effects of the Invention]

[0019] According to one embodiment, electrical lines can pass through the insulator. According to one embodiment, thermal insulation can be maintained through the insulator. The effects of the aerosol generating device including the insulator according to one embodiment are not limited to those mentioned above, and other effects not mentioned will be clearly understood by those skilled in the art from the following description.

[0020] The above and other aspects, features and advantages of particular embodiments of the present disclosure will become apparent from the following detailed description taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0021] [Figure 1] 1 is a diagram showing an aerosol generating device according to an embodiment; [Figure 2] 1 is a diagram showing an aerosol generating device according to an embodiment; [Figure 3] 1 is a diagram showing an aerosol generating device according to an embodiment; [Figure 4] 1 shows an aerosol-generating article according to one embodiment. [Figure 5] 1 shows an aerosol-generating article according to one embodiment. [Figure 6] FIG. 1 is a block diagram of an aerosol generating device according to an embodiment. [Figure 7] 1 is a perspective view of an aerosol generating device according to an embodiment. FIG. [Figure 8] 1 is a perspective view of an aerosol generating device including a thermal insulator and a printed circuit board according to an embodiment. FIG. [Figure 9] FIG. 1 is an exploded perspective view of an insulator according to one embodiment. [Figure 10] FIG. 1 is a front view of an insulator according to one embodiment. [Figure 11] 11 is a cross-sectional view of the insulator shown in FIG. 10 taken along line 11-11 according to one embodiment. [Figure 12] FIG. 12 is an enlarged view of part A of the insulator of FIG. 11 according to one embodiment. [Figure 13] FIG. 2 is a perspective view of a first sealing according to one embodiment. [Figure 14] FIG. 2 is a front view of a first sealing according to one embodiment. [Figure 15] FIG. 2 is a plan view of a first sealing according to one embodiment. [Figure 16] FIG. 2 is a side view of a first sealing according to one embodiment. [Figure 17] FIG. 2 is a rear view of a first sealing member according to an embodiment. [Figure 18] FIG. 10 is a perspective view of a second sealing according to one embodiment. [Figure 19] FIG. 10 is a front view of a second sealing according to one embodiment. [Figure 20] FIG. 10 is a plan view of a second sealing according to one embodiment. [Figure 21] FIG. 10 is a side view of a second sealing according to one embodiment. [Figure 22] FIG. 10 is a rear view of a second sealing member according to one embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0022] The terms used in the embodiments have been selected to the extent possible based on the most widely used common terms currently available, taking into consideration the functions of the embodiments in this document. However, this may vary depending on the intentions of those skilled in the art, legal precedents, the emergence of new technologies, etc. In certain cases, the applicant may have arbitrarily selected terms, and in such cases, their meanings will be described in detail in the relevant description of the invention. Therefore, the terms used in this document should be defined not simply by their names, but based on the meanings that the terms possess and the overall content of this document.

[0023] Throughout the specification, when any part "includes" any component, this does not exclude other components, but means that it further includes other components, unless otherwise specified. Terms such as "module" and "unit" used in the specification refer to a unit that processes at least one function or operation, and this may be embodied in hardware or software, or a combination of hardware and software.

[0024] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will now be described in detail with reference to the accompanying drawings, so that those skilled in the art can easily understand and practice the present invention. However, the present invention may be embodied in various different forms and is not limited to the embodiments set forth herein.

[0025] Fig. 1 is a diagram showing an aerosol generation device according to an embodiment, Fig. 2 is a diagram showing an aerosol generation device according to an embodiment, and Fig. 3 is a diagram showing an aerosol generation device according to an embodiment.

[0026] 1, the aerosol-generating device 1 includes a battery 11, a control unit 12, and a heater 13. 2 and 3, the aerosol-generating device 1 further includes a steam heater 14. An aerosol-generating article 2 may be inserted into the internal space of the aerosol-generating device 1.

[0027] The components related to this embodiment are illustrated in the aerosol generating device 1 shown in Figures 1 to 3. Therefore, it will be understood by a person having ordinary skill in the technical field related to this embodiment that the aerosol generating device 1 may further include different general-purpose components in addition to the components shown in Figures 1 to 3.

[0028] Although the aerosol generating device 1 is shown in FIGS. 2 and 3 as including a heater 13, the heater 13 may be omitted if desired.

[0029] In Fig. 1, the battery 11, the control unit 12, and the heater 13 are illustrated as being arranged in a row. In Fig. 2, the battery 11, the control unit 12, the vaporizer 14, and the heater 13 are illustrated as being arranged in a row. In Fig. 3, the vaporizer 14 and the heater 13 are illustrated as being arranged in parallel. However, the internal structure of the aerosol generation device 1 is not limited to that shown in Figs. 1 to 3. In other words, the arrangement of the battery 11, the control unit 12, the heater 13, and the vaporizer 14 can be changed depending on the design of the aerosol generation device 1.

[0030] When the aerosol-generating article 2 is inserted into the aerosol-generating device 1, the aerosol-generating device 1 can activate the heater 13 and / or vaporizer 14 to generate an aerosol. The aerosol generated by the heater 13 and / or vaporizer 14 passes through the aerosol-generating article 2 and is transmitted to the user.

[0031] If necessary, the aerosol-generating device 1 can heat the heater 13 even when the aerosol-generating article 2 is not inserted in the aerosol-generating device 1 .

[0032] The battery 11 supplies power used to operate the aerosol generation device 1. For example, the battery 11 supplies power to enable the heater 13 or the vaporizer 14 to heat, and supplies power necessary for the control unit 12 to operate. The battery 11 may also supply power necessary for the operation of a display, a sensor, a motor, etc. installed in the aerosol generation device 1.

[0033] The control unit 12 controls the overall operation of the aerosol generator 1. Specifically, the control unit 12 controls the operation of not only the battery 11, the heater 13, and the vaporizer 14, but also other components included in the aerosol generator 1. The control unit 12 may check the state of each component of the aerosol generator 1 to determine whether the aerosol generator 1 is in an operable state.

[0034] The control unit 12 includes at least one processor. The processor may be realized as an array of multiple logic gates, or may be realized as a combination of a general-purpose microprocessor and a memory storing a program that can be executed by the microprocessor. Those skilled in the art will understand that the processor may be realized in other forms of hardware.

[0035] The heater 13 is heated by power supplied from the battery 11. For example, the heater 13 may be disposed outside the aerosol-generating article when the aerosol-generating article is inserted into the aerosol generating device 1. Thus, the heated heater 13 can increase the temperature of the aerosol-generating material within the aerosol-generating article.

[0036] The heater 13 may be an electrically resistive heater. For example, the heater 13 may include an electrically conductive track, and the heater 13 may be heated by passing a current through the electrically conductive track. However, the heater 13 is not limited to the above example, and may be any heater capable of heating to a desired temperature. Here, the desired temperature may be preset in the aerosol generating device 1, or may be set to a desired temperature by the user.

[0037] The heater 13 may be an induction heater. Specifically, the heater 13 may include an electrically conductive coil for inductively heating the aerosol-generating article, and the aerosol-generating article may include a susceptor that can be heated by the induction heater.

[0038] For example, the heater 13 may include a tube-type heating element, a plate-type heating element, a needle-type heating element, or a rod-type heating element, and may heat the inside or outside of the aerosol-generating article 2 depending on the shape of the heating element.

[0039] The aerosol generating device 1 may be provided with a plurality of heaters 13. The plurality of heaters 13 may be arranged so as to be inserted inside the aerosol-generating article 2, or may be arranged outside the aerosol-generating article 2. Some of the plurality of heaters 13 may be arranged so as to be inserted inside the aerosol-generating article 2, and the rest may be arranged outside the aerosol-generating article 2. The shape of the heater 13 is not limited to the shapes shown in Figs. 1 to 3, and various shapes may be manufactured.

[0040] The vaporizer 14 heats the liquid-phase composition to generate an aerosol, which can be transmitted to a user through the aerosol-generating article 2. In other words, the aerosol generated by the vaporizer 14 travels along an airflow passage in the aerosol-generating device 1, and the airflow passage can be configured to allow the aerosol generated by the vaporizer 14 to be transmitted to a user through the aerosol-generating article 2.

[0041] For example, the vaporizer 14 may include, but is not limited to, a liquid storage unit, a liquid transfer means, and a heating element. For example, the liquid storage unit, the liquid transfer means, and the heating element may be included in the aerosol generation device 1 as independent modules.

[0042] The liquid storage unit stores a liquid-phase composition. For example, the liquid-phase composition may be a liquid containing a tobacco-containing substance including volatile tobacco aroma components, or a liquid containing a non-tobacco substance. The liquid storage unit may be manufactured so as to be detachable / attachable to the vaporizer 14, or may be manufactured integrally with the vaporizer 14.

[0043] For example, the liquid phase composition may contain water, solvent, ethanol, plant extract, fragrance, flavoring, or vitamin mixture. Flavoring may include, but is not limited to, menthol, peppermint, spearmint oil, various fruit fragrance components, etc. Flavoring includes components that can provide various flavors or tastes to the user. The vitamin mixture may be, but is not limited to, a mixture of at least one of vitamin A, vitamin B, vitamin C, and vitamin E. The liquid phase composition may also contain an aerosol-forming agent such as glycerin and propylene glycol.

[0044] The liquid transfer means can transfer the liquid phase composition of the liquid storage portion to the heating element, for example, but not limited to, a wick such as cotton fiber, ceramic fiber, glass fiber, or porous ceramic.

[0045] The heating element is an element for heating the liquid-phase composition transferred by the liquid transfer means. For example, the heating element may be, but is not limited to, a metal hot wire, a metal hot plate, a ceramic heater, or the like. The heating element may be composed of a conductive filament such as a nichrome wire, and may be arranged in a structure wound around the liquid transfer means. The heating element is heated by supplying an electric current and transfers heat to the liquid composition in contact with the heating element, thereby heating the liquid composition. As a result, an aerosol may be generated.

[0046] For example, but not by way of limitation, the vaporizer 14 may be referred to as a cartomizer or an atomizer.

[0047] Meanwhile, the aerosol generator 1 may further include general-purpose components in addition to the battery 11, the control unit 12, the heater 13, and the vaporizer 14. For example, the aerosol generator 1 may include a display capable of outputting visual information and / or a motor for outputting tactile information. The aerosol generator 1 may also include at least one sensor (such as a puff sensor, a temperature sensor, or an aerosol-generating article insertion detection sensor). The aerosol generator 1 may be manufactured with a structure that allows outside air to flow in and internal gas to flow out even when the aerosol-generating article 2 is inserted.

[0048] 1 to 3, the aerosol generator 1 may form a system together with a separate cradle. For example, the cradle may be used to charge the battery 11 of the aerosol generator 1. The heater 13 may be heated while the cradle and the aerosol generator 1 are coupled together.

[0049] The aerosol-generating article 2 is similar to a typical combustion-type aerosol-generating article. For example, the aerosol-generating article 2 is divided into a first portion containing an aerosol-generating material and a second portion containing a filter or the like. The second portion of the aerosol-generating article 2 may also contain an aerosol-generating material. For example, the aerosol-generating material in the form of granules or capsules may be inserted into the second portion.

[0050] The entire first part is inserted into the aerosol generating device 1, and the second part is exposed to the outside. Only a part of the first part may be inserted into the aerosol generating device 1, or the entire first part and a part of the second part may be inserted. A user can inhale the aerosol while holding the second part in their mouth. Here, the aerosol is generated by outside air passing through the first part, and the generated aerosol passes through the second part and is delivered to the user's mouth.

[0051] For example, outside air may be introduced through at least one air passage formed in the aerosol generating device 1. For example, the opening and / or closing of the air passage formed in the aerosol generating device 1 and / or the size of the air passage may be adjusted by the user. This allows the user to adjust the amount of smoke, smoking sensation, etc. Outside air may be introduced into the aerosol-generating article 2 through at least one hole formed in the surface of the aerosol-generating article 2.

[0052] FIG. 4 is a diagram showing an aerosol-generating article according to one embodiment.

[0053] Referring to Figure 4, the aerosol-generating article 2 includes a tobacco rod 21 and a filter rod 22. The first part described above with reference to Figures 1 to 3 includes the tobacco rod 21, and the second part includes the filter rod 22.

[0054] Although the filter rod 22 is illustrated as a single segment in Figure 4, this is not limiting. In other words, the filter rod 22 may be composed of multiple segments. For example, the filter rod 22 may include a segment that cools the aerosol and a segment that filters a predetermined component contained in the aerosol. The filter rod 22 may also include at least one segment that performs another function.

[0055] The diameter of the aerosol-generating article 2 may be within the range of 5 mm to 9 mm, and the length may be approximately 48 mm, but is not limited to these. For example, but not limited to, the length of the tobacco rod 21 may be approximately 12 mm, the length of the first segment of the filter rod 22 may be approximately 10 mm, the length of the second segment of the filter rod 22 may be approximately 14 mm, and the length of the third segment of the filter rod 22 may be approximately 12 mm.

[0056] The aerosol-generating article 2 is wrapped in at least one wrapper 24. The wrapper 24 may have at least one hole formed therein to allow outside air to enter and internal gas to escape. As one example, the aerosol-generating article 2 may be wrapped in a single wrapper 24. As another example, the aerosol-generating article 2 may be wrapped in two or more wrappers 24. For example, the tobacco rod 21 may be wrapped in a first wrapper 241, and the filter rod 22 may be wrapped in wrappers 242, 243, and 244. The entire aerosol-generating article 2 may then be rewrapped in a single wrapper 245. If the filter rod 22 is composed of multiple segments, each segment may be wrapped in a wrapper 242, 243, or 244.

[0057] The first wrapper 241 and the second wrapper 242 may be made of common filter wrapping paper. For example, the first wrapper 241 and the second wrapper 242 may be porous wrapping paper or non-porous wrapping paper. The first wrapper 241 and the second wrapper 242 may be made of oil-resistant paper and / or aluminum-aluminum laminated wrapping material.

[0058] The third wrapper 243 may be made of hard wrapping paper. For example, the basis weight of the third wrapper 243 is 88 g / m 2 ~96g / m 2 and preferably 90 g / m 2 ~94g / m 2 The thickness of the third wrapper 243 may be in the range of 120 um to 130 um, preferably 125 um.

[0059] The fourth wrapper 244 may be made of a grease-resistant hard wrapping paper. For example, the basis weight of the fourth wrapper 244 is 88 g / m 2 ~96g / m 2 and preferably 90 g / m 2 ~94g / m 2The thickness of the fourth wrapper 244 may be in the range of 120 um to 130 um, preferably 125 um.

[0060] The fifth wrapper 245 may be made of a sterilized paper (MFW). Here, the sterilized paper (MFW) refers to a paper specially manufactured to have improved tensile strength, water resistance, smoothness, etc. compared to general paper. For example, the basis weight of the fifth wrapper 245 is 57 g / m 2 ~63g / m 2 and preferably within the range of 60 g / m 2 The thickness of the fifth wrapper 245 may be in the range of 64 um to 70 um, and preferably 67 um.

[0061] A predetermined material may be added to the fifth wrapper 245. Examples of the predetermined material include, but are not limited to, silicon. For example, silicon has properties such as heat resistance (i.e., small changes in temperature), oxidation resistance (i.e., resistance to various chemicals), water repellency, and electrical insulation. However, any material other than silicon that has the above-mentioned properties may be applied (or coated) to the fifth wrapper 245.

[0062] The fifth wrapper 245 can prevent the aerosol-generating article 2 from burning. For example, if the tobacco rod 21 is heated by the heater 13, the aerosol-generating article 2 may burn. Specifically, if the temperature of the tobacco rod 21 rises above the ignition point of any one of the substances contained in the tobacco rod 21, the aerosol-generating article 2 will burn. Even in such a case, the fifth wrapper 245 contains a non-flammable substance, preventing the aerosol-generating article 2 from burning.

[0063] The fifth wrapper 245 prevents the aerosol generating device 1 from being contaminated by the substance generated in the aerosol-generating article 2. A liquid substance is generated in the aerosol-generating article 2 when the user puffs. For example, the aerosol generated in the aerosol-generating article 2 is cooled by outside air, generating a liquid substance (e.g., moisture). Wrapping the aerosol-generating article 2 in the fifth wrapper 245 prevents the liquid substance generated in the aerosol-generating article 2 from leaking outside the aerosol-generating article 2.

[0064] The tobacco rod 21 contains an aerosol-forming material. For example, the aerosol-forming material may include, but is not limited to, at least one of glycerin, propylene glycol, ethylene glycol, dipropylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, and oleyl alcohol. The tobacco rod 21 may also contain other additives, such as flavoring agents, humectants, and / or organic acids. A flavoring liquid, such as menthol or a humectant, may be added to the tobacco rod 21 by spraying it onto the tobacco rod 21.

[0065] The tobacco rod 21 can be manufactured in various ways. For example, the tobacco rod 21 can be manufactured in a sheet or a strand. The tobacco rod 21 can also be manufactured from shredded tobacco, which is a tobacco sheet. The tobacco rod 21 can be surrounded by a thermally conductive material. For example, the thermally conductive material can be, but is not limited to, a metal foil such as aluminum foil. For example, the thermally conductive material surrounding the tobacco rod 21 can evenly distribute heat transferred to the tobacco rod, improving the thermal conductivity of the tobacco rod and thereby improving the tobacco taste. The thermally conductive material surrounding the tobacco rod 21 is heated by an induction heater and functions as a susceptor. Although not shown in the drawings, the tobacco rod 21 can further include an additional susceptor in addition to the thermally conductive material surrounding it.

[0066] The filter rod 22 may be an acetyl cellulose filter. Meanwhile, the shape of the filter rod 22 is not limited. For example, the filter rod 22 may be a cylindrical rod or a tube-type rod with a hollow inside. The filter rod 22 may also be a recessed rod. If the filter rod 22 is composed of multiple segments, at least one of the multiple segments may be manufactured in a different shape.

[0067] The first segment of the filter rod 22 may be an acetyl cellulose filter. For example, the first segment may be a tubular structure with a hollow interior. When the heater 13 is inserted through the first segment, it can prevent the internal material of the tobacco rod 21 from shifting backward and can also have a cooling effect on the aerosol. The diameter of the hollow interior of the first segment may be an appropriate diameter within the range of 2 mm to 4.5 mm, but is not limited thereto.

[0068] The length of the first segment may be an appropriate length within the range of 4 mm to 30 mm, but is not limited to this. Preferably, the length of the first segment is 10 mm, but is not limited to this.

[0069] The hardness of the first segment can be adjusted by adjusting the content of plasticizer during manufacturing of the first segment. The first segment may be manufactured by inserting a structure such as a film or tube made of the same material or a release material into the interior (e.g., hollow) of the first segment.

[0070] The second segment of the filter rod 22 cools the aerosol generated by the heater 13 heating the tobacco rod 21. Thus, the user can inhale the aerosol cooled to an appropriate temperature.

[0071] The length or diameter of the second segment can be determined in various ways depending on the shape of the aerosol-generating article 2. For example, the length of the second segment may be appropriately set within the range of 7 mm to 20 mm. Preferably, the length of the second segment is about 14 mm, but is not limited to this.

[0072] The second segment can be produced by weaving polymer fibers. In this case, a fragrance liquid may be applied to the polymer fibers. The second segment can also be produced by weaving a separate fiber coated with a fragrance liquid and a polymer fiber together. The second segment can also be formed by a wound polymer sheet.

[0073] The polymer may be made of a material selected from the group consisting of polyethylene (PE), polypropylene (PP), polyvinyl chloride (PVC), polyethylene terephthalate (PET), polylactic acid (PLA), acetyl cellulose (CA), and aluminum foil.

[0074] When the second segment is formed from woven polymer fibers or a wound polymer sheet, the second segment may include one or more longitudinally extending channels, where channel refers to a passageway through which a gas (e.g., air or aerosol) passes.

[0075] For example, the second segment of wound polymer sheet may be formed from a material having a thickness between about 5 μm and about 300 μm, e.g., between about 10 μm and about 250 μm. The total surface area of ​​the second segment is about 300 mm 2 / mm and approximately 1000mm 2 The aerosol cooling element may have a specific surface area of ​​between about 10 mm 2 / mg and about 100mm 2 / mg of material.

[0076] The second segment may include a thread containing a volatile flavoring component, which may be, but is not limited to, menthol. For example, the thread may be loaded with a sufficient amount of menthol to provide 1.5 mg or more of menthol to the second segment.

[0077] The third segment of the filter rod 22 may be an acetyl cellulose filter. The length of the third segment may be appropriately selected within the range of 4 mm to 20 mm. For example, the length of the third segment may be approximately 12 mm, but is not limited to this.

[0078] During the manufacturing process of the third segment, the third segment may be manufactured so that a flavor is generated by spraying a flavoring liquid onto the third segment. Separate fibers coated with the flavoring liquid may be inserted into the third segment. The aerosol generated in the tobacco rod 21 is cooled as it passes through the second segment of the filter rod 22, and the cooled aerosol is delivered to the user via the third segment. Therefore, when a flavoring element is added to the third segment, the effect of enhancing the persistence of the flavor delivered to the user is achieved.

[0079] The filter rod 22 may include at least one capsule 23. The capsule 23 may function to generate flavor or aerosol. For example, the capsule 23 may have a structure in which a liquid containing a flavoring agent is enclosed in a coating. The capsule 23 may have a spherical or cylindrical shape, but is not limited thereto.

[0080] FIG. 5 is a diagram showing an aerosol-generating article according to one embodiment.

[0081] 5, the aerosol-generating article 3 further includes a shear plug 33. The shear plug 33 is disposed on one side of the tobacco rod 31, facing the filter rod 32. The shear plug 33 prevents the tobacco rod 31 from detaching to the outside, and prevents the aerosol liquefied from the tobacco rod 31 during smoking from flowing into the aerosol-generating device (e.g., FIGS. 1 to 3).

[0082] The filter rod 32 includes a first segment 321 and a second segment 322. Here, the first segment 321 corresponds to the first segment of the filter rod 22 shown in FIG. 4, and the second segment 322 corresponds to the third segment of the filter rod 22 shown in FIG. 4.

[0083] The diameter and overall length of the aerosol-generating article 3 correspond to the diameter and overall length of the aerosol-generating article 2 shown in Figure 4. For example, but not limited to, the length of the shear plug 33 may be about 7 mm, the length of the tobacco rod 31 about 15 mm, the length of the first segment 321 about 12 mm, and the length of the second segment 322 about 14 mm.

[0084] The aerosol-generating article 3 is wrapped in at least one wrapper 35. The wrapper 35 may have at least one hole formed therein through which external air can flow in or internal gas can flow out. For example, the shear plug 33 may be wrapped in a first wrapper 351, the tobacco rod 31 may be wrapped in a second wrapper 352, the first segment 321 may be wrapped in a third wrapper 353, and the second segment 322 may be wrapped in a fourth wrapper 354. The entire aerosol-generating article 3 may then be rewrapped in a fifth wrapper 355.

[0085] At least one perforation 36 may be formed in the fifth wrapper 355. For example, but not limited to, the perforation 36 may be formed in the region surrounding the tobacco rod 31. The perforation 36 serves to transfer heat generated by the heater 13 shown in Figures 2 and 3 to the interior of the tobacco rod 31.

[0086] The second segment 322 may include at least one capsule 34. Here, the capsule 34 may perform a function of generating a flavor or a function of generating an aerosol. For example, the capsule 34 may have a structure in which a liquid containing a flavoring agent is enclosed in a coating. The capsule 34 may have a spherical or cylindrical shape, but is not limited thereto.

[0087] The first wrapper 351 may be a general filter wrapper with a metal foil such as aluminum foil bonded to it. For example, the overall thickness of the first wrapper 351 may be within a range of 45 μm to 55 μm, preferably 50.3 μm. The thickness of the metal foil of the first wrapper 351 may be within a range of 6 μm to 7 μm, preferably 6.3 μm. The basis weight of the first wrapper 351 is 50 g / m 2 ~55g / m 2 and preferably 53 g / m 2 may be.

[0088] The second wrapper 352 and the third wrapper 353 are made of common filter wrapping paper. For example, the second wrapper 352 and the third wrapper 353 may be porous wrapping paper or non-porous wrapping paper.

[0089] For example, the porosity of the second wrapper 352 may be 35000 CU, but is not limited thereto. The thickness of the second wrapper 352 may be in the range of 70 um to 80 um, preferably 78 um. The basis weight of the second wrapper 352 may be 20 g / m2 to 25 g / m2. 2 and preferably 23.5 g / m 2 may be.

[0090] For example, the porosity of the third wrapper 353 may be 24000 CU, but is not limited thereto. The thickness of the third wrapper 353 may be in the range of 60 um to 70 um, preferably 68 um. The basis weight of the third wrapper 353 is 20 g / m 2 ~25g / m 2and preferably 21 g / m 2 may be.

[0091] The fourth wrapper 354 may be made of PLA laminated paper. Here, PLA laminated paper refers to a triple layer of paper including a paper layer, a PLA layer, and another paper layer. For example, the thickness of the fourth wrapper 354 may be in the range of 100 μm to 120 μm, preferably 110 μm. The basis weight of the fourth wrapper 354 is 80 g / m 2 ~100g / m 2 and preferably 88 g / m 2 may be.

[0092] The fifth wrapper 355 may be made of a sterilized paper (MFW). Here, the sterilized paper (MFW) refers to a paper specially manufactured to have improved tensile strength, water resistance, smoothness, etc. compared to ordinary paper. For example, the basis weight of the fifth wrapper 355 is 57 g / m 2 ~63g / m 2 and preferably within the range of 60 g / m 2 The thickness of the fifth wrapper 355 may be in the range of 64 um to 70 um, and preferably 67 um.

[0093] A predetermined substance may be added to the fifth wrapper 355. Examples of the predetermined substance include, but are not limited to, silicon. For example, silicon has properties such as heat resistance (i.e., small changes due to temperature), oxidation resistance (i.e., resistance to various chemicals), water repellency, and electrical insulation. However, any substance other than silicon that has the above-mentioned properties may be applied (or coated) to the fifth wrapper 355 without any limitation.

[0094] The shear plug 33 may be made of cellulose acetate. As an example, the shear plug 33 may be made by adding a plasticizer (e.g., triacetin) to cellulose acetate tow. The mono-denier of the filaments constituting the cellulose acetate tow may be within the range of 1.0 to 10.0, preferably within the range of 4.0 to 6.0. More preferably, the mono-denier of the filaments of the shear plug 33 may be approximately 5.0. The cross section of the filaments constituting the shear plug 33 may be Y-shaped. The total denier of the shear plug 33 may be within the range of 20,000 to 30,000, preferably within the range of 25,000 to 30,000. More preferably, the total denier of the shear plug 33 may be 28,000.

[0095] The shear plug 33 may include at least one channel, the cross-section of which may be manufactured in a variety of ways.

[0096] The tobacco rod 31 corresponds to the tobacco rod 21 described above with reference to Figure 4. Therefore, a detailed description of the tobacco rod 31 will be omitted below.

[0097] The first segment 321 may be made of cellulose acetate. For example, the first segment may be a tube-shaped structure having a hollow interior. The first segment 321 may be made by adding a plasticizer (e.g., triacetin) to cellulose acetate tow. For example, the mono-denier and total denier of the first segment 321 may be the same as the mono-denier and total denier of the shear plug 33.

[0098] The second segment 322 may be made of acetyl cellulose. The mono-denier of the filaments constituting the second segment 322 may be within the range of 1.0 to 10.0, preferably within the range of 8.0 to 10.0. More preferably, the mono-denier of the filaments of the second segment 322 may be 9.0. The cross section of the filaments of the second segment 322 may be Y-shaped. The total denier of the second segment 322 may be within the range of 20,000 to 30,000, preferably 25,000.

[0099] FIG. 6 is a block diagram of an aerosol generating device according to another embodiment.

[0100] 6, the aerosol generating device 400 includes a control unit 410, a detection unit 420, an output unit 430, a battery 440, a heater 450, a user input unit 460, a memory 470, and a communication unit 480. However, the internal structure of the aerosol generating device 400 is not limited to that shown in Fig. 6. That is, a person skilled in the art of this embodiment would understand that some of the components shown in Fig. 6 may be omitted or new components may be added depending on the design of the aerosol generating device 400.

[0101] The detection unit 420 detects the state of the aerosol-generating device 400 or the state around the aerosol-generating device 400, and transmits the detected information to the control unit 410. Based on the detected information, the control unit 410 can control the aerosol-generating device 400 to perform various functions, such as controlling the operation of the heater 450, restricting smoking, determining whether an aerosol-generating article (e.g., cigarette, cartridge, etc.) is inserted, and displaying notifications.

[0102] The detection unit 420 includes at least one of a temperature sensor 422, an insertion detection sensor 424, and a puff sensor 426, but is not limited thereto.

[0103] The temperature sensor 422 detects the temperature of the heater 450 (or the aerosol-generating substance). The aerosol-generating device 400 may include a separate temperature sensor that detects the temperature of the heater 450, or the heater 450 itself may function as a temperature sensor. The temperature sensor 422 may be disposed near the battery 440 so as to monitor the temperature of the battery 440.

[0104] The insertion detection sensor 424 can detect the insertion and / or removal of an aerosol-generating article. For example, the insertion detection sensor 424 can include at least one of a film sensor, a pressure sensor, an optical sensor, a resistive sensor, a capacitive sensor, an inductive sensor, and an infrared sensor, and can detect a signal change due to the insertion and / or removal of an aerosol-generating article.

[0105] The puff sensor 426 can detect a user's puff based on various physical changes in the airflow passage or channel, for example, the puff sensor 426 may detect a user's puff based on any one of a temperature change, a flow change, a voltage change, and a pressure change.

[0106] The detection unit 420 may further include at least one of an ON / humidity sensor, an air pressure sensor, a geomagnetic sensor, an acceleration sensor, a gyroscope sensor, a position sensor (e.g., GPS), a proximity sensor, and an RGB (illuminance) sensor, in addition to the above-described sensors 422 to 426. The function of the angle sensor can be intuitively inferred by a person skilled in the art from its name, and therefore a detailed description thereof will be omitted.

[0107] The output unit 430 outputs and provides to a user information regarding the status of the aerosol generating device 400. The output unit 430 includes, but is not limited to, at least one of a display unit 432, a haptic unit 434, and an audio output unit 436. When the display unit 432 and the touchpad have a layered structure to form a touch screen, the display unit 432 may be used as an input device in addition to an output device.

[0108] The display unit 432 can visually provide a user with information about the aerosol generating device 400. For example, the information about the aerosol generating device 400 may include various information such as the charging / discharging status of the battery 440 of the aerosol generating device 400, the preheating status of the heater 450, the insertion / removal status of an aerosol-generating article, or a status in which use of the aerosol generating device 400 is restricted (e.g., detection of an abnormal article), and the display unit 432 may output the information to the outside. The display unit 432 may be, for example, a liquid crystal display panel (LCD), an organic light-emitting display panel (OLED), or the like. The display unit 432 may also display an LED light-emitting element.

[0109] The haptic unit 434 converts an electrical signal into a mechanical or electrical stimulus and can provide the user with tactile information about the aerosol generating device 400. For example, the haptic unit 434 may include a motor, a piezoelectric element, or an electrical stimulation device.

[0110] The acoustic output unit 436 can audibly provide the user with information relating to the aerosol generating device 400. For example, the acoustic output unit 436 can convert an electrical signal into an acoustic signal and output it to the outside.

[0111] The battery 440 provides power used to operate the aerosol generating device 400. The battery 440 may provide power to the heater 450 so that it can heat. The battery 440 provides power necessary for the operation of different components provided within the aerosol generating device 400 (e.g., the detection unit 420, the output unit 430, the user input unit 460, the memory 470, and the communication unit 480). The battery 440 may be a rechargeable battery or a disposable battery. For example, the battery 440 may be a lithium polymer (LiPoly) battery, but is not limited thereto.

[0112] The heater 450 heats the aerosol-generating material by receiving power from the battery 440. Although not shown in Fig. 6, the aerosol-generating device 400 may further include a power conversion circuit (e.g., a DC / DC converter) that converts the power of the battery 440 and supplies it to the heater 450. When the aerosol-generating device 400 generates the aerosol by an induction heating method, the aerosol-generating device 400 may further include a DC / AC converter that converts the DC power of the battery 440 into AC power.

[0113] The control unit 410, the detection unit 420, the output unit 430, the user input unit 460, the memory 470, and the communication unit 480 can function by receiving power from the battery 440. Although not shown in Fig. 6, the device may further include a power conversion circuit, such as an LDO (low dropout) circuit or a voltage regulator circuit, that converts the power of the battery 440 and supplies it to each component.

[0114] In one embodiment, heater 450 may be formed of any suitable electrically resistive material. For example, suitable electrically resistive materials may be metals or metal alloys including, but not limited to, titanium, zirconium, tantalum, platinum, nickel, cobalt, chromium, hafnium, niobium, molybdenum, tungsten, tin, gallium, manganese, iron, copper, stainless steel, nichrome, etc. Heater 450 may be implemented as, but not limited to, a metal hot wire, a metal hot plate with an electrically conductive track disposed thereon, a ceramic heating element, etc.

[0115] In one embodiment, heater 450 may be an induction heater. For example, heater 450 may include a susceptor that generates heat via a magnetic field applied by a coil to heat the aerosol-generating material.

[0116] In one embodiment, heater 450 may include multiple heaters. For example, heater 450 may include a first heater for heating the aerosol-generating article and a second heater for heating the liquid phase.

[0117] The user input unit 460 receives information input by a user and outputs information to a user. Examples of the user input unit 460 include, but are not limited to, a keypad, a dome switch, a touchpad (e.g., a contact-type capacitance type, a pressure-type resistive film type, an infrared detection type, a surface ultrasonic conduction type, an integral tension measurement type, a piezoelectric effect type), a jog wheel, a jog switch, etc. Although not shown in FIG. 6 , the aerosol generating device 400 may further include a connection interface such as a USB (universal serial bus) interface, and may be connected to another external device via the connection interface to transmit and receive information or charge the battery 440.

[0118] The memory 470 may store data processed by the control unit 410 and data to be processed by the control unit 410 as hardware for storing various data processed within the aerosol generating device 400. The memory 470 may include at least one type of storage medium selected from the group consisting of flash memory, hard disk, micro multimedia card, card-type memory (e.g., SD or XD memory), random access memory (RAM), static random access memory (SRAM), read-only memory (ROM), electrically erasable programmable read-only memory (EEPROM), programmable read-only memory (PROM), magnetic memory, magnetic disk, and optical disk. The memory 470 may store data regarding the operating time of the aerosol generating device 400, the maximum number of puffs, the current number of puffs, at least one temperature profile, and the user's smoking pattern.

[0119] The communication unit 480 includes at least one component for communication with other electronic devices. For example, the communication unit 480 includes a short-range communication unit 482 and a wireless communication unit 484.

[0120] The short-range wireless communication unit 482 includes, but is not limited to, a Bluetooth (registered trademark) communication unit, a BLE (Bluetooth (registered trademark) Low Energy) communication unit, a Near Field Communication unit, a WLAN (Wi-Fi) communication unit, a Zigbee (registered trademark) communication unit, an IrDA (infrared Data Association) communication unit, a WFD (Wi-Fi Direct) communication unit, a UWB (ultra wideband) communication unit, an Ant+ communication unit, etc.

[0121] The wireless communication unit 484 may include, but is not limited to, a cellular network communication unit, an Internet communication unit, a computer network (e.g., a LAN or WAN) communication unit, etc. The wireless communication unit 484 may use subscriber information (e.g., an International Mobile Subscriber Identity (IMSI)) to identify and authenticate the aerosol generating device 400 within the communication network.

[0122] The control unit 410 controls the overall operation of the aerosol generating device 400. In one embodiment, the control unit 410 may include at least one processor. The processor may be implemented as an array of multiple logic gates, or may be implemented as a combination of a general-purpose microprocessor and a memory storing a program that can be executed by the microprocessor. Those skilled in the art will understand that the present invention may be implemented in other forms of hardware.

[0123] The control unit 410 can control the temperature of the heater 450 by controlling the supply of power from the battery 440 to the heater 450. For example, the control unit 410 can control the power supply by controlling the switching of a switching element between the battery 440 and the heater 450. As another example, a heating direct circuit may control the power supply to the heater 450 in response to a control command from the control unit 410.

[0124] The control unit 410 analyzes the results detected by the detection unit 420 and controls the processing to be executed thereafter. For example, the control unit 410 can control the power supplied to the heater 450 so as to start or end the operation of the heater 450 based on the results detected by the detection unit 420. For example, the control unit 410 can control the amount of power supplied to the heater 450 and the time for which the power is supplied based on the results detected by the detection unit 420 so that the heater 450 is heated to a predetermined temperature or maintained at an appropriate temperature.

[0125] The control unit 410 can control the output unit 430 based on the result detected by the detection unit 420. For example, when the number of puffs counted via the puff sensor 426 reaches a preset number, the control unit 410 can notify the user via at least one of the display unit 432, the haptic unit 434, and the audio output unit 436 that the aerosol generating device 400 will soon be shut down.

[0126] In one embodiment, the control unit 410 can control the time and / or amount of power supplied to the heater 450 depending on the state of the aerosol-generating article detected by the detection unit 420. For example, when the aerosol-generating article is in an overly humid state, the control unit 410 can control the time of power supply to the induction coil to increase the preheating time compared to when the aerosol-generating article is in a normal state.

[0127] An embodiment may also be implemented in the form of a recording medium containing computer-executable instructions, such as a program module executed by a computer. A computer-readable recording medium may be any available medium accessible by a computer, including both volatile and nonvolatile media, and both detachable and non-detachable media. A computer-readable recording medium may include both computer storage media and communication media. A computer storage medium may include both volatile and non-volatile, detachable and non-detachable media embodied in any method or technology for storage of information, such as computer-readable instructions, data structures, program modules, or other data. A communication medium typically includes computer-readable instructions, data structures, other data in a modulated data signal, such as a program module, or other transmission mechanism, and includes any information delivery medium.

[0128] FIG. 7 is a perspective view of an aerosol generating device according to one embodiment.

[0129] 7, the aerosol generating device 500 includes a housing 510. The housing 510 includes a first housing surface 510A (e.g., the front surface of the housing), a second housing surface 510B (e.g., the rear surface of the housing) opposite the first housing surface 510A, and at least one side housing surface 510C between the first housing surface 510A and the second housing surface 510B.

[0130] In one embodiment, the housing 510 includes multiple housing parts. For example, the housing 510 includes a first housing part 511A and a second housing part 511B. The first housing part 511A substantially forms the first housing surface 510A and the second housing surface 510B. The first housing part 511A may form at least a portion of the area of ​​the side housing surface 510C, and the second housing part 511B may form the remaining area of ​​the side housing surface 510C. In one embodiment, the first housing part 511A and the second housing part 511B may be detachably coupled to each other.

[0131] In an embodiment not shown, the housing 510 may include an insertion opening (not shown) configured to allow insertion of an aerosol-generating article (not shown). The insertion opening may be located in the first housing surface 510A.

[0132] In one embodiment, the housing 510 includes a connection terminal 512. The connection terminal 512 may include a connector through which the aerosol generating device 500 can be physically connected to an external electronic device. For example, the connection terminal 512 may include at least one of an HDMI (registered trademark) connector, a USB connector, an SD card connector, or an audio connector (e.g., a headphone connector), or a combination thereof.

[0133] FIG. 8 is a perspective view of an aerosol generating device including a thermal insulator and a printed circuit board according to one embodiment.

[0134] 8, the aerosol generating device 500 includes a thermal insulator 520. The thermal insulator 520 is configured to thermally insulate a heater (not shown). The thermal insulator 520 may include a heater (e.g., a coil and / or a susceptor) therein. The thermal insulator 520 may include an antenna (not shown) (e.g., an LCD antenna) therein.

[0135] In one embodiment, the aerosol generating device 500 includes a printed circuit board 530. For example, the printed circuit board 530 may include at least one of the control unit 410, the detection unit 420 (e.g., the temperature sensor 422), the memory 470, and the communication unit 480 of FIG.

[0136] In one embodiment, the aerosol generating device 500 includes multiple electrical lines E1, E2, E3, and E4. For example, the first electrical line E1 may be configured to connect a heater (e.g., heater 450 in FIG. 6 ) and a temperature sensor (e.g., temperature sensor 422 in FIG. 6 ). The second electrical line E2 may be configured to connect a heater (e.g., coil 542 of heater 540 in FIG. 11 ) and a printed circuit board 530. At least one third electrical line E3 may be configured to connect at least one sensor (e.g., insertion detection sensor 424 in FIG. 6 , implemented as an antenna) and the printed circuit board 530. The fourth electrical line E4 may be configured to connect a heater (e.g., heater housing 543 of heater 540 in FIG. 11 ) and a printed circuit board 530. The fourth electrical line E4 may include a flexible printed circuit board.

[0137] Figure 9 is an exploded perspective view of an insulator according to one embodiment. Figure 10 is a front view of an insulator according to one embodiment. Figure 11 is a cross-sectional view of the insulator of Figure 10 taken along line 11-11 according to one embodiment. Figure 12 is an enlarged view of part A of the insulator shown in Figure 11 according to one embodiment.

[0138] 9 to 12, the heat insulator 520 includes a heat insulating housing 521. The heat insulating housing 521 includes a first surface 521A (e.g., a front surface), a second surface 521B (e.g., a rear surface) opposite the first surface 521A, and a side surface 521C between the first surface 521A and the second surface 521B. The first surface 521A, the second surface 521B, and the side surface 521C can surround the heater 540.

[0139] In one embodiment, the insulated housing 521 includes a first passageway 521D1. The first passageway 521D1 may allow for insertion of an aerosol-generating article (not shown) into the insulated housing 521. The first passageway 521D1 may include a substantially circular or elliptical cross-section.

[0140] In one embodiment, the first passage 521D1 may be provided with an article insert 513 included in an aerosol-generating device (e.g., the aerosol-generating device 500 of FIGS. 7 and 8 ). The article insert 513 has a size and shape suitable for guiding the aerosol-generating article into the susceptor 541 of the heater 540.

[0141] In one embodiment, the first passage 521D1 may be provided with a flap 514 included in the aerosol generating device (e.g., the aerosol generating device 500 in FIGS. 7 and 8). The flap 514 is configured to open and close the first passage 521D1. The flap 514 is configured to open and close the article insertion portion 513. The flap 514 may be configured to operate in a hinged manner.

[0142] In one embodiment, the insulating housing 521 includes a second passage 521D2. The second passage 521D2 allows a plurality of electrical lines E1, E2, E3, and E4 to pass through. The second passage 521D2 may have an elongated shape. The second passage 521D2 may be disposed on the second surface 521B of the insulating housing 521.

[0143] In one embodiment, the thermal insulator 520 includes a first flange 522. The first flange 522 protrudes from the second surface 521B. For example, the first flange 522 may protrude in a direction from the first surface 521A toward the second surface 521B. The first flange 522 may be seamlessly coupled to the thermal insulator housing 521. The first flange 522 includes a second passage 521D2 at least partially defined within the first flange 522.

[0144] In one embodiment, the thermal insulator 520 includes a second flange 523. The second flange 523 can surround a plurality of electrical lines E1, E2, E3, and E4. The second flange 523 can be disposed inside the first flange 522. At least a portion of the second flange 523 can extend along an inner side surface of the thermally insulated housing 521, between the first surface 521A and the second surface 521B. At least a portion of the second flange 523 can extend along an inner surface of the thermally insulated housing 521 opposite the second surface 521B. At least a portion of the second flange 523 can be disposed in the second passage 521D2.

[0145] In one embodiment, the second flange 523 can extend beyond the first flange 522. The distance between the end of the second flange 523 and the second surface 521B can be greater than the distance between the end of the first flange 522 and the second surface 521B.

[0146] In one embodiment, the insulation 520 includes a first ceiling 524 (e.g., an outer ceiling). The first ceiling 524 may be disposed to surround the first flange 522. The first ceiling 524 may be disposed to surround at least a portion of the second flange 523.

[0147] In one embodiment, first ceiling 524 includes outer enclosure 524A. Outer enclosure 524A may surround the outside of first flange 522 and / or the outside of second flange 523. Outer enclosure 524A may be disposed on or above second surface 521B. In other words, outer enclosure 524A may or may not contact second surface 521B.

[0148] In one embodiment, the outer enclosure 524A extends in a direction from the first surface 521A toward the second surface 521B. The outer enclosure 524A may extend beyond the end of the first flange 522 and / or the end of the second flange 523.

[0149] In one embodiment, the outer enclosure 524A includes a first base 524A1. The first base 524A1 may be disposed on or above the second surface 521B. The first base 524A1 may extend or extend in a direction away from the outside of the first flange 522 and / or the outside of the second flange 523.

[0150] In one embodiment, the outer enclosure 524A includes a second base 524A2. The second base 524A2 may be disposed on the first base 524A1. The second base 524A2 may extend or expand in a direction away from the outside of the first flange 522 and / or the outside of the second flange 523.

[0151] In one embodiment, the width of the second base 524A2 may be greater than the width of the first base 524A1. The first base 524A1 and the second base 524A2 may form a stepped shape.

[0152] In one embodiment, the first base 524A1 and the second base 524A2 may be seamlessly coupled together.

[0153] In one embodiment, the first ceiling 524 includes an internal enclosure 524B. The internal enclosure 524B is surrounded by the inside of the first flange 522 and / or the inside of the second flange 523. The internal enclosure 524B may be in at least partial contact with the second flange 523. The internal enclosure 524B may be configured to be at least partially deformed by the second flange 523. The internal enclosure 524B may be able to maintain the deformed state. The internal enclosure 524B may be at least partially disposed in the second passage 521D2.

[0154] In one embodiment, the inner enclosure 524B extends in a direction from the first surface 521A toward the second surface 521B. The inner enclosure 524B extends beyond the end of the first flange 522 and / or the end of the second flange 523. The length of extension of the inner enclosure 524B may be greater than the length of extension of the outer enclosure 524A.

[0155] In one embodiment, the distance between the end face of the inner enclosure 524B and the second face 521B is substantially the same as the distance between the end face of the outer enclosure 524A and the second face 521B.

[0156] In one embodiment, the outer enclosure 524A and the inner enclosure 524B form a gap G. The first flange 522 may be disposed in the gap G. At least a portion of the second flange 523 may be disposed in the gap G.

[0157] In one embodiment, first ceiling 524 includes connecting enclosure 524C. Connecting enclosure 524C may be configured to connect outer enclosure 524A and inner enclosure 524B. Connecting enclosure 524C covers an end of first flange 522 and / or an end of second flange 523. Connecting enclosure 524C may extend or expand in a direction intersecting (e.g., perpendicular to) the extension direction of outer enclosure 524A and / or the extension direction of inner enclosure 524B.

[0158] In one embodiment, the outer enclosure 524A, the inner enclosure 524B and the connecting enclosure 524C can be seamlessly connected together.

[0159] In one embodiment, the first sealing member 524 includes an elastic material. For example, the first sealing member 524 may include rubber.

[0160] Fig. 13 is a perspective view of a first sealing according to an embodiment. Fig. 14 is a front view of a first sealing according to an embodiment. Fig. 15 is a plan view of a first sealing according to an embodiment. Fig. 16 is a side view of a first sealing according to an embodiment. Fig. 17 is a rear view of a first sealing according to an embodiment.

[0161] 9 to 17, the first sealing 524 includes a first sealing front surface 5241, a first sealing rear surface 5242 opposite the first sealing front surface 5241, and a plurality of first side sealing surfaces 5243A, 5243B, and 5243C between the first sealing front surface 5241 and the first sealing rear surface 5242.

[0162] In one embodiment, the outer enclosure 524A may be defined by a plurality of first side sealing surfaces 5243A, 5243B, and 5243C and a first rear sealing surface 5242. The second base 524A2 may extend or expand from the first side sealing surface 5243B. The first base 524A1 may extend or expand from a side surface of the second base 524A2. The inner enclosure 524B may protrude from the second rear sealing surface 5242 in a direction from the first front sealing surface 5241 toward the second rear sealing surface 5242. The connecting enclosure 524C may be defined by the first front sealing surface 5241.

[0163] In one embodiment, the first ceiling 524 includes a first opening 5244. The first opening 5244 may extend through the first sealing front surface 5241 and the first sealing rear surface 5242. The first opening 5244 may be formed between the first sealing front surface 5241 and the first sealing rear surface 5242.

[0164] In one embodiment, at least a portion of the inner surface of the first opening 5244 of the first ceiling 524 may be in contact with at least one of the plurality of electrical lines E1, E2, E3, and E4.

[0165] In one embodiment, the first opening 5244 includes a first passage opening O1. The first passage opening O1 can allow a first electrical line E1 and a fourth electrical line E4 to pass through. The first electrical line E1 passes through a first side (e.g., the upper side in FIG. 14 ) of the first passage opening O1. The fourth electrical line E4 passes through a second side (e.g., the lower side in FIG. 14 ) of the first passage opening O1. The first passage opening O1 may be disposed substantially in the center of the first opening 5244.

[0166] In one embodiment, the first opening 5244 includes a second passage opening O2. The second passage opening O2 allows the second electrical line E2 to pass through. The second passage opening O2 may be located on one side of the first opening 5244 (e.g., the right side in FIG. 14 ). The second passage opening O2 may be spaced apart from the first passage opening O1. The first passage opening O1 and the second passage opening O2 may be separated by at least a portion of the first rear sealing surface 5242.

[0167] In one embodiment, the first opening 5244 includes a third passage opening O3. The third passage opening O3 allows the third electrical line E3 to pass through. The third passage opening O3 may be located on the other side of the first opening 5244 (e.g., the left side in FIG. 14 ) opposite the second passage opening O2 relative to the first passage opening O1. The third passage opening O3 may be spaced apart from the first passage opening O1. The first passage opening O1 and the third passage opening O3 may be separated by at least a portion of the first sealing rear surface 5242.

[0168] In one embodiment, the first sealing 524 includes a first groove GV11. The first groove GV11 may be formed in the first sealing front surface 5241 in a direction from the first sealing front surface 5241 toward the first sealing rear surface 5242. The first groove GV11 extends between the first opening 5244 and the first side sealing surface 5243A. The first groove GV11 is connected to the first opening 5244. The first groove GV11 leads to the first side sealing surface 5243A.

[0169] In one embodiment, the first sealing surface 524 includes a second groove GV12. The second groove GV12 may be formed in the first sealing front surface 5241 in a direction from the first sealing front surface 5241 toward the first sealing rear surface 5242. The second groove GV12 extends in a direction (e.g., leftward in FIG. 14 ) intersecting (e.g., perpendicular to) the extension direction of the first groove GV11. The second groove GV12 may be connected to the first opening 5244. The second groove GV12 does not connect to the first side sealing surface 5243C.

[0170] In one embodiment, the first sealing surface 524 includes a third groove GV13. The third groove GV13 may be formed in the first sealing front surface 5241 in a direction from the first sealing front surface 5241 toward the first sealing rear surface 5242. The third groove GV13 extends in a direction opposite to the extension direction of the first groove GV11 (e.g., downward in FIG. 14). The third groove GV13 is connected to the first opening 5244. The third groove GV13 leads to the first side sealing surface 5243B.

[0171] 9-12, the insulator 520 includes a second ceiling 525 (e.g., an inner ceiling) that can be configured to seal the spaces between the electrical lines E1, E2, E3, and E4 and the first ceiling 524.

[0172] In one embodiment, the second ceiling 525 may be at least partially disposed in the second passage 521D2. The second ceiling 525 includes a surface (e.g., the second sealing front surface 5251) that is substantially coplanar with one surface (e.g., the first sealing front surface 5241) of the first ceiling 524.

[0173] In one embodiment, the second ceiling 525 may overlap the first ceiling 524 and the plurality of electrical lines E1, E2, E3, and E4. For example, the second ceiling 525 may be disposed in the first opening 5244 of the first ceiling 524. At least a portion of the second ceiling 525 may be in close contact with the first ceiling 524 and the plurality of electrical lines E1, E2, E3, and E4.

[0174] In one embodiment, the second ceiling 525 may be a separate and distinct component from the first ceiling 524 .

[0175] In one embodiment, the second sealing member 525 includes an elastic material. For example, the second sealing member 525 may include rubber.

[0176] In one embodiment, the material of the first ceiling 524 may be the same as the material of the second ceiling 525. In one embodiment, the material of the first ceiling 524 may be different from the material of the second ceiling 525.

[0177] According to one embodiment, the first ceiling 524 and the second ceiling 525 may be configured to insulate the second passage 521D2 by sealing the second passage 521D2. According to one embodiment, the first ceiling 524 and the second ceiling 525 may reduce or block the flow of material (e.g., liquid droplets) from the inside of the insulating housing 521 to the outside of the insulating housing 521 through the second passage 521D2.

[0178] Figure 18 is a perspective view of a second sealing according to an embodiment. Figure 19 is a front view of a second sealing according to an embodiment. Figure 20 is a plan view of a second sealing according to an embodiment. Figure 21 is a side view of a second sealing according to an embodiment. Figure 22 is a rear view of a second sealing according to an embodiment.

[0179] 18 to 22, the second sealing 525 includes a second sealing front surface 5251, a second sealing rear surface 5252 opposite the second sealing front surface 5251, and a plurality of second side sealing surfaces 5253A, 5253B, 5253C, and 5253D between the second sealing front surface 5251 and the second sealing rear surface 5252.

[0180] In one embodiment, the plurality of second side sealing surfaces 5253A, 5253B, 5253C, 5253D may at least partially contact the inner surface of the first opening 5244 of the first ceiling 524 in Figures 13 to 17. The second side sealing surface 5253D of the second ceiling 525 may contact a fourth electrical line (e.g., the fourth electrical line E4 in Figure 10).

[0181] In one embodiment, the second sealing surface 525 includes a fourth groove GV21. The fourth groove GV21 may be configured to at least partially accommodate a first electrical line (e.g., the first electrical line E1 in FIG. 10). The fourth groove GV21 is formed in the second side sealing surface 5253A in a direction from one of the second side sealing surfaces 5253A toward the opposite second side sealing surface 5253D. The fourth groove GV21 extends between the second sealing front surface 5251 and the second sealing rear surface 5252. The fourth groove GV21 is connected to the second sealing front surface 5251 and the second sealing rear surface 5252, respectively. The fourth groove GV21 extends parallel to the second side sealing surfaces 5253B and 5253C.

[0182] In one embodiment, the second sealing surface 525 includes a fifth groove GV22. The fifth groove GV22 may be configured to at least partially accommodate a second electrical line (e.g., the second electrical line E2 in FIG. 10). The fifth groove GV22 is formed in the second side sealing surface 5253B. The fifth groove GV22 extends between the second sealing front surface 5251 and the second sealing rear surface 5252. The fifth groove GV22 is connected to the second sealing front surface 5251 and the second sealing rear surface 5252, respectively.

[0183] In one embodiment, the second sealing surface 525 includes a sixth groove GV23. The sixth groove GV23 may be configured to at least partially accommodate a third electrical line (e.g., the third electrical line E3 in FIG. 10). The sixth groove GV23 is formed in the second side sealing surface 5253C opposite the second side sealing surface 5253B. The sixth groove GV23 extends between the second sealing front surface 5251 and the second sealing rear surface 5252. The sixth groove GV23 is connected to the second sealing front surface 5251 and the second sealing rear surface 5252, respectively.

[0184] In one embodiment, the second ceiling 525 includes a protruding portion 5254. The protruding portion 5254 may protrude from the second ceiling rear surface 5252. The protruding portion 5254 may be at least partially disposed in the first passage opening O1 of the first ceiling 524 shown in FIGS. 13 to 17. The protruding portion 5254 may be at least partially disposed in the second passage 521D2 of FIG. 12.

[0185] In one embodiment, the second ceiling 525 includes a recessed portion 5255. The recessed portion 5255 may be disposed on the second sealing rear surface 5252. The recessed portion 5255 may be disposed on the second side sealing surface 5253A. The recessed portion 5255 may include an at least partially curved surface. The recessed portion 5255 may face the first sealing rear surface 5242 of the first ceiling 524 in FIGS. 13 to 17. The recessed portion 5255 may at least partially contact the first sealing rear surface 5242. The area of ​​the second sealing rear surface 5252 excluding the recessed portion 5255 may be at least partially disposed in the second passage opening O2 and / or the third passage opening O3 of the first ceiling 524.

[0186] The features and aspects of any embodiment described above may be combined with the features and aspects of any other embodiment unless an obvious technical conflict results.

Claims

1. A heater and a printed circuit board; an electrical line configured to connect the heater and the printed circuit board; As a heat insulator, a thermally insulated housing including a first surface, a second surface opposite the first surface, and a side surface between the first surface and the second surface and surrounding the heater; a flange protruding from the second surface; a passage defined in the flange for the electrical line to pass through; a first sealing surrounding the flange; a second ceiling overlapping the first ceiling and the electrical line; An aerosol generating device comprising the thermal insulator.

2. The first sealing is an outer enclosure disposed outside the flange; an inner enclosure disposed inside the flange and in the passage; a connecting enclosure that connects the outer enclosure and the inner enclosure; 2. The aerosol generating device of claim 1, comprising:

3. The first sealing is a first base disposed on the second surface; a second base disposed on the first base; Including, 2. The aerosol generating device according to claim 1, wherein the width of the first base is greater than the width of the second base in a direction perpendicular to the extension direction of the flange from the first surface toward the second surface.

4. 2. The aerosol generating device of claim 1, wherein the second ceiling includes a groove configured to at least partially accommodate the electrical line.

5. the first ceiling includes an opening through which the electrical line passes; The aerosol generating device of claim 1 , wherein the second ceiling is at least partially disposed in the opening.

6. 2. The aerosol generating device of claim 1, wherein the first and second sealings are separable from each other.

7. The aerosol generating device according to claim 1 , wherein the first seal and the second seal each comprise an elastic material.

8. The aerosol generating device according to claim 1 , wherein the flange protrudes from the second surface in a direction from the first surface toward the second surface.

9. a temperature sensor configured to detect a temperature of the heater; an additional electrical line configured to connect the temperature sensor and the printed circuit board; The aerosol generating device of claim 1 further comprising:

10. an insertion detection sensor configured to detect an aerosol-generating article; an additional electrical line configured to connect the insertion detection sensor and the printed circuit board; The aerosol generating device of claim 1 further comprising:

11. a thermally insulated housing including a first surface, a second surface opposite the first surface, and a side surface between the first surface and the second surface; an electrical line configured to connect the interior and exterior of the thermally insulated housing; a flange protruding from the second surface; a passage defined in the flange through which the electrical lines pass; a first sealing surrounding the flange; a second ceiling overlapping the first ceiling and the electrical line; an insulator,

12. The first sealing is an outer enclosure disposed outside the flange; an inner enclosure disposed inside the flange and in the passage; a connecting enclosure that connects the outer enclosure and the inner enclosure; 12. The insulation of claim 11, comprising:

13. The first sealing is a first base disposed on the second surface; a second base disposed on the first base; Including, 12. The thermal insulator of claim 11, wherein a width of the first base is greater than a width of the second base in a direction perpendicular to an extension direction of the flange from the first surface toward the second surface.

14. The insulation of claim 11 , wherein the second sealing includes a groove.

15. a thermally insulated housing including a first surface, a second surface opposite the first surface, and a side surface between the first surface and the second surface; a flange protruding from the second surface; a passage defined in the flange; a first sealing surrounding the flange; a second sealing overlapping the first sealing; Including, the first ceiling includes an opening; The second sealing is partially disposed in the opening.

Citation Information

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