Aerosol Generating Device
A system includes an aerosol generating device and a portion of aerosol generating substrate, the device including first and second housing elements configured to move between open and closed positions, wherein, in the closed position, the housing elements together define an aerosol generation chamber configured to enclose the portion, and further define an air flow channel including an inlet, an outlet and the chamber, the first housing element including a recess for receiving the portion, wherein the recess includes a flat bottom surface, and the second housing element includes a compression surface for compressing the portion towards the bottom surface, the compression and bottom surfaces being opposing surfaces of the chamber, wherein the portion is cuboid and a thickness of the portion before use in the device is greater than a distance between the compression and bottom surfaces when the first and second housing elements are in the closed position.
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The present disclosure relates to an aerosol generation device in which an aerosol generating substrate is heated to form an aerosol. The disclosure is particularly applicable to a portable aerosol generation device, which may be self-contained and low temperature. Such devices may heat, rather than burn, tobacco or other suitable aerosol substrate materials by conduction, convection, and/or radiation, to generate an aerosol for inhalation.
BACKGROUNDThe popularity and use of reduced-risk or modified-risk devices (also known as vaporisers) has grown rapidly in the past few years as an aid to assist habitual smokers wishing to quit smoking traditional tobacco products such as cigarettes, cigars, cigarillos, and rolling tobacco. Various devices and systems are available that heat or warm aerosolisable substances as opposed to burning tobacco in conventional tobacco products.
A commonly available reduced-risk or modified-risk device is the heated substrate aerosol generation device or heat-not-burn device. Devices of this type generate an aerosol or vapour by heating an aerosol substrate that typically comprises moist leaf tobacco or other suitable aerosolisable material to a temperature typically in the range 150° C. to 350° C. Heating an aerosol substrate, but not combusting or burning it, releases an aerosol that comprises the components sought by the user but not the toxic and carcinogenic by-products of combustion and burning. Furthermore, the aerosol produced by heating the tobacco or other aerosolisable material does not typically comprise the burnt or bitter taste resulting from combustion and burning that can be unpleasant for the user and so the substrate does not therefore require the sugars and other additives that are typically added to such materials to make the smoke and/or vapour more palatable for the user.
In such devices, a user must wait for an initial activation time while the aerosolisable material is heated to generate the aerosol, before it is possible to inhale a puff of aerosol. In order to improve user convenience it is desirable to decrease the initial activation time.
Additionally, it is desirable to increase the aerosol yield from aerosolisable material.
SUMMARYAccording to a first aspect, the present disclosure provides an aerosol generating device comprising first and second housing elements configured to move between an open position and a closed position, wherein, in the closed position, the first and second housing elements together define an aerosol generation chamber configured to enclose a portion of aerosol generating substrate, and further define an air flow channel comprising an inlet, an outlet and the aerosol generation chamber, the first housing element comprising a recess for receiving the portion of aerosol generating substrate, wherein the recess comprises a flat bottom surface, and the second housing element comprising a compression surface for compressing the portion of aerosol generating substrate towards the bottom surface of the recess, the compression surface and bottom surface being opposing surfaces of the aerosol generation chamber.
By compressing the aerosol generating substrate towards the bottom surface of the recess, the thermal conductivity of the substrate can be improved, thereby decreasing the initial activation time. Furthermore, compressing the aerosol generating substrate can improve aerosol yield for a given quantity of substrate.
Optionally, the first and second housing members are connected by a hinge.
By connecting the housing members by a hinge, the housing members can be easily separated to access the aerosol generation chamber and insert and remove the aerosol generating substrate before and after aerosol generation. Furthermore, a hinge guides the housing members to compress the portion of aerosol generating substrate between the compression surface and the bottom surface of the recess.
Optionally, the device comprises a fastener for holding the first and second housing elements in the closed position.
By providing a fastener, it is not necessary for the user to apply a compression force throughout aerosol generation, making the device easier to use.
Optionally, the device comprises a gasket configured to, in the closed position, seal the air flow channel.
By sealing the air flow channel, air flows more efficiently from the outlet to the inlet through the aerosol generation chamber, and aerosol can be inhaled from the device more easily.
Optionally, the device comprises a heating element arranged to supply heat to the aerosol generation chamber through the bottom surface or the compression surface.
A heating element provides a convenient way of heating the aerosol generating substrate in the aerosol generation chamber. In alternatives, the substrate can be heated in other ways, for example, using a disposable heat source provided in the portion of aerosol generating substrate.
Optionally, the first housing element and/or the second housing element comprises an insulating member at least partly enclosing the aerosol generation chamber.
The insulating member improves efficiency of heating the aerosol generating substrate in the aerosol generation chamber.
Optionally, the second housing element additionally comprises an air flow channel configured to connect to the aerosol generation chamber in the closed position, and to provide the inlet and outlet.
Optionally, the air flow channel comprises a groove in a surface of the second housing element. A surface groove may be easily cleaned.
Optionally, the air flow channel comprises a groove in the compression surface. This increases air flow adjacent to where the compression surface compresses the substrate and improves aerosol extraction from the substrate.
Optionally, the air flow channel comprises a plurality of grooves in the compression surface connected between the inlet and the outlet.
Optionally, the inlet comprises a plurality of distinct inlets connected to the plurality of grooves.
Optionally, the plurality of grooves are arranged in parallel between the inlet and the outlet.
Optionally, a plurality of sections of the compression surface are separated by the one or more grooves of the air flow channel, and each of the plurality of sections of the compression surface is configured to compress the portion of aerosol generating substrate towards the bottom surface of the recess. This distributes air flow and compression across the substrate.
Optionally, the device comprises an electrical power source, wherein the aerosol generating device is a portable handheld device.
According to a second aspect, the present disclosure provides a system comprising an aerosol generating device according to any preceding claim and a portion of aerosol generating substrate, wherein a thickness of the portion before use in the aerosol generating device is greater than a distance between the compression surface and the bottom surface of the recess when the first and second housing elements are in the closed position.
According to a third aspect, the present disclosure provides a kit comprising an aerosol generating device according to any preceding claim and a portion of aerosol generating substrate, wherein a thickness of the portion before use in the aerosol generating device is greater than a distance between the compression surface and the bottom surface of the recess when the first and second housing elements are in the closed position.
The aerosol generating device 1 comprises a first housing element 11 and a second housing element 12. When the aerosol generating device 1 is in a closed position as shown in
The first housing element 11 comprises a recess 131 for receiving the portion 2 of aerosol generating substrate, and the second housing element 12 comprises a compression surface 132 arranged to oppose a flat bottom surface of the recess 131. When the aerosol generating device 1 is in the closed position as shown in
In some embodiments, compression alone may be sufficient to cause release of the aerosol from the substrate. However, in many embodiments, a heating element 14 is arranged to supply heat to the aerosol generation chamber 13 in order to heat the aerosol generating substrate and generate the aerosol. In such embodiments, the application of pressure increases the yield of aerosol from the aerosol generating substrate compared to heating alone. In the embodiment of
In further alternative embodiments, heating may be supplied without the use of a heating element 14 in the device 1. For example, the portion 2 of aerosol generating substrate may also comprise a pressure-activated heat generating element such as a capsule of ingredients for an exothermic reaction.
The first housing element 11 may be formed from a thermally conductive material, such as a metal (e.g. aluminium), in order to allow heat transfer from the heating element 14 to the aerosol generating chamber 13. However, the spacing between the heating element 14 and the aerosol generating chamber 13 is preferably minimized, and the first and second housing elements 11, 12 preferably comprise a heat-resistant material such as polyethylene terephthalate (PET), polybutylene terephthalate (PBT), or polyamide (PA) in order to prevent thermal deformation or melting. The heat-resistant material may be a super engineering plastic such as polyimide (PI), polyphenylenesulfide (PPS) or polyether ether ketone (PEEK).
The device 1 also comprises an air flow channel 15 through the aerosol generation chamber 13, which is provided in order to extract the generated aerosol from the aerosol generation chamber 13. In the embodiment of
In the embodiment shown in
In
The substrate may for example comprise nicotine or tobacco and an aerosol former. Tobacco may take the form of various materials such as shredded tobacco, granulated tobacco, tobacco leaf and/or reconstituted tobacco. Suitable aerosol formers include: a polyol such as sorbitol, glycerol, and glycols like propylene glycol or triethylene glycol; a non-polyol such as monohydric alcohols, acids such as lactic acid, glycerol derivatives, esters such as triacetin, triethylene glycol diacetate, triethyl citrate, glycerin or vegetable glycerin. In some embodiments, the aerosol generating agent may be glycerol, propylene glycol, or a mixture of glycerol and propylene glycol. The substrate may also comprise at least one of a gelling agent, a binding agent, a stabilizing agent, and a humectant.
The substrate is porous such that air can flow through the substrate and collect aerosol as it does so. The substrate may for example be a foam, or packed strands or fibres. The substrate may be formed through an extrusion and/or rolling process into a stable shape.
The portion of aerosol generating substrate is designed to be thicker (larger depth D) than the distance between the compression surface 132 and the bottom surface of the recess 131 when the device 1 is in the closed position. This means that the portion 2 must be compressed in order to reach the closed position with a portion 2 of aerosol generating substrate in the device 1.
As shown in
In each of
As shown in
The inventors have found that compression of a substrate may result in improved heat transfer to the entire substrate, due to reduced amounts of air gaps therein, thus contributing to a shorter heat-up time to a suitable operating temperature, and a uniform amount of aerosol generation and an associated flavor throughout when the aerosol is inhaled.
Too weak compression i.e. too large ratio may not cause the anticipated results, and too strong compression i.e. too small ratio may cause an adverse effect due to reduced air-permeability through the substrate, such as an increased resistance to draw through a mouthpiece, and a reduced amount of aerosol delivery to a user.
Additionally, and independently from the specific compression surface 1321, the example of
Additionally, and independently from the specific compression surface 1322, the example of
Furthermore, the example of
In
On the other hand, in
The alternative configurations of
Additionally, the configuration of
As an additional variation, the air flow channel 15 may be provided partly in features of the first housing element 11 and partly in features of the second housing element 12. For example, each housing element may have a surface groove which, in the closed position, provides a part of the air flow channel 15.
In
Similarly, in
By providing a fixed outlet portion 112 or inlet portion 113, the air flow through the device 1 can be more predictably defined, even if the first housing element 11 and second housing element 12 are not perfectly positioned in the closed position, making the device 1 easier to operate.
In this example, each of the first and second housing elements 11, 12 comprises an inner portion 111, 121 and an outer portion 114, 122. The outer portions 114, 122 provide an outer casing which is configured to be handheld. For example, the outer portions 114, 122 may comprise a rigid metal casing supporting weaker inner portions 111, 121. Additionally or alternatively, the outer portions 114, 122 may have lower thermal conductivity than the inner portions, in order to protect a user's hand, for example by providing an elastomer grip on an outer surface of the device.
Additionally, in the first specific example, the air flow channel 15 comprises a plurality of distinct inlets 1511 (two in this case) in one end of the outer portion 122 of the second housing element 12, to provide the inlet 151. Air then flows into two channels extending in parallel, the channels being formed as grooves on a surface of the inner portion 121 of the second housing element 12 connected between the inlet and the outlet. The grooves are surrounded by and separated by portions of the compression surface 132, with a similar effect to the example of
The grooves provide a channel of varying width between the inlets and the outlet, with small inlets and a comparatively large outlet. When air is drawn through the device 1 in the closed position, this configuration creates a pressure gradient in the air flow channel 15 and reduces the air pressure adjacent to the portion 2 of aerosol generating substrate, further increasing aerosol generation.
Additionally, in the first specific example, the heating element 14 (not shown in
Furthermore, in the first specific example, the device 1 comprises several closing means 191, 192 and 193 for improving the closure of the device 1 in the closed position and thereby making the device 1 easier to operate with good aerosol generation.
Firstly, the first and second housing elements 11, 12 are held in place in the closed position using one or more releasable fasteners (e.g. pairs of opposing magnets 191) opposed to the hinge 16. Providing releasable fasteners means that the device 1 need not be held in the closed position by hand throughout aerosol generation, making the device easier to use.
Secondly, tab surfaces 192 are provided which can be manually operated by a user's hand to open and close the device 1 between the open and closed positions. Providing the tab surfaces 192 means that the strength of the releasable fasteners can be increased without making it difficult for a user to move the device 1 from the closed position to the open position.
Thirdly, a gasket 193 is provided which, in the closed position, improves sealing of the air flow channel 15 between the inlet(s) and the outlet. The gasket may, for example, be formed from an elastomer such as rubber.
The first specific example of device 1 may suitably be used with a portion 2 of aerosol generating substrate that has a thickness D that gives a compression ratio d/D of between 0.6 and 0.9, more preferably between 0.7 and 0.8, wherein d is the depth of the recess 131.
As shown in
Aerosol generating substrate includes tobacco, for example in dried or cured form, in some cases with additional ingredients for flavouring or producing a smoother or otherwise more pleasurable experience. In some examples, the substrate such as tobacco may be treated with a vaporising agent. The vaporising agent may improve the generation of vapour from the substrate. The vaporising agent may include, for example, a polyol such as glycerol, or a glycol such as propylene glycol. In some cases, the substrate may contain no tobacco, or even no nicotine, but instead may contain naturally or artificially derived ingredients for flavouring, volatilisation, improving smoothness, and/or providing other pleasurable effects. The substrate may be provided as a solid or paste type material in shredded, pelletised, powdered, granulated, strip or sheet form, optionally a combination of these. Additionally, the aerosol substrate may comprise a liquid or gel.
The aerosol generating device 1 could in some embodiments be referred to as a “heated tobacco device”, a “heat-not-burn tobacco device”, a “device for vaporising tobacco products”, and the like, with this being interpreted as a device suitable for achieving these effects. The features disclosed herein are equally applicable to devices which are designed to vaporise any aerosol substrate.
The aerosol generating device 1 may be arranged to receive the portion 2 of aerosol generating substrate in a pre-packaged substrate carrier. Filters, vapour collection regions, cooling regions, and other structure may also be included in some designs or the aerosol generating device 1.
As used herein, the term “fluid” shall be construed as generically describing non-solid materials of the type that are capable of flowing, including, but not limited to, liquids, pastes, gels, powders and the like. “Fluidized materials” shall be construed accordingly as materials which are inherently, or have been modified to behave as, fluids. Fluidization may include, but is not limited to, powdering, dissolving in a solvent, gelling, thickening, thinning and the like.
As used herein, the term “volatile” means a substance capable of readily changing from the solid or liquid state to the gaseous state. As a non-limiting example, a volatile substance may be one which has a boiling or sublimation temperature close to room temperature at ambient pressure. Accordingly “volatilize” or “volatilise” shall be construed as meaning to render (a material) volatile and/or to cause to evaporate or disperse in vapour.
As used herein, the term “vapour” (or “vapor”) means: (i) the form into which liquids are naturally converted by the action of a sufficient degree of heat; or (ii) particles of liquid/moisture that are suspended in the atmosphere and visible as clouds of steam/smoke; or (iii) a fluid that fills a space like a gas but, being below its critical temperature, can be liquefied by pressure alone.
Consistently with this definition the term “vaporise” (or “vaporize”) means: (i) to change, or cause the change into vapour; and (ii) where the particles change physical state (i.e. from liquid or solid into the gaseous state).
As used herein, the term “atomise” (or “atomize”) shall mean: (i) to turn (a substance, especially a liquid) into very small particles or droplets; and (ii) where the particles remain in the same physical state (liquid or solid) as they were prior to atomization.
As used herein, the term “aerosol” shall mean a system of particles dispersed in the air or in a gas, such as mist, fog, or smoke. Accordingly the term “aerosolise” (or “aerosolize”) means to make into an aerosol and/or to disperse as an aerosol. Note that the meaning of aerosol/aerosolise is consistent with each of volatilise, atomise and vaporise as defined above. For the avoidance of doubt, aerosol is used to consistently describe mists or droplets comprising atomised, volatilised or vaporised particles. Aerosol also includes mists or droplets comprising any combination of atomised, volatilised or vaporised particles.
Claims
1. A system comprising an aerosol generating device and a portion of aerosol generating substrate, the aerosol generating device comprising first and second housing elements configured to move between an open position and a closed position,
- wherein, in the closed position, the first and second housing elements together define an aerosol generation chamber configured to enclose the portion of aerosol generating substrate, and further define an air flow channel comprising an inlet, an outlet and the aerosol generation chamber, the first housing element comprising a recess for receiving the portion of aerosol generating substrate, wherein the recess comprises a flat bottom surface, and
- the second housing element comprising a compression surface for compressing the portion of aerosol generating substrate towards the bottom surface of the recess, the compression surface and the bottom surface being opposing surfaces of the aerosol generation chamber,
- wherein the portion of aerosol generating substrate is cuboid and a thickness D of the portion before use in the aerosol generating device is greater than a distance d between the compression surface and the bottom surface of the recess when the first and second housing elements are in the closed position.
2. The system according to claim 1, wherein a compression ratio d/D between the thickness D of the portion before use and the distance d between the compression surface and the bottom surface of the recess is between 0.6 and 0.9.
3. The system according to claim 1, wherein the first and second housing elements are connected by a hinge.
4. The system according to claim 1, the aerosol generating device further comprising a fastener for holding the first and second housing elements in the closed position.
5. The system according to claim 1, the aerosol generating device further comprising a gasket configured to, in the closed position, seal the air flow channel between the inlet and the outlet.
6. The system according to claim 1, the aerosol generating device further comprising a heating element arranged to supply heat to the aerosol generation chamber through the bottom surface or the compression surface.
7. The system according to claim 1, wherein the first housing element and/or the second housing element comprises an insulating member at least partly enclosing the aerosol generation chamber.
8. The system according to claim 1, wherein the second housing element additionally comprises second air flow channel configured to connect to the aerosol generation chamber in the closed position, and to provide the inlet and the outlet.
9. The system according to claim 8, wherein the second air flow channel comprises a groove in a surface of the second housing element.
10. The system according to claim 9, wherein the second air flow channel comprises a groove in the compression surface.
11. The system according to claim 10, wherein the second air flow channel comprises a plurality of grooves in the compression surface connected between the inlet and the outlet.
12. The system according to claim 11, wherein the inlet comprises a plurality of distinct inlets connected to the plurality of grooves.
13. The system according to claim 11, wherein the plurality of grooves are arranged in parallel between the inlet and the outlet.
14. The system according to claim 11, wherein a plurality of sections of the compression surface are separated by the plurality of grooves of the second air flow channel, and each of the plurality of sections of the compression surface is configured to compress the portion of aerosol generating substrate towards the bottom surface of the recess.
15. The system according to claim 1, further comprising an electrical power source, wherein the aerosol generating device is a portable handheld device.
16. The system according to claim 1, wherein a compression ratio d/D between the thickness D of the portion before use and the distance d between the compression surface and the bottom surface of the recess is between 0.7 and 0.8.
Type: Application
Filed: May 15, 2021
Publication Date: Jun 29, 2023
Applicant: JT International SA (Geneva)
Inventor: Takeshi Akiyama (Tokyo)
Application Number: 17/927,250