Aerosol supply device
The non-combustible aerosol supply device with a separable coil and housing configuration addresses the inefficiencies of combustion-based systems by using a magnetic field generator for efficient aerosol generation, ensuring easy access and reduced consumable damage.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-12-19
- Publication Date
- 2026-04-03
AI Technical Summary
Existing aerosol generation devices often rely on combustion, which is inefficient and can produce harmful byproducts, and there is a need for a non-combustible system that efficiently generates aerosols from aerosol-generating materials.
A non-combustible aerosol supply device with a separable coil and housing configuration, featuring a magnetic field generator and a heating assembly, allows for easy access to the heating zone and efficient aerosol generation using a fluctuating magnetic field.
The device provides efficient aerosol generation without combustion, offering user-friendly access to the heating zone and minimizing the risk of damage to consumables during insertion.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention relates to an aerosol supply device for generating an aerosol from an aerosol generating material. The present invention also relates to a system comprising the aerosol supply device and an article containing the aerosol generating material.
Background Art
[0002] Methods and devices for extracting compounds from materials have long been used to provide users with the comfort or medical benefits of inhaling such compounds. Attempts have been made to provide products that release compounds without combustion. Examples of such products include heating devices that release compounds by heating the material rather than burning it. The material may contain, for example, nicotine.
Summary of the Invention
[0003] According to some embodiments described herein, an aerosol supply device for generating an aerosol from an aerosol generating material, comprising a heating zone for receiving at least a portion of an article containing the aerosol generating material, and a magnetic field generator configured to generate a variable magnetic field, comprising a coil at least partially surrounding the heating zone, and a heating assembly, wherein the coil is separable along a joint, is provided.
[0004] The coil defines a longitudinal axis. The coil may be separable in a direction perpendicular to the longitudinal axis. The coil may be separable in a direction along the longitudinal axis.
[0005] The coil may be configured to be separable into a first coil portion and a second coil portion.
[0006] The first portion may be movable relative to the second portion to provide access to the heating zone.
[0007] The first coil section and the second coil section may be electrically connected in the operating state.
[0008] The first coil portion and the second coil portion may form a single integrated coil in the operating state.
[0009] The first and second coil sections may be electrically disconnected when not in operation.
[0010] When the housing is in a closed configuration, the second coil portion may interact with the first coil portion to form a closed coil configuration surrounding the heating zone.
[0011] The coil may be separable into first and second coil portions to provide access to the heating zone when not in operation.
[0012] The joint may extend in the longitudinal direction of the coil.
[0013] The aerosol supply device may also be provided with a housing, which is separable into a first housing portion and a second housing portion.
[0014] The first housing portion and the second housing portion may be movable relative to each other to provide access to the heating zone.
[0015] The housing may have a clamshell-type opening for the heating zone.
[0016] The first coil portion may be located in the first housing portion, and the second coil portion may be located in the second housing portion.
[0017] The first housing portion may be movable relative to the second housing portion by a hinge mechanism.
[0018] The first housing portion may be configured to pivot with respect to the second housing portion about a line parallel to the longitudinal axis of the device.
[0019] The first housing portion may be configured to pivot with respect to the second housing portion about a line perpendicular to the longitudinal axis of the device.
[0020] <00The second coil portion may be a passive coil portion.
[0030] The coil may include a plurality of windings, and each winding may be separable into two sections.
[0031] Electrical contacts may be defined at each winding junction.
[0032] Opposing electrical contacts may be brought into a joined state when moving to a closed state.
[0033] The electrical contacts may include an area where the coil diameter increases. [[ID=##]] [[ID=##]]
[0034] [[ID=##]] Each coil portion may be held in place by a holder.
[0035] Each coil portion may be embedded in a holder (injection molding?) with only the winding junctions not being embedded.
[0036] The electrical contacts may include pogo pins.
[0037] The first coil portion may be a separate component from the second coil portion.
[0038] The first coil portion may be integral with the second coil portion.
[0039] The first and second coil portions may be symmetric about the axis of the coil. The first and second coil portions may be asymmetric about the axis of the coil.
[0040] The heating assembly may include a heating element.
[0041] The heating element may define a heating zone.
[0042] The heating element may be tubular.
[0043] The heating element may be separable into a first heating portion and a second heating portion.
[0044] The heating element may be separable into first and second coil portions to provide access to the heating zone when not in operation.
[0045] The coil may be spiral in shape.
[0046] The first coil portion may be rotatable, slidable, and detachable from the second coil portion, at least one of these.
[0047] The heating element may be configured to generate heat in the presence of a fluctuating magnetic field.
[0048] The first heating element may be movable together with the first coil element. The second heating element may be movable together with the second coil element.
[0049] The heating element may extend into the heating zone. The heating element may protrude within the heating zone. The heating element may protrude from the base end of the heating zone.
[0050] According to some embodiments described herein, an aerosol generating device is provided for generating an aerosol from an aerosol generating material, comprising a heating assembly comprising a heating zone for receiving at least a portion of an article containing the aerosol generating material, and a magnetic field generator configured to generate a fluctuating magnetic field, the magnetic field generator comprising a helical coil at least partially surrounding the heating zone, wherein the helical coil comprises a first part and a second part, the first part being movable relative to the second part to provide access to the heating zone.
[0051] According to some embodiments described herein, an aerosol generating device is provided for generating an aerosol from an aerosol generating material, comprising a heating assembly comprising a heating zone for receiving at least a portion of an article containing the aerosol generating material, a magnetic field generator configured to generate a fluctuating magnetic field comprising a coil at least partially surrounding the heating zone, and a heating element, wherein the heating element is separable along a joint.
[0052] According to some embodiments described herein, an aerosol generating device is provided for generating an aerosol from an aerosol generating material, comprising a heating assembly having a heating element that defines a heating zone for receiving at least a portion of an article containing the aerosol generating material, wherein the heating element is separable along a joint.
[0053] According to some embodiments described herein, an aerosol supply device system is provided comprising any of the above-described aerosol supply devices and an article containing an aerosol generating material, wherein the article can be at least partially received in the heating zone of the aerosol supply device.
[0054] The article may be equipped with a heating element. The heating element may be located within the aerosol-generating material.
[0055] Apparatus in these embodiments may, as appropriate, include one, more, or all of the features described above.
[0056] Herein, embodiments are described merely as examples with reference to the attached drawings. [Brief explanation of the drawing]
[0057] [Figure 1] This shows a front perspective view of the aerosol supply device and the aerosol supply system with the item inserted into the device. [Figure 2]Figure 1 shows a schematic diagram of the aerosol supply device. [Figure 3] Figure 2 schematically shows the device in which the receptacle includes a heating element. [Figure 4] Figure 2 schematically shows the device in which the heating element protrudes in the heating zone. [Figure 5] Figure 2 schematically shows the device, detailing the coil and the article inserted into the heating zone. [Figure 6] A schematic diagram of the device shown in Figure 5, with the items removed, is provided. [Figure 7] A schematic diagram of a segmented coil for use in a device is shown. [Figure 8] A schematic diagram of a device including a split coil having hinged components is shown in Figure 7. [Figure 9] A schematic diagram of a device including a segmented coil having a sliding component is shown in Figure 7. [Figure 10] A schematic diagram of a device including a split coil, which has a laterally extending housing portion, is shown in Figure 7. [Figure 11] A schematic diagram of a segmented coil for use in a device is shown. [Figure 12] A schematic diagram of a device having a segmented coil as shown in Figure 11 is provided. [Figure 13] A schematic diagram of a device having a side-opening door and a split coil is shown. [Figure 14A] A schematic plan view of the coil winding for use in the device shown in Figure 13 is provided. [Figure 14B] A schematic plan view of another coil winding for use in the device shown in Figure 13 is provided. [Figure 15] A schematic diagram of the coil for use in the device shown in Figure 13 is provided. [Figure 16] Figure 13 schematically shows a device having a rotating tubular heating element. [Modes for carrying out the invention]
[0058] As used herein, the term “aerosol-generating material” refers to a material capable of generating an aerosol when activated, for example, by heating, irradiation, or any other method. Aerosol-generating materials may be in the form of, for example, a solid, liquid, or gel, and may or may not contain active substances and / or flavorings. Aerosol-generating materials may include any plant-derived material, such as any tobacco-containing material, and may include, for example, one or more of tobacco, tobacco derivatives, expanded tobacco, re-tobacco, or tobacco substitutes. Aerosol-generating materials may also include other, non-tobacco products, which may or may not contain nicotine. Aerosol-generating materials may be in the form of, for example, a solid, liquid, gel, or wax. Aerosol-generating materials may also be, for example, combinations or blends of materials. Aerosol-generating materials are sometimes known as “smoking materials.”
[0059] The aerosol-generating material may include a binder and an aerosol-forming agent. Optionally, an active substance and / or filler may also be present. Optionally, a solvent such as water may also be present, and one or more other components of the aerosol-generating material may or may not be soluble in the solvent. In some embodiments, the aerosol-generating material is substantially free of plant material. In some embodiments, the aerosol-generating material is substantially free of tobacco.
[0060] The aerosol-generating material may include or be an amorphous solid. The amorphous solid may be a monolithic solid. In some embodiments, the amorphous solid may be a dry gel. The amorphous solid is a solid material that can hold some fluid, such as a liquid, inside. In some embodiments, the aerosol-generating material may include, for example, about 50% by weight, 60% by weight, or 70% by weight of amorphous solid to about 90% by weight, 95% by weight, or 100% by weight of amorphous solid.
[0061] The aerosol-generating material may include an aerosol-generating film. The aerosol-generating film may include or be a sheet, and the sheet may optionally be shredded to form a shredded sheet. The aerosol-generating sheet or the shredded sheet may not contain substantially any tobacco.
[0062] According to this disclosure, a “non-combustible” aerosol supply system is a system in which the aerosol-generating constituent materials (or components thereof) of the aerosol supply system are not burned or incinerated in order to facilitate the delivery of at least one substance to the user.
[0063] In some embodiments, the delivery system is a non-combustible aerosol supply system, such as a power-supplied non-combustible aerosol supply system.
[0064] In some embodiments, the non-flammable aerosol supply system is an e-cigarette, also known as a vaping device or electronic nicotine delivery system (END), but it should be noted that the presence of nicotine in the aerosol-generating material is not a requirement.
[0065] In some embodiments, the non-combustible aerosol supply system is an aerosol-generating material heating system, also known as a non-combustible heating system. An example of such a system is a cigarette heating system.
[0066] In some embodiments, a non-flammable aerosol supply system is a mixing system for generating an aerosol using a combination of aerosol-generating materials, one or more of which may be heated. Each of the aerosol-generating materials may be, for example, in the form of a solid, liquid, or gel, and may or may not contain nicotine. In some embodiments, the mixing system includes a liquid or gel aerosol-generating material and a solid aerosol-generating material. The solid aerosol-generating material may, for example, be tobacco or a non-tobacco product.
[0067] Typically, a non-flammable aerosol supply system may comprise a non-flammable aerosol supply device and consumables for use with the non-flammable aerosol supply system.
[0068] In some embodiments, the disclosure relates to consumables comprising aerosol-generating materials and configured for use with non-flammable aerosol supply devices. These consumables are, in some cases, referred to as articles throughout the disclosure.
[0069] In some embodiments, a non-combustible aerosol supply system, such as a non-combustible aerosol supply device for a non-combustible aerosol supply system, may include an energy source and a controller. The energy source may be, for example, a power source or a heat source. In some embodiments, the heat source includes a carbon substrate that can be excited to distribute power in the form of heat to an aerosol-generating material or heat-transfer material in the vicinity of the heat source.
[0070] In some embodiments, the non-flammable aerosol supply system may include a region for receiving consumables, an aerosol generator, an aerosol generating region, a housing, a mouthpiece, a filter, and / or an aerosol modifier.
[0071] In some embodiments, consumables for use with a non-flammable aerosol supply device may include aerosol generating material, aerosol generating material storage area, aerosol generating material transfer component, aerosol generator, aerosol generating area, housing, wrapper, filter, mouthpiece, and / or aerosol modifier.
[0072] An aerosol generating device can accept an article comprising an aerosol generating material for heating. In this context, "article" refers to a component that, at the time of use, contains or includes an aerosol generating material that is heated to volatilize the aerosol generating material, and optionally contains or includes other components at the time of use. A user can insert an article into the aerosol generating device, after which the aerosol supply device is heated to generate an aerosol, which 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 a device sized to accept the article.
[0073] Figure 1 shows an example of an aerosol supply system 100. The system 100 comprises an aerosol supply device 101 for generating an aerosol from an aerosol-generating material, and a replaceable article 110 containing the aerosol-generating material. The device 101 can be used to heat the replaceable article 110 containing the aerosol-generating material to generate an aerosol or other inhalable substance that can be inhaled by a user of the device 101.
[0074] The device 101 comprises a housing 103 that encloses and accommodates various components of the device 101. The housing 103 is elongated. The device 101 has an opening 104 at one end through which an article 110 can be inserted for heating by the device 101. The article 110 may be fully or partially inserted into the device 101 for heating by the device 101.
[0075] Device 101 may include a user-operable control element 106, such as a button or switch, that operates the device 101 when it is pressed. For example, a user can activate device 101 by pressing a switch 106.
[0076] Figure 2 is a schematic diagram of the aerosol supply system 100 of Figure 1, showing various components of device 101. It will be understood that 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.
[0077] As shown in Figure 2, device 101 includes an aerosol generator 200. The aerosol generator 200 includes a heating assembly 201, a controller (control circuit) 202, and an energy source 204. The aerosol generator 200 comprises a main body assembly 210. The main body assembly 210 may include a chassis and other components that form part of the device. The heating assembly 201 is configured to heat the aerosol-generating material of an article 110 inserted into device 101, thereby generating an aerosol from the aerosol-generating material. The energy source 204 supplies power to the heating assembly 201, which converts the supplied electrical energy into thermal energy for heating the aerosol-generating material.
[0078] The aerosol generator 200 defines a longitudinal axis 102, and the article 110 may extend along this longitudinal axis 102 when inserted into the device 101. The opening 104 is aligned on the longitudinal axis 102.
[0079] The energy source 204 can be a battery, such as a rechargeable battery or a non-rechargeable battery. Examples of suitable batteries include lithium batteries (such as lithium-ion batteries), nickel batteries (such as nickel-cadmium batteries), and alkaline batteries.
[0080] The energy source 204 may be electrically coupled to the heating assembly 201 to supply power under the control of the controller 202 when it is necessary to heat the aerosol generating material. The control circuit 202 may be configured to start and stop the heating assembly 201 based on the user's operation of the control element 106. For example, the controller 202 may start the heating assembly 201 in response to the user operating the switch 106.
[0081] The end of the device 101 closest to the opening 104 may be known as the proximal end (or mouth end) 107 of the device 101, as it is closest to the user's mouth during use. During use, the user inserts an article 110 into the opening 104 and operates the user control unit 106 to start heating the aerosol-generating material, thereby utilizing the aerosol generated within the device. This causes the aerosol to flow through the article 110 along the flow path toward the proximal end of the device 101.
[0082] The other end of the device furthest from the opening 104 is the end furthest from the user's mouth during use and may therefore be known as the distal end 108 of the device 101. When the user utilizes the aerosol generated within the device, the aerosol flows toward the proximal end of the device 101. When applied to the mechanism of the device 101, the terms proximal and distal are explained by referring to the relative positions of such mechanisms toward each other in the proximal-distal direction along the axis 102.
[0083] The heating assembly 201 may comprise various components for heating the aerosol-generating material of article 110 by, for example, an induction heating process or a resistive heating process. Induction heating is a process of heating a conductive heating element (such as a susceptor) by electromagnetic induction. The induction heating assembly may comprise an induction element, for example, one or more inductor coils, and a device for passing various currents, such as alternating current, through the induction element. The fluctuating current in the induction element generates a fluctuating magnetic field. The various magnetic fields penetrate a susceptor appropriately positioned relative to the induction element, generating eddy currents inside the susceptor. The susceptor has electrical resistance to eddy currents, and therefore, the flow of eddy currents against this resistance heats the susceptor by Joule heating. If the susceptor contains a ferromagnetic material such as iron, nickel, or cobalt, heat can also be generated by magnetic hysteresis loss in the susceptor, i.e., by the various orientations of magnetic dipoles in the magnetic material as a result of alignment with various magnetic fields. For example, compared to conduction heating, in induction heating, heat is generated within the susceptor, enabling rapid heating. Furthermore, there is no need for physical contact between the induction element and the susceptor, which increases the degree of freedom in construction and application. Resistive heating, on the other hand, utilizes the Joule heating effect resulting from the electrical resistance of a material in response to a directly applied electric current.
[0084] The aerosol generator 200 includes a heating chamber 211, which is configured to receive the article 110 to be heated and whose dimensions are determined. The heating chamber 211 defines a heating zone 215. In this example, the article 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 receptacle 212. The receptacle 212 includes an end wall 213 and a surrounding wall 214. The end wall 213 serves as the base of the receptacle 212. In this embodiment, the receptacle 212 is a one-piece component. As used herein, the term “one-piece component” is intended to mean that the mechanism is formed integrally so that no joints are defined between the mechanisms. In other embodiments, the receptacle 212 includes two or more components.
[0085] The heating chamber 211 is defined by the inner surface of the receptacle 212. The receptacle 212 serves as a support member. The receptacle 212 includes a generally tubular member. The receptacle 212 extends along, around, and substantially coaxial with the longitudinal axis 102 of the device 101. However, other shapes are possible. The receptacle 212 (and thus the heating zone 215) is open at its proximal end so that an article 110 inserted into the opening 104 of the device 101 can be received by the heating chamber 211 through which it passes. The receptacle 212 is closed at its distal end by an end wall 213. The receptacle 212 may include one or more conduits that form part of an air path. When in use, the distal end of the article 110 may be positioned close to or engaged with the end of the heating chamber 211. Air enters the heating chamber 211 through one or more conduits that form part of the air path, and can flow through the article 110 toward the proximal end of the device 101.
[0086] The receptacle 212 may be formed from an insulating material. For example, the receptacle 212 may be formed from a plastic such as polyetheretherketone (PEEK). Other suitable materials are possible. The receptacle 212 may be formed from a material that ensures the assembly remains rigid / solid when the heating assembly 201 is operated. Using a non-metallic material for the receptacle 212 can help regulate the heating of other components of the device 101. The receptacle 212 may be formed from a rigid material to assist in supporting the other components.
[0087] Other configurations of the receptacle 212 are possible. For example, in one embodiment, the end wall 213 is defined by a portion of the heating assembly 201. In another embodiment, the receptacle 212 comprises a material that can be heated by the intrusion of a fluctuating magnetic field. In some embodiments, the receptacle 212 comprises a material that can be heated by resistive Joule heating. Such a receptacle serves as a heating element.
[0088] As shown in Figure 3, the heating assembly 201 may include a heating element 320 arranged to surround the heating zone 215. In such a configuration, the heating element 320 forms a receptacle 212. The heating element 320 defines the surrounding wall 214. The heating element 320 is configured to heat the heating zone 215. The heating zone 215 is defined within a heating chamber 211. In some embodiments, the heating chamber 211 defines a portion of the heating zone 215 or an area of the heating zone 215.
[0089] The heating element 320 is capable of heating the heating zone 215. The heating element 320 may be an induction heating element or a resistive heating element. That is, the heating element 320 is a resistive material that can be heated by the intrusion of a fluctuating magnetic field or by passing an electric current directly from an energy source. The heating element 320 is equipped with a conductive material suitable for heating by electromagnetic induction. For example, the heating element 320 may be formed from carbon steel. It will be understood that other suitable materials, such as ferromagnetic materials such as iron, nickel, or cobalt, may be used.
[0090] As shown in Figure 2, the heating assembly 201 includes a magnetic field generator 250. The magnetic field generator 250 is configured to generate one or more fluctuating magnetic fields that penetrate the heating element 320 to cause heating of the heating element 320. The magnetic field generator 250 includes an inductor coil configuration 251. The inductor coil configuration includes an inductor coil 252 that functions as an inductor element. The inductor coil 252 is a helical coil, but other configurations are also possible. In embodiments, the inductor coil configuration 251 includes two or more inductor coils. The two or more inductor coils in embodiments may be arranged adjacent to each other and coaxially aligned along an axis.
[0091] In some examples, the magnetic field generator 250 is configured to heat the heating element 320 to a temperature of approximately 200°C to 350°C, such as approximately 240°C to 300°C, or approximately 250°C to 280°C. In examples where the heating element is a resistive heating element, a similar or the same temperature can be reached by resistive heating in the heating element.
[0092] The inductor coil 252 may be a helical coil containing a conductive material such as copper. The coil is formed from a wire, such as Litz wire, wound helically around a support member (not shown). The support member is formed by a receptacle 212 or another component. In some embodiments, the support member is omitted. The support member is tubular. The coil 252 defines a generally tubular shape. The inductor coil has a generally circular contour. In other embodiments, the inductor coil may have different shapes, such as generally square, rectangular, or elliptical. The coil width may increase or decrease along its length.
[0093] In the case of a helical coil, it is possible to define an elongated inductor zone that accepts a susceptor, thereby providing an elongated susceptor that will be accommodated within this elongated inductor zone. The length of the susceptor exposed to the fluctuating magnetic field can be maximized. By providing an enclosed inductor zone with a helical coil structure, it is possible to assist in the concentration of the magnetic flux of the magnetic field.
[0094] The configuration of the helical inductor coil can vary along its axial length. For example, the inductor coil, or each inductor coil, may have substantially the same or different inductance values, axial length, radius, pitch, number of turns, etc. In an embodiment as shown in Figure 4, the heating element 420 extends into the heating zone 215. Acting as a protruding element, the heating element 420 protrudes in the heating zone 215. The heating element 420 rises from its base. The heating element 420 is spaced apart from the surrounding wall 214. The heating assembly 201 is configured such that the heating element 420 extends into the distal end of the article 110 when the article 110 is supported by the heating chamber 211. The heating element 420 is positioned inside the article 110 when in use. The heating element 420 is configured to heat the aerosol-generating material of the article 110 from the inside, and is therefore called an internal heating element.
[0095] The heating element 420 extends into the heating chamber 211 from the distal end of 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 spaced away from the axis 102. The heating element 420 may be offset from the axis 102 and may not be parallel to the axis 102. Although one heating element 420 is shown, in embodiments it will be understood that the heating assembly 201 comprises multiple heating elements 420. Such heating elements in embodiments are spaced apart from each other but parallel to each other.
[0096] When the heating elements 320, 420 of any of the embodiments described utilize magnetic heating, the inductor coil 252 may be located outside the receptacle 212. The inductor coil may surround the heating zone 215. The helical inductor coil may extend around at least a portion of the heating elements 320, 420 that act as susceptors. The helical inductor coil is configured to generate a fluctuating magnetic field that penetrates the heating elements 320, 420. The helical inductor coil is positioned coaxially with the heating chamber 211 and the longitudinal axis 102.
[0097] The embodiments shown represent a device that includes either heating elements 320 arranged around a heating zone 215 or at least one heating element 420 located within the heating zone 215, but any of the embodiments described may utilize both heating elements 320 surrounding the heating zone 215 and one or more heating elements 420 within the heating zone 215.
[0098] The device does not necessarily have to include the heating element 320 or the heating element 420, but instead includes a coil 252 configured to generate resistive heating when current passes through it. In this embodiment, the receptacle may be made of a thermally conductive material so as to allow the heat generated by the coil 252 to be transferred to the article 110 inserted into the device.
[0099] In Figure 4, the heating element 420 protrudes within the heating zone 215 and is received by the article 110. Figure 2 shows the article 110 received by the device 101. The article 110 is sized to be received by the receptacle 212. The external dimensions of the article 110 perpendicular to its longitudinal axis substantially correspond to the internal dimensions of the chamber 211 perpendicular to the longitudinal axis 102 of the device 101, allowing the article 110 to be inserted into the receptacle 212. In an embodiment, a gap 216 is defined between the external side surface 111 of the article 110 and the internal side surface 217 of the receptacle 212. The gap 216 can serve as an air passage 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 receptacle 212.
[0100] Figure 2 shows the basic structure of device 101. Figure 2 also shows an overall view of the article 110 placed within the heating zone 215 of device 101. This figure shows the configuration in use, where the aerosol-generating material of the article may be heated, and the user may inhale the aerosolized material from the article / device.
[0101] Figure 5 shows another diagram of device 101. In this diagram, the entire coil 252 surrounding the receptacle 212 (not shown) and the article 110 disposed within the receptacle 212 is shown. The heating element components of device 101 in Figure 5 can be any of those described above.
[0102] Figure 6 shows a diagram of the device 101 with no article inserted. As can be seen, the coil 252 has an axis 503 substantially aligned with the longitudinal axis 102 of the device 101. Other embodiments are conceivable in which the longitudinal axis 102 of the device 101 and the axis 503 of the coil 252 are not aligned. The device 101 is provided with an opening 104 in the receptacle 212 and a housing 103 at the proximal end 107 of the device 101. To insert an article 110 into the device 101 to be heated, the user typically slides and inserts the article 110 through the opening 104 into the heating zone 215 in a direction along the longitudinal axis 102, and in the embodiment of Figure 6, also along the axis 503 of the coil 252.
[0103] As described herein, modifications to the insertion mode are considered, such as the insertion of the article 110 into the receptacle 212 from a direction perpendicular to the longitudinal axis 102 of the device 101, or in a direction having at least a component perpendicular to the longitudinal axis 102 of the device 101. To achieve this, embodiments are described here which typically involve the use of a split coil 352, i.e., a coil having a reconnectable slit along its length. In these embodiments, the receptacle 212 and housing 103 are also discontinuous around the perimeter and along its length, taking the form of multiple parts to provide access to the heating zone 215. These embodiments are described here in more detail.
[0104] Figure 7 shows a split coil 352 for use in device 101. Figure 7 shows the coil 252 of Figure 6 in two parts. In this figure, the split coil 352 is shown to include two cuts 701 for each turn of the coil 352, with the cuts in each turn being 180° apart from each other and the cuts in each turn being aligned with each other. In other words, the coil 352 is uniformly divided into two halves through a plane defined by a longitudinal axis and specific circumferential angular positions. The two halves may be called the first coil portion 702 and the second coil portion 703, respectively.
[0105] The split coil 352 has two terminals 501 and 502. These terminals are together located on one portion, the first coil portion 702 in Figure 7. The terminals are configured to connect to the power supply 204 and controller 202 of the device 101. This means that when the two portions of the split coil 352 are disconnected from each other, the second coil portion 703 is the passive coil portion and is not connected to the power supply. As also shown in Figure 7, the split coil 352 may be provided with connecting means 700 configured to facilitate the connection between the corresponding windings of each coil portion. This connecting means 700 allows the two coil portions to be connected to each other to form a complete coil without being perfectly aligned with each other. The connecting means 700 further provides protection of the coil windings from dust or debris that may otherwise impair the ability to connect the portions to form a complete coil. The connecting means 700 allows for reliable electrical connections between the corresponding windings of each coil portion, even in the presence of undesirable dust, debris, or other contaminants. The connecting means 700 may include pogo pins or any other suitable alternative. Any embodiment of the split coil 352 described herein may be provided with the connecting means 700.
[0106] Figure 8 shows an embodiment of the device 101 having a split coil 352. In this embodiment, as shown, the device housing 103 and receptacle 212 are also divided into first and second device portions 802 and 803. Each device portion includes one portion of the split coil 352, a portion of the receptacle 212, and a portion of the housing 103. In this embodiment, a hinge 800 is provided between the first and second device portions 802 and 803. In practice, this allows the heating zone 215 to be exposed laterally, and thus allows insertion of the article 110 from the side, i.e., not only through the opening 104. This facilitates insertion of the article 110 and minimizes the risk of damage to the article 110.
[0107] The device 101 in Figure 8 is shown to include an opening 104 through which an article 110 can also be inserted, resulting in the configuration in use shown in Figure 5. However, it is also intended that such an opening 104 may not be provided in the embodiment of the device 101 shown in Figure 8, so that the article 110 can only be inserted laterally through the hinged openings of the first and second device portions 802 and 803. Naturally, in such an embodiment, the article 110 would be shorter than that shown in Figure 5, being the same length as or shorter than the receptacle 212. The article 110 may be at least partially encapsulated by the receptacle 212 and housing 103 when the device portions 802 and 803 are connected in a closed configuration. In this case, a mouthpiece may be provided at the proximal end 107 of the device 101 at the top opening of the receptacle 212 to allow the user to inhale the aerosolized material from the device 101 during operation. Despite the presence of an opening / closing mechanism for the device via the opening 104, or the first and second device portions 802 and 803, it should be understood that when the device 101 enters a closed configuration such that the first and second device portions 802 and 803 are connected to each other, the split coil 352, receptacle 212, and device as a whole operate in the same manner as described above with reference to Figure 5, or as described in any of the above embodiments with reference to Figures 1 to 4.
[0108] Figure 9 shows another embodiment of device 101. The device may include any combination of the features described in relation to Figure 8. The difference between this embodiment and the embodiment in Figure 9 is a mechanism in which the first and second device portions 802 and 803 are separate from each other to expose the heating zone 215. As shown in the figure, a sliding component 900 is provided rather than utilizing a hinge component between the first and second device portions 802 and 803. The first device portion 802 is unchanged from that shown in Figure 8, but the second device portion 803 is mounted to the device by a sliding mechanism such that portion 803 translates along the device 101 parallel to the longitudinal axis 102 of the device 101 toward the distal end 108, thereby allowing the heating zone 215 to be exposed.
[0109] Figure 10 shows a further embodiment of device 101. Similar to the embodiment in Figure 9, the device may include any combination of the features described in relation to Figure 8. However, in this embodiment, instead of the hinge mechanism in Figure 8 or the sliding component 900 in Figure 9, device 101 in Figure 10 is provided with a spring mechanism 1000. The spring mechanism 1000 may be configured to separate device portions 802 and 803 from each other in a transverse direction perpendicular to the longitudinal axis 102 of device 101. Device portions 802 and 803 are configured to be manually pressed together by the user so as to connect the device portions 802 and 803 together to connect the split coil 352 and form a transversely enclosed heating zone 215. The device may further be provided with a locking component 1001 that locks device portions 802 and 803 together.
[0110] The locking component 1001 may be configured to be simply unlocked by the user during operation. In this way, the user can release the latch of the locking component to release the second device portion 803 from the first device portion 802, thereby allowing these portions to be separated from each other by biasing in the spring means, and allowing the heating zone 215 to be exposed. Similar to the split coil embodiment described above, the device may or may not have an opening 104 into which an article can be inserted into the receptacle 212. In this case, even when the article 110 is inserted axially through the opening 104, the insertion of the article 110 is facilitated by increasing the diameter of the opening 104 and the receptacle 212, thereby reducing the chance of damage to the article 110 during insertion.
[0111] The embodiments described above generally illustrate a coil 352 divided into two equal halves, but the coil 352 may be divided into first and second parts 702 and 703 along an arbitrary plane, or it may be divided unevenly. Figure 11 shows just one example of another configuration of the divided coil 352 that can be used in any of the divided coil embodiments described above. As can be seen from the figure, the coil 352 is divided along a plane 1103 that is not parallel to the longitudinal axis 503 of the coil 352. Figure 12 shows an example of a device 101 having the divided coil 352 according to the embodiment shown in Figure 11. The device 101 in Figure 12 is provided with a hinge structure 800 similar to that in Figure 8. As can be seen, the housing 103 and receptacle 212 of the device 101 are also divided along a plane that is not parallel to the longitudinal axis 102 of the device 101.
[0112] Figure 13 shows a further embodiment of device 101. This embodiment differs from the embodiments in Figures 7–12 in that device 101 includes a split coil 452 that cannot be divided into two separate parts. As can be seen from the figure, device 101 utilizes a different configuration to allow lateral access to the heating zone 215. A door 1300 is provided, which includes the housing 103, the receptacle 212 and the coil 452 segments. In contrast to the second device portion 803 in the embodiments of Figures 8–10 and 12, the door 1300 is configured to swing open at a hinge 813 around a pivot axis parallel to the longitudinal axis 102 of device 101.
[0113] The door 1300 is intended to include the upper proximal surface of the device 101 and, if provided, a mouthpiece on the upper proximal surface. This exposes the heating zone 215 to the proximal end of the device 101, thereby further facilitating the insertion of the article 110. The hinge 813 may be provided only in the receptacle 212 and housing 103. The coil 452 may, at the location of the hinge 813, reliant on its inherent elastic properties, elastically deform as the section 1303 of the coil 452 attached to the door 1300 pivots relative to the remaining section 1302 of the coil 452 in the device 101. The coil 452 may contain only one cut per turn, rather than two, as in the embodiments shown in Figures 7–12. A plan view of one turn of such a coil is shown in Figure 14A.
[0114] The coil winding in Figure 14A is shown in a partially deformed state, representing the condition encountered when the door 1300 of device 101 is partially open in Figure 13. When the coil winding is positioned within the device, it can pivot around point 414 in a periphery location corresponding to the location of hinge 813. By providing only one cut per winding, as in the embodiment of coil 452 in Figure 14A, the risk of dust or residue contaminating the contact area between the corresponding windings of the two parts of the split coil 452 is reduced.
[0115] As shown in Figure 14A, the coil 452 may be provided with connecting means 700 at each break to facilitate connections between them and to reduce the risk of dust or other contamination impairing the connections between corresponding windings of each part of the coil 452. In addition to the reliability advantages of the connections between the two coil parts, providing the coil 452 which elastically deforms when the door 1300 is opened also provides a return bias for closing the door 1300. The elasticity of the coil provides a bias to close the door 1300, further improving usability and eliminating the need for a separate mechanism to lock the door 1300 to the device 101 during operation.
[0116] Figure 15 shows another schematic diagram of the coil 452 according to Figure 14A. Figure 14B represents an alternative embodiment of the coil 452 for use in the device of Figure 13. As shown in the figure, each coil winding includes two slits 180° apart from each other, similar to the coil 352 in the embodiments of Figures 7-12. Connecting means 700 are also provided at the slits. However, this coil 452 is further provided with a spring 415 between one of the slits in each winding. This spring 415 provides the same function as the elastic properties of the coil 452 in Figure 14A around the pivot point 414. Due to its biasing along with the slit to which the spring is attached, the spring 415 also assists in connecting these corresponding coil windings of the two coil portions when the door 1300 is closed and the device 101 is operational.
[0117] It is also intended that the door 1300 may be attached to a sliding mechanism configured to allow the door 1300 to slide around the outer surface of the housing 103 of the device 101 to expose the heating zone 215.
[0118] As discussed above, the coils 252, 352, and 452 of any embodiment disclosed herein may be part of an electrically inductive or resistive heating system. In the case of an induction heating system, the coil is configured to generate a fluctuating magnetic field through the application of a fluctuating current through the coil. In addition to the coil, a heating element 320 is also required. The heating element 320 is configured to generate heat in response to the passing fluctuating magnetic field and thus functions as a heating element. As shown in Figure 3, the heating element 320 may take a tubular form and may form the receptacle 212 itself. Alternatively or in addition, the heating element 420 may take the form of a pin, as shown in Figure 4. Embodiments of the device 101 described herein having a split coil may utilize one of these heating elements. However, these heating element designs may not be very conductive for the lateral mounting of the article 110 to the device 101. In the case of the receptacle heating element 320, it may be difficult to obtain a close fit to the article 110 as desired due to the potentially smaller required size of the article relative to the receptacle 212, particularly for the “door” design in Figure 13. Furthermore, when the article 110 is inserted laterally into the heating zone 215, it may not be easily positioned on the axially extending pin-type heating element 420. In order to correctly insert the article 110 into such a device, axial translation is always necessary to ensure proper insertion of the susceptor 420 into the article 110.
[0119] To address this problem, a heating element 1600, shown in Figure 16, may be provided in addition to either or both of the heating elements 320 and 420 described above. This heating element 1600 takes the form of a tube formed from a material configured to perform heating in the presence of a fluctuating magnetic field. As can be seen, the heating element 1600 is smaller than the size of the receptacle 212 in both length and diameter. The heating element 1600 may be configured to fit tightly around the outside of the article 110. The heating element 1600 facilitates the insertion of the article 110 into the heating element 1600 by providing a swivel mechanism configured to tilt the heating element 1600 such that its longitudinal axis is inclined at a certain angle with respect to the longitudinal axis 102 of the device 101. The heating element 1600 is configured to tilt toward an opening created by the door 1300. Next, the user inserts the article 110 into the susceptor 1600, pushes the heating element 1600 back into the heating zone 215, and closes the door 1300. The heating element 1600 can be implemented in any of the split coil device embodiments described in this application.
[0120] In any of the embodiments described, the device 101 may be configured to heat the article 110 by generating a fluctuating magnetic field configured to heat a susceptor heating element located within the article 110. That is, the article itself may contain a susceptor heating element. When located within the heating zone, the susceptor heating element located within the article generates heat in the presence of the fluctuating magnetic field, thereby heating the article and generating aerosolized material from the aerosol-generating material.
[0121] In some of the embodiments described above, the heating component is an induction heating component. In other embodiments, other types of heating components, such as resistive heating, are used. The configuration of the device is generally as described above, so a detailed description is omitted. In such a configuration, the heating assembly 201 comprises a resistive heating generator that includes components for heating a heating element by a resistive heating process. In this case, an electric current is applied directly to the resistive heating component, and the resulting flow of current in the heating component heats the heating component by Joule heating. The resistive heating component includes a resistive material configured to generate heat when an appropriate current passes through it, and the heating assembly 201 includes electrical contacts for supplying current to the resistive material.
[0122] In the embodiment, the heating element forms the resistive heating component itself. In the embodiment, the resistive heating component transfers heat to the heating element, for example, by conduction.
[0123] While the embodiments described herein have described a split coil that can be opened to provide access to the heating zone 215 of the device 101, it is also intended that a device 101 configured to heat an article solely through resistive heating may utilize a similar concept to provide the same technical advantages. For example, the heating structure of the device may include a tubular resistive heating element that forms a receptacle 212. In this case, heat can be generated by passing an electric current through the receptacle 212 that surrounds the article 110 when in use, without the use of a conductive coil structure. Such a heating element may also be provided to be split, i.e., to include one or more circumferential cuts. Lateral access to the heating zone 215 may be provided together with a corresponding cut in the housing 103 of the device 101, and together with any of the opening mechanisms described in relation to other embodiments, such as an axial or circumferential sliding door, or the hinge structure in Figure 8 or Figure 13. In this embodiment, the circumferential cuts of the resistive heating element receptacle may also be provided with connecting means 700 to facilitate connection between the parts of the receptacle 212 when the device is closed. It is also intended that the resistive heating receptacle parts may not need to be connected to each other for operation, and that each part may be configured independently to generate heat through resistive heating when current is passed through it. Lateral access to the heating zone 215 facilitates insertion and minimizes the risk of damage to the article 110 during insertion. The device in these embodiments may or may not have an opening 104 into which the article 110 can be inserted axially into the device.
[0124] The embodiments described above are to be understood as examples for the purpose of explaining the present invention. Further embodiments of the present invention are conceivable. It should be understood that any feature described in relation to any one embodiment may be used alone or in combination with other features described, or in combination with one or more features of any other embodiment or any combination of any other embodiments. Furthermore, equivalents and modifications not described above may be used without departing from the scope of the present invention as defined in the appended claims.
Claims
1. An aerosol supply device for generating aerosols from aerosol-generating materials, A heating zone for receiving at least a portion of an article containing an aerosol-generating material, A magnetic field generator configured to generate a fluctuating magnetic field, comprising a coil that at least partially surrounds the heating zone, A heating assembly comprising, The coil is separable along the joint in the aerosol supply device.
2. The aerosol supply device according to claim 1, wherein the coil defines a longitudinal axis, and the coil is separable in a direction perpendicular to the longitudinal axis.
3. The aerosol supply device according to claim 1, wherein the coil defines a longitudinal axis, and the coil is separable in a direction along the longitudinal axis.
4. The aerosol supply device according to claim 1, wherein the coil is configured to be separable into a first coil portion and a second coil portion.
5. The aerosol supply device according to claim 4, wherein the first coil portion is movable relative to the second coil portion to provide access to the heating zone.
6. The aerosol supply device according to claim 4, wherein the first coil portion and the second coil portion are electrically connected in the operating state.
7. The aerosol supply device according to claim 4, comprising a housing, wherein the housing is separable into a first housing portion and a second housing portion.
8. The aerosol supply device according to claim 7, wherein the first coil portion is located in the first housing portion, and the second coil portion is located in the second housing portion.
9. The aerosol supply device according to claim 7, wherein the first housing portion is movable relative to the second housing portion by a hinge mechanism.
10. The aerosol supply device according to claim 9, wherein the first housing portion is configured to pivot relative to the second housing portion about a line parallel to the longitudinal axis of the device.
11. The aerosol supply device according to claim 9, wherein the first housing portion is configured to pivot relative to the second housing portion about a line perpendicular to the longitudinal axis of the device.
12. The aerosol supply device according to claim 7, wherein the first housing portion is movable relative to the second housing portion by a sliding mechanism.
13. The aerosol supply device according to claim 4, wherein the second coil portion is indirectly electrically connected to the first coil portion.
14. The aerosol supply device according to claim 4, wherein the first coil portion is a separate component from the second coil portion.
15. The aerosol supply device according to claim 4, wherein the first coil portion is integrated with the second coil portion.
16. The aerosol supply device according to claim 1, wherein the heating assembly includes a heating element.
17. The aerosol supply device according to claim 16, wherein the heating element defines the heating zone.
18. The aerosol supply device according to claim 16, wherein the heating element is separable into a first heating portion and a second heating portion.
19. An aerosol generating device for generating aerosols from aerosol generating materials, A heating assembly comprising a heating element that defines a heating zone for receiving at least a portion of an article containing an aerosol-generating material, An aerosol generating device in which the heating element is separable into a first heating portion and a second heating portion along the joint.
20. An aerosol supply device system comprising an aerosol supply device according to claim 1 and an article containing an aerosol generating material, wherein the article can be at least partially received within the heating zone of the aerosol supply device.
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