EP4604748A1 - An aerosol-generating material in the form of one or more non-linear strands - Google Patents
An aerosol-generating material in the form of one or more non-linear strandsInfo
- Publication number
- EP4604748A1 EP4604748A1 EP23793831.1A EP23793831A EP4604748A1 EP 4604748 A1 EP4604748 A1 EP 4604748A1 EP 23793831 A EP23793831 A EP 23793831A EP 4604748 A1 EP4604748 A1 EP 4604748A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- aerosol
- generating
- generating material
- strands
- composition
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24B—MANUFACTURE OR PREPARATION OF TOBACCO FOR SMOKING OR CHEWING; TOBACCO; SNUFF
- A24B15/00—Chemical features or treatment of tobacco; Tobacco substitutes, e.g. in liquid form
- A24B15/10—Chemical features of tobacco products or tobacco substitutes
- A24B15/16—Chemical features of tobacco products or tobacco substitutes of tobacco substitutes
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24B—MANUFACTURE OR PREPARATION OF TOBACCO FOR SMOKING OR CHEWING; TOBACCO; SNUFF
- A24B15/00—Chemical features or treatment of tobacco; Tobacco substitutes, e.g. in liquid form
- A24B15/10—Chemical features of tobacco products or tobacco substitutes
- A24B15/12—Chemical features of tobacco products or tobacco substitutes of reconstituted tobacco
- A24B15/14—Chemical features of tobacco products or tobacco substitutes of reconstituted tobacco made of tobacco and a binding agent not derived from tobacco
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24B—MANUFACTURE OR PREPARATION OF TOBACCO FOR SMOKING OR CHEWING; TOBACCO; SNUFF
- A24B15/00—Chemical features or treatment of tobacco; Tobacco substitutes, e.g. in liquid form
- A24B15/18—Treatment of tobacco products or tobacco substitutes
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24B—MANUFACTURE OR PREPARATION OF TOBACCO FOR SMOKING OR CHEWING; TOBACCO; SNUFF
- A24B15/00—Chemical features or treatment of tobacco; Tobacco substitutes, e.g. in liquid form
- A24B15/18—Treatment of tobacco products or tobacco substitutes
- A24B15/28—Treatment of tobacco products or tobacco substitutes by chemical substances
- A24B15/30—Treatment of tobacco products or tobacco substitutes by chemical substances by organic substances
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24B—MANUFACTURE OR PREPARATION OF TOBACCO FOR SMOKING OR CHEWING; TOBACCO; SNUFF
- A24B15/00—Chemical features or treatment of tobacco; Tobacco substitutes, e.g. in liquid form
- A24B15/18—Treatment of tobacco products or tobacco substitutes
- A24B15/28—Treatment of tobacco products or tobacco substitutes by chemical substances
- A24B15/30—Treatment of tobacco products or tobacco substitutes by chemical substances by organic substances
- A24B15/302—Treatment of tobacco products or tobacco substitutes by chemical substances by organic substances by natural substances obtained from animals or plants
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24D—CIGARS; CIGARETTES; TOBACCO SMOKE FILTERS; MOUTHPIECES OF CIGARS OR CIGARETTES; MANUFACTURE OF TOBACCO SMOKE FILTERS OR MOUTHPIECES
- A24D1/00—Cigars; Cigarettes
- A24D1/20—Cigarettes specially adapted for simulated smoking devices
-
- A—HUMAN NECESSITIES
- A24—TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
- A24F—SMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
- A24F40/00—Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
- A24F40/40—Constructional details, e.g. connection of cartridges and battery parts
Definitions
- a heating device which releases compounds by heating, but not burning, a solid aerosol-generating material.
- This solid aerosol-generating material may, in some cases, contain a botanical material.
- the heating volatilises at least one component of the material, typically forming an inhalable aerosol.
- These products may be referred to as heat-not-burn devices, tobacco heating devices or tobacco heating products.
- Various different arrangements for volatilising at least one component of the solid aerosol-generating material are known.
- the aerosol-generating material may comprise an aerosol-generating agent; a crosslinked binder, optionally one or more fillers; and optionally an active and/or flavourant.
- a binder selected from the group consisting of alginate, pectin, carrageenan (such as iota-carrageenan), gellan gum (such as high acyl gellan gum), and combinations thereof; optionally a filler; and optionally an active and/or a flavourant and/or an acid;
- non-linear strand of the invention Schematic examples of a non-linear strand of the invention are shown as the solid lines in Figures 8 and 10, although it will be appreciated that these figures show a two dimensional representation of a three dimensional structure.
- each strand is three dimensional, and may also be non-linear in three dimensions.
- non-linear in three dimensions it is meant that the stands of the invention are non-linear in the x, y and z directions.
- a spring or coil is an example of a shape which is nonlinear in the x, y and z directions.
- other strands may be non-linear in two dimensions (e.g. the x and y direction), but linear or flat in the third dimension (e.g. the z direction).
- Each non-linear strand may have a diameter from about 0.05 mm, 0.1 mm, 0.2 mm, 0.3 mm or 0.5 mm to about 3 mm, 2.5 mm, 2.0 mm, 1.5 mm, 1.1 mm, 0.8 mm, 0.6 mm or 0.5 mm. In some embodiments, each non-linear strand has a diameter of from about 0.05 mm to about 3 mm, from about 0.3 to about 2.5 mm, from about 0.5 to about 1.5 mm, or from about 0.7 to about 1.1 mm.
- Each non-linear strand may have an overall length (also referred to herein as the total length) of from about 8 mm, 10 mm, 15 mm, 20 mm or 30 mm to about 200 mm, 100 mm, 75 mm or 50 mm.
- the overall or total length of each strand is also referred to herein as the uncoiled length, and is defined as the theoretical length if the strand was extended to be straight.
- the overall length of the strand shown in Figure 10 is the total length of the strand, i.e. the length of the solid black line if this was straightened out.
- each non-linear strand has an overall length of from about 10 mm to about 200 mm, such as from about 20 mm to about 100 mm, or from about 30 mm to about 50 mm.
- the aerosol-generating material has a fill value of at least about 2 cm 3 /g, 2.5 cm 3 /g, 3 cm 3 /g, 3.5 cm 3 /g, 4 cm 3 /g, 4.5 cm 3 /g, or 5 cm 3 /g. In some embodiments the fill value is less than about 6 cm 3 /g, 6.5 cm 3 /g, 7 cm 3 /g, 7.5 cm 3 /g, 8 cm 3 /g, 8.5 cm 3 /g, 9 cm 3 /g, 9.5 cm 3 /g or 10 cm 3 /g.
- the materials of the present invention have a higher fill value than conventional aerosol-generating materials because the packing efficiency of the aerosol-generating material in the form of non-linear strands is lower than conventional aerosol-generating materials, which may be in the form of flat sheets, rolled sheets or shredded sheets. That is, if a container having a given volume were filled with the material of the invention, the percentage of the container which is occupied by material would be lower than for a conventional aerosol-generating material which may be in the form of a flat, rolled or shredded sheet. Put another way, there would be a higher volume of voids or empty space in the container containing the material of the invention. Thus, less aerosol-generating material would be needed to fill the container.
- Figure 12 shows a photograph of an aerosol-generating material of the invention in the form of a number of non-linear strands.
- the aerosol-generating material may comprise about 1 wt%, 3wt%, 5wt%, 10wt%, 15wt% or 20wt% to about 80wt%, 60wt%, 50wt%, 40wt% or 30wt% of aerosol-generating agent (all calculated on a dry weight basis).
- the aerosol-generating material comprises 1-80 wt%, 5-60wt%, or 10- 50wt% of aerosol-generating agent (all calculated on a dry weight basis).
- the aerosol-generating agent may comprise one or more of glycerol, propylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, 1 ,3-butylene glycol, erythritol, meso-Erythritol, ethyl vanillate, ethyl laurate, a diethyl suberate, triethyl citrate, triacetin, a diacetin mixture, benzyl benzoate, benzyl phenyl acetate, tributyrin, lauryl acetate, lauric acid, myristic acid, and propylene carbonate.
- the aerosol-generating agent comprises, consists essentially of or consists of glycerol.
- the crosslinked binder may comprise or consist of a non-cellulosic binder.
- non-cellulosic binders which may be used include, but are not limited to, alginates, pectins, carrageenans (e.g. iota-carrageenan), gellan gums (e.g. high acyl gellan gum), and combinations thereof.
- the crosslinked binder may comprise or consist of a flexible binder. Examples of flexible binders which may be used include, but are not limited to, pectins, iota- carrageenan, gellan gums (e.g. high acyl gellan gum), and combinations thereof.
- the crosslinked binder comprises a flexible binder in combination with one or more other binders such as alginate.
- the binder comprises alginate and/or pectin and/or iota-carrageenan.
- the binder does not comprise alginate.
- the aerosol-generating material may be substantially free of cellulosic binder. “Substantially free” means that material comprises less than 1wt%, such as less than 0.5wt% of the relevant component (dry weight basis). In some embodiments, the aerosol-generating material does not comprise a cellulosic binder.
- the aerosol-generating material may be substantially free of carboxymethylcellulose (CMC). In some embodiments, the aerosol-generating material does not comprise CMC.
- the binder comprises alginate, and the alginate is present in the aerosol-generating material in an amount of 1-30wt%, 2-20wt%, 3-20wt%, or 5-15wt% of the aerosol-generating material (calculated on a dry weight basis).
- the binder comprises alginate and at least one non- cellulosic flexible binder, such as iota-carrageenan.
- the binder comprises iota-carrageenan, and the iota- carrageenan is present in the aerosol-generating material in an amount of 1-30wt%, 2-20wt%, 2-20wt%, or 10-20wt% of the aerosol-generating material (calculated on a dry weight basis).
- iota-carrageenan is the only binder present in the aerosol-generating material.
- the binder comprises iota- carrageenan and at least one further non-cellulosic binder.
- the aerosol-generating material comprises multiple binders.
- the aerosol-generating material comprises a crosslinked binder and a non-crosslinked binder.
- the non-crosslinked binder may be a cellulosic binder.
- cellulosic binders which may be used include, but are not limited to, hydroxymethyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, carboxymethylcellulose (CMC), hydroxypropyl methylcellulose (HPMC), methyl cellulose, ethyl cellulose, cellulose acetate (CA), cellulose acetate butyrate (CAB), and cellulose acetate propionate (CAP).
- an aerosol-generating material is provided in the form of one or more non-linear strands, wherein the aerosol-generating material comprises an aerosol-generating agent and a binder selected from the group consisting of alginate, pectin, carrageenan, (such as iota-carrageenan), gellan gum (such as high acyl gellan gum), and combinations thereof.
- the total amount of binder may be the same as the amounts described above in relation to the crosslinked binder.
- the aerosol-generating material of this embodiment may comprise an amount of 1-60 wt%, 5-50 wt%, 6-40wt%, 7-20wt% or 15-25 wt% of binder (dry weight basis). All aspects of the invention described herein are applicable to any aerosolgenerating material of the invention.
- the aerosol-generating material may comprise about 0.5wt%, 1wt%, 3wt% or 5wt% to about 10wt%, 9wt%, 8 wt% or 7wt% of crosslinking agent (all calculated on a dry weight basis).
- the aerosol-generating material may comprise 1-10 wt%, 3-8 wt% or 5-7 wt% of crosslinking agent (dry weight basis). These amounts represent the total amount of crosslinking agent(s) in the aerosol-generating material.
- the aerosol-generating material may comprise about 1wt%, 10wt% or 20wt% to about 80wt%, 60wt% or 50wt% of flavour (all calculated on a dry weight basis).
- the aerosol-generating material may comprise 1-80wt%, 10-60wt%, or 20-50wt% of flavour. These amounts represent the total amount of flavour(s) in the aerosol-generating material, if a flavour is present.
- flavour and “flavourant” refer to materials which, where local regulations permit, may be used to create a desired taste, aroma, or other somatosensorial sensation in a product for adult consumers. They may include naturally occurring flavour materials, botanicals, extracts of botanicals, synthetically obtained materials, or combinations thereof (e.g., tobacco, cannabis, licorice (liquorice), hydrangea, eugenol, Japanese white bark magnolia leaf, chamomile, fenugreek, clove, maple, matcha, menthol, Japanese mint, aniseed (anise), cinnamon, turmeric, Indian spices, Asian spices, herb, Wintergreen, cherry, berry, red berry, cranberry, peach, apple, orange, mango, clementine, lemon, lime, tropical fruit, papaya, rhubarb, grape, durian, dragon fruit, cucumber, blueberry, mulberry, citrus fruits, Drambuie, bourbon, scotch
- the flavour comprises menthol, spearmint and/or peppermint. In some embodiments, the flavour comprises, consists essentially of or consists of menthol.
- the flavourant may be incorporated during the formation of the aerosolgenerating material (e.g. when forming a slurry comprising the materials that form the aerosol-generating material) or it may be applied to the aerosol-generating material after its formation (e.g. by spraying it onto the aerosol-generating material after drying).
- the aerosol-generating material comprises from about 1wt%, 5wt%, 10wt%, 18wt%, 20wt%, 30wt% or 40wt% to about 80wt%, 70wt%, 60wt%, 50wt%, 45wt%, 40wt%, 35wt% or 30wt% of filler (all calculated on a dry weight basis).
- the aerosol-generating material may comprise 1-60wt%, 1-50wt%. 5-45wt%, 10-40wt%, 18-35wt% or 20-30wt% of filler (all calculated on a dry weight basis).
- the aerosol-generating material may comprise 1- 70wt%, 10-65wt%, 20-60wt%, 30-60wt%, or 40-60wt% of filler (all calculated on a dry weight basis).
- the aerosol-generating material may comprise 10-80wt%, 20-70wt%, 30-65wt% or 40-65wt% of filler (all calculated on a dry weight basis). These amounts represent the total amount of filler(s) in the aerosol-generating material.
- the aerosol-generating material comprises less than 70 wt.% filler, such as less than 60 wt.% filler, less than 50 wt.%, less than 30 wt.%, less than 20 wt.% or less than 10 wt.%. In some embodiments the aerosol-generating material is substantially free or complete free of filler.
- the filler may comprise one or more inorganic filler materials, such as calcium carbonate, perlite, vermiculite, diatomaceous earth, colloidal silica, magnesium oxide, magnesium sulphate, magnesium carbonate, and suitable inorganic sorbents, such as molecular sieves.
- the filler may comprise one or more organic filler materials such as wood pulp, cellulose and cellulose derivatives (e.g. ground cellulose).
- aerosol-generating material comprises less than 10 wt%, less than 5 wt%, less than 1 wt% or no calcium carbonate such as chalk. It may be desirable to avoid including high amounts of calcium carbonate (e.g.
- calcium carbonate has a high density.
- including high amounts of calcium carbonate can cause the material to become dense and/or have a low fill value and/or may delay aerosol release.
- the filler is fibrous.
- the filler may be a fibrous organic filler material such as wood pulp, hemp fibre, cellulose or cellulose derivatives, such as microcrystalline cellulose (MCC), nanocrystalline cellulose and/or ground cellulose.
- MCC microcrystalline cellulose
- the filler comprises wood pulp, MCC and/or ground cellulose.
- the filler comprises MCC and ground cellulose. In some cases, the filler comprises (or is) wood pulp.
- the filler does not comprise wood pulp.
- the aerosol-generating material comprises less than 10 wt% wood pulp, such as less than about 5 wt%, less than about 4 wt%, less than about 2 wt% or less than about 1 wt%. In some cases, the aerosol-generating material comprises no wood pulp.
- any filler present in the aerosol-generating material has a particle size of less than about 2 mm, such as less than about 1.5 mm, less than about 1 mm, less than about 0.5 mm, less than about 0.4 mm, less than about 0.3 mm or less than about 0.2 mm.
- any filler present in the aerosol-generating material has an average (e.g. number average) particle size of less than about 2 mm, such as less than about 1.5 mm, less than about 1 mm, less than about 0.5 mm, less than about 0.4 mm, less than about 0.3 mm or less than about 0.2 mm
- particle size refers to the longest dimension of a particle (e.g. the diameter of a spherical particle). Particles of different sizes can be separated by known methods, such as sieving.
- a material of the invention including wood pulp can be difficult, as the wood pulp may clog or block the nozzle through which the mixture is ejected. It is believed that this may be due to the particle size of wood pulp, which is typically at least 0.5 mm and often at least 1 mm. As a result, it may be advantageous to reduce the amount of wood pulp present in the material and/or ensure that any filler present in the material has a small particle size (e.g. less than the size of the nozzle diameter). Reducing the amount of wood pulp present in the material can also cause the viscosity of the mixture used to form the material to increase. Since the (optional) filler is the only particulate component of the aerosolgenerating material, only the particle size of the filler needs to controlled.
- the filler comprises maltodextrin or microcrystalline cellulose (MCC).
- MCC microcrystalline cellulose
- microcrystalline cellulose may be formed by depolymerising cellulose by a chemical process (e.g. using an acid or enzyme).
- One example method for forming microcrystalline cellulose involves acid hydrolysis of cellulose, using an acid such as HCI. The cellulose produced after this treatment is crystalline (i.e. no amorphous regions remain). Suitable methods and conditions for forming microcrystalline cellulose are well-known in the art.
- the filler has a density of less than about 2 g/cm 3 , such as less than about 0.5 g/cm 3 or less than about 0.3 g/cm 3 .
- the aerosol-generating material may have any suitable water content, such as from 1wt % to 15wt%.
- the water content of the aerosol-generating material may be from about 5wt%, 7wt% or 9wt% to about 15wt%, 13wt%, 11wt%, 9wt% or 8wt% (wet weight basis) (WWB).
- the aerosolgenerating material has a water content of less than about 9 wt% (WWB), such as less than about 8 wt% (WWB).
- the water content of the aerosol-generating material may, for example, be determined by Karl-Fischer-titration or Gas Chromatography with Thermal Conductivity Detector (GC-TCD).
- Amounts of constituents of the aerosol-generating material can be determined by gas chromatography with a flame ionisation detector (GC-FID).
- aerosolgenerating agent e.g. glycerol
- flavourant e.g. menthol
- the aerosol-generating material may comprise a colourant.
- the addition of a colourant may alter the visual appearance of the aerosol-generating material.
- the presence of colourant in the aerosol-generating material may enhance the visual appearance of the aerosol-generating material and the aerosol-generating composition.
- the aerosolgenerating material may be colour-matched to other components of the aerosolgenerating composition or to other components of an article comprising the aerosolgenerating material.
- a variety of colourants may be used depending on the desired colour of the aerosol-generating material.
- the colour of aerosol-generating material may be, for example, white, green, red, purple, blue, brown or black. Other colours are also envisaged.
- Natural or synthetic colourants such as natural or synthetic dyes, foodgrade colourants and pharmaceutical-grade colourants may be used.
- the colourant is caramel, which may confer the aerosol-generating material with a brown appearance.
- the colour of the aerosolgenerating material may be similar to the colour of other components (such as tobacco material) in an aerosol-generating composition comprising the aerosolgenerating material.
- the addition of a colourant to the aerosolgenerating material renders it visually indistinguishable from other components in the aerosol-generating composition.
- the colourant may be incorporated during the formation of the aerosolgenerating material (e.g. when forming a slurry comprising the materials that form the aerosol-generating material) or it may be applied to the aerosol-generating material after its formation (e.g. by spraying it onto the aerosol-generating material).
- (brown) wood pulp is present as a filler, and a colourant may therefore be unnecessary.
- the aerosol-generating composition additionally comprises an active substance, such that the aerosol-generating composition comprises the aerosol-generating material and an active substance.
- the aerosol-generating composition additionally comprises a tobacco material and/or nicotine.
- the aerosol-generating composition may comprise 5-60wt% (calculated on a dry weight basis) of a tobacco material and/or nicotine.
- the aerosol-generating composition may comprise from about 1wt%, 5wt%, 10wt%, 15wt%, 20wt% or25wt% to about 70wt%, 60wt%, 50wt%, 45wt%, 40wt%, 35wt%, or 30wt% (calculated on a dry weight basis) of an active substance.
- the aerosol-generating composition may comprise from about 1wt%, 5wt%, 10wt%, 15wt%, 20wt% or25wt% to about 70wt%, 60wt%, 50wt%, 45wt%, 40wt%, 35wt%, or 30wt% (calculated on a dry weight basis) of a tobacco material.
- the aerosol-generating composition may comprise 10-50wt%, 15-40wt% or 20-35wt% of a tobacco material.
- the aerosol-generating composition may comprise from about 1wt%, 2wt%, 3wt% or 4wt% to about 20wt%, 18wt%, 15wt% or 12wt% (calculated on a dry weight basis) of nicotine.
- the aerosol-generating composition may comprise 1-20wt%, 2-18wt% or 3-12wt% of nicotine.
- the aerosol-generating material may comprise a botanical extract.
- the aerosol-generating material may comprise about 1 wt%, 3 wt%, 5 wt%, 10 wt%, 15 wt%, 20 wt %, 30 wt%, 35 wt% or 40 wt% to about to 30 wt%, 35 wt%, 40 wt%, 50 wt%, 60 wt%, 65 wt % or 70 wt% of botanical extract (all calculated on a dry weight basis).
- the aerosol-generating material comprises 1-70 wt%, 5-60 wt%, or 10-50 wt% of botanical extract (all calculated on a dry weight basis).
- Example botanicals are tobacco, eucalyptus, star anise, hemp, cocoa, cannabis, fennel, lemongrass, peppermint, spearmint, rooibos, chamomile, flax, ginger, ginkgo biloba, hazel, hibiscus, laurel, licorice (liquorice), matcha, mate, orange skin, papaya, rose, sage, tea such as green tea or black tea, thyme, clove, cinnamon, coffee, aniseed (anise), basil, bay leaves, cardamom, coriander, cumin, nutmeg, oregano, paprika, rosemary, saffron, lavender, lemon peel, mint, juniper, elderflower, vanilla, Wintergreen, beefsteak plant, curcuma, turmeric, sandalwood, cilantro, bergamot, orange blossom, myrtle, cassis, valerian, pimento, mace, damien, marjoram, olive, lemon
- the particulate botanical comprises or is particulate tobacco material.
- the aerosol-generating material comprises an additional active other than a botanical extract.
- the active comprises nicotine.
- the active substance comprises caffeine, melatonin or vitamin B12.
- the active substance may comprise one or more constituents, derivatives or extracts of cannabis, such as one or more cannabinoids or terpenes.
- Cannabinoids are a class of natural or synthetic chemical compounds which act on cannabinoid receptors (i.e., CB1 and CB2) in cells that repress neurotransmitter release in the brain.
- Cannabinoids may be naturally occurring (phytocannabinoids) from plants such as cannabis, from animals (endocannabinoids), or artificially manufactured (synthetic cannabinoids).
- Cannabis species express at least 85 different phytocannabinoids, and are divided into subclasses, including cannabigerols, cannabichromenes, cannabidiols, tetrahydrocannabinols, cannabinols and cannabinodiols, and other cannabinoids.
- Cannabinoids found in cannabis include, without limitation: 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), cannabitriol (CBO), tetrahydrocannabmolic acid (THCA), and tetrahydrocannabivarinic acid (THCV A).
- CBD cannabigerol
- the active substance may comprise a cannabinoid, such as cannabidiol (CBD).
- CBD cannabidiol
- the aerosol-generating composition comprises an active substance such as tobacco extract.
- the aerosol-generating composition may comprise 5-60wt% (calculated on a dry weight basis) of tobacco extract.
- the aerosol-generating composition may comprise from about 5wt%, 10wt%, 15wt%, 20wt% or 25wt% to about 60wt%, 50wt%, 45wt%, 40wt%, 35wt%, or 30wt% (calculated on a dry weight basis) tobacco extract.
- the aerosol-generating composition may comprise 10-50wt%, 15-40wt% or 20- 35wt% of tobacco extract.
- the tobacco extract may contain nicotine at a concentration such that the aerosol-generating composition comprises 1wt% 1.5wt%, 2wt% or 2.5wt% to about 10wt%, 8wt%, 6wt%, 5wt%, 4.5wt% or 4wt% (calculated on a dry weight basis) of nicotine.
- the aerosol-generating composition may comprise 1-10 wt%, 2.5-8 wt% or 2-6wt% nicotine. In some cases, there may be no nicotine in the aerosol-generating composition other than that which results from the tobacco extract.
- the aerosol-generating composition comprises the aerosol-generating material defined herein and a second aerosol-generating material, which may be tobacco.
- the aerosol-generating composition comprises the aerosol-generating material defined herein and tobacco.
- the aerosol-generating material may be shredded and then mixed with tobacco, such as cut-rag tobacco.
- the aerosol-generating composition may be in the form of a shredded composition, where the aerosol-generating material and the tobacco are both shredded and mixed together.
- the aerosol-generating composition may comprise from about 5wt%, 10wt%, 15wt% or 20wt% to about 35wt%, 40wt%, 45wt% or 50wt% aerosol-generating material.
- the aerosol-generating composition may comprise from about 10 to about 50 wt% of the aerosol-generating material of the invention, such as from about 20 to about 40 wt%.
- the remainder of the aerosolgenerating composition may comprise tobacco, optionally in combination with a flavourant and/or an acid.
- the aerosol-generating composition may comprise from about 10 to about 50 wt% aerosol-generating material and from about 50 to about 90 wt% tobacco, or from about 20 to about 40 wt% aerosol-generating material and from about 60 to about 80 wt% tobacco.
- the tobacco comprises (or is) dry ice expanded tobacco (DIET).
- the aerosol-generating composition comprises a mixture of the aerosol-generating material of the invention and DIET, optionally in combination with other tobacco (e.g. cut rag tobacco).
- DIET is known to have a very high filling value (generally above 7 cm 3 /g), and is sometimes used to reduce the weight of an article or consumable for use in an aerosol provision system. However, it is also known to have a poor flavour profile.
- the presently claimed aerosol-generating material may therefore offer an improved alternative to DIET, because it has a high fill value but an improved taste profile. It may also be possible to combine DIET with the aerosol-generating material of the invention, thereby reducing the amount of DIET needed to achieve the desired fill value.
- the aerosol-generating composition comprises no tobacco material but does comprise nicotine.
- the aerosolgenerating composition may comprise from about 1wt%, 2wt%, 3wt% or 4wt% to about 20wt%, 18wt%, 15wt% or 12wt% (calculated on a dry weight basis) of nicotine.
- the aerosol-generating composition may comprise 1-20wt%, 2-18wt% or 3-12wt% of nicotine.
- the fill value of the aerosol-generating composition may be determined by the fill value of the aerosol-generating material, the fill value of any other material in the composition (e.g. tobacco), and the relative proportions of the materials in the composition.
- the fill value of a composition may therefore be estimated.
- the aerosol-generating composition has a fill value of at least about 2 cm 3 /g, 2.5 cm 3 /g, 3 cm 3 /g, 3.5 cm 3 /g, 4 cm 3 /g, 4.5 cm 3 /g, or 5 cm 3 /g. In some embodiments the fill value is less than about 6 cm 3 /g, 6.5 cm 3 /g, 7 cm 3 /g, 7.5 cm 3 /g, 8 cm 3 /g, 8.5 cm 3 /g, 9 cm 3 /g, 9.5 cm 3 /g or 10 cm 3 /g.
- the aerosol-generating composition has a fill value from about 2 cm 3 /g to about 7.5 cm 3 /g, from about 3 cm 3 /g to about 7 cm 3 /g, from about 3.5 cm 3 /g to about 6 cm 3 /g from about 4 cm 3 /g to about 6 cm 3 /g or from about 5 cm 3 /g to about 6 cm 3 /g.
- the aerosol-generating composition has a fill value of from about 3 cm 3 /g to about 10 cm 3 /g, from about 4 cm 3 /g to about 9.5 cm 3 /g, from about 4.5 cm 3 /g to about 9 cm 3 /g or from about 5 cm 3 /g to about 9 cm 3 /g.
- the aerosol-generating material and/or the aerosol-generating composition may comprise an acid.
- the acid may be an organic acid.
- the acid may be at least one of a monoprotic acid, a diprotic acid and a triprotic acid.
- the acid may contain at least one carboxyl functional group.
- the acid may be at least one of an alpha-hydroxy acid, carboxylic acid, dicarboxylic acid, tricarboxylic acid and keto acid.
- the acid may be an alpha-keto acid.
- the acid may be at least one of succinic acid, lactic acid, benzoic acid, citric acid, tartaric acid, fumaric acid, levulinic acid, acetic acid, malic acid, formic acid, sorbic acid, benzoic acid, propanoic and pyruvic acid.
- the acid is lactic acid.
- the acid is benzoic acid.
- the acid may be an inorganic acid.
- the acid may be a mineral acid.
- the acid may be at least one of sulphuric acid, hydrochloric acid, boric acid and phosphoric acid.
- the acid is levulinic acid and/or pyruvic acid.
- the acid is selected from lactic acid, benzoic acid and levulinic acid.
- an acid is particularly preferred in embodiments in which the aerosol-generating composition comprises nicotine.
- the presence of the acid may reduce or substantially prevent evaporation of nicotine during drying of the slurry, thereby reducing loss of nicotine during manufacturing.
- the presence of the acid may also improve the flavour and impact of the aerosol when nicotine is present. For example, the perceived harshness of the nicotine may be reduced by the presence of the acid.
- the aerosol-generating material is substantially free from tobacco.
- substantially free from it is meant that the material comprises less than 1wt%, such as less than 0.5wt% tobacco (dry weight basis).
- the aerosol-generating material is free from tobacco.
- the aerosol-generating material does not comprise tobacco fibres.
- the aerosol-generating material does not comprise fibrous material.
- any tobacco present in the slurry used to form the aerosolgenerating material may cause the binder to prematurely crosslink, making formation of the non-linear strands of the invention more difficult.
- the aerosol-generating material substantially free from or free from tobacco.
- the aerosol-generating composition does not comprise tobacco fibres. In particular embodiments, the aerosol-generating composition does not comprise fibrous material. In some embodiments, the aerosol-generating article does not comprise tobacco fibres. In particular embodiments, the aerosol-generating article does not comprise fibrous material.
- the aerosol-generating material may be made from a gel, and this gel may additionally comprise a solvent, included at 0.1-50wt%.
- a solvent in which the flavour is soluble may reduce the gel stability and the flavour may crystallise out of the gel.
- the gel does not include a solvent in which the flavour is soluble.
- An aspect of the present invention relates to an article (also referred to herein as a consumable).
- a consumable is an article, part or all of which is intended to be consumed during use by a user.
- a consumable may comprise or consist of aerosolgenerating composition.
- a consumable may comprise one or more other elements, such as a filter or an aerosol modifying substance.
- a consumable may comprise a heating element that emits heat to cause the aerosol-generating composition to generate aerosol in use.
- the heating element may, for example, comprise combustible material, or may comprise a susceptor that is heatable by penetration with a varying magnetic field.
- Articles of the present invention may be provided in any suitable shape.
- the article is provided as a rod (e.g. substantially cylindrical).
- An article provided as a rod may include the aerosol-generating composition, optionally blended with cut tobacco.
- a susceptor is material that is heatable by penetration with a varying magnetic field, such as an alternating magnetic field.
- the heating material may be an electrically-conductive material, so that penetration thereof with a varying magnetic field causes induction heating of the heating material.
- the heating material may be magnetic material, so that penetration thereof with a varying magnetic field causes magnetic hysteresis heating of the heating material.
- the heating material may be both electrically-conductive and magnetic, so that the heating material is heatable by both heating mechanisms.
- Induction heating is a process in which an electrically-conductive object is heated by penetrating the object with a varying magnetic field. The process is described by Faraday's law of induction and Ohm's law.
- An induction heater may comprise an electromagnet and a device for passing a varying electrical current, such as an alternating current, through the electromagnet.
- a varying electrical current such as an alternating current
- the electromagnet and the object to be heated are suitably relatively positioned so that the resultant varying magnetic field produced by the electromagnet penetrates the object, one or more eddy currents are generated inside the object.
- the object has a resistance to the flow of electrical currents. Therefore, when such eddy currents are generated in the object, their flow against the electrical resistance of the object causes the object to be heated. This process is called Joule, ohmic, or resistive heating.
- Magnetic hysteresis heating is a process in which an object made of a magnetic material is heated by penetrating the object with a varying magnetic field.
- a magnetic material can be considered to comprise many atomic-scale magnets, or magnetic dipoles. When a magnetic field penetrates such material, the magnetic dipoles align with the magnetic field. Therefore, when a varying magnetic field, such as an alternating magnetic field, for example as produced by an electromagnet, penetrates the magnetic material, the orientation of the magnetic dipoles changes with the varying applied magnetic field. Such magnetic dipole reorientation causes heat to be generated in the magnetic material.
- An aspect of the invention provides non-combustible aerosol provision system comprising an article according as described herein and non-combustible aerosol provision device comprising a heater which is configured to heat not burn the aerosol-generating article.
- a non-combustible aerosol provision system may also be referred to as an aerosol generating assembly.
- a non-combustible aerosol provision device may be referred to as an aerosol generating apparatus.
- the heater may heat, without burning, the aerosolgenerating material to a temperature equal to or less than 350 °C, such as between 120°C and 350 °C. In some cases, the heater may heat, without burning, the aerosolgenerating composition to between 140 °C and 250 °C in use, or between 220 °C and 280 °C. In some cases in use, substantially all of the aerosol-generating material is less than about 4mm, 3mm, 2mm or 1mm from the heater. In some cases, the material is disposed between about 0.010mm and 2.0mm from the heater, suitably between about 0.02mm and 1.0mm, suitably 0.1mm to 0.5mm. In some cases, a surface of the aerosol-generating material may directly abut the heater.
- the heater is configured to heat not burn the aerosol-generating article, and thus the aerosol-generating composition.
- the heater may be, in some cases, a thin film, electrically resistive heater. In other cases, the heater may comprise an induction heater or the like.
- the heater may be a combustible heat source or a chemical heat source which undergoes an exothermic reaction to product heat in use.
- the aerosol generating assembly may comprise a plurality of heaters. The heater(s) may be powered by a battery.
- the aerosol-generating article may additionally comprise a cooling element and/or a filter.
- the cooling element if present, may act or function to cool gaseous or aerosol components. In some cases, it may act to cool gaseous components such that they condense to form an aerosol. It may also act to space the very hot parts of the non-combustible aerosol provision device from the user.
- the filter if present, may comprise any suitable filter known in the art such as a cellulose acetate plug.
- the aerosol generating assembly may be a heat-not-burn device. That is, it may contain a solid aerosol-generating material (and no liquid aerosol-generating material). In some cases, the aerosol-generating material may comprise the tobacco material.
- a heat-not-burn device is disclosed in WO 2015/062983 A2, which is incorporated by reference in its entirety.
- the aerosol generating assembly may be an electronic tobacco hybrid device.
- An electronic tobacco hybrid device is disclosed in WO 2016/135331 A1 , which is incorporated by reference in its entirety.
- the aerosol-generating article (which may be referred to herein as an article, a cartridge or a consumable) may be adapted for use in a THP, an electronic tobacco hybrid device or another aerosol generating device.
- the article may additionally comprise a filter and/or cooling element (which have been described above).
- the aerosol-generating article may be circumscribed by a wrapping material such as paper.
- the aerosol-generating article may additionally comprise ventilation apertures. These may be provided in the sidewall of the article. In some cases, the ventilation apertures may be provided in the filter and/or cooling element. These apertures may allow cool air to be drawn into the article during use, which can mix with the heated volatilised components thereby cooling the aerosol.
- the ventilation enhances the generation of visible heated volatilised components from the article when it is heated in use.
- the heated volatilised components are made visible by the process of cooling the heated volatilised components such that supersaturation of the heated volatilised components occurs.
- the heated volatilised components then undergo droplet formation, otherwise known as nucleation, and eventually the size of the aerosol particles of the heated volatilised components increases by further condensation of the heated volatilised components and by coagulation of newly formed droplets from the heated volatilised components.
- the ratio of the cool air to the sum of the heated volatilised components and the cool air known as the ventilation ratio, is at least 15%.
- a ventilation ratio of 15% enables the heated volatilised components to be made visible by the method described above.
- the visibility of the heated volatilised components enables the user to identify that the volatilised components have been generated and adds to the sensory experience of the smoking experience.
- the ventilation ratio is between 50% and 85% to provide additional cooling to the heated volatilised components. In some cases, the ventilation ratio may be at least 60% or 65%.
- FIG. 1 and 2 there are shown a partially cut-away section view and a perspective view of an example of an aerosol-generating article 101 .
- the article 101 is adapted for use with a device having a power source and a heater.
- the article 101 of this embodiment is particularly suitable for use with the device 1 shown in Figures 5 to 7, described below.
- the article 101 may be removably inserted into the device shown in Figure 5 at an insertion point 20 of the device 1.
- the article 101 of one example is in the form of a substantially cylindrical rod that includes a body of aerosol-generating composition 103 and a filter assembly 105 in the form of a rod.
- the aerosol-generating composition comprises the aerosolgenerating material described herein.
- the filter assembly 105 includes three segments, a cooling segment 107, a filter segment 109 and a mouth end segment 111.
- the article 101 has a first end 113, also known as a mouth end or a proximal end and a second end 115, also known as a distal end.
- the body of aerosol-generating composition 103 is located towards the distal end 115 of the article 101.
- the cooling segment 107 is located adjacent the body of aerosol-generating composition 103 between the body of aerosol-generating composition 103 and the filter segment 109, such that the cooling segment 107 is in an abutting relationship with the aerosol-generating composition 103 and the filter segment 103.
- the filter segment 109 is located in between the cooling segment 107 and the mouth end segment 111.
- the mouth end segment 111 is located towards the proximal end 113 of the article 101 , adjacent the filter segment 109.
- the filter segment 109 is in an abutting relationship with the mouth end segment 111.
- the total length of the filter assembly 105 is between 37mm and 45mm, more preferably, the total length of the filter assembly 105 is 41mm.
- the rod of aerosol-generating composition 103 is between 34mm and 50mm in length, suitably between 38mm and 46mm in length, suitably 42mm in length.
- the total length of the article 101 is between 71mm and 95mm, suitably between 79mm and 87mm, suitably 83mm.
- An axial end of the body of aerosol-generating composition 103 is visible at the distal end 115 of the article 101.
- the distal end 115 of the article 101 may comprise an end member (not shown) covering the axial end of the body of aerosol-generating composition 103.
- the body of aerosol-generating composition 103 is joined to the filter assembly 105 by annular tipping paper (not shown), which is located substantially around the circumference of the filter assembly 105 to surround the filter assembly 105 and extends partially along the length of the body of aerosol-generating composition 103.
- the tipping paper is made of 58GSM standard tipping base paper.
- the tipping paper has a length of between 42mm and 50mm, suitably of 46mm.
- the cooling segment 107 is an annular tube and is located around and defines an air gap within the cooling segment.
- the air gap provides a chamber for heated volatilised components generated from the body of aerosolgenerating composition 103 to flow.
- the cooling segment 107 is hollow to provide a chamber for aerosol accumulation yet rigid enough to withstand axial compressive forces and bending moments that might arise during manufacture and whilst the article 101 is in use during insertion into the device 1.
- the thickness of the wall of the cooling segment 107 is approximately 0.29mm.
- the cooling segment 107 provides a physical displacement between the aerosol-generating composition 103 and the filter segment 109. The physical displacement provided by the cooling segment 107 will provide a thermal gradient across the length of the cooling segment 107.
- the cooling segment 107 is configured to provide a temperature differential of at least 40 degrees Celsius between a heated volatilised component entering a first end of the cooling segment 107 and a heated volatilised component exiting a second end of the cooling segment 107. In one example the cooling segment 107 is configured to provide a temperature differential of at least 60 degrees Celsius between a heated volatilised component entering a first end of the cooling segment 107 and a heated volatilised component exiting a second end of the cooling segment 107.
- This temperature differential across the length of the cooling element 107 protects the temperature sensitive filter segment 109 from the high temperatures of the aerosol-generating composition 103 when it is heated by the device 1. If the physical displacement was not provided between the filter segment 109 and the body of aerosol-generating composition 103 and the heating elements of the device 1 , then the temperature sensitive filter segment may 109 become damaged in use, so it would not perform its required functions as effectively.
- the length of the cooling segment 107 is at least 15mm. In one example, the length of the cooling segment 107 is between 20mm and 30mm, more particularly 23mm to 27mm, more particularly 25mm to 27mm, suitably 25mm.
- the cooling segment 107 is made of paper, which means that it is comprised of a material that does not generate compounds of concern, for example, toxic compounds when in use adjacent to the heater of the device 1.
- the cooling segment 107 is manufactured from a spirally wound paper tube which provides a hollow internal chamber yet maintains mechanical rigidity. Spirally wound paper tubes are able to meet the tight dimensional accuracy requirements of highspeed manufacturing processes with respect to tube length, outer diameter, roundness and straightness.
- the cooling segment 107 is a recess created from stiff plug wrap or tipping paper.
- the stiff plug wrap or tipping paper is manufactured to have a rigidity that is sufficient to withstand the axial compressive forces and bending moments that might arise during manufacture and whilst the article 101 is in use during insertion into the device 1.
- the filter segment 109 may be formed of any filter material sufficient to remove one or more volatilised compounds from heated volatilised components from the aerosol-generating material.
- the filter segment 109 is made of a mono-acetate material, such as cellulose acetate.
- the filter segment 109 provides cooling and irritation-reduction from the heated volatilised components without depleting the quantity of the heated volatilised components to an unsatisfactory level for a user.
- a capsule (not illustrated) may be provided in filter segment 109. It may be disposed substantially centrally in the filter segment 109, both across the filter segment 109 diameter and along the filter segment 109 length. In other cases, it may be offset in one or more dimension.
- the capsule may in some cases, where present, contain a volatile component such as a flavourant or aerosol generating agent.
- the filter segment 109 is made of a 8Y15 grade of filter tow material, which provides a filtration effect on the heated volatilised material, whilst also reducing the size of condensed aerosol droplets which result from the heated volatilised material.
- the presence of the filter segment 109 provides an insulating effect by providing further cooling to the heated volatilised components that exit the cooling segment 107. This further cooling effect reduces the contact temperature of the user’s lips on the surface of the filter segment 109.
- the filter segment 109 is between 6mm to 10mm in length, suitably 8mm.
- the mouth end segment 111 is an annular tube and is located around and defines an air gap within the mouth end segment 111.
- the air gap provides a chamber for heated volatilised components that flow from the filter segment 109.
- the mouth end segment 111 is hollow to provide a chamber for aerosol accumulation yet rigid enough to withstand axial compressive forces and bending moments that might arise during manufacture and whilst the article is in use during insertion into the device 1.
- the thickness of the wall of the mouth end segment 111 is approximately 0.29mm.
- the length of the mouth end segment 111 is between 6mm to 10mm, suitably 8mm.
- the mouth end segment 111 may be manufactured from a spirally wound paper tube which provides a hollow internal chamber yet maintains critical mechanical rigidity. Spirally wound paper tubes are able to meet the tight dimensional accuracy requirements of high-speed manufacturing processes with respect to tube length, outer diameter, roundness and straightness.
- the mouth end segment 111 provides the function of preventing any liquid condensate that accumulates at the exit of the filter segment 109 from coming into direct contact with a user.
- FIGS 3 and 4 there are shown a partially cut-away section and perspective views of an example of an article 301.
- the reference signs shown in Figures 3 and 4 are equivalent to the reference signs shown in Figures 1 and 2, but with an increment of 200.
- the ventilation region 317 is provided in the article 301 to enable air to flow into the interior of the article 301 from the exterior of the article 301.
- the ventilation region 317 takes the form of one or more ventilation holes 317 formed through the outer layer of the article 301.
- the ventilation holes may be located in the cooling segment 307 to aid with the cooling of the article 301.
- the ventilation region 317 comprises one or more rows of holes, and preferably, each row of holes is arranged circumferentially around the article 301 in a cross-section that is substantially perpendicular to a longitudinal axis of the article 301.
- each row of ventilation holes may have between 12 to 36 ventilation holes 317.
- the ventilation holes 317 may, for example, be between 100 to 500pm in diameter.
- an axial separation between rows of ventilation holes 317 is between 0.25mm and 0.75mm, suitably 0.5mm.
- the rows of ventilation holes 317 are located at least 11mm from the proximal end 313 of the article, suitably between 17mm and 20mm from the proximal end 313 of the article 301.
- the location of the ventilation holes 317 is positioned such that user does not block the ventilation holes 317 when the article 301 is in use.
- Providing the rows of ventilation holes between 17mm and 20mm from the proximal end 313 of the article 301 enables the ventilation holes 317 to be located outside of the device 1 , when the article 301 is fully inserted in the device 1 , as can be seen in Figures 6 and 7.
- the length of the cooling segment 307 is such that the cooling segment 307 will be partially inserted into the device 1 , when the article 301 is fully inserted into the device 1.
- the length of the cooling segment 307 provides a first function of providing a physical gap between the heater arrangement of the device 1 and the heat sensitive filter arrangement 309, and a second function of enabling the ventilation holes 317 to be located in the cooling segment, whilst also being located outside of the device 1 , when the article 301 is fully inserted into the device 1 .
- the majority of the cooling element 307 is located within the device 1. However, there is a portion of the cooling element 307 that extends out of the device 1. It is in this portion of the cooling element 307 that extends out of the device 1 in which the ventilation holes 317 are located.
- FIG. 5 to 7 there is shown an example of a device 1 arranged to heat aerosol-generating composition to volatilise at least one component of said aerosol-generating composition, typically to form an aerosol which can be inhaled.
- the device 1 is a heating device which releases compounds by heating, but not burning, the aerosol-generating composition.
- the top panel 17 and/or the bottom panel 19 may be removably fixed to the uni-body sleeve 11 , to permit easy access to the interior of the device 1 , or may be “permanently” fixed to the uni-body sleeve 11 , for example to deter a user from accessing the interior of the device 1 .
- the panels 17 and 19 are made of a plastics material, including for example glass-filled nylon formed by injection moulding, and the uni-body sleeve 11 is made of aluminium, though other materials and other manufacturing processes may be used.
- the control circuitry 25 may include a controller, such as a microprocessor arrangement, configured and arranged to control the heating of the aerosolgenerating composition in the article 101 , 301 as discussed further below.
- a controller such as a microprocessor arrangement
- the heater arrangement 23 is generally in the form of a hollow cylindrical tube, having a hollow interior heating chamber 29 into which the article 101 , 301 comprising the aerosol-generating material is inserted for heating in use. Different arrangements for the heater arrangement 23 are possible.
- the heater arrangement 23 may comprise a single heating element or may be formed of plural heating elements aligned along the longitudinal axis of the heater arrangement 23.
- the or each heating element may be annular or tubular, or at least part-annular or part-tubular around its circumference.
- the or each heating element may be a thin film heater.
- the or each heating element may be made of a ceramics material. Examples of suitable ceramics materials include alumina and aluminium nitride and silicon nitride ceramics, which may be laminated and sintered.
- Other heating arrangements are possible, including for example inductive heating, infrared heater elements, which heat by emitting infrared radiation, or resistive heating elements formed by for example a resistive electrical winding.
- the heater arrangement 23 is supported by a stainless steel support tube and comprises a polyimide heating element.
- the heater arrangement 23 is dimensioned so that substantially the whole of the body of aerosolgenerating composition 103, 303 of the article 101 , 301 is inserted into the heater arrangement 23 when the article 101 , 301 is inserted into the device 1.
- the or each heating element may be arranged so that selected zones of the aerosol-generating material can be independently heated, for example in turn (over time, as discussed above) or together (simultaneously) as desired.
- the heater arrangement 23 in this example is surrounded along at least part of its length by a thermal insulator 31.
- the insulator 31 helps to reduce heat passing from the heater arrangement 23 to the exterior of the device 1. This helps to keep down the power requirements for the heater arrangement 23 as it reduces heat losses generally.
- the insulator 31 also helps to keep the exterior of the device 1 cool during operation of the heater arrangement 23.
- the insulator 31 may be a double-walled sleeve which provides a low pressure region between the two walls of the sleeve. That is, the insulator 31 may be for example a “vacuum” tube, i.e. a tube that has been at least partially evacuated so as to minimise heat transfer by conduction and/or convection.
- Other arrangements for the insulator 31 are possible, including using heat insulating materials, including for example a suitable foam-type material, in addition to or instead of a double-walled sleeve.
- the housing 9 may further comprises various internal support structures 37 for supporting all internal components, as well as the heating arrangement 23.
- the device 1 further comprises a collar 33 which extends around and projects from the opening 20 into the interior of the housing 9 and a generally tubular chamber 35 which is located between the collar 33 and one end of the vacuum sleeve 31 .
- the chamber 35 further comprises a cooling structure 35f, which in this example, comprises a plurality of cooling fins 35f spaced apart along the outer surface of the chamber 35, and each arranged circumferentially around outer surface of the chamber 35.
- the air gap 36 is around all of the circumference of the article 101 , 301 over at least part of the cooling segment 307.
- the collar 33 comprises a plurality of ridges 60 arranged circumferentially around the periphery of the opening 20 and which project into the opening 20.
- the ridges 60 take up space within the opening 20 such that the open span of the opening 20 at the locations of the ridges 60 is less than the open span of the opening 20 at the locations without the ridges 60.
- the ridges 60 are configured to engage with an article 101 , 301 inserted into the device to assist in securing it within the device 1.
- Open spaces (not shown in the Figures) defined by adjacent pairs of ridges 60 and the article 101 , 301 form ventilation paths around the exterior of the article 101 , 301. These ventilation paths allow hot vapours that have escaped from the article 101 , 301 to exit the device 1 and allow cooling air to flow into the device 1 around the article 101 , 301 in the air gap 36.
- the article 101 , 301 is removably inserted into an insertion point 20 of the device 1 , as shown in Figures 5 to 7.
- the body of aerosol-generating composition 103, 303 which is located towards the distal end 115, 315 of the article 101 , 301 , is entirely received within the heater arrangement 23 of the device 1.
- the proximal end 113, 313 of the article 101 , 301 extends from the device 1 and acts as a mouthpiece assembly for a user.
- the heater arrangement 23 will heat the article 101 , 301 to volatilise at least one component of the aerosol-generating composition from the body of aerosol-generating composition 103, 303.
- the primary flow path for the heated volatilised components from the body of aerosol-generating composition 103, 303 is axially through the article 101 , 301 , through the chamber inside the cooling segment 107, 307, through the filter segment 109, 309, through the mouth end segment 111 , 313 to the user.
- the temperature of the heated volatilised components that are generated from the body of aerosol-generating composition is between 60°C and 250°C, which may be above the acceptable inhalation temperature for a user. As the heated volatilised component travels through the cooling segment 107, 307, it will cool and some volatilised components will condense on the inner surface of the cooling segment 107, 307.
- cool air will be able to enter the cooling segment 307 via the ventilation holes 317 formed in the cooling segment 307. This cool air will mix with the heated volatilised components to provide additional cooling to the heated volatilised components.
- Another aspect of the invention provides a method of making an aerosolgenerating material in the form of non-linear strands, such as the aerosolgenerating material described herein.
- the method may comprise:
- Step (b) comprises ejecting the mixture through a nozzle.
- the shape of the nozzle may determine the cross-section of the material which is formed by the method of the invention.
- the nozzle has a circular shape.
- the cross-section of the final material will be circular or substantially circular.
- the term “nozzle” may be used interchangeably with terms “orifice” or “aperture”.
- the nozzle has a diameter of from about 0.05 mm, 0.1 mm, 0.2 mm or 0.3mm to about 3.0 mm, 2.0 mm, 1.0 mm, or 0.7mm. In some embodiments, the nozzle has a diameter of from about 0.05 to about 3.0 mm, from about 0.1 to about 2.0 mm, from about 0.2 to about 2.0 mm, or from about 0.3 to about 0.7 mm.
- step (b) comprises dispensing the mixture through a nozzle.
- step (b) comprises extruding the mixture through a nozzle.
- the mixture After the mixture is ejected from the nozzle, it has a velocity. This velocity may be imparted by gravity, i.e. because the mixture is ejected from the nozzle into a medium in which it can fall (e.g. air). Alternatively and/or additionally, the velocity may be imparted by the ejection process, i.e. because the mixture is forced through the nozzle and kinetic energy is imparted to the mixture.
- the mixture is generally ejected in the form of a continuous stream or flow of material.
- the mixture is ejected from the nozzle into a gaseous medium, such as air.
- the mixture may be contacted with the crosslinking agent by ejecting the mixture into a medium such as air directly above a solution comprising the crosslinking agent, with gravity (optionally together with any force applied to eject the mixture from the nozzle) acting to bring the mixture into contact with the solution.
- a medium such as air directly above a solution comprising the crosslinking agent
- the nozzle may eject the mixture in a series of pulses.
- step (c) may comprise pausing the ejection of the mixture from the nozzle at selected time intervals. This method may avoid or reduce the need to cut the strands.
- the length of the strands may be determined by the length of the time intervals. Generally, the longer the time interval the longer the strands.
- Step (c) comprises contacting the ejected mixture with a solution comprising a cross-linking agent, where the velocity of the mixture is reduced on contact with the solution.
- the crosslinkable binder will crosslink, thereby forming the cross-linked binder.
- the binder immediately crosslinks. This, combined with the reduction in velocity resulting from the impact of the mixture with the solution, is believed to result in the formation of the non-linear strands or gel fibers of the invention.
- the result of step (c) is an aerosol-generating material in the form of non-linear strands or gel fibers, i.e. an aerosol-generating material as defined herein.
- the solution comprising a cross-linking agent is provided in a vessel into which the ejected mixture falls and/or is forced.
- the solution is sprayed or otherwise applied onto the mixture after it is ejected and whilst it is moving with a velocity, with the contact between the ejected mixture and the crosslinking solution resulting in the desired reduction in the velocity of the ejected mixture.
- the crosslinking agent is used in the present methods in the form of a solution comprising the cross-linking agent.
- the solution is an aqueous solution comprising water and the cross-linking agent.
- the crosslinking agent is present in the solution in an excess amount, such that crosslinking agent remains after the binder is crosslinked.
- the concentration of cross-linking agent in the solution may range from about 0.01 M to about 2.0 M, from about 0.3 M to about 1 .5 M, or from about 0.5 M to about 1 .0 M.
- the slurry may comprise sodium, potassium or ammonium alginate as a precursor to the binder, and a setting agent or crosslinking agent comprising a calcium source (such as calcium formate, calcium acetate or calcium lactate) may be used to form a calcium alginate gel or binder.
- a setting agent or crosslinking agent comprising a calcium source such as calcium formate, calcium acetate or calcium lactate
- Alginate salts are derivatives of alginic acid and are typically high molecular weight polymers (10-600 kDa).
- Alginic acid is a copolymer of p-D-mannuronic (M) and a-L-guluronic acid (G) units (blocks) linked together with (1 ,4)-glycosidic bonds to form a polysaccharide.
- the amount of additional component (e.g. botanical extract) in the resulting non-linear strands may vary depending on how long the material is in contact with the solution. Generally, the longer the contact time between the material and the solution, the greater the amount of flavourant, active, aerosol generating agent (e.g. glycerol), and/or botanical extract in the resulting non-linear strands. Thus, the amount of flavourant, active, aerosol generating agent (e.g. glycerol), and/or botanical extract in the non-linear strands can be controlled by the contact time between the material and the solution. In some embodiments, the contact time between the material and the solution may be less than about 120 seconds. In some embodiments, the contact time between the material and the solution may range from about 5 seconds to about 120 seconds, from about 10 seconds to about 60 seconds, or from about 10 seconds to about 30 seconds.
- additional component e.g. botanical extract
- the solution further comprises a botanical extract in addition to the crosslinking agent.
- Suitable botanical extracts are set out above.
- the botanical extract can contain metal (e.g. calcium) ions which may cause crosslinking of the crosslinkable binder. As such, less crosslinking agent may be needed.
- the concentration of botanical extract in the solution may range from about 20 wt.% to about 90 wt.%, from about 25 wt.% to about 75 wt.%, or from about 30 wt.% to about 50 wt.%.
- Adding a botanical extract to the mixture in step (a) may result in early crosslinking of the crosslinkable binder, due to any metal (e.g. calcium) ion content of the botanical extract. This may result in undesired crosslinking of the mixture or slurry during step (a) before it is ejected through the nozzle and contacts the solution in step (b) and (c). This may prevent the slurry from being ejected through the nozzle and therefore prevent the formation of non-linear strands.
- any metal e.g. calcium
- step (a) When forming materials containing a botanical extract it may therefore be advantageous to form a slurry which does not comprise a botanical extract in step (a), and eject said slurry into a solution comprising a botanical extract. This method may also reduce the amount of crosslinkable binder required in the solution.
- the concentration of the aerosol-generating agent in the solution is substantially the same or the same as the concentration of the aerosolgenerating agent in the mixture. In this case, the concentration of aerosol-generating agent in the final aerosol-generating material will be the same or substantively the same as that in the mixture.
- the solution comprises an amount of aerosolgenerating agent which is within about 15 wt% of the amount of aerosol-generating agent in the mixture, such as within about 10 wt%, within about 5 wt% or within about 1 wt%.
- the method of the invention may further comprise:
- Step (d) of separating the material from the solution comprising the crosslinking agent may comprise manually removing the material from the solution, e.g. through filtration or sieving.
- the process described hereby may be continuous or batch process, but is generally a continuous process.
- the drying step (e) may comprise any suitable drying methods, including but not limited to, infrared (IR) heating, convention heating, air impingement, conductive heating and microwave heating.
- Conductive heating may comprise heating a surface on which the material is placed.
- the surface may be, for example, a metal or metal alloy (e.g. stainless steel) band.
- the surface may itself heat up (e.g. it is the surface of a heater) or be indirectly heated.
- the surface may be heated from below, for example using steam.
- the drying step (e) is performed using a belt dryer.
- the drying step (e) may, in some cases, remove from about 50wt%, 60wt%, 70wt%, 80wt% or 90wt% to about 80wt%, 90wt% or 95wt% (WWB) of water in the slurry.
- the material may be heated to remove at least about 60 wt%, 70 wt%, 80 wt%, 85 wt% or 90 wt% of the solvent, which is typically water.
- the aerosol-generating material may have a water content as defined above.
- the aerosol-generating material may have of from 1wt % to 15wt% (WWB).
- the water content of the aerosol-generating material may be from about 5wt%, 7wt% or 9wt% to about 15wt%, 13wt%, 11wt%, 9 wt% or 8 wt% (wet weight basis) (WWB).
- the aerosolgenerating material has a water content of less than about 9 wt% (WWB), such as less than about 8 wt% (WWB).
- WWB wt%
- the water content of the aerosol-generating material may, for example, be determined by Karl-Fischer-titration or Gas Chromatography with Thermal Conductivity Detector (GC-TCD).
- the solvent which is part of the slurry or mixture may consist essentially of or consist of water. In some cases, the slurry or mixture may comprise from about 50wt%, 60wt%, 70wt%, 80wt% or 90wt% of solvent (WWB).
- the dry weight content of the slurry may match the dry weight content of the aerosol-generating material.
- the discussion herein relating to the solid material is explicitly disclosed in combination with the slurry aspect of the invention.
- aspects and embodiments above defining components of the aerosol-generating material and amounts thereof apply mutatis mutandis to the slurry of the invention and the method of the invention.
- the method of the invention may also comprise cutting the non-linear strands to a desired free length. This step may occur before or after drying.
- the desired free length may be as set out hereinabove.
- the material is cut into a plurality of non-linear strands before drying step (e). Cutting the material into a plurality of non-linear strands (each shorter than the non-linear strand(s) initially formed) before drying the material can reduce tangling of the material, which can in turn make the material easier to process and/or incorporated into an article. Reducing tangling of the material may also make it easier to form a homogeneous mixture if the material is blended with tobacco.
- the non-linear strands may be arranged to form a net or mesh-like structure. In some embodiments, the non-linear strands may be joined or woven together to form sheets of aerosol-generating material. Such structures may be formed by arranging the strands into the shape of a net or mesh (e.g. a grid formation) before, during and/or after drying.
- a net or mesh e.g. a grid formation
- the invention also provides an aerosol-generating material obtainable by, or obtained by a method of the invention. Aspects and embodiments above defining components of the aerosol-generating material and amounts thereof apply mutatis mutandis to this further aspect of the invention.
- the method comprises heating the aerosolgenerating material (or the aerosol-generating composition) to a temperature of less than or equal to 350 °C. In some embodiments, the method comprises heating the aerosol-generating material (or the aerosol-generating composition) to a temperature of from about 220 °C to about 280 °C. In some embodiments, the method comprises heating at least a portion of the aerosol-generating material (or the aerosolgenerating composition) to a temperature of from about 220 °C to about 280 °C over a session of use.
- “Session of use” as used herein refers to a single period of use of the noncombustible aerosol provision system by a user.
- the session of use begins at the point at which power is first supplied to at least one heating unit present in the heating assembly.
- the device will be ready for use after a period of time has elapsed from the start of the session of use.
- the session of use ends at the point at which no power is supplied to any of the heating elements in the aerosol-generating device.
- the end of the session of use may coincide with the point at which the smoking article is depleted (the point at which the total particulate matter yield (mg) in each puff would be deemed unacceptably low by a user).
- the session will have a duration of a plurality of puffs.
- Embodiment 11 The aerosol-generating material of any preceding embodiment, wherein each of the non-linear strands has a thickness of from about 0.05 mm to about 3 mm.
- Embodiment 16 The aerosol-generating material of any preceding embodiment, wherein each of the non-linear strands has a thickness of from about 0.2 to about 1.1 mm.
- Embodiment 21 The aerosol-generating material of any preceding embodiment, wherein each of the non-linear strands has an uncoiled length of from about 10 mm to about 200 mm.
- Embodiment 29 The aerosol-generating material of any preceding embodiment, wherein the uncoiled length is greater than the coiled length.
- Embodiment 30 The aerosol-generating material of any preceding embodiment, wherein the ratio between the uncoiled length and the coiled length of each non-linear strand is at least about 1.2.
- Embodiment 36 The aerosol-generating material of any preceding embodiment, wherein the ratio between the uncoiled length and the coiled length of each non-linear strand is less than about 6.
- Embodiment 37 The aerosol-generating material of any preceding embodiment, wherein the ratio between the uncoiled length and the coiled length of each non-linear strand is from about 1.2 to about 10.
- Embodiment 38 The aerosol-generating material of any preceding embodiment, wherein the ratio between the uncoiled length and the coiled length of each non-linear strand is from about 1.5 to about 5.
- Embodiment 39 The aerosol-generating material of any preceding embodiment, wherein the ratio between the uncoiled length and the coiled length of each non-linear strand is from about 2 to about 5.
- Embodiment 41 The aerosol-generating material of any preceding embodiment, wherein the ratio between the uncoiled length and the diameter of each of the non-linear strands is from about 10 to about 100.
- Embodiment 42 The aerosol-generating material of any preceding embodiment, wherein the ratio between the uncoiled length and the diameter of each of the non-linear strands is from about 20 to about 50.
- Embodiment 45 The aerosol-generating material of any preceding embodiment, wherein the tensile strength of each strand ranges from about 0.5 N to about 1.3 N.
- Embodiment 46 The aerosol-generating material of any preceding embodiment, wherein the elongation of each strand ranges from about 1 .5% to about 50%.
- Embodiment 48 The aerosol-generating material of any preceding embodiment, wherein the elongation of each strand ranges from about 5% to about 25%.
- Embodiment 52 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material has a fill value of from about 4 cm 3 /g to about 6 cm 3 /g.
- Embodiment 55 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 10 to about 50 wt% aerosol-generating agent.
- Embodiment 67 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 15 to about 25 wt% binder.
- Embodiment 72 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material is substantially free of carboxymethylcellulose.
- Embodiment 72a The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises a crosslinked binder and a non-crosslinked binder.
- Embodiment 73 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises one or more fillers.
- Embodiment 74 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 1 to about 60 wt% filler.
- Embodiment 75 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 1 to about 50 wt% filler.
- Embodiment 78 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 18 to about 35 wt% filler.
- Embodiment 79 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 20 to about 30 wt% filler.
- Embodiment 81 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 10 to about 65 wt% filler.
- Embodiment 83 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 30 to about 60 wt% filler or from about 40 to about 60 wt% filler.
- Embodiment 83a The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 10 to about 80 wt% filler.
- Embodiment 83b The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 20 to about 70 wt% filler.
- Embodiment 83c The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 30 to about 65 wt% filler.
- Embodiment 88 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises less than about 20 wt% filler.
- Embodiment 91 The aerosol-generating material of any preceding embodiment, wherein the filler comprises wood pulp, MCC and/or ground cellulose.
- Embodiment 91a The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material has a water content of less than about 9 wt%.
- Embodiment 91b The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material has a water content of less than about 8 wt%.
- Embodiment 91c The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material comprises from about 1-70 wt% particulate botanical material.
- Embodiment 92 The aerosol-generating material of any preceding embodiment, wherein the aerosol-generating material is substantially free from tobacco.
- Embodiment 93a The aerosol-generating composition of Embodiment 93, wherein the aerosol-generating material is shredded and mixed with tobacco.
- Embodiment 93b The aerosol-generating composition of Embodiment 93 or 93a, wherein the aerosol-generating composition comprises from about 10-50 wt% aerosol-generating material and about 50-90 wt% tobacco.
- Embodiment 93c The aerosol-generating composition of any of Embodiments 93-93b, wherein the aerosol-generating composition comprises about 20-40 wt% aerosol-generating material and about 60-80 wt% tobacco.
- Embodiment 93d The aerosol-generating composition of any of Embodiments 93-93c comprising a mixture of the aerosol-generating material of the invention and dry ice expanded tobacco (DIET).
- DIET dry ice expanded tobacco
- Embodiment 93g The aerosol-generating composition of any of Embodiments 93-93f, wherein the aerosol-generating composition has a fill value of from about 4.5 cm 3 /g to about 9 cm 3 /g.
- Embodiment 93h The aerosol-generating composition of any of Embodiments 93-93g, wherein the aerosol-generating composition has a fill value of from about 5 cm 3 /g to about 9 cm 3 /g.
- Embodiment 94 The aerosol-generating composition of any of Embodiments 93- 93h further comprising one or more additional active substances and/or flavours, and optionally one or more other functional materials.
- Embodiment 96 The aerosol-generating composition of Embodiment 94 or 95, wherein the other functional materials comprise one or more of pH regulators, colouring agents, preservatives, binders, fillers, stabilizers, and/or antioxidants.
- the other functional materials comprise one or more of pH regulators, colouring agents, preservatives, binders, fillers, stabilizers, and/or antioxidants.
- Embodiment 97 The aerosol-generating composition of Embodiment 95, wherein the other functional materials comprise one or more fillers.
- Embodiment 98 The aerosol-generating composition of Embodiment 97, wherein the fillers are selected from inorganic filler materials, wood pulp, hemp fibre, cellulose and cellulose derivatives.
- Embodiment 99 The aerosol-generating composition of any of Embodiments 93-98, wherein the aerosol-generating composition comprises no calcium carbonate such as chalk.
- Embodiment 100 The aerosol-generating composition of any of Embodiments 93-
- Embodiment 101 The aerosol-generating composition of any of Embodiments 93-
- the aerosol-generating composition does not comprise tobacco fibres.
- Embodiment 102 The aerosol-generating composition of any of Embodiments 93-
- WWB wt%
- Embodiment 103 The aerosol-generating composition of any of Embodiments 93-
- Embodiment 104 The aerosol-generating composition of any of Embodiments 93-
- Embodiment 107 The aerosol-generating composition of any of Embodiments 93-
- Embodiment 108 The aerosol-generating composition of any of Embodiments 93-
- Embodiment 111 The aerosol-generating composition of any of Embodiments 93-
- Embodiment 112 A consumable for use in a non-combustible aerosol provision device, the consumable comprising the aerosol-generating composition of any of Embodiments 93-111.
- Embodiment 113 A non-combustible aerosol provision system comprising the consumable of Embodiment 112 and a non-combustible aerosol provision device.
- Embodiment 114 The consumable for use in a non-combustible aerosol provision device of Embodiment 112, or the non-combustible aerosol provision system of Embodiment 113, wherein the non-combustible aerosol provision device is a heat- not-burn device.
- Embodiment 115 A method of making the aerosol-generating material of any of Embodiments 1-92, the method comprising:
- Embodiment 116 The method of Embodiment 115, wherein the solution in step
- (c) further comprises one or more of a flavourant, an active, an aerosol generating agent (e.g. glycerol), and a botanical extract.
- a flavourant e.g. glycerol
- an aerosol generating agent e.g. glycerol
- Embodiment 117 The method of Embodiment 115 or 116, wherein the solution in step (c) further comprises an aerosol generating agent (e.g. glycerol) and/or a botanical extract.
- an aerosol generating agent e.g. glycerol
- step (d) separating the material formed in step (c) from the solution comprising the crosslinking agent.
- Embodiment 120 The method of Embodiment 119, further comprising:
- Embodiment 122 An aerosol-generating material obtainable by the method of any of claims Embodiments 115-121.
- the materials were conditioned in 22 ⁇ 1°C and 60 ⁇ 2%RH for 48hs.
- a gel slurry was made in a 10L Robot Coupe mixer (R 10 V.V Robot Coupe). Wood pulp having a Schopper Riegler of 70-80 SR was added to water to form a mixture of water and 3 wt% wood pulp. Alginate was added slowly over 5 minutes at a speed of 600RPM. Ground cellulose was then added slowly over 5 minutes into the slurry mix. This was followed by the addition of glycerol, mixed with water, which was added over 2 minutes. The final gel slurry was left to mix for a further 10 minutes before it was poured into a beaker. This slurry mix was then slowly stirred using an overhead mixer. The gel slurry had a 15% solid content.
- the resultant slurry comprised wood pulp (7.5wt%), alginate algogel 6021 (7.5wt%), glycerol (50wt%), ground cellulose (35wt%) (all weight percentages on a dry weight basis).
- the gel slurry was pumped into a 0.06M calcium formate bath solution using a 620S Watson Marlow peristaltic pump, using a 2.0mm circular nozzle.
- the residence time was 0 mins (gel strands in mesh tray were removed immediately) and gel strands were dried at 70°C for 3 hours.
- the tensile strength of individual strands selected from the material was measured using tensile/compression instrument Instron 68TM-5 (TCT_004) using Bluehill Universal software.
- Non-linear strands to be tested were visually selected from the bulk sample material avoiding clumping with the rest of the sample and with approximately 4 to 6 cm coiled length. Strands were cut from the rest of the sample material. Examples of the strands tested are shown in Figure 13.
- Keyence VHX-6000 (DMI_001) was used to measure the coiled and uncoiled length of the strands. An image of an example strand is shown in Figure 14. Selective sampling technique was applied instead of random sampling. Strands were visually selected avoiding clumping with the rest of the sample. Strands were cut from the rest of the sample.
- a series of materials were made by forming a gel slurry in a 10L Robot Coupe mixer (R 10 V.V Robot Coupe) as follows. Wood pulp having a Schopper Riegler of 70-80 SR was added to water to form a mixture of water and 3 wt% wood pulp. Alginate was added slowly over 5 minutes at a speed of 600RPM. Ground cellulose was then added slowly over 5 minutes into the slurry mix. This was followed by the addition of glycerol, mixed with water, which was added over 2 minutes. The final gel slurry was left to mix for a further 10 minutes before it was poured into a beaker. This slurry mix was then slowly stirred using an overhead mixer. The gel slurry had a 15% solid content.
- the resultant slurry comprised wood pulp, alginate algogel 6021 , glycerol and ground cellulose, with the percentages of each component set out in Table 5 below.
- the gel slurry was pumped into a 0.06M calcium formate bath solution using a 620S Watson Marlow peristaltic pump, using a 2.0 mm, 1.5 mm or 0.5 mm diameter circular nozzle.
- the residence time in the bath solution was Omins (gel strands in mesh tray were removed immediately) and the gel strands were subsequently dried at 70 °C for 3 hours.
- the fill value was also measured for a known comparative aerosol-generating material comprising 50wt% glycerol, 7wt% wood pulp, 7wt% CMC and 36wt% ground cellulose.
- the fill value for this comparative material which was not in the form of non-linear strands of the present invention, was measured to be 2.696 cm 3 /g.
- the gel slurry was pumped into a 0.06M calcium formate bath solution using a 620S Watson Marlow peristaltic pump, using a 0.5mm circular nozzle.
- the residence time was 0 mins (gel strands in mesh tray were removed immediately) and gel strands were dried at 70°C for 3 hours.
- the resultant materials comprised alginate algogel 6021 (7.5wt%), glycerol (20wt%), ground cellulose (50wt%), and MCC (22.5wt%).
- a gel slurry was made in a 10L Robot Coupe mixer (R 10 V.V Robot Coupe). Alginate and iota-carrageenan were added slowly to water over 5 minutes at a speed of 600RPM. Ground cellulose was then added slowly over 5 minutes into the slurry mix. Microcrystalline cellulose (MCC) was then added slowly over 5 minutes into the slurry mix. This was followed by the addition of glycerol, mixed with water, which was added over 2 minutes. The final gel slurry was left to mix for a further 10 minutes before it was poured into a beaker. This slurry mix was then slowly stirred using an overhead mixer. The gel slurry had a 15% solid content.
- the slurry was pumped into a calcium formate bath solution also comprising 20 wt% glycerol using a 0.8 mm or 1.0 mm circular nozzle.
- the residence time was 30 seconds and gel strands were dried in a heat tunnel at 120°C for 3.5 minutes.
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- Toxicology (AREA)
- General Health & Medical Sciences (AREA)
- Agronomy & Crop Science (AREA)
- Botany (AREA)
- Life Sciences & Earth Sciences (AREA)
- Manufacture Of Tobacco Products (AREA)
- Compositions Of Macromolecular Compounds (AREA)
- Cigarettes, Filters, And Manufacturing Of Filters (AREA)
- Pharmaceuticals Containing Other Organic And Inorganic Compounds (AREA)
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Abstract
Description
Claims
Applications Claiming Priority (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| GBGB2215504.8A GB202215504D0 (en) | 2022-10-20 | 2022-10-20 | Aerosol generating composition |
| GBGB2302867.3A GB202302867D0 (en) | 2023-02-27 | 2023-02-27 | Aerosol generating composition |
| GBGB2313019.8A GB202313019D0 (en) | 2023-08-25 | 2023-08-25 | Aerosol generating composition |
| PCT/EP2023/079333 WO2024084062A1 (en) | 2022-10-20 | 2023-10-20 | An aerosol-generating material in the form of one or more non-linear strands |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4604748A1 true EP4604748A1 (en) | 2025-08-27 |
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ID=88511493
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23793831.1A Pending EP4604748A1 (en) | 2022-10-20 | 2023-10-20 | An aerosol-generating material in the form of one or more non-linear strands |
Country Status (6)
| Country | Link |
|---|---|
| EP (1) | EP4604748A1 (en) |
| JP (1) | JP2025533781A (en) |
| KR (1) | KR20250079162A (en) |
| AR (1) | AR130827A1 (en) |
| TW (1) | TW202421013A (en) |
| WO (1) | WO2024084062A1 (en) |
Family Cites Families (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| NZ718007A (en) | 2013-10-29 | 2017-06-30 | British American Tobacco Investments Ltd | Apparatus for heating smokable material |
| RU2664376C1 (en) | 2015-02-27 | 2018-08-16 | Бритиш Америкэн Тобэкко (Инвестментс) Лимитед | Cartridge, components and methods of the inhaled environment generating |
| WO2021078683A1 (en) * | 2019-10-21 | 2021-04-29 | Philip Morris Products S.A. | Novel aerosol-generating substrate comprising illicium species |
| GB201917473D0 (en) * | 2019-11-29 | 2020-01-15 | Nicoventures Trading Ltd | Aerosol generation |
| GB201917475D0 (en) * | 2019-11-29 | 2020-01-15 | Nicoventures Trading Ltd | Aerosol generation |
| GB202006633D0 (en) * | 2020-05-05 | 2020-06-17 | Nicoventures Holdings Ltd | Aerosol generating material |
| GB202011953D0 (en) * | 2020-07-31 | 2020-09-16 | Nicoventures Trading Ltd | Consumable for an aerosol provision sysytem |
-
2023
- 2023-10-20 WO PCT/EP2023/079333 patent/WO2024084062A1/en not_active Ceased
- 2023-10-20 TW TW112140268A patent/TW202421013A/en unknown
- 2023-10-20 EP EP23793831.1A patent/EP4604748A1/en active Pending
- 2023-10-20 KR KR1020257012671A patent/KR20250079162A/en active Pending
- 2023-10-20 JP JP2025518472A patent/JP2025533781A/en active Pending
- 2023-10-20 AR ARP230102813A patent/AR130827A1/en unknown
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| Publication number | Publication date |
|---|---|
| TW202421013A (en) | 2024-06-01 |
| JP2025533781A (en) | 2025-10-09 |
| KR20250079162A (en) | 2025-06-04 |
| AR130827A1 (en) | 2025-01-22 |
| WO2024084062A1 (en) | 2024-04-25 |
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