Aerosol Generation System

The tubular member design with a flat and bent heating unit configuration in inhalation devices improves design freedom and heating efficiency, ensuring rapid temperature control and reduced power consumption.

JP7746408B2Active Publication Date: 2025-09-30JAPAN TOBACCO INC
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Patent Information

Application Number
JP2023565670
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-12-06
Publication Date
2025-09-30
Estimated Expiration
2041-12-06

AI Technical Summary

Technical Problem

Existing inhalation devices face design restrictions due to the arrangement of heating units on the chamber's side wall, limiting the freedom in designing the heating section.

Method used

A tubular member with a heating unit configured as a flat section along its outer surface and a bent portion away from the opening, allowing for a heat generating and non-heat generating region, connected to a power supply unit, and featuring a heat transfer layer for improved thermal conductivity.

Benefits of technology

Enhances design flexibility and heating efficiency, enabling quicker temperature reach, better temperature control, and reduced power consumption while preventing flavor loss and temperature drops during use.

✦ Generated by Eureka AI based on patent content.

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Abstract

[Problem] To provide a system in which freedom of design related to a heating unit can be improved. [Solution] This aerosol generating system comprises: a tubular member that has an opening into which an aerosol generating base material containing an aerosol source can be inserted; and a heating unit. The tubular member has a bottom wall that closes at least a portion of an end section on the opposite side of the opening, and the heating unit is configured in a planar shape. A portion of the heating unit is disposed so as to follow an outer surface of the tubular member, and another portion of the heating unit is folded from the bottom wall of the tubular member in a direction away from the opening of the tubular member.
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Description

[Technical Field]

[0001] The present invention relates to an aerosol generating system. [Background technology]

[0002] Inhalation devices, such as electronic cigarettes and nebulizers, that generate substances to be inhaled by users are widely used. For example, inhalation devices generate aerosols containing flavor components using a substrate containing an aerosol source for generating aerosols and a flavor source for imparting flavor components to the generated aerosol. Users can enjoy the flavor by inhaling the flavor-imparted aerosol generated by the inhalation device. The action of a user inhaling an aerosol is hereinafter also referred to as a puff or a puffing action.

[0003] In suction devices that generate aerosols by heating a substrate, there is a need to improve heating efficiency. For example, Patent Document 1 below discloses a technology that improves heating efficiency by heating a substrate while pressing it. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2021 / 172255 Summary of the Invention [Problem to be solved by the invention]

[0005] In the above-mentioned Patent Document 1, a sheet-like heating unit is tightly arranged on the outer surface of the side wall of the chamber that houses the substrate, which imposes design restrictions such as connecting electrodes for applying current to the heating unit to the side wall of the chamber.

[0006] Therefore, the present invention has been made in consideration of the above problems, and an object of the present invention is to provide a mechanism that can improve the degree of freedom in designing the heating section. [Means for solving the problem]

[0007] In order to solve the above problems, according to one aspect of the present invention, there is provided an aerosol generating system comprising a tubular member having an opening into which an aerosol-generating substrate containing an aerosol source can be inserted, and a heating unit, wherein the tubular member has a bottom wall that covers at least a portion of the end opposite the opening, the heating unit is configured to be flat, a portion of the heating unit is arranged along the outer surface of the tubular member, and another portion of the heating unit is bent from the bottom wall of the tubular member in a direction away from the opening of the tubular member.

[0008] The heating section may have a heat generating region and a non-heat generating region, and a part of the heating section bent in a direction away from the opening of the cylindrical member may be the non-heat generating region.

[0009] A part of the heating portion bent in a direction away from the opening of the tubular member may be connected to a power supply unit that applies current to the heating portion at an end of the tubular member farther from the opening.

[0010] The bottom wall of the tubular member may have a convex portion protruding from the outer surface of the bottom wall, and the heating portion may have a hole, and the heating portion may be arranged around the tubular member with the convex portion of the tubular member passing through the hole of the heating portion.

[0011] The hole of the heating portion may be circumscribing the protrusion of the cylindrical member.

[0012] The holes of the heating portion and the convex portions of the cylindrical member may have circular shapes in a plane perpendicular to the longitudinal direction of the cylindrical member.

[0013] The heating section may have a heat generating region and a non-heat generating region, and the hole of the heating section may be surrounded by the non-heat generating region.

[0014] A portion of the heating portion may be disposed along a portion of the outer surface of the bottom wall of the cylindrical member excluding the protrusion.

[0015] The heating portion may be bent along the boundary between the outer surface of the bottom wall of the tubular member and the outer surface of the side wall of the tubular member, and may be arranged along the outer surface of the bottom wall of the tubular member and the outer surface of the side wall of the tubular member.

[0016] The side wall of the tubular member has a pressing portion whose inner and outer surfaces are flat, and the pressing portion presses the aerosol-generating substrate inserted into the tubular member, and the heating portion may be bent along the boundary between the outer surface of the bottom wall of the tubular member and the outer surface of the pressing portion of the tubular member, and may be arranged along the outer surface of the bottom wall of the tubular member and the outer surface of the pressing portion of the tubular member.

[0017] The cylindrical member has two or more pressing portions, and the heating portion is bent along a boundary portion between the outer surface of the bottom wall of the cylindrical member and each of the outer surfaces of the two or more pressing portions of the cylindrical member, and the outer surface of the bottom wall of the cylindrical member and the two or more pressing portions of the cylindrical member are bent along a boundary portion between the outer surface of the bottom wall of the cylindrical member and each of the outer surfaces of the two or more pressing portions of the cylindrical member. End may be arranged along the outer surface of each of the pressing portions.

[0018] The heating section may have a heat generating region and a non-heat generating region, and the heating section may be bent in the non-heat generating region.

[0019] The heating section is constructed by arranging conductive tracks on a planar insulating substrate, and the heating section has a heat-generating region and a non-heat-generating region, and the electrical resistance of the conductive tracks arranged in the heat-generating region may be higher than the electrical resistance of the conductive tracks arranged in the non-heat-generating region.

[0020] The non-heat-generating region of the heating unit may be arranged on the bottom wall of the tubular member and on the side wall of the tubular member that is closer to the bottom wall, and the heat-generating region of the heating unit may be arranged on the side wall of the tubular member that is closer to the opening.

[0021] In the heat generating region of the heating portion, the conductive tracks may form a parallel circuit.

[0022] The conductive track may be folded back at an end of the heat generating region of the heating section that is farther from the non-heat generating region.

[0023] The heating section is constructed by arranging conductive tracks on a planar insulating substrate, and the heating section has a heat-generating region and a non-heat-generating region, the conductive tracks arranged in the heat-generating region are made of SUS, the conductive tracks arranged in the non-heat-generating region are made of a material containing at least one of copper and nickel, and the insulating substrate may be made of polyimide.

[0024] The aerosol generation system may further include a heat transfer layer having a predetermined thermal conductivity, and the heat transfer layer may be wrapped around the tubular member and the heating section arranged along the outer surface of the side wall of the tubular member to cover at least a portion of the heating section.

[0025] The heat transfer layer may be made of graphite.

[0026] The aerosol-generating system may further comprise the aerosol-generating substrate. [Effects of the Invention]

[0027] As described above, according to the present invention, a mechanism is provided that allows for increased freedom in designing the heating section. [Brief explanation of the drawings]

[0028] [Figure 1] FIG. 2 is a schematic diagram illustrating a configuration example of a suction device. [Figure 2] 1 is a diagram schematically illustrating a physical configuration of a suction device according to an embodiment of the present invention. [Figure 3] FIG. 3 is a perspective view of the heater assembly shown in FIG. 2. [Figure 4] FIG. [Figure 5] 4. FIG. 4 is a cross-sectional view of the chamber taken along the arrows 4-4 in FIG. [Figure 6] 5. FIG. 6 is a cross-sectional view of the chamber taken along the arrows 5-5 in FIG. [Figure 7] FIG. 10 is a longitudinal cross-sectional view of a chamber including a non-pressure portion in a state in which a stick-shaped substrate is held by a holding portion. [Figure 8] FIG. 10 is a longitudinal cross-sectional view of a chamber including a pressing unit, with a stick-shaped substrate held by a holding unit. [Figure 9] 9 is a cross-sectional view of the chamber taken along the arrows 7-7 in FIG. 8. [Figure 10] FIG. 2 is a diagram showing the configuration of a heating unit according to the embodiment in a plan view. [Figure 11] FIG. 2 is a perspective view showing a state before the heating unit according to the present embodiment is arranged around the chamber. [Figure 12] FIG. 10 is a perspective view showing the state after the heating unit according to the embodiment has been arranged around the chamber. [Figure 13] FIG. 10 is a bottom view showing the state after the heating unit according to the embodiment has been arranged around the chamber. [Figure 14] FIG. 10 is a perspective view of a heater assembly according to a modified example. DETAILED DESCRIPTION OF THE INVENTION

[0029] Hereinafter, preferred embodiments of the present invention will be described in detail with reference to the accompanying drawings. In this specification and drawings, components having substantially the same functional configurations are designated by the same reference numerals, and redundant explanations will be omitted.

[0030] <1. Example of suction device configuration> An inhalation device is a device that generates a substance to be inhaled by a user. In the following description, the substance generated by the inhalation device is described as an aerosol. Alternatively, the substance generated by the inhalation device may be a gas.

[0031] 1 is a schematic diagram showing an example of the configuration of a suction device. As shown in Fig. 1, a suction device 100 according to this example configuration includes a power supply unit 111, a sensor unit 112, a notification unit 113, a storage unit 114, a communication unit 115, a control unit 116, a heating unit 40, a chamber 50, and a heat insulating unit 70.

[0032] Power supply unit 111 stores electric power. Power supply unit 111 supplies electric power to each component of suction device 100 based on the control of control unit 116. Power supply unit 111 can be configured by, for example, a rechargeable battery such as a lithium ion secondary battery.

[0033] The sensor unit 112 acquires various types of information related to the suction device 100. As one example, the sensor unit 112 is configured with a pressure sensor such as a condenser microphone, a flow rate sensor, or a temperature sensor, and acquires values ​​associated with suction by the user. As another example, the sensor unit 112 is configured with an input device such as a button or a switch that accepts information input from the user.

[0034] The notification unit 113 notifies the user of information. The notification unit 113 is configured by, for example, a light emitting device that emits light, a display device that displays an image, a sound output device that outputs sound, or a vibration device that vibrates.

[0035] The storage unit 114 stores various types of information for the operation of the suction device 100. The storage unit 114 is configured by a non-volatile storage medium such as a flash memory, for example.

[0036] The communication unit 115 is a communication interface capable of performing communication in accordance with any wired or wireless communication standard, such as Wi-Fi (registered trademark) or Bluetooth (registered trademark).

[0037] The control unit 116 functions as an arithmetic processing unit and a control unit, and controls the overall operation of the suction device 100 in accordance with various programs. The control unit 116 is realized by electronic circuits such as a CPU (Central Processing Unit) and a microprocessor, for example.

[0038] The chamber 50 accommodates and holds the stick-type substrate 150. The chamber 50 has an opening 52 that connects the internal space 80 formed in the suction device 100 to the external space. The stick-type substrate 150 can be inserted into the internal space 80 of the chamber 50 through the opening 52. The chamber 50 accommodates the stick-type substrate 150 inserted into the internal space 80 through the opening 52.

[0039] The stick-shaped substrate 150 includes a substrate portion 151 and a mouthpiece portion 152. The substrate portion 151 includes an aerosol source. The aerosol source is generated by atomizing the aerosol source. The aerosol source is, for example, a polyhydric alcohol such as glycerin or propylene glycol, or a liquid such as water. The aerosol source may contain a tobacco-derived or non-tobacco-derived flavor component. When the inhalation device 100 is a medical inhaler such as a nebulizer, the aerosol source may contain a drug. Note that the aerosol source is not limited to a liquid and may be a solid. When the stick-shaped substrate 150 is held in the chamber 50, at least a portion of the substrate portion 151 is accommodated in the internal space 80, and at least a portion of the mouthpiece portion 152 protrudes from the opening 52. When a user holds the mouthpiece portion 152 protruding from the opening 52 in their mouth and inhales, the aerosol generated from the substrate portion 151 reaches the user's mouth.

[0040] The heating unit 40 generates aerosol by heating the aerosol source and atomizing the aerosol source. As an example, the heating unit 40 is configured in a film shape and is arranged to cover the outer periphery of the chamber 50. When the heating unit 40 generates heat, the substrate unit 151 of the stick-shaped substrate 150 is heated from the outer periphery, generating aerosol. The heating unit 40 generates heat when power is supplied from the power supply unit 111.

[0041] The heat insulating section 70 prevents heat transfer from the heating section 40 to other components. For example, the heat insulating section 70 is made of a vacuum heat insulating material, an aerogel heat insulating material, or the like.

[0042] An example of the configuration of the suction device 100 has been described above.

[0043] The stick-shaped substrate 150 is an example of an aerosol-generating substrate containing an aerosol source. The inhalation device 100 and the stick-shaped substrate 150 work together to generate an aerosol that is inhaled by a user. Therefore, the combination of the inhalation device 100 and the stick-shaped substrate 150 may be considered an aerosol-generating system.

[0044] <2. Technical Features> (1) Heating the substrate while pressing it The suction device 100 according to this embodiment has a configuration that heats the stick-shaped substrate 150 while pressing it. This configuration will be described in detail below.

[0045] FIG. 2 is a diagram schematically illustrating the physical configuration of the inhalation device 100 according to this embodiment. As shown in FIG. 2, the inhalation device 100 has a heater assembly 30 including a heating unit 40 and a chamber 50. As shown in FIG. 2, when the stick-shaped substrate 150 is housed in the heater assembly 30 (more specifically, the chamber 50), a gap exists between the heater assembly 30 and the stick-shaped substrate 150. When a user holds the stick-shaped substrate 150 in their mouth and inhales, air flowing in from the opening 52 passes through the gap and flows into the inside of the stick-shaped substrate 150 from the tip of the substrate 151, and then flows out from the rear end of the mouthpiece 152 into the user's mouth. That is, the air inhaled by the user flows in the order of airflow 190A, airflow 190B, and airflow 190C, and is introduced into the user's mouth in a state where it is mixed with the aerosol generated from the stick-shaped substrate 150.

[0046] 3 is a perspective view of the heater assembly 30 shown in FIG. 3. As shown in FIG. 3, the heater assembly 30 has a top cap 32, a heating section 40, and a chamber 50. The heating section 40 is disposed around the chamber 50. In this manner, the heating section 40 is configured to heat the stick-shaped substrate 150 received in the chamber 50. The top cap 32 functions as a guide when the stick-shaped substrate 150 is inserted into the chamber 50, and may also be configured to fix the chamber 50 to the suction device 100.

[0047] FIG. 4 is a perspective view of the chamber 50. FIG. 5 is a cross-sectional view of the chamber 50 taken along arrows 4-4 in FIG. 4. FIG. 6 is a cross-sectional view of the chamber 50 taken along arrows 5-5 in FIG. 5. As shown in FIGS. 4 and 5, the chamber 50 is a cylindrical member with a bottom, including an opening 52, a side wall 54, and a bottom wall 56 that closes the end opposite the opening 52. The side wall 54 has an inner surface 54a and an outer surface 54b. The bottom wall 56 has an inner surface 56a and an outer surface 56b. The stick-shaped substrate 150 is inserted into the chamber 50 through the opening 52 and is accommodated in an internal space 80 surrounded by the side wall 54 and the bottom wall 56. The chamber 50 is preferably made of a metal with high thermal conductivity, such as stainless steel. This allows for efficient heating of the stick-shaped substrate 150.

[0048] As shown in Figures 4 and 5, the chamber 50 has a holding portion 60 that holds the stick-shaped substrate 150. As shown in Figures 5 and 6, the holding portion 60 includes a pressing portion 62 that presses a portion of the stick-shaped substrate 150, and a non-pressing portion 66. The pressing portion 62 has an inner surface 62a and an outer surface 62b. The non-pressing portion 66 has an inner surface 66a and an outer surface 66b. The pressing portion 62 and the non-pressing portion 66 are part of the side wall 54 of the chamber 50.

[0049] The opening 52 of the chamber 50 is preferably capable of receiving the stick-shaped substrate 150 without applying pressure. The shape of the opening 52 of the chamber 50 in a plane perpendicular to the longitudinal direction of the chamber 50 (in other words, the direction in which the stick-shaped substrate 150 is inserted into the chamber 50 or the direction in which the side wall 54 of the chamber 50 extends) may be polygonal or elliptical, but is preferably circular.

[0050] As shown in Figures 4, 5, and 6, in this embodiment, the chamber 50 has two or more pressing portions 62 in the circumferential direction of the chamber 50. As shown in Figures 5 and 6, the two pressing portions 62 of the holding portion 60 face each other. It is preferable that at least a portion of the distance between the inner surfaces 62a of the two pressing portions 62 is smaller than the width of the portion of the stick-shaped substrate 150 inserted into the chamber 50 that is disposed between the pressing portions 62. As shown in the figures, the inner surface 62a of the pressing portion 62 is flat. The outer surface 62b of the pressing portion 62 is also flat. More simply, the pressing portion 62 is a portion of the side wall 54 that is configured as a flat plate.

[0051] As shown in FIG. 6 , the inner surface 62a of the pressing portion 62 has a pair of opposing flat pressing surfaces. On the other hand, the inner surface 66a of the non-pressing portion 66 has a pair of opposing curved non-pressing surfaces that connect both ends of the pair of flat pressing surfaces. As shown, the curved non-pressing surfaces may have an overall arc-shaped cross section in a plane perpendicular to the longitudinal direction of the chamber 50. The outer surface 62b of the pressing portion 62 and the outer surface 66b of the non-pressing portion 66 are connected to each other at an angle, and a boundary 68 may be formed between the outer surface 62b of the pressing portion 62 and the outer surface 66b of the non-pressing portion 66. As shown in FIG. 6 , the pressing portion 62 and the non-pressing portion 66 (i.e., the sidewall 54 of the chamber 50) may have a uniform thickness.

[0052] Fig. 7 is a longitudinal cross-sectional view of the chamber 50 including the non-pressing portion 66, with the stick-shaped substrate 150 held by the holding portion 60. Fig. 8 is a longitudinal cross-sectional view of the chamber 50 including the pressing portion 62, with the stick-shaped substrate 150 held by the holding portion 60. Fig. 9 is a cross-sectional view of the chamber 50 taken along the arrows 7-7 shown in Fig. 8. Note that Fig. 9 shows a cross-section of the stick-shaped substrate 150 before it is pressed, so that it is easy to see that the stick-shaped substrate 150 is pressed by the pressing portion 62.

[0053] 9, the gap 67 between the inner surface 66a of the non-pressing portion 66 and the stick-shaped substrate 150 is substantially maintained even when the stick-shaped substrate 150 is held by the holding portion 60 and is pressed and deformed by the pressing portion 62. This gap 67 can communicate with the opening 52 of the chamber 50 and the end face of the stick-shaped substrate 150 positioned within the chamber 50 (the end face on the lower side in FIGS. 7 and 8, i.e., the end face of the substrate portion 151 shown in FIG. 2). It can also be said that this gap 67 communicates with the opening 52 of the chamber 50 and the end face of the stick-shaped substrate 150 positioned within the chamber 50 and positioned farther from the opening 52 of the chamber 50 (the end face on the lower side in FIGS. 7 and 8, i.e., the end face of the substrate portion 151 shown in FIG. 2). An air flow path is formed through the gap 67 and the interior of the stick-type substrate 150 from the opening 52 of the chamber 50 to the end face of the stick-type substrate 150 positioned outside the chamber 50 (the upper end face in FIGS. 7 and 8 , i.e., the end face of the mouthpiece 152 shown in FIG. 2 ). This eliminates the need to provide a separate flow path in the inhalation device 100 for introducing air to be supplied to the stick-type substrate 150, thereby simplifying the structure of the inhalation device 100. Furthermore, because the portion of the non-pressing portion 66 that forms part of the gap 67 is exposed, cleaning of the flow path is easy. Furthermore, because the air is heated as it passes through the gap 67, heat dissipation by the heating unit 40 is effectively utilized to increase heating efficiency, and excessive temperature drop of the stick-type substrate 150 due to air flowing in with puffing can be prevented. As a result, power consumption by the heating unit 40 can be reduced, and flavor loss caused by temperature drop of the stick-type substrate 150 with puffing can be prevented. From the viewpoint of air resistance, etc., the height of the gap 67 between the inner surface 66a of the non-pressure portion 66 and the stick-shaped substrate 150 is preferably 0.1 mm or more and 1.0 mm or less, more preferably 0.2 mm or more and 0.8 mm or less, and most preferably 0.3 mm or more and 0.5 mm or less.

[0054] As shown in FIG. 9, when the stick-shaped substrate 150 is held by the holding part 60, the distance L between the inner surface 62a of the pressing part 62 and the center of the stick-shaped substrate 150 is Ais the distance L between the inner surface 66a of the non-pressure portion 66 and the center of the stick-shaped substrate 150. B With this configuration, the distance between the heating unit 40 arranged on the outer surface 62b of the pressing unit 62 and the center of the stick-shaped substrate 150 can be made shorter than when the pressing unit 62 is not provided. This makes it possible to improve the heating efficiency of the stick-shaped substrate 150.

[0055] As shown in FIGS. 5 to 8 , a first protrusion 57a ​​protruding from an inner surface 56a of the bottom wall 56 is provided on the bottom wall 56 of the chamber 50. The first protrusion 57a ​​has, for example, a truncated cone shape with a flat top surface. The top surface of the first protrusion 57a ​​is configured to be smaller than at least the end surface of the stick-shaped substrate 150. As a result, as shown in FIGS. 7 and 8 , the bottom wall 56 supports a portion of the stick-shaped substrate 150 inserted into the chamber 50 with the first protrusion 57a ​​so that at least a portion of the end surface of the stick-shaped substrate 150 is exposed. Furthermore, the bottom wall 56 can support a portion of the stick-shaped substrate 150 with the first protrusion 57a ​​so that the exposed end surface of the stick-shaped substrate 150 communicates with the void 67.

[0056] 5 to 8, a second protrusion 57b protruding from an outer surface 56b of the bottom wall 56 is provided on the bottom wall 56 of the chamber 50. The second protrusion 57b has, for example, a cylindrical shape with a flat top surface. The second protrusion 57b is disposed in the center of the bottom wall 56 of the chamber 50.

[0057] 6 and 9, the inner surface 66a of the non-pressing portion 66 of the holding part 60 is curved in a plane perpendicular to the longitudinal direction of the chamber 50. The shape of the inner surface 66a of the non-pressing portion 66 in the plane perpendicular to the longitudinal direction of the chamber 50 is preferably the same as the shape of the opening 52 in the plane perpendicular to the longitudinal direction of the chamber 50, at any position in the longitudinal direction of the chamber 50. In other words, the inner surface 66a of the non-pressing portion 66 is preferably formed by extending the inner surface of the chamber 50 that forms the opening 52 in the longitudinal direction.

[0058] 3 to 5, the chamber 50 preferably has a cylindrical non-holding portion 69 between the opening 52 and the holding portion 60. The non-holding portion 69 is a portion of the chamber 50 that does not contribute to holding the stick-shaped substrate 150. For example, in a plane perpendicular to the longitudinal direction of the chamber 50, the non-holding portion 69 can be formed to be larger than the stick-shaped substrate 150. This can form a gap between the non-holding portion 69 and the stick-shaped substrate 150 when the stick-shaped substrate 150 is held by the holding portion 60.

[0059] As shown in Figures 5 to 9, it is preferable that the outer peripheral surface of the holding portion 60 has the same shape and size (the outer peripheral length of the holding portion 60 in a plane perpendicular to the longitudinal direction of the holding portion 60) along the entire longitudinal length of the holding portion 60.

[0060] 4 and 5, the chamber 50 preferably has a first guide portion 58 equipped with a tapered surface 58a that connects the inner surface of the chamber 50 (i.e., the non-holding portion 69) that forms the opening 52 with the inner surface 62a of the pressing portion 62. The first guide portion 58 smoothly connects the pressing portion 62 and the non-holding portion 69, making it possible to suitably guide the stick-shaped substrate 150 into the holding portion 60 during the process of inserting the stick-shaped substrate 150 into the chamber 50.

[0061] 3, the heating unit 40 is disposed around the chamber 50. Therefore, when the heating unit 40 generates heat, the chamber 50 is heated from the outer periphery, and the stick-shaped substrate 150 is heated by heat transfer from the chamber 50. This makes it possible to generate an aerosol from the stick-shaped substrate 150.

[0062] 3, the heating section 40 is disposed on the outer surface 62b of the pressing section 62. The heating section 40 is preferably disposed without any gaps on the outer surface 62b of the pressing section 62. The heating section 40 is also preferably disposed over the entire outer surface 62b of the pressing section 62. However, the heating section 40 is preferably disposed so as not to protrude beyond the outer surface 62b of the pressing section 62. Of course, the heating section 40 may be disposed so as to protrude from the outer surface 62b of the pressing section 62 onto the outer surface 66b of the non-pressing section 66.

[0063] As shown in Fig. 3, the heating unit 40 has a heat-generating region 44 and a non-heat-generating region 45. The heat-generating region 44 is a region that generates heat when a current is applied to the heating unit 40. The non-heat-generating region 45 is a region that does not generate heat or generates very little heat even when a current is applied to the heating unit 40. The heat-generating region 44 is disposed on the outer surface 62b of the pressing unit 62. With this configuration, it is possible to efficiently heat the stick-shaped substrate 150 while pressing the stick-shaped substrate 150 with the pressing unit 62.

[0064] As described above, the suction device 100 according to this embodiment holds and heats the stick-shaped substrate 150 while pressing it with the pressing part 62. This configuration provides various effects, which will be described below.

[0065] First, the thermal conductivity from the heating unit 40 to the stick-shaped substrate 150 is improved. That is, the heating efficiency of the stick-shaped substrate 150 can be improved. Because the heating efficiency of the stick-shaped substrate 150 is improved, the temperature of the stick-shaped substrate 150 can reach the target temperature more quickly, thereby shortening the time required for preheating (heating from the start of heating until puffing is possible). Furthermore, because the heating efficiency of the stick-shaped substrate 150 is improved, the temperature of the stick-shaped substrate 150 can better follow temperature changes in the heating unit 40. As a result, first, the amount of aerosol generated can be more easily controlled. Second, even if the temperature of the stick-shaped substrate 150 drops due to a puff by the user, it can be quickly returned to its original temperature. Third, the influence of external environments such as outside air temperature can be reduced.

[0066] Furthermore, the inhalation device 100 according to this embodiment heats the stick-type substrate 150 from the periphery while pressing the stick-type substrate 150. This configuration can improve the heating efficiency of the stick-type substrate 150 and the temperature tracking ability of the stick-type substrate 150, as described above, regardless of the shape of the aerosol source inside the stick-type substrate 150. Furthermore, this configuration can improve the heating efficiency of the stick-type substrate 150 and the temperature tracking ability of the stick-type substrate 150, as described above, regardless of errors in the shape or size of the stick-type substrate 150 that arise from variations that occur during the manufacturing process of the stick-type substrate 150. In contrast, in a comparative example in which a blade-shaped heating unit is inserted into the stick-type substrate 150 and the stick-type substrate 150 is heated from the inside, it may be difficult to achieve these effects. This is because, in this comparative example, even if the stick-type substrate 150 is pressed from the periphery, it may be difficult to bring the blade-shaped heating unit into contact with the aerosol source inside the stick-type substrate 150.

[0067] Furthermore, in the suction device 100 according to this embodiment, the heat generating region 44 of the heating unit 40 is arranged in the pressing unit 62 that presses the stick-shaped substrate 150. Therefore, the suction device 100 according to this embodiment heats the stick-shaped substrate 150 in the pressing unit 62. With this configuration, the heat generating region 44 of the heating unit 40 is arranged not only in the pressing unit 62 but also in the non-pressing unit 66, thereby improving heating efficiency compared to a comparative example in which the stick-shaped substrate 150 is heated from the entire periphery. This is because the area of ​​the heat generating region 44 can be narrowed and the watt density can be increased.

[0068] In the suction device 100 according to this embodiment, the heat insulating section 70 may be disposed so as to surround the heater assembly 30 from the outer periphery. In this case, the outer surface 62b of the pressing section 62 is positioned closer to the center of the internal space 80 than the outer surface 66b of the non-pressing section 66, and therefore the thickness of the air layer formed between the outer surface 62b of the pressing section 62 and the inner surface of the heat insulating section 70 can be increased accordingly. Alternatively, the thickness of the heat insulating section 70 superimposed on the pressing section 62 can be increased. Therefore, the heat insulating effect provided by the heat insulating section 70 can be improved.

[0069] (2) Configuration for preventing the heater 40 from shifting in position The suction device 100 according to this embodiment has a configuration that prevents displacement of the heating unit 40. The configuration that prevents displacement of the heating unit 40 will be described in detail below.

[0070] Here, misalignment refers to a deviation between the ideal positioning of the heating unit 40 and the actual positioning of the heating unit 40. There are two types of misalignment: misalignment during manufacturing and misalignment during use. Misalignment during manufacturing refers to a misalignment that occurs when the heating unit 40 is positioned around the chamber 50. Misalignment during use refers to a misalignment that occurs during the use of the manufactured suction device 100. Unless otherwise specified, the term misalignment refers to both misalignment during manufacturing and misalignment during use. Note that the ideal positioning of the heating unit 40 in this embodiment refers to the heat generating region 44 of the heating unit 40 being positioned on the outer surface 62b of the pressing portion 62 of the chamber 50, as shown in FIG. 3.

[0071] Fig. 10 is a diagram showing the configuration of the heating unit 40 according to this embodiment in a plan view. Fig. 11 is a perspective view showing the state before the heating unit 40 according to this embodiment is arranged around the chamber 50. Fig. 12 is a perspective view showing the state after the heating unit 40 according to this embodiment has been arranged around the chamber 50. Fig. 13 is a bottom view showing the state after the heating unit 40 according to this embodiment has been arranged around the chamber 50.

[0072] 10, the heating unit 40 is configured to have a flat shape. Then, as shown in FIGS. 11 and 12, the heating unit 40 is bent so as to fit along the outer surface of the chamber 50, and is disposed along the outer surface of the chamber 50.

[0073] As shown in Fig. 10, the heating unit 40 has a T-shape in plan view before being folded. Then, as shown in Fig. 11 and Fig. 12, the horizontal bar of the T of the heating unit 40 is folded so as to follow the outer surface of the chamber 50, and is disposed along the outer surface of the chamber 50. On the other hand, as shown in Fig. 12, the vertical bar of the T of the heating unit 40 is folded in the opposite direction to the horizontal bar of the T, and is separated from the outer surface of the chamber 50.

[0074] 10, a hole 43 is provided in the heating section 40. More specifically, the hole 43 is provided in the center of the T-shape before bending.

[0075] As shown in FIG. 10, the heating unit 40 can be configured by arranging conductive tracks 41 (41a to 41e) on a planar insulating substrate 42. The conductive tracks 41 are circuits made of a conductive material. The insulating substrate 42 is a substrate made of an insulating material. An example of an insulating material is polyimide. For example, the heating unit 40 may be a film heater configured by sandwiching a conductive track between two polyimide films. Other insulating materials include PET (Polyethylene terephthalate) and fluororesin.

[0076] As shown in FIG. 10 , the heating unit 40 has a heat-generating region 44 and a non-heat-generating region 45. The heat-generating region 44 generates heat when a current is applied to the heating unit 40. The non-heat-generating region 45 generates very little or no heat even when a current is applied to the heating unit 40. That is, the electrical resistance of the conductive tracks 41 (41b, 41d) arranged in the heat-generating region 44 is higher than the electrical resistance of the conductive tracks 41 (41a, 41c, 41e) arranged in the non-heat-generating region 45. For example, as shown in FIG. 10 , the conductive tracks 41 arranged in the heat-generating region 44 may be narrow, and the conductive tracks 41 arranged in the non-heat-generating region 45 may be wide. This achieves the aforementioned relationship in electrical resistance. The conductive tracks 41 arranged in the heat-generating region 44 may be made of, for example, stainless steel (SUS). On the other hand, the conductive tracks 41 arranged in the non-heat-generating region 45 may be made of, for example, a material containing at least one of copper and nickel. Specifically, the conductive tracks 41 arranged in the non-heat-generating region 45 may be made by plating SUS with copper and nickel. In this case, for example, the thickness of the SUS may be 30 μm, the thickness of the nickel may be 30 μm, and the thickness of the copper may be 5 μm. This configuration also makes it possible to achieve the above-mentioned relationship in magnitude of electrical resistance and to increase the heat resistance of the conductive tracks 41 in the heat-generating region 44. Of course, the material for the conductive tracks 41 is not limited to the above example and may be other materials such as aluminum.

[0077] As shown in FIG. 10 , in the heat-generating region 44 of the heating unit 40, the conductive tracks 41 may form a parallel circuit. For example, the conductive track 41b forms a parallel circuit in which two paths are parallel at two locations, before and after the conductive track 41b is folded back at the end of the heat-generating region 44. Similarly, the conductive track 41d forms a parallel circuit in which two paths are parallel at two locations, before and after the conductive track 41b is folded back at the end of the heat-generating region 44. Of course, the number of parallel paths is not limited to two and may be three or more, or the number of parallel paths before and after the folding back may be different. This configuration reduces uneven heat distribution in the heat-generating region 44. Furthermore, the conductive tracks 41 may also form a parallel circuit in the non-heat-generating region 45 of the heating unit 40. That is, the conductive tracks 41a, 41c, and 41e may form a parallel circuit. The greater the number of parallel paths, the narrower the width of each conductive track, making it easier to bend the non-heat-generating region 45.

[0078] 10, conductive track 41b is folded back at an end of heat-generating region 44 of heating unit 40 that is farther from non-heat-generating region 45, and is connected to conductive tracks 41a and 41c arranged around hole 43. Similarly, conductive track 41d is folded back at an end of heat-generating region 44 of heating unit 40 that is farther from non-heat-generating region 45, and is connected to conductive tracks 41e and 41c arranged around hole 43. In this way, conductive track 41 is arranged so as to run from the bottom end of the vertical bar of the T-shape of heating unit 40, bypassing hole 43, making a circuit around the horizontal bar of the T, and then returning to the bottom end of the vertical bar of the T.

[0079] 11, 12, and 13, the heating unit 40 is disposed around the chamber 50 with the second protrusions 57b provided on the bottom wall 56 of the chamber 50 passing through the holes 43 of the heating unit 40. With this configuration, the range of possible misalignment of the heating unit 40 can be limited to the range of the gap between the second protrusions 57b provided on the bottom wall 56 of the chamber 50 and the holes 43 of the heating unit 40. Therefore, it is possible to reduce the misalignment of the heating unit 40.

[0080] 11, 12, and 13, the hole 43 of the heating unit 40 is circumscribed by the second protrusion 57b of the chamber 50. With this configuration, it is possible to eliminate a gap between the second protrusion 57b provided on the bottom wall 56 of the chamber 50 and the hole 43 of the heating unit 40. This minimizes the range of possible positional deviation of the heating unit 40. In other words, it is possible to prevent the heating unit 40 from being misaligned.

[0081] 13 , the shape of the hole 43 of the heating unit 40 and the second convex portion 57b of the chamber 50 in a plane perpendicular to the longitudinal direction of the chamber 50 may be circular. This configuration makes it possible to easily circumscribe the hole 43 of the heating unit 40 on the second convex portion 57b of the chamber 50. Furthermore, this configuration makes it possible to easily align the heating unit 40 to an ideal position by rotating the heating unit 40 around the second convex portion 57b during the manufacturing process after the second convex portion 57b of the chamber 50 has passed through the hole 43 of the heating unit 40. Of course, the cross-sectional shape of the hole 43 of the heating unit 40 and the second convex portion 57b of the chamber 50 may be any shape, such as a polygon or an ellipse. As one example, the cross-sectional shape of the hole 43 of the heating unit 40 and the second convex portion 57b of the chamber 50 may be a shape in which both ends of two parallel lines of equal length are connected by two arcs, similar to the shape formed by the two pressing portions 62 and the two non-pressing portions 66 shown in Fig. 6. As another example, the cross-sectional shape of the hole 43 of the heating unit 40 and the second convex portion 57b of the chamber 50 may be a shape in which both ends of a single straight line are connected by a single arc, i.e., a partial circle shape.

[0082] 13, a portion of the heating unit 40 is disposed along a portion of the outer surface 56b of the bottom wall 56 of the chamber 50 excluding the second protrusion 57b. With this configuration, the position of the heating unit 40 can be limited so that the portion of the heating unit 40 surrounding the hole 43 and the portion of the outer surface 56b of the bottom wall 56 of the chamber 50 excluding the second protrusion 57b are in contact (for example, in close contact). This makes it possible to prevent the heating unit 40 from shifting in position in the longitudinal direction of the chamber 50.

[0083] 11 and 12 , the portion of the heating unit 40 that protrudes from the bottom wall 56 is bent. Specifically, a portion of the heating unit 40 (the horizontal bar portion of the T-shape) is bent in a direction approaching the side wall 54 of the chamber 50. As a result, a portion of the heating unit 40 (the horizontal bar portion of the T-shape) is disposed so as to follow the outer surface of the chamber 50. On the other hand, another portion of the heating unit 40 (the vertical bar portion of the T-shape) is bent from the bottom wall 56 of the chamber 50 in a direction away from the opening 52 of the chamber 50. With this configuration, it is not necessary to place the entire heating unit 40 along the outer surface of the chamber 50. This allows for greater freedom in designing the heating unit 40.

[0084] 11 and 12, the heating unit 40 is bent in the non-heat-generating region 45. This configuration prevents the load caused by heat generation from being applied to the bent position. Therefore, compared to when the heating unit 40 is bent in the heat-generating region 44, it is possible to make the heating unit 40 less likely to malfunction.

[0085] 10 and 12, a portion of the heating unit 40 bent in a direction away from the opening 52 of the chamber 50 is a non-heat-generating region 45. Specifically, the portion of the non-heat-generating region 45 where the conductive tracks 41a and 41e are arranged is bent in a direction away from the opening 52 of the chamber 50. This configuration makes it possible to prevent heat transfer to components other than the chamber 50 (for example, the power supply unit 111, etc.).

[0086] A part of the heating unit 40 bent in a direction away from the opening 52 of the chamber 50 is connected to the power supply unit 111 at the end farther from the opening 52 of the chamber 50. More specifically, an end 41aa of the conductive track 41a arranged in the non-heat generation region 45, which is bent in a direction away from the opening 52 of the chamber 50, is connected to the power supply unit 111. Similarly, an end 41ea of ​​the conductive track 41e arranged in the non-heat generation region 45, which is bent in a direction away from the opening 52 of the chamber 50, is connected to the power supply unit 111. This configuration makes it possible to supply power to the heating unit 40 while preventing heat transfer to the power supply unit 111.

[0087] As shown in FIG. 10 , the hole 43 of the heating unit 40 is provided at a position surrounded by a non-heat-generating region 45. As shown in FIG. 12 , the non-heat-generating region 45 of the heating unit 40 is disposed on the bottom wall 56 of the chamber 50 and on the side of the side wall 54 closer to the bottom wall 56. On the other hand, the heat-generating region 44 of the heating unit 40 is disposed on the side of the side wall 54 of the chamber 50 closer to the opening 52. As a result, the heat-generating region 44 is disposed at a position corresponding to the central portion of the stick-shaped substrate 150, excluding the tip portion of the stick-shaped substrate 150 (i.e., the side closer to the bottom wall 56). This configuration allows the area of ​​the heat-generating region 44 to be narrower than when the heat-generating region 44 is disposed not only in the central portion of the stick-shaped substrate 150 but also in a position corresponding to the tip portion. As a result, the watt density is increased, allowing the stick-shaped substrate 150 to be heated efficiently. Furthermore, by avoiding heating of the tip portion of the stick-shaped substrate 150, it is possible to prevent aerosol from leaking out from the tip portion of the stick-shaped substrate 150. As a result, a reduction in the amount of aerosol delivered to the user is prevented, and the inner surface of the chamber 50 is also prevented from becoming dirty.

[0088] As shown in Figures 11, 12, and 13, the heating unit 40 is folded along the boundary 54c between the outer surface 56b of the bottom wall 56 of the chamber 50 and the outer surface 54b of the side wall 54, and is disposed along the outer surface 56b of the bottom wall 56 and the outer surface 54b of the side wall 54 of the chamber 50. With this configuration, the heating unit 40 is first disposed along the outer surface 56b of the bottom wall 56, and then folded along the boundary 54c, making it possible to easily align the heating unit 40 with the outer surface (outer surface 56b and outer surface 54b) of the chamber 50. Furthermore, the heating unit 40 can be fixed with the fold of the heating unit 40 aligned with the boundary 54c. This makes it possible to prevent the heating unit 40 from shifting position.

[0089] In particular, as shown in FIGS. 11 , 12 , and 13 , the heating unit 40 is folded along a boundary 62c between the outer surface 56b of the bottom wall 56 of the chamber 50 and the outer surface 62b of the pressing unit 62 of the chamber 50, and is disposed along the outer surface 56b of the bottom wall 56 of the chamber 50 and the outer surface 62b of the pressing unit 62 of the chamber 50. Because both the outer surface 56b of the bottom wall 56 and the outer surface 62b of the pressing unit 62 are flat, the boundary 62c is linear. Therefore, the heating unit 40 can be fixed with the linear fold of the heating unit 40 aligned with the linear boundary 62c. Furthermore, of the outer surfaces (outer surfaces 56b and 54b) of the chamber 50, the outer surface 56b of the bottom wall 56 and the outer surface 62b of the pressing unit 62, on which the heating unit 40 is disposed, are both flat. Therefore, the flat heating unit 40 can be disposed without any gaps on the outer surface of the chamber 50. In this way, it is possible to prevent the heating unit 40 from being displaced.

[0090] 11, 12, and 13, the heating unit 40 is bent along the boundary portion 62c between the outer surface 56b of the bottom wall 56 of the chamber 50 and each of the outer surfaces 62b of the two pressing units 62 of the chamber 50, and is disposed along the outer surface 56b of the bottom wall 56 of the chamber 50 and each of the outer surfaces 62b of the two pressing units 62 of the chamber 50. Here, the two pressing units 62 are disposed in positions facing each other, and the horizontal bar portions of the T-shape of the heating unit 40 are disposed along each of the outer surfaces 62b of the two opposing pressing units 62. With this configuration, the heating unit 40 is fixed so as to sandwich the chamber 50 from the outside between the opposing pressing units 62. This makes it possible to prevent the heating unit 40 from shifting position.

[0091] <3. Supplementary Information> Although the preferred embodiments of the present invention have been described in detail above with reference to the accompanying drawings, the present invention is not limited to these examples. It is clear that a person skilled in the art to which the present invention pertains can conceive of various modifications and alterations within the scope of the technical ideas set forth in the claims, and it is understood that these also naturally fall within the technical scope of the present invention.

[0092] The suction device 100 may further include a configuration for further improving the heating efficiency of the heating unit 40. This will be described in detail with reference to FIG. 14 . FIG. 14 is a perspective view of a heater assembly 30 according to a modified example. As shown in FIG. 14 , a heat transfer layer 90 may be wrapped around the chamber 50 and at least a portion of the heating unit 40 disposed along the outer surface 54b of the sidewall 54 of the chamber 50. In particular, it is preferable that the heat transfer layer 90 covers the entire heat-generating region 44. The heat transfer layer 90 is a sheet-like member having a predetermined thermal conductivity. It is preferable that the thermal conductivity of the heat transfer layer 90 is at least higher than that of the chamber 50. As an example, the heat transfer layer 90 may be made of graphite. As another example, the heat transfer layer 90 may be made of aluminum, copper, or the like. With this configuration, portions of the chamber 50 where the heating unit 40 is not disposed can also be heated via the heat transfer layer 90, thereby improving the heating efficiency of the stick-shaped substrate 150.

[0093] In the above embodiment, an example has been described in which the heating unit 40 is configured as a film heater in which the conductive track 41 is sandwiched between two insulating substrates 42, but the present invention is not limited to such an example. For example, a conductive film may be used instead of the conductive track 41. The conductive film is a film having electrical conductivity, and may be configured by depositing, for example, ITO (Indium Tin Oxide).

[0094] In the above embodiment, an example has been described in which one second protrusion 57b is provided on the bottom wall 56 of the chamber 50, but the present invention is not limited to such an example. Two or more second protrusions 57b may be provided on the bottom wall 56 of the chamber 50. In that case, the heating unit 40 only needs to have the same number of holes 43 as the number of second protrusions 57b.

[0095] In the above embodiment, an example has been described in which the chamber 50 has a pair of pressing portions 62 that face each other, but the present invention is not limited to such an example. The pair of pressing portions 62 do not necessarily have to face each other. The chamber 50 may have one pressing portion 62, or may have three or more pressing portions 62. In this case, the heating portion 40 only needs to be arranged along each of the one or more pressing portions 62. In other words, the heating portion 40 is not limited to being T-shaped in plan view before being folded. The heating portion 40 only needs to be configured in a shape that corresponds to the relative position of the pressing portion 62 with respect to the bottom wall 56 of the chamber 50 in plan view before being folded.

[0096] In the above embodiment, an example in which the chamber 50 is configured as a substantially cylindrical cylinder has been described, but the present invention is not limited to such an example. The chamber 50 may be configured as a substantially elliptical cylinder or a rectangular cylinder.

[0097] In the above embodiment, an example has been described in which the bottom wall 56 of the chamber 50 completely covers the end of the chamber 50 opposite the opening 52, but the present invention is not limited to such an example. The bottom wall 56 of the chamber 50 only needs to cover at least a portion of the end of the chamber 50 opposite the opening 52. That is, a hole may be provided in the bottom wall 56 of the chamber 50. For example, a hole may be provided that penetrates the first protrusion 57a ​​and the second protrusion 57b, and an air flow path that introduces air into the internal space 80 of the chamber 50 may be connected to the hole.

[0098] In the above embodiment, an example in which the hole 43 is provided in the heating unit 40 has been described, but the present invention is not limited to such an example. It is sufficient that the heating unit 40 has a portion corresponding to the second protrusion 57b provided on the bottom wall 56 of the chamber 50. The heating unit 40 may be disposed around the chamber 50 with the second protrusion 57b of the chamber 50 corresponding to the portion of the heating unit 40 that corresponds to the second protrusion 57b of the chamber 50. For example, a cutout large enough to encompass the hole 43 may be provided in the center of the T-shape of the heating unit 40 in a plan view before bending. The heating unit 40 may be disposed around the chamber 50 with the cutout circumscribing the second protrusion 57b.

[0099] In the above embodiment, an example in which the second protrusion 57b is provided on the bottom wall 56 has been described, but the present invention is not limited to such an example. The bottom wall 56 may be provided with an element corresponding to the hole 43, which serves as a mark to prevent misalignment of the heating unit 40. For example, the bottom wall 56 may have a circular mark corresponding to the hole 43 drawn thereon, or may have a recess corresponding to the hole 43.

[0100] The following configurations also fall within the technical scope of the present invention. (1) a cylindrical member having an opening through which an aerosol-generating substrate containing an aerosol source can be inserted; A heating unit; Equipped with the cylindrical member has a bottom wall that closes at least a portion of the end opposite the opening, The heating unit is configured in a planar shape, A part of the heating portion is disposed along the outer surface of the cylindrical member. another part of the heating unit is bent from the bottom wall of the cylindrical member in a direction away from the opening of the cylindrical member; Aerosol generation systems. (2) the heating unit has a heat generating region and a non-heat generating region, a part of the heating portion bent in a direction away from the opening of the cylindrical member is the non-heat-generating region; The aerosol generating system described in (1) above. (3) a part of the heating portion bent in a direction away from the opening of the cylindrical member, the part being connected to a power supply unit that applies a current to the heating portion at an end of the cylindrical member farther from the opening; The aerosol generating system according to (1) or (2). (4) The bottom wall of the cylindrical member is provided with a protrusion that protrudes from an outer surface of the bottom wall, The heating section is provided with a hole, the heating unit is disposed around the cylindrical member with the protrusion of the cylindrical member passing through the hole of the heating unit. The aerosol generating system according to any one of (1) to (3) above. (5) the hole of the heating portion is circumscribing the protrusion of the cylindrical member; The aerosol generating system described in (4) above. (6) The shape of the hole of the heating portion and the shape of the convex portion of the cylindrical member in a plane perpendicular to the longitudinal direction of the cylindrical member are circular. The aerosol generating system according to (4) or (5). (7) the heating unit has a heat generating region and a non-heat generating region, The hole of the heating portion is surrounded by the non-heating region. The aerosol generating system according to any one of (4) to (6) above. (8) a portion of the heating portion is disposed along a portion of the outer surface of the bottom wall of the cylindrical member excluding the protrusion; The aerosol generating system according to any one of (4) to (7) above. (9) the heating portion is bent along a boundary portion between an outer surface of the bottom wall of the tubular member and an outer surface of the side wall of the tubular member, and is disposed along the outer surface of the bottom wall of the tubular member and the outer surface of the side wall of the tubular member. The aerosol generating system according to any one of (1) to (8) above. (10) the side wall of the cylindrical member has a pressing portion having an inner surface and an outer surface formed as a flat surface, the pressing part presses the aerosol-generating substrate inserted into the cylindrical member, the heating portion is bent along a boundary portion between an outer surface of the bottom wall of the cylindrical member and an outer surface of the pressing portion of the cylindrical member, and is disposed along the outer surface of the bottom wall of the cylindrical member and the outer surface of the pressing portion of the cylindrical member. The aerosol generating system described in (9) above. (11) the cylindrical member has two or more pressing portions, The heating portion is bent along a boundary portion between the outer surface of the bottom wall of the cylindrical member and each of the outer surfaces of the two or more pressing portions of the cylindrical member, and End and arranged along each of the outer surfaces of the pressing portions. The aerosol generating system described in (10) above. (12) the heating unit has a heat generating region and a non-heat generating region, The heating unit is bent in the non-heat-generating region. The aerosol generating system according to any one of (9) to (11) above. (13) the heating section is configured by arranging a conductive track on a planar insulating substrate; the heating unit has a heat generating region and a non-heat generating region, the electrical resistance of the conductive tracks arranged in the heat generating region is higher than the electrical resistance of the conductive tracks arranged in the non-heat generating region; The aerosol generating system according to any one of (1) to (12) above. (14) the non-heat-generating region of the heating unit is disposed on the bottom wall of the cylindrical member and on one of the side walls of the cylindrical member that is closer to the bottom wall, the heat generating region of the heating unit is disposed on the side of the side wall of the cylindrical member that is closer to the opening; The aerosol generating system described in (13) above. (15) In the heat generating region of the heating section, the conductive tracks form a parallel circuit. The aerosol generating system according to (13) or (14). (16) the conductive track is folded back at an end of the heat generating region of the heating unit that is farther from the non-heat generating region; The aerosol generating system according to any one of (13) to (15) above. (17) the heating section is configured by arranging a conductive track on a planar insulating substrate; the heating unit has a heat generating region and a non-heat generating region, The conductive track disposed in the heat generating region is made of SUS; the conductive tracks arranged in the non-heat generating region are made of a material containing at least one of copper and nickel; The insulating substrate is made of polyimide. The aerosol generating system according to any one of (1) to (16) above. (18) the aerosol generation system further comprises a heat transfer layer having a predetermined thermal conductivity; the heat transfer layer is wound around the cylindrical member and the heating portion disposed along the outer surface of the side wall of the cylindrical member so as to cover at least a portion of the heating portion; The aerosol generating system according to any one of (1) to (17) above. (19) The heat transfer layer is made of graphite. The aerosol generating system described in (18) above. (20) The aerosol-generating system further comprises the aerosol-generating substrate. The aerosol generating system according to any one of (1) to (19) above. [Explanation of symbols]

[0101] 100 Suction device 111 Power supply section 112 Sensor unit 113 Notification Department 114 Storage section 115 Communications Department 116 Control Unit 150 Stick-type base material 151 Base material part 152 Mouthpiece 30 Heater assembly 32 Top cap 40 Heating section 41 Conductive Track 42 Insulating substrate 43 holes 44 Heat generation area 45 Non-heat-generating area 50 Chambers 52 Aperture 54 Side wall (54a: inner surface, 54b: outer surface, 54c: boundary part) 56 Bottom wall (56a: inner surface, 56b: outer surface) 57a First convex part 57b Second convex part 58 First guide section 58a Tapered surface 60 Holding part 62 pressing portion (62a: inner surface, 62b: outer surface, 62c: boundary portion) 66 Non-pressing portion (66a: inner surface, 66b: outer surface) 67 void 68 Boundary 69 Non-holding part 70 Insulation section 80 Interior Space 90 Heat Transfer Layer

Claims

1. a cylindrical member having an opening through which an aerosol-generating substrate containing an aerosol source can be inserted; A heating unit; Equipped with the cylindrical member has a bottom wall that closes at least a portion of the end opposite the opening, The heating unit is configured in a planar shape, a portion of the heating unit is disposed along an outer surface of the cylindrical member; another part of the heating portion is bent from the bottom wall of the cylindrical member in a direction away from the opening of the cylindrical member, The bottom wall of the cylindrical member is provided with a protrusion that protrudes from an outer surface of the bottom wall, The heating section is provided with a hole, the heating unit is disposed around the cylindrical member with the protrusion of the cylindrical member passing through the hole of the heating unit. Aerosol generation systems.

2. the heating unit has a heat generating region and a non-heat generating region, a part of the heating portion bent in a direction away from the opening of the cylindrical member is the non-heat-generating region; 10. The aerosol generating system of claim 1.

3. a part of the heating portion bent in a direction away from the opening of the cylindrical member is connected to a power supply unit that applies current to the heating portion at an end of the cylindrical member farther from the opening; 3. The aerosol generating system according to claim 1 or 2.

4. the hole of the heating portion is circumscribing the protrusion of the cylindrical member; 10. The aerosol generating system of claim 1.

5. The shape of the hole of the heating portion and the shape of the convex portion of the cylindrical member in a plane perpendicular to the longitudinal direction of the cylindrical member are circular.

5. An aerosol generating system according to any one of claims 1 to 4.

6. the heating unit has a heat generating region and a non-heat generating region, The hole of the heating portion is surrounded by the non-heating region.

6. An aerosol generating system according to any one of claims 1 to 5.

7. a portion of the heating portion is disposed along a portion of the outer surface of the bottom wall of the cylindrical member excluding the protrusion; An aerosol generating system according to any one of claims 1 to 6.

8. the heating portion is bent along a boundary portion between an outer surface of the bottom wall of the tubular member and an outer surface of the side wall of the tubular member, and is disposed along the outer surface of the bottom wall of the tubular member and the outer surface of the side wall of the tubular member. An aerosol generating system according to any one of claims 1 to 7.

9. the side wall of the cylindrical member has a pressing portion having an inner surface and an outer surface formed as a flat surface, the pressing part presses the aerosol-generating substrate inserted into the cylindrical member, the heating portion is bent along a boundary portion between an outer surface of the bottom wall of the cylindrical member and an outer surface of the pressing portion of the cylindrical member, and is disposed along the outer surface of the bottom wall of the cylindrical member and the outer surface of the pressing portion of the cylindrical member.

9. The aerosol generating system according to claim 8.

10. the cylindrical member has two or more pressing portions, the heating portion is bent along a boundary portion between an outer surface of the bottom wall of the tubular member and each of the outer surfaces of the two or more pressing portions of the tubular member, and is arranged along the outer surface of the bottom wall of the tubular member and each of the outer surfaces of the two or more pressing portions of the tubular member.

10. The aerosol generating system according to claim 9.

11. the heating unit has a heat generating region and a non-heat generating region, The heating unit is bent in the non-heat-generating region. An aerosol generating system according to any one of claims 8 to 10.

12. the heating section is configured by arranging a conductive track on a planar insulating substrate; the heating unit has a heat generating region and a non-heat generating region, the electrical resistance of the conductive tracks arranged in the heat generating region is higher than the electrical resistance of the conductive tracks arranged in the non-heat generating region; An aerosol generating system according to any one of claims 1 to 11.

13. the non-heat-generating region of the heating unit is disposed on the bottom wall of the cylindrical member and on one of the side walls of the cylindrical member that is closer to the bottom wall, the heat generating region of the heating unit is disposed on the side of the side wall of the cylindrical member that is closer to the opening; 13. The aerosol generating system of claim 12.

14. In the heat generating region of the heating section, the conductive tracks form a parallel circuit.

14. An aerosol generating system according to claim 12 or 13.

15. the conductive track is folded back at an end of the heat generating region of the heating unit that is farther from the non-heat generating region; An aerosol generating system according to any one of claims 12 to 14.

16. the heating section is configured by arranging a conductive track on a planar insulating substrate; the heating unit has a heat generating region and a non-heat generating region, the conductive track disposed in the heat generating region is made of SUS; the conductive tracks arranged in the non-heat generating region are made of a material containing at least one of copper and nickel; The insulating substrate is made of polyimide. An aerosol generating system according to any one of claims 1 to 15.

17. the aerosol generation system further comprises a heat transfer layer having a predetermined thermal conductivity; the heat transfer layer is wound around the cylindrical member and the heating portion disposed along the outer surface of the side wall of the cylindrical member so as to cover at least a portion of the heating portion; An aerosol generating system according to any one of claims 1 to 16.

18. The heat transfer layer is made of graphite.

18. The aerosol generating system of claim 17.

19. The aerosol-generating system further comprises the aerosol-generating substrate. An aerosol generating system according to any one of claims 1 to 18.

Citation Information

Patent Citations

  • Smoke generator and its assembly method

    JP2018504918A

  • Electric cartridges for electronic cigarettes and methods of manufacturing electric cartridges

    JP2018511337A

  • Heater assembly for cigarette-type electronic cigarette and cigarette-type electronic cigarette including the same

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  • Member for flavor inhalation article, flavor inhalation article, phenol scavenger for flavor inhalation article, and method for producing flavor inhalation article

    WO2021001961A1

  • Smoking system

    WO2021172255A1