Aerosol-generating article and aerosol-generating system

The aerosol-generating article with a deformable airflow barrier addresses the risk of accidental ignition by blocking airflow until user-activated, enhancing safety and potentially flavor or quality.

JP7733004B2Active Publication Date: 2025-09-02JT INTERNATIONAL SA
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
JP2022562674
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-04-17
Filing Date
2021-04-14
Publication Date
2025-09-02
Estimated Expiration
2041-04-14

AI Technical Summary

Technical Problem

There is a need for aerosol-generating articles that reduce the likelihood of ignition using a flame or other ignition source, as users may unintentionally attempt to ignite them in a conventional manner.

Method used

The aerosol-generating article includes an airflow barrier, such as a deformable capsule, that blocks airflow until deformed by the user, preventing ignition and allowing airflow for aerosol generation, and may incorporate a flavoring agent or vapor cooling substance.

Benefits of technology

The solution effectively reduces the risk of ignition and enhances user safety by ensuring airflow is only permitted when intentionally activated, while potentially adding flavor or improving aerosol quality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007733004000001
    Figure 0007733004000001
  • Figure 0007733004000002
    Figure 0007733004000002
  • Figure 0007733004000003
    Figure 0007733004000003
Patent Text Reader

Abstract

The aerosol-generating article (10) includes a wrapper (24), an aerosol-generating substrate (16) disposed within the wrapper (24) and forming a rod having an oral end (14) and a distal end (12) upstream of the oral end, and an airflow barrier (20) disposed within the wrapper (24). The airflow barrier (20) includes a deformable capsule (26) that, when in an undeformed state, substantially blocks airflow from the distal end (12) to the oral end (14). The deformable capsule (26) is deformable by a user to a deformed state that permits airflow from the distal end (12) to the oral end (14).
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates generally to aerosol-generating articles, and more particularly to aerosol-generating articles for use with an aerosol-generating device to heat the aerosol-generating article and generate an aerosol for inhalation by a user. Embodiments of the present disclosure also relate to an aerosol-generating system including the aerosol-generating device and the aerosol-generating article. [Background technology]

[0002] In recent years, devices that generate aerosols for inhalation by heating, rather than burning, an aerosol-generating substrate have become popular with consumers. Such devices can provide heat to the aerosol-generating substrate using one of several different techniques, including resistive heating and inductive heating.

[0003] Whatever technique is used to heat the aerosol-generating substrate, it may be convenient to provide the aerosol-generating substrate in the form of an aerosol-generating article configured for use with an aerosol-generating device. Aerosol-generating articles are well known in the art and typically include an aerosol-generating substrate located at the distal end of the aerosol-generating article and a filter located at the proximal (oral) end.

[0004] It is believed that a user may unintentionally attempt to ignite an aerosol-generating article in a conventional manner using a flame or other ignition source. Accordingly, there is a need to provide an aerosol-generating article for use with an aerosol-generating device that reduces the likelihood of ignition using a flame or other ignition source. Summary of the Invention [Means for solving the problem]

[0005] According to a first aspect of the present disclosure, Rapper and an aerosol-generating substrate disposed within the wrapper and forming a rod having a mouth end and a distal end upstream of the mouth end; an airflow barrier disposed within the wrapper; Including, the airflow barrier includes a deformable capsule that, in an undeformed state, substantially blocks airflow from the distal end to the oral end and is deformable by a user to a deformed state that permits airflow from the distal end to the oral end; An aerosol-generating article is provided.

[0006] The aerosol-generating article is configured for use with an aerosol-generating device to heat the aerosol-generating substrate without burning the aerosol-generating substrate to volatilize at least one component of the aerosol-generating substrate, thereby generating a vapor that cools and condenses to form an aerosol for inhalation by a user of the aerosol-generating device.

[0007] Generally, a vapor is a substance that is in the gas phase below its critical temperature, which means that it can be condensed into a liquid by increasing its pressure without decreasing its temperature. An aerosol, on the other hand, is a suspension of fine solid particles or liquid droplets in air or another gas. However, it should be noted that the terms "aerosol" and "vapor" may be used interchangeably herein, particularly with respect to the form of inhalable medium generated for inhalation by a user.

[0008] The undeformed airflow barrier substantially prevents airflow from the distal end of the rod to the oral end when the user inhales on the oral end, thereby reducing the likelihood that a user will be able to ignite the aerosol-generating substrate using an external ignition source, such as a flame lit at the distal end, because the airflow through the aerosol-generating article will be insufficient to enable ignition and / or sustain combustion of the aerosol-generating substrate.

[0009] The aerosol-generating substrate is typically located at the distal end of the rod. The aerosol-generating article may also include a filter located at the mouth end of the rod. The filter may comprise, for example, cellulose acetate fibers and / or paper.

[0010] The deformable capsule may have an outer dimension, e.g., an outer diameter, substantially equal to the diameter of the filter.The deformable capsule may have an outer dimension, e.g., an outer diameter, substantially equal to the inner diameter of the wrapper.

[0011] When the deformable capsule is in its undeformed state, it may span the interior cross-section of the wrapper and substantially block airflow from the distal end to the mouth end. When the deformable capsule is in its undeformed state, airflow between the exterior surface of the capsule and the interior surface of the wrapper is substantially blocked, thereby ensuring that airflow through the aerosol-generating substrate is substantially blocked.

[0012] The deformable capsule may have a cross-sectional area that is at least 90%, more preferably 95%, and even more preferably 98% to 100% of the cross-sectional area of ​​the filter, where the cross-sectional area of ​​the filter is the cross-sectional area or surface area of ​​the filter without taking into account the thickness of the wrapper (e.g., plug wrap).

[0013] The capsule may be configured to allow airflow between the outer surface of the capsule and the inner surface of the wrapper from the distal end to the mouth end when the capsule is in a deformed state, thereby facilitating airflow through the aerosol-generating substrate and enabling a user to inhale aerosol generated during use of the aerosol-generating article in an aerosol-generating device.

[0014] In a first example, the deformable capsule may be configured to be deformed from an undeformed state to a deformed state upon application of force by a user's finger. When a user wishes to use the aerosol-generating article in an aerosol generating device to generate an aerosol, the capsule may be easily and conveniently deformed by the user to allow airflow from the distal end to the oral end. The deformable capsule may have a crush strength of 4.9 N to 24.5 N when in the undeformed state. A force within this range can be conveniently applied by a user's finger, allowing the deformable capsule to be easily transformed from the undeformed state to the deformed state by a user without the need for a separate crushing device.

[0015] In a second example, the deformable capsule may have a crush strength of greater than 24.5 N, optionally between 25 N and 100 N, preferably between 25 N and 50 N. Thus, the deformable capsule may be configured to deform from an undeformed state to a deformed state upon application of a force greater than 24.5 N, optionally between 25 N and 100 N, preferably between about 25 N and 50 N. In this example, the relatively high crush strength of the deformable capsule means that the deformable capsule cannot be crushed by a user's fingers, thereby ensuring that the aerosol-generating article is child-resistant. A relatively high crush strength may also facilitate the manufacture of aerosol-generating articles according to the present disclosure, because the aerosol-generating article can be processed and manufactured using conventional manufacturing machinery without risk of the deformable capsule being crushed by forces applied during processing and manufacturing. This is true even when the outer diameter of the deformable capsule is substantially equal to the diameter of the filter.

[0016] In this second example, a crushing device may be required to apply the necessary crushing force to the deformable capsule to transform it from an undeformed state to a deformed state. The crushing device may be specifically configured for use with the aerosol-generating article. The crushing device may be provided as part of the aerosol-generating device, such that the aerosol-generating article can only be used with aerosol-generating devices that have the necessary crushing device.

[0017] The deformable capsule may be substantially spherical in its undeformed state. Spherical capsules can be easily processed using conventional manufacturing machinery, thereby simplifying production and facilitating the manufacture of aerosol-generating articles according to the present disclosure. Spherical capsules may also be a particularly convenient shape for substantially blocking airflow through the aerosol-generating article when the capsule is in its undeformed state.

[0018] The deformable capsule may be a crushable capsule. The use of a crushable capsule allows the capsule to transform from an undeformed state to a deformed state while remaining intact.

[0019] The deformable capsule may be a frangible capsule or may include a frangible shell. When a force exceeding its compressive strength is applied to the frangible capsule, the frangible capsule breaks into fragments, punctures, or collapses. Thus, increased airflow through the aerosol-generating article may be achieved through the use of a frangible capsule.

[0020] The deformable capsule may contain a flavoring agent that can be released upon transformation of the capsule from an undeformed state to a deformed state. The flavoring agent may be a liquid flavoring agent. Incorporating a flavoring agent into the deformable capsule may provide an additional flavor to the user during use of the aerosol-generating article in the aerosol-generating device. The flavoring agent may be used to enhance the flavor generated upon heating of the aerosol-generating substrate or to provide a different flavor, including, but not limited to, menthol, mint, or berry.

[0021] The frangible shell may be substantially impermeable when the capsule is in an undeformed state, and the flavoring agent may be contained within the impermeable shell. Thus, the flavoring agent may be stored within the capsule prior to use of the aerosol-generating article, thereby preventing (or at least minimizing) flavoring agent degradation and improving the shelf life of the aerosol-generating article.

[0022] The deformable capsule may include a layer or discrete component that may include a vapor cooling substance. The layer may be an outer layer of the capsule. The discrete component may be a powder or the like contained within the capsule and exposed to vapor when the capsule is crushed. The vapor cooling substance may include polylactic acid. The vapor cooling substance facilitates cooling of the vapor or aerosol as it flows toward the mouth end of the rod, forming an aerosol with suitable properties for inhalation by a user.

[0023] The deformable capsule may be located within the wrapper downstream of the aerosol-generating substrate. The deformable capsule may be located within the wrapper upstream of the mouth end, or upstream of any filter located at the mouth end.

[0024] The aerosol-generating article may include a vapor cooling element positioned within the wrapper downstream of the aerosol-generating substrate. The vapor cooling element facilitates cooling of the vapor as it flows from the aerosol-generating substrate toward the mouth end to form an aerosol with suitable properties for inhalation by a user. The deformable capsule may be positioned downstream of the vapor cooling element. Such positioning may aid in improving flavor enhancement as the vapor or aerosol flows downstream from the vapor cooling element toward the mouth end.

[0025] The vapor cooling element may comprise a hollow paper tube that may have a thickness that exceeds the thickness of the wrapper, thereby facilitating the manufacture of an aerosol-generating article according to the present disclosure.

[0026] The aerosol-generating substrate may comprise a non-liquid aerosol-generating material, such as any type of solid or semi-solid material. Exemplary types of aerosol-generating substrate include powders, granules, pellets, shreds, strands, particles, gels, strips, loose-leaf, cut-leaf, cut-filler, porous materials, foam materials, or sheets. The aerosol-generating substrate may comprise a plant-derived material, particularly tobacco. The aerosol-generating substrate may advantageously comprise reconstituted tobacco.

[0027] The aerosol-forming substrate may comprise a plug of aerosol-generating material, i.e. the aerosol-generating substrate may comprise an aerosol-generating plug, or the aerosol-generating substrate may comprise a tobacco plug.

[0028] The aerosol-generating substrate may contain an aerosol former. Examples of aerosol formers include polyhydric alcohols such as glycerin or propylene glycol, and mixtures thereof. Typically, the aerosol-generating substrate may contain about 5% to about 50% aerosol former by dry weight. In some embodiments, the aerosol-generating substrate may contain about 10% to about 20% aerosol former by dry weight, and in some cases about 15% aerosol former by dry weight.

[0029] Upon heating, the aerosol-forming substrate may release volatile compounds, which may include nicotine and / or flavor compounds, such as tobacco flavorings.

[0030] The wrapper may comprise a substantially electrically non-conductive and non-magnetically permeable material, such as a paper wrapper. The use of a wrapper may facilitate manufacturing and handling of the aerosol-generating article and may enhance aerosol generation.

[0031] According to a second aspect of the present disclosure, an aerosol-generating article according to the first aspect; an aerosol generating device including a crushing device configured to allow a user to apply force to the deformable capsule, thereby enabling the user to deform the capsule from an undeformed state to a deformed state, and a heater for heating the aerosol-generating substrate to generate an aerosol for inhalation by the user; An aerosol generating system is provided, comprising:

[0032] The aerosol-generating article may be as defined above. As described above, the crushing device enables a user to apply the necessary crushing force to the deformable capsule to transform the capsule from an undeformed state to a deformed state, and to produce a capsule with a sufficiently high crush strength (greater than 24.5 N) so that the aerosol-generating article is child-safe.

[0033] The crushing device may include a user-actuable lever and a crushing plate. The user-actuable lever may be pivotally attached to a device body or housing of the aerosol generating device and may be movable between a first position and a second position. Upon user manipulation to move the user-actuable lever from the first position to the second position, the crushing plate may similarly move from a retracted position to an advanced position in which the crushing plate compresses the deformable capsule.

[0034] The user-actuatable lever and crush plate may be configured to provide a mechanical advantage such that the force applied by the crush plate to the deformable capsule is greater than the force applied by the user to the user-actuatable lever, thus allowing the crushing device to relatively easily crush deformable capsules having high crush strengths (greater than 24.5 N).

[0035] The user-actuatable lever may be biased to the first position, such that the crush plate is similarly biased to the retracted position unless a force is applied to the user-actuatable lever by the user.

[0036] The heater may include a heating blade.

[0037] The heater may include a heating tube that includes a chamber dimensioned to accommodate at least the aerosol-generating substrate of the aerosol-generating article.

[0038] The heater may include a resistive heater, which may include a resistive heating element, for example, a resistive heating blade or a resistive heating tube.

[0039] The heater may include an inductively heatable susceptor, and the aerosol-generating apparatus may include an electromagnetic field generator, such as an induction coil, configured to generate an alternating electromagnetic field for inductively heating the inductively heatable susceptor. This configuration provides a particularly convenient approach for heating the aerosol-generating substrate using induction heating.

[0040] The induction coil may comprise Litz wire or Litz cable. However, it will be understood that other materials may be used. The induction coil may be substantially helical and may extend around a heating chamber in which the aerosol-generating article is placed during use. The circular cross-section of a helical induction coil may, for example, facilitate insertion of an aerosol-generating article, including an aerosol-generating substrate and, optionally, one or more of the inductively heatable susceptors, into the heating chamber, and ensure uniform heating of the aerosol-generating substrate.

[0041] Inductively heatable susceptors may include, but are not limited to, one or more of aluminum, iron, nickel, stainless steel, and alloys thereof, such as nickel-chromium or nickel-copper. Application of an electromagnetic field in the vicinity of the susceptor can cause the susceptor to generate heat by eddy currents and magnetic hysteresis losses resulting in electromagnetic-to-thermal energy conversion.

[0042] The induction coil may be configured, in use, to operate with a varying electromagnetic field having a magnetic flux density of about 20 mT to about 2.0 T (at its highest density point).

[0043] The aerosol generating device may include a power supply and circuitry that may be configured to operate at high frequencies. The power supply and circuitry may be configured to operate at frequencies of about 80 kHz to 500 kHz, optionally about 150 kHz to 250 kHz, and optionally about 200 kHz. The power supply and circuitry may be configured to operate at higher frequencies, such as in the MHz range, depending on the type of inductively heatable susceptor used. [Brief explanation of the drawings]

[0044] [Figure 1] FIG. 2 is a schematic cross-sectional view of an aerosol-generating article illustrating how air flow through the article from the distal end to the mouth end is substantially prevented by an air flow barrier. [Figure 2] 2 is a schematic cross-sectional view of the aerosol-generating article of FIG. 1 showing how airflow is passed from the distal end to the mouth end after deformation of the airflow barrier. FIG. [Figure 3] 3 is a schematic cross-sectional view of a first example of an aerosol generation system including an electrically powered aerosol generating device and the first example of the aerosol-generating article shown in FIGS. 1 and 2. FIG. [Figure 4] 3 is a schematic cross-sectional view of a second example of an aerosol generation system including an electrically powered aerosol generating device and a second example of the aerosol-generating article shown in FIGS. 1 and 2. FIG. [Figure 5] 3 is a schematic cross-sectional view of a portion of a third example of an aerosol generating system including an electrically powered aerosol generating device and the third example of the aerosol-generating article shown in FIGS. 1 and 2. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0045] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which:

[0046] 1 and 2, a first example of an aerosol-generating article 10 is illustrated. The aerosol-generating article 10 is elongated and substantially cylindrical, being of the so-called "stick" type. Airflow through the aerosol-generating article 10 is from left to right as viewed in FIG. 2, from the distal (or upstream) end 12 to the oral (or downstream) end 14, as indicated by the arrows.

[0047] The aerosol-generating article 10 includes the following elements, arranged sequentially and coaxially in a downstream direction, i.e., from the distal end 12 to the oral end 14: an aerosol-generating substrate 16, an optional vapor cooling element 18, an airflow barrier 20 (e.g., a deformable capsule 26), and an optional filter 22 comprising, for example, cellulose acetate fibers. All of these elements are assembled within a wrapper 24 to form a rod that holds the elements in place to form the aerosol-generating article 10. The wrapper 24 is substantially non-conductive and non-magnetically permeable and typically comprises a paper wrapper, such as that formed from cigarette paper.

[0048] The aerosol-forming substrate 16 comprises a solid or semi-solid material (i.e., a non-liquid material) and may include plant-derived materials, particularly tobacco. The aerosol-forming substrate 16 typically comprises a tobacco plug. The aerosol-forming substrate 16 may also include an aerosol former, such as glycerin or propylene glycol, to facilitate vapor or aerosol generation when heated.

[0049] The vapor cooling element 18 typically includes a hollow paper tube 18a having a thickness greater than that of the paper wrapper 24. As heated vapor flows downstream through the vapor cooling element 18, from the aerosol-generating substrate 16 toward the mouth end 14, the vapor cools and condenses to form an aerosol with suitable properties for inhalation by a user. The vapor cooling element 18 (e.g., hollow paper tube 18a) may be in contact with the aerosol-generating substrate 16 at a first end and / or with an airflow barrier 20 (e.g., deformable capsule 26) at a second end. Ventilation may be provided in the hollow paper tube 18a and wrapper 24, such as by multiple perforations.

[0050] The air flow barrier 20 includes a deformable capsule 26 that can be transformed by a user from an initial, undeformed state, as shown in FIG. 1, to a deformed state, as shown schematically in FIG. 2. Note that the deformed state shown in FIG. 2 is highly schematic, and the capsule 26 may simply be crushed or broken into many pieces when deformed by a user. When the capsule 26 is in the undeformed state shown in FIG. 1, the capsule 26 blocks airflow from the distal end 12 to the mouth end 14 of the aerosol-generating article 10 through the aerosol-generating substrate 16, as shown schematically by the arrows in FIG. 1. When the capsule 26 is in the deformed state shown in FIG. 2, the capsule 26 allows airflow through the aerosol-generating substrate 16 from the distal end 12 to the mouth end 14 of the aerosol-generating article 10, as shown schematically by the arrows in FIG. 2.

[0051] 1 , the deformable capsule 26 is substantially spherical and has an outer diameter substantially equal to the inner diameter of the wrapper 24 and the diameter of the filter 22. When the deformable capsule 26 is in its undeformed state, the deformable capsule 26 spans the cross-section of the air flow passage 27 defined by the paper wrapper 24 and has a cross-sectional area substantially equal to the free cross-section of the interior of the paper wrapper 24. Thus, the air flow passage 27 defined by the paper wrapper 24 is substantially occluded (i.e., blocked) to substantially prevent or restrict air flow between the outer surface of the deformable capsule 26 and the inner surface of the paper wrapper 24. Air flow from the distal end 12 to the mouth end 14 of the aerosol-generating article 10 is thereby substantially prevented or restricted, thereby creating a high resistance to drawing when the deformable capsule 26 is in its undeformed state.

[0052] Prior to use of the aerosol-generating article 10 with an electrically powered aerosol generator, the deformable capsule 26 must be deformed to change it from the undeformed state shown in Figure 1 to the deformed state shown in Figure 2. As can be seen from Figure 2, when the deformable capsule 26 is in the deformed state, the air flow passage 27 is no longer completely blocked, and air can flow along the air flow passage 27, for example, between the outer surface of the deformable capsule 26 and the inner surface of the paper wrapper 24. Thus, when the deformable capsule 26 is in the deformed state, airflow from the distal end 12 to the mouth end 14 of the aerosol-generating article 10 is permitted, enabling the aerosol-generating article 10 to be used with an electrically powered aerosol generator.

[0053] 1 and 2 such that when the capsule 26 is crushed, it remains intact or is punctured, changing from an undeformed state to a deformed state. In another example, the deformable capsule 26 may be a frangible capsule including a frangible shell 28. When a force exceeding its compressive strength is applied to the capsule 26, the frangible capsule breaks into pieces, allowing air to flow through the air flow passage 27.

[0054] The deformable capsule 26 can contain a flavoring agent 23. The flavoring agent 23 is released upon deformation of the capsule 26 and enhances or modulates the flavor of the aerosol delivered to a user when the aerosol-generating article 10 is used with an electrically powered aerosol generating device. The flavoring agent 23 can be a liquid flavoring agent 23, in which case the deformable capsule 26 preferably includes an impermeable shell 28. The impermeable shell 28 retains the flavoring agent 23 within the capsule 26 when the capsule 26 is in an undeformed state. The impermeable shell 28 breaks or ruptures when the capsule 26 is deformed, thereby releasing the flavoring agent 23.

[0055] To further facilitate cooling of the heated vapor as it flows from the aerosol-generating substrate 16 towards the mouth end 14, the deformable capsule 26 may include an outer layer 29 comprising a vapor-cooling substance 25. The vapor-cooling substance 25 may comprise, for example, polylactic acid, although it will be understood that other vapor-cooling substances, such as cooling liquids, may also be used.

[0056] To change the deformable capsule 26 from the undeformed state shown in FIG. 1 to the deformed state shown in FIG. 2, a compressive force exceeding the crush strength of the capsule 26 must be applied to the deformable capsule 26. In a first embodiment, the deformable capsule 26 has a crush strength of approximately 4.9 N to approximately 24.5 N. At crush strengths within this range, the deformable capsule 26 can be changed from the undeformed state to the deformed state upon application of a compressive force by a user's fingers, as indicated by arrow A in FIG. 1, thereby allowing the deformable capsule 26 to be easily and conveniently deformed by a user without the need for a separate crushing tool. In a second embodiment, the deformable capsule 26 has a crush strength greater than 24.5 N, optionally 25 N to 100 N, and preferably 25 N to 50 N. At crush strengths within these ranges, the deformable capsule 26 cannot be easily deformed upon application of a compressive force by a user's fingers, thereby ensuring that the aerosol-generating article 10 is child-resistant. Instead, a separate crushing device must be used to apply the necessary compressive force to and deform capsule 26. An example of a suitable crushing device is described later in this specification with reference to FIG.

[0057] Referring now to Figure 3, a first example of an aerosol generation system 1 is shown schematically. The aerosol generation system 1 includes an electrically powered aerosol generating device 30 and the first example of the aerosol-generating article 10 described above. The aerosol generating device 30 has a proximal end 32 and a distal end 34 and includes a device body 36. The device body 36 includes a power source 38 and a controller 40, which may be configured to operate at high frequencies. The power source 38 typically includes one or more batteries, which may be inductively rechargeable, for example.

[0058] The aerosol generating device 30 includes a substantially cylindrical heating chamber 42 having an air inlet 42a. The heating chamber 42 is disposed at the proximal end 32 of the aerosol generating device 30 and is configured to accommodate the substantially cylindrical aerosol-generating article 10. The aerosol generating device 30 includes a plurality of air inlets 44 formed in the device body 36 that deliver air to the heating chamber 42 through the air inlet 42a.

[0059] The aerosol-generating article 10 is placed in the heating chamber 42 by inserting the distal end 12 into the heating chamber 42 through the opening 46. The heating chamber 42 and the aerosol-generating article 10 are dimensioned so that the mouth end 14, and particularly the filter 22, protrudes from the heating chamber 42 at the proximal end 32 of the aerosol generating device 30. Prior to inserting the aerosol-generating article 10 into the heating chamber 42, a compressive force is applied to the deformable capsule 26 in the manner described above to change the deformable capsule 26 from an undeformed state to a deformed state, thereby allowing air to flow into the aerosol-generating article 10 through the air inlets 44, 42a.

[0060] The aerosol-generating device 30 includes a resistive heating element 48 mounted on the device body 36 so as to protrude into the heating chamber 42. The heating element 48 is thus inserted into the aerosol-generating substrate 16 during insertion of the aerosol-generating article 10 into the heating chamber 42 by a user. For example, the heating element 48 may be a blade or elongated pin that penetrates the aerosol-generating substrate 16 when the aerosol-generating article 10 is inserted into the heating chamber 42.

[0061] During operation of the aerosol-generating device 30, the power supply 38 supplies electrical energy to the resistive heating element 48, causing it to heat. Heat is transferred from the resistive heating element 48 to the aerosol-generating substrate 16, heating it without burning it and thereby generating vapor. Evaporation of the aerosol-generating substrate 16 is enhanced by adding air from the ambient environment through the air inlets 44, 42a or opening 46. Vapor generated by heating the aerosol-generating substrate 16 cools and condenses as it flows through the air flow passage 27 and vapor-cooling element 18. In the example where the deformable capsule 26 contains a vapor-cooling material 25, as described above, further cooling occurs as the vapor or aerosol flows around the deformed capsule 26. The resulting aerosol ultimately passes through the filter 22 and is inhaled by the user. It will be appreciated that the flow of air through the aerosol-generating article 10, i.e., from the air inlet 44, 42a or opening 46 through the air flow path 27 and filter 22, is assisted by the negative pressure created by the user drawing air from the outlet side of the device 10 through the filter 22.

[0062] Referring now to Figure 4, there is shown schematically a second example of an aerosol generation system 2. The aerosol generation system 2 is similar to the aerosol generation system 1 described above with reference to Figure 3, and corresponding components are identified using the same reference numerals.

[0063] The aerosol generating system 2 includes an electrically powered aerosol generating device 50 and the second example of the aerosol-generating article 10 described above.

[0064] The aerosol generating device 50 includes a magnetic field generator 52 for generating an electromagnetic field. The magnetic field generator 52 includes a substantially helical induction coil 54. The induction coil 54 has a circular cross section and extends around the substantially cylindrical heating chamber 42. The induction coil 54 can be energized by a power supply 38 and a controller 40. The controller 40 includes, among other electronic components, an inverter configured to convert direct current from the power supply 38 into alternating, high-frequency current for the induction coil 54.

[0065] The aerosol-generating system 2 further includes an inductively heatable susceptor (not shown) located adjacent to or in contact with the aerosol-generating substrate 16. The inductively heatable susceptor may include, for example, a blade-, pin-, or ring-shaped susceptor attached to the device body in the same manner as the resistive heating element 48 shown in FIG. 3. Alternatively, the inductively heatable susceptor may include a particulate susceptor material dispersed throughout the aerosol-generating substrate 16 during manufacture and assembly of the aerosol-generating article 10.

[0066] Regardless of the particular configuration of the inductively heatable susceptor, and as will be understood by those skilled in the art, when the induction coil 54 is energized during use of the aerosol-generating system 2, an alternating, time-varying electromagnetic field is generated. This electromagnetic field couples with the inductively heatable susceptor, generating eddy currents and / or magnetic hysteresis losses within the susceptor, causing the susceptor to heat. The heat is then transferred from the inductively heatable susceptor to the aerosol-generating substrate 16, e.g., by conduction, radiation, and convection, heating the aerosol-generating substrate 16 without burning it, thereby producing vapor. The flow of vapor and aerosol through the aerosol-generating apparatus 50 is the same as that described above with respect to the aerosol-generating apparatus 30 of FIG. 3.

[0067] Referring now to Figure 5, there is shown schematically a third example of a portion of an aerosol generation system 3. The aerosol generation system 3 is similar to the aerosol generation systems 1, 2 described above with reference to Figures 3 and 4, and corresponding components are identified using the same reference numerals.

[0068] The aerosol-generating system 3 includes an aerosol-generating device 60 for receiving the aerosol-generating article 10. Those skilled in the art will appreciate that only a portion of the aerosol-generating device 60 is shown in FIG. 5 , and in particular, the power supply and controller described above are not shown. The aerosol-generating device 60 includes a cup-shaped heater 62 that receives the distal end 12 of the aerosol-generating article 10 when the aerosol-generating article 10 is inserted into the aerosol-generating device 60. The cup-shaped heater 62 can be a resistive heater as described above with reference to FIG. 3 , an inductively heatable susceptor as described above with reference to FIG. 4 , or a metal cup with a thin-film heater mounted thereon as described in International Publication No. WO 2020 / 074611 A1, entitled “Aerosol generation device and heating chamber therefor.” In all cases, it will be understood that during operation of the aerosol-generating device 60, heat is transferred from the cup-shaped heater 62 to the adjacent aerosol-generating substrate 16, thereby heating the aerosol-generating substrate 16 to produce vapor without burning it.

[0069] The aerosol generating device 60 is particularly suitable for use with an aerosol-generating article 10 in which the deformable capsule 26 has a high crushing strength, e.g., greater than 24.5 N as described above, and therefore cannot be crushed by a compressive force applied directly by a user's fingers. Accordingly, the aerosol generating device 60 includes a crushing tool 64 configured to enable a user to apply an appropriate crushing force to the deformable capsule 26, transforming the capsule 26 from the undeformed state shown in Figures 1 and 5 to the deformed state shown in Figure 2. As will be understood by those skilled in the art, deformation of the capsule 26 occurs after the aerosol-generating article 10 is inserted into the aerosol generating device 60.

[0070] In the illustrated example, the crushing device 64 includes a pair of user-actuable levers 66 and corresponding crushing plates 68 disposed at diametrically opposed positions on the device body 36. Each of the user-actuable levers 66 is pivotally mounted on the device body 36 by a pivot mount 70 and is movable by a user in the direction of arrow B toward the device body 36 from a first position to a second position shown in FIG.

[0071] The aerosol generating device 60 is dimensioned so that the user-actuatable lever 66 can be grasped and simultaneously moved by a user from a first position to a second position in the direction of arrow B. Upon the user's movement of the user-actuatable lever 66 from the first position to the second position, the corresponding crush plate 68 similarly moves about the pivot mount 70 in the direction of arrow C from a retracted position shown in FIG. 5 to an advanced position in which the crush plate 68 contacts the deformable capsule 26. As the crush plates 68 move toward each other in the direction of arrow C and contact the deformable capsule 26, the deformable capsule 26 is crushed between the crush plates 68, changing from the undeformed state shown in FIGS. 1 and 5 to the deformed state shown in FIG. 2.

[0072] The user-actuatable lever 66 is spring biased to a first position, so that when the user-actuatable lever 66 is released by the user, the crush plate 68 is likewise biased to the retracted position shown in FIG.

[0073] The user-actuatable lever 66 and the crush plate 68 are configured to provide a mechanical advantage such that the force applied by the crush plate 68 to the deformable capsule 26 is greater than the force applied by the user to the user-actuatable lever 66. This means that the deformable capsule 26, which has a high crush strength, can be easily crushed using the crushing device 64.

[0074] While exemplary embodiments have been described in the preceding paragraphs, it should be understood that various modifications can be made to these embodiments without departing from the scope of the appended claims. Thus, the breadth and scope of the claims should not be limited to the above-described exemplary embodiments.

[0075] Any combination of the above-described features in all possible variations thereof is encompassed by the present disclosure unless otherwise indicated herein or otherwise clearly contradicted by context.

[0076] Unless the context clearly dictates otherwise, throughout this specification and the claims, the words "comprise," "comprising," and the like are to be construed in an inclusive sense, i.e., "including but not limited to," as opposed to an exclusive or exhaustive sense.

Claims

1. Rapper (24) and an aerosol-generating substrate (16) disposed within the wrapper (24); an air flow barrier (20) disposed within the wrapper (24); 1. An aerosol-generating article (10) comprising: The air flow barrier (20) includes a deformable capsule (26) that, in an undeformed state, substantially blocks air flow from the distal end (12) to the oral end (14) and is deformable by a user to a deformed state that permits air flow from the distal end (12) to the oral end (14). An aerosol-generating article (10).

2. 2. The aerosol-generating article of claim 1, wherein when the deformable capsule (26) is in the undeformed state, the capsule (26) spans the interior cross section of the wrapper (24) and substantially blocks airflow from the distal end (12) to the mouth end (14).

3. 3. The aerosol-generating article of claim 1, wherein the capsule is configured to pass air between an outer surface of the capsule and an inner surface of the wrapper from the distal end to the mouth end when the capsule is in the deformed state.

4. 4. The aerosol-generating article of claim 1, wherein the deformable capsule (26) is configured to deform from the undeformed state to the deformed state upon application of force by a user's finger.

5. 4. An aerosol-generating article as claimed in any one of claims 1 to 3, wherein the deformable capsule (26) is configured to deform from the undeformed state to the deformed state upon application of a force greater than 24.5 N.

6. An aerosol-generating article according to any one of claims 1 to 5, wherein the deformable capsule (26) is substantially spherical in its undeformed state.

7. 7. An aerosol-generating article according to any one of claims 1 to 6, wherein the deformable capsule (26) is a crushable capsule or a frangible capsule comprising a frangible shell (28).

8. 8. The aerosol-generating article of claim 1, wherein the deformable capsule (26) contains a flavoring agent (23) that is released upon deformation of the capsule (26) from the undeformed state to the deformed state by a user.

9. The deformable capsule (26) is the frangible capsule including the frangible shell (28), 9. An aerosol-generating article as described in claim 8, which is dependent on claim 7, wherein the frangible shell (28) is substantially impermeable when the capsule (26) is in the undeformed state, and the flavoring agent (23) is contained within the frangible shell (28).

10. An aerosol-generating article according to any one of the preceding claims, wherein the deformable capsule (26) comprises a layer (29) or a discontinuous part containing a vapor-cooling substance (25).

11. An aerosol-generating article according to any one of claims 1 to 10, wherein the deformable capsule (26) is positioned downstream of the aerosol-generating substrate (16).

12. 12. The aerosol-generating article of claim 1, wherein the aerosol-generating article (10) includes a vapor cooling element (18) positioned within the wrapper (24) downstream of the aerosol-generating substrate (16), and the deformable capsule (26) is positioned downstream of the vapor cooling element (18).

13. 13. The aerosol-generating article of claim 12, wherein the vapor cooling element (18) comprises a hollow paper tube (18a) having a thickness greater than the thickness of the wrapper (24).

14. An aerosol-generating article (10) according to any one of claims 1 to 13; an aerosol generating device (60) including a crushing device (64) configured to allow a user to apply a force to the deformable capsule (26) to enable the user to deform the capsule (26) from the undeformed state to the deformed state, and a heater (62) for heating the aerosol-generating substrate (16) to generate an aerosol for inhalation by a user; An aerosol generating system (1, 2, 3) comprising:

15. 15. The aerosol generation system of claim 14, wherein the crushing device (64) includes a user-actuable lever (66) and a corresponding crushing plate (68), the user-actuable lever (66) being pivotally attached to the device body (36) of the aerosol generation device (60) and movable between a first position and a second position, and upon user operation to move the user-actuable lever (66) from the first position to the second position, the crushing plate (68) being movable from a retracted position to an advanced position in which the crushing plate (68) compresses the deformable capsule (26).

Citation Information

Patent Citations

  • Heated aerosol generator with airflow barrier

    JP2016538847A

  • Aerosol generating article equipped with a highly suction-resistant, detachable freshener delivery element.

    JP2018514203A

  • Heated aerosol-generating article comprising a liquid aerosol-forming substrate and a combustible heat-generating element

    JP2019521658A