EP4498847A1 - Aerosol-generating device for use with an aerosol-generating article - Google Patents
Aerosol-generating device for use with an aerosol-generating articleInfo
- Publication number
- EP4498847A1 EP4498847A1 EP23715147.7A EP23715147A EP4498847A1 EP 4498847 A1 EP4498847 A1 EP 4498847A1 EP 23715147 A EP23715147 A EP 23715147A EP 4498847 A1 EP4498847 A1 EP 4498847A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- sleeve
- aerosol
- insert sleeve
- chamber
- proximal
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
Links
Classifications
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
- A24F40/48—Fluid transfer means, e.g. pumps
- A24F40/485—Valves; Apertures
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/20—Devices using solid inhalable precursors
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
- A24F40/46—Shape or structure of electric heating means
- A24F40/465—Shape or structure of electric heating means specially adapted for induction heating
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/50—Control or monitoring
- A24F40/57—Temperature control
Definitions
- the shape of the sleeve inner surface in the contact portion may depend on the aerosol-generating article intended to be received in the sleeve, any suitable shape is conceivable.
- (at least a section of) the sleeve inner surface in the contact portion may have a cylindrical shape.
- at least a section, in particular a section other than a cylindrical section of) the sleeve inner surface in the contact portion may have a conical shape.
- (at least a section of) the sleeve inner surface in the contact portion is a (substantially) smooth surface portion.
- smooth surface means free or substantially free from projections and/or unevenness.
- the alternative airflow path mentioned above which extends at least along the proximal portion of the chamber, is realized along the sleeve outer surface. This enables that at least that portion of the outer surface of the article, that is arranged in the proximal portion of the chamber, is by-passed such as not to be exposed to the airflow through the device.
- a length extension of the sleeve along a center axis of the sleeve may be in a range of 10 to 120 percent of a length extension of the chamber, preferably 20 to 40 percent, more preferably 25 to 30 percent.
- a length extension of the contact portion may be in a range of 10 to 120 percent of a length extension of the chamber, preferably 20 to 40 percent, more preferably 25 to 30 percent.
- a length extension of the contact portion may be in a range of 50 to 100 percent of the length extension of the sleeve, preferably 70 to 90 percent, more preferably 75 to 85 percent.
- a length extension of the insert sleeve along a center axis of the sleeve may be in a range between 3.5 mm and 8 mm, in particular between 4 mm and 7 mm, preferably between 4.5 mm and 6.5 millimeter, for example 4.7 mm or 4.75 mm or 6.25 mm.
- the inner surface in the contact portion may advantageously be configured for retention of the article in the chamber.
- the inner surface in the contact portion may be configured to cause a frictional force acting on the article that prevents the article from falling out of the chamber in the proximal direction in any spatial orientation of the device.
- the proximal portion of the airflow path may be formed at least partially between the sleeve outer surface and the chamber inner surface.
- the proximal portion of the airflow path is still provided within the chamber.
- the chamber inner surface may be an innermost surface, facing towards an interior of the chamber.
- fluid dynamic properties of the sleeve outer surface may be predefined and configured to facilitate desired characteristics of an airflow in the proximal portion of the airflow path.
- the insert sleeve may comprise a plurality of airflow channels arranged along a circumference of the sleeve outer surface, wherein the airflow channels form part of the proximal portion of the airflow path.
- turbulent flow may be reduced - at least to some extent - in the proximal portion of the air path, and thus undesired pressure drops in the device may be further reduced.
- laminar flow in the proximal portion of the air path may be facilitated.
- one or more of a width-extension of the airflow channels, a depthextension of the airflow channels or the number airflow channels may be chosen such that upon inserting an aerosol-generating article in the chamber a resistance to draw (RTD) is in a desired range.
- RTD resistance to draw
- the number of airflow channels may be in a range of 3 to 15, for example 5 or 12.
- the device resistance to draw may be in a range of 70 mmWG to 120 mmWG.
- the resistance to draw may be between 40 mmWG and 70 mmWG, in particular 45 mmWG and 65 mmWG, for example 55 mmWG.
- the plurality of airflow channels may extend substantially along a length extension of the insert sleeve.
- the length extension of the sleeve may extend along a center axis of the insert sleeve.
- the airflow channels may be formed between adjacent ridges arranged - spaced from each other - along the circumference of the insert sleeve (on the outside of the insert sleeve).
- the ridges may have a longitudinal extension along the length extension of the insert sleeve.
- the ridges may be integrally formed with the insert sleeve.
- the number, the shape and the distance of the plurality of ridges may be chosen such that upon inserting an aerosol-generating article into the chamber, a resistance to draw (RTD) is in the desired range set forth above.
- a cross-sectional area of the airflow path through the device may increase downstream of the ridges, due the absence of ridges. It follows that an airflow velocity of an airflow in the airflow path may decrease downstream of the ridges.
- the longitudinal extension of the ridges may be adapted such that a change in the airflow velocity, such as a decrease of the airflow velocity, is obtained at a desired location in the chamber.
- a decrease in velocity of the airflow along at least a portion of a distal portion of the airflow path may facilitate increased pre-heating of the airflow due to the time spent by the airflow in the distal portion for recuperation being prolonged.
- the ridges may serve to fix the insert sleeve within the device housing and to position the insert sleeve relative to the chamber, in particular coaxial to the chamber.
- the ridges may be in contact with the chamber inner surface. The contact may be such that the insert sleeve is fixed in the chamber by friction fit.
- the ridges may respectively comprise an outer contact surface configured to correspond to a radius at bend of the chamber inner surface for contacting the chamber inner surface.
- adjacent airflow channels may not be in fluid-communication with each other.
- the ridges may extend beyond a distal edge of the insert sleeve, in particular such that the insert sleeve comprises a discontinuous distal rim at a distal end of the insert sleeve.
- the sleeve inner surface may end at the distal edge of the insert sleeve.
- the sleeve outer surface may end at the distal edge of the insert sleeve.
- an inner surface (facing towards the center axis of the insert sleeve) of that portion of the ridges, that extends beyond the distal edge of the insert sleeve may be part of the insert sleeve inner surface.
- the ridges may extend beyond a proximal edge of the insert sleeve, in particular such that the insert sleeve comprises a discontinuous proximal rim at a proximal end of the insert sleeve.
- the sleeve inner surface may end at the proximal edge of the insert sleeve.
- the sleeve outer surface may end at the proximal edge of the insert sleeve.
- an inner surface (facing towards the center axis of the insert sleeve) of that portion of the ridges, that extends beyond the distal edge of the insert sleeve may be part of the insert sleeve inner surface.
- the chamber may be formed as a sleeve, preferably with a distal closed end, received in a cavity within a proximal portion of the device housing.
- the chamber may be formed as a barrel received in a cavity within a proximal portion of the device housing.
- the sleeve or barrel may be at least partially inserted into the cavity.
- the proximal portion of the aerosol-generating device may form part of a device housing.
- said cavity may be formed within a housing of the aerosol-generating device. Forming the chamber as a sleeve or barrel may be beneficial with regard to an easy manufacturing and assembling of the device.
- the insert sleeve may cooperate with a proximal portion or a proximal end of the chamber, in particular for locking the sleeve from displacing at least in a distal direction.
- the insert sleeve may comprise a sleeve distal end that is an unattached end.
- the chamber may comprise one or more stops at a distal end of the chamber, configured for preventing the article from displacing at least in a distal direction.
- an inner cross-sectional area of the insert sleeve may increase in the proximal direction along at least a portion of the intake portion.
- the sleeve inner surface may comprise one of a truncated cone shape or a funnel shape in the intake portion.
- the inner cross-section of the sleeve inner surface may expand to correspond at least to an inner cross-section of the chamber inner surface. Due to this, the sleeve inner surface may advantageously guide an aerosol-generating article during insertion of the article into the device, in particular in a radial direction of the device and towards a position coaxial with the chamber.
- the intake portion projects in a proximal direction beyond a proximal end of the chamber. This enables that an incoming airflow entering the device may be received and redirected in the intake portion prior to entering the chamber.
- an incoming airflow may enter the intake portion or the airflow channels or the intake portion and the airflow channels at a desired angle of incidence relative to a center axis of the insert sleeve.
- the intake portion may be configured to receive an airflow entering the device. That is, the intake portion may be configured to redirect an airflow as it enters the device.
- the intake portion may comprise one or more air inlets for air to enter the proximal portion of the airflow path along the sleeve outer surface, in particular to enter the airflow channels on the sleeve outer surface.
- the air inlets may be formed and arranged in various configurations in order to realize different airflow management configurations, in particular different ways of supplying air into the proximal portion of the airflow air path.
- the total cross-sectional area of the air inlets may be in a range between 5 and 8 square millimeter, or between 6 and 9 square millimeter, or between 5 and 7 square millimeter between 3 and 5 square millimeter
- the air inlets may be arranged at least partially outside the chamber. Likewise, the air inlets may be arranged at least partially inside the chamber. In particular, the air inlets may extend in a distal direction from the intake portion and partially into the chamber. Further details of the air inlets will be discussed further below.
- the airflow channels may end in the proximal direction distal of a proximal edge of the insert sleeve.
- the airflow channels may be accessible from the outside of the insert sleeve in a radially inward direction with respect to the length extension of the insert sleeve.
- the airflow channels may be accessible from the outside of the insert sleeve only in a radially inward direction with respect to the length extension of the insert sleeve.
- the airflow channels may end in the proximal direction distal of a proximal edge of the insert sleeve, thus providing air inlets being accessible from the outside the insert sleeve in a radially inward direction, in particular only in a radially inward direction with respect to the length extension of the insert sleeve.
- the airflow channels may taper towards the proximal edge of the insert sleeve in at least one of a width extension of the airflow channel and a depth extension of the airflow channel.
- a transverse cross-section of the airflow channels in such a tapered segment of the airflow channels may comprise a curved shape in at least one of a width extension of the airflow channel and a depth extension of the airflow channel, such as to provide an aerodynamic shape of the airflow channels.
- RTD resistance to draw
- the insert sleeve may comprise one or more through holes, in particular in the intake portion, that is, through holes through the wall of the insert sleeve, in particular in the intake portion.
- the one or more through holes provide a fluid communication from the inside of the insert sleeve, in particular from the inside of the intake portion, to the proximal portion of the airflow path on the sleeve outer surface.
- the insert sleeve may comprise for each airflow channel a through hole in the intake portion being in fluid communication with the respective airflow channel.
- the through holes may allow air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of the insert sleeve, in particular from the inside of the intake portion.
- the through holes may form air inlets as described above for air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of the insert sleeve, in particular from the inside of the intake portion.
- the one or more air inlets described above may be formed by one or more through holes through the insert sleeve in the intake portion, wherein the through holes allow air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of the intake portion.
- air inlets may be denoted as internal air inlets.
- the through holes may advantageously be sized and configured to optimize an airflow in the intake portion, for example to obtain a desired resistance to draw.
- the insert sleeve may comprise one or more axial recesses at the proximal end of the insert sleeve, in particular at a proximal edge of the insert sleeve.
- the insert sleeve may comprise for each airflow channel an axial recess being in fluid communication with the respective airflow channel.
- the axial recesses may advantageously allow air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of the intake portion.
- the axial recesses may form air inlets as described above for air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of the intake portion.
- the one or more air inlets described above may be formed by one or more axial recesses at the proximal end of the insert sleeve, in particular at a proximal edge of the insert sleeve, wherein the recesses advantageously allow air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of the insert sleeve, in particular from the inside of the intake portion.
- the axial recesses may be formed by respective interstices between proximal end portions of the ridges which extend in the proximal direction at a proximal end of the insert sleeve.
- the insert sleeve comprises one or more air inlets, in particular one air inlet for each airflow channel, allowing air to enter the proximal portion of the airflow path, in particular the airflow channels, from the outside of the insert sleeve.
- air inlets may be denoted as external air inlets.
- the one or more (external) air inlets may be formed on the outside of the insert sleeve, for example, between a ringshaped support structure (see below), the ridges and the bottom of the airflow channels.
- such external air inlets ensure that there is no contact between the airflow and the aerosol-generating article in a proximal portion of the chamber.
- the insert sleeve may comprise a circumferential collar at the proximal end of the insert sleeve.
- the collar may have a ring shape or a tubular shape, such as cylindrical.
- the provision of a collar may be beneficial for fixation of the insert sleeve in the device.
- the collar may cooperate with for example the chamber and seal there against.
- the circumferential collar may provide a closing-off of the airflow channels in the proximal direction (if present). That is, the airflow channels may end at the collar.
- the airflow channels may advantageously be accessible from the outside of the insert sleeve in a radially inward direction with respect to the length extension of the insert sleeve. This may help to prevent that the airflow channels become blocked by items or debris in the axial direction of the device as has been explained herein.
- the ridges forming the airflow channels may extend in a proximal direction to merge radially flush with a circumference of the collar.
- the airflow channels may advantageously be accessible from the outside of the insert sleeve in a radially inward direction with respect to the length extension of the insert sleeve. Again, this may help to prevent that the airflow channels become blocked by items or debris in the axial direction of the device as has been explained herein.
- the collar may be a turned-over collar comprising a turned-over collar portion surrounding the intake portion spaced from the sleeve outer surface in the intake portion.
- a turned-over collar portion surrounding the intake portion may be beneficial for fixation of the insert sleeve in the device and sealing the airflow path against the device housing or the chamber.
- the ridges may extend into the space between the turned-over collar portion and the intake portion.
- this allows to keep the airflow channels independent from each other along the turned-over collar and to have each of the airflow channels in separate fluid communication with an individual air inlet in the intake portion.
- the insert sleeve may comprise a support structure providing a form-fit with a correspondingly formed counterpart support structure of the chamber.
- the support structure may be configured to provide a press-fit with the counterpart support structure of the chamber.
- the insert sleeve may be form-fitted or press-fitted to the chamber.
- the support structure may be provided on the ridges which form the airflow channels such that the support structure protrudes beyond the ridges in a direction radially outward from the insert sleeve.
- the support structure may be formed by a ring member extending around the circumference of the insert sleeve protruding beyond the ridges in a radially outward direction.
- the support structure may be formed by a ring member extending around the circumference of the turned-over collar portion protruding beyond the turned- over collar portion in a radially outward direction.
- the support structure may be formed by a plurality of protrusions, in particular stepped protrusions (stepped in the axial direction of the insert sleeve) on the outside of the of the ridges, preferably a respective (stepped) protrusion on the outside of each one of the ridges.
- the (stepped) protrusions may be protruding beyond the ridges in a radially outward direction.
- the (stepped) protrusions may be arranged in a quasi-ring-like manner around the circumference of the insert sleeve.
- the airflow path through the device may further comprise a distal portion.
- the distal portion of the airflow path through the device may be formed between a distal portion of the chamber inner surface and an outer surface of a distal portion of the article located outside the insert sleeve, when the article is received in the chamber.
- the distal portion of the airflow path is in fluid communication with the proximal portion of the airflow path.
- This arrangement brings about the advantage that on the one hand a portion of a received aerosol-generating article may be bypassed by means of the proximal airflow path, and is thus prevented from influencing the airflow in the proximal portion of the airflow path, while on the other hand heat that dissipates from the article during operation of the device may be captured by air flowing in a distal portion of the airflow path.
- the latter may facilitate improved thermal efficiency of the device.
- this configuration may help to prevent condensation in the distal portion of the airflow path.
- the insert sleeve preferably extends only along a proximal portion of the chamber (apart from a possible portion protruding beyond the proximal open end of the chamber in the proximal direction).
- the chamber inner surface may directly face the outer surface of an aerosol-generating article received in the chamber.
- These other portion(s) may comprise a non-contact portion distal to the proximal portion, in which the chamber inner surface may be distanced from the outer surface of an aerosol-generating article when received in the chamber.
- this prevents the outer surface of the article from being affected by condensate possible forming on that portion of the chamber inner surface.
- these other portion(s) may comprise a distal retention portion, distal to the non-contact portion, which is configured to retain a received article in the chamber.
- the distal retention portion may also be configured to position a received article in a radial direction of the chamber.
- the chamber inner surface in the distal retention portion may comprise a plurality of protrusions configured to contact at least a portion of the aerosol-generating article received in the chamber.
- the plurality of protrusions may comprise retention ribs.
- the ribs extend substantially along a direction of the center axis of the chamber.
- the ribs may have a substantially triangular cross-sectional shape.
- the ribs may have a substantially rectangular or substantially trapezoid or a substantially semi-oval or a substantially semi-circular cross- sectional shape.
- the protrusions, in particular the ribs may be chamfered or may comprise at least one chamfer.
- the respective protrusions may be chamfered at a side facing towards the proximal open end of the chamber or may comprise at least one chamfer facing towards the proximal open end of the chamber.
- this facilitates insertion of the article into the chamber.
- the insert sleeve may extend further in the distal direction beyond the proximal portion of the chamber.
- the insert sleeve may comprise a non-contact portion arranged distal to the contact portion.
- An inner cross- sectional area of the insert sleeve in the non-contact portion may be larger than an inner cross-sectional area of the insert sleeve in the contact portion.
- the sleeve inner surface may thus be distanced from a received article at a location distal to the contact portion.
- the insert sleeve may further comprise a distal sleeve portion arranged distal to the non-contact portion.
- the sleeve inner surface in the distal sleeve portion may be configured to come into contact with a circumference of the aerosol-generating article, in particular with a circumference of a distal end portion of the aerosol-generating article, when received in the chamber.
- the sleeve inner surface in the distal sleeve portion may thus be configured to retain a received article in the chamber.
- the sleeve inner surface in the distal sleeve portion may also be configured to position a received article in a radial direction of the chamber.
- the sleeve inner surface in the distal sleeve portion may comprise a plurality of protrusions configured to contact at least a portion of the aerosolgenerating article received in the chamber.
- the plurality of protrusions may comprise retention ribs.
- the ribs extend substantially along a direction of the center axis of the chamber.
- the ribs may have a substantially triangular cross-sectional shape.
- the ribs may have a substantially rectangular or substantially trapezoid or a substantially semi-oval or a substantially semi-circular cross-sectional shape.
- the protrusions, in particular the ribs may be chamfered or may comprise at least one chamfer.
- the respective protrusions may be chamfered at a side facing towards the proximal open end of the chamber or may comprise at least one chamfer facing towards the proximal open end of the chamber.
- this facilitates insertion of the article into the chamber.
- the insert sleeve may comprise a first sleeve segment comprising the contact portion, a second sleeve segment comprising the non-contact portion and a third sleeve segment comprising the distal sleeve portion.
- the first sleeve segment, the second sleeve segment and the third sleeve segment are parts separate from each other.
- Providing the sleeve as segments may be beneficial for manufacturing purposes.
- the sleeve may conveniently be adapted during manufacture, for example to be suitable for use with different aerosol-generating articles.
- the aerosol-generating device may comprise a fixation ring at the proximal end of the device configured to fix the insert sleeve and preferably also the chamber, if separate from the device housing, in the device, in particular against the device housing.
- the fixation ring is a screw ring.
- the screw ring may be configured to screw down the insert sleeve and - if applicable - the chamber against the device housing.
- the screw ring may be configured to engage with a correspondingly formed threaded portion in the device housing.
- the fixation ring may be configured to fix the insert sleeve and - if applicable - the chamber by means of a snap-in fixation.
- Example Ex23 The aerosol-generating device according to any one of examples Ex3 to Ex14, wherein the insert sleeve comprises for each airflow channel an axial recesses at a proximal end of the insert sleeve, in particular in or at a proximal edge of the insert sleeve, being in fluid communication with the respective airflow channel, the recesses (forming air inlets) allowing air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of the insert sleeve, in particular from the inside of the intake portion.
- the insert sleeve comprises for each airflow channel an axial recesses at a proximal end of the insert sleeve, in particular in or at a proximal edge of the insert sleeve, being in fluid communication with the respective airflow channel, the recesses (forming air inlets) allowing air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside
- Example Ex24 The aerosol-generating device according to any one of examples Ex3 to Ex14, wherein the one or more air inlets are formed by one or more axial recesses at a proximal end of the insert sleeve, in particular in or at a proximal edge of the intake portion, the recesses allowing air to enter the proximal portion of the airflow path, in particular the airflow channels, from the inside of insert sleeve, in particular from the inside of the intake portion.
- Example Ex25 The aerosol-generating device according to any one of examples Ex22 to Ex24, wherein the recesses are formed by respective interstices between proximal end portions of the ridges extending in the proximal direction at a proximal end of the insert sleeve.
- Example Ex26 The aerosol-generating device according to any one of examples Ex1 to Ex21 , wherein the insert sleeve comprises a circumferential collar at the proximal end of the insert sleeve.
- Example Ex27 The aerosol-generating device according to example Ex26, wherein the collar provides a circumferential closing-off of the airflow channels (if present) in the proximal direction.
- Example Ex30 The aerosol-generating device according to example Ex 29 wherein ridges extend into the space between the turned-over collar portion and the intake portion.
- Example Ex31 The aerosol-generating device according to any one of the preceding examples, wherein the insert sleeve comprises a support structure providing a form-fit with a correspondingly formed counterpart support-support structure of the chamber.
- Example Ex32 The aerosol-generating device according to any one of the preceding examples, wherein a distal portion of the airflow path is formed between a distal portion of the chamber inner surface and an outer surface of a distal portion of the article located outside the insert sleeve, when the article is received in the chamber, wherein the distal portion of the airflow path is in fluid communication with the proximal portion of the airflow path.
- Fig. 1a shows a chamber with in insert sleeve for use in an aerosolgenerating device according to a first embodiment of the present invention
- Fig. 1c shows the embodiment of Fig.1b when an aerosol-generating article is at least partially received in the chamber
- Figs. 2a-2b show isometric views of the insert sleeve of the embodiment shown in Fig. 1a-1c;
- Figs. 2c-2d show isometric views of an alternative embodiment of the insert sleeve according to Fig. 1a-1c;
- Fig. 3a shows assembling of the insert sleeve to the chamber according to the embodiment shown in Fig. 1a-1c;
- Fig. 3b shows an exploded view of certain details of an aerosol-generating device according to the present invention
- Fig. 4a shows a cross-sectional view of the device according to Fig. 3b;
- Fig. 4b shows a front view of a proximal end of the device according to Fig. 4a along the center axis of the sleeve;
- Fig. 4c shows the device according to Fig. 4a when an aerosol-generating article is at least partially received in the chamber
- Fig. 5a shows an insert sleeve according to a second embodiment
- Fig. 5b shows a cross-sectional view of the sleeve according to Fig. 5a inserted into a chamber
- Fig. 5c shows an isometric view of the embodiment according to Fig. 5b;
- Fig. 5d shows the embodiment of Fig. 5b when an aerosol-generating article is at least partially received in the chamber
- Fig. 6a shows an insert sleeve according to a third embodiment
- Fig. 6b shows the embodiment of Fig. 6a when an aerosol-generating article is at least partially received in the chamber
- Fig. 6c a front view of a proximal end of the device of Fig. 6b;
- Fig. 6d shows a perspective view of the embodiment of Fig. 6b
- Figs. 7a-7b show isometric views of an insert sleeve according to a third embodiment
- Fig.7c shows a cross-sectional view a chamber comprising the sleeve according to Figs. 7a-7b along the center axis of the sleeve;
- Fig.7d shows a front view of a proximal end of a chamber according to the embodiment of Fig.7c;
- Figs.7e-7f show further details of the embodiment of Fig. 7c-7d;
- Fig.8a shows an exploded view of an insert sleeve and a chamber according to a fourth embodiment
- Fig.8b shows an aerosol-generating device comprising the insert sleeve and the chamber of Fig.8a;
- Figs. 9a-9b show isometric views of an insert sleeve according to a fifth embodiment
- Figs. 10a-10b show isometric views of an insert sleeve according to a sixth embodiment.
- Figs. 11a-11 b show isometric views of an insert sleeve according to a seventh embodiment.
- Figs. 1a-1c show a first embodiment of a chamber 110 with an insert sleeve 130 for use in an aerosol-generating device according to the present invention. Further details of the aerosol-generating device, in particular of the chamber 110 and the insert sleeve 130 are shown in Figs. 2a-2b, Figs. 3a-3b and Figs. 4a-4c and will be described further below. While Fig. 1a is a front view as seen along a chamber center axis 117, Fig. 1b is a cross- sectional side view of the configuration. As can be seen in particular from Fig. 1b, the insert sleeve 130 is arranged at least partially inserted in the chamber 110. Fig. 1c additionally shows an aerosol-generating article 170, a portion of which is received in the insert sleeve 130 and the chamber 110.
- the first 180 and second airflow path 188 are fluidly connected via the free space between one or more stops 118 which are arranged at a distal end 123 of the chamber 110.
- the stops 118 provide an abutment for the aerosol-generating article preventing it from being inserted to the very distal end of the chamber, thus enabling the airflow to change its course from the distal direction in the first airflow path into the proximal direction in the second airflow path 188.
- the sealing contact that prevents or at least limits airflow through the proximal portion of the chamber 110 between the outer surface of the article 170 and the sleeve inner surface 134 in the contact portion 135.
- the airflow path 180 through the proximal portion of the chamber 110 that is, a proximal portion 181 of the airflow path 180 extends along the sleeve outer surface 136. More particularly, the proximal portion 181 of the airflow path 180 is formed at least partially between the sleeve outer surface 136 and the chamber inner surface 113 (see Fig. 4c).
- the chamber 110 comprises retention ribs 116 extending in a radial direction towards the center axis 117 of the chamber 110.
- the retention ribs 116 are configured to contact a distal portion of the received article 170 for retaining the article 170 in the chamber 110, preferably during any spatial orientation of the chamber 110.
- the retention ribs 116 extend along the center axis 117 of the chamber 170 and project radially inward beyond a distal portion 114 of the sleeve inner surface 113.
- the retention ribs 116 are integrally formed with the chamber 110.
- the chamber 110 comprises a non-contact portion having a larger inner cross-sectional shape than the distal retention portion 122 and the insert sleeve 130.
- the chamber inner surface in the noncontact portion is distanced from the outer surface of an aerosol-generating article 170 when received in the chamber 110.
- this prevents the outer surface of the part of the article 170 from being affected by condensate possible forming on the chamber inner surface.
- the insert sleeve 130 comprises an intake portion 133 at a proximal end 143 (in particular proximal edge 142) of the insert sleeve 130.
- the intake portion 133 projects in a proximal direction beyond a proximal end 115 of the chamber 110.
- An inner cross-sectional area of the insert sleeve 130 increases in the proximal direction along at least a portion of the intake portion 133.
- the sleeve inner surface 134 comprises one of a truncated cone shape or a funnel shape in the intake portion 133.
- the truncated cone shape provides a guidance for the aerosol-generating article 170 during insertion into the device,
- the insert sleeve 130 comprises a plurality of through holes 149 in the intake portion 133, one for each airflow channel 132, such as to provide an individual fluid communication for each airflow channel 132.
- the through holes 149 form air inlets 145 allowing air to enter the proximal portion 181 of the airflow path 180, formed by the airflow channels 132, from the inside of the intake portion 133.
- the airflow channels 132 are accessible for an incoming airflow to enter at least in a direction along the sleeve center axis 140.
- the insert sleeve 130 further comprises a circumferential collar 139 at the proximal end 143 of the insert sleeve 130.
- the collar 139 is a turned-over collar comprising a turned-over collar portion surrounding the intake portion 133 spaced from the sleeve outer surface 136 in the intake portion 133 (see also Figs. 1b -1c).
- the ridges 137 forming the airflow channels 132 extend into the space between the turned-over collar portion of the turned-over collar and the intake portion 133.
- Figs. 1a-1d and Figs. 2a-2b show an insert sleeve 130 having twelve ridges 137 and, accordingly, twelve airflow channels and twelve through holes 149/air inlets 145
- Figs. 2c-2d show an alternative embodiment of the insert sleeve having five ridges 137 and, accordingly five airflow channels and five through holes 149 or air inlets 145, respectively.
- the chamber 110 is formed as a sleeve with a distal closed end or, likewise, as a barrel received in a cavity 105 within the proximal portion 104 of the device housing 103.
- Figs. 3a-3b show an exploded view of the proximal potion 104 of the aerosolgenerating device which illustrate the assembly of the chamber 110 and the insert sleeve 130 into the cavity 105 within the proximal portion 104 of the device housing 103, thus resulting in the aerosol-generating device shown in Figs. 4a-4c.
- the sleeve 130 is inserted into the chamber 110.
- a sealing member 108 is provided at least partially between the chamber 110 and the insert sleeve 130 in order to prevent airflow passing along the outer surface of the chamber 110.
- the chamber 110, the sleeve 130 and the sealing member 108 are fixedly secured to the device housing 103 by means of the fixation ring 106.
- the fixation ring 106 is a screw ring configured to engage with a correspondingly formed threaded portion in the device housing 103.
- a ring-shaped proximal cap 107 is attached to the proximal end face at the proximal end of the device 101 to cover the proximal end face.
- the proximal cap 107 comprises a respective insertion opening 124 for insertion of an aerosol-generating article 170 through the open proximal end of the chamber 110.
- the proximal cap 107 is configured to be coupled to the fixation ring 106.
- the cross-sectional shape of the insertion opening 124 of the proximal cap 107 is non-circular.
- the proximal cap 107 comprises protrusions 126 protruding in a radial direction of the sleeve 130 such as to at least partially cover the inlets 145 along the distal direction, as shown for example in Fig. 4b.
- Figs. 5a-5d show details of an aerosol-generating device according to the present invention which comprises an insert sleeve 530 according to a second embodiment.
- the embodiment according to Figs. 5a-5d is very similar to the embodiment shown in Fig. 1a - Fig. 4c. Therefore, identical or similar features are denoted with the same reference signs, yet incremented by 400.
- the insert sleeve 530 according to the second embodiment shown in Figs. 5a -5d does not comprises any collar at its proximal end, in particular any turned-over circumferential collar.
- the airflow channels 532 extend in the proximal direction all the way to a proximal edge 542 of the insert sleeve 530, thus being accessible from the outside of the insert sleeve 530 in at least one of the distal direction and a radially inward direction with respect to the length extension of the insert sleeve 530.
- the airflow channels 532 taper towards the proximal edge 542 of the insert sleeve in at least one of a width extension of the airflow channel 532 and a depth extension of the airflow channel 532.
- This configuration results in a widening of the airflow channels 532 in the intake portion 533 in a distal direction that may be beneficial for aerodynamics of the intake portion 533.
- the airflow channels 532 also taper in an opposite distal direction.
- the airflow channels 532 taper downstream of the support structure 555 of the insert sleeve 530.
- the ridges 537 extend beyond a distal edge 541 of the sleeve 530.
- Figs. 6a-6d show details of another aerosol-generating device according to the present invention which comprises an insert sleeve 630 according to a third embodiment.
- the embodiment according to Figs. 6a-6d is very similar to the embodiment shown in Figs.5a-5d. Therefore, identical or similar features are denoted with the same reference signs, yet incremented by 100.
- the airflow channels 632 extend in the proximal direction all the way to a proximal edge 642 of the insert sleeve 630, thus being also accessible from the outside of the insert sleeve 630 in at least one of the distal direction and a radially inward direction with respect to the length extension of the insert sleeve 630.
- the insert sleeve 630 comprises ridges 637 extending beyond the proximal edge 642 of the insert sleeve 630.
- the interstices between the protruding proximal ends of the ridges 637 form axial recesses 646 at the proximal end of the insert sleeve.
- Each axial recesses 646 is in fluid communication with a respective airflow channel 632, thus forming respective air inlets 645 allowing air to enter the proximal portion 681 of the airflow path 680 from the inside of the intake portion 633.
- the proximal edge 642 and the proximal end portions 651 of the ridges 637 form a discontinuous rim at the proximal end 653 of the sleeve 630.
- Figs. 7a-7f show details of yet another aerosol-generating device according to the present invention which comprises an insert sleeve 730 according to a fourth embodiment.
- the embodiment according to Figs. 7a-7f is also very similar to the embodiment shown in Figs.5a-5d. Therefore, identical or similar features are denoted with the same reference signs, yet incremented by 200.
- the airflow channels 732 in the embodiment according to Figs. 7a- 7f do not extend all the way to the proximal edge 742 of the insert sleeve 730, but rather end in the proximal direction distal of the proximal edge 742.
- the airflow channel are accessible from the outside of the insert sleeve 730 only in a radially inward direction with respect to the length extension 731 of the insert sleeve 730, but not directly in the distal direction.
- a collar 739 which provides a closing-off of the airflow channels 732 in the proximal direction.
- the ridges 737 extend in the proximal direction to merge radially flush or substantially flush with the circumference of the collar 739.
- air inlets 745 are provided inside the device. More specifically, the air inlets 745 are at least partially covered by the fixation ring 706 in a radial direction of the inert sleeve 730.
- Figs. 8a-8b show still another alternative embodiment of the insert sleeve 830 which is based on the embodiment shown in Fig.1a - Fig.4c. Therefore, identical or similar features are denoted with the same reference signs, yet incremented by 700.
- the insert sleeve 830 extends further in the distal direction beyond the proximal portion of the chamber 810.
- the insert sleeve comprises three segments, namely, a first sleeve segment 856 comprising the contact portion 835, a second sleeve segment 857 comprising a non-contact portion 859 and a third sleeve segment 858 comprising a distal sleeve portion 860.
- the first sleeve segment 856, the second sleeve segment 857 and the third sleeve segment 858 are parts separate from each other.
- An inner cross-sectional area of the insert sleeve 830 in the noncontact portion 859 is larger than an inner cross-sectional area of the insert sleeve 830 in the contact portion 835, such that the sleeve inner surface in the non-contact portion 859 is distanced from the received article 870.
- This configuration is beneficial in reducing or avoiding undesired condensate effects on the outer surface of the article 870, which is particularly important with respect to the outer surface around the substrate element.
- the sleeve inner surface 834 in the distal sleeve portion 860 is in contact with the circumference of the aerosol-generating article 870, in particular with a circumference of a distal end portion in order to retain the article 870 in the chamber 810 and to position the article 870 in the radial direction.
- the sleeve inner surface 834 in the distal sleeve portion 860 comprises a plurality of protrusions configured to contact the aerosol-generating article 870.
- the plurality of protrusions may comprise retention ribs.
- Figs. 9a-9b show a fifth embodiment of the insert sleeve 130, which is similar to the two embodiments of the insert sleeve according to Figs. 1a-1d, 2a-2b and Figs. 2c-2d, respectively. Accordingly, similar or identical features are denoted with the same reference signs. While Figs. 1a-1d, 2a-2b and Figs. 2c-2d show embodiments of an insert sleeve 130 having twelve and five ridges 137, respectively, Figs. 9a-9b show an insert sleeve having ten ridges 137 and, accordingly ten airflow channels and ten through holes 149 or air inlets 145, respectively. Further in contrast to the embodiments shown in Figs.
- the insert sleeve 130 shown in Figs. 9a-9b has a smaller length extension.
- the length extension of the insert sleeve may be, for example, in a range between 4.5 mm and 5 millimeter.
- one or more ringshaped ridges may be provided at the inner surface in the contact portion 135 that come into circumferentially closed contact with a circumference of the aerosol-generating article such as to exert an annular retention force to the article when it is received in the chamber.
- the inner diameter of the ring-shaped ridge(s) may vary along the axial direction of the insert sleeve.
- the inner cross-sectional shape of the ring-shaped ridge(s) may decrease, in particular smoothly decrease along the axial direction of the insert sleeve in the distal direction.
- the inner cross-sectional shape of the ring-shaped ridge(s) may smoothly decrease in the distal direction starting from a maximum inner cross-sectional shape of the contact portion t135 towards a minimum inner cross-sectional shape and then increase again, in particular abruptly such as to form a sharp distal edge of the ring-shaped ridge.
- Figs. 10a-10b show a sixth embodiment of the insert sleeve 730, which is similar to the embodiment of the insert sleeve shown in Figs. 7a-7b. Accordingly, similar or identical features are denoted with the same reference signs. Like in Figs. 7a-7b, the airflow channels 732 in the embodiment according to Figs. 10a-10b do not extend all the way to the proximal edge 742 of the insert sleeve 730, but rather end in the proximal direction distal of the proximal edge 742.
- the airflow channel are accessible from the outside of the insert sleeve 730 only in a radially inward direction with respect to the length extension 731 of the insert sleeve 730, but not directly in the distal direction.
- a collar 739 which provides a closing-off of the airflow channels 732 in the proximal direction.
- the ridges 737 extend in the proximal direction to the collar 739, but do not merge radially flush with the circumference of the collar 739.
- the insert sleeve 730 shown in Figs. 10a-10b has a smaller length extension.
- the insert sleeve 730 shown in Figs. 10a-10b has eight ridges 737 and, accordingly eight airflow channels 732 only, instead of twelve as in Figs. 7a-7b.
- Figs. 11a-11 b show a seventh embodiment of the insert sleeve 930, which is similar to the embodiment of the insert sleeve 730 shown in Figs. 10a-10b. Accordingly, similar or identical features are denoted with the same reference signs, yet incremented by 200.
- the insert sleeve 930 according to Figs. 11a-11b has eight ridges 937 and, accordingly eight airflow channels 932.
- adjacent ridges 937 and adjacent air flow channels 932 of the insert sleeve 930 according to Figs. 11a-11b have alternating larger and smaller widths. Further in contrast to the embodiment according to Figs.
- the insert sleeve 930 comprises a support structure 955 which is formed by a ring member protruding beyond the ridges 937 in a radially outward direction.
- the ring-shaped support structure 955 is similar to, but stronger than the ring-shaped support structure 155 of the insert sleeve 130 shown in Figs. 1a-1d, 2a-2b and Figs. 2c-2d, respectively, thus providing a better thingness of the sealing member.
- the insert sleeve 930 shown in Figs. 11a-11b does not comprise a turned-over collar as do the insert sleeves in Figs. 1a-1d, 2a-2b and Figs. 2c-2d, respectively.
- the insert sleeve 930 according to Figs. 11a-11b comprises through holes 949, one for each airflow channel 932, which are formed between the ring-shaped support structure 955, the ridges 937 and the bottom of the airflow channels 932.
- Each through hole 949 provides an individual fluid communication for each airflow channel 932. More particularly, the through holes 949 form air inlets 945 allowing air to enter the proximal portion of the airflow path, formed by the airflow channels 932, from the outside of the insert sleeve 930 in a direction along the sleeve center axis 140, whereas in Figs. 1a-1d, 2a-2b and Figs.
- the air inlets 945 in Figs. 11a-11b may be denoted as external air inlets 945
- the air inlets 145 in Figs. 1a-1d, 2a-2b and Figs. 2c-2d may be denoted as internal air inlets 145.
- the external air inlets 945 ensure that there is no contact between the airflow and the aerosol-generating article in a proximal portion of the chamber.
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP22165816 | 2022-03-31 | ||
| PCT/EP2023/058238 WO2023187029A1 (en) | 2022-03-31 | 2023-03-30 | Aerosol-generating device for use with an aerosol-generating article |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4498847A1 true EP4498847A1 (en) | 2025-02-05 |
| EP4498847B1 EP4498847B1 (en) | 2026-05-06 |
Family
ID=81074050
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23715147.7A Active EP4498847B1 (en) | 2022-03-31 | 2023-03-30 | Aerosol-generating device for use with an aerosol-generating article |
Country Status (7)
| Country | Link |
|---|---|
| US (1) | US20250204599A1 (en) |
| EP (1) | EP4498847B1 (en) |
| JP (1) | JP2025511041A (en) |
| KR (1) | KR20240170545A (en) |
| CN (1) | CN118804696A (en) |
| IL (1) | IL315856A (en) |
| WO (1) | WO2023187029A1 (en) |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN111772243B (en) * | 2015-02-06 | 2023-08-04 | 菲利普莫里斯生产公司 | Improved extractor for aerosol generating device |
| CN110051036A (en) * | 2018-01-18 | 2019-07-26 | 湖南中烟工业有限责任公司 | A kind of electronic cigarette |
| US20220225674A1 (en) * | 2019-04-23 | 2022-07-21 | Philip Morris Products S.A. | Aerosol-generating device for use with an aerosol-generating article |
| BR112022012162A2 (en) * | 2019-12-23 | 2022-08-30 | Philip Morris Products Sa | AEROSOL GENERATING DEVICE WITH A VENTILATION CHAMBER |
-
2023
- 2023-03-30 KR KR1020247034344A patent/KR20240170545A/en active Pending
- 2023-03-30 WO PCT/EP2023/058238 patent/WO2023187029A1/en not_active Ceased
- 2023-03-30 CN CN202380024765.6A patent/CN118804696A/en active Pending
- 2023-03-30 JP JP2024557671A patent/JP2025511041A/en active Pending
- 2023-03-30 EP EP23715147.7A patent/EP4498847B1/en active Active
- 2023-03-30 US US18/849,047 patent/US20250204599A1/en active Pending
- 2023-03-30 IL IL315856A patent/IL315856A/en unknown
Also Published As
| Publication number | Publication date |
|---|---|
| EP4498847B1 (en) | 2026-05-06 |
| WO2023187029A1 (en) | 2023-10-05 |
| CN118804696A (en) | 2024-10-18 |
| US20250204599A1 (en) | 2025-06-26 |
| IL315856A (en) | 2024-11-01 |
| JP2025511041A (en) | 2025-04-15 |
| KR20240170545A (en) | 2024-12-03 |
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