Aerosol generation
The aerosol-generating device with multiple heating zones optimizes power consumption and aerosol delivery by sequentially heating substrates to specific temperatures, addressing inefficiencies in existing technologies.
Patent Information
- Application Number
- JP2024095734
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-07-31
- Filing Date
- 2024-06-13
- Publication Date
- 2025-12-15
- Estimated Expiration
- 2039-07-31
AI Technical Summary
Existing aerosol-generating devices face inefficiencies in power consumption and aerosol delivery, particularly when using solid aerosolizable materials, as they often require prolonged heating times and can lead to condensation of volatile components.
The use of an aerosol-generating device with multiple heating zones that sequentially heat different portions of the aerosol-generating substrate to specific temperatures, including an aerosol-generating temperature, an intermediate temperature, and a minimum operating temperature, optimizing power consumption and preventing condensation.
This approach enhances aerosol delivery efficiency by rapidly generating aerosols while minimizing power consumption and preventing condensation, resulting in a better puff profile and improved user experience.
Smart Images

Figure 0007785852000001 
Figure 0007785852000002 
Figure 0007785852000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to the generation of aerosols. [Background technology]
[0002] Smoking articles, such as cigarettes and cigars, burn tobacco to produce tobacco smoke during use. Alternatives to these types of articles release compounds from a substrate material by heating without combustion, thereby emitting an inhalable aerosol or vapor. These are sometimes referred to as non-combustion smoking articles or aerosol-generating assemblies.
[0003] One example of such a product is a heating device that releases a compound by heating, but not burning, a solid aerosolizable material. The solid aerosolizable material, in some instances, may include tobacco material. The heating volatilizes at least one component of the material, typically forming an inhalable aerosol. These products are sometimes referred to as heat not burn devices, tobacco heating devices, or tobacco heating products. A variety of different configurations are known for volatilizing at least one component of a solid aerosolizable material.
[0004] Another example is an e-cigarette / tobacco heating product hybrid device, also known as an e-cigarette hybrid device. These hybrid devices include a liquid source (which may or may not contain nicotine) that is vaporized upon heating to produce an inhalable vapor or aerosol. The device further includes a solid aerosolizable material (which may or may not contain tobacco material), the components of which are entrained in the inhalable vapor or aerosol to produce an inhalation vehicle. Summary of the Invention
[0005] A first aspect of the present invention provides a method for generating an aerosol from an aerosol-generating substrate using an aerosol-generating device, wherein the aerosol-generating device comprises at least three heating zones arranged to respectively heat different portions of the aerosol-generating substrate to generate an aerosol without combustion. The method comprises sequentially generating an aerosol from each of the different portions of the aerosol-generating substrate, wherein during heating: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) another portion of the aerosol-generating substrate is heated to an intermediate temperature below the aerosol-generating temperature and about equal to or above the minimum operating temperature; (iii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Once aerosol is generated from one site, (a) the temperature of that site is reduced from the aerosol-generating temperature to the lowest operating temperature, (b) a site that was previously heated to an intermediate temperature is heated to the aerosol-generating temperature, and (c) an additional site is heated to the intermediate temperature.
[0006] A second aspect of the present invention provides an aerosol-generating device for generating an aerosol from an aerosol-generating substrate by heating the aerosol-generating substrate without combustion, the aerosol-generating device comprising at least three heating zones, each of which is arranged to heat a different portion of the aerosol-generating substrate. In use, the aerosol-generating device comprises: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) another portion of the aerosol-generating substrate is heated to an intermediate temperature below the aerosol-generating temperature and about equal to or above the minimum operating temperature; (iii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; When aerosol is generated from one site, (a) the temperature of that site is reduced from the aerosol-generating temperature to the lowest operating temperature, (b) a site that was preheated to an intermediate temperature is heated to the aerosol-generating temperature, and (c) a further site is heated to the intermediate temperature.
[0007] In a further aspect of the present invention, there is provided a variation of the above method and device, in which aerosol is generated sequentially from different portions of the substrate, from the most upstream portion to the most downstream portion (where upstream and downstream refer to the direction of aerosol flow in use). After aerosol is generated from one portion, (a) the temperature of that portion is reduced to ambient temperature (where no heat is provided to that portion), (b) a portion preheated to an intermediate temperature is heated to an aerosol-generating temperature, and (c) a further portion is heated to the intermediate temperature.
[0008] A further aspect of the present invention provides a method for generating an aerosol from an aerosol-generating substrate using an aerosol-generating device, wherein the aerosol-generating substrate comprises an amorphous solid material and the aerosol-generating device comprises at least two heating zones arranged to respectively heat different portions of the aerosol-generating substrate to generate an aerosol without combustion. The method comprises sequentially generating an aerosol from each of the different portions of the aerosol-generating substrate, wherein during heating: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Once aerosol is generated at one site, (a) the temperature of that site is reduced from the aerosol-generating temperature to the lowest operating temperature, and (b) an additional site is heated to the aerosol-generating temperature.
[0009] A further aspect of the present invention provides an aerosol-generating device for generating an aerosol from an aerosol-generating substrate by heating the aerosol-generating substrate without combustion, wherein the aerosol-generating substrate comprises an amorphous solid material, the aerosol-generating device comprising at least two heating zones, each of which is arranged to heat a different portion of the aerosol-generating substrate. The aerosol-generating device, in use, comprises: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; When aerosol is generated from one location, (a) the temperature of that location is reduced from the aerosol-generating temperature to a minimum operating temperature, and (b) a further location is heated to the aerosol-generating temperature.
[0010] In a further aspect of the present invention, there is provided a variation of the above method and device, in which aerosol is generated sequentially from different portions of the substrate, from the most upstream portion to the most downstream portion (where upstream and downstream refer to the direction of aerosol flow in use). Once aerosol is generated from one portion, (a) the temperature of that portion is reduced to ambient temperature (where no heat is provided to that portion), and (b) a further portion is heated to an aerosol-generating temperature.
[0011] The present invention also provides an aerosol generating assembly comprising an aerosol generating device according to the above aspect and an aerosol generating substrate.
[0012] A further aspect of the present invention provides the use of an aerosol generating device of an aerosol generating assembly in the generation of an inhalable aerosol.
[0013] Further features and advantages of the present invention will become apparent from the following description, which is given by way of example only and with reference to the accompanying drawings, in which: [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 shows an example of a heating profile for a device including three heating zones. [Figure 2] FIG. 1 shows an example of a heating profile for a device including five heating zones. [Figure 3] FIG. 10 shows another example of a heating profile for a device including three heating zones. [Figure 4] FIG. 10 shows another example of a heating profile for a device including three heating zones. [Figure 5] FIG. 1 shows an example of a heating profile for a device including five heating zones. DETAILED DESCRIPTION OF THE INVENTION
[0015] As mentioned above, the present invention provides a method for generating an aerosol from an aerosol-generating substrate using an aerosol-generating device, wherein the aerosol-generating device comprises at least three heating zones arranged to respectively heat different portions of the aerosol-generating substrate to generate an aerosol without combustion. The method comprises sequentially generating an aerosol from each of the different portions of the aerosol-generating substrate, wherein during heating: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) another portion of the aerosol-generating substrate is heated to an intermediate temperature below the aerosol-generating temperature and about equal to or above the minimum operating temperature; (iii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Once aerosol is generated from one site, (a) the temperature of that site is reduced from the aerosol-generating temperature to the lowest operating temperature, (b) a site that was previously heated to an intermediate temperature is heated to the aerosol-generating temperature, and (c) an additional site is heated to the intermediate temperature.
[0016] Throughout this specification, references to "at least one of the remaining portions" should be understood to expressly disclose the corresponding embodiment in which all of the remaining portions are referenced.
[0017] In a particular example, a method for generating an aerosol from an aerosol-generating substrate using an aerosol-generating device is provided, wherein the aerosol-generating device comprises at least three heating zones arranged to respectively heat different portions of the aerosol-generating substrate to generate an aerosol without combustion. The method comprises sequentially generating an aerosol from each of the different portions of the aerosol-generating substrate, wherein during heating: (iv) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (v) another portion of the aerosol-generating substrate is heated to an intermediate temperature below the aerosol-generating temperature but above the minimum operating temperature; (vi) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Once aerosol is generated from one site, (a) the temperature of that site is reduced from the aerosol-generating temperature to the lowest operating temperature, (b) a site that was previously heated to an intermediate temperature is heated to the aerosol-generating temperature, and (c) an additional site is heated to the intermediate temperature.
[0018] In certain instances, the intermediate temperature is above the minimum operating temperature. Typically, in these instances, at any given time, one site will be at the aerosol-generating temperature, one site will be at the intermediate temperature, and all other sites will be at the minimum operating temperature. However, when the last site is heated to the aerosol-generating temperature, all other sites will be at the minimum operating temperature (although there are exceptions to this typical profile, as shown in FIG. 4, which are within the scope of the claims).
[0019] The inventors have found that this heating profile provides good aerosol delivery to the user while optimizing power consumption: The minimum operating temperature ensures that the volatile / aerosolized components of the substrate are delivered to the user in the intended manner without condensation. The next site on the substrate to be aerosolized is heated to an intermediate temperature. In certain embodiments where the intermediate temperature is above the minimum operating temperature, this allows aerosol delivery from that site to begin more quickly than if the site were held at the minimum operating temperature. This is because the temperature difference between the aerosol generation temperature and the intermediate temperature is less than the temperature difference between the aerosol generation temperature and the minimum operating temperature. Rapid aerosol generation results in a better puff profile. Only the portion of the substrate being aerosolized is heated to the aerosol generation temperature, optimizing power consumption.
[0020] In some examples, the aerosol-generating temperature may be in the range of about 120°C to about 350°C, preferably about 150°C, 160°C, 180°C, or 200°C to about 300°C, 250°C, 230°C, 220°C, 200°C, or 180°C. In some examples, the aerosol-generating temperature may be about 190°C to about 300°C, or about 200°C to 280°C, or about 210°C to about 270°C, or about 220°C to about 260°C.
[0021] In some examples, the intermediate temperature may be in the range of about 50° C. to about 170° C., preferably in the range of about 90° C. or 100° C. to about 160° C. or 130° C. In some examples, the intermediate temperature may be in the range of about 30° C. to about 140° C., preferably in the range of about 50° C., 70° C., or 100° C. to about 130° C. or 120° C.
[0022] In some examples, the minimum operating temperature may be in the range of about 50° C. to about 170° C., preferably in the range of about 90° C. or about 100° C. to about 160° C. or about 130° C. In some examples, the minimum operating temperature may be in the range of about 30° C. to about 120° C., preferably in the range of about 35° C. or about 50° C. to about 100° C. or about 80° C.
[0023] In some instances, the minimum operating temperature is approximately equal to the midpoint temperature. In other instances, the minimum operating temperature is less than the midpoint temperature.
[0024] In some instances, different or separate portions of the substrate each provide the aerosol for one puff. In some instances, a change in the temperature of the heating zone may be initiated in response to a puff.
[0025] 1, a heating profile according to the present invention is shown for a device having three heating zones for heating three different regions of an aerosol-generating substrate: first, the first region is heated to an aerosol-generating temperature, the second region is heated to an intermediate temperature, and the third region is warmed to a minimum operating temperature.
[0026] The second section is then heated to an aerosol-generating temperature, the third section is heated to an intermediate temperature, and the first section is cooled to a minimum operating temperature.
[0027] Finally, the third section is heated to an aerosol-generating temperature while the first and second sections are held at a minimum operating temperature.
[0028] 2, a heating profile according to the present invention is shown for a device with five heating zones: first, the first region is heated to an aerosol-generating temperature, the second region is heated to an intermediate temperature, and the third, fourth, and fifth regions are warmed to a minimum operating temperature.
[0029] Subsequently, the second region is heated to an aerosol-generating temperature, the third region is heated to an intermediate temperature, and the first, fourth, and fifth regions are at the lowest operating temperature.
[0030] The third region is then heated to an aerosol-generating temperature, the fourth region is heated to an intermediate temperature, and the first, second, and fifth regions are at the lowest operating temperature.
[0031] The fourth region is then heated to an aerosol-generating temperature, the fifth region is heated to an intermediate temperature, and the first, second, and third regions are at the lowest operating temperature.
[0032] Finally, the fifth section is heated to an aerosol-generating temperature while the other sections are held at the lowest operating temperature.
[0033] The sequential heating pattern shown in these figures can be extended to any number of heating zones, although this is not shown.
[0034] In all figures, the minimum operating temperature for all parts is the same. The lines are slightly separated from each other, but this is only for ease of representation.
[0035] In some instances, each different or separate portion of the substrate provides aerosol for more than one puff.
[0036] Referring now to Figure 3, a heating profile according to the present invention is shown for a device with three heating zones that heat three different regions of the aerosol-generating substrate. Each region of the aerosol-generating substrate provides two puffs to the user. The heating profile shown in Figure 1 is effectively repeated twice, resulting in the heating zones reaching the aerosol-generating temperature in an ABCABC pattern. That is, first, the first region is heated to the aerosol-generating temperature, the second region is heated to an intermediate temperature, and the third region is warmed to the lowest operating temperature.
[0037] The second region is then heated to an aerosol-generating temperature, the third region is heated to an intermediate temperature, and the first region is cooled to a minimum operating temperature.
[0038] The third region is then heated to an aerosol-generating temperature while the first region is at an intermediate temperature and the second region is at a minimum operating temperature.
[0039] The first region is then heated to an aerosol-generating temperature, the second region is heated to an intermediate temperature, and the third region is at the lowest operating temperature.
[0040] The second region is then heated to an aerosol-generating temperature, the third region is heated to an intermediate temperature, and the first region is cooled to a minimum operating temperature.
[0041] Finally, the third region is heated to an aerosol-generating temperature while the first and second regions are at their minimum operating temperature.
[0042] Referring now to Figure 4, a heating profile according to the present invention is shown for a device with three heating zones that heat three different regions of the aerosol-generating substrate. Each region of the aerosol-generating substrate provides two puffs to the user. In contrast to the profile shown in Figure 3, these puffs are provided in an AABBCC pattern.
[0043] Two puffs can, of course, be provided from each site using the thermal profile shown in Figure 1. In the profile of Figure 4, the profile of Figure 1 is modified so that the temperature of the site providing the aerosol drops to an intermediate temperature between puffs. This improves heating efficiency and power consumption. Also, after the first puff is provided from the aerosol-generation site, subsequent sites to be heated are raised to an intermediate temperature. This also improves heating efficiency and power consumption.
[0044] In a variation of the above method, the present invention provides an alternative embodiment in which aerosol is generated sequentially from each of different locations on the substrate, from the most upstream location to the most downstream location (where upstream and downstream refer to the direction of aerosol flow in use). In this alternative, once aerosol is generated from one location, (a) the temperature of that location is reduced to ambient temperature (where no heat is provided to that location), (b) a location preheated to an intermediate temperature is heated to an aerosol-generation temperature, and (c) a further location is heated to the intermediate temperature. Such an embodiment is shown in Figure 5, which illustrates a variation of the embodiment shown in Figure 2.
[0045] In some instances, the substrate comprises an "amorphous solid." An amorphous solid is sometimes referred to as a "monolithic solid" (i.e., non-fibrous) or a "dry gel." An amorphous solid is a solid material that can retain some fluid, e.g., a liquid, within it. The amorphous solid may form part of the aerosol-forming material, and in some instances, the aerosol-forming material comprises from about 50%, 60%, or 70% to about 90%, 95%, or 100% by weight of the amorphous solid. In some instances, the aerosol-generating material consists of the amorphous solid.
[0046] The inventors have discovered that amorphous solids can provide rapid aerosol delivery and are particularly suitable for use with the heating profiles described herein. In traditional non-combustion heat-to-eat products and hybrid devices, solid tobacco-containing materials are heated, which are necessarily bulky and must be heated for extended periods of time to volatilize all components in order to provide sufficient aerosol delivery. In contrast, amorphous aerosol-generating solids can contain aerosolizable components at higher concentrations and thus can be incorporated as a thin layer of material, resulting in faster volatilization and therefore faster aerosol generation. For this reason, amorphous aerosol-generating solid materials are particularly suitable for use with heating profiles that heat a portion of the material to an aerosol-generating temperature over a relatively short period of time (e.g., the duration of a single puff).
[0047] In some instances, the amorphous solid is 1 to 60% by weight of a gelling agent, and / or 5 to 80% by weight of an aerosol-forming agent, and / or 0.1 to 60% by weight of at least one active substance and / or flavoring where these weights are calculated on a dry weight basis (DWB).
[0048] In some instances, the amorphous solid is 1 to 60% by weight of a gelling agent, and / or 5 to 80% by weight of an aerosol-forming agent, and / or 10-60% by weight tobacco extract where these weights are calculated on a dry weight basis (DWB).
[0049] The inventors have found that amorphous solids having these compositions can be efficiently heated to produce inhalable aerosols, further characteristics of which are discussed in more detail below.
[0050] As described above, the present invention provides an aerosol-generating device for generating an aerosol from an aerosol-generating substrate by heating the aerosol-generating substrate without combustion. The aerosol-generating device comprises at least three heating zones, each of which is arranged to heat a different portion of the aerosol-generating substrate. In use, the aerosol-generating device: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) another portion of the aerosol-generating substrate is heated to an intermediate temperature below the aerosol-generating temperature and about equal to or above the minimum operating temperature; (iii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; When aerosol is generated from one site, (a) the temperature of that site is reduced from the aerosol-generating temperature to the lowest operating temperature, (b) a site that was preheated to an intermediate temperature is heated to the aerosol-generating temperature, and (c) a further site is heated to the intermediate temperature.
[0051] The device may be configured or programmed to provide a heating profile according to the method aspects of the present invention.
[0052] In some instances, the device comprises 4, 5, 6, 7, 8 or 9 heating zones arranged so as to each heat a different portion of the aerosol-generating substrate during use.
[0053] In some instances, the device may include a puff sensor and a change in the temperature of the heating zone may be initiated in response to a puff.
[0054] In some instances, the device is configured to heat a solid aerosol-generating substrate.
[0055] The present invention also provides an aerosol generating assembly comprising the above-described aerosol generating device and an aerosol generating substrate.
[0056] In some instances, different sections of the aerosol-generating substrate (which are heated sequentially during use) each provide aerosol for one puff, and in some instances, each section provides aerosol for more than one puff (which may provide a more compact assembly).
[0057] In some instances, the aerosol-generating substrate comprises an amorphous solid.
[0058] In some examples, the aerosol-generating assembly may be a heat-not-burn device. That is, the aerosol-generating assembly may include a solid tobacco-containing material (and not a liquid aerosolizable material). In some examples, the amorphous solid may comprise a tobacco material. A heat-not-burn device is disclosed in WO 2015 / 062983 A2, the entirety of which is incorporated herein by reference.
[0059] In some examples, the aerosol-generating assembly may be an e-cigarette hybrid device. That is, the aerosol-generating assembly may include a solid aerosolizable material and a liquid aerosolizable material. In some examples, the amorphous solid may comprise nicotine. In some examples, the amorphous solid may comprise a tobacco material. In some examples, the amorphous solid may comprise a tobacco material and a separate nicotine source. These separate aerosolizable materials may be heated by separate heaters or the same heater, and in some examples, the downstream aerosolizable material may be heated by a hot aerosol generated from the upstream aerosolizable material. An e-cigarette hybrid device is disclosed in WO 2016 / 135331 A1, the entirety of which is incorporated herein by reference.
[0060] In some instances, the assembly may further comprise a filter and / or a cooling element. If present, the cooling element may act or function to cool the gaseous or aerosol components. In some instances, the cooling element may act to cool the gaseous components so that they condense to form an aerosol. The cooling element may also act to keep hot portions of the device away from the user. If present, the filter may comprise any suitable filter known in the art, such as a cellulose acetate plug.
[0061] In some examples, the device may have multiple heaters configured to heat the aerosolizable material without burning it. For example, there may be one heater per heating zone. In some examples, there may be 3, 4, 5, 6, 7, 8, 9, etc. heaters. In one example, there may be at least three heaters in the device. In such examples, the heaters may be the same type of heater or different types of heaters. The heaters may be, for example, electrical resistance heaters or induction heaters. Each heater may be a combustible heat source or a chemical heat source that generates heat via an exothermic reaction during use.
[0062] In some instances, during use, substantially all of the portions of the amorphous solid are less than about 4 mm, 3 mm, 2 mm, or 1 mm from the heater. In some instances, the portions of the solid are positioned between about 0.010 mm and 2.0 mm, preferably between about 0.02 mm and 1.0 mm, and preferably between 0.1 mm and 0.5 mm from the heater. These minimum distances may, in some instances, reflect the thickness of the carrier supporting the amorphous solid. In some instances, the surface of the amorphous solid may directly abut the heater.
[0063] The aerosol-generating assembly may further comprise vent holes, which may be provided in the filter and / or cooling element, that allow cool air to be drawn into the assembly during use, where it can mix with the heated volatile components, thereby cooling the aerosol.
[0064] Ventilation promotes the production of visible heated volatiles from the article when the article is heated during use. The heated volatiles are made visible by cooling the heated volatiles such that supersaturation of the heated volatiles occurs. The heated volatiles then undergo droplet formation (also known as nucleation), and ultimately, the size of the aerosol particles of the heated volatiles increases due to further condensation of the heated volatiles and coalescence of newly formed droplets from the heated volatiles.
[0065] In some instances, the ratio of cool air to the sum of heated volatiles and cool air (known as the ventilation ratio) is at least 15%. A ventilation ratio of 15% allows the heated volatiles to be visualized by the methods described above. The visibility of the heated volatiles allows the user to discern that volatiles are being produced, enhancing the sensory experience of the smoking experience.
[0066] In another example, the ventilation ratio is between 50% and 85% to further cool the heated volatile components. In some examples, the ventilation ratio may be at least 60% or 65%.
[0067] For the avoidance of doubt, the assembly may include a substrate arranged to be heated in situ by the device, or may include a substrate arranged in other ways. In some instances, the assembly may include a substrate located within the device, while in other instances the assembly may comprise a device and a separate substrate that is inserted into the device in use.
[0068] As mentioned above, the present invention provides another method for generating an aerosol from an aerosol-generating substrate using an aerosol-generating device, wherein the aerosol-generating substrate comprises an amorphous solid material, and the aerosol-generating device comprises at least two heating zones arranged to respectively heat different portions of the aerosol-generating substrate to generate an aerosol without combustion. The method comprises sequentially generating an aerosol from each of the different portions of the aerosol-generating substrate, wherein during heating: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Once aerosol is generated at one site, (a) the temperature of that site is reduced from the aerosol-generating temperature to the lowest operating temperature, and (b) an additional site is heated to the aerosol-generating temperature.
[0069] Typically, at any given time, one site is at the aerosol-generating temperature and all other sites are at their lowest operating temperature. The inventors have found that this heating profile optimizes power consumption while providing good aerosol delivery to the user. The minimum operating temperature ensures that the volatilized / aerosolized components of the substrate are delivered to the user in the intended manner without condensation. Warming the substrate to the minimum operating temperature allows aerosol delivery from the next volatilized site to begin more quickly than if the site were at ambient temperature. Rapid aerosol generation results in a better puff profile. Only the portion of the substrate being aerosolized is heated to the aerosol generation temperature, optimizing power consumption.
[0070] In some examples, the aerosol-generating temperature may be in the range of about 120°C to about 350°C, preferably about 150°C, 160°C, 180°C, or 200°C to about 300°C, 250°C, 230°C, 220°C, 200°C, or 180°C. In some examples, the aerosol-generating temperature may be in the range of about 190°C to about 300°C. In some examples, the aerosol-generating temperature may be in the range of about 230°C to about 250°C, preferably about 240°C.
[0071] In some examples, the minimum operating temperature may be in the range of about 30° C. to about 170° C., preferably about 35° C. or about 50° C. to about 160° C., 150° C., 100° C., or 80° C. In some examples, the minimum operating temperature may be in the range of about 30° C. to about 120° C., preferably about 30° C., 35° C., 40° C., or 50° C. to about 100° C., 80° C., 60° C., or 55° C.
[0072] In a variation of the above method, the present invention provides an alternative embodiment in which aerosol is generated sequentially from each of different locations on the substrate, from the most upstream location to the most downstream location (where upstream and downstream refer to the direction of aerosol flow in use). In this alternative, once aerosol is generated from one location, (a) the temperature of that location is reduced to ambient temperature (where no heat is provided to that location), and (b) a further location is heated to an aerosol-generation temperature.
[0073] For the avoidance of doubt, features described above in relation to other embodiments are expressly disclosed in combination with those embodiments, where compatible.
[0074] The present invention also provides an aerosol-generating device for generating an aerosol from an aerosol-generating substrate by heating the aerosol-generating substrate without combustion, wherein the aerosol-generating substrate comprises an amorphous solid material, the device comprising at least two heating zones, each of which is arranged to heat a different portion of the aerosol-generating substrate, and the device, in use, comprises: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; When aerosol is generated from one location, (a) the temperature of that location is reduced from the aerosol-generating temperature to a minimum operating temperature, and (b) a further location is heated to the aerosol-generating temperature.
[0075] For the avoidance of doubt, features described above in relation to other embodiments are expressly disclosed in combination with those embodiments, where compatible.
[0076] Composition and production of amorphous solid materials As noted above, in some instances the aerosol-generating substrate comprises an amorphous solid, which itself comprises: 1 to 60% by weight of a gelling agent, and / or 5 to 80% by weight of an aerosol-forming agent, and / or 0.1 to 60 wt. % of at least one active substance and / or flavoring, where these weights are calculated on a dry weight basis (DWB).
[0077] In some instances, the aerosol-generating substrate comprises an amorphous solid, which itself comprises: 1 to 60% by weight of a gelling agent, and / or 5 to 80% by weight of an aerosol-forming agent, and / or 10-60% by weight tobacco extract where these weights are calculated on a dry weight basis (DWB).
[0078] The amorphous solid may in some instances be a hydrogel and comprise less than about 20%, 15%, 12%, or 10% water by weight, calculated on a wet weight basis (WWB). In some instances, the amorphous solid may comprise at least about 1%, 2%, or 5% water by weight (WWB). The amorphous solid may comprise about 10% water by weight.
[0079] In some examples, the amorphous solid may comprise from about 1%, 5%, 10%, 15%, or 20% (by weight) to about 80%, 70%, 60%, 50%, 40%, 30%, or 25% (by weight) of gelling agent. For example, the amorphous solid may comprise 1-50%, 10-40%, 15-30%, or 20-25% (by weight) of gelling agent.
[0080] In some embodiments, the gelling agent comprises a hydrocolloid. In some embodiments, the gelling agent comprises one or more compounds selected from the group including alginate, pectin, starch (and derivatives), cellulose (and derivatives), gums, silica or silicone compounds, clay, polyvinyl alcohol, and combinations thereof. For example, in some embodiments, the gelling agent comprises one or more of alginate, pectin, hydroxyethyl cellulose, hydroxypropyl cellulose, carboxymethyl cellulose, pullulan, xanthan gum, guar gum, carrageenan, agarose, acacia gum, fumed silica, PDMS, sodium silicate, kaolin, and polyvinyl alcohol. In some examples, the gelling agent comprises alginate and / or pectin, which may be combined with a setting agent (such as a calcium source) during the formation of the amorphous solid. In some examples, the amorphous solid may comprise calcium-crosslinked alginate and / or calcium-crosslinked pectin.
[0081] In some embodiments, the gelling agent comprises alginate, and the alginate is present in the amorphous solid in an amount of 10-30% by weight (calculated on a dry weight basis) of the amorphous solid. In some embodiments, the alginate is the only gelling agent present in the amorphous solid. In other embodiments, the gelling agent comprises alginate and at least one additional gelling agent, such as pectin.
[0082] In some embodiments, the amorphous solid may include a gelling agent comprising carrageenan.
[0083] The amorphous solid may comprise from about 5%, 10%, 20%, 25%, 27%, or 30% by weight (DWB) to about 80%, 70%, 60%, 55%, 50%, 45%, 40%, or 35% by weight of the aerosol generating agent. The aerosol generating agent may act as a plasticizer. For example, the amorphous solid may comprise 10-60%, 25-40%, or 30-35% by weight of the aerosol generating agent. In some examples, the aerosol generating agent comprises one or more compounds selected from erythritol, propylene glycol, glycerol, triacetin, sorbitol, and xylitol. In some examples, the aerosol generating agent comprises, consists essentially of, or consists of glycerol. The inventors have found that if the plasticizer content is too high, the amorphous solid may absorb water (because the aerosol generating agent is hygroscopic), resulting in a material that does not produce a suitable consumption experience when used. The inventors have found that if the plasticizer content is too low, the amorphous solid may become brittle and easily break. The plasticizer content specified herein provides the amorphous solid with flexibility that allows the amorphous solid sheet to be wound onto a bobbin, which is useful for producing aerosol products.
[0084] In some instances, the amorphous solid further comprises an active substance. For example, in some instances, the amorphous solid further comprises tobacco material and / or nicotine. For example, the amorphous solid may further comprise powdered tobacco and / or nicotine and / or tobacco extract. In some instances, the amorphous solid may comprise from about 0.1%, 1%, 5%, 10%, 15%, 20%, or 25% to about 70%, 50%, 45%, or 40% by weight of the active substance (calculated on a dry weight basis).
[0085] The amorphous solid may comprise from about 1%, 10%, 20%, 30%, 40%, or 45% by weight (DWB) to about 50%, 55%, or 60% tobacco extract. For example, the amorphous solid may comprise 20-60%, 40-55%, or 45-50% tobacco extract. The tobacco extract may contain nicotine at a concentration such that the amorphous solid comprises from 1%, 1.5%, or 2% by weight to about 6%, 5%, 4%, or 3% nicotine (DWB). In some instances, no nicotine other than that obtained from the tobacco extract may be present in the amorphous solid.
[0086] In some instances, the tobacco extract may be an aqueous extract obtained by extraction with water. The tobacco extract may be an extract from any suitable tobacco, such as a single grade or blend, cut rag, or whole leaf, including Virginia and / or Burley and / or Oriental. It may also be an extract from tobacco particle "fines" or dust, expanded tobacco, petioles, expanded petioles, and other processed petiole materials (such as rolled cut petioles). The extract may be obtained from ground tobacco or reconstituted tobacco material.
[0087] In some examples, the amorphous solid may comprise a flavoring. Preferably, the amorphous solid may comprise up to about 60%, 50%, 40%, 30%, 20%, 10%, or 5% by weight of flavoring. In some examples, the amorphous solid may comprise at least about 0.1%, 0.5%, 1%, 2%, 5%, 10%, 20%, or 30% by weight of flavoring (all calculated on a dry weight basis). For example, the amorphous solid may comprise 0.1-60%, 1-60%, 5-60%, 10-60%, 20-50%, or 30-40% by weight of flavoring. In some examples, the flavoring (if present) comprises, consists essentially of, or consists of menthol. In some examples, the amorphous solid is free of flavoring.
[0088] In some instances, the total active and / or fragrance content may be at least about 0.1%, 1%, 5%, 10%, 20%, 25%, or 30% by weight, while in some instances the total active and / or fragrance content may be less than about 80%, 70%, 60%, 50%, or 40% by weight (all calculated on a dry weight basis).
[0089] In some embodiments, the amorphous solid comprises less than 60% by weight of filler, for example, between 1% and 60% by weight, or between 5% and 50% by weight, or between 5% and 30% by weight, or between 10% and 20% by weight of filler.
[0090] In other embodiments, the amorphous solid comprises less than 20% by weight of filler, preferably less than 10% by weight or less than 5% by weight, hi some instances, the amorphous solid comprises less than 1% by weight of filler, and in some instances, no filler.
[0091] When present, the filler may comprise one or more inorganic filler materials, such as calcium carbonate, perlite, vermiculite, diatomaceous earth, colloidal silica, magnesium oxide, magnesium sulfate, magnesium carbonate, and suitable inorganic adsorbents (such as molecular sieves). The filler may also comprise one or more organic filler materials, such as wood pulp, cellulose, and cellulose derivatives. In certain instances, the amorphous solid does not comprise calcium carbonate, such as chalk.
[0092] In certain embodiments that include a filler, the filler is fibrous. For example, the filler may be a fibrous organic filler material, such as wood pulp, hemp fiber, cellulose, or a cellulose derivative. Without wishing to be bound by theory, it is believed that including a fibrous filler in an amorphous solid may increase the tensile strength of the material. This may be particularly advantageous in instances where the amorphous solid is provided as a sheet, for example, when the amorphous solid sheet surrounds a rod of aerosolizable material.
[0093] In some embodiments, the amorphous solid does not comprise tobacco fiber. In certain embodiments, the amorphous solid does not comprise fibrous material.
[0094] In some embodiments, the aerosol-forming material does not comprise tobacco fiber. In certain embodiments, the aerosol-forming material does not comprise fibrous material.
[0095] In some embodiments, the aerosol-generating substrate does not comprise tobacco fibers. In certain embodiments, the aerosol-generating substrate does not comprise fibrous material.
[0096] In some embodiments, the aerosol product does not comprise tobacco fiber. In certain embodiments, the aerosol product does not comprise fibrous material.
[0097] In some examples, the amorphous solid in sheet form may have a tensile strength of about 200 N / m to about 900 N / m. In some examples, such as when the amorphous solid does not include a filler, the amorphous solid may have a tensile strength of 200 N / m to 400 N / m, or 200 N / m to 300 N / m, or about 250 N / m. Such tensile strengths may be particularly suitable for embodiments in which the aerosol-forming material is formed as a sheet, then shredded, and incorporated into an aerosol product. In some examples, such as when the amorphous solid includes a filler, the amorphous solid may have a tensile strength of 600 N / m to 900 N / m, or 700 N / m to 900 N / m, or about 800 N / m. Such tensile strengths may be particularly suitable for embodiments in which the aerosol-forming material is included in an aerosol product / assembly as a rolled sheet, preferably in the form of a tube.
[0098] The aerosol-forming material comprising an amorphous solid may have any suitable areal density, for example, 30 g / m 2 ~120g / m 2 In some embodiments, the aerosol-forming material may have a density of about 30 to 70 g / m 2 , or about 40 to 60 g / m 2In some embodiments, the amorphous solid may have an areal density of about 80-120 g / m 2 , or approximately 70 to 110 g / m 2 , or in particular about 90 to 110 g / m 2 Such areal densities may be particularly suitable when the aerosol-forming material is included in the aerosol product article / assembly in sheet form or as chopped sheets (discussed further below).
[0099] In some instances, the amorphous solid may consist essentially of or consist of a gelling agent, an aerosol-forming agent, a tobacco extract, water, and optionally a flavoring. In some instances, the amorphous solid may consist essentially of or consist of glycerol, alginate and / or pectin, a tobacco extract, and water.
[0100] In some instances, the aerosol-generating substrate may further comprise a carrier upon which the amorphous solid is disposed. The carrier may facilitate manufacturing and / or handling, for example, by (a) providing a surface onto which the slurry can be applied (e.g., by casting, spraying, or extrusion) (and from which the slurry does not subsequently need to be separated), (b) providing a non-stick surface for the aerosol-generating material, and (c) imparting some rigidity to the material.
[0101] In some examples, the carrier may be formed from a material selected from metal foil, paper, carbon paper, greaseproof paper, ceramic, carbon allotropes (e.g., graphite and graphene), plastic, cardboard, wood, or a combination thereof. In some examples, the carrier may be formed from a material selected from metal foil, paper, cardboard, wood, or a combination thereof. In some examples, the carrier itself is a laminated structure comprising multiple layers of materials selected from the foregoing list. In some examples, the carrier may be impregnated with flavorings or additional tobacco extracts.
[0102] In some instances, the carrier may be substantially or completely impermeable to gases and / or aerosols. This prevents the aerosol or gas from passing through the carrier during use, thereby controlling the flow and ensuring delivery of the aerosol or gas to the user. This may also be utilized to prevent condensation or other deposition of the gas / aerosol during use, for example, on the surface of a heater provided within the aerosol generating assembly. In this way, consumption efficiency and hygiene may be improved in some instances.
[0103] In some instances, the carrier in the aerosol product may comprise or consist of a porous layer in contact with the amorphous solid. For example, the porous layer may be a paper layer. In some specific instances, the amorphous solid is placed in direct contact with the porous layer, and the porous layer abuts the amorphous solid, forming a strong bond. The amorphous solid is formed by drying a gel, and, without being limited by theory, it is believed that the gel-forming slurry partially impregnates the porous layer (e.g., paper), such that the porous layer is partially bonded to the gel as the gel hardens and forms crosslinks. This results in a strong bond between the gel and the porous layer (and between the dried gel and the porous layer).
[0104] In addition, surface roughness can contribute to the strength of the bond between the amorphous material and the carrier. The inventors have found that the roughness of the paper (the surface in contact with the carrier) can be preferably in the range of 50 to 1000 Bekk seconds, preferably 50 to 150 Bekk seconds, preferably 100 Bekk seconds (measured over an air pressure range of 50.66 to 48.00 kPa). (The Bekk smoothness tester is an instrument used to measure the smoothness of paper surfaces. In this tester, air at a specific pressure is forced between a smooth glass surface and a paper sample. The time (in seconds) for a fixed volume of air to penetrate between these surfaces is the "Bekk smoothness.")
[0105] Conversely, the surface of the carrier that does not face the amorphous solid may be placed in contact with the heater, and the smoother surface may provide more efficient heat transfer. Thus, in some instances, the carrier is positioned to have a rougher side that abuts the amorphous material and a smoother side that does not face the amorphous material.
[0106] In one particular example, the carrier may be a paper-backed foil, where the paper layer abuts the amorphous solid layer, providing the properties discussed in the previous paragraphs. The foil backing is substantially impermeable and provides aerosol flow path control. The metal foil backing may also act to transfer heat to the amorphous solid.
[0107] In another example, a foil layer of a paper-backed foil abuts the amorphous solid, and the foil is substantially impermeable to prevent moisture provided in the amorphous solid from being absorbed into the paper, which could weaken the structural integrity of the paper.
[0108] In some examples, the carrier is formed from or comprises a metal foil (e.g., aluminum foil). A metallic carrier may allow for better transfer of thermal energy to the amorphous solid. Additionally, or alternatively, the metal foil may function as a susceptor in an induction heating system. In certain embodiments, the carrier comprises a metal foil layer and a support layer (e.g., cardboard). In these embodiments, the metal foil layer may have a thickness of less than 20 μm, for example, from about 1 μm to about 10 μm, preferably about 5 μm.
[0109] In some instances, the carrier may be magnetic. This feature may be used to secure the carrier to an assembly during use or to generate a particular amorphous solid form. In some instances, the aerosol-generating substrate may include one or more magnets that can be used to secure the substrate to an induction heater during use.
[0110] In some instances, the aerosol-generating substrate may comprise a heating means, such as a resistive or inductive heating element, embedded in the amorphous solid.
[0111] In some instances, the amorphous solid may have a thickness of about 0.015 mm to about 1.0 mm. Preferably, the thickness may range from about 0.05 mm, 0.1 mm, or 0.15 mm to about 0.5 mm or 0.3 mm. The inventors have found that materials having a thickness of 0.2 mm are particularly suitable. The amorphous solid may comprise two or more layers, and the thicknesses described herein refer to the combined thickness of these layers.
[0112] The inventors have found that if the amorphous solid is too thick, heating efficiency and aerosol delivery are compromised, which negatively impacts power consumption during use. Conversely, if the amorphous solid is too thin, it is difficult to manufacture and handle. That is, very thin materials are more difficult to cast and are prone to breaking, which can impair aerosol formation during use.
[0113] The inventors have found that the thickness of the amorphous solid defined herein optimizes material properties taking into account these competing considerations. The thickness defined herein is the average thickness of the material. In some instances, the thickness of the amorphous solid may vary by 25%, 20%, 15%, 10%, 5%, or 1% or less.
[0114] The amorphous solid may be incorporated into the aerosol-generating substrate as a single monolith, with different sections being heated separately. In some such instances, the amorphous solid may be in sheet form.
[0115] In instances where the amorphous solid is in sheet form, the amorphous solid may be included as a flat sheet, as a pleated or gathered sheet, as a corrugated sheet, or as a rolled sheet (i.e., in the form of a tube). In some such instances, the amorphous solid of these embodiments may be included in an aerosol product article / assembly as a sheet, for example, as a sheet surrounding a rod of aerosolizable material (such as tobacco). In other instances, the aerosol-forming material may be formed as a sheet and then shredded and incorporated into an article. In some instances, the shredded sheet may be mixed with cut rag tobacco and incorporated into an article.
[0116] In another example, the amorphous solid may be incorporated into a plurality of separate sites in the aerosol-generating substrate, with each site being located within a separate heating zone.
[0117] The amorphous solid material may be made by a method comprising the steps of: (a) forming a slurry comprising the components of the amorphous solid material; (b) forming a layer of the slurry; (c) setting the slurry to form a gel; and (d) drying the gel to form the amorphous solid.
[0118] Step (b) of forming the layer of slurry may include, for example, spraying, casting, or extruding the slurry. In some examples, the layer is formed by electrostatically spraying the slurry. In some examples, the layer is formed by casting the slurry.
[0119] In some instances, steps (b) and / or (c) and / or (d) may occur at least partially simultaneously (e.g., during electrostatic spraying). In some instances, these steps may occur sequentially.
[0120] In some instances, step (c) of hardening the gel may include adding a hardening agent to the slurry. For example, the slurry may comprise sodium alginate, potassium alginate, or ammonium alginate as a gelling agent, and a hardening agent comprising a calcium source (e.g., calcium chloride) may be added to the slurry to form a calcium alginate gel.
[0121] The total amount of hardening agent, e.g., calcium source, may be 0.5 to 5 wt. % (calculated on a dry weight basis). The inventors have found that adding too little hardening agent may result in an amorphous solid that does not stabilize the amorphous solid components, causing these components to detach from the amorphous solid. The inventors have found that adding too much hardening agent results in an amorphous solid that is very sticky and therefore difficult to handle.
[0122] However, in some instances, a stiffening agent is not necessary because the tobacco extract may contain enough calcium to cause gelation.
[0123] Alginate is a derivative of alginic acid and is typically a high molecular weight polymer (10-600 kDa). Alginic acid is a copolymer of β-D-mannuronic acid (M) and α-L-guluronic acid (G) units (blocks) linked by (1,4)-glycosidic bonds to form a polysaccharide. Upon addition of calcium cations, alginate crosslinks to form a gel. The inventors have determined that alginate with a high G monomer content more readily forms a gel upon addition of a calcium source. Thus, in some examples, the gel precursor may comprise an alginate in which at least about 40%, 45%, 50%, 55%, 60%, or 70% of the monomer units in the alginate copolymer are α-L-guluronic acid (G) units.
[0124] The slurry itself may also form part of the present invention. In some instances, the slurry solvent may consist essentially of or consist of water. In some instances, the slurry may comprise about 50%, 60%, 70%, 80%, or 90% or more by weight (WWB) of solvent.
[0125] In some examples, the slurry has a viscosity of about 10 to about 20 Pa·s at 46.5°C, such as a viscosity of about 14 to about 16 Pa·s at 46.5°C.
[0126] In instances where the solvent comprises water, the dry weight content of the slurry may match the dry weight content of the amorphous solids. Thus, discussion herein of the composition of solids is expressly disclosed in conjunction with the slurry aspect of the invention.
[0127] Exemplary Embodiments of Amorphous Solids In some embodiments, the amorphous solid comprises menthol.
[0128] Certain embodiments comprising menthol-containing amorphous solids may be particularly suitable for inclusion as shredded sheets in an aerosol product / assembly. In these embodiments, the amorphous solids may have the following composition (DWB): gelling agent (preferably comprising alginate, more preferably comprising a combination of alginate and pectin) in an amount of about 20% to about 40%, or about 25% to 35% by weight (DWB), menthol in an amount of about 35% to about 60%, or about 40% to 55% by weight, and aerosol generating agent (preferably comprising glycerol) in an amount of about 10% to about 30%, or about 15% to about 25% by weight.
[0129] In one embodiment, the amorphous solid comprises (DWB) about 32-33% by weight of an alginate / pectin gelling agent blend, about 47-48% by weight of a menthol flavoring, and about 19-20% by weight of a glycerol aerosol forming agent.
[0130] As noted above, the amorphous solid of these embodiments may be included in the aerosol product article / assembly as a shredded sheet. The shredded sheet may be blended with cut tobacco and provided in the article / assembly. Alternatively, the amorphous solid may be provided as an unshredded sheet. Suitably, the shredded or unshredded sheet has a thickness of about 0.015 mm to about 1 mm, preferably about 0.02 mm to about 0.07 mm.
[0131] Certain embodiments of the menthol-containing amorphous solid may be particularly suitable for inclusion in an aerosol product / assembly as a sheet, such as a sheet surrounding a rod of aerosolizable material (such as tobacco). In these embodiments, the amorphous solid may have the following composition (DWB): (DWB) gelling agent (preferably comprising alginate, more preferably a combination of alginate and pectin) in an amount of about 5% to about 40%, or about 10% to 30% by weight; menthol in an amount of about 10% to about 50%, or about 15% to 40% by weight; aerosol-forming agent (preferably comprising glycerol) in an amount of about 5% to about 40%, or about 10% to about 35% by weight; and optionally, filler in an amount up to 60% by weight (e.g., 5% to 20%, or 40% to 60% by weight).
[0132] In one of these embodiments, the amorphous solid comprises (DWB) about 11% by weight alginate / pectin gelling agent blend, about 56% by weight wood pulp filler, about 18% menthol flavoring, and about 15% by weight glycerol.
[0133] In another of these embodiments, the amorphous solid comprises (DWB) about 22% by weight alginate / pectin gelling agent blend, about 12% by weight wood pulp filler, about 36% menthol flavoring, and about 30% by weight glycerol.
[0134] As noted above, the amorphous solid of these embodiments may be included as a sheet. In one embodiment, the sheet is disposed on a carrier comprising paper. In one embodiment, the sheet is disposed on a carrier comprising metal foil, preferably aluminum metal foil. In this embodiment, the amorphous solid may abut against the metal foil.
[0135] In one embodiment, the sheet forms part of a laminate material with layers (preferably comprising paper) attached to the top and bottom of the sheet. Suitably, the sheet of amorphous solid has a thickness of from about 0.015 mm to about 1 mm.
[0136] In some embodiments, the amorphous solid comprises a flavoring that does not comprise menthol. In these embodiments, the amorphous solid may have the following composition (DWB): a gelling agent (preferably comprising alginate) in an amount of about 5 to about 40 wt %, or about 10 to about 35 wt %, or about 20 to about 35 wt % (DWB); a flavoring agent in an amount of about 0.1 to about 40 wt %, about 1 to about 30 wt %, about 1 to about 20 wt %, or about 5 to about 20 wt %; an aerosol-forming agent (preferably comprising glycerol) in an amount of 15 to 75 wt %, about 30 to about 70 wt %, or about 50 to about 65 wt %; and optionally a filler (suitably wood pulp) in an amount of about 60 wt %, about 20 wt %, about 10 wt %, or less than about 5 wt % (preferably, the amorphous solid is filler-free).
[0137] In one of these embodiments, the amorphous solid comprises (DWB) about 27% by weight alginate gelling agent, about 14% by weight flavoring, and about 57% by weight glycerol aerosol forming agent.
[0138] In another of these embodiments, the amorphous solid comprises (DWB) about 29% by weight alginate gelling agent, about 9% by weight flavoring, and about 60% by weight glycerol.
[0139] The amorphous solids of these embodiments may be included in the aerosol product / assembly as shredded sheets, optionally blended with cut tobacco. Alternatively, the amorphous solids of these embodiments may be included in the aerosol product / assembly as sheets, such as sheets surrounding a rod of aerosolizable material (such as tobacco). Alternatively, the amorphous solids of these embodiments may be included in the aerosol product / assembly as a layer portion disposed on a carrier.
[0140] In some embodiments, the amorphous solid comprises tobacco extract. In these embodiments, the amorphous solid may have the following composition (DWB): a gelling agent (preferably comprising alginate) in an amount of about 5% to about 40%, about 10% to about 30%, or about 15% to about 25% by weight (DWB); a tobacco extract in an amount of about 30% to about 60%, about 40% to about 55%, or about 45% to about 50% by weight; and an aerosol-forming agent (preferably comprising glycerol) in an amount of about 10% to about 50%, about 20% to about 40%, or about 25% to about 35% by weight.
[0141] In one embodiment, the amorphous solid comprises (by weight on a DWB basis) about 20% alginate gelling agent, about 48% Virginia tobacco extract, and about 32% glycerol.
[0142] The amorphous solid of these embodiments may have any suitable water content, for example, from about 5% to about 15% by weight, or from about 7% to about 13% by weight, or about 10% by weight.
[0143] The amorphous solid of these embodiments may be included in the aerosol product / assembly as a shredded sheet, optionally blended with cut tobacco. Alternatively, the amorphous solid of these embodiments may be included in the aerosol product / assembly as a sheet, for example, a sheet surrounding a rod of aerosolizable material (such as tobacco). Alternatively, the amorphous solid of these embodiments may be included in the aerosol product / assembly as a layer disposed on a carrier. Preferably, in any of these embodiments, the amorphous solid has a thickness of about 50 μm to about 200 μm, or about 50 μm to about 100 μm, or about 60 μm to about 90 μm, preferably about 77 μm.
[0144] The slurry for forming the amorphous solid may also form part of the present invention. In some examples, the slurry may have an elastic modulus (also called storage modulus) of about 5 to 1200 Pa, and in some examples, the slurry may have a viscous modulus (also called loss modulus) of about 5 to 600 Pa.
[0145] definition As used herein, an active substance is a bioactive material, i.e., a material for achieving or enhancing a physiological response. The active substance may be selected from, for example, functional foods, nootropics, and psychoactive substances. The active substance may be naturally occurring or synthetically derived. The active substance may comprise, for example, nicotine, caffeine, taurine, theine, vitamins (such as B6, B12, C), melatonin, cannabinoids, or components, derivatives, or combinations thereof. The active substance may comprise one or more components, derivatives, or extracts of tobacco, cannabis, or other botanical materials.
[0146] In some embodiments, the active substance comprises nicotine.
[0147] In some embodiments, the active agent comprises caffeine, melatonin, or vitamin B12.
[0148] As described herein, the active substance may comprise one or more components, derivatives or extracts of cannabis, such as one or more cannabinoids or terpenes.
[0149] Cannabinoids are a class of natural or synthetic compounds that act on intracellular cannabinoid receptors (i.e., CB1 and CB2) that inhibit neurotransmitter release in the brain. Cannabinoids can be found naturally in plants such as cannabis (phytocannabinoids), from animals (endocannabinoids), or artificially produced (synthetic cannabinoids). Cannabis species exhibit at least 85 different phytocannabinoids, divided into several subcategories. These subcategories include cannabigerol, cannabichromene, cannabidiol, tetrahydrocannabinol, cannabinol, and cannabinodiol, as well as other cannabinoids. Cannabinoids found in cannabis include, but are not limited to, cannabigerol (CBG), cannabichromene (CBC), cannabidiol (CBD), tetrahydrocannabinol (THC), cannabinol (CBN), cannabinodiol (CBDL), cannabicyclol (CBL), cannabivarin (CBV), tetrahydrocannabivarin (THCV), cannabidivarin (CBDV), cannabichromevarin (CBCV), cannabigerovarin (CBGV), cannabigerol monomethyl ether (CBGM), cannabinerolic acid, cannabidiolic acid (CBDA), cannabinol propyl variant (CBNV), cannabiditriol (CBO), tetrahydrocannabinolic acid (THCA), and tetrahydrocannabivarinic acid (THCV A).
[0150] As described herein, the active agent may comprise or be derived from one or more botanical materials or components, derivatives, or extracts thereof. As used herein, the term "botanical material" includes any material derived from a plant, including, but not limited to, extracts, leaves, bark, fiber, stems, roots, seeds, flowers, fruits, pollen, husks, peels, etc. Alternatively, the material may comprise an active compound naturally occurring in the plant material or synthetically obtained. The material may be in the form of a liquid, gas, solid, powder, dust, crushed particles, granules, pellets, fragments, shreds, sheets, etc. Examples of botanical ingredients include tobacco, eucalyptus, star anise, hemp, cacao, cannabis, fennel, lemongrass, peppermint, spearmint, rooibos, chamomile, flax, ginger, ginkgo biloba extract, hazel, hibiscus, bay leaf, licorice, matcha, yerba mate, orange peel, papaya, rose, sage, tea (green tea, black tea, etc.), thyme, cloves, cinnamon, coffee, aniseed, basil, bay leaf, cardamom, coriander, cumin, nutmeg, oregano, paprika, rosemary, saffron, and lavender. , lemon peel, mint, juniper, elderflower, vanilla, wintergreen, shiso, turmeric, sandalwood, cilantro, bergamot, orange blossom, myrtle, blackcurrant, valerian, pimento, mace, damiana, marjoram, olive, lemon balm, lemon basil, chives, Calvi, verbena, tarragon, geranium, mulberry, ginseng, theanine, theacrine, maca, ashwagandha, damiana, guarana, chlorophyll, baobab, or any combination thereof.The mint may be selected from the following mint varieties: common mint (Mentha arvensis), grapefruit mint (Mentha cv), Egyptian mint (Mentha niliaca), peppermint (Mentha piperita), lime mint (Mentha piperita citrata cv), chocolate mint (Menthapiperita cv), curly mint (Mentha spicata crispa), wild mint (Mentha cordifolia), horse mint (Mentha longifolia), pineapple mint (Mentha suaveolens variegata), pennyroyal mint (Menthapulegium), English spearmint (Mentha spicata cv), and apple mint (Mentha suaveolens).
[0151] In some embodiments, the plant material is selected from eucalyptus, star anise, cocoa, and hemp.
[0152] In some embodiments, the plant material is selected from rooibos and fennel.
[0153] As used herein, the terms "flavoring" and "flavoring agent" refer to materials that can be used to create a desired taste, aroma, or other somatic sensation in products for adult consumers, where local regulations permit. They include naturally occurring flavoring materials, botanical materials, extracts of botanical materials, synthetically derived materials, or combinations thereof (e.g., tobacco, cannabis, licorice, hydrangea, eugenol, magnolia leaf, chamomile, fenugreek, clove, maple, matcha, menthol, Japanese mint, aniseed (aniseed), cinnamon, turmeric, Indian spice, Asian spice, herb, wintergreen, cherry, berry, red berry, cranberry, peach, apple, orange, mango, etc.). , clementine, lemon, lime, tropical fruits, papaya, rhubarb, grapes, durian, dragon fruit, cucumber, blueberry, mulberry, citrus fruits, Drambuie, bourbon, scotch, whiskey, gin, tequila, rum, spearmint, peppermint, lavender, aloe vera, cardamom, celery, cascarilla, nutmeg, sandalwood, bergamot, geranium, khat, naswar, betel, sheesh Shisha, pineapple, honey essence, rose oil, vanilla, lemon oil, orange oil, orange blossom, cherry blossom, cassia, caraway, cognac, jasmine, ylang-ylang, sage, fennel, wasabi, bell pepper, ginger, coriander, coffee, hemp, mint oil from any species of mint, eucalyptus, star anise, cacao, lemongrass, rooibos, flax, ginkgo, hazel, hibiscus, laurel, yerba mate, orange peel, rose, tea (green tea, black tea, etc.), Thai citric acid, citric acid, citric acid, citric acid salts ...They may contain artificial, synthetic, or natural ingredients, or blends thereof. They may be in any suitable form, for example, liquid (such as an oil), solid (such as a powder), or gas.
[0154] The flavoring may suitably comprise one or more mint flavors, suitably mint oil from any species of the mint genus. The flavoring may suitably comprise, consist essentially of, or consist of menthol.
[0155] In some embodiments, the flavoring comprises menthol, spearmint, and / or peppermint.
[0156] In some embodiments, the flavoring comprises cucumber, blueberry, citrus fruit, and / or red berry flavor components.
[0157] In some embodiments, the fragrance comprises eugenol.
[0158] In some embodiments, the flavoring comprises flavor components extracted from tobacco.
[0159] In some embodiments, the flavoring comprises flavor components extracted from cannabis.
[0160] In some embodiments, the flavoring agent may comprise a sensory agent intended to achieve somatic sensations typically chemically induced and perceived by stimulating the fifth cranial nerve (trigeminal nerve) in addition to, or instead of, the olfactory or gustatory nerves, and these may include agents that provide a heating, cooling, tingling, or numbing effect. Suitable heating agents may be, but are not limited to, vanillyl ethyl ether, and suitable cooling agents may be, but are not limited to, eucalyptol or WS-3.
[0161] As used herein, the term "aerosol-generating agent" refers to an agent that facilitates the generation of an aerosol. The aerosol-generating agent may facilitate the generation of an aerosol by facilitating the initial volatilization and / or condensation of a gas into an inhalable solid and / or liquid aerosol.
[0162] Suitable aerosol generating agents include, but are not limited to, polyols, such as erythritol, sorbitol, glycerol, and glycols such as propylene glycol and triethylene glycol, as well as non-polyols, such as monohydric alcohols, high-boiling hydrocarbons, acids (such as lactic acid), glycerol derivatives, esters (such as diacetin, triacetin, triethylene glycol diacetate, triethyl citrate, or myristates (including ethyl myristate and isopropyl myristate)), and aliphatic carboxylic acid esters (such as methyl stearate, dimethyl dodecanedioate, and dimethyl tetradecanedioate). The aerosol generating agent may preferably have a composition that does not dissolve menthol. The aerosol generating agent may preferably comprise, consist essentially of, or consist of glycerol.
[0163] As used herein, the term "tobacco material" refers to any material comprising tobacco or a derivative thereof. The term "tobacco material" may include one or more of tobacco, tobacco derivatives, expanded tobacco, reconstituted tobacco, or tobacco substitutes. The tobacco material may comprise one or more of ground tobacco, tobacco fiber, cut tobacco, extruded tobacco, tobacco stem, reconstituted tobacco, and / or tobacco extract.
[0164] The tobacco used to make the tobacco material may be any suitable tobacco, such as a single grade or blend, cut rag, or whole leaf, including Virginia and / or Burley and / or Oriental. It may also be tobacco particle "fines" or dust, expanded tobacco, petioles, expanded petioles, and other processed petiole materials (such as rolled cut petioles). The tobacco material may be ground tobacco or reconstituted tobacco material. The reconstituted tobacco material may comprise tobacco fiber and may be formed by casting, a Fourdrinier approach with back-addition of tobacco extract, or extrusion.
[0165] All weight percentages (indicated as wt. %) described herein are calculated on a dry weight basis unless otherwise specified. All weight ratios are also calculated on a dry weight basis. Weights indicated on a dry weight basis refer to the total extract, slurry, or material except for water, and may include components that are liquids themselves at room temperature and pressure, such as glycerol. Conversely, weight percentages indicated on a wet weight basis refer to all components, including water.
[0166] Features disclosed herein in connection with one aspect of the invention are expressly disclosed in combination with each of the other aspects, where compatible.
[0167] For the avoidance of doubt, where the term "comprising" is used herein in defining the invention or features of the invention, embodiments are also disclosed in which the invention or features may be defined using the terms "consisting essentially of" or "consisting of" instead of "comprising." Reference to a material "comprising" certain features means that those features are contained in, contained in, or retained within the material.
[0168] The above-described embodiments should be understood as illustrative of the present invention. It should be understood that any feature described in connection with any one embodiment may be used alone or in combination with other features described, and may also be used in combination with one or more features of any other embodiment or any combination of any other embodiments. Furthermore, equivalents and modifications not described above may also be employed without departing from the scope of the present invention, as defined in the appended claims.
Claims
1. 1. A method for generating an aerosol from an aerosol-generating substrate using an aerosol-generating device, the aerosol-generating substrate comprising an amorphous solid, the aerosol-generating device comprising at least two heating zones arranged to heat different portions of the aerosol-generating substrate to generate an aerosol without combustion, sequentially generating an aerosol from each of different portions of the aerosol-generating substrate, wherein during heating: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Upon generation of aerosol from one location, (a) the temperature of the location is reduced from the aerosol-generation temperature to the minimum operating temperature, and (b) an additional location is heated to the aerosol-generation temperature; the amorphous solid comprises less than 20% by weight of water calculated on a wet weight basis; the amorphous solid has a thickness of 0.015 mm to 1.0 mm; The method wherein the amorphous solid comprises a fibrous organic filler.
2. 1. A method for generating an aerosol from an aerosol-generating substrate using an aerosol-generating device, the aerosol-generating substrate comprising an amorphous solid, the aerosol-generating device comprising at least three heating zones arranged to heat different portions of the aerosol-generating substrate to generate an aerosol without combustion, sequentially generating an aerosol from each of different portions of the aerosol-generating substrate, wherein during heating: (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) another portion of the aerosol-generating substrate is heated to an intermediate temperature that is lower than the aerosol-generating temperature and approximately equal to the minimum operating temperature; (iii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Upon aerosol generation from one site, (a) the temperature of the site is reduced from the aerosol-generating temperature to the minimum operating temperature, (b) a site preheated to the intermediate temperature is heated to the aerosol-generating temperature, and (c) an additional site is heated to the intermediate temperature; the amorphous solid comprises less than 20% by weight of water calculated on a wet weight basis; the amorphous solid has a thickness of 0.015 mm to 1.0 mm; The method wherein the amorphous solid comprises a fibrous organic filler.
3. 3. The method of claim 1, wherein each of the different portions of the aerosol-generating substrate is heated to the aerosol-generating temperature for the duration of one puff.
4. The amorphous solid is 1 to 60 wt. % of a gelling agent; 5 to 80% by weight of an aerosol-forming agent; 0.1 to 60% by weight of at least one active substance and / or flavoring; 4. The method of claim 1, wherein the weights are calculated on a dry weight basis.
5. 5. The method according to any one of claims 1 to 4, wherein the amorphous solid comprises at least one active substance in an amount of 5 to 50% by weight, calculated on a dry weight basis.
6. 6. The method of claim 5, wherein the amorphous solid comprises at least one active substance in an amount of 10 to 40% by weight, calculated on a dry weight basis.
7. 7. The method of claim 5 or 6, wherein the at least one active substance and / or flavoring is nicotine.
8. 8. The method of any one of claims 1 to 7, wherein the amorphous solid does not comprise tobacco fiber.
9. The aerosol-generating substrate is 30 g / m 2 ~120g / m 2 The method according to any one of claims 1 to 8, wherein the surface density is
10. 10. The method of claim 1, wherein the aerosol-generating substrate further comprises a carrier on which the amorphous solid is disposed.
11. The method of claim 10 , wherein the carrier comprises a metal foil.
12. The method of claim 10, wherein the carrier is a paper-backed foil.
13. The method of claim 10 , wherein the carrier comprises a layer of metal foil and a support layer.
14. 14. The method of claim 11 or 13, wherein the metal foil is configured to function as a susceptor in an induction heating system.
15. A method according to any preceding claim, wherein the aerosol-generating substrate comprises heating means embedded in the amorphous solid.
16. 11. The method of claim 10, wherein the amorphous solid is a rolled sheet in the form of a tube, and the surface of the carrier not facing the amorphous solid is placed in contact with a heater.
17. 17. A method according to any one of the preceding claims, wherein the amorphous solid is incorporated into the aerosol-generating substrate as a single monolith, different portions of which are heated separately.
18. 17. A method according to any one of claims 1 to 16, wherein the amorphous solid is incorporated into the aerosol-generating substrate as a plurality of separate sites, each of the plurality of separate sites being located within a separate heating zone.
19. an aerosol-generating device for generating an aerosol from an aerosol-generating substrate by heating the aerosol-generating substrate without combustion; an aerosol-generating substrate; 1. An aerosol generating assembly comprising: the aerosol-generating substrate comprises an amorphous solid, and the aerosol-generating device comprises at least two heating zones, each of the heating zones being arranged to heat a different portion of the aerosol-generating substrate; The aerosol generating device, in use, (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Upon generation of aerosol from one location, (a) the temperature of that location is reduced from the aerosol-generating temperature to the minimum operating temperature, and (b) a further location is heated to the aerosol-generating temperature; the amorphous solid comprises less than 20% by weight of water calculated on a wet weight basis; the amorphous solid has a thickness of 0.015 mm to 1.0 mm; The aerosol generating assembly, wherein the amorphous solid comprises a fibrous organic filler.
20. an aerosol-generating device for generating an aerosol from an aerosol-generating substrate by heating the aerosol-generating substrate without combustion; an aerosol-generating substrate; 1. An aerosol-generating assembly comprising: an aerosol-generating substrate comprising an amorphous solid; and an aerosol-generating device comprising at least three heating zones, each of the heating zones being arranged to heat a different portion of the aerosol-generating substrate; The aerosol generating device, in use, (i) a portion of the aerosol-generating substrate is heated to an aerosol-generating temperature; (ii) another portion of the aerosol-generating substrate is heated to an intermediate temperature that is lower than the aerosol-generating temperature and approximately equal to the minimum operating temperature; (iii) at least one of the remaining portions of the aerosol-generating substrate is heated to a minimum operating temperature at least sufficient to prevent condensation of volatile components on or near that portion; Upon aerosol generation from one location, (a) the temperature of the location is reduced from the aerosol-generating temperature to the minimum operating temperature, (b) a location preheated to the intermediate temperature is heated to the aerosol-generating temperature, and (c) a further location is heated to the intermediate temperature; the amorphous solid comprises less than 20% by weight of water calculated on a wet weight basis; the amorphous solid has a thickness of 0.015 mm to 1.0 mm; The aerosol generating assembly, wherein the amorphous solid comprises a fibrous organic filler.
21. 21. An aerosol generating assembly as described in claim 19 or 20, further comprising a vent configured to allow cool air to be drawn into the aerosol generating assembly, wherein the cool air can mix with the heated volatile components, thereby cooling the aerosol.
22. 22. The aerosol generating assembly of claim 21, having a ventilation ratio of at least 15%.
Citation Information
Patent Citations
Using smoking articles and inhalants to provide smoking articles
JP2014525237A
Heating of smoking materials
JP2014525251A
Apparatus for heating aerosol-generating material
JP2018504127A
Article for generating an inhalable medium and method of heating a smokable material
WO2017186946A1
Electrically operated aerosol-generating system with tubular aerosol-generating article having improved airflow
WO2017207674A1