Aerosol generating device
The aerosol-generating device addresses the challenge of securely engaging and heating aerosol-generating materials by using a threaded arrangement and heating element, achieving efficient aerosol generation without combustion.
Patent Information
- Application Number
- JP2023577449
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-06-18
- Filing Date
- 2022-06-17
- Publication Date
- 2025-09-10
- Estimated Expiration
- 2042-06-17
AI Technical Summary
Existing smoking articles, such as cigars and cigarettes, burn tobacco, producing smoke, and alternatives like heating devices face challenges in efficiently and securely engaging aerosol-generating materials without combustion.
An aerosol-generating device with a heating zone and a threaded arrangement that threadably engages with an aerosol-generating article, using a heating element that can be heated by a magnetic or resistive method, and an actuation mechanism to rotate the screw arrangement for secure insertion and heating.
The device efficiently generates aerosols from aerosol-generating materials by securely engaging and heating them without combustion, ensuring rapid and reliable aerosolization with enhanced contact surface area and heat distribution.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an aerosol-generating device for generating an aerosol from an aerosol-generating material. The present invention also relates to a system comprising the aerosol-generating device and an article comprising the aerosol-generating material.
[0002] Smoking articles, such as cigars and cigarettes, burn tobacco during use, producing tobacco smoke. Attempts have been made to provide alternatives to these tobacco-burning items by creating products that release compounds without burning. Examples of such products include heating devices that release compounds by heating a material without burning it. The material may be, for example, tobacco or other non-tobacco products, which may or may not contain nicotine. Overview
[0003] According to one aspect, there is provided an aerosol generating device for generating an aerosol from an aerosol-generating material, the aerosol generating device comprising: a heating zone for receiving at least a portion of an article including the aerosol-generating material; a heating arrangement including a heating element arranged to heat the heating zone; and a threading arrangement within the heating zone configured to threadably engage with the article.
[0004] The threaded formation may include internal threads configured to threadably mate with the exterior of the article.
[0005] The threaded formation may include external threads configured to threadably engage the article.
[0006] The heating element may include a threaded arrangement.
[0007] The heating element may define a heating zone.
[0008] The heating element may at least partially surround the heating zone.
[0009] The heating element may form at least a portion of a container that defines the heating zone.
[0010] The heating element may comprise a tubular member and the threaded formation may comprise threads on the inside of the tubular member.
[0011] The heating zone may be defined around the heating element.
[0012] The heating element may project into the heating zone.
[0013] The screw formation may include a shaft and threads thereon.
[0014] The shaft may be tapered.
[0015] The threads may extend from the free end of the shaft.
[0016] The threads may have a constant pitch along the length of the shaft.The threads may have a constant pitch along the length of the shaft.
[0017] The threads may be provided with a thermally conductive material.
[0018] The threads may be heatable by penetration of a changing magnetic field in the heating zone.
[0019] The aerosol generation device may include an actuation mechanism configured to rotate the screw arrangement in the heating zone.
[0020] The actuation mechanism may comprise an actuator.
[0021] The actuator may comprise an electric motor.
[0022] The actuation mechanism may be configured to rotate the threaded arrangement in the heating zone in response to insertion of an article into the heating zone.
[0023] The aerosol generating device may comprise a container defining a heating zone and comprising a threaded arrangement.
[0024] The heating element may project into the heating zone.
[0025] The heating element may have a planar peripheral surface.
[0026] The aerosol generation device may comprise a field generating apparatus including an inductor coil configured to generate a varying magnetic field.
[0027] The heating element may be heatable by penetration of a changing magnetic field in the heating zone.
[0028] The heating element may comprise part of a resistive heating arrangement.
[0029] According to one aspect, a heating element is provided for heating an article containing an aerosol-generating material received in a heating zone of an aerosol-generating device, the heating element comprising a threaded construction configured to threadably engage with the article containing the aerosol-generating material.
[0030] The heating element may comprise a material that is heatable by the penetration of a changing magnetic field.
[0031] The heating element may be a resistive heating element.
[0032] According to another aspect, there is provided a system comprising the aforementioned device and an article including an aerosol-forming material.
[0033] The article may include article threads configured to interact with threaded constructs of the device.
[0034] The article thread of the article may be an internally threaded hole.
[0035] The article threads of the article may be on the outside of the article.
[0036] The article may include a pre-formed hole configured to receive a heating element.
[0037] The thread formation may be configured to engage a surface of the hole.
[0038] The article may include an engagement feature configured to engage with the threaded arrangement.
[0039] The engagement feature may be at least one of a hole, a collar, a shoulder, a ridge, a protrusion, a recess, a lip, a chamfer, an area of increased thickness, an area of reduced thickness, a face, and an edge.
[0040] The thread formation may be configured to engage a relatively resilient engagement feature of the article.
[0041] The thread formation may be configured to engage with a relatively less resilient engagement feature of the article.
[0042] The article may have an exterior of the article, and the thread arrangement may be configured to at least one of deform and expand relative to the exterior of the article when the article is received in the heating zone.
[0043] The threaded arrangement may be configured to compress the article.
[0044] The thread formation may be configured to form a recess on the exterior of the article.
[0045] The article may have an exterior, and the thread formation may be configured to at least one of deform and expand relative to the exterior of the article when the article is received in the heated zone. Insertion of the article may be configured to deform the thread formation.
[0046] The item may be a consumable item.
[0047] The heating element may be detachable from the container. The heating element may be replaceable.
[0048] The heating element may be upstanding from a base. The heating element may have a sharp edge or point at a free end. The heating element may be a pin. The heating element may be configured to pierce an item received in the heating zone.
[0049] The heating element and the vessel may be coaxial.
[0050] The device of this aspect may include one or more or all of the features described above, as appropriate.
[0051] The aerosol generating device may be a non-combustible aerosol generating device.
[0052] The device may be a tobacco heating device, also known as a non-combustion heating device.
[0053] The aerosol-forming material may be a non-liquid aerosol-forming material.
[0054] The article may be sized to be at least partially received within the heating zone.
[0055] According to one aspect, an aerosol-generating device for generating an aerosol from an aerosol-generating material is provided, comprising: a container defining a heating zone configured to receive at least a portion of an article comprising an aerosol-generating material; and a heating element arranged to heat the heating zone.
[0056] According to one aspect, an aerosol generation system is provided that includes an article comprising an aerosol-generating material, an aerosol-generating device for heating the aerosol-generating material, the aerosol-generating device including a heating zone configured to receive at least a portion of the article, and a heating element.
[0057] According to one aspect, an aerosol-generating device for generating an aerosol from an aerosol-generating material is provided, the aerosol-generating device comprising a heating arrangement including a heating element and a thread arrangement configured to threadably engage with an article.
[0058] The aerosol-generating device may further comprise a heating zone for receiving at least a portion of the article comprising the aerosol-generating material. The heating element may be arranged to heat the heating zone.
[0059] The threaded arrangement may be within a heated zone.
[0060] The threaded arrangement may be on the heating element.
[0061] The heating element may comprise a pin or a blade.
[0062] At least a portion of the heating element may be exposed.
[0063] The aerosol generating device may further comprise a housing, and the heating element may protrude from the housing.
[0064] According to one aspect, there is provided an aerosol generation system comprising the aerosol generation device of the aforementioned aspect and an article comprising an aerosol-generating material.
[0065] The article may include article threads configured to interact with threaded constructs of the device.
[0066] The article thread of the article may be an internally threaded hole.
[0067] The article threads of the article may be on the outside of the article.
[0068] The article may include a pre-formed hole configured to receive a heating element.
[0069] The thread formation may be configured to engage one side of the hole.
[0070] The article may include an engagement feature configured to engage with the threaded arrangement.
[0071] The engagement feature may be at least one of a hole, a collar, a shoulder, a ridge, a protrusion, a recess, a lip, a chamfer, an area of increased thickness, an area of reduced thickness, a face, and an edge.
[0072] The thread formation may be configured to engage a relatively resilient engagement feature of the article.
[0073] The thread formation may be configured to engage with a relatively less resilient engagement feature of the article.
[0074] The article may have an exterior of the article, and the thread arrangement may be configured to at least one of deform and expand relative to the exterior of the article when the article is received in the heating zone.
[0075] The threaded arrangement may be configured to compress the article.
[0076] The thread formation may be configured to form a recess on the exterior of the article.
[0077] The article may have an exterior, and the thread formation may be configured to at least one of deform and expand relative to the exterior of the article when the article is received in the heated zone. Insertion of the article may be configured to deform the thread formation.
[0078] The item may be a consumable item.
[0079] The heating element may be replaceable.
[0080] The heating element may be upstanding from a base. The heating element may have a sharp edge or point at a free end. The heating element may be a pin. The heating element may be configured to pierce an item received in the heating zone.
[0081] The heating element and the vessel may be coaxial.
[0082] The aerosol generating device may be a non-combustible aerosol generating device.
[0083] The device may be a tobacco heating device, also known as a non-combustion heating device.
[0084] The aerosol-forming material may be a non-liquid aerosol-forming material.
[0085] According to one aspect, there is provided an aerosol-generating device for generating an aerosol from an aerosol-generating material, comprising: The housing and a heating element protruding and exposed from the housing, the heating element configured to be received within the aerosol product article and to heat the aerosol product article.
[0086] The heating arrangement may comprise a heating element protruding from the housing configured to be received within the aerosol product article.
[0087] The housing may include a base from which the heating element projects.
[0088] The device may include a thread formation configured to threadably mate with the article.
[0089] The heating zone may extend around the exposed heating element and may be configured to at least partially receive an article comprising the aerosol-forming material.
[0090] According to one aspect, there is provided an aerosol generating system comprising an article comprising an aerosol-generating material and an aerosol-generating device for heating the aerosol-generating material as described above.
[0091] The devices of these aspects may include one, more or all of the features described above, as appropriate.
[0092] Embodiments will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]
[0093] [Figure 1] FIG. 1 is a front perspective view of an aerosol generation system having an aerosol generation device and an article inserted into the device. [Figure 2] FIG. 2 is a schematic diagram of the aerosol generation system of FIG. 1. [Figure 3] FIG. 2 is a schematic diagram of the aerosol generation system of FIG. 1 having a screw arrangement. [Figure 3a] 4 is a schematic diagram of an example of an article for use with the aerosol generating system of FIG. 3. [Figure 3b] FIG. 4 is a schematic diagram of an example of an externally threaded article for use with the aerosol generation system of FIG. [Figure 4] FIG. 10 is a schematic diagram of another aerosol generation system in which a threaded arrangement is formed on the inner surface of the container of the device. [Figure 4a] FIG. 6 is a schematic diagram of an article having preformed holes for use with the aerosol generating system of FIG. 4 or FIG. 5. [Figure 5] 2 is a schematic diagram of another aerosol generation system of FIG. 1 in which the internal heating element is threaded. [Figure 5a] FIG. 6 is a schematic diagram of an internally threaded article for use with the aerosol generating system of FIG. 5. [Figure 6] 6 is a schematic diagram of another aerosol generation system according to claim 1, wherein the device according to FIG. 5 comprises an actuation mechanism for rotating at least one of the container and the heating element. [Figure 7] FIG. 10 is a schematic diagram of another aerosol generation system in which the threaded arrangement extends along only a portion of the length of the heating element. [Figure 7a] FIG. 8 is a schematic diagram of an internally threaded article for use with the aerosol generating system of FIG. [Figure 8] FIG. 1 is a schematic diagram of another aerosol generation system. Detailed Description
[0094] As used herein, the term "aerosol-forming material" refers to a material that can generate an aerosol when energized, for example, by heating, irradiation, or any other method. Aerosol-forming materials may be in the form of, for example, a solid, liquid, or gel, which may or may not contain an active substance and / or flavoring material. Aerosol-forming materials may include any plant material, such as any tobacco-containing material, for example, one or more of tobacco, tobacco derivatives, expanded tobacco, reconstituted tobacco, or tobacco substitutes. Aerosol-forming materials may also include other non-tobacco products, which may or may not contain nicotine, depending on the product. Aerosol-forming materials may be in the form of, for example, a solid, liquid, gel, wax, etc. Aerosol-forming materials may also be, for example, a combination or blend of materials. Aerosol-forming materials may also be known as "smoking materials."
[0095] The aerosol-forming material may comprise a binder and an aerosol-forming agent. Optionally, an active agent and / or a filler may also be present. Optionally, a solvent, such as water, may also be present, and one or more other components of the aerosol-forming material may or may not be soluble in the solvent. In some embodiments, the aerosol-forming material is substantially free of plant material. In some embodiments, the aerosol-forming material is substantially free of tobacco.
[0096] The aerosol-forming material may comprise an "amorphous solid." An amorphous solid may be a "monolithic solid." In some embodiments, the amorphous solid may be a dry gel. An amorphous solid is a solid material that can retain some fluid, such as a liquid, within it. In some embodiments, the aerosol-forming material may comprise, for example, about 50, 60, or 70% to about 90, 95, or 100% amorphous solid by weight.
[0097] The aerosol-generating material may comprise an aerosol-generating film. The aerosol-generating film may comprise or be a sheet that may optionally be shredded to form a shredded sheet. The aerosol-generating sheet or shredded sheet may be substantially free of tobacco.
[0098] Devices are known that heat aerosol-generating material, volatilizing at least one component of the aerosol-generating material and typically forming an inhalable aerosol without burning or combusting the aerosol-generating material. Such devices are sometimes described as “aerosol-generating devices,” “aerosol delivery devices,” “non-combustion heating devices,” “tobacco heating product devices,” “tobacco heating devices,” or similar names. Similarly, so-called e-cigarette devices exist that typically vaporize aerosol-generating material in liquid form, which may or may not contain nicotine. The aerosol-generating material may be in the form of a rod, cartridge, cassette, or the like that can be inserted into the device, or may be provided as part of a rod, cartridge, cassette, or the like that can be inserted into the device. A heater that heats and volatilizes the aerosol-generating material may be provided as a “permanent” part of the device.
[0099] The aerosol-generating device can accept an article comprising an aerosol-generating material for heating. An "article" in this context is a component that includes or contains the aerosol-generating material during use, which is heated to volatilize the aerosol-generating material and, optionally, other components used. A user may insert the article into the aerosol delivery device before the article is heated to produce an aerosol that the user then inhales. The article may be of a predetermined or specific size, for example, configured to be placed within a heating chamber of the device sized to accept the article.
[0100] 1 shows an example of an aerosol-generating system 100. The system 100 includes an aerosol-generating device 101 for generating an aerosol from an aerosol-generating material and a replaceable item 110 comprising the aerosol-generating material. The device 101 may be used to heat the replaceable item 110 comprising the aerosol-generating material to generate an aerosol or other inhalable material that can be inhaled by a user of the device 101.
[0101] The device 101 comprises a housing 103 that encloses and houses the various components of the device 101. The housing 103 is elongated. The device 101 has an opening 104 at one end through which an item 110 can be inserted to be heated by the device 101. The item 110 may be fully or partially inserted into the device 101 to be heated by the device 101.
[0102] In various embodiments, device 101 does not include an opening. In such a configuration, device 101 or a component of device 101 may be partially received within at least a portion of article 110.
[0103] The device 101 may include a user-operable control element 106, such as a button or switch, that when operated, e.g., pressed, operates the device 101. For example, a user may activate the device 101 by pressing the switch 106.
[0104] The device 101 defines a longitudinal axis 102 along which the article 110 may extend when inserted into the device 101. The opening 104 is aligned with the longitudinal axis 102.
[0105] Figure 2 is a schematic diagram of the aerosol generation system 100 of Figure 1, showing various components of the device 101. It will be understood that the device 101 may include other components not shown in Figure 2, and that some components shown in Figure 2 may not be present in some embodiments.
[0106] As shown in FIG. 2 , device 101 includes an apparatus 200 for heating an aerosol-generating material. Apparatus 200 includes a heating assembly 201, a controller (control circuit) 202, and a power supply 204. Apparatus 200 includes a body assembly 210, which may include a chassis and other components that form part of the device. Heating assembly 201 is configured to heat the aerosol-generating material of an article 110 inserted within device 101 so that an aerosol is generated from the aerosol-generating material. Power supply 204 provides power to heating assembly 201, which converts the provided electrical energy into thermal energy to heat the aerosol-generating material.
[0107] The power source 204 may be, for example, a battery, such as a rechargeable or non-rechargeable battery. Examples of suitable batteries include, for example, lithium batteries (such as lithium-ion batteries), nickel batteries (such as nickel-cadmium batteries), and alkaline batteries.
[0108] Power supply 204 may be electrically coupled to heating assembly 201 to provide power as needed to heat the aerosol-generating material under the control of controller 202. Control circuitry 202 may be configured to activate and deactivate heating assembly 201 based on a user operating control element 106. For example, controller 202 may activate heating assembly 201 in response to a user operating switch 106.
[0109] The end of device 101 closest to opening 104 may be known as the proximal (mouth) end 107 of device 101, as it is closest to the user's mouth during use. In use, a user inserts article 110 into opening 104, operates user control 106 to initiate heating of the aerosol-generating material, and inhales the aerosol generated by the device. This causes the aerosol to flow along a flow path through article 110 toward the proximal end of device 101.
[0110] The other end of the device furthest from opening 104 may be known as the distal end 108 of device 101, as it is the end farthest from a user's mouth during use. When a user inhales the aerosol produced by the device, the aerosol flows in a direction toward the proximal end of device 101. The terms proximal and distal as applied to features of device 101 are explained by reference to the relative orientation of such features with respect to one another in the proximal-distal direction along axis 102.
[0111] The heating assembly 201 may include various components for heating the aerosol-generating material of the article 110, for example, via an induction heating process or a resistance heating process. Induction heating is the process of heating an electrically conductive heating element (such as a susceptor) via electromagnetic induction. The induction heating assembly may include an induction element, such as one or more inductor coils, and a device for passing a changing current, such as an alternating current, through the induction element. The changing current in the induction element generates a changing magnetic field. The changing magnetic field penetrates a susceptor appropriately positioned relative to the induction element and generates eddy currents within the susceptor. Because the susceptor has an electrical resistance to the eddy currents, the flow of eddy currents against this resistance heats the susceptor via Joule heating. If the susceptor comprises a ferromagnetic material, such as iron, nickel, or cobalt, heat can also be generated by magnetic hysteresis losses in the susceptor, i.e., by changing the orientation of the magnetic dipoles of the magnetic material as they align with the changing magnetic field. In comparison to heating by conduction, for example, induction heating allows for rapid heating because heat is generated inside the susceptor. Furthermore, no physical contact is required between the inductive element and the susceptor, allowing for greater flexibility in construction and application. Instead, resistive heating utilizes the Joule heating effect that arises from the electrical resistance of a material in response to the application of an electric current directly through the resistance.
[0112] The apparatus 200 includes a heating chamber 211 configured and dimensioned to receive the item 110 to be heated. The heating chamber 211 defines a heating zone 215. In this example, the item 110 is generally cylindrical, and the heating chamber 211 is correspondingly generally cylindrical in shape. However, other shapes are possible. The heating chamber 211 is formed by a container 212. The container 212 includes an end wall 213 and a peripheral wall 214. The end wall 213 serves as a base for the container 212. In an embodiment, the container 212 is a unitary component. As used herein, the term "unitary component" is intended to mean that features are formed together without any joints defined between the features. In other embodiments, the container 212 comprises two or more components.
[0113] The heating chamber 211 is defined by the inner surface of a container 212. The container 212 functions as a support member. The container 212 comprises a generally tubular member. The container 212 extends circumferentially along and is substantially coaxial with the longitudinal axis 102 of the device 101. However, other shapes are possible. The container 212 (and associated heating zone 215) is open at its proximal end so that an item 110 inserted into the opening 104 of the device 101 can be received by the heating chamber 211 through the opening 104. The container 212 is closed at its distal end by an end wall 213. The container 212 may comprise one or more conduits that form part of the air passage. The distal end of the item 110 may be positioned adjacent to or engaged with the end of the heating chamber 211 during use. Air may pass through one or more conduits that form part of the air passage, enter the heating chamber 211 , and flow through the item 110 towards the proximal end of the device 101 .
[0114] The container 212 may be formed from a thermally insulating material. For example, the container 212 may be formed from a plastic such as polyetheretherketone (PEEK). Other suitable materials are possible. The container 212 may be formed from such a material to ensure that the heating assembly 201 remains rigid / solid during operation. The use of a non-metallic material for the container 212 can help limit heating of other components of the device 101. The container 212 may be formed from a rigid material to help support the other components.
[0115] Other configurations for the vessel 212 are possible. For example, in one embodiment, the end wall 213 is defined by a portion of the heating assembly 201. In embodiments, the vessel 212 comprises a material that can be heated by the penetration of a changing magnetic field. In some embodiments, the vessel 212 comprises a material that can be heated by resistive Joule heating.
[0116] 3, the heating assembly 201 may include a heating element 320 disposed around the heating zone 215. In such a configuration, the heating element 320 forms the container 212. The heating element 320 defines the peripheral wall 214. The heating element 320 is configured to heat the heating zone 215. The heating zone 215 is defined by a heating chamber 211. In an embodiment, the heating chamber 211 defines a portion of the heating zone 215 or the extent of the heating zone 215.
[0117] The heating zone 215 is an area, or volume, in which an item may be received for heating by the device. Thus, the heating zone 215 is at least partially defined by the heating assembly 201. The heating zone 215 is the space adjacent to the heating element 220. In embodiments comprising a heating chamber 211 as shown in FIG. 3, the heating chamber 211 bounds the heating zone 215. That is, the heating element 320 defines the heating zone 215. In embodiments, the heating element 220 defines the heating zone without the heating chamber.
[0118] As described below, for example with reference to FIG. 8 , in various embodiments, the apparatus 200 does not include a heating chamber. The heating element protrudes from the housing 103. In such embodiments, the container and heating chamber may be omitted, and the heating element may be surrounded by free space. When an item is placed on the heating element, the heating element, or at least a portion of the heating element, is not surrounded by a peripheral member, such as a peripheral wall of the device. The term "heating zone" is understood to include the space surrounding the heating element. That is, the heating zone may not be bounded or surrounded by components of the device.
[0119] The heating element 320 is heatable to heat the heating zone 215. The heating element 320 may be an induction heating element or a resistance heating element. That is, the heating element 320 may comprise a susceptor that can be heated by the penetration of a changing magnetic field, or a resistive material that can be heated by directly passing an electric current from a power source. If the heating element 320 comprises a susceptor, the susceptor comprises a conductive material suitable for heating by electromagnetic induction. For example, the susceptor may be formed from carbon steel. It will be understood that other suitable materials may be used, such as ferromagnetic materials such as iron, nickel, or cobalt.
[0120] As shown in FIG. 2 , the heating assembly 201 includes a magnetic field generator 250. The magnetic field generator 250 is configured to generate one or more varying magnetic fields that penetrate the heating element 320 to heat the heating element 320. The magnetic field generator 250 includes an inductor coil arrangement 251. The inductor coil arrangement includes an inductor coil 252 that functions as an inductor element. The inductor coil 252 may be a helical coil, although other arrangements are contemplated. In embodiments, the inductor coil arrangement 251 includes two or more inductor coils. In embodiments, the two or more inductor coils may be positioned adjacent to each other and coaxially aligned along an axis.
[0121] In some examples, the magnetic field generating device 250 is configured, in use, to heat the heating element 320 to a temperature of about 200° C. to about 350° C., such as about 240° C. to about 300° C. or about 250° C. to about 280° C. In examples where the heating element is a resistive heating element, a similar or identical temperature may be reached by resistive heating within the heating element.
[0122] Inductor coil 252 may be a helical coil comprising a conductive material such as copper. The coil may be formed from electrical wire, such as Litz wire, wound in a helical shape around a support member (not shown). The support member may be formed by the container 212 or other component. In embodiments, the support member is omitted. The support member is tubular. Coil 252 defines a generally tubular shape. The inductor coil has a generally circular outer shape. In other embodiments, the inductor coil may have a different shape, such as a generally square, rectangular, or oval shape. The width of the coil may increase or decrease along its length.
[0123] Other types of inductor coils, such as planar spiral coils, may also be used. A spiral coil may define an elongated inductor section for receiving a susceptor, providing an elongated length of the susceptor that can be received in the elongated inductor section. The length of the susceptor exposed to the varying magnetic field may be maximized. Using a spiral coil configuration to provide an enclosed inductor section can help concentrate the magnetic flux of the magnetic field.
[0124] Litz wire comprises multiple individual wires that are individually insulated and twisted together to form a single wire. Litz wire is designed to reduce skin effect losses in the conductor. Other types of wire, such as solid wire, may also be used. The configuration of the helical inductor coil may vary along its axial length. For example, the or each inductor coil may have substantially the same or different values of inductance, axial length, radius, pitch, number of turns, etc.
[0125] In embodiments, the heating element forms part of a heating arrangement. The heating arrangement comprises a heating element protruding from a base. In other embodiments, the heating element is within the article and the heating arrangement comprises a protruding member protruding from the base. In embodiments, the heating element or protruding member comprises a magnetic field generating device configured to generate a varying magnetic field, including an inductor coil. In embodiments, the heating arrangement is an induction heating arrangement. In embodiments, the heating arrangement is a resistive heating arrangement.
[0126] 4 and 5, the heating element 420 extends into the heating zone 215. The heating element 420 functions as a protruding element and protrudes into the heating zone 215. The heating element 420 stands upright from the base.
[0127] In an embodiment, the base is formed by a feature other than the end wall 213 of the container.
[0128] The heating element 420 is spaced from the peripheral wall 214. The heating assembly 201 is configured so that the heating element 420 extends into the distal end of the article 110 when the article 110 is received by the heating chamber 211. The heating element 420 is disposed within the article 110 during use. The heating element 420 is configured to heat the aerosol-forming material of the article 110 from the inside, and for this reason is referred to as an internal heating element.
[0129] The heating element 420 extends from a distal end of the heating chamber 211 into the heating chamber 211 along the longitudinal axis 102 of the device (axially). In embodiments, the heating element 420 extends into the heating chamber 211 away from the axis 102. The heating element 420 may be off-axis or non-parallel to the axis 102. While one heating element 420 is shown, it will be understood that in embodiments, the heating assembly 201 comprises multiple heating elements 420. Such heating elements in embodiments are spaced apart from one another but parallel to one another.
[0130] When the heating element 320, 420 of any described embodiment utilizes heating via magnetic susceptibility, the inductor coil 252 may be disposed external to the vessel 212. The inductor coil may surround the heating zone 215. The helical inductor coil may extend around at least a portion of the heating element 320, 420 that functions as a susceptor. The helical inductor coil is configured to generate a changing magnetic field that penetrates the heating element 320, 420. The helical inductor coil is disposed coaxially with the heating chamber 211 and the longitudinal axis 102.
[0131] Although the illustrated embodiment shows a device including either heating elements 320 disposed around the heating zone 215 or at least one heating element 420 disposed within the heating zone 215, any described embodiment may utilize both heating elements 320 surrounding the heating zone 215 and one or more heating elements 420 within the heating zone 215.
[0132] The heating element 420 protrudes within the heating zone 215 and is received by the article 110. FIG. 2 shows the article 110 received within the device 101. The article 110 is sized to be received by the container 212. To allow insertion of the article 110 into the container 212, the outer dimensions of the article 110 perpendicular to its longitudinal axis substantially match the inner dimensions of the chamber 211 perpendicular to the longitudinal axis 102 of the device 101. In embodiments, a gap 216 is defined between the exterior 111 of the article 110 and the interior 217 of the container 212. The gap 216 can function as an air passageway along at least a portion of the axial length of the chamber 211. The insertion end 112 of the article 110 is positioned adjacent to the base of the container 212.
[0133] Figure 2 illustrates the basic structure of device 101. Certain features, such as threaded arrangements, are omitted from this figure because various possible configurations of those features are discussed with respect to the embodiments shown in Figures 3-5. However, Figure 2 generally illustrates article 110 positioned within heating zone 215 of device 101. This figure is in an in-use configuration, where the aerosol-generating material of the article may be heated and a user may inhale the aerosolized material from the article / device.
[0134] FIG. 3 illustrates the construction of device 101. As can be seen, container 212 includes a thread construction 350. In this embodiment, thread construction 350 includes threads 351 disposed on the interior surface of container 212. The threads are helical. The pitch of thread construction 350 is exaggerated in this illustration, such that the entire thread construction 350 includes approximately two or three turns along the length of container 212, although any particular pitch or number of turns is contemplated for any thread construction described herein. Generally, a larger pitch along the length of the thread construction, and therefore a smaller number of threads, minimizes the number of turns required for insertion into the device. In some embodiments, the thread construction has between one and five turns. In FIG. 3, heating element 320 is positioned surrounding heating zone 215, meaning that article 110 is heated from the outside. While the thread formation 350 in FIG. 3 extends along the length of the vessel 212, in embodiments, the thread formation 350 may extend along only a portion of the length of the vessel 212 or heating element 320.
[0135] The thread formation 350 in embodiments may be a component that forms part of the heating element 320 or is located in close proximity to the heating element 320. When the thread formation 350 is part of the heating element 320 or is otherwise thermally conductive, the threads 351 of the thread formation 350 increase the surface area of the article 110 that is in contact with or in close proximity to the heating element 320. This helps increase the heating rate of the article 110 during use, resulting in more rapid aerosolization of material within the article 110, a greater aerosolization effect, and a greater overall efficiency of the device. Additionally, the provision of the thread formation ensures that the article 110 can be simply and reliably inserted into the device 101.
[0136] FIG. 3 a shows an example of an article 110 for use with any embodiment of device 101 described herein. As can be seen, article 110 is generally cylindrical in shape, although other shapes are contemplated. Article 110 in FIG. 3 a is generally flexible to the extent that threads 351 deform and / or expand article 110 when fed into heated zone 215 and engaged with threaded arrangement 350, such that threads 315 increase the contact surface area of article 110 and its aerosol-generating material. As discussed above, this increased contact surface area enhances the aerosolization effectiveness of device 101.
[0137] 3b shows an example of an article 110 for use with the device 101 of FIG. 3, or any other contemplated device 101 further including an internally threaded container 212. As can be seen, the article 110 is provided with external threads 353. The external threads 353 are configured to mate with thread formations 350 located on the interior surface of the container 212 so that the article 110 may be more easily and accurately threaded into the heating zone 215 of the device 101 during use. Less flexible articles may be used with such external threads. The use of external threads also provides for more secure placement of the article within the device and also increases the contact surface area, or thermal path, between the heating element 320 and the article 110.
[0138] FIG. 4 illustrates a further embodiment of the present invention. In this embodiment, container 212 is again provided with a thread formation 350 on its interior surface. Thread formation 350 is substantially identical to formation 350 described in connection with FIG. 3. However, in this embodiment, container 212 and thread formation 350 do not include heating material. Article 110 of both FIG. 3a and FIG. 3b may be used with device 101 of FIG. 4. Device 101 of FIG. 4 differs from device 101 of FIG. 3 in that heating element 420 is instead located within heating zone 215.
[0139] The heating element 420 defines the heating zone 215. The container 212 defines the heating zone 215.
[0140] The heating element 420 is in the form of a pin and is configured to penetrate the article 110 during use. As can be seen, the free end 222 of the heating element 420 is spiked to facilitate insertion of the element 420 into the article 110. In this embodiment, the heating element is a straight pin. The exterior of the pin is cylindrical. The heating element 420 does not include a threaded formation. Downward pressure from the article 110 on the heating element 420 penetrates the article 110 and then becomes embedded in the article 110. The heating element 420 is configured to provide heat by induction or resistive heating to heat the contents of the article 110 from the inside, thereby aerosolizing the aerosol-generating material within the article 110. In this embodiment, the threaded formation 350 on the interior surface of the container not only provides more secure placement of the article 110 in the heating zone 215, but also helps provide the force necessary to penetrate the article 110 with the heating element 420. The rotational motion of the item 110 is converted by the threaded arrangement 350 into linear motion that moves the item 110 onto the pin of the heating element 420. This, compared to known devices, prevents breakage or damage to the item 110 that can be caused by excessive direct linear downward force exerted on the item 110 by a user pressing the item 110 onto the heating element 420.
[0141] 3 and 4. That is, one embodiment of device 101 having threaded arrangement 350 includes both heating elements 320 disposed around heating zone 215 and heating elements 420 protruding into heating zone 215. Any embodiment having an internal heating element 420 may include multiple internal heating elements 420. Including both external and internal heating elements enhances the heating of article 110, including providing more rapid heating and better heat distribution in article 110.
[0142] FIG. 4a illustrates an example of an article 110 for use with any embodiment of the present invention, particularly the embodiment of FIGS. 4 and 5, which includes an internal pin-shaped heating element 420 protruding into the heating zone 215. The article 110 shown in this figure includes an internal bore 113 having an internal bore surface 114. The bore 113 is preformed in the article 110. In this embodiment, the bore 113 is formed by the tubular portion of the article 110. In this embodiment, the bore 113 extends partially along the longitudinal axis of the article. The bore 113 has a closed end 115. The heating element 420 is sized to be received in the bore 113. The heating element 420 and the bore 113 are complementarily sized. The bore 113 generally facilitates insertion of the pin heating element 420 into the article 110. The inner surface 114 of the bore is configured to make intimate contact with the heating element to maximize heat transfer between the heating element 420 and the article 110.
[0143] In embodiments, the outer dimensions of the heating element are larger than the outer dimensions of the hole. In such a configuration, the heating element is configured to deform and / or expand the article 110 when inserted within the article 110. To facilitate such deformation and / or expansion, the internal heating element 420 is configured to penetrate the article 110 when inserted within the device 101. In such embodiments, the free end 222 of the heating element 420 comprises a sharp edge or point. In embodiments, the free end 222 of the heating element 420 comprises a sharp edge, point, or other guiding feature to aid in positioning the heating element 420 within the article 110.
[0144] It is envisioned that the article 110 shown in FIG. 4 a may be used with any of the embodiments described herein that include such an internal heating element 420 .
[0145] FIG. 5 illustrates a further embodiment of the present invention. In this embodiment, an internal pin heating element 420 is provided. The heating element 420 is provided with a thread formation 450 on its outer surface 223. The thread formation 450 may form part of the heating element 420 or may be otherwise thermally conductive. Similar to the thread formation 350 of the previous embodiment, the thread formation 450 increases the contact surface area, or thermal path, between the heating element 420 and the item 110, thereby enhancing the heating effect of the heating element 420 on the item 110. The heating element 420 is formed with a shaft and threads on the shaft. In an embodiment, the shaft is tapered. In an embodiment, the shaft is tapered toward the free end of the heating element. In an embodiment, the threads 450 extend toward the free end of the heating element.
[0146] The heating element 420 may further include a spike on its free end 222 to facilitate insertion. In use, the article 110 is rotated on the thread arrangement 450 of the heating element 420, allowing the heating element 420 to penetrate the article 110. Although not shown, in any of the described embodiments, the heating element 320 may also be positioned around the heating zone 215 to enhance heating distribution and power. Additionally, although not shown in any of the figures, any of the embodiments of the present invention may include a male-threaded pin heating element 420 as shown in FIG. 5 and a female-threaded container 212 further defining the heating zone as shown in FIG. 3. The combination of these thread arrangements of the container 212 and heating element 420 further enhances secure fit, ease of insertion, improved heating effectiveness, and overall device efficiency associated with each individual embodiment.
[0147] FIG. 5a shows an example of an article 110 for use with any embodiment of the present invention. The article 110 of FIG. 5a is substantially identical to the article 110 of FIG. 4a, except that the hole 113 of the article 110 of FIG. 5a is provided with a thread formation 550. Providing the hole 113 with the thread formation 550 that aligns with the thread formation 450 on the outer surface of the internal heating element 420 further improves ease of insertion of the heating element 420 into the article 110 and further increases the contact surface area, or thermal path, between the heating element 420 and the article 110. Compared to an article 110 without a hole 113 or with a hole 113 with straight sides, the article 110 of FIG. 5a with the thread formation 550 may be employed to allow a less flexible article 110 to be used in a device 101 as described in the present invention.
[0148] Another embodiment is shown in Figure 7. The embodiment of Figure 7 corresponds generally to the embodiment of Figure 5, except that the thread formation 450 extends partially along the heating element 420. A portion of the axial length of the heating element 420 does not include the thread formation.
[0149] 7 , the thread formation 450 is positioned adjacent to the base of the heating element 420. This positioning allows the heating element 420 to be in intimate contact with the hole 113 in the article, since the hole 113 does not need to accommodate the thread formation 450 to travel through the hole 113. That is, the portion of the heating element 420 not including the thread formation 450 may be in contact with the interior hole surface 114. In embodiments, the thread formation 450 may be positioned partway along the heating element 420 or adjacent to the proximal end of the heating element 420. Similar to the thread formation 350 in the previous embodiment, the thread formation 450 increases the contact surface area, or thermal path, between the heating element 420 and the article 110, thereby enhancing the heating effect of the heating element 420 on the article 110.
[0150] The heating element 420 has a shaft and threads formed thereon. In an embodiment, the shaft is tapered. In an embodiment, the shaft tapers toward the free end of the heating element. In this embodiment, the number of full turns an item must make to engage the threads during insertion into the device is reduced, thereby facilitating user interaction. The complexity and / or weight of the device may also be reduced compared to embodiments in which the threads extend the entire length of the heating element or container, while still providing a secure engagement between the item and the device.
[0151] Figure 7a shows an example of an article 110 for use with any embodiment of the present invention. The article 110 of Figure 7a is substantially identical to the article 110 of Figure 4a, except that the thread formation 550 extends only partway along the hole 113 of the article 110. The article 110 of Figure 7a may be used with the aerosol generation device 101 of Figure 7.
[0152] As mentioned above, embodiments are contemplated in which the thread formation 350 extends partially along the vessel 212. For example, the embodiments of Figures 3 and 4 may include a thread formation that extends partially along the vessel. That is, a portion of the axial length of the vessel 212 may not include the thread formation 350. Similar to the embodiment of Figure 7, the thread formation 350 may be located adjacent to the base of the heating vessel 212. In embodiments, the thread formation 350 may be located partway along the vessel 212 or adjacent to the proximal end of the vessel 212.
[0153] Figure 8 shows another embodiment. The embodiment of Figure 8 corresponds to the embodiment of Figure 5, except that the heating element 420 protrudes from the housing 103. In such an embodiment, the device does not include a container in which the heating element is received, i.e., the heating zone 215 is not surrounded or bounded by any other components.
[0154] The housing 103 defines a base 213 from which a heating element 220 projects. The heating element 220 stands upright from the base 213. The heating element 220 is configured to receive at least a portion of the item 110.
[0155] The heating element 420 is exposed. The term "exposed" is understood to mean that a portion of a feature is not surrounded by other features such that the feature extends beyond the outer extent. The heating element 220 is not received in a heating chamber. In the device of FIG. 2A, the heating element extends beyond the outer extent of the device's housing. In the embodiment of FIG. 8, the entire heating element 420 protruding from the base is unenclosed. In embodiments, a majority of the heating element 220 is exposed. In such embodiments, a small portion of the heating element extends within the outer extent of the device's housing. Optionally, at least 80%, optionally 60%, and optionally 50% of the heating element 220 is exposed.
[0156] In embodiments, the base may include a recess. The heating element 220 in such embodiments may protrude from the recess. The end of the article may extend into the recess. The thread formation 350 may be within the recess. For example, in embodiments, the thread formation is on a sidewall of the recess. Similar to the thread formation 350 in the previous embodiment, the thread formation 450 increases the contact surface area, or thermal path, between the heating element 420 and the article 110, thereby enhancing the heating effect of the heating element 420 on the article 110. The heating element 420 has a shaft and threads formed thereon. In embodiments, the shaft is tapered. In embodiments, the shaft is tapered toward the free end of the heating element.
[0157] In embodiments, a majority of the heating element 420 is exposed. In such embodiments, a small portion of the heating element extends within the exterior of the device's housing. Optionally, at least 80%, optionally 60%, and optionally 50% of the heating element 220 is exposed.
[0158] In an embodiment, the heating arrangement is an inductive heating arrangement. An induction coil may extend into the heating element 420. In an embodiment, the heating arrangement is a resistive heating arrangement.
[0159] Figure 8 also shows an article 110 for use with any of the embodiments described herein. The article 110 in Figure 8 is substantially identical to the article 110 in Figure 4a. The article 110 in Figure 8 may be used with the aerosol generating device 101 in Figure 8.
[0160] Any combination of the aforementioned features for each embodiment is contemplated, such as the external and internal heating elements 320 and 420, the thread formations 350 and 450 on the heating elements, the internal and external thread formations 353 and 550 of the article, and / or the straight-sided internal bore 113 of the article.
[0161] Although the heating elements 320 and 420 and the thread formations 350 and 450 thereon are generally depicted as having a constant diameter, in some embodiments, the heating elements may be tapered along their length (along the longitudinal axis 102). A tapered internal pin heating element 420 can further aid in insertion of the heating element 420 into the article 110 during use.
[0162] In any embodiment comprising a heating element 420 with an externally threaded arrangement 450 within the heating chamber 215, the device 101 may further comprise manual or motorized means for rotating the heating element 420 and / or the container 212, along with the threaded arrangement 350, 450, relative to the heating zone 215 and the inserted article. The heating element 420 and / or the threaded arrangement 450 may be configured to rotate automatically upon insertion of the article 110, such as by sensing pressure exerted by the article 110 on the device 101. Motorized rotation of the threaded arrangement 450 and / or the heating element 420 via an included actuation mechanism assists the user in moving the article 110 over the heating element 450 in the heating zone 215.
[0163] 6 illustrates an embodiment of device 101 including actuation mechanism 600. As described above, actuation mechanism 600 may be configured to drive rotation of heating element 420 and / or container 212 with threaded arrangements 350, 450 relative to heating zone 215. Actuation mechanism 600 may be powered by power source 204 and may be activated via a switch or automatically upon detection / insertion of item 110 in heating zone 215. Because actuation mechanism 600 may be configured to rotate one or both of container 212 and heating element 420, it may be included in any of the embodiments described herein.
[0164] In some embodiments described above, the heating element is an induction heating element. In other embodiments, other types of heating elements, such as resistive heating, are used. The configuration of the device is generally as described above, and therefore will not be described in detail. In such an arrangement, the heating assembly 201 comprises a resistive heat generating device including components for heating the heating element via a resistive heating process. In this case, an electric current is applied directly to the resistive heating element, and the resulting current flow in the heating element heats the heating element via Joule heating. The resistive heating element comprises a resistive material configured to generate heat when a suitable electric current flows through it, and the heating assembly 201 comprises electrical contacts for supplying the electric current to the resistive material.
[0165] In embodiments, the heating element forms the resistive heating component itself, hi embodiments, the resistive heating component transfers heat to the heating element, for example by conduction.
[0166] The above-described embodiments should be understood as illustrative examples of the present invention. Further embodiments of the present invention are contemplated. It should be understood that any feature described in connection with any one embodiment may be used alone or in combination with other described features, and may also be used in combination with one or more features of any other embodiment or any combination of other embodiments. Furthermore, equivalents and modifications not described above may also be employed without departing from the scope of the present invention, as defined in the appended claims.
Claims
1. 1. An aerosol-generating device for generating an aerosol from an aerosol-generating material, comprising: a heating zone for receiving at least a portion of an article including an aerosol-forming material, the article configured to be partially inserted into the device for heating; a heating arrangement, a heating element arranged to heat the heating zone; a threaded arrangement in the heated zone configured to threadably engage the article, the threaded arrangement converting rotational motion of the article into linear motion; and a heating arrangement comprising: An aerosol generating device comprising:
2. The aerosol generation device according to claim 1 , wherein the threaded arrangement comprises an internal thread arranged to threadably engage with the exterior of the article.
3. The aerosol generation device according to claim 1 , wherein the screw formation comprises an external thread arranged to threadably engage with the article.
4. The aerosol generation device according to claim 1 , wherein the heating element comprises the screw arrangement.
5. The aerosol generating device according to claim 4 , wherein the heating element at least partially surrounds the heating zone.
6. 6. The aerosol generating device according to claim 5, wherein the heating element forms at least a part of a container that defines the heating zone.
7. The aerosol generation device of claim 6, wherein the heating element comprises a tubular member and the screw arrangement comprises a thread on the inside of the tubular member.
8. The aerosol generation device according to claim 1 , comprising an actuation mechanism configured to rotate the screw arrangement in the heating zone.
9. A heating element for heating an article containing an aerosol-generating material, which is received in a heating zone of an aerosol-generating device, the article being configured to be partially inserted into the device for heating, the heating element having a threaded arrangement arranged to threadably engage with the article containing the aerosol-generating material, the threaded arrangement converting rotational motion of the article into linear motion.
10. 1. A system comprising an aerosol-generating device for generating an aerosol from an aerosol-generating material, the system comprising: an article comprising an aerosol-forming material; device, a heating zone for receiving at least a portion of an article including an aerosol-forming material, the article configured to be partially inserted into the device for heating; a heating arrangement, a heating element arranged to heat the heating zone; a threaded arrangement in the heated zone configured to threadably engage the article, the threaded arrangement converting rotational motion of the article into linear motion; and a heating arrangement comprising: A device comprising:
11. The system of claim 10 , wherein the article comprises article threads configured to interact with the threaded construct of the device.
12. The system of claim 10 , wherein the article thread of the article is an internally threaded hole.
13. The system of claim 11 , wherein the article threads of the article are on the outside of the article.
14. 1. An aerosol-generating device for generating an aerosol from an aerosol-generating material, comprising: a heating arrangement, A heating element; a threaded arrangement configured to threadably engage an article, the article being configured to be partially inserted into the device for heating, the threaded arrangement converting rotational motion of the article into linear motion; and 1. An aerosol generating device comprising a heating arrangement comprising:
15. 15. The aerosol generating device according to claim 14, comprising a heating zone for receiving at least a portion of an article comprising an aerosol-generating material, the heating element being positioned to heat the heating zone.
16. The aerosol generating device according to claim 14 , wherein the screw formation is on the heating element.
17. An aerosol generating system comprising the aerosol generating device of claim 14 and an article containing an aerosol-generating material.
18. 18. The aerosol generation system of claim 17, wherein the article comprises article threads configured to interact with the threaded arrangement of the device.
19. 19. The aerosol generation system of claim 18, wherein the article thread of the article is an internally threaded hole.
20. 19. The aerosol generation system of claim 18, wherein the article threads of the article are on the outside of the article.
Citation Information
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