Aerosol generating device having a holder including an engaging element - Patents.com

The holder with engaging elements for aerosol substrate compression addresses the energy efficiency and combustion prevention challenges in portable aerosol generating devices, enabling effective aerosol production.

JP7689122B2Active Publication Date: 2025-06-05JT INTERNATIONAL SA
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Patent Information

Application Number
JP2022530684
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-12-03
Filing Date
2020-12-02
Publication Date
2025-06-05
Estimated Expiration
2040-12-02

AI Technical Summary

Technical Problem

Existing portable aerosol generating devices face challenges in efficiently heating aerosol substrates while minimizing energy consumption and preventing combustion.

Method used

A holder with engaging elements that compress the aerosol substrate without providing heat, allowing for efficient heating of the substrate by a separate heater while maintaining a controlled airflow for aerosol generation.

Benefits of technology

This configuration enables rapid and efficient heating of the aerosol substrate, reducing energy consumption and preventing combustion, while ensuring consistent aerosol production.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The holder (109) is insertable into the aerosol generation device (100), which is configured to heat an aerosol substrate (128) supported by the substrate carrier (114) to generate an aerosol. The holder (109) is configured to receive the aerosol substrate (128) supported by the substrate carrier (114) when inserted into the aerosol generation device (100). The holder (109) has a rim (107) defining an opening (110), the rim (107) extending about a central axis (C) a first radial distance (R1) from the central axis (C), along which the substrate carrier (114) is insertable into the holder (109) through the opening (110). The holder further includes at least two engaging elements (140), each of which has an elongated portion (144) extending generally parallel to the central axis (C) between a first end (142a) joined to the rim (107) and a second end (142b) distal from the rim (107). Each engaging element (140) does not have any electric heating element for supplying heat to the aerosol substrate (128), and each elongated portion (144) is located a second radial distance (R2) from the central axis (C), the second radial distance (R2) being less than the first radial distance (R1).
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Description

[Technical field]

[0001] The present disclosure relates to a holder for an aerosol generating device having an engagement element for cooperating with an aerosol substrate, and to an aerosol generating device incorporating the holder. The present disclosure is particularly applicable to portable aerosol generating devices that may be self-contained and low-temperature. Such devices may heat tobacco or other suitable material by conduction, convection and / or radiation, rather than combustion, to generate an aerosol for inhalation. [Background technology]

[0002] The popularity and use of risk reduction or risk modification devices (also known as vaporizers) has grown rapidly in recent years as an aid to assist habitual smokers wishing to quit smoking traditional tobacco products such as cigarettes, cigars, cigarillos and rolling cigarettes. A variety of devices and systems are available that heat or warm an aerosolizable substance, as opposed to burning tobacco in traditional tobacco products.

[0003] A commonly available risk reduction or risk modification device is the substrate heated aerosol generating device or heated non-combustion device. This type of device generates an aerosol or vapor by heating an aerosol substrate, which typically comprises moist tobacco or other suitable aerosolizable material, to temperatures typically ranging from 100° C. to 350° C. By heating, rather than burning or combusting, the aerosol substrate, an aerosol is released that contains the components desired by the user but with reduced or no toxic and carcinogenic by-products of combustion and burning.

[0004] It is generally desirable to rapidly heat the aerosol substrate to a temperature at which an aerosol can be emitted from the aerosol substrate without burning it, and to maintain the aerosol substrate at that temperature. It will be apparent that the aerosol will be emitted from the aerosol substrate into a heating chamber and provided to a user when there is air flow past the aerosol substrate. Summary of the Invention [Problem to be solved by the invention]

[0005] Because this type of aerosol generating device is a portable device, energy consumption is an important design consideration.The present invention aims to address the problems with existing devices and to provide an improved aerosol generating device and heating chamber therefor. [Means for solving the problem]

[0006] According to a first aspect, disclosed herein is a holder insertable into an aerosol generation device configured to heat an aerosol substrate supported by a substrate carrier to generate an aerosol, the holder configured to receive the aerosol substrate supported by the substrate carrier, and the holder comprising: a rim defining an opening, the rim extending about a central axis a first radial distance from the central axis along which a substrate carrier is insertable into the holder through the opening; at least two engaging elements, each of the engaging elements having an elongated portion extending generally parallel to the central axis between a first end joined to the rim and a second end distal from the rim, each engaging element not having any electrical heating element for supplying heat to the aerosol substrate, and each elongated portion being located at a second radial distance from the central axis, the second radial distance being less than the first radial distance; It is a holder including:

[0007] This configuration allows for compression of the aerosol substrate by the engaging element while isolating this compression from heating. This may be useful for providing a removable holder and may also be useful for retrofitting an aerosol generating device with a compression means such as an engaging element on a replacement holder. Compression of the aerosol substrate may eliminate air gaps in the aerosol substrate and improve thermal conduction of the aerosol substrate.

[0008] Optionally, each engagement element has a support extending from the second end of the elongate portion toward the central axis to provide a seat for limiting insertion of the substrate carrier along the central axis.

[0009] Optionally, the supports of at least two of the engaging elements extend tangentially to one another. Optionally, the supports of all of the engaging elements extend tangentially to one another. In some cases, the supports of the engaging elements extend toward one another but do not touch, and in other cases, they meet, touch, and even bond to one another at the central axis.

[0010] Optionally, each engaging element is a rod.

[0011] Optionally, the engagement elements are equally spaced around the rim.

[0012] Optionally, the engagement elements are spaced apart from one another by an air gap.

[0013] Optionally, the engagement element is parallel to the central axis toward a second end of the engagement element.

[0014] Optionally, the engagement elements curve inwardly in an arc that approaches the central axis.

[0015] Optionally, the air gap is greater than a thickness of the engaging element.

[0016] Optionally, the holder further includes a tubular sidewall extending around the at least two engaging elements, the tubular sidewall defining the heating chamber.

[0017] Optionally, the elongate element is spaced from an inner surface of the tubular sidewall. The inner surface of the tubular sidewall may be spaced from the central axis a third radial distance, the second radial distance being less than the third radial distance.

[0018] Optionally, the holder further includes a base located further from the rim than the second end of the elongate portion of the engaging element, for example, the base can have an inner surface located further from the rim than the second end of the elongate portion of the engaging element.

[0019] Optionally, the base is joined to the tubular sidewall.

[0020] Optionally, the base closes the tubular side wall to prevent air from flowing into a heating chamber defined by the tubular side wall, for example in the region of the second end of the elongate portion of the engagement element.

[0021] Optionally, the sidewalls and / or base are mesh or have one or more openings.

[0022] Optionally, the base is spaced apart from the support.

[0023] Optionally, a surface of each engaging element facing the central axis has a convex profile transverse to the central axis, preferably the convex profile is a circular arc.

[0024] Optionally, the first end of the elongate portion of each engaging element has a portion that tapers toward the second end of the elongate portion and toward the central axis, in some examples only one or some of the engaging elements have this shape.

[0025] Optionally, the engagement element comprises a material having a higher heat transfer coefficient than a material of the rim.

[0026] Optionally, the engaging element is metallic. Preferably, the engaging element is made of stainless steel or copper.

[0027] Optionally, the rim is made of a heat resistant plastic, preferably polyetheretherketone, PEEK.

[0028] According to a second aspect, disclosed herein is the holder as described above in combination with a substrate carrier, wherein the second radial distance is less than half the width of the substrate carrier, in this example, the substrate carrier is elongated along an axis, and the width is the dimension transverse to the axis.

[0029] According to a third aspect, there is provided an aerosol generating device comprising the holder as described above, held in a recess of the aerosol generating device. Power supply, a heater configured to provide heat to the holder; a control circuit configured to control a supply of power from the power source to the heater; It may further include.

[0030] Optionally, the holder is removable from the aerosol generating device. More specifically, the holder may be removable, e.g., replaceably removable, from the heater.

[0031] Optionally, the heater is permanently attached to the aerosol generating device.

[0032] Optionally, a heater is attached to the tubular sidewall.

[0033] Optionally, the heater is not in conductive thermal contact with the engagement element.

[0034] According to a fourth aspect, there is provided an aerosol generation device for generating an aerosol from an aerosol substrate supported by a substrate carrier, comprising: a holder for receiving a substrate carrier; a heater configured to provide heat to the aerosol substrate when the substrate carrier is received within the holder; Including, The holder is positioned between the heater and the aerosol substrate when the substrate carrier is received within the holder, and the holder comprises: a rim defining an opening, the rim extending about a central axis a first radial distance from the central axis along which a substrate carrier is insertable into the holder through the opening; at least two engaging elements, each of the engaging elements having an elongate portion extending generally parallel to the central axis between a first end joined to the rim and a second end distal from the rim, each elongate portion being located a second radial distance from the central axis, the second radial distance being less than the first radial distance; An aerosol generating device is provided, comprising:

[0035] The fourth embodiment may include various optional features of the holder of the first embodiment, or may include the substrate carrier of the second embodiment.

[0036] According to a fifth aspect, there is provided an aerosol generation device for generating an aerosol from an aerosol substrate supported by a substrate carrier, comprising: a heater configured to provide heat to the aerosol substrate when the substrate carrier is contained within the aerosol generating device; a holder having a rim defining an opening, the rim extending about a central axis along which a substrate carrier is insertable through the opening into the holder for receiving the substrate carrier within the aerosol generating device, the holder further including at least two bar-like engaging elements for holding the substrate carrier in spaced relation from a heater, the engaging elements extending from the rim in a direction substantially parallel to the central axis; An aerosol generating device is provided, comprising:

[0037] Various optional features of the first embodiment may be applied to the holder of the fifth embodiment. Similarly, the fifth embodiment may include a substrate carrier.

[0038] Preferred embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief description of the drawings]

[0039] [Figure 1] FIG. 1 is a schematic perspective view of an aerosol generating device according to a first embodiment of the present disclosure, in which the aerosol generating device is loaded with a substrate carrier comprising an aerosol substrate. [Diagram 2] FIG. 2 is a schematic cross-sectional side view of the aerosol generating device of FIG. 1, in which the aerosol generating device is loaded with a substrate carrier comprising an aerosol substrate. [Diagram 3] FIG. 2 is a schematic perspective view of the aerosol generating device of FIG. 1, in which a substrate carrier containing an aerosol substrate is loaded into the aerosol generating device. [Figure 4] FIG. 2 is a schematic cross-sectional side view of the aerosol generating device of FIG. 1, in which the aerosol generating device is loaded with a substrate carrier comprising an aerosol substrate. [Figure 5A] 1 shows a schematic cross-sectional view of a holder according to a first embodiment being inserted into a recess of an aerosol generating device. [Figure 5B] 1 shows a schematic cross-sectional view of a holder according to a first embodiment inserted into a recess of an aerosol generating device and a substrate carrier including an aerosol substrate inserted into the holder. [Figure 6] FIG. 2 shows a schematic perspective view of a holder according to a first embodiment, in which the holder has a support. [Figure 7] FIG. 2 is a schematic perspective view of a holder according to a second embodiment, similar to the first embodiment, but without a support; [Figure 8] FIG. 13 is a schematic perspective view of a holder according to a third embodiment, similar to the first embodiment, but having supports that do not contact at the central axis. [Figure 9A]FIG. 13 shows a schematic perspective view of a holder according to a fourth embodiment, having an engagement element with a curved profile. [Figure 9B] FIG. 13 shows a schematic cross-sectional view of a holder according to a fourth embodiment. [Figure 10A] FIG. 13 shows a schematic perspective view of a holder according to a fifth embodiment having an engagement element with a portion of a first end that slopes toward a second end of the engagement element and toward a central axis of the holder. [Figure 10B] FIG. 13 shows a schematic cross-sectional view of a holder according to a fifth embodiment. [Figure 11A] FIG. 13 shows a schematic perspective view of a holder according to a sixth embodiment, having a side wall around the engagement element. [Figure 11B] 13 shows a schematic cross-sectional view of a sixth embodiment of a holder having a support and a base connected to a side wall below the support. [Figure 11C] FIG. 13 shows a schematic cross-sectional view of a variant of the holder of the sixth embodiment, which does not have a support but has a base connected to the side wall below the lower end of the engagement element. [Figure 11D] 13 shows a schematic cross-sectional view of a variant of the holder of the sixth embodiment having a support and no base connected to the side wall. [Figure 12A] FIG. 13 shows a schematic perspective view of a holder according to a seventh embodiment having a side wall around an engagement element and the engagement element passing through the rim of the side wall. [Figure 12B] 13 shows a schematic cross-sectional view of a holder of a seventh embodiment having a support and a base below the support. [Figure 12C] FIG. 13 shows a schematic cross-sectional view of a variant of the holder of the seventh embodiment, which does not have a support but has a base connected to the side wall, with the engagement element passing through the base. [Figure 12D] FIG. 13 shows a schematic cross-sectional view of a variant of the holder of the seventh embodiment, which does not have a support but has a base below the lower end of the engagement element. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0040] First embodiment 1-6, according to a first embodiment of the present disclosure, an aerosol generating device 100 includes an outer casing 102 that houses various components of the aerosol generating device 100. In the first embodiment, the outer casing 102 has a generally pebble shape, but it will be understood that any shape is possible so long as it is sized to fit the components described in the various embodiments shown herein.

[0041] The first end 104 of the aerosol generating device 100 shown at the bottom in each of Figures 1-4 is described for convenience as the bottom, base or lower end of the aerosol generating device 100. The second end 106 of the aerosol generating device 100 shown at the top in each of Figures 1-6 is described as the top or upper end of the aerosol generating device 100. During use, a user typically orients the aerosol generating device 100 with the first end 104 facing downward and / or in a distal position relative to the user's mouth and the second end 106 facing upward and / or in a proximal position relative to the user's mouth.

[0042] The aerosol generating device 100 has a recess located towards the second end 106 of the aerosol generating device 100. The recess is defined by a recess base 113 and a recess sidewall 116 extending between the recess base 113 and the open end of the recess. The recess sidewall 116 and the recess base 113 are connected to each other. That is, the recess is cup-shaped. In a first embodiment, the recess sidewall 116 is tubular. More specifically, the recess sidewall 116 is cylindrical. However, in other embodiments, the recess sidewall 116 has other suitable shapes, such as a tube with an elliptical or polygonal cross section. In yet another embodiment, the recess sidewall 116 is tapered. The recess base 113 is closed, e.g., airtight sealed, against the recess sidewall 116 to prevent the recess from exposing the interior of the outer casing 102 to the outside world. This may help to protect the interior of the aerosol generating device 100 from damage due to dust or water getting inside. The recess is open towards the second end 106 of the aerosol generating device 100. Nested inside the recess is a holder 109. As shown in Figures 1-4 and 5B, the holder 109 is arranged to receive an aerosol substrate 128, also known as a "consumable", supported by a substrate carrier 114 through an opening 110 defined by a rim 107. When properly inserted into the aerosol generating device 100, the substrate carrier 114 is received by the holder 109 and sits within the recess.

[0043] Typically, the substrate carrier 114 includes a prepackaged aerosol substrate 128, such as tobacco or another suitable aerosolizable material, provided with an aerosol collection region 130. Both the aerosol substrate 128 and the aerosol collection region 130 are encased in an outer layer 132 and abut one another at a boundary partway along the substrate carrier 114. The aerosol substrate 128, which is heatable to generate an aerosol for inhalation, is located toward a first end 134 (or "tip") of the substrate carrier 114. The aerosol substrate 128 extends across the entire width of the substrate carrier 114 within the outer layer 132. In other embodiments, the recess is configured to receive other forms of aerosol substrate 128, such as cut loose material or otherwise packaged solid material.

[0044] 6, the holder 109 is shown separately from the aerosol generating device 100. The rim 107 is disposed about the central axis C at a first radial distance R from the central axis C. 1 It can be seen that the central axis C extends along the rim 107. As described in detail below, the central axis C also defines a direction in which the substrate carrier 114 can be inserted into the holder 109 through the opening 110. The rim 107 has a plurality of engaging elements 140 in the form of rods that are joined to the rim 107 at their first ends 142a to hold the engaging elements 140 in place relative to one another and to help reduce breakage (e.g., bending) of the engaging elements 140. In some cases, the engaging elements 140 may be flat bars or other cross-sections rather than rod-shaped. In some examples, the engaging elements 140 may not even have a constant cross-section along their length, and the cross-section may vary along their length, for example to provide a roughened surface for gripping or to provide a particular compression profile. Each engaging element 140 has an elongate portion 144 that extends generally parallel to the central axis C and extends from the rim 107 to a second end 142b that is distal to the rim. The engagement elements 140 are evenly spaced around the rim 107 in the sense that the gap between adjacent engagement elements 140 is always the same, although in some instances this spacing may vary.

[0045] When the substrate carrier 114 is inserted into the holder 109, the elongated portion 144 is configured to contact and compress the aerosol substrate 128. The holder 109 is configured such that when the substrate carrier 114 is properly inserted into the holder 107, the engagement element 140 is aligned with the aerosol substrate 128 to enable this compression.

[0046] To allow the aerosol substrate to be compressed, each elongated portion 144 is spaced a second radial distance R from the central axis C. 2 and at a second radial distance R 2 is the first radial distance R 1 More specifically, each elongate portion 144 has at least a portion of its length that is a second radial distance R from the central axis C. 2 1, for contacting a substrate support 114 located below.

[0047] The substrate carrier 114 has a radial range R from its own central axis (not shown, but coinciding with the central axis C of the holder 109 in FIGS. 5A, 5B and 6). 4 In this embodiment, the substrate support 114 is cylindrical, so the width of the substrate support is within this radial range R 4 Twice, for example, 2R 4 This radius range R 4 is a first radial distance R to allow the substrate carrier 114 to fit through the opening. 1 2. A second radial distance R is smaller than the first radial distance R but is larger than the second radial distance R 2 In the illustrated embodiment, the second radial distance R 2 is less than half the width of the substrate support 114. However, if the substrate support 114 is not cylindrical, the radial extent R 4 varies depending on the circumferential position (i.e., the angle about the central axis of the substrate carrier 114) being considered. This is because the first radial distance R 1 and a second radial distance R 2This may further mean that the desired effect may only be achieved when the substrate support 114 is inserted into the holder in one or more specific orientations, although it will be appreciated that suitable non-cylindrical designs are feasible (e.g., based on an elliptical or square cross section. FIG. 5B shows the first and second radial distances R 1 , R 2 and the radius range R 4 The relationship between the radius range R 4 Note that is shown on an unstressed portion of the substrate carrier 114, and that the portion of the substrate carrier 114 aligned with the engagement elements 140 (and thus stressed) is shown having a smaller width to illustrate this stressing. Note that Figure 5B is not necessarily drawn to scale, but is shown to emphasize the stressing effect.

[0048] The engaging element 140 does not have an electric heating element for supplying heat to the holder 109 located on or in the engaging element 140. Any heat source for heating the holder 109 is located in the aerosol generating device 100, in particular in this embodiment in the recess side wall 116. In other words, the engaging element 140 does not have a heating element on or in the engaging element 140. That is, heat is not supplied from the engaging element 140, but from somewhere else. This means that heat is not generated by elements on, in or in direct contact with the engaging element 140. Such a configuration allows the holder 109 to be easily removable from the aerosol generating device 100, since no connection needs to be provided between a heat source located in the removable holder 109 and a power source. This simplifies the design of the holder 109 and the manner in which the holder 109 is connected to the aerosol generating device 100, and also makes it possible to retrofit a compression means such as the engagement element 140 provided on the replacement holder 109 to the aerosol generating device 100.

[0049] The holder 109 provided as a separate element may allow for a repeatedly removable holder 109, for example to ensure that the substrate carrier 114 is properly seated in the holder. The holder 109 may be mounted on the substrate carrier 114 (and correct alignment may be visually verified) before both the holder 109 and the substrate carrier 114 are inserted into the recess. This configuration also allows for easy cleaning of the holder 109 once it is removed from the recess. In another example, the holder 109 may be supplied as a separate element for retrofitting an aerosol generating device 100 manufactured without the engaging element 140, providing the engaging element 140 to the device 100. The removable holder 109 may be configured to be clipped into place in the aerosol generating device 100 to hold the removable holder 109 in place, either permanently in a retrofitted state or removably (by clips, latches, etc., not shown) to allow for repeated removal and insertion. This configuration may also aid in removing the substrate carrier 114 after use without damaging the substrate carrier 114, since the substrate carrier 114 may be removed simultaneously with the holder 109 while still being held within the holder 109. This further reduces the likelihood of the substrate carrier collapsing and leaving debris within the recess, thereby reducing the need to clean the recess.

[0050] The configuration described herein separates the compression function from the heating function while still allowing compression of the aerosol substrate 128 by the engagement element 140. In other words, the advantage of separating the heating and compression functions is that it allows for more flexible adaptation to different substrate carriers 114 and / or aerosol generating devices 100.

[0051] The engaging element 140 is aligned with the aerosol substrate 128 when the substrate carrier 114 is properly inserted into the holder 109. Additionally, the second end 142b of each engaging element 140 is bent to extend toward the central axis C to form a support 148. In the first embodiment, the support 148 of each engaging element 140 meets at the central axis C. Correct alignment between the engaging element 140 and the substrate carrier 114 may be ensured because the support 148 prevents over-insertion of the substrate carrier 114 along the central axis C by providing a seat for contacting the tip 134 of the substrate carrier 114, thereby aligning the aerosol substrate 128 with the engaging element 140. This further ensures that the aerosol substrate 128 is compressed but other portions of the substrate carrier 114 are not compressed. In other examples, the recessed base 113 may also help prevent over-insertion of the substrate carrier 114. In either case, where elements such as the support 148 or recessed base 113 function to prevent over-insertion of the substrate carrier 114, the user can ensure correct insertion by pushing the substrate carrier 114 into the holder 109 and feeling an increase in resistance when the tip 134 contacts the support 148.

[0052] In a first embodiment, the supports 148 of the engaging element 140 abut, touch, or join at the central axis C. In other examples, including some of the embodiments described below, this is not the case, e.g., the supports 148 may not extend all the way to the central axis C, e.g., extend toward the central axis C (and each other) but leave gaps at the central axis C. In some cases, the supports 148 do not even touch each other.

[0053] In the first embodiment, the substrate carrier 114 is generally cylindrical and the rim 107 has a generally circular opening 110. Similarly, the engaging elements are configured such that their innermost surfaces (the parts that contact the substrate carrier 114) are arranged in a generally circular configuration. That is, the shapes of the openings 110, the contact surfaces of the engaging elements 140 and the substrate carrier 114 all correspond to each other. It will be understood that in all embodiments there is a general principle that the shapes and sizes of the openings 110 and the engaging elements 140 are selected to allow the substrate carrier 114 to pass through the openings 110 and to allow contact and compression between the engaging elements 140 and the substrate carrier 114. In other words, the invention is not limited to any particular shape of the substrate carrier 114 and the holder 109, and any desired shape of these elements can be selected, subject to the above.

[0054] Dimension R 1 , Dimension R 2 and dimension R 4 is simply interpreted when the opening 110, the substrate carrier 114 and the engagement element 140 have a circular / cylindrical geometry. 1 is the radius of the circular opening 110, and R 4 is the radial dimension of the cylinder representing the substrate carrier 114, and R 2 is the radial dimension of the portion of the engaging element 140 that contacts the substrate carrier. Generalizing to a situation where the engaging element 140 is arranged in a shape other than cylindrical to accommodate the holder 109 to the shape of the substrate carrier 114 (e.g., a cube-like shape to provide compression to a cube-like substrate carrier 114), R may instead be 1 , R 2 and R 4 indicate characteristic dimensions of the opening 110, the engagement element 140 and the substrate carrier 114, respectively. As an example, the characteristic dimension may be a straight edge of a polygon, e.g., the largest or smallest such edge, a major or minor axis of an oval, etc.

[0055] As mentioned above, R 1 and R 4The interaction between the engaging element 140 and the engaging element 140 is such that the opening 110 is sized and shaped to allow the substrate carrier 114 to pass through the opening 110. If the opening 110 is not circular (e.g., square, rectangular, elliptical, etc.), the opening 110 may be used to encourage the user to correctly align (by sight or feel) the substrate carrier 114 for insertion, for example, by aligning a flat surface of the substrate carrier 114 with a straight edge of the opening 110 or by aligning a major axis of an elliptical cross section of the substrate carrier 114 with a major axis of the opening 110. This may help the user to correctly insert the substrate carrier 114 into the holder 109 and achieve the desired degree of compression, since the engaging element 140 is held in place relative to the opening 110. In general, the contact surface of the engaging element 140 is positioned to form a shape that corresponds to (but is smaller than) the shape of the substrate carrier 114.

[0056] The heater 124 is attached to the outer surface of the recess sidewall 116. That is, the heater 124 is attached on the surface of the recess sidewall 116 that faces away from the interior volume of the recess. In other words, the heater 124 is permanently attached to the aerosol generating device 100. This may help protect the heater 124 from damage when the substrate support 114 and the holder 109 are inserted into the recess, while still being configured to supply heat from the heater 124 to the holder 109. The heater 124 is typically electrically powered.

[0057] The first embodiment may be considered to disclose an aerosol generating device 100 for generating an aerosol from an aerosol substrate 128 supported by a substrate carrier 114. In this example, the aerosol generating device 100 has a holder 109 for accommodating the substrate carrier 114 and a heater 124 configured to provide heat to the aerosol substrate 128 when the substrate carrier 114 is accommodated in the holder 109. When the substrate carrier 114 is accommodated in the holder 109, the holder 109 is located between the heater 124 and the aerosol substrate 128. The holder 109 further includes a rim 107 defining an opening 110. The rim 107 is spaced apart from the substrate carrier 114 by a first radial distance R about the central axis C from the central axis C. 1 The substrate carrier 114 is insertable into the holder 109 along the central axis C through the opening 110. The holder has at least two engaging elements 140 (in this case there are eight engaging elements 140), each of the engaging elements 140 having an elongated portion 144 extending generally parallel to the central axis C between a first end 142a joined to the rim 107 and a second end 142b distal from the rim 107. Each elongated portion 144 is spaced a second radial distance R from the central axis C. 2 The second radial distance R 2 is the first radial distance R 1 Less than.

[0058] Another aspect of the disclosure of the first embodiment is that an aerosol generating device 100 is provided for generating an aerosol from an aerosol substrate 128 supported by a substrate carrier 114. The aerosol generating device 100 includes a heater 124 configured to supply heat to the aerosol substrate 128 when the substrate carrier 114 is housed within the aerosol generating device 100. There is a holder 109 having a rim 107 that defines an opening 110, the rim 107 extending about a central axis C. To house the substrate carrier 114 within the aerosol generating device 100, the substrate carrier 114 is insertable into the holder 109 through the opening 110 (e.g., along the central axis C). The holder 109 has at least two bar-like engaging elements 140 (in this case, there are eight engaging elements 140) for holding the substrate carrier 114 spaced apart from the heater 124. The engagement element 140 extends from the rim 107 in a direction substantially parallel to the central axis C.

[0059] As described elsewhere herein, each of the engaging elements 140 has a portion for contacting and compressing the substrate carrier 114. The portion for contacting and compressing the substrate carrier 114 provides a reduced or limited cross-sectional area for receiving the substrate carrier 114 (i.e., smaller than the opening 110 that would allow the substrate carrier 114 to pass therethrough unstressed and undamaged), thereby ensuring that compression occurs when the substrate carrier 114 is inserted.

[0060] In a first embodiment, the aerosol generating device 100 is electrically powered. That is, the aerosol generating device 100 is configured to heat the aerosol substrate 128 using electrical power. For example, the heater 124 is a film heater comprising a conductive (e.g. metal) track laminated on a flexible electrically insulating backing material (e.g. polyimide). To this end, the aerosol generating device 100 comprises a power source 120, e.g. a battery. The power source 120 is coupled to a control circuit 122. The control circuit 122 is in turn coupled to the heater 124. The aerosol generating device 100 is operated by a user using control means (not shown) configured to couple the power source 120 to the heater 124 and to decouple the power source 120 from the heater 124 via the control circuit 122.

[0061] The recess sidewalls 116 are maintained spaced apart from the inner surface of the outer casing 102 to prevent heat flow into the outer casing 102. To increase the thermal insulation of the recess, the recess may further be surrounded by an insulator, for example a fibrous or foam material such as cotton wool, aerogel or gas, or in other examples a vacuum insulator may be provided.

[0062] As mentioned above, the holder 109 has eight engaging elements 140 provided around and connected to the rim 107 to hold the substrate carrier 114 in a central position within the holder 109. Other numbers, for example, two or more engaging elements 140, may be used, but fewer than four engaging elements 140 may result in mis-centering of the substrate carrier 114 within the holder 109. The engaging elements 140 provide and maintain a controlled gap for an air flow path (arrow B) between the inner surface of the recess sidewall 116 (between adjacent engaging elements 140) and the substrate carrier 114. The aerosol generating device 100 works by convection heating, where air in the air gap between the inner surface of the recess sidewall 116 and the outer surface of the substrate carrier 114 is heated and drawn through the substrate carrier 114. Arrow B (see FIG. 4) indicates the air flow path into the recess. The air is heated by the heater 124 as it passes through the portion of the recess sidewall 116 that corresponds to the location of the heater 124. Air flows down the sides of the substrate carrier 114 (before and after the engaging elements 140). The recessed base 113 blocks further downward air flow. This means that the air enters the tip 134. Arrow A shows the air flow path through the aerosol substrate 114 and out the second end 136 (top) of the substrate carrier 114. Comparison with Figure 6 shows that the wedge-shaped gap between the supports 148 of adjacent engaging elements 140 allows air to enter the tip 134 of the substrate carrier 114.

[0063] The space bounded by adjacent engaging elements 140, the sidewall 116 and the outer layer 132 of the substrate carrier 114 defines the area available for airflow. The smaller this space, the harder the user must breathe to draw air into the aerosol generating device 100 (known as increased resistance to draw). The size, number and spacing of the engaging elements 140 can be adjusted to provide a satisfactory resistance to draw that is neither too low nor too high. To increase the airflow channel between the sidewall 116 and the substrate carrier 114, the engaging elements 140 can be made thicker (i.e., extending further radially from the recessed sidewall 116 toward the central axis C), but there is a practical limit to this before the gap between the recessed sidewall 116 and the substrate carrier 114 becomes too large to allow the heater 124 to become ineffective. Typically, a gap of 0.2 mm to 0.3 mm around the exterior surface of the substrate support 114 is a good compromise, allowing the resistance to inhalation to be fine-tuned within tolerances by varying the dimensions of the engagement element 140. Compression of the aerosol substrate by the engagement element 140 has also been found to increase the resistance to inhalation, which, in combination with the airflow channel suppression effect described above, provides a comfortable level of resistance to inhalation.

[0064] When a user wishes to use the aerosol generating device 100, the user first loads the substrate carrier 114 into the holder 109 by inserting the substrate carrier 114 into the holder 109. The substrate carrier 114 is inserted into the holder 109 with the first end or tip 134 of the substrate carrier 114 oriented to enter the holder 109 first such that the aerosol substrate 128 is located adjacent to the support 148 with the tip 134 in contact with the support 148. In this embodiment, there is an additional effect due to the interaction between the upper end 142a of the engagement element 140 and the interface between the aerosol substrate 128 and the adjacent aerosol collection area 130 of the low compressibility substrate carrier 114, which may also serve to inform the user that the substrate carrier 114 has been inserted deep enough into the aerosol generating device 100. Before or after this, the holder 109 is inserted into the recess until the lower edge of the support 148 rests on the inner surface of the recess base 113.

[0065] In use, a user switches on the aerosol generating device 100 and power from the power supply 120 is provided via (and under the control of) the control circuit 122 to the heater 124. The heater 124 heats the recess sidewall 116, which in turn heats the air inside the recess, causing some heating by conduction of a portion of the substrate support 114 inside the recess. When a user pulls air (arrow A) through the substrate support 114, the heated air passes over and heats the aerosol substrate 128, causing it to emit an aerosol and / or vapor.

[0066] 3 and 4, it can be seen that when the substrate carrier 114 is inserted as deeply as possible into the holder 109, only a portion of the length of the substrate carrier 114 is inside the holder 109. The remainder of the length of the substrate carrier 114 protrudes from the holder 109. When the holder 109 is in the recess, at least a portion of the remainder of the length of the substrate carrier 114 also protrudes from the second end 106 of the aerosol generating device 100 and can be used as a mouthpiece from which a user draws aerosol by inhalation from the aerosol substrate 128. In other embodiments, all or substantially all of the substrate carrier 114 can be contained within the aerosol generating device 100 such that no portion or substantially no portion of the substrate carrier 114 protrudes from the aerosol generating device 100.

[0067] It will be appreciated that when a user inhales the aerosol in the direction of arrow A in Figure 4, ambient air is drawn into the recess (through the flow path indicated by arrow B in Figure 4) from the environment surrounding the aerosol generating device 100. This ambient air flows within the space provided between the recess sidewall 116 and the outer layer 132 of the substrate support 114, where it is further heated by the heater 124, thereby starting the cycle again.

[0068] The user can continue to inhale the aerosol as long as the aerosol substrate 128 continues to generate aerosol, e.g., as long as there are vaporizable components remaining in the aerosol substrate 128 to vaporize into a suitable aerosol. The control circuit 122 adjusts the power supplied to the heater 124 to prevent the temperature within the recess from exceeding a threshold level, e.g., the temperature at which the aerosol substrate 128 begins to burn.

[0069] 5A and 5B show a close-up of the holder 109 being inserted into the recess. As can be seen, the holder 109 fits into the recess and is aligned with the recess sidewall 116. Although FIGS. 5 and 5B show the substrate carrier 114 being inserted into the holder 109 only after the holder 109 has been inserted into the recess, as described above, in some instances the substrate carrier 114 may be fitted into the holder 109 and both parts inserted into the recess together. The rim 107 may also be used to limit how far the holder 109 can be inserted into the recess, for example by allowing interaction between the rim 107 and the top edge of the recess sidewall 116. This may create a gap between the support 148 and the inner surface of the recess base 113, which may be further used to increase the volume of heated air in the recess for heating the aerosol substrate. This may increase the time it takes to heat the air in the recess to a desired temperature (because there is more air), but once heated, the greater amount of warm air in the recess provides a larger reservoir from which the user can inhale, which may allow the user to inhale a greater amount of aerosol and / or vapor, or multiple inhalations in a short interval. In some cases, all or part of the rim 107 may protrude from the recess, for example to assist a user in gripping the holder 109 to remove it from the recess.

[0070] In Fig. 5A, the heater is not shown to emphasize the insertion procedure of the holder 109 into the recess. In Fig. 5B, the heater 124 is shown adjacent only a portion of the aerosol substrate 128 and located toward the lower end of the recess. In other cases, the heater 124 may be located in a different position, for example closer to the upper end of the recess, or the heater 124 may be larger, covering all or substantially all of the exterior surface of the recess sidewall 116 (or corresponding to the entire or substantially entire aerosol substrate 114). Since the recess and holder 109 are configured to provide convective heating, localization of heating is not a major issue in terms of uniformly heating the aerosol substrate 128, since heated air passes over the entire aerosol substrate 128 in any case in a convectively heated system. In either case, if more of the recess sidewall 116 is to be heated, the heater 124 may include a heat-conducting layer (e.g., a layer of copper or gold or other high thermal conductivity material) to spread the heat over an area of ​​the recess sidewall 116 larger than the heater footprint.

[0071] The rim 107 may comprise any material capable of withstanding repeated heating by the heater 124 to a temperature of approximately 200° C. Suitable materials include ceramics, such as machinable glass ceramics, and other suitable materials, such as high temperature plastics. In some cases, polymers, such as polyetheretherketone (PEEK), with an upper operating temperature limit of up to 250° C., may be used. The engaging element 140 may be made of any suitable durable material for compressing the aerosol substrate, such as 300 series stainless steel, which is also approved for medical use. In general, metals are suitable materials because they are strong, malleable, and easy to mold and form. In addition, the thermal properties of different metals vary widely and can be tailored by careful alloying as needed to allow or prevent conductive heat flow through the engaging element 140 to the aerosol substrate 128. In this disclosure, "metal" refers to elemental (i.e. pure) metals as well as alloys with two or more metals or other elements, such as carbon.

[0072] In some cases, the fit between the holder 109 and the recess sidewall 116 is close enough that a significant amount of heat is also conducted from the heater 124 to the engaging element 140. In these cases, the heating of the aerosol substrate 128 is a balance between conductive and convective heating. This balance can be shifted toward conductive heat transfer by increasing the contact area between the engaging element 140 and the recess sidewall 116 (which further reduces the air gap and reduces convective heating). In other cases, conductive heat flow can be promoted by including a thermally conductive layer (e.g., made of a high thermal conductivity layer of copper, gold, etc.) to improve heat transfer from the recess sidewall 116 to the engaging element 140. In other examples, the thermally conductive layer can be softer than the recess sidewall 116 and / or the engaging element 140 such that the thermally conductive layer deforms slightly to improve contact between the recess sidewall 116 and the engaging element 140. The thermal engaging element 140 can be made of a material that has a higher heat transfer coefficient than the material of the rim 107. This can aid the engagement element 140 in conducting heat to the substrate carrier 114 while preventing heat from escaping the recess through the rim 107 .

[0073] In another example, the heater 124 is not in conductive thermal contact with the engagement element 140. For example, the engagement element 140 may be spaced apart from the inner surface of the recess sidewall 116, such that the transfer of heat from the heater 124 to the aerosol substrate 128 is primarily convective.

[0074] While the above holders have been described in relation to holders used within the aerosol generating device 100, the example shown in FIG. 6 illustrates that the present disclosure extends to the holder 109 alone, for example as described above with respect to retrofitting an existing device.

[0075] Alternative embodiments will now be described by showing the holder 109 alone. By analogy with FIG. 6 of the first embodiment, any of the holders 109 in the following embodiments can replace the holder 109 shown in the aerosol generating device 100 of FIGS. 1-4, and the operation of the aerosol generating device will be substantially the same as above. However, each of the following embodiments of the holder 109 is shown without a substrate carrier 114 inserted therein to highlight the differences between the embodiments. Nevertheless, the present disclosure extends to the holder 109 including the substrate carrier 114 inserted therein.

[0076] Second embodiment Referring to Figure 7, the aerosol generating device 100 according to the second embodiment is identical to the aerosol generating device 100 according to the first embodiment described with reference to Figures 1 to 6, except as described below, and the same reference numbers are used to refer to similar features.

[0077] In the second embodiment, the lower end 142b of the engaging element 140 does not bend around and extend towards the central axis C. Instead, there is no support 148. This means that no part of the engaging element 140 blocks airflow to the tip 134 of the substrate carrier 114, thereby improving airflow to the substrate carrier 114 and through the aerosol substrate 128. The engaging element 140 is sufficiently rigid to resist deformation in response to the substrate carrier 114 being inserted into the holder, thereby providing the compression described above.

[0078] Because there is no support 148, once the substrate carrier 114 is inserted the correct distance into the holder 109 (i.e., to align the aerosol substrate 128 with the engagement element 140), there is nothing to prevent further insertion of the substrate carrier 114. In some examples, the recess base 113 prevents over-insertion of the substrate carrier 114 in the sense that when the holder 109 is mounted in the recess, the substrate carrier 114 is prevented from further movement by the recess base 113 and therefore the substrate carrier 114 cannot be inserted further than desired.

[0079] In another example, over-insertion is prevented by interaction of the upper end 142a of the engaging element 140 with the interface between the aerosol substrate 128 and the aerosol collection region 130. More specifically, because the aerosol collection region 130 is harder, stiffer, or less compressible than the aerosol substrate 128, a user can feel a difference in resistance as the force required to continue inserting the substrate carrier increases when the upper end 142a of the engaging element 140 is aligned with this interface.

[0080] In yet another example, the rim 107 is configured to rest on the upper edge of the recess sidewall 116 (the end of the recess sidewall 116 closest to the outer casing 102) with the engagement element 140 not extending all the way around the recess base 113. This means that a user can mount the holder 109 on the substrate carrier 114 outside of the aerosol generating device and visually check that the tip 134 of the substrate carrier 114 is aligned with the second end 142b of the engagement element 140. In this example, since the engagement element 140 does not extend all the way around the recess base 113, the tip 134 is also spaced apart from the recess base 113 when the holder 109 and substrate carrier 114 are inserted together in the recess. Each of these options ensures that the entire area of ​​the tip 134 is exposed, improving airflow to the substrate carrier 114.

[0081] Third embodiment Referring to Figure 8, the holder 109 according to the third embodiment is identical to the holder 109 of the first embodiment described with reference to Figures 1 to 6, except as described below, and the same reference numbers are used to refer to similar features.

[0082] The configuration of the third embodiment is very similar to that shown in Figure 6, however, in Figure 8, the supports 148 of the engagement elements 140 are not in contact and are not bonded to one another. The engagement elements 140 are sufficiently rigid to withstand deformation in response to the substrate carrier 114 being inserted into the holder, thereby providing the compression described above.

[0083] The third embodiment balances some of the advantages of the first and second embodiments. The substrate carrier 114 is prevented from over-inserting into the holder 109 by the supports preventing further movement, and similar to the first embodiment, the thickness of the supports 148 keeps the tip 134 of the substrate carrier 114 spaced apart from the recess base 113. Similarly, the supports 148 of the engagement elements 140 do not contact at the central axis, exposing more area of ​​the tip 134 of the substrate carrier 114 compared to the first embodiment. Thus, the third embodiment features improved airflow to the substrate carrier 114 compared to the first embodiment.

[0084] In some variations of the third embodiment, some but not all of the supports 148 of the engagement element 140 may contact (and possibly even bond with) other supports 148 near the central axis C.

[0085] Fourth embodiment 9A and 9B, the holder 109 according to the fourth embodiment is identical to the holder 109 of the second embodiment described with reference to FIG. 7, except as described below, and the same reference numbers are used to refer to similar features.

[0086] The configuration of the fourth embodiment is very similar to that shown in FIG. 7, however, in FIGS. 9A and 9B, the elongated portion 144 of the engagement element 140 is not straight but curved inward toward the central axis C.

[0087] More specifically, the upper end 142a of each engagement element 140 is connected to the rim 107 in the same manner as described above. The rim 107 has a radius R 1 As previously mentioned, the engagement element 140 is disposed at a second radial distance R from the inner surface of the rim 107. 2 However, hereinafter, engaging element 140 will now extend inwardly to R' instead of extending parallel to the central axis toward its second end 142b. 21, the engaging element 140 curves inwardly in an arc that approaches the central axis C as shown by the radius of approach R'. This shape of the engaging element 140 can provide increased compression toward a central portion of the aerosol substrate 128. In another example, the radius of approach R' 2 can be located away from the middle of the elongated portion 144, for example, toward the upper end 142a or the lower end 142b of the engaging element 140. In other words, the surface of each engaging element 140 facing the central axis C has a convex profile transverse to the central axis C. The convex profile shown is a circular arc, although other curves are possible. In fact, the closest R' 2 can be obtained linearly in the sense that the elongated portions 144 may be straight but do not extend parallel to the central axis C. In this embodiment, the engaging elements 140 are not connected to each other at their lower ends 142b, so that the lower ends 142b are more susceptible than the other parts to being pushed outward by the substrate carrier 114 when the substrate carrier 114 is inserted, because the lower ends 142b are farther away from their fixed point on the rim 107 and therefore may deviate further from their default position. Configuring the engaging elements 140 to extend in a direction non-parallel to the central axis C can be useful to ensure that the lower ends 142b of the engaging elements 140 are closest to the central axis C and compensate for their distance from the rim 107.

[0088] Additionally, in some cases, it may be advantageous to apply additional compression to tip 134 to help hold spilled material in place so that it does not fall and contaminate the recess. On the other hand, over-compression of tip 134 may cause more material to spill, making the situation worse. Similarly, the portion of aerosol substrate 128 closest to the interface between aerosol substrate 128 and aerosol collection region 130 may be protected from compression by aerosol collection region 130. Thus, a tighter space (smaller R') may be required to achieve the desired level of compression. 2 ) may be required. For these reasons, it may be desirable to provide different amounts of compression along the length of the aerosol substrate 128.

[0089] In another example, the engagement elements 140 may be smoothly curved along the entire length of each engagement element 140, with a radius R before the curved portion begins. 2 It may be a smooth curve in the sense that there is no initial portion that extends inwardly to the

[0090] In further examples, the engagement elements 140 may not have a curved profile, but may be more angular and / or result in a pointed profile.

[0091] In yet another example, as shown, only some of the engagement elements 140 may be curved, or each (or one or more subsets) of the engagement elements 140 may have a different R' representing a different curvature. 2 The value may be:

[0092] Some examples of the fourth embodiment may feature an engaging element 140 having a more complex curvature, for example, to provide multiple portions of the elongated portion 144 that are closer to the central axis C. In some cases, each locally closest portion of the engaging element 140 is the same distance R' from the central axis C. 2 In another example, each locally closest portion of the engagement element 140 may be at a different distance (R') from the central axis C. 2 , R'' 2 , R''' 2 , etc.), which can provide additional compression in particularly advantageous areas, such as the tip 134 and midpoint of the aerosol substrate 128, while providing reduced compression (or indeed no compression at all) elsewhere, if desired.

[0093] Indeed, some or each of the engagement elements 140 may correspond to a different one of the variations described above (or indeed the engagement elements 140 shown in FIG. 7).

[0094] Fifth embodiment 10A and 10B, the holder 109 according to the fifth embodiment is identical to the holder 109 of the second embodiment described with reference to FIG. 7, except as described below, and the same reference numbers are used to refer to similar features.

[0095] The configuration of the fourth embodiment is very similar to the configuration shown in FIG. 7, but in FIGS. 10A and 10B, the upper end 142a of the engagement element 140 is obliquely sloped in a direction from the rim 107 toward the central axis C and toward the second end 142b of the engagement element 140.

[0096] The top end 142a shown in the figures is linearly tapered, but in other examples may have a curved profile. Because the top end 142a acts somewhat like a funnel, the top end 142a of the engagement element 140 having this shape helps guide the substrate carrier 114 toward alignment with the central axis C as it is inserted into the holder 109. This may be particularly useful when the holder 109 is mounted in a recess such that the user may not be able to clearly see the insertion process.

[0097] Additionally, the configuration of the holder 109 may aid in adapting (e.g., modifying) a recess designed for a larger (e.g., wider) substrate support 114 to receive and heat a smaller (e.g., thinner) substrate support 114. The shape of the engagement element 140 in Figures 10A and 10B results in a significant narrowing, yet still provides a somewhat shorter, angled upper end 142a that provides a second radial distance R 2 It will be appreciated that R can be made narrower and therefore tailored to fit thinner substrate carriers. This is because R can be made smaller to retrofit an existing recess to fit a smaller sized substrate carrier 114. 2 (and / or R' 2 This is true to some extent for the other embodiments in that the width of the gap 14 can be made as narrow as desired.

[0098] Sixth embodiment 11A-11D, the holder 109 according to the sixth embodiment is identical to the holder 109 of the first embodiment described with reference to FIG. 6, except as described below, and the same reference numbers are used to refer to similar features.

[0099] The configuration of the sixth embodiment is very similar to that shown in FIG. 6, but in FIG. 11A, the holder includes a tubular sidewall 126 located around the engaging element 140 (at a radial distance farther from the central axis C than the engaging element 140). In addition, a base 112 is provided at the lower end of the tubular sidewall 126 below the lower end 142b (and support 148) of the engaging element 140 (farther from the rim 107 than the lower end 142b (and support 148) of the engaging element 140). The tubular sidewall 126 contains the engaging element 140 and defines the heating chamber 108. It can also be seen that the base 112 helps to define the heating chamber 108 by closing the lower end of the tubular sidewall 126. FIG. 11A shows the holder 109 in a perspective view, and FIGS. 11B-11D show cross-sectional views of variations of the internal structure.

[0100] Providing the sidewalls 126 and base 112 that encase the engaging element 140 may help protect the engaging element 140 (and the substrate carrier 114 when inserted into the holder 109) from damage. This protection also prevents the engaging element 140 from bending outward when the substrate carrier 114 is inserted into the holder, since there is a limit to how far the engaging element 140 can bend outward before the sidewalls 126 prevent further movement. This is because the lower end 142b of the engaging element 140 is positioned at a distance R from the central axis. 2 This can be particularly advantageous in cases such as shown in FIG. 11C where there is no support 148 that can help hold the device in place.

[0101] The provision of the sidewall 126 and base 112 may be considered to provide a self-contained heating chamber 108 having many of the same characteristics as the holder 109 and recess combination described above. An advantage of providing the holder 109 as a self-contained unit is that the requirements for the recess in the aerosol generating device 100 are less stringent. For example, the recess may be of any size or shape, and the sidewall 126 may be sized to closely connect with the recess sidewall 116 to transfer heat from the heater 124 to the interior of the heating chamber 108. Similarly, the engaging element 140 may be spaced any distance from the inner surface of the sidewall 126 to grip and press against a substrate carrier 114 of any size. Similarly, the length of the sidewall 126 may be selected to fit securely into the recess and press against the recess base 113, for example to hold the rim 107 at a desired distance from the recess base 113 to align the engaging element 140 with the heater 124.

[0102] The base 112 functions to catch any spilled material that falls from the substrate carrier so that the holder 109 can be removed and cleaned (if the holder 109 is removable). Even if the holder 109 is not removable (e.g., a permanently fixed, retrofit situation), the presence of the base 112 reduces the requirements for the recess in which the holder 109 is mounted, in that the recess base 113 does not need to completely seal the recess, since the base 112 and the sidewall 126 together prevent ingress of spilled material, moisture, etc. into the interior of the aerosol generating device 100.

[0103] The base 112 is joined to the lower end of the sidewall 126. In some examples, the base 112 closes the tubular sidewall 126 in the sense that the airflow exiting the lower end of the sidewall 126 is blocked by the base 112. This can help guide the air flowing down the inner surface of the sidewall 126 to the tip 134 of the substrate carrier 114, promoting the advantage of providing a self-contained heating chamber 108. Furthermore, the base 112 can prevent air from flowing into the heating chamber 108 defined by the tubular sidewall 126 in the region of the second end 142a of the elongated portion 144 of the engagement element 140. This provides more control over the heating of the aerosol substrate 128, since it ensures that the air flowing to the tip 134 is heated by the heater. This of course also applies to the recesses shown in Figures 2, 4, 5A and 5B and described with reference to the first embodiment. The provision of this sealed connected sidewall 126 and base 112 allows the recess to have a different configuration than that described in the first embodiment.

[0104] In some cases, the sidewalls 126 and / or the base 112 are formed from a mesh or have one or more openings. These may allow air heated by the heater 124 to flow into the heating chamber 108, improving convective heating of the overall aerosol generating device 100 without relying on conduction through the sidewalls 126. Furthermore, the use of mesh material and / or openings reduces the amount of material forming the sidewalls 126 and the base 112. This means that less energy is required to heat the holder 109, thereby improving the efficiency of the aerosol generating device 100.

[0105] Consider Figures 11B and 11C, which show a holder 109 corresponding to the holder 109 of Figures 6 and 7, respectively, but with a sidewall 126 and base 112 containing an engagement element 140. In each of Figures 11A and 11B, the base 112 is spaced from the lower end 142b of the engagement element 140 (and from the support 148 in Figure 11B). This provides space for collecting spilled material that falls from the tip 134 of the substrate carrier 114 without blocking the air flow path to the tip 134. This also provides a reservoir of heated air below the tip 134 to allow a larger volume of air to be drawn through the substrate carrier 114. In other examples, the lower end 142b and / or the support 148 may contact the base 112 or may even be located within a recess in the base 112 or may be bonded to the base 112.

[0106] The sidewall 126 is disposed at a third radial distance R from the central axis. 3 The inner surface is located at R 3 is R 2 is larger than R 1 or R 1 or R 1may be equal to. Although the engaging element 140 is shown spaced apart from the sidewall 126, in some instances the engaging element 140 may contact (and even be bonded to) the sidewall 126. In such cases, the contact between the sidewall 126 and the engaging element 140 is close enough that a significant amount of heat is also conducted from the heater 124 through the sidewall 126 to the engaging element 140. In these cases, the heating of the aerosol substrate 128 is a balance between conductive and convective heating. This balance can be shifted toward conductive heat transfer by increasing the contact area between the engaging element 140 and the sidewall 126 (which further reduces the air gap and reduces convective heating). In other cases, conductive heat transfer can be improved by including a thermally conductive layer (e.g., a high thermal conductivity material such as copper, gold, etc.) to improve heat transfer from the sidewall 126 to the engaging element 140. In a further example, the thermally conductive layer may be softer than the sidewall 126 and / or the engaging element 140 such that the thermally conductive layer deforms slightly to improve contact between the sidewall 126 and the engaging element 140 .

[0107] 11D shows a further variation of the sixth embodiment with sidewalls 126 but without base 112. As mentioned above, sidewalls 126 can provide protection for engagement element 140. Furthermore, the absence of base 112 can help lighten the interior of heating chamber 108 when a user is attaching holder 109 to substrate carrier 114 outside of the device. This further helps a user visually confirm that substrate carrier 114 is correctly attached within holder 109. In yet another example, sidewalls 126 are not present, while base 112 can be provided bonded to lower end 142b of engagement element 140.

[0108] Seventh embodiment 12A-12D, the holder 109 according to the seventh embodiment is identical to the holder 109 of the first embodiment described with reference to FIG. 6, except as described below, and is also similar to FIGS. 11A-11D, with the same reference numbers being used to refer to like features.

[0109] The configuration of the seventh embodiment is very similar to that shown in FIG. 6, but in FIG. 12A, the holder includes a tubular sidewall 126 located around the engaging element 140 (at a radial distance farther from the central axis C than the engaging element 140). In addition, a base 112 is provided at the lower end of the tubular sidewall 126 below the lower end 142b (and support 148) of the engaging element 140 (farther from the rim 107 than the lower end 142b (and support 148) of the engaging element 140). The tubular sidewall 126 contains the engaging element 140 and defines the heating chamber 108. It can also be seen that the base 112 helps to define the heating chamber 108 by closing the lower end of the tubular sidewall 126. FIG. 12A shows the holder 109 in a perspective view, and FIGS. 12B-12D show cross-sectional views of variations of the internal structure.

[0110] In contrast to Figures 11A-11D, a separate rim 107 is not provided, but instead the upper end of the sidewall 126 serves as the rim 107, since the upper end 142a of each engagement element 140 is attached to the upper end of the sidewall 126. For this reason, the upper end of the sidewall 126 is referred to as the rim 107 in the seventh embodiment. In the illustrated example, the upper end 142a of the engagement element 140 is attached to the rim by passing through an opening in the rim 107. In other cases, the engagement element 140 may simply be joined to the rim 107 by welding or soldering, or may be attached to a recess in the sidewall 126 that does not penetrate the entire sidewall. This configuration provides the functionality described above with respect to the sixth embodiment in a simpler manner, since a second rim 107 is not required. It will be apparent that if the rim 107 had previously interacted with another element, such as the top of the recess side wall 116, to prevent overinsertion of the holder 109 into the recess, the protruding portion of the upper end 142a of the engagement element 140 could fulfill this same role.

[0111] FIG. 12B operates essentially the same as FIG. 11B, except for the differences highlighted above. It will not be described in further detail. FIG. 12C shows a variation in which the lower end 142b of the engaging element 140 penetrates the base 112 and projects outward from the exterior surface of the base. This can provide stability to the engaging element 140 by providing an anchor point on the base 112, which gives the engaging element 140 additional stiffness and allows it to be made thinner without sacrificing the desired compression effect. This can help compensate for situations in which the engaging element 140 does not have a support 148 to connect to another support 148, thereby allowing the engaging element to be forced away from the central axis C when the substrate carrier 114 is inserted into the holder 109. In such a case, the base 112 provides the role of the support 148 in preventing the substrate carrier 114 from being inserted further than intended. A similar effect is seen in other embodiments in which the lower end 142b of the engaging element is connected (e.g., soldered, welded, etc.) to the inner surface of the base 112 or maintained in a predetermined position within a recess that does not penetrate the entire thickness of the base 112.

[0112] In Figure 12D, a holder 109 similar to that shown in Figure 12C can be seen, except that the lower end 142b of the engagement element 140 does not extend to the base 112. This functions substantially identically to the holder shown in Figure 11C and need not be detailed again.

[0113] Definitions and Alternative Embodiments It will be understood from the foregoing description that many of the features of the various embodiments are interchangeable, and the disclosure extends to further embodiments including those in which features of the various embodiments are combined together in a manner not specifically mentioned.

[0114] For example, any of the configurations described in the first to fifth embodiments may include either the side wall 126 or the base 112, or both, as described with respect to the sixth and seventh embodiments. Similarly, each embodiment may be a permanently mountable (retrofit) within a recess of the aerosol generating device 100 or may be a repeatedly removable example.

[0115] The various variations in the shape of the engaging elements 140 for compressing the aerosol substrate 114 described in the fourth embodiment, along with their associated advantages, may be provided in any of the other embodiments. Similarly, although each embodiment shows eight engaging elements 140, a holder 109 in accordance with the above teachings having any number of engaging elements 140 greater than two may be provided and dimensioned to accommodate any suitable recess.

[0116] Each holder 109 may comprise a rim 107 in the form shown in the first to sixth embodiments or an engagement element 140 coupled directly to the side wall 126 as in the seventh embodiment.

[0117] 6-12D show the holder 109 separated from the aerosol generating device 100 and the corresponding recess, to emphasize that the advantageous features described with respect to the configuration of each embodiment of the holder 109 are independent of other features of the aerosol generating device 100. In particular, the holder 109 has many applications, not all of which are relevant to the aerosol generating device 100 described herein.

[0118] Additionally, the thicknesses of the engaging elements 140 (including the thicknesses of the supports 148 (which may differ from the thickness of the engaging elements 140) may be selected to achieve a desired effect and need not follow the relative dimensions shown in the figures. Indeed, different engaging elements 140 (and supports 148) can have different thicknesses, if desired.

[0119] The shortest distance (R 2It will be understood that the distance each support 148 extends toward the central axis C may vary for each engaging element 140. Similarly, the distance each support 148 extends toward the central axis C may vary for each support 148. Although each embodiment shows the upper end 142a of each engaging element 140 joining the rim 107 at the same height (i.e., distance from the opening 110), in some embodiments, this height may not be the same for each engaging element 140.

[0120] The term "heater" should be understood to mean any device for outputting sufficient thermal energy from the aerosol substrate 128 to form an aerosol. The transfer of thermal energy from the heater 124 to the aerosol substrate 128 can be by conduction, convection, radiation, or any combination of these means. As a non-limiting example, a conductive heater can directly contact and press against the aerosol substrate 128, or it can contact a separate component that itself causes heating of the aerosol substrate 128 by conduction, convection, and / or radiation. Convection heating may include heating a liquid or gas, which results in the transfer of thermal energy (directly or indirectly) to the aerosol substrate.

[0121] Radiative heating includes, but is not limited to, transferring energy to the aerosol substrate 128 by emitting electromagnetic radiation in the ultraviolet, visible, infrared, microwave or radio frequency portions of the electromagnetic spectrum. The radiation thus emitted may be absorbed directly by the aerosol substrate 128 causing heating, or the radiation may be absorbed by another material, such as a susceptor or fluorescent material, such that the radiation is re-emitted at a different wavelength or spectral weighting. In some cases, the radiation may be absorbed by a material which then transfers heat to the aerosol substrate 128 by any combination of conduction, convection and / or radiation.

[0122] The heater may be electrically powered, combustion powered, or powered by any other suitable means. Electrically powered heaters may include resistive track elements (optionally including insulating packaging), inductive heating systems (including, for example, electromagnets and high frequency oscillators), etc. The heater 128 may be disposed around the outside of the aerosol substrate 128, may penetrate partway or completely within the aerosol substrate 128, or any combination thereof.

[0123] The term "temperature sensor" is used to describe an element capable of determining the absolute or relative temperature of a portion of the aerosol generating device 100. This may include a thermocouple, a thermopile, a thermistor, etc. The temperature sensor may be provided as part of another component or may be a separate component. In some examples, multiple temperature sensors may be provided, for example to monitor the heating of various portions of the aerosol generating device 100, for example to determine a thermal profile.

[0124] With reference to the above-mentioned embodiments, the aerosol substrate 128 includes tobacco, for example in a dried or cured form, optionally with additional ingredients for flavor or to provide a smoother or more satisfying effect. In some examples, the aerosol substrate 128, such as tobacco, may be treated with a vaporizer. The vaporizer may improve the generation of aerosol from the aerosol substrate. The vaporizer may include, for example, a polyol, such as glycerol, or a glycol, such as propylene glycol. In some cases, the aerosol substrate may not include tobacco or even nicotine, but may instead include natural or artificial ingredients for flavoring, volatility, improved smoothness, and / or other satisfying effects. The aerosol substrate 128 may be provided as a solid or paste-type material in shredded, pelleted, powdered, granular, strip or sheet form, optionally a combination thereof. Similarly, the aerosol substrate 128 may be liquid or gel. Indeed, in some examples, both solid and liquid / gel portions may be included.

[0125] Thus, the aerosol generating device 100 may equally be referred to as a "heated tobacco device," a "heated non-combustion tobacco device," a "device for vaporizing tobacco products," etc., and is to be construed as a device suitable for achieving these effects. The features disclosed herein are equally applicable to devices designed to vaporize any aerosol substrate.

[0126] An embodiment of the aerosol generating device 100 is described as being configured to house the aerosol substrate 128 within a prepackaged substrate carrier 114. The substrate carrier 114 may generally resemble a cigarette with a tubular region having the aerosol substrate arranged in an appropriate manner. Some designs may also include filters, aerosol collection regions, cooling regions, and other structures. For example, a flexible flat material such as an outer layer of paper or other foil to hold the aerosol substrate in place may also be provided to further enhance the resemblance to a cigarette or the like.

[0127] As used herein, the term "fluid" shall be taken to collectively describe a type of non-solid material that is capable of flowing, including, but not limited to, liquids, pastes, gels, powders, etc. Accordingly, a "fluidized material" shall be taken as a material that is inherently fluid or that has been modified to behave as a fluid. Fluidization may include, but is not limited to, powdering, dissolving in a solvent, gelling, thickening, thinning, etc.

[0128] As used herein, the term "volatile" refers to a material that can be easily changed from a solid or liquid state to a gaseous state. As a non-limiting example, a volatile material may have a boiling or sublimation temperature near room temperature at ambient pressure. Thus, "volatilize" or "volatilise" shall be interpreted to mean to cause (a material) to volatilize and / or to evaporate or disperse into a vapor.

[0129] As used herein, the term "vapour" (or "vapor") means: (i) the form into which a liquid is transformed spontaneously by the action of a sufficient degree of heat, or (ii) liquid / moisture particles suspended in the atmosphere and visible as a cloud of steam / smoke, or (iii) a fluid that fills space like a gas but can be liquefied by pressure alone when below a critical temperature.

[0130] Consistent with this definition, the term "vaporise" (or "vaporize") means: (i) to change or cause to change into a vapor, and (ii) when a particle changes physical state (i.e., from a liquid or solid to a gaseous state).

[0131] As used herein, the term "atomise" (or "atomize") shall mean: (i) to change (a substance, especially a liquid) into very small particles or droplets, and (ii) where the particles remain in the same physical state (liquid or solid) as they were before atomization.

[0132] As used herein, the term "aerosol" shall mean a system of particles dispersed in air or gas, such as mist, fog, or smoke. Accordingly, the term "aerosolize" (or "aerosolize") means to make into an aerosol and / or to disperse as an aerosol. It is noted that the meaning of aerosol / aerosolize is consistent with each of volatilization, atomization, and vaporization defined above. For the avoidance of doubt, aerosol is used consistently to describe a mist or droplets containing atomized, volatilized, or vaporized particles. Aerosol also includes a mist or droplets containing any combination of atomized, volatilized, or vaporized particles.

Claims

1. A holder (109) insertable into an aerosol generating device (100), the aerosol generating device (100) configured to heat an aerosol substrate (128) supported by a substrate carrier (114) to generate an aerosol, the holder (109) configured to receive the aerosol substrate (128) supported by the substrate carrier (114) when inserted into the aerosol generating device (100), and the holder (109) comprises: A rim (107) defining an opening (110), the surface of the rim facing the central axis (C) being spaced about the central axis (C) at a first radial distance (R 1 ) along said central axis (C), said substrate carrier (114) being insertable into said holder (109) through said opening (110); At least two engaging elements (140), each of the engaging elements (140) having an elongated portion (144) extending generally parallel to the central axis (C) between a first end (142a) joined to the rim (107) and a second end (142b) distal from the rim (107), each engaging element (140) having no electric heating element for supplying heat to the aerosol substrate (128), and each elongated portion (144) having a radially innermost position with respect to the central axis (C) at a second radial distance (R 1 ) from the central axis (C). 2 ) and the second radial distance (R 2 ) is the first radial distance (R 1 ) and at least two engagement elements (140) each smaller than Including, Each of said engaging elements (140) is a holder (109) which is a rod.

2. 2. The holder (109) of claim 1, wherein each engaging element (140) has a support portion (148) extending from the second end of the elongated portion (144) toward the central axis (C) to provide a seat for limiting insertion of the substrate carrier (114) along the central axis (C).

3. 3. The holder (109) of claim 2, wherein the support portions (148) of the at least two engaging elements (140), preferably a plurality of engaging elements, extend in contact with one another.

4. The holder (109) according to any one of the preceding claims, wherein the engagement elements (140) are equally spaced around the rim (107).

5. The holder (109) of any one of claims 1 to 4, wherein the engagement elements (140) are spaced apart from one another by an air gap.

6. The holder (109) of any one of claims 1 to 5, further comprising a tubular sidewall (126) extending around the at least two engaging elements (140), the tubular sidewall (126) defining a heating chamber (108).

7. The holder (109) of claim 6, wherein the elongate element (144) is spaced from the inner surface (142) of the tubular side wall (126).

8. The holder (109) of claim 6 or 7, further comprising a base (112) located further from the rim (107) than the second end of the engagement element (140).

9. The holder (109) of claim 8, wherein the sidewall (126) and / or the base (112) is a mesh or has one or more openings.

10. A holder (109) according to any one of claims 1 to 9, wherein the first end of the elongated portion (144) of each engaging element (140) has a portion that slopes towards the second end of the elongated portion (144) and towards the central axis (C).

11. The holder (109) according to any one of the preceding claims, wherein the engagement element (144) comprises a material having a higher heat transfer coefficient than a material of the rim (107).

12. The holder (109) according to any one of the preceding claims, wherein the engagement element (140) is metallic.

13. Holder (109) according to any one of the preceding claims, wherein said rim (107) is made of heat resistant plastic, preferably polyetheretherketone, PEEK.

14. The holder (109) according to any one of the preceding claims, wherein the engagement element (140) is parallel to the central axis (C) towards the second end (142b) of the engagement element (140).

15. A holder (109) insertable into an aerosol generating device (100), the aerosol generating device (100) configured to heat an aerosol substrate (128) supported by a substrate carrier (114) to generate an aerosol, the holder (109) configured to receive the aerosol substrate (128) supported by the substrate carrier (114) when inserted into the aerosol generating device (100), and the holder (109) comprises: A rim (107) defining an opening (110), the surface of the rim facing the central axis (C) being spaced about the central axis (C) at a first radial distance (R 1 ) along said central axis (C), said substrate carrier (114) being insertable into said holder (109) through said opening (110); At least two engaging elements (140), each of the engaging elements (140) extending from a first end (142a) joined to the rim (107) along the central axis (C) to a second end (142b) distal from the rim (107), and having an elongated portion (144) having an arc shape that approaches the central axis (C) between the first end (142a) and the second end (142b), each engaging element (140) does not have any electric heating element for supplying heat to the aerosol substrate (128), and each elongated portion (144) has a radially innermost position with respect to the central axis (C) at a second radial distance (R 2 ) and the second radial distance (R 2 ) is the first radial distance (R 1 ) and at least two engagement elements (140) each smaller than A holder (109).

16. A system comprising a holder (109) according to any one of claims 1 to 15 and a substrate carrier (114), wherein the second radial distance (R 2 ) is less than half the width or diameter of the substrate support (114).

17. An aerosol generating device (100) comprising a holder (109) according to any one of claims 1 to 15, held in a recess of the aerosol generating device (100).

18. 18. The aerosol generating device (100) of claim 17, wherein the holder (109) is removable from the aerosol generating device (100).

19. An aerosol generating device (100) including the system according to claim 16, wherein the holder (109) is held in a recess of the aerosol generating device (100).

Citation Information

Patent Citations

  • Electronic cigarette

    CN209090043U