Cartridge of a stick-shaped aerosol-generating article for use with an induction-heated aerosol generator
The cartridge design for stick-shaped aerosol-generating articles with vaporization and reservoir chambers addresses the incompatibility of liquid substrates in existing systems, enabling efficient aerosol generation and appearance similarity to conventional cigarettes, while being compatible with induction-heated devices.
Patent Information
- Application Number
- JP2023533841
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-03
- Filing Date
- 2021-12-02
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2041-12-02
AI Technical Summary
Existing aerosol-generating systems designed for solid substrates, such as conventional cigarettes, are not compatible with liquid substrates, necessitating a different system design for liquid-based aerosol-generating articles.
A cartridge design for a stick-shaped aerosol-generating article that includes a vaporization chamber at the distal end and a reservoir chamber, with a liquid-transfer susceptor arrangement, allowing compatibility with induction-heated devices designed for solid substrates by positioning the vaporization chamber similarly to the distal substrate plug, and using non-heatable caps to enhance energy efficiency and prevent leakage.
Enables the use of induction-heated devices for both solid and liquid substrates, ensuring compatibility and efficient aerosol generation while maintaining a similar appearance to conventional cigarettes, with enhanced energy efficiency and leak-proof design.
Smart Images

Figure 0007809115000001 
Figure 0007809115000002 
Figure 0007809115000003
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a cartridge for a stick-shaped aerosol-generating article configured for use in an induction-heated aerosol generating device. The present disclosure further relates to such an article, and to an aerosol generating system comprising such an aerosol-generating article and such an aerosol generating device. [Background technology]
[0002] Systems for generating inhalable aerosols by inductively heating an aerosol-forming substrate capable of releasing volatile compounds upon heating are generally known in the prior art. To heat the substrate, the substrate may be disposed in thermal proximity or direct physical contact with an inductively heatable susceptor under the influence of an alternating electromagnetic field. The susceptor and substrate may be assembled with an aerosol-forming article configured to be received in a corresponding cavity of an aerosol-generating device. The device includes an induction source for generating an alternating magnetic field within the cavity to inductively heat the susceptor, and therefore the substrate, when the article is received in the cavity. The article may further include a mouthpiece from which a user can draw to generate an airflow through the article from the substrate toward the mouthpiece. Thus, when a user puffs during operation of the device, the volatile compounds released from the heated substrate are entrained in the airflow, cool, and condense to form an aerosol that exits the article at the mouthpiece. The aerosol-generating article and the aerosol-generating device together form an aerosol-generating system, with the article typically being a disposable consumable item and the device typically being reusable with other components. Summary of the Invention [Problem to be solved by the invention]
[0003] According to the specific design of such an aerosol-generating system, the article may have a cylindrical stick shape, similar to the shape of a conventional cigarette, with the susceptor and substrate disposed in a distal end portion, for example, in a distal substrate plug, and the mouthpiece disposed in a proximal end portion of the article. Such aerosol-generating articles having a visual and tactile similarity to a conventional cigarette are primarily known for articles comprising a solid aerosol-forming substrate, particularly a tobacco-containing solid aerosol-forming substrate. Systems using other substrates, such as so-called e-liquids, typically use a different overall system design for technical reasons. However, in order to expand the range of products compatible with the aforementioned device configured to receive and inductively heat stick-shaped articles, it is desirable to have a similar yet simple design for articles using other aerosol-generating substrates, particularly liquid substrates. [Brief explanation of the drawings]
[0004] [Figure 1] 1 shows a schematic representation of the general structure and components of an aerosol-generating article according to the present invention. [Figure 2] 1 shows an aerosol-generating article according to a first embodiment of the present invention. [Figure 3] 3 shows an aerosol generation system according to the invention, comprising an inductively heated aerosol generator and an aerosol-generating article according to FIG. 2. [Figure 4] 3 shows details of a cartridge according to an embodiment for use in the aerosol-generating article according to FIG. 2; [Figure 5] 3 shows details of a cartridge according to an embodiment for use in the aerosol-generating article according to FIG. 2; [Figure 6] 3 shows details of a cartridge according to an embodiment for use in the aerosol-generating article according to FIG. 2; [Figure 7] 3 shows details of a cartridge according to an embodiment for use in the aerosol-generating article according to FIG. 2; [Figure 8] 3 shows details of a second embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 9] 3 shows details of a second embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 10] 3 shows details of a second embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 11] 3 shows details of a second embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 12] 3 shows details of a third embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 13] 3 shows details of a third embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 14] 3 shows details of a fourth embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 15] 3 shows details of a fourth embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; [Figure 16] 3 shows details of a fourth embodiment of a cartridge that can alternatively be used in the aerosol-generating article according to FIG. 2; DETAILED DESCRIPTION OF THE INVENTION
[0005] According to the present invention, there is provided a cartridge for a stick-shaped aerosol-generating article for use with an inductively heated aerosol generating device, i.e., a cartridge for a stick-shaped aerosol-generating article, i.e., for use with a stick-shaped aerosol-generating article, the article being configured for use with an inductively heated aerosol generating device. The cartridge includes a vaporization chamber at a distal end portion of the cartridge for vaporizing an aerosol-forming liquid therein, and a reservoir chamber proximal to the vaporization chamber for storing the aerosol-forming liquid. The cartridge further includes a liquid-transfer susceptor arrangement configured and arranged to be inductively heated when used with the device to transport the aerosol-forming liquid from the reservoir chamber into the vaporization chamber and vaporize the aerosol-forming liquid in the vaporization chamber. The cartridge also includes a vapor-transfer conduit providing fluid communication for the vaporized aerosol-forming liquid from the vaporization chamber to a proximal region of the reservoir chamber. In addition, the cartridge includes a distal end cap forming at least a distal end wall member of the vaporization chamber, the distal end cap being non-integral with any wall member of the reservoir chamber.
[0006] According to the present invention, the above-described cartridge design has been found to be advantageous for the simple and cost-effective manufacture of a stick-shaped aerosol-generating article that can be easily used with induction-heated aerosol-generating devices already designed for solid-substrate consumables to generate aerosols from liquid substrates as well. As described in more detail below, such an article can be easily realized, for example, by equipping a cartridge with a cylindrical mouthpiece adjacent to the reservoir chamber and then wrapping a wrapper around at least a portion of the cartridge and the mouthpiece to maintain the mouthpiece and cartridge together. This results in an article that has a stick-like outer shape similar or equivalent to previously designed articles containing solid substrates and is therefore compatible for use with previously designed aerosol-generating devices. Therefore, these devices can generally be used with different types of articles to generate aerosols from different types of aerosol-forming substrates, particularly solid and liquid substrates.
[0007] Providing a vaporization chamber at the distal end portion of the cartridge, and therefore the distal end portion of an article including such a cartridge, corresponds to providing a solid substrate and susceptor at the distal substrate plug of previously contemplated articles. Advantageously, this ensures that, when used with an inductively heated aerosol-generating device, the vaporization chamber will be positioned within the cavity of the device in approximately the same location as the distal substrate plug of previously contemplated articles, i.e., where an alternating magnetic field is generated within the cavity. Thus, articles including such cartridges are not only acceptable but also readily heatable by these existing devices for inductively heatable consumables containing solid aerosol-forming substrates.
[0008] The use of a distal end cap that forms at least the distal end wall member of the vaporization chamber advantageously facilitates manufacture of the cartridge, in particular allowing for the implementation of open access for those components disposed within the interior of the cartridge, such as a liquid transfer susceptor arrangement, before the interior of the cartridge is finally closed by the distal end cap.
[0009] Preferably, the vaporization chamber may be completely surrounded by a wall member. Thus, the vaporization chamber is substantially sealed except for a possible air inlet and fluid communication from the vaporization chamber to a proximal region of the reservoir chamber. As a result, the cartridge is substantially leak-proof, which is advantageous with respect to the shelf life of the article of which the cartridge may be a part. In particular, if aerosol-forming liquid eventually leaks from the reservoir chamber into the vaporization chamber, for example, during transportation from manufacture to sale, the liquid will still be retained in the vaporization chamber. Furthermore, the liquid leaked into the vaporization chamber is not wasted but will still evaporate during the subsequent heating process, thereby contributing to aerosol generation. In this respect, the term "chamber" as used herein already implies a substantially sealed chamber. Therefore, the reservoir chamber is also substantially sealed except for fluid communication between the reservoir chamber and the vaporization chamber via the liquid-transporting susceptor arrangement.
[0010] To prevent a user from being burned by touching an article containing a cartridge according to the present invention immediately after the heating process, the distal end cap is preferably non-heatable. Furthermore, this prevents the energy provided by the alternating magnetic field from being unnecessarily dissipated within the distal end cap. As a result, energy dissipation in the liquid transfer susceptor arrangement can be enhanced. Therefore, the distal end cap is preferably made of a material that is non-heatable, i.e., non-conductive and non-magnetic (non-ferromagnetic or non-ferromagnetic). The distal end cap may be made of plastic or silicone. Such materials provide adequate sealing properties and are inexpensive, which is particularly important in light of the fact that cartridges are preferably used in aerosol-generating articles configured for single use only. Preferably, the plastic is a thermoplastic, such as PEEK (polyetheretherketone), to provide good thermal stability. The distal end cap may be manufactured by injection molding. That is, the distal end cap may be an injection-molded distal end cap.
[0011] Preferably, all wall members of the vaporization chamber are not inductively heatable, i.e. are made from a material that is not inductively heatable. Similarly, any wall members of the vaporization chamber are not inductively heatable.
[0012] The distal cap preferably defines the most distal end of the cartridge. That is, no other components protrude distally beyond the distal cap. In particular, the distal end of the cartridge may not include any connectors or coupling means, such as those for connecting an aerosol-generating article including such a cartridge to an aerosol-generating device. For example, if the stick-shaped cartridge has a cylindrical shape, the cartridge may have a flat distal surface at its most distal end.
[0013] The vaporization chamber may include at least one air inlet to allow air to enter the vaporization chamber for aerosol formation. The at least one air inlet is preferably formed in the distal end cap. As one example, the at least one air inlet may include a vent hole through the distal end cap. As another example, the at least one air inlet may include a vent groove formed in a surface of the distal end cap facing a wall member of the vaporization chamber other than the distal end cap, particularly in a circumferentially outer wall member of the vaporization chamber.
[0014] According to one embodiment, the distal end cap may be plug-shaped. A plug-shaped distal end cap may include a plug body, at least a portion of which is inserted into the circumferential outer wall member of the vaporization chamber. The plug body may also be completely inserted into the circumferential outer wall member of the vaporization chamber. Generally, the plug body may have a shape corresponding to the shape of the interior of the vaporization chamber, particularly a cross-sectional shape corresponding to the cross-sectional shape of the interior of the vaporization chamber. The term "cross-sectional shape" as used herein refers to the shape of the interior of the plug body or vaporization chamber as seen in a cross section perpendicular to the longitudinal axis of the cartridge. Preferably, the plug body is substantially cylindrical or frustoconical. The plug body may include a circumferential collar within the cartridge that provides a sealing fit of the distal end cap, particularly to the circumferential outer wall member of the reservoir chamber. That is, the circumferential collar does not insert into the circumferential outer wall of the vaporization chamber.
[0015] The plug-shaped distal end cap may also include a cover plate. To completely close the vaporization chamber at the distal end of the cartridge, the cover plate may either be inserted into the circumferential outer wall of the vaporization chamber or extend radially outward beyond the internal cross-sectional shape of the vaporization chamber. In the latter case, the cover plate may further include a protruding collar that abuts the distal front end of the circumferential outer wall member of the vaporization chamber. This also applies generally to the plug-shaped distal end cap, i.e., the plug-shaped distal end cap may include a protruding collar that abuts the distal front end of the circumferential outer wall member of the vaporization chamber.
[0016] The plug-shaped distal end cap may further include, preferably in addition to the cover plate, an insert portion that is at least partially inserted into the circumferentially outer wall member of the vaporization chamber. The insert portion may include an insert ring, an insert tube, an insert cylinder, a hollow insert cylinder, multiple insert ring segments, multiple insert pins, or multiple insert fins. The insert portion may extend at least partially from the cover plate (if present) to the septum that forms the common wall member of the vaporization chamber and the reservoir chamber. This also applies to the plug-shaped distal end cap in general, i.e., the plug-shaped distal end cap may extend at least partially from the cover plate (if present) to the septum that forms the common wall member of the vaporization chamber and the reservoir chamber. In particular, the plug-shaped distal end cap may include at least one, in particular at least two, preferably two, three, or four support legs. At least one support leg may preferably extend from the distal end of the cartridge, in particular from the cover plate (if present), to the septum that forms the common wall member of the vaporization chamber and the reservoir chamber. Thus, the plug-shaped distal end cap is fixed in position at least proximally relative to the septum. At least two, particularly two, three, or four, support legs advantageously provide uniform support of the distal end cap relative to the septum. Details of the septum are described further below. In particular, at least one support leg may extend along the inner surface of the circumferential outer wall member of the vaporization chamber. Thus, the aerosol formation process inside the vaporization chamber is only slightly affected.
[0017] Furthermore, the plug-shaped distal cap may include at least one plug member at its proximal end that seals a fill hole in the septum, which can be used to fill the aerosol-forming liquid into the reservoir chamber via the vaporization chamber. Advantageously, this configuration allows the fill hole to be sealed and the distal end of the vaporization chamber to be closed in a single step by attaching the plug-shaped distal cap to other parts of the cartridge. Preferably, the plug member is disposed at the proximal end of the insertion portion (if present), particularly at the proximal end of at least one support leg (if present). The plug member may be made of the same material as the other parts of the plug-shaped distal cap, particularly integral therewith.
[0018] According to another embodiment, the distal end cap may be cup-shaped. In particular, the cup-shaped distal end cap may include a bottom portion forming the distal end wall member of the vaporization chamber and a sleeve portion (cup-shaped sidewall) forming the circumferential outer wall member of the vaporization chamber. In this configuration, the vaporization chamber is substantially completely formed by the distal end cap, except for the proximal end wall member of the vaporization chamber. The proximal end wall member of the vaporization chamber is preferably formed by the above-mentioned septum. Having the circumferential outer wall member of the vaporization chamber and the distal end wall member integrally formed with the cup-shaped distal end cap, i.e., formed by a single component, advantageously reduces the number of components to be assembled, thus simplifying cartridge construction and assembly. Furthermore, this configuration provides maximum open access for mounting components within the interior of the cartridge, such as a liquid transfer susceptor arrangement.
[0019] In general, the distal end cap may be attached to the cartridge by press fitting, snap fitting, welding, or adhesive bonding. Press fitting or snap fitting allows for particularly simple assembly of the distal end cap. Welding or adhesive bonding ensures good sealing of the joint between the distal end cap and the corresponding connection. If the distal end cap is plug-shaped or includes a cover plate (with or without an insert), the distal end cap may be attached (preferably by any of the above-mentioned means) to the circumferential outer wall member of the vaporization chamber, in particular to the distal end of the circumferential outer wall member of the vaporization chamber (as a corresponding connection). If the distal end cap is cup-shaped, the distal end cap may be attached (preferably by any of the above-mentioned means) to a septum of the cartridge (as a corresponding connection), which septum forms the common wall member of the vaporization chamber and the reservoir chamber, in particular the proximal end wall member of the vaporization chamber.
[0020] Similar to the distal end cap, the cartridge may include a proximal end cap that forms at least a proximal wall member of the reservoir chamber. The use of a proximal end cap advantageously facilitates manufacture of the cartridge, particularly by allowing other components of the cartridge, such as the vapor delivery conduit or the circumferential outer walls of the reservoir chamber and vaporization chamber, to be manufactured by extrusion.
[0021] The proximal end cap may include a through-hole through which the proximal end portion of the vapor transport conduit passes, is supported therein, or terminates integrally therein. This is advantageous for stable fixation of the vapor transport conduit within the cartridge and for a proper sealing fit between the vapor transport conduit and the proximal end cap. A proper sealing fit is particularly important when the vapor transport conduit also forms a wall member (inner wall member) of the reservoir chamber. For example, the vapor transport conduit may be formed by an inner tube of the cartridge, which, at its interior, provides fluid communication from the vaporization chamber to the proximal region of the reservoir chamber and, at its exterior, defines the inner sidewall member of the reservoir chamber. In this configuration, both the proximal end cap and the vapor transport conduit form wall members of the reservoir chamber, and for this reason, the joint between the two components must be sealed to avoid leakage of the aerosol-forming liquid. A particularly suitable sealing fit is automatically provided when the proximal end of the vapor carrying conduit terminates integrally within the through-bore, i.e., at least a portion of the vapor carrying conduit, preferably the entire vapor carrying conduit, is integrally formed with the proximal end cap.
[0022] As described above, the proximal end cap forms at least the proximal wall member of the reservoir chamber. In particular, the proximal end cap may form only the proximal wall member of the reservoir chamber. Thus, the proximal end cap may be non-integral (separate) from any other wall member of the reservoir chamber, such as the circumferential outer wall member or the inner sidewall member of the reservoir chamber. Similarly, the proximal end cap may be non-integral (separate) from the vapor transport conduit, particularly when the vapor transport conduit forms a wall member (inner wall member) of the reservoir chamber. That is, the proximal end cap may be separate from any wall member of the reservoir chamber other than the proximal end wall member. Conversely, in addition to the proximal wall member of the reservoir chamber, the proximal end cap also forms at least one of the circumferential outer wall member or the inner sidewall member of the reservoir chamber. In this configuration, the proximal end cap may correspond to a one-piece body, as described in more detail below. The proximal end cap may also be non-integral (separate) from any wall member of the vaporization chamber.
[0023] The proximal end cap may include a distal recess forming a distal portion of the through-hole within which the proximal end portion of the vapor transport conduit is supported. The inner cross-section of the distal recess may be larger than the inner cross-section of the proximal portion of the through-hole other than the distal portion. Thus, the distal recess forms an abutment against the proximal end portion of the vapor transport conduit to secure the position of the vapor transport conduit at least in the proximal direction. Furthermore, the inner cross-section of the proximal portion of the through-hole may correspond to the inner cross-section of the vapor transport conduit. As a result, the airflow passage through the vapor transport conduit is smoothly continuous through the proximal portion of the through-hole, which is advantageous for undisturbed airflow / aerosol flow through the cartridge. Alternatively, the inner cross-section of the proximal portion of the through-hole may be larger or smaller than the inner cross-section of the vapor transport conduit. As a result, the airflow passage through the cartridge may not be smooth, which may result in turbulent airflow / aerosol flow. Turbulent airflow / aerosol flow may be desirable to promote aerosol formation.
[0024] The proximal end cap may include a distal insertion socket that protrudes into the reservoir chamber, forming a distal portion of the through-bore within which the proximal end portion of the vapor delivery conduit is supported. That is, the distal insertion socket may be considered a protrusion extending into the reservoir chamber that includes a recess that forms the distal portion of the through-bore. The inner cross-section of the distal insertion socket may be larger than the inner cross-section of the proximal portion of the through-bore other than the distal portion. Thus, as described above with respect to the distal recess, the distal insertion socket forms an abutment against the proximal end portion of the vapor delivery conduit to secure the position of the vapor delivery conduit at least in the proximal direction. To provide a substantially smooth airflow path through the cartridge, the inner cross-section of the proximal portion of the through-bore may correspond to the inner cross-section of the vapor delivery conduit. Alternatively, the inner cross-section of the proximal portion of the through-bore may be larger or smaller than the inner cross-section of the vapor delivery conduit to promote turbulent airflow / aerosol flow.
[0025] The proximal end cap may include at least one fill hole for filling the reservoir chamber with aerosol-forming liquid. The fill hole in the proximal end cap provides convenient access to the interior of the associated chamber for filling. To close the at least one fill hole as the reservoir chamber is filled with aerosol-forming liquid, the cartridge may include a proximal plug member that seals the at least one fill hole in the proximal end cap. If the proximal end cap includes two or more fill holes, the proximal plug member is preferably configured to close each of the fill holes. Alternatively, the cartridge may include a separate proximal plug member for each fill hole. To have a substantially flat proximal surface at the proximal end of the cartridge, the proximal end cap may include a proximal recess into which the proximal plug member is received. The one or more fill holes may be disposed adjacent to the through hole in the proximal end cap. For example, the proximal end cap may include two fill holes disposed transversely on opposite sides of the through hole. In this configuration, the proximal plug member may include a disk with a protrusion that fits snugly into the fill hole. To allow free proximal escape of the aerosol from the cartridge, the proximal plug member may include a through-hole that mates with the through-hole in the proximal end cap. The cross-section of the through-hole in the proximal plug member preferably corresponds to the inner cross-section of the vapor delivery conduit to provide a smooth airflow path. Alternatively, the cross-section of the through-hole in the proximal plug member may be larger or smaller than the inner cross-section of the vapor delivery conduit to promote turbulent airflow / aerosol flow.
[0026] According to one embodiment, the proximal end cap may be plug-shaped. A plug-shaped proximal end cap may include a plug body that is at least partially inserted into the circumferential outer wall member of the reservoir chamber. The plug body may also be completely inserted into the circumferential outer wall member of the reservoir chamber. Generally, the plug body may have a shape, particularly a cross-sectional shape, that corresponds to the shape of the interior of the reservoir chamber. The term "cross-sectional shape" as used herein refers to the shape of the interior of the plug body or reservoir chamber as seen in a cross section perpendicular to the longitudinal axis of the cartridge. The plug body is preferably substantially cylindrical or frustoconical. The plug body may include a circumferential collar within the cartridge that provides a sealing fit of the proximal end cap, particularly to the circumferential outer wall member of the reservoir chamber. That is, the circumferential collar is not inserted into the circumferential outer wall member of the reservoir chamber.
[0027] The plug-shaped proximal end cap may also include a cover plate. To completely close the reservoir chamber at the proximal end of the cartridge, the cover plate may either be inserted into the circumferential outer wall of the reservoir chamber or extend radially outward beyond the cross-sectional shape of the reservoir chamber interior. In the latter case, the cover plate may further include a protruding collar that abuts the proximal forward end of the circumferential outer wall member of the reservoir chamber. This also generally applies to the plug-shaped proximal end cap, i.e., the plug-shaped proximal end cap may include a protruding collar that abuts the proximal forward end of the circumferential outer wall member of the reservoir chamber.
[0028] The plug-shaped proximal end cap may further include, preferably in addition to the cover plate, an insert portion that is at least partially inserted into the circumferentially outer wall member of the reservoir chamber. The insert portion may include an insert ring, an insert tube, an insert cylinder, a hollow insert cylinder, multiple insert ring segments, multiple insert pins, or multiple insert fins. The insert portion may extend at least partially from the cover plate (if present) to the septum that forms the common wall member of the vaporization chamber and the reservoir chamber. This also applies to the plug-shaped proximal end cap in general, i.e., the plug-shaped proximal end cap may extend at least partially from the cover plate (if present) to the septum that forms the common wall member of the vaporization chamber and the reservoir chamber. In particular, the plug-shaped proximal end cap may include at least one, in particular at least two, preferably two, three, or four support legs. At least one support leg may preferably extend from the proximal end of the cartridge, in particular from the cover plate (if present), to the septum that forms the common wall member of the vaporization chamber and the reservoir chamber. Thus, the plug-shaped proximal end cap is fixed in position at least distally relative to the septum. At least two, and particularly two, three, or four, support legs advantageously provide uniform support of the proximal end cap relative to the septum. Details of the septum are described further below. In particular, at least one support leg may extend along an inner surface of the circumferential outer wall member of the reservoir chamber.
[0029] According to another embodiment, the proximal end cap may be cup-shaped. In particular, the cup-shaped proximal end cap may include a bottom portion forming the proximal end wall member of the reservoir chamber and a sleeve portion (cup-shaped sidewall) forming the circumferential outer wall member of the reservoir chamber. In this configuration, the reservoir chamber is substantially completely formed by the proximal end cap, except for the distal end wall member of the vaporization chamber. The distal end wall member is preferably formed by the aforementioned septum. Having the circumferential outer wall member of the reservoir chamber and the proximal end wall member integrally formed with the cup-shaped proximal end cap, i.e., formed by a single component, advantageously reduces the number of components to assemble, thus simplifying the construction and assembly of the cartridge.
[0030] Generally, the proximal end cap may be attached to the cartridge by press-fitting, snap-fitting, welding, or adhesive bonding, especially if the proximal end cap is separate (non-integral) from any other wall member of the reservoir chamber. Press-fitting or snap-fitting allows for particularly simple assembly of the proximal end cap. Welding or adhesive bonding ensures good sealing of the joint between the proximal end cap and the corresponding connection. If the proximal end cap is plug-shaped or includes a cover plate (with or without an insert), the proximal end cap may be attached (preferably by any of the means described above) to the circumferential outer wall member of the reservoir chamber, especially to the distal end of the circumferential outer wall member of the reservoir chamber (as a connection). If the proximal end cap is cup-shaped, it may be attached (preferably by any of the methods described above) to a septum of the cartridge (as a corresponding connection), the septum forming the common wall member of the reservoir chamber and the reservoir chamber, in particular the distal end wall member of the vaporization chamber.
[0031] The proximal end cap is preferably made of a material that cannot be inductively heated, i.e., a non-conductive and non-magnetic (non-ferromagnetic or non-ferromagnetic) material. The proximal end cap may be made of plastic or silicone. Such materials provide adequate sealing properties and are inexpensive, which is particularly important in light of the fact that the cartridge is preferably used in an aerosol-generating article configured for single use only. Preferably, the plastic is a thermoplastic such as PEEK (polyetheretherketone) to provide good thermal stability. The proximal end cap may be manufactured by injection molding. That is, the proximal end cap may be an injection-molded proximal end cap.
[0032] The proximal cap preferably defines the proximal-most end of the cartridge, i.e., no other components protrude proximally beyond the proximal cap. In particular, the proximal end of the cartridge may not include a connector or connecting means, such as for connecting a mouthpiece to the cartridge. For example, if the stick cartridge has a cylindrical shape, the cartridge may have a flat proximal surface at its proximal-most end.
[0033] The cartridge may include a septum forming a common wall member of the vaporization chamber and the reservoir chamber. The use of a septum forming a common wall member of the vaporization chamber and the reservoir chamber advantageously reduces the number of components to assemble, thus simplifying the construction and assembly of the cartridge. The septum is preferably non-integral (separate) from any other wall members of the vaporization chamber and the reservoir chamber. Advantageously, this facilitates the manufacture of the cartridge, in particular because it may allow other parts of the cartridge, such as the vapor-carrying conduit or the circumferential outer walls of the reservoir chamber and the vaporization chamber, to be manufactured by extrusion.
[0034] The term "septum" as used herein means a separating wall that separates the vaporization chamber from the reservoir chamber, i.e., that separates a portion of the interior of the cartridge into a vaporization chamber and a reservoir chamber.
[0035] To prevent the energy provided by the alternating magnetic field from being unnecessarily dissipated within the septum, the septum is preferably not inductively heatable. That is, the septum is preferably made of a material that is not inductively heatable, i.e., non-conductive and non-magnetic (non-ferromagnetic or non-ferromagnetic). In addition, this can help reduce the risk of a user being burned when touching an article containing a cartridge according to the present invention immediately after the heating process.
[0036] The septum may be made of plastic or silicone. Such materials provide adequate sealing properties and are inexpensive, which is particularly important in light of the fact that the cartridge is preferably used in an aerosol-generating article configured for single use only. Preferably, the plastic is a thermoplastic, such as PEEK (polyetheretherketone), to provide good thermal stability. The septum may be manufactured by injection molding. That is, the septum may be an injection-molded septum.
[0037] The septum preferably includes a through hole through which the vapor carrying conduit passes or is supported at its distal end portion.
[0038] The septum may include a proximal recess that forms a proximal portion of the through-hole within which the vapor transport conduit is supported at its distal end. The inner cross-section of the proximal recess may be larger than the inner cross-section of the distal portion of the through-hole other than the proximal portion. Thus, the proximal recess forms an abutment against the distal end portion of the vapor transport conduit to secure the position of the vapor transport conduit at least in the distal direction. Furthermore, the inner cross-section of the distal portion of the through-hole may correspond to the inner cross-section of the vapor transport conduit. As a result, the airflow passage into the vapor transport conduit through the septum through-hole may smoothly continue from the vaporization chamber into the vapor transport conduit. This is advantageous for undisturbed airflow / aerosol flow through the cartridge. Alternatively, the inner cross-section of the distal portion of the through-hole may be larger or smaller than the inner cross-section of the vapor transport conduit. As a result, the airflow passage through the cartridge may not be smooth, resulting in turbulent airflow / aerosol flow. Turbulent airflow / aerosol flow may be desirable to promote aerosol formation.
[0039] The septum may include a proximal insertion socket that protrudes into the reservoir chamber, forming a proximal portion of the through-hole within which the distal end portion of the vapor delivery conduit is supported. That is, the proximal insertion socket may be considered a protrusion extending into the reservoir chamber that includes a recess that forms the proximal portion of the through-hole. The inner cross-section of the proximal insertion socket may be larger than the inner cross-section of the distal portion of the through-hole other than the proximal portion. Thus, as described above with respect to the proximal recess, the proximal insertion socket forms an abutment against the distal end portion of the vapor delivery conduit to secure the position of the vapor delivery conduit at least in the distal direction. To provide a substantially smooth airflow path through the cartridge, the inner cross-section of the distal portion of the through-hole may correspond to the inner cross-section of the vapor delivery conduit. Alternatively, the inner cross-section of the distal portion of the through-hole may be larger or smaller than the inner cross-section of the vapor delivery conduit to promote turbulent airflow / aerosol flow.
[0040] The liquid transfer susceptor arrangement preferably passes through the septum. To this end, the septum may include one or more feedthrough openings through which the liquid transfer susceptor arrangement passes. The liquid transfer susceptor arrangement is preferably fixedly held by the septum. Advantageously, the liquid transfer susceptor arrangement is fixed to the septum prior to assembling the cartridge to facilitate assembly.
[0041] To prevent unwanted leakage of the aerosol-forming liquid, the cartridge may include at least one sealing ring for each of the one or more feedthrough openings of the septum disposed within or within the respective feedthrough opening. In particular, the at least one sealing ring may be overmolded around a portion of the liquid-transfer susceptor arrangement. Advantageously, this provides a particularly good seal and facilitates assembly of the cartridge. The liquid-transfer susceptor arrangement is preferably overmolded with the sealing ring before assembling the cartridge. The at least one sealing ring is preferably made of plastic or silicone. Such materials provide adequate sealing properties and are inexpensive, which is particularly important in light of the fact that the cartridge is preferably used in an aerosol-generating article configured for single use only. Preferably, the plastic is a thermoplastic, such as PEEK (polyetheretherketone), to provide good thermal stability.
[0042] The septum may include at least one fill hole for filling the reservoir chamber with the aerosol-forming liquid via the vaporization chamber. The one or more fill holes may be disposed adjacent to a through-hole in the septum through which the vapor-transport conduit passes or is supported at the distal end portion. For example, the septum may include two fill holes disposed transversely on opposite sides of the through-hole. To close the at least one fill hole as the reservoir chamber is filled with the aerosol-forming liquid, the cartridge may include a distal plug member that seals the at least one fill hole in the septum. When the septum includes two or more fill holes, the distal plug member is preferably configured to close each of the fill holes. Alternatively, the cartridge may include a separate distal plug member for each fill hole. Preferably, the distal plug member is attached to a distal end cap that forms at least the distal end wall member of the vaporization chamber, and is particularly preferably an integral part of the distal end cap. Details of the distal end cap are described in detail above. Alternatively, the distal plug member may be non-integral with any wall member of the vaporization chamber. Similarly, the distal plug member may be non-integral with any wall member of the reservoir chamber. Like the septum itself, the distal plug member may be made of plastic or silicone, particularly PEEK (polyetheretherketone), to provide good thermal stability.
[0043] The septum may be mounted in the cartridge by press-fitting, snap-fitting, welding, or adhesive bonding. Press-fitting or snap-fitting allows for particularly simple assembly of the septum. Welding or adhesive bonding ensures a good seal at the joint between the septum and the corresponding connection. The septum is preferably mounted in a cartridge sleeve that forms at least one circumferential outer wall member of the vaporization chamber (or at least a portion thereof) and the circumferential outer wall member of the reservoir chamber (or at least a portion thereof). Similarly, the septum may be mounted in an outer sleeve portion of the one-piece body of the cartridge, forming at least the circumferential outer wall member of the reservoir chamber and preferably also the circumferential outer wall member of the vaporization chamber. Details of the cartridge sleeve and one-piece body are described further below. The cartridge can also include a cup-shaped distal end cap and a cup-shaped proximal end cap, where the cup-shaped distal end cap forms the distal end wall and circumferentially outer wall of the vaporization chamber, and the cup-shaped proximal end cap forms the proximal end wall and circumferentially outer wall of the reservoir chamber. In this configuration, each of the cup-shaped end caps is attached to a septum such that the septum holds the cup-shaped distal end cap and the cup-shaped proximal end cap together, forming the distal end wall of the reservoir chamber and the proximal end wall of the vaporization chamber. Details of the cup-shaped distal end cap and the cup-shaped proximal end cap have already been described in detail above.
[0044] The septum may include a circumferential collar that provides a sealing fit of the septum within the cartridge. In particular, the septum may include a circumferential collar that provides a sealing fit of the septum with respect to a cartridge sleeve that forms at least one of the outer wall member of the vaporization chamber and the outer wall member of the reservoir chamber, or with respect to an outer sleeve portion, or with respect to at least one of the cup-shaped distal end cap and the cup-shaped proximal end cap, as described above.
[0045] The cartridge may include a cartridge sleeve. The cartridge sleeve may form at least one of the circumferential outer wall member of the vaporization chamber (or at least a portion thereof) and the circumferential outer wall member of the reservoir chamber (or at least a portion thereof). In particular, the cartridge sleeve may extend along the entire axial extension of the reservoir chamber and the vaporization chamber, i.e., preferably along the entire axial extension of the cartridge.
[0046] The cartridge sleeve may have any shape of inner and outer cross-section. In particular, the cartridge sleeve may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal, or polygonal inner cross-section. Similarly, the cartridge sleeve may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal, or polygonal outer cross-section.
[0047] The cartridge sleeve may be tubular, in particular a cylindrical sleeve or cylindrical tube. Tubular sleeves, in particular cylindrical sleeves or cylindrical tubes, are particularly easy to manufacture by extrusion. Thus, the cartridge sleeve may be an extruded cartridge sleeve.
[0048] Preferably, the cartridge sleeve is made of a material that cannot be inductively heated, i.e., a material that is non-conductive and non-magnetic (non-ferromagnetic or non-ferromagnetic). For example, the cartridge sleeve may be made of plastic or silicone. Preferably, the plastic is a thermoplastic such as PEEK (polyetheretherketone) to provide good thermal stability.
[0049] The cartridge sleeve may be combined with a distal end cap, which may be attached to the distal end of the cartridge sleeve, as described above. Similarly, the cartridge sleeve may be combined with a proximal end cap, which may be attached to the proximal end of the cartridge sleeve, as described above. In particular, the distal end cap may be attached to the distal end of the cartridge sleeve by press-fitting, snap-fitting, welding, or adhesive bonding. Similarly, the proximal end cap may be attached to the proximal end of the cartridge sleeve by press-fitting, snap-fitting, welding, or adhesive bonding.
[0050] When the cartridge sleeve forms only the outer circumferential wall member of the vaporization chamber, or the outer circumferential wall members of both the vaporization chamber and the reservoir chamber, the distal end cap is preferably plug-shaped or includes a cover plate (with or without an insert), as described above. In this configuration, the distal end cap forms the distal end wall member of the vaporization chamber.
[0051] Where the cartridge sleeve forms only the outer circumferential wall member of the reservoir chamber, the distal end cap is preferably cup-shaped as described above, in which configuration the distal end cap forms both the distal end wall member of the vaporization chamber and the outer circumferential wall member of the vaporization chamber.
[0052] Similarly, when the cartridge sleeve forms only the outer circumferential wall member of the reservoir chamber, or the outer circumferential wall members of both the vaporization chamber and the reservoir chamber, the proximal end cap is preferably plug-shaped or includes a cover plate (with or without an insert), as described above. In this configuration, the proximal end cap forms the proximal end wall member of the reservoir chamber.
[0053] When the cartridge sleeve forms only the outer circumferential wall member of the vaporization chamber, the proximal end cap is preferably cup-shaped as described above, in which case the proximal end cap forms both the proximal end wall member of the reservoir chamber and the outer circumferential wall member of the reservoir chamber.
[0054] The cartridge sleeve is preferably non-integral (separate) from the distal end cap, and similarly, the cartridge sleeve is preferably non-integral (separate) from the proximal end cap.
[0055] To reduce the number of components to be assembled, the cartridge may comprise a one-piece body including a proximal end portion and at least one of an outer sleeve portion and an inner tube portion, where the outer sleeve portion forms a circumferential outer wall member of the reservoir chamber (or at least a portion thereof), the proximal end portion forms a proximal end wall member of the reservoir chamber, and the inner tube portion forms the vapor-carrying conduit (or at least a portion thereof). The inner tube portion is particularly coaxially disposed within the outer sleeve portion and thus also within the inner wall member of the reservoir chamber. The proximal end portion may include a through-hole into which the proximal end of the inner tube portion of the vapor-carrying conduit, particularly the proximal end of the inner tube portion, opens. Preferably, the one-piece body includes the proximal end portion and both the outer sleeve portion and the inner tube portion. Advantageously, the outer sleeve portion may also form a circumferential outer wall member of the vaporization chamber (or at least a portion thereof). Advantageously, such a one-piece body facilitates construction and assembly of the cartridge. The proximal end portion may correspond to the proximal end cap described above, which forms the proximal end wall member of the reservoir chamber.
[0056] In particular, the outer sleeve portion may extend along the entire axial length of the reservoir chamber. Alternatively, the outer sleeve portion may extend along the entire axial length of the reservoir chamber and the vaporization chamber, i.e., preferably along the entire axial length of the cartridge. The inner tube portion may extend along the entire axial length of the reservoir chamber, in particular between the proximal end portion and a septum forming a common wall member of the reservoir chamber and the vaporization chamber. The distal end of the inner tube portion may preferably be attached to the septum by a press fit, a snap fit, a welding, or an adhesive bond. Similarly, the septum may preferably be attached to the outer sleeve portion by a press fit, a snap fit, a welding, or an adhesive bond. The outer sleeve portion may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal, or polygonal inner cross-section and a circular, elliptical, oval, triangular, rectangular, square, hexagonal, or polygonal outer cross-section. Similarly, the inner tube portion may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal or polygonal inner cross-section and a circular, elliptical, oval, triangular, rectangular, square, hexagonal or polygonal outer cross-section.
[0057] The one-piece body is preferably combined with the distal end cap, as detailed above. That is, the one-piece body is non-integral (separate) from the distal end cap. The distal end cap may be attached to the distal end of the one-piece body, particularly by press-fitting, snap-fitting, welding, or adhesive bonding. When the outer sleeve portion forms the circumferential outer wall members of both the vaporization chamber and the reservoir chamber, the distal end cap is preferably plug-shaped or includes a cover plate (with or without an insert), as described above. In this configuration, the distal end cap forms the distal end wall member of the vaporization chamber. When the outer sleeve portion forms only the circumferential outer wall member of the reservoir chamber, the distal end cap is preferably cup-shaped, as described above. In this configuration, the distal end cap forms both the distal end wall member of the vaporization chamber and the circumferential outer wall member of the vaporization chamber. Preferably, the one-piece body is made of a material that cannot be inductively heated, i.e., a material that is non-conductive and non-magnetic (non-ferromagnetic or non-ferromagnetic). For example, the one-piece body may be made of plastic or silicone. Preferably, the plastic is a thermoplastic such as PEEK (polyetheretherketone) to provide good thermal stability. The one-piece body may be manufactured by injection molding. That is, the one-piece body may be an injection-molded one-piece body.
[0058] The vapor carrying conduit may be disposed within a circumferential outer wall member of the reservoir member. When the circumferential outer wall member of the reservoir member is formed by a cartridge sleeve as described above, the vapor carrying conduit may be disposed within the cartridge sleeve, in particular coaxially relative to the cartridge sleeve.
[0059] As mentioned above, the vapor transport conduit preferably forms an inner sidewall member of the reservoir chamber. Also, by having the vapor transport conduit form an inner sidewall member of the reservoir chamber, a very compact design of the cartridge is possible. In this configuration, the volume of the reservoir chamber may be substantially ring-shaped, in particular hollow cylindrical.
[0060] The vapor transport conduit may extend along the axial length of the reservoir chamber, particularly between the proximal end of the reservoir chamber and the distal end of the reservoir chamber, and more particularly between the proximal end cap (described above) and a septum that forms a common wall member of the reservoir chamber and the vaporization chamber.
[0061] In particular, the cartridge may include an inner tube forming a vapor-transporting conduit. In particular, the inner tube may be similar to the inner tube portion of the unitary body described above, but separate from any other wall members of the reservoir chamber, such as the proximal end cap and septum. That is, the inner tube is preferably non-integral with any wall members of the reservoir chamber other than the circumferential inner wall member of the reservoir chamber.
[0062] The inner tube can extend along the entire axial length of the reservoir chamber, particularly between the proximal end cap and a septum that forms a common wall member of the reservoir chamber and the vaporization chamber. The distal end of the inner tube can be attached to the septum, for example, in a proximal recess or proximal insertion socket of the septum. Similarly, the proximal end of the inner tube can be attached to the proximal end cap, for example, in a distal recess or distal insertion socket of the proximal end cap. The inner tube is preferably attached to the septum and proximal end cap by a press fit, a snap fit, a welding, or an adhesive bond.
[0063] The steam carrying conduit, in particular the inner pipe, may be cylindrical. A cylindrical shape is particularly easy to manufacture, in particular by extrusion. Therefore, the steam carrying conduit may be an extruded steam carrying conduit. In particular, the inner pipe may be an extruded inner pipe.
[0064] The vapor carrying conduit, particularly the inner tube, may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal, or polygonal inner cross section.Similarly, the vapor carrying conduit, particularly the inner tube, may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal, or polygonal outer cross section.
[0065] Preferably, the vapor carrying conduit, especially the inner tube, is made of a material that cannot be inductively heated, i.e., a material that is non-conductive and non-magnetic (non-ferromagnetic or non-ferromagnetic). For example, the cartridge sleeve may be made of plastic or silicone. Preferably, the plastic is a thermoplastic, such as PEEK (polyetheretherketone), to provide good thermal stability.
[0066] As used herein, the term "liquid delivery susceptor arrangement" refers to a susceptor arrangement capable of performing two functions: delivering and heating an aerosol-forming liquid. Similarly, a liquid delivery susceptor arrangement may be considered an inductively heatable liquid conduit. The use of such a liquid delivery susceptor arrangement advantageously avoids having separate means for delivering and heating the aerosol-forming liquid, thereby reducing the number of required components and thus facilitating cartridge manufacture. As used herein, the term "susceptor arrangement" refers to a component including at least one susceptor material capable of converting electromagnetic energy into heat when subjected to an alternating magnetic field. This may be the result of at least one of hysteresis loss or eddy currents induced in the susceptor material depending on the electrical and magnetic properties of the susceptor material. Hysteresis loss occurs in ferromagnetic or ferrimagnetic susceptor materials due to magnetic domains in the material being switched under the influence of an alternating electromagnetic field. Eddy currents are induced in conductive susceptor materials. For electrically conductive ferromagnetic or ferrimagnetic susceptor materials, heat is generated by both eddy currents and hysteresis losses.
[0067] Generally, the liquid transfer susceptor arrangement can have any shape and configuration suitable for transferring the aerosol-forming liquid from the reservoir chamber to the vaporization chamber. In particular, the liquid transfer susceptor arrangement can include a wicking element. The wicking element configuration can be a stranded wire with sufficient porosity, a rope of stranded material, a mesh, a mesh tube, several concentric mesh tubes, a fabric, a sheet of material, or a foam (or other porous solid), a roll of fine metal mesh, or some other arrangement of metal foil, fiber, or mesh, or any other shape appropriately sized and configured to perform the wicking function described herein.
[0068] In particular, the liquid transport susceptor arrangement may include a filament bundle containing multiple filaments. The filament bundle is preferably a non-stranded filament bundle. In a non-stranded filament bundle, the filaments of the filament bundle extend adjacent to each other without crossing each other, preferably along the entire extension of the filament bundle. Similarly, the filament bundle may include a stranded portion in which the filaments of the filament bundle are stranded. The stranded portion may enhance the mechanical stability of the filament bundle. Using filaments to transport liquids is particularly advantageous because filaments inherently provide capillary action. Furthermore, in a filament bundle, capillary action is further enhanced due to the narrow spaces formed between the multiple filaments when bundled. This is particularly true for parallel arrangements of filaments, along which capillary action is constant because the narrow spaces between the filaments do not change along the parallel arrangement.
[0069] As an example, a filament bundle may include a parallel-bundle portion along at least a portion of its length extension, where multiple filaments may be arranged parallel to one another. The parallel-bundle portion may be disposed at one end portion of the filament bundle or between both end portions of the filament bundle. Alternatively, the parallel-bundle portion may extend along the entire length dimension of the filament bundle.
[0070] As another example, the filament bundle may include a first immersed section, a second immersed section, and an intermediate section between the first and second immersed sections. The filaments may be arranged parallel to one another at least along the intermediate section. For a particular configuration of an article having a reservoir zone and a vaporization zone, the first immersed section and the second immersed section may each be at least partially disposed within the reservoir chamber, and the intermediate section may be disposed within the vaporization chamber. In particular, the filament bundle may be substantially U-shaped, C-shaped, or V-shaped, with the first immersed section and the second immersed section each at least partially forming an arm of the U-shape, C-shape, or V-shape, respectively, and the intermediate section forming the base of the U-shape, C-shape, or V-shape, respectively. That is, the arms of the U-shaped, C-shaped, or V-shaped filament bundle may be at least partially disposed within the reservoir chamber, and the base of the U-shaped, C-shaped, or V-shaped filament bundle may be disposed within the vaporization chamber.
[0071] The filament bundle may also be a linear filament bundle, i.e., a substantially straight, uncurved or unbent filament bundle, and one end portion of the filament bundle may be disposed within the vaporization chamber and the other end portion of the filament bundle may be disposed within the reservoir chamber.
[0072] The liquid delivery susceptor arrangement may include at least a first susceptor material. In addition, the liquid delivery susceptor arrangement may include a second susceptor material. For example, the liquid delivery susceptor arrangement may include a plurality of first filaments including or made of the first susceptor material and a plurality of second filaments including or made of the second susceptor material.
[0073] The first susceptor material can be optimized for heat loss and therefore heating efficiency, while the second susceptor material can be used as a temperature marker. To this end, the second susceptor material preferably comprises one of a ferrimagnetic material and a ferromagnetic material. In particular, the second susceptor material can be selected to have a Curie temperature corresponding to a predetermined heating temperature. At that Curie temperature, the magnetic properties of the second susceptor material change from ferromagnetic or ferrimagnetic to paramagnetic, accompanied by a temporary change in its electrical resistance. Therefore, by monitoring the corresponding change in the current absorbed by the induction source, it is possible to detect when the second susceptor material reaches its Curie temperature, and therefore, when the predetermined heating temperature is reached.
[0074] The cartridge preferably has a substantially cylindrical shape. The cartridge may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal or polygonal outer cross section.
[0075] The cartridge may have a length extension in the range of 20 mm to 90 mm, in particular 30 mm to 40 mm, for example 38 mm. Similarly, the cartridge may have a diameter in the range of 4 mm to 12 mm, in particular 5 mm to 10 mm, for example 7.5 mm.
[0076] The reservoir chamber may have a length extension in the range of 10 mm to 60 mm, especially 20 mm to 40 mm, for example 25 mm.
[0077] The vaporization chamber may have a length extension in the range of 5 mm to 50 mm, in particular 10 mm to 30 mm, for example 12 mm, or 13 mm, or 15 mm.
[0078] The reservoir chamber may have a volume in the range of 100 cubic millimeters to 6000 cubic millimeters, especially 400 cubic millimeters to 1000 cubic millimeters.
[0079] The vaporization chamber may have a volume ranging from 100 cubic millimeters to 6000 cubic millimeters, in particular from 400 cubic millimeters to 1000 cubic millimeters.
[0080] The reservoir chamber may be filled with at least one liquid aerosol-forming substrate, i.e., an aerosol-forming liquid. Alternatively, the reservoir chamber may be empty. In this configuration, the cartridge may be considered a blank cartridge for the manufacture of an aerosol-generating article, which may be filled with a liquid aerosol-forming substrate and assembled with other components, e.g., a mouthpiece, to provide a final article. The reservoir chamber may be configured to be refillable, e.g., via a fill hole in the proximal end cap or septum, as detailed above.
[0081] The term "aerosol-forming liquid" as used herein refers to a liquid capable of releasing volatile compounds capable of forming an aerosol upon heating the aerosol-forming liquid. The aerosol-forming liquid is intended to be heated. The aerosol-forming liquid may include both solid and liquid aerosol-forming materials or components. The aerosol-forming liquid may include a tobacco-containing material containing volatile tobacco flavor compounds that are released from the liquid upon heating. Alternatively, or in addition, the aerosol-forming liquid may include a non-tobacco material. The aerosol-forming liquid may further include an aerosol former. Examples of suitable aerosol formers are glycerin and propylene glycol. The aerosol-forming liquid may also include other additives and ingredients (such as nicotine or flavoring agents). In particular, the aerosol-forming liquid may include water, solvents, ethanol, plant extracts, and natural or artificial flavors. The aerosol-forming liquid may be an aqueous aerosol-forming liquid or an oil-based aerosol-forming liquid.
[0082] The present invention relates to a stick-shaped aerosol-generating article for use with an inductively heated aerosol generating device, the article comprising a cartridge according to the present invention and as described herein, wherein a vaporization chamber is disposed in a distal end portion of the article.
[0083] As used herein, the term "aerosol-generating article" refers to a consumable product for use in an inductively heated aerosol generating device, particularly a consumable product that is disposed of after a single use. Alternatively, the article may be configured for multiple uses. To this end, the reservoir chamber of the article's cartridge may be configured to be refillable, as detailed above. In particular, the article may be configured to be inserted into an inductively heated aerosol generating device. The aerosol-generating article is preferably intended to be heated rather than combusted, and includes at least one liquid stored in the reservoir chamber of the cartridge that, when heated, releases a volatile compound capable of forming an aerosol.
[0084] The article may include a mouthpiece at a proximal end portion of the article. That is, the mouthpiece is preferably disposed proximal to the cartridge. As used herein, the term "mouthpiece" refers to a portion of the article that can be placed in a user's mouth to directly inhale the aerosol from the article. The mouthpiece is preferably disposed adjacent to the reservoir chamber, particularly adjacent to the proximal end wall member of the reservoir chamber. In particular, the mouthpiece may abut the reservoir chamber, particularly adjacent to the proximal end wall member of the reservoir chamber.
[0085] The mouthpiece may be in fluid communication with the vaporization chamber via a vapor transport conduit, which preferably opens directly into the fluid passage through the mouthpiece. Thus, the mouthpiece may include a vapor inlet at a distal end of the mouthpiece and a vapor outlet at a proximal end of the mouthpiece for releasing vaporized liquid from the article. The fluid passage through the mouthpiece extends from the vapor inlet to the vapor outlet.
[0086] The mouthpiece may include at least one of an acetate filter plug, a hollow acetate tube, a plastic tube, and an aerosol cooling element. The filter may be used to filter out undesirable components of the aerosol. The mouthpiece may also include additional materials, such as flavoring materials, added to the aerosol. The hollow acetate tube or the plastic tube may include a central air passage. The aerosol cooling element may allow aerosol escaping from the vapor-carrying conduit of the cartridge to be cooled. The aerosol cooling element may be an element with a large surface area and low withdrawal resistance (e.g., 15 mmWG to 20 mmWG).
[0087] The mouthpiece may have a length extension in the range 3 mm to 15 mm, especially 5 mm to 10 mm, for example 7 mm.
[0088] As further described above, the article may further comprise a first wrapper wrapped circumferentially around the vaporization chamber and the reservoir chamber, and preferably, when present, around at least the distal portion of the mouthpiece. Advantageously, the wrapper may function to hold the mouthpiece and the cartridge together. This results in an article having a stick-like outer shape similar or equivalent to previously contemplated articles containing solid substrates, and thus compatible for use with previously contemplated aerosol generating devices. In particular, the wrapper may serve to impart visual and tactile similarity to a conventional cigarette to the article. For the same purpose, the article may further comprise a second wrapper wrapped circumferentially around the mouthpiece and, preferably, around the proximal end portion of the cartridge above the first wrapper. The second wrapper may further enhance the visual and tactile similarity to a conventional cigarette. The first wrapper, and, if present, the second wrapper, may be a paper wrapper. A first wrapper can be wrapped around the mouthpiece and preferably around the proximal end portion of the cartridge, and then the first wrapper can be wrapped over the second wrapper, around the vaporization chamber and reservoir chamber, and around at least the distal portion of the mouthpiece. The first and second wrappers can be wrapped around the mouthpiece and cartridge such that the free ends of the respective wrappers overlap each other. Each of the first and second wrappers can include an adhesive that adheres the free ends of the respective wrappers to each other.
[0089] Preferably, the article has a substantially cylindrical shape. The article sleeve may have a circular, elliptical, oval, triangular, rectangular, square, hexagonal, or polygonal outer cross section.
[0090] The distal end wall member of the vaporization chamber, particularly the distal end cap of the cartridge (if present), may define the distal-most end of the article.
[0091] The article may have a length extension in the range of 23 mm to 65 mm, especially 35 mm to 50 mm, for example 45 mm.
[0092] Further features and advantages of the aerosol-generating article according to the invention have already been described with respect to the cartridge according to the invention and apply equally.
[0093] According to the present invention there is also provided an aerosol-generating system comprising an aerosol-generating article according to the present invention and as described herein as an article.
[0094] As used herein, the term "aerosol-generating device" refers to an electrically operated device capable of interacting with at least one aerosol-generating article containing at least one aerosol-forming liquid to generate an aerosol by inductively heating the aerosol-forming liquid in a vaporization chamber via a susceptor arrangement in the article. The aerosol-generating device is preferably a smoking device for generating an aerosol that can be directly inhaled by a user through the user's mouth. Specifically, the aerosol-generating device is a handheld aerosol-generating device.
[0095] The device may comprise a receiving cavity for removably receiving at least a portion of the aerosol-generating article, in particular at least a portion of the vaporization chamber of the article.
[0096] The aerosol generating device includes an induction heating arrangement constructed and arranged to generate an alternating magnetic field within the receiving cavity to inductively heat an aerosol-forming liquid within the aerosol-generating article when the article is received within the aerosol generating device.
[0097] To generate the alternating magnetic field, the induction heating aerosol generating device, particularly the induction heating arrangement, may include at least one induction coil surrounding at least a portion of the liquid transport susceptor arrangement located in the vaporization chamber when an article is received in the cavity of the device. In particular, the induction coil may exclusively surround a portion of the liquid transport susceptor arrangement located in the vaporization chamber when an article is received in the cavity of the device. The induction coil is preferably disposed around the receiving cavity when the article is received in the cavity of the device, particularly around a portion of the receiving cavity where the vaporization chamber is located, and more particularly around that portion of the receiving cavity where the portion of the vaporization chamber including a portion of the liquid transport susceptor arrangement is located when the article is received in the cavity of the device. The at least one induction coil may be a helical coil or a flat, planar coil, particularly a pancake coil or a curved, planar coil.
[0098] The induction heating arrangement may include an alternating current (AC) generator. The AC generator may be powered by a power supply of the aerosol generating device. The AC generator is operably coupled to at least one induction coil. Specifically, the at least one induction coil may be an integral part of the AC generator. The AC generator is configured to generate a high-frequency oscillating current that passes through the at least one induction coil to generate an alternating magnetic field. The AC current may be supplied to the at least one induction coil continuously after activation of the system, or may be supplied intermittently (e.g., with each puff).
[0099] The induction heating arrangement includes a DC / AC converter including an LC network, preferably comprising a series connection of a capacitor and an inductor, and the DC / AC converter may be connected to a DC power source.
[0100] The induction heating arrangement is preferably configured to generate a high frequency magnetic field, which as referred to herein may be in the range of 500 kHz (kilohertz) to 30 MHz (megahertz), particularly 5 MHz (megahertz) to 15 MHz (megahertz), preferably 5 MHz (megahertz) to 10 MHz (megahertz).
[0101] The aerosol generating device may further comprise a controller configured to control the operation of the heating process, preferably in a closed loop configuration, in particular to control the heating of the aerosol-forming liquid to a predetermined operating temperature. The operating temperature used to heat the aerosol-forming liquid may be in the range of 100°C to 300°C, in particular 150°C to 250°C, for example 230°C.
[0102] The controller may be the overall controller of the aerosol generating device or may be part of the overall controller of the aerosol generating device. The controller may comprise a microprocessor, such as a programmable microprocessor, a microcontroller, or an application specific integrated circuit chip (ASIC) or other electronic circuit capable of providing control. The controller may include additional electronic components, such as at least one DC / AC inverter and / or a power amplifier, such as a class C power amplifier, a class D power amplifier, or a class E power amplifier. Specifically, the inductive source may be part of the controller.
[0103] The aerosol generating device may include a power source, specifically a DC power source configured to provide a DC supply voltage and a DC supply current to the induction source. The power source is preferably a battery, such as a lithium iron phosphate battery. The power source may be rechargeable. The power source may have a capacity that allows for storage of energy sufficient for one or more user experiences. For example, the power source may have a capacity sufficient to allow continuous generation of aerosol for approximately six minutes, or a multiple of six minutes. In another embodiment, the power source may have a capacity sufficient to allow for a predetermined number of puffs, or for discontinuous activation of the induction source.
[0104] The aerosol generating device may further comprise a flux concentrator disposed around at least a portion of the induction coil and configured to distort the alternating magnetic field of the induction coil toward the receiving cavity. Thus, when an article is received in the receiving cavity, the alternating magnetic field is distorted toward the susceptor arrangement. Preferably, the flux concentrator comprises a flux concentrator foil, particularly a multi-layer flux concentrator foil.
[0105] Further features and advantages of the aerosol generating system according to the invention have already been described above in relation to the cartridge and aerosol generating article according to the invention and apply equally.
[0106] Generally, as used herein, the section or component of the cartridge, aerosol-generating article, or aerosol-generating device that is closest to the user's mouth when the system is in use is designated with the prefix "proximal." Sections that are disposed further away are designated with the prefix "distal."
[0107] The present invention is defined in the claims. However, the following provides a non-exhaustive list of non-limiting examples. Any one or more of the features of these examples may be combined with any one or more features of any other example, embodiment, or aspect described herein.
[0108] Example 1: 1. A cartridge of stick-shaped aerosol-generating articles for use with an induction-heated aerosol generator, the cartridge comprising: a vaporization chamber at a distal end portion of the cartridge for vaporizing an aerosol-forming liquid therein; a reservoir chamber for storing an aerosol-forming liquid proximal to the vaporization chamber; a liquid-transfer susceptor arrangement constructed and arranged to be inductively heated when used with the apparatus to transport the aerosol-forming liquid from the reservoir chamber into the vaporization chamber and vaporize the aerosol-forming liquid in the vaporization chamber; a vapor transport conduit providing fluid communication for the vaporized aerosol-forming liquid from the vaporization chamber to a proximal region of the reservoir chamber; a distal end cap forming at least a distal end wall member of the vaporization chamber, the distal end cap being non-integral with any wall member of the reservoir chamber. Example 2: The cartridge of example 1, wherein the distal end cap is not inductively heatable. Example 3: 3. The cartridge of any one of Examples 1 or 2, wherein the distal end cap is made from PEEK or silicone. Example 4: 4. The cartridge of any one of Examples 1 to 3, wherein a distal end cap defines a distal-most end of the cartridge. Example 5: 5. The cartridge of any one of Examples 1 to 4, wherein the vaporization chamber comprises at least one air inlet formed in the distal end cap. Example 6: A cartridge as described in Example 5, wherein at least one air intake port comprises a vent hole penetrating the distal end cap or a vent groove formed in a wall member of the vaporization chamber other than the distal end cap, particularly in a surface of the distal end cap facing the circumferentially outer wall member of the vaporization chamber. Example 7: 7. The cartridge of any one of Examples 1 to 6, wherein the distal end cap is in the shape of a plug. Example 8: 8. The cartridge of example 7, wherein the plug-shaped distal end cap comprises a plug body that is inserted into the circumferential outer wall member of the vaporization chamber. Example 9: The cartridge of example 8, wherein the plug body is substantially cylindrical or frustoconical. Example 10: 10. The cartridge of any one of Examples 8-9, wherein the plug body comprises a circumferential collar that provides a sealing fit of the distal end cap within the cartridge, particularly against the circumferential outer wall member of the reservoir chamber. Example 11: The cartridge of example 7, wherein the plug-shaped distal end cap comprises a cover plate. Example 12: A cartridge according to any one of Examples 7 to 11, wherein the plug-shaped distal end cap, in particular the cover plate, comprises a protruding collar abutting the distal front end of the circumferential outer wall member of the vaporization chamber. Example 13: 13. The cartridge of any one of Examples 7 to 12, wherein the plug-shaped distal end cap further comprises an insert portion that is at least partially inserted into the circumferential outer wall member of the vaporization chamber. Example 14: The cartridge of example 13, wherein the insert portion comprises an insert ring, or an insert tube, or an insert cylinder, or a hollow insert cylinder, or a plurality of insert ring segments, or a plurality of insert pins, or a plurality of insert fins. Example 15: 15. The cartridge of any one of Examples 13 or 14, wherein the insert portion extends at least partially (from the cover plate) to a septum that forms a common wall member between the vaporization chamber and the reservoir chamber. Example 16: A cartridge described in any one of Examples 7 to 15, wherein the plug-shaped distal end cap includes at least one, in particular at least two, preferably two, three, or four support legs extending (from the cover plate) to a septum forming a common wall member of the vaporization chamber and the reservoir chamber. Example 17: 17. The cartridge of example 16, wherein the at least one support leg extends along an inner surface of the circumferential outer wall member of the vaporization chamber. Example 18: A cartridge described in any of Examples 7 to 17, wherein the plug-shaped distal end cap includes at least one plug member at the proximal end that seals a filling hole in a septum used to fill an aerosol-forming liquid into the reservoir chamber via the vaporization chamber. Example 19: 19. The cartridge of embodiment 18, wherein the plug member is disposed at the proximal end of the insertion portion, particularly at the proximal end of the at least one support leg. Example 20: 20. The cartridge of any one of Examples 1 to 19, wherein the distal end cap is cup-shaped. Example 21: 21. The cartridge of example 20, wherein the cup-shaped distal end cap includes a bottom portion forming a distal end wall member of the vaporization chamber and a sleeve portion forming a circumferential outer wall member of the vaporization chamber. Example 22: 22. The cartridge of any one of Examples 1-21, wherein the cartridge comprises a proximal end cap forming at least a proximal wall member of the reservoir chamber. Example 23: 23. The cartridge of any one of Examples 1 to 22, comprising a cartridge sleeve forming at least a circumferential outer wall member of the vaporization chamber. Example 24: 24. The cartridge of example 23, wherein the cartridge sleeve further forms a circumferential outer wall member of the reservoir chamber. Example 25: 25. The cartridge of any one of Examples 1 to 24, wherein the distal end cap is attached to the cartridge by a press fit, or a snap fit, or a welding, or an adhesive bond. Example 26: A stick-shaped aerosol-generating article for use with an induction heating aerosol generator, the article comprising a cartridge according to any one of Examples 1 to 25, and a vaporization chamber disposed at the distal end portion of the article. Example 27: 27. The article of example 26, further comprising a mouthpiece at a proximal end portion of the article. Example 28: An aerosol generating system comprising the aerosol-generating article according to any one of Examples 26 to 27 and an induction heating aerosol generator for use with the article. Example 29: 29. An aerosol generating system as described in Example 28, wherein the aerosol generating device comprises a receiving cavity for removably receiving at least a portion of the aerosol-generating article, particularly at least a portion of the vaporization chamber of the article. Example 30: An aerosol generation system as described in Example 29, wherein the aerosol generation device includes an induction coil that surrounds at least a portion of a liquid transfer susceptor arrangement located within the vaporization chamber when an article is received within the cavity of the device.
[0109] The embodiment will now be further described with reference to the figures.
[0110] Figure 1 shows, in an exploded view, a schematic representation of the general structure and components of a stick-shaped aerosol-generating article 1 according to the present invention. As will be explained in more detail below with respect to Figure 3, the aerosol-generating article 1 is configured to be used with an inductively heated aerosol generator to vaporize an aerosol-forming liquid 19 provided by the aerosol-generating article 1.
[0111] The aerosol-generating article 1 shown in FIG. 1 comprises two main components: a cylindrical cartridge 10 for storing and vaporizing an aerosol-forming liquid 19 therein, and a cylindrical mouthpiece 90 through which a user can draw to create an airflow (indicated by arrows 21) through the article 1 in which volatile compounds released from the heated aerosol-forming liquid 19 are entrained and condensed to form an aerosol that exits the article 1 at the proximal end 92 of the mouthpiece 90.
[0112] According to the present invention, cartridge 10 comprises a vaporization chamber 11 at a distal end portion of cartridge 10 for vaporizing an aerosol-forming liquid therein. Vaporization chamber 11 includes two air inlets 13 that allow air to enter the article when a user draws on mouthpiece 90. Cartridge 10 further comprises a reservoir chamber 12 for storing aerosol-forming liquid 19 proximal to vaporization chamber 11. Cartridge 10 further comprises a liquid delivery susceptor arrangement 40 configured and arranged to deliver aerosol-forming liquid 19 from reservoir chamber 12 into vaporization chamber 11. In addition, liquid delivery susceptor arrangement 40 is configured and arranged to be inductively heated when exposed to an alternating magnetic field when used with a corresponding aerosol-generating device to vaporize aerosol-forming liquid 19 in vaporization chamber 11. Additionally, cartridge 10 includes a vapor transport conduit 20 that provides fluid communication for air and vaporized aerosol-forming liquid from vaporization chamber 11 to a proximal region of reservoir chamber 13, i.e., a mouthpiece 90 disposed adjacent proximal end wall member 14 of reservoir chamber 12. As can be further seen in FIG. 1 , mouthpiece 90 in this example comprises a hollow acetate tube providing a central fluid passageway 91 through mouthpiece 90 into which vapor transport conduit 20 opens directly to allow aerosol formed within the article to escape the article via a vapor outlet of fluid passageway 91 at a proximal end 92 of mouthpiece 90.
[0113] The cartridge 10 and mouthpiece 90 are separate components that may be manufactured separately, particularly at different locations, and then assembled together to form the aerosol-generating article 1 according to the present invention. For assembly, a cylindrical mouthpiece 90 having substantially the same cross-sectional shape as the cylindrical cartridge 10 may be disposed adjacent to the cartridge 10 proximal to the reservoir chamber 12 so as to abut the proximal end wall member 14 of the reservoir chamber 12. Thereafter, as shown in FIG. 1 , a first wrapper 95 may be wrapped around at least an axial portion of the cartridge 10 and the mouthpiece 90 to hold the mouthpiece 90 and cartridge 10 together. Also shown in FIG. 1 , a second wrapper 96 may be wrapped circumferentially around the mouthpiece 90 above the first wrapper 95, and preferably around the proximal end portion of the cartridge 10. The first wrapper 95 and the second wrapper 96 may be wrapped around the mouthpiece 90 and cartridge 10 such that the free ends of the respective wrappers 95, 96 overlap each other. The first and second wrappers may each include an adhesive that adheres the free ends of the respective wrappers to one another. This process ultimately results in an aerosol-generating article 1 having a stick-like outer shape similar or equivalent to previously contemplated articles containing solid substrates, for example, as described in WO 2015 / 177294 A1.
[0114] A first exemplary embodiment of such an article 101 is shown in FIG. 2. Features identical or similar to those of the general article design shown schematically in FIG. 1 are designated by the same reference numerals, but incremented by 100. Further details of the article 101, and particularly the cartridge 110 and its components, are described in detail below with respect to FIGS. 4-7. In accordance with the general article design, the article 101 comprises a cylindrical cartridge 110 axially disposed adjacent to one another and surrounded by a first paper wrapper 195 and a second paper wrapper 196, and a cylindrical mouthpiece 190 formed by hollow acetate tubing. The cartridge 110 comprises a cylindrical cartridge sleeve 170 integrally forming a circumferential outer wall member 117 of the vaporization chamber 111 and a circumferential outer wall member 116 of the reservoir chamber 112. The cartridge 110 further comprises a proximal end cap 130 forming a proximal end wall member 114 of the reservoir chamber 112. Similarly, cartridge 110 includes a distal end cap 150 that forms a distal end wall member 115 of vaporization chamber 111. Both proximal end cap 130 and distal end cap 150 are press-fit within proximal and distal openings, respectively, of cartridge sleeve 170. The cartridge further includes a disc-shaped septum 160 that forms a common wall member of vaporization chamber 111 and reservoir chamber 112, separating the interior of vaporization chamber 111 from the interior of reservoir chamber 112. Like proximal end cap 130 and distal end cap 150, disc-shaped septum 160 is press-fit within cartridge sleeve 170 between its opposite ends such that the interior of cartridge sleeve 170 is divided in a ratio of approximately 1:3.
[0115] To transport the aerosol-forming liquid 119 stored in the reservoir chamber 112 into the vaporization chamber 111, the cartridge 110 according to this embodiment includes a liquid transport susceptor arrangement 140 formed by a U-shaped filament bundle 141 including multiple filaments arranged parallel to one another. Because the filaments are arranged parallel to one another in the bundle, narrow spaces are formed between the multiple filaments, providing capillary action to transport the liquid along the extended length of the filament. At least a portion of the filament is made of an inductively heatable material, such as stainless steel. Thus, the filament bundle 141 can perform two functions: transporting and heating the aerosol-forming liquid. As can be seen in FIG. 2 , the U-shaped filament bundle 141 includes a base and two arms, each of which passes through a respective feedthrough 161 in a septum 160. A distal portion of each arm is disposed within the reservoir chamber 112 to immerse the aerosol-forming liquid 119. Thus, the distal portions of the two arms may be referred to as immersion sections 142. In contrast, the base and the proximal portions of each arm are disposed within the vaporization chamber to form an inductively heatable vaporization section 143 when exposed to an alternating magnetic field. In doing so, aerosol-forming liquid 119 transported from the reservoir chamber 112 toward the vaporization section 143 via the immersion section 142 is vaporized within the vaporization chamber 111. To allow air to enter the article 101 for aerosol generation, the vaporization chamber 111 includes two air inlets 113 at the distal end of the article 101. To transport air and vaporized liquid proximally toward the mouthpiece 190, the cartridge 110 according to this embodiment includes an inner tube 121 that forms a transport conduit 120 that provides fluid communication between the vaporization chamber 111 and a central passageway 191 of the mouthpiece 190. Further details of the proximal end cap 130, the distal end cap 150, the inner tube 121, and the septum 160 are described further below with reference to FIGS. 4-7.
[0116] Because of its stick-like configuration and the provision of a vaporization chamber 111 at the distal end portion of the cylindrical article 101, the article 101 is adapted for use with an inductively heated aerosol generating device 3 already contemplated for solid substrate consumables, as described with respect to Figure 3. Thus, the device can be used with different types of articles in general to generate aerosols from different types of aerosol-forming substrates, and in particular from both solid and liquid substrates.
[0117] FIG. 3 schematically illustrates an aerosol generation system 2 according to an exemplary embodiment of the present invention. The system 2 comprises an aerosol-generating article 101, as shown in FIG. 2, and an inductively heated aerosol generation device 3 capable of interacting with the article 101 to generate an aerosol. To this end, the aerosol generation device 3 comprises a receiving cavity 4 formed within the device housing at a proximal end of the device 3. The receiving cavity 4 is configured to removably receive at least a portion of the aerosol-generating article 101. In particular, the aerosol generation device 3 is configured to inductively heat the heating section 143 of the filament bundle 141 to a temperature sufficient to vaporize an aerosol-forming liquid transported from the reservoir chamber 112 to the heating section 143 via the immersion section 142. To this end, the device 3 comprises an inductive heating arrangement including an induction coil 5. In this embodiment, the induction coil 5 is a single helical coil disposed around the proximal end portion of the receiving cavity 4 so as to surround only the heated section 143 of the liquid transfer susceptor arrangement 140 when the article 101 is received in the cavity 4. Thus, when the induction coil 5 is driven with an AC current during use of the apparatus 3, the induction coil 5 generates an alternating magnetic field that largely penetrates the heated section 143 within the vaporization chamber 111 of the article 101. In contrast, due to localized heating, the immersed section 142 of the U-shaped filament bundle 141 remains below its vaporization temperature. Thus, boiling of the aerosol-forming liquid 191 within the reservoir chamber 112 is prevented. Thus, during operation, the liquid transfer susceptor arrangement 140 includes a temperature profile that indicates a temperature increase from a temperature below the vaporization temperature of the aerosol-forming liquid 191 within the immersed section 142 to a temperature above the respective vaporization temperatures within the heated sections 143. The aerosol generating device 3 further includes a controller 6 for controlling the overall operation of the system 2, particularly the heating operation. Furthermore, the aerosol generating device 3 includes a power supply 7 for providing power for generating the alternating magnetic field. The power supply 7 is preferably a battery, such as a lithium iron phosphate battery. The power supply 7 may have a capacity that allows for sufficient energy storage for one or more user experiences. Both the controller 6 and the power supply 7 are disposed in a distal portion of the aerosol generating device 3.
[0118] In use of system 2, as a user draws on mouthpiece 190, air is drawn into cavity 4 at the edge of article insertion opening 8. The airflow further extends through a passage formed between the inner surface of cylindrical cavity 4 and the outer surface of article 101 toward the distal end of cavity 4. At the distal end of cavity 4, the airflow enters vaporization chamber 111 through air inlet 113. From there, the airflow further passes through vapor delivery conduit 120 to mouthpiece 190 and ultimately exits article 101. In vaporization chamber 111, vaporized aerosol-forming liquid 119 is entrained within the airflow. As it further passes through vapor delivery conduit 120 and central air passageway 191 of mouthpiece 190, the flow of air and vaporized liquid 119 cools to form an aerosol that escapes article 101 through mouthpiece 190.
[0119] Further details of cartridge 110 of article 101 according to Figures 2-3 will now be described with reference to Figures 4-7. Figure 4 is an enlarged view of Figure 2, but does not show mouthpiece 190 and first and second wrappers 195, 196. Similarly, Figure 5 is a perspective view of cartridge 110 according to Figure 2. Figure 6 shows a front view of septum 160 looking proximally, and Figure 7 shows a perspective view of distal end cap 150.
[0120] As can be seen in FIGS. 4 and 5 , the inner tube 121 forming the vapor transport conduit 120 is a cylindrical tube having a circular inner cross section and a circular outer cross section. The inner tube 121 is preferably made of plastic. Because of its cylindrical shape, it can be advantageously manufactured by extrusion. As can be further seen in FIGS. 4 and 5 , the inner tube 121 extends coaxially with the cartridge sleeve 170 along the entire axial length of the reservoir chamber 112, from the proximal end cap 130 to the septum 160. In this manner, the inner tube 121 also forms the inner wall member of the reservoir chamber 112. Thus, the volume of the reservoir chamber 112 is substantially hollow and cylindrical. Notably, the inner tube 121 is non-integral (separate) from the plug-shaped proximal end cap 130 and the disk-shaped septum 160. As can be best seen in FIG. 4 , the proximal end cap 130 includes a through-hole 135 that is in fluid communication with the vapor transport conduit 120. In particular, proximal end cap 130 includes a distal recess 136 that forms the distal portion of throughbore 135 within which the proximal end portion of inner tube 121 is supported. The inner cross-section of distal recess 136 is larger than the inner cross-section of the remaining proximal portion 137 of throughbore 135. Distal recess 136 thus forms an abutment against inner tube 121 to secure its position in the proximal direction. The inner cross-section of proximal portion 137 of throughbore 135 corresponds to the inner cross-section of inner tube 121 such that the airflow passage through vapor delivery conduit 120 continues smoothly through proximal portion 137 of throughbore 135.
[0121] In a similar manner, the distal end portion of inner tube 121 is supported within a through-hole 165 of septum 160, which connects vapor delivery conduit 120 to vaporization chamber 111. Similar to proximal end cap 130, septum 160 includes a proximal recess 166 that forms the proximal portion of through-hole 165 within which the vapor delivery conduit is supported at its distal end portion. The inner cross-section of proximal recess 166 is larger than the inner cross-section of the remaining distal portion 167 of through-hole 165 so as to provide an abutment for inner tube 121 in the distal direction. To ensure a smooth continuation of the airflow passage from vaporization chamber 111 into vapor delivery conduit 120, the inner cross-section of distal portion 167 of through-hole 165 corresponds to the inner cross-section of inner tube 121. Having both ends of the inner tube 121 supported within the recesses 136 , 166 is particularly advantageous with respect to a proper sealing fit between the vapor carrying conduit 140 and the end wall members of the reservoir chamber 112 .
[0122] As already mentioned above, the septum 160 also includes two feed-through openings 161 through which the U-shaped arms of the filament bundle 141 pass. The cross-sectional dimensions of the feed-through openings 161 are selected so that the liquid transfer susceptor arrangement 140 is fixedly held by the septum 160. Advantageously, the liquid transfer susceptor arrangement 140 is secured to the septum 160 prior to assembling the cartridge 110 to facilitate assembly. As shown in FIG. 6 , the septum further includes two fill holes 169 disposed transversely on opposite sides of the through-bore 165 for filling the aerosol-forming liquid 191 into the reservoir chamber 112 via the vaporization chamber 111 prior to attaching the distal end cap 150 to the distal end of the cartridge sleeve 170.
[0123] Additionally, septum 160 includes a circumferential collar 168 having a cross-sectional shape that corresponds to the inner cross-section of the shape of cartridge sleeve 170. Collar 168 therefore functions to securely attach septum 160 within cartridge 110 via a press fit. Additionally, collar 168 provides a sealed fit of septum 160 against the inner surface of cartridge sleeve 170, thus preventing leakage of aerosol-forming liquid from reservoir chamber 112 into the vaporization chamber.
[0124] The plug body of the proximal end cap 130, which is fully inserted into the proximal end of the cartridge sleeve 170, also has a cross-sectional shape that corresponds to the inner cross-section of the cartridge sleeve 170. Therefore, the proximal end cap 130 is also sealingly and fixedly attached within the cartridge sleeve 170 by a press fit.
[0125] Both the proximal end cap 130 and the septum are preferably made of silicone, which has good sealing properties and is inexpensive, which is especially important in light of the fact that the cartridge 110 is preferably used in an aerosol-generating article 101 configured for single use only. Silicone is also non-inductively heatable, which prevents the energy provided by the alternating magnetic field from being unnecessarily dissipated within the septum 160 and proximal end cap 130.
[0126] As best seen in FIG. 7 in combination with FIGS. 4 and 5 , the plug-shaped distal end cap 150 includes a cover plate 151 and an insert portion 152. The cover plate 151 extends radially outward beyond the insert portion 152 and the inner cross section of the cartridge sleeve 170 so as to abut the distal front end of the cartridge sleeve 170. The insert portion 152 is inserted into the distal end portion of the cartridge sleeve 170, which forms the circumferential outer wall member 117 of the vaporization chamber 111. In this embodiment, the insert portion 152 includes an insert ring 153 and two support legs 154 that extend along the inner surface of the circumferential outer wall member 117 of the vaporization chamber 111. The length of the support legs 154 is selected so that the legs 154 abut against the septum 160 and the cover plate 151 abuts the distal front end of the cartridge sleeve 170 when the distal end plug 150 is installed in the cartridge 110. Thus, the distal end cap 150 is proximally secured in place, and conversely, the septum 160 is distally secured, and via the inner tube 121, the proximal end cap is also proximally secured.
[0127] Additionally, plug-shaped distal cap 150 includes a plug member 159 at the proximal end of each support leg 154 for sealing fill hole 169 in septum 160 when distal plug 150 is installed in cartridge 110. Advantageously, this configuration allows installation of plug-shaped distal cap 150 to seal fill hole 169 and close the distal end of vaporization chamber 111 in a single step.
[0128] According to this embodiment, the air inlets 113 of the vaporization chamber 111 are formed in the distal end cap 150. As best seen in FIG. 7 , each air inlet 113 includes a vent groove 157 formed in the outer surface of the distal end cap 150 facing the cartridge sleeve 117, i.e., the outer surface of the insert ring 153, and in the outer portion of the cover plate 151.
[0129] Distal end cap 150 and cartridge 117 are preferably made of PEEK to provide good thermal stability of article 101. Furthermore, PEEK cannot be inductively heated, thus preventing a user from being burned when touching article 101 immediately after the heating process.
[0130] Figures 8-11 show a second embodiment of a cartridge 210 according to the present invention, which can alternatively be used in the aerosol-generating article according to Figure 2. The general setup of this cartridge is similar to that of the cartridge shown in Figures 4-7. Accordingly, identical or similar features are designated by the same reference numerals, but incremented by 100. In contrast to the first embodiment according to Figures 4-7, the cartridge 210 according to Figures 8-11 includes a cylindrical inner tube 221 having elliptical inner and outer cross sections. Advantageously, the elliptical cross section provides more free space within the reservoir chamber for disposing the immersion sections 242 of the filament bundle 241 on either side of the longitudinal axis of the elliptical inner tube 221. Accordingly, the through-hole 235 in the proximal end cap 230 and the through-hole 265 in the septum 260 also have elliptical cross sections corresponding to the dimensions and orientation of the elliptical inner and outer cross sections of the inner tube 221.
[0131] Furthermore, in contrast to the first embodiment according to FIGS. 4-7, the septum 260 of the cartridge 210 according to FIGS. 8-11 includes a proximal insertion socket 266 that protrudes into the reservoir chamber 212. Details of the septum 260, and in particular the proximal insertion socket 266, are shown in FIG. 10. The proximal insertion socket 260 forms the proximal portion of the through-bore 265 within which the distal end portion of the inner tube 221 is supported. In this manner, the proximal insertion socket 266 can be considered as a protrusion extending into the reservoir chamber 212, including a recess that forms the proximal portion of the through-bore 265. The elliptical inner cross-section of the proximal insertion socket 266 is larger than the elliptical inner cross-section of the remaining distal portion 267 of the through-bore 265, and thus provides an abutment for the distal end portion of the inner tube 221 in the distal direction. The oval inner cross-section of the distal portion 267 of the through-bore 265 corresponds to the oval inner cross-section of the inner tube 221 to provide a substantially smooth airflow passage through the cartridge 210 .
[0132] As can be further seen from FIG. 10 , the septum 260 of the cartridge 210 according to the second embodiment does not include a fill hole, in contrast to the first embodiment according to FIGS. 4-7 . Instead, as shown in FIG. 11 , it is the proximal end cap 230 that includes two fill holes 239 disposed transversely on opposite sides of the oval through-hole 235 for loading the aerosol-forming liquid 291 into the reservoir chamber 212 via the proximal end of the cartridge 210. To seal the fill holes 239 when filling the reservoir chamber 212, the cartridge 210 includes a proximal plug member 233, the details of which are also shown in FIG. 11 . To provide a substantially flat proximal surface at the proximal end of the cartridge 210, the proximal end cap 230 includes a proximal recess 231 into which the proximal plug member 233 is received. One or more fill holes may be disposed adjacent to the through-hole 235 of the proximal end cap. For example, the proximal end cap may include two fill holes disposed transversely on opposite sides of the through hole. The proximal plug member 233 includes a disk 232 having a protrusion 238 that fits snugly within the fill hole 239 of the proximal end cap 230. To allow free proximal escape of the aerosol from the cartridge 210, the proximal plug member 233 may include a through hole 234 in the disk 232 that mates with the through hole 235 of the proximal end cap 230. The cross section of the through hole 234 in the proximal plug member preferably corresponds to the inner cross section of the vapor delivery conduit 220 to provide a smooth airflow pathway.
[0133] Figures 12-13 show a third embodiment of a cartridge 310 according to the present invention, which may alternatively be used in the aerosol-generating article according to Figure 2. The general setup of this cartridge is similar to that of the cartridge shown in Figures 4-7. Therefore, identical or similar features are designated by the same reference numerals, but incremented by 200. In contrast to the first embodiment according to Figures 4-7, the cartridge 310 according to Figures 12-13 does not include a cylindrical cartridge sleeve, but instead includes a cup-shaped proximal end cap 330 and a cup-shaped distal end cap 350. The cup-shaped proximal end cap 330 includes a bottom portion 331 that forms the proximal end wall member 314 of the reservoir chamber 312, and a sleeve portion 332 (cup-shaped sidewall) that forms the circumferential outer wall member 315 of the reservoir chamber 312. Similarly, cup-shaped distal end cap 350 includes a bottom portion 351 that forms distal end wall member 315 of vaporization chamber 311 and a sleeve portion 352 (cup-shaped sidewall) that forms circumferential outer wall member 317 of vaporization chamber 311. In this configuration, reservoir chamber 312 and vaporization chamber 312 are substantially entirely formed by proximal end cap 330 and distal end cap 350, respectively. The missing wall members are formed by septum 360, which also serves as a joining link to which proximal end cap 330 and distal end cap 350 are attached by a press fit. As can be seen in FIG. 12 , septum 360 includes a circumferential protrusion 363 against which the distal and proximal faces of sleeve portion 332 and 352 abut.
[0134] Furthermore, in contrast to the first embodiment according to Figures 4-7, the cup-shaped proximal end cap 330 of the cartridge 210 according to Figures 12-13 includes a distal insertion socket 336 that forms a through-hole 335 and projects into the reservoir chamber 312, similar to the septum 260 according to Figures 8-11, and in which the proximal end portion of the vapor carrying conduit 320 is fully supported.
[0135] Figures 14-16 show a fourth embodiment of a cartridge 410 according to the present invention, which may alternatively be used in the aerosol-generating article according to Figure 2. The general setup of this cartridge is similar to that of the cartridge shown in Figures 4-7. Accordingly, identical or similar features are designated by the same reference numerals, but incremented by 300. In contrast to the first embodiment according to Figures 4-7, the cartridge 410 according to Figures 14-16 does not include a separate cartridge sleeve, inner tube, and proximal end cap. Instead, the cartridge 410 includes a unitary body 480 including a proximal end portion 483, an outer sleeve portion 487, and an inner tube portion 482 coaxially disposed within the outer sleeve portion 487. The outer sleeve portion 487 extends along the entire axial length extension of the reservoir chamber 412 and the vaporization chamber 411, thus forming a circumferential outer wall member 416 of the reservoir chamber 412 and a circumferential outer wall member 417 of the vaporization chamber 411. The proximal end portion 483 forms the proximal end wall member 414 of the reservoir chamber 412, which includes a through-hole 485 into which the proximal end of the inner tube portion 482 opens. The inner tube portion 482 simultaneously forms the vapor transport conduit 420 and the inner wall member of the hollow, cylindrical reservoir chamber 412. In the present invention, the inner tube portion 482 extends along the entire axial length of the reservoir chamber 412 and further passes through the through-hole 465 of the septum 460 and extends into the vaporization chamber 411. Advantageously, such a one-piece body 410 facilitates construction and assembly of the cartridge 410. The proximal end portion may correspond to the proximal end cap described above, which forms the proximal end wall member of the reservoir chamber. As in the other embodiments, the septum 460 is attached within the outer sleeve portion 487 using a collar 468, preferably by press-fit, snap-fit, welding, or adhesive bonding. The one-piece body 480 is combined with a distal end cap 450, detailed above, which is non-integral with the one-piece body 480 and attached to the distal end of the one-piece body 480 by a press fit, or by a snap fit, or by welding, or by adhesive bonding.Both the unitary body 480 and the distal end cap 450 are preferably injection molded using PEEK to prevent a user from being burned when touching an article containing the cartridge 410 immediately after the heating process.
[0136] 16 , the cartridge 410 further includes a sealing ring 449 for each of the feed-through openings 461 of the septum 460. In this embodiment, the sealing ring 449 is overmolded around those portions of the liquid transfer susceptor arrangement 440 that pass through the feed-through openings 461. Advantageously, this provides a particularly good seal and facilitates assembly of the cartridge 410. Preferably, the filament bundles 441 that form the liquid transfer susceptor arrangement 440 are overmolded with the sealing ring 449 prior to assembling the cartridge 410.
[0137] For purposes of this specification and the appended claims, unless otherwise indicated, all numbers expressing amounts, quantities, percentages, and the like should be understood in all instances to be modified by the term "about." Also, all ranges include the disclosed maximum and minimum points, and include any intermediate ranges therein, which may or may not be specifically recited herein. Thus, in this context, the number A is understood as A ± 5 percent of A. Within this context, the number A may be considered to include values that are within the typical standard error for measurement of the property it modifies. In some cases, such as those used in the appended claims, the number A may deviate by the percentages recited above, provided that the amount by which A deviates does not materially affect the basic and novel characteristics of the claimed invention. Also, all ranges include the disclosed maximum and minimum points, and include any intermediate ranges therein, which may or may not be specifically recited herein.
Claims
1. 1. A cartridge for a stick-shaped aerosol-generating article, said article being for use with an induction-heated aerosol generator, said cartridge comprising: a vaporization chamber at a distal end portion of said cartridge for vaporizing an aerosol-forming liquid therein; a reservoir chamber proximal to said vaporization chamber for storing an aerosol-forming liquid; a liquid-transfer susceptor arrangement constructed and arranged to be inductively heated when used with the apparatus to transfer an aerosol-forming liquid from the reservoir chamber into the vaporization chamber and vaporize the aerosol-forming liquid in the vaporization chamber; and a vapor transport conduit providing fluid communication for vaporized aerosol-forming liquid from the vaporization chamber to a proximal region of the reservoir chamber; a septum forming a common wall member between the vaporization chamber and the reservoir chamber, the septum including at least one fill hole for filling the aerosol-forming liquid into the reservoir chamber via the vaporization chamber; a plug-shaped distal end cap forming at least a distal end wall member of the vaporization chamber, the plug-shaped distal end cap being non-integral with any wall member of the reservoir chamber, the plug-shaped distal end cap including at least one plug member at a proximal end that seals the at least one fill hole in the septum.
2. The cartridge of claim 1 , wherein the distal end cap is not inductively heatable.
3. 3. A cartridge as described in claim 1 or 2, wherein the vaporization chamber includes at least one air intake port formed in the distal end cap, and the at least one air intake port includes a vent hole passing through the distal end cap or a vent groove formed in a wall member of the vaporization chamber other than the distal end cap, particularly in a surface of the distal end cap facing a circumferentially outer wall member of the vaporization chamber.
4. 4. A cartridge according to any one of claims 1 to 3, wherein the plug-shaped distal end cap comprises a plug body inserted into a circumferential outer wall member of the vaporization chamber.
5. 5. The cartridge of claim 4, wherein the plug body comprises a circumferential collar that provides a sealing fit of the distal end cap within the cartridge, particularly against the circumferential outer wall member of the reservoir chamber.
6. A cartridge according to any one of claims 1 to 5, wherein the plug-shaped distal end cap comprises a cover plate.
7. 7. The cartridge of claim 1, wherein the plug-shaped distal end cap further comprises an insert portion that is at least partially inserted into a circumferentially outer wall member of the vaporization chamber.
8. 8. A cartridge according to any one of claims 1 to 7, wherein the plug-shaped distal end cap comprises at least one, in particular at least two, preferably two, three or four, support legs extending to the septum.
9. The cartridge of claim 8 , wherein the at least one support leg extends along an inner surface of a circumferential outer wall member of the vaporization chamber.
10. 10. A cartridge according to any one of claims 7 to 9, wherein the plug member is arranged at the proximal end of the insertion part, in particular at the proximal end of the at least one support leg.
11. A cartridge according to any one of claims 1 to 10, wherein the plug member is made from the same material as the remainder of the plug-shaped distal end cap.
12. A cartridge according to any one of claims 1 to 11, wherein the plug member is integral with the remainder of the plug-shaped distal end cap.
13. 13. The cartridge of claim 1, wherein the at least one fill hole is located adjacent a through-hole in the septum through which the vapor carrying conduit passes or is supported at its distal end portion therein.
14. 14. The cartridge of any one of claims 1 to 13, wherein the distal end cap is attached to the cartridge by a press fit, or a snap fit, or a welding, or an adhesive bond.
15. 15. A stick-shaped aerosol-generating article for use with an induction heating aerosol generating device, the article comprising a cartridge according to any one of claims 1 to 14 and a mouthpiece at a proximal end portion of the article, the vaporization chamber being disposed at a distal end portion of the article.
Citation Information
Patent Citations
Electronic cigarette device and its components
JP2017506915A
Steam Supply Device
JP2019509110A
Cartridge and aerosol generating device including same
JP2022516568A
Atomizer and electronic cigarette having same
US20150144147A1
Device for storing and vaporizing liquid media
US20160073692A1