Field
[0001] The present disclosure relates to electronic aerosol provision systems such as nicotine
delivery systems (e.g. electronic cigarettes and the like).
Background
[0002] Electronic aerosol provision systems such as electronic cigarettes (e-cigarettes)
generally contain a reservoir of a source liquid containing a formulation, typically
including nicotine, from which an aerosol is generated, e.g. through heat vaporisation.
An aerosol source for an aerosol provision system may thus comprise a heater having
a heating element arranged to receive source liquid from the reservoir, for example
through wicking / capillary action. While a user inhales on the device, electrical
power is supplied to the heating element to vaporise source liquid in the vicinity
of the heating element to generate an aerosol for inhalation by the user. Such devices
are usually provided with one or more air inlet holes located away from a mouthpiece
end of the system. When a user sucks on a mouthpiece connected to the mouthpiece end
of the system, air is drawn in through the inlet holes and past the aerosol source.
There is a flow path connecting the aerosol source and an opening in the mouthpiece
so that air drawn past the aerosol source continues along the flow path to the mouthpiece
opening, carrying some of the aerosol from the aerosol source with it. The aerosol-carrying
air exits the aerosol provision system through the mouthpiece opening for inhalation
by the user.
[0003] Typically, such aerosol provision systems deliver aerosols having certain characteristics
that may be a function of different aspects of the aerosol provision system itself
and/or of the user's inhalation on the aerosol provision system. However, such characteristics
may be inherent to the aerosol provision system, and thus not capable of being changed
in order to meet a particular user's demands or preferences. Alternatively, some characteristics
may vary depending on the user's inhalation of the aerosol provision system, and therefore
although variable, are not necessarily variable in a reliable or consistent manner.
[0004] Various approaches are described which seek to help address some of these issues.
Summary
[0005] According to a first aspect of certain embodiments there is provided an aerosol provision
system for generating aerosol from aerosol-generating material, the aerosol provision
system including an aerosol-generating material storage portion for storing an aerosol-generating
material; an aerosol generator for generating aerosol from aerosol-generating material
from the aerosol-generating material storage portion; an air path extending from an
air inlet to an outlet, wherein the aerosol generator is arranged at least partly
in the air path; and an air path direction adjustor configured to selectively adjust
the direction along which air flows in the vicinity of the aerosol generator. The
air path direction adjustor is configured to switch between a first configuration
in which air in the vicinity of the aerosol generator flows in a first direction relative
to the aerosol generator and a second configuration in which air in the vicinity of
the aerosol generator flows in a second direction relative to the aerosol generator,
the first direction being different to the second direction.
[0006] In some examples, the first and second configurations are set such that aerosol generated
and delivered to the user when the air path direction adjustor is in the first configuration
has a different average particle size to aerosol generated and delivered to the user
when the air path direction adjustor is in the second configuration.
[0007] In some examples, the first direction is a direction that is at, or substantially
at, 90° to the second direction.
[0008] In some examples, the first direction is a direction that is perpendicular, or substantially
perpendicular, to a plane of the aerosol generator that, in use, is configured to
generate aerosol such that the air flow along the first direction is perpendicular
to, or substantially perpendicular, to the plane of the aerosol generator.
[0009] In some examples, when the air path direction adjustor is in the first configuration,
the air path is arranged such that the flow of air along the air path impinges upon
the plane of the aerosol generator that, in use, is configured to generate aerosol.
[0010] In some examples, the second direction is a direction that is parallel, or substantially
parallel, to a plane of the aerosol generator that, in use, is configured to generate
aerosol such that the air flow along the second direction is parallel, or substantially
parallel, to the plane of the aerosol generator.
[0011] In some examples, the air path direction adjustor is, or comprises, a component that
is moveably mounted with respect to a housing of the aerosol provision system, and
wherein the air path direction adjustor is in the first configuration when the air
path direction adjustor is moved to a first position and is in the second configuration
when the air path direction adjustor is moved to a second position.
[0012] In some examples, the air path direction adjustor comprises a first subsection of
the air path and a second subsection of the air path, wherein the air path direction
adjustor is configured to select between fluidly coupling the first subsection of
the air path to the air path and fluidly coupling the second subsection of the air
path to the air path, wherein the first and second subsections of the air path are
different from one another.
[0013] In some examples, the air path direction adjustor comprises the first and second
subsections of the air path such that, in use, air flows through the air path direction
adjustor along either of the first or second subsections of the air path.
[0014] In some examples, the air path direction adjustor is, or comprises, a rotatable component,
and wherein the rotatable component is capable of being rotated about an axis of the
rotatable component to the first and second positions.
[0015] In some examples, the rotatable component is a cylinder, and wherein the cylinder
comprises a baffle extending from one side of the cylinder, wherein the baffle is
arranged such that the baffle guides the flow of air in the air path in either of
the first configuration or the second configuration such that the flow of air is substantially
along the first direction or second direction.
[0016] In some examples, the air path direction adjustor comprises or is coupled to an actuator
capable of moving the air path direction adjustor between the first and second positions.
[0017] In some examples, the aerosol provision system comprises a cartridge and an aerosol
provision device, wherein the cartridge and the aerosol provision device are releasably
engaged with one another, wherein the cartridge comprises the aerosol-generating material
storage portion, the aerosol generator, and the air path direction adjustor, wherein
the air path direction adjustor is accessible to a user when the cartridge is disengaged
with the aerosol provision device.
[0018] In some examples, the air path direction adjustor is configured to be capable of
switching to a third configuration between the first configuration and the second
configuration, in which air in the vicinity of the aerosol generator is able to flow
in the first direction relative to the aerosol generator and in the second direction
relative to the aerosol generator.
[0019] In some examples, the air path direction adjustor is capable of varying the proportion
of air flowing along the first direction and the second direction in the vicinity
of the aerosol generator in order to adjust the average particle size of the aerosol
generated.
[0020] According to a second aspect of certain embodiments there is provided an article
for use with an aerosol provision device, wherein the article is adapted to releasably
couple to the aerosol provision device to form an aerosol provision system for generating
aerosol from aerosol-generating material, the article including an aerosol-generating
material storage portion for storing an aerosol-generating material; an aerosol generator
for generating aerosol from aerosol-generating material from the aerosol-generating
material storage portion; an air path extending from an air inlet to an outlet, wherein
the aerosol generator is arranged at least partly in the air path; and an air path
direction adjustor configured to selectively adjust the direction along which air
flows in the vicinity of the aerosol generator. The air path direction adjustor is
configured to switch between a first configuration in which air in the vicinity of
the aerosol generator flows in a first direction relative to the aerosol generator
and a second configuration in which air in the vicinity of the aerosol generator flows
in a second direction relative to the aerosol generator, the first direction being
different to the second direction.
[0021] According to a third aspect of certain embodiments there is provided a method for
adjusting the configuration of an air path direction adjustor of an aerosol provision
system, the aerosol provision system comprising an aerosol-generating material storage
portion for storing an aerosol-generating material, an aerosol generator for generating
aerosol from aerosol-generating material from the aerosol-generating material storage
portion, and an air path extending from an air inlet to an outlet, wherein the aerosol
generator is arranged at least partly in the air path, wherein the method including
adjusting the direction along which air flows in the vicinity of the aerosol generator
using the air path direction adjustor by switching between a first configuration of
the air path direction adjustor in which air in the vicinity of the aerosol generator
flows in a first direction relative to the aerosol generator and a second configuration
of the air path direction adjustor in which air in the vicinity of the aerosol generator
flows in a second direction relative to the aerosol generator, the first direction
being different to the second direction.
[0022] It will be appreciated that features and aspects of the invention described above
in relation to the first and other aspects of the invention are equally applicable
to, and may be combined with, embodiments of the invention according to other aspects
of the invention as appropriate, and not just in the specific combinations described
above.
Brief Description of the Drawings
[0023] Embodiments of the invention will now be described, by way of example only, with
reference to the accompanying drawings, in which:
Figure 1 is a schematic cross-sectional view of an aerosol provision system comprised
of an aerosol provision device and a cartridge in accordance with aspects of the present
disclosure, wherein the aerosol provision system comprises an air path direction adjustor
according to a first aspect of the present disclosure;
Figure 2 is a schematic cross-sectional view of the aerosol provision system of Figure
1 showing the air path direction adjustor in more detail, and in particular, where
the air path direction adjustor is provided in a first configuration in which the
air flow in the vicinity of the aerosol generator is along a first direction;
Figure 3 is a schematic cross-sectional view of the aerosol provision system of Figure
1 showing the air path direction adjustor in more detail, and in particular, where
the air path direction adjustor is provided in a second configuration in which the
air flow in the vicinity of the aerosol generator is along a second direction, different
to the first direction;
Figure 4 schematically shows the air path direction adjustor of Figures 2 and 3, where
the air path direction adjustor is in a further configuration that is part way between
the first and second configurations of Figures 2 and 3;
Figure 5 is a perspective, exploded view of a cartridge of an aerosol provision system
in accordance with aspects of the present disclosure, wherein the cartridge comprises
an air path direction adjustor according to a second aspect of the present disclosure;
Figure 6 is a schematic perspective view of the cartridge of Figure 5 showing the
air path direction adjustor in more detail, and in particular, where the air path
direction adjustor is provided in a first configuration in which the air flow in the
vicinity of the aerosol generator is along a first direction;
Figure 7 is a schematic perspective view of the cartridge of Figure 5 showing the
air path direction adjustor in more detail, and in particular, where the air path
direction adjustor is provided in a second configuration in which the air flow in
the vicinity of the aerosol generator is along a second direction, different to the
first direction;
Figure 8 is an example graph showing the average particle sizes of generated aerosol
obtained using an aerosol provision system implementing a similar cartridge design
to
Figures 5 to 7, wherein the graph of Figure 8 show the average particle sizes of the
aerosol obtained when the air path direction adjustor is in the first configuration
and when the air path direction adjustor is in the second configuration;
Figure 9 is a perspective view of a modification to the air path direction adjustor
of Figures 5 to 7, wherein the air path direction adjustor comprises a baffle to help
facilitate the flow of air along a common direction in the second configuration; and
Figure 10 is an example method for adjusting the configuration of the air path direction
adjustor according to aspects of the present disclosure.
Detailed Description
[0024] Aspects and features of certain examples and embodiments are discussed / described
herein. Some aspects and features of certain examples and embodiments may be implemented
conventionally and these are not discussed / described in detail in the interests
of brevity. It will thus be appreciated that aspects and features of apparatus and
methods discussed herein which are not described in detail may be implemented in accordance
with any conventional techniques for implementing such aspects and features.
[0025] As used herein, the term "delivery system" is intended to encompass systems that
deliver at least one substance to a user, and includes:
non-combustible aerosol provision systems that release compounds from an aerosol-generating
material without combusting the aerosol-generating material, such as electronic cigarettes,
tobacco heating products, and hybrid systems to generate aerosol using a combination
of aerosol-generating materials.
[0026] According to the present disclosure, a "non-combustible" aerosol provision system
is one where a constituent aerosol-generating material of the aerosol provision system
(or component thereof) is not combusted or burned in order to facilitate delivery
of at least one substance to a user.
[0027] In some embodiments, the non-combustible aerosol provision system is a powered non-combustible
aerosol provision system.
[0028] In some embodiments, the non-combustible aerosol provision system is an electronic
cigarette, also known as a vaping device, electronic cigarette or electronic nicotine
delivery system (END), although it is noted that the presence of nicotine in the aerosol-generating
material is not a requirement. Throughout the following description the term "e-cigarette"
is sometimes used but this term may be used interchangeably with aerosol (vapour)
provision system.
[0029] In some embodiments, the non-combustible aerosol provision system is an aerosol-generating
material heating system, also known as a heat-not-burn system. An example of such
a system is a tobacco heating system.
[0030] In some embodiments, the non-combustible aerosol provision system is a hybrid system
to generate aerosol using a combination of aerosol-generating materials, one or a
plurality of which may be heated. Each of the aerosol-generating materials may be,
for example, in the form of a solid, liquid or gel and may or may not contain nicotine.
In some embodiments, the hybrid system comprises a liquid or gel aerosol-generating
material and a solid aerosol-generating material. The solid aerosol-generating material
may comprise, for example, tobacco or a non-tobacco product.
[0031] Aerosol-generating material is a material that is capable of generating aerosol,
for example when heated, irradiated or energized in any other way. Aerosol-generating
material may, for example, be in the form of a solid, liquid or gel which may or may
not contain an active substance and/or flavourants.
[0032] The aerosol-generating material may comprise one or more active substances and/or
flavours, one or more aerosol-former materials, and optionally one or more other functional
material.
[0033] The aerosol-generating material may comprise a binder, such as a gelling agent, and
an aerosol former. Optionally, a substance to be delivered and/or filler may also
be present. Optionally, a solvent, such as water, is also present and one or more
other components of the aerosol-generating material may or may not be soluble in the
solvent. In some embodiments, the aerosol-generating material is substantially free
from botanical material. In particular, in some embodiments, the aerosol-generating
material is substantially tobacco free.
[0034] The aerosol-generating material may comprise or be in the form of an aerosol-generating
film. The aerosol-generating film may comprise a binder, such as a gelling agent,
and an aerosol former. Optionally, a substance to be delivered and/or filler may also
be present. The aerosol-generating film may be substantially free from botanical material.
In particular, in some embodiments, the aerosol-generating material is substantially
tobacco free.
[0035] The aerosol-generating film may have a thickness of about 0.015 mm to about 1 mm.
For example, the thickness may be in the range of about 0.05 mm, 0.1 mm or 0.15 mm
to about 0.5 mm or 0.3 mm.
[0036] The aerosol-generating film may be continuous. For example, the film may comprise
or be a continuous sheet of material. The sheet may be in the form of a wrapper, it
may be gathered to form a gathered sheet or it may be shredded to form a shredded
sheet. The shredded sheet may comprise one or more strands or strips of aerosol-generating
material.
[0037] The aerosol-generating film may be discontinuous. For example, the aerosol-generating
film may comprise one or more discrete portions or regions of aerosol-generating material,
such as dots, stripes or lines, which may be supported on a support. In such embodiments,
the support may be planar or non-planar.
[0038] The aerosol-generating film may be formed by combining a binder, such as a gelling
agent, with a solvent, such as water, an aerosol-former and one or more other components,
such as one or more substances to be delivered, to form a slurry and then heating
the slurry to volatilise at least some of the solvent to form the aerosol-generating
film.
[0039] The slurry may be heated to remove at least about 60 wt%, 70 wt%, 80 wt%, 85 wt%
or 90 wt% of the solvent.
[0040] The aerosol-generating material may comprise or be an "amorphous solid". In some
embodiments, the aerosol-generating materiel comprises an aerosol-generating film
that is an amorphous solid. The amorphous solid may be a "monolithic solid". The amorphous
solid may be substantially non-fibrous. In some embodiments, the amorphous solid may
be a dried gel. The amorphous solid is a solid material that may retain some fluid,
such as liquid, within it. In some embodiments, the amorphous solid may, for example,
comprise from about 50wt%, 60wt% or 70wt% of amorphous solid, to about 90wt%, 95wt%
or 100wt% of amorphous solid.
[0041] The amorphous solid may be substantially free from botanical material. The amorphous
solid may be substantially tobacco free.
[0042] In some embodiments, the substance to be delivered comprises an active substance.
[0043] The active substance as used herein may be a physiologically active material, which
is a material intended to achieve or enhance a physiological response. The active
substance may for example be selected from nutraceuticals, nootropics, psychoactives.
The active substance may be naturally occurring or synthetically obtained. The active
substance may comprise for example nicotine, caffeine, taurine, theine, vitamins such
as B6 or B12 or C, melatonin, cannabinoids, or constituents, derivatives, or combinations
thereof. The active substance may comprise one or more constituents, derivatives or
extracts of tobacco, cannabis or another botanical.
[0044] In one embodiment the active substance is a legally permissible recreational drug.
[0045] In some implementations, the active substance comprises nicotine. In some implementations,
the active substance comprises caffeine, melatonin or vitamin B12.
[0046] As noted herein, the active substance may comprise one or more constituents, derivatives
or extracts of cannabis, such as one or more cannabinoids or terpenes.
[0047] The active substance may be CBD or a derivative thereof.
[0048] As noted herein, the active substance may comprise or be derived from one or more
botanicals or constituents, derivatives or extracts thereof. As used herein, the term
"botanical" includes any material derived from plants including, but not limited to,
extracts, leaves, bark, fibres, stems, roots, seeds, flowers, fruits, pollen, husk,
shells or the like. Alternatively, the material may comprise an active compound naturally
existing in a botanical, obtained synthetically. The material may be in the form of
liquid, gas, solid, powder, dust, crushed particles, granules, pellets, shreds, strips,
sheets, or the like. 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 balm, lemon basil, chive, carvi, verbena, tarragon, geranium,
mulberry, ginseng, theanine, theacrine, maca, ashwagandha, damiana, guarana, chlorophyll,
baobab or any combination thereof. The mint may be chosen from the following mint
varieties: Mentha Arventis, Mentha c.v.,Mentha niliaca, Mentha piperita, Mentha piperita
citrata c.v.,Mentha piperita c.v, Mentha spicata crispa, Mentha cardifolia, Memtha
longifolia, Mentha suaveolens variegata, Mentha pulegium, Mentha spicata c.v. and
Mentha suaveolens.
[0049] In some embodiments, the active substance comprises or is derived from one or more
botanicals or constituents, derivatives or extracts thereof and the botanical is tobacco.
[0050] In some embodiments, the active substance comprises or is derived from one or more
botanicals or constituents, derivatives or extracts thereof and the botanical is selected
from eucalyptus, star anise, cocoa and hemp.
[0051] In some embodiments, the active substance comprises or derived from one or more botanicals
or constituents, derivatives or extracts thereof and the botanical is selected from
rooibos and fennel.
[0052] As used herein, the terms "flavour" and "flavourant" refer to materials which, where
local regulations permit, may be used to create a desired taste or aroma 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, whiskey, gin, tequila, rum, spearmint,
peppermint, lavender, aloe vera, cardamom, celery, cascarilla, nutmeg, sandalwood,
bergamot, geranium, khat, naswar, betel, shisha, pine, honey essence, rose oil, vanilla,
lemon oil, orange oil, orange blossom, cherry blossom, cassia, caraway, cognac, jasmine,
ylang-ylang, sage, fennel, wasabi, piment, ginger, coriander, coffee, hemp, a mint
oil from any species of the genus Mentha, eucalyptus, star anise, cocoa, lemongrass,
rooibos, flax, ginkgo biloba, hazel, hibiscus, laurel, mate, orange skin, rose, tea
such as green tea or black tea, thyme, juniper, elderflower, basil, bay leaves, cumin,
oregano, paprika, rosemary, saffron, lemon peel, mint, beefsteak plant, curcuma, cilantro,
myrtle, cassis, valerian, pimento, mace, damien, marjoram, olive, lemon balm, lemon
basil, chive, carvi, verbena, tarragon, limonene, thymol, camphene), flavour enhancers,
bitterness receptor site blockers, sensorial receptor site activators or stimulators,
sugars and/or sugar substitutes (e.g., sucralose, acesulfame potassium, aspartame,
saccharine, cyclamates, lactose, sucrose, glucose, fructose, sorbitol, or mannitol),
and other additives such as charcoal, chlorophyll, minerals, botanicals, or breath
freshening agents. They may be imitation, 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.
[0053] In some embodiments, the flavour comprises menthol, spearmint and/or peppermint.
In some embodiments, the flavour comprises flavour components of cucumber, blueberry,
citrus fruits and/or redberry. In some embodiments, the flavour comprises eugenol.
In some embodiments, the flavour comprises flavour components extracted from tobacco.
In some embodiments, the flavour comprises flavour components extracted from cannabis.
[0054] In some embodiments, the flavour may comprise a sensate, which is intended to achieve
a somatosensorial sensation which are usually chemically induced and perceived by
the stimulation of the fifth cranial nerve (trigeminal nerve), in addition to or in
place of aroma or taste nerves, and these may include agents providing heating, cooling,
tingling, numbing effect. A suitable heat effect agent may be, but is not limited
to, vanillyl ethyl ether and a suitable cooling agent may be, but not limited to eucolyptol,
WS-3.
[0055] The aerosol-former material may comprise one or more constituents capable of forming
an aerosol. In some embodiments, the aerosol-former material may comprise one or more
of glycerine, 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.
[0056] The one or more other functional materials may comprise one or more of pH regulators,
colouring agents, preservatives, binders, fillers, stabilizers, and/or antioxidants.
[0057] An aerosol-modifying agent is a substance, typically located downstream of the aerosol
generation area, that is configured to modify the aerosol generated, for example by
changing the taste, flavour, acidity or another characteristic of the aerosol. The
aerosol-modifying agent may be provided in an aerosol-modifying agent release component,
that is operable to selectively release the aerosol-modifying agent.
[0058] The aerosol-modifying agent may, for example, be an additive or a sorbent. The aerosol-modifying
agent may, for example, comprise one or more of a flavourant, a colourant, water,
and a carbon adsorbent. The aerosol-modifying agent may, for example, be a solid,
a liquid, or a gel. The aerosol-modifying agent may be in powder, thread or granule
form. The aerosol-modifying agent may be free from filtration material.
[0059] In some implementations, the aerosol provision systems comprise a modular assembly
including an aerosol provision device (sometimes referred to as a reusable part) and
an article comprising aerosol-generating material (sometimes referred to as a consumable
or a replaceable part). However, in other implementations, the aerosol provision systems
may comprise a one-piece arrangement where the article and aerosol provision device
are integrally formed.
[0060] Typically, the non-combustible aerosol provision system may comprise a non-combustible
aerosol provision device and a consumable for use with the non-combustible aerosol
provision device. In some embodiments, the disclosure relates to consumables comprising
aerosol-generating material and configured to be used with non-combustible aerosol
provision devices. These consumables are sometimes referred to as articles throughout
the disclosure.
[0061] In some embodiments, the non-combustible aerosol provision system, such as a non-combustible
aerosol provision device thereof, may comprise a power source and a controller. The
power source may, for example, be an electric power source or an exothermic power
source. In some embodiments, the exothermic power source comprises a carbon substrate
which may be energised so as to distribute power in the form of heat to an aerosol-generating
material or to a heat transfer material in proximity to the exothermic power source.
[0062] In some embodiments, the non-combustible aerosol provision system may comprise an
area for receiving the consumable, an aerosol generator, an aerosol generation area,
a housing, a mouthpiece, a filter and/or an aerosol-modifying agent.
[0063] In some embodiments, the consumable for use with the non-combustible aerosol provision
device may comprise aerosol-generating material, an aerosol-generating material storage
area, an aerosol-generating material transfer component, an aerosol generator, an
aerosol generation area, a housing, a wrapper, a filter, a mouthpiece, and/or an aerosol-modifying
agent.
[0064] A consumable is an article comprising or consisting of aerosol-generating material,
part or all of which is intended to be consumed during use by a user. A consumable
may comprise one or more other components, such as an aerosol-generating material
storage area (or storage portion), an aerosol-generating material transfer component,
an aerosol generation area, a housing, a wrapper, a filter, a mouthpiece, and/or an
aerosol-modifying agent. A consumable may also comprise an aerosol generator, such
as a heater, that emits heat to cause the aerosol-generating material to generate
aerosol in use. The heater may, for example, comprise combustible material, a material
heatable by electrical conduction, or a susceptor.
[0065] A susceptor is a material that is heatable by penetration with a varying magnetic
field, such as an alternating magnetic field. The susceptor 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 susceptor may be both electrically-conductive
and magnetic, so that the susceptor is heatable by both heating mechanisms. The device
that is configured to generate the varying magnetic field is referred to as a magnetic
field generator, herein.
[0066] An aerosol generator is an apparatus configured to cause aerosol to be generated
from the aerosol-generating material. In some implementations, the aerosol generator
is a heater configured to subject the aerosol-generating material to heat energy,
so as to release one or more volatiles from the aerosol-generating material to form
an aerosol. In some implementations, the aerosol generator is configured to cause
an aerosol to be generated from the aerosol-generating material without heating. For
example, the aerosol generator may be configured to subject the aerosol-generating
material to one or more of vibration, increased pressure, or electrostatic energy.
[0067] The following description will focus on embodiments in which the aerosol provision
system is one in which a source liquid as the aerosol-generating material is vaporised
to generate an aerosol for user inhalation. In such embodiments, the article is more
commonly referred to as a cartridge. The cartridge mechanically engages with the aerosol
provision device as described above. However, it should be appreciated that the principles
of the present disclosure are applicable to aerosol provision systems capable of vaporising
different aerosol-generating materials, such as solids or gels, as described above.
More generally, the principles of the present disclosure apply to aerosol provision
systems for use with any suitable aerosol-generating materials.
[0068] Figure 1 is a cross-sectional view through an aerosol provision system 1 provided
in accordance with certain aspects of the disclosure.
[0069] The aerosol provision system 1 shown in Figure 1 comprises two main components, namely
an aerosol provision device 2 and a replaceable / disposable cartridge 4 (which is
an example of a consumable or article). The aerosol provision system 1 of Figure 1
is an example of a modular construction of an aerosol provision system 1. In this
regard, the aerosol provision device 2 and the cartridge 4 are able to engage with
or disengage from one another at an interface 6. However, as mentioned above, the
principles of the present disclosure also apply to other constructions of the aerosol
provision system 1, such as one-part or unitary constructions where the device 2 and
cartridge 4 may be integrally formed (or in other words, the aerosol provision device
1 is provided with an integrally formed aerosol-generating material storage area or
portion).
[0070] The aerosol provision system 1 is generally elongate and cylindrical in shape. The
aerosol provision system 1 may be sized so as to approximate a cigarette. However,
it should be understood that the general size and shape of the aerosol provision system
1 is not significant to the principles of the present disclosure. In some other implementations,
the aerosol provision system 1 may conform to different overall shapes; for example,
the aerosol provision device 2 may be based on so-called box-mod high performance
devices that typically have a more box-like shape.
[0071] The device 2 comprises components that are generally intended to have a longer lifetime
than the cartridge 4. In other words, the device 2 is intended to be used, sequentially,
with multiple cartridges 4. The cartridge 4 comprises components (such as aerosol-generating
material) that are consumed when forming an aerosol for delivery to the user during
use of the aerosol provision system 1.
[0072] In the example modular configuration of Figure 1, the device 2 and the cartridge
4 are releasably coupled together at the first interface 6. When the aerosol-generating
material in the cartridge 4 is exhausted or the user simply wishes to switch to a
different cartridge 4 (e.g., containing a different aerosol-generating material),
the cartridge 4 may be removed from the device 2 and a replacement cartridge 4 attached
to the device 2 in its place. The interface 6 provides a structural connection between
the device 2 and cartridge 4 and may be established in accordance with suitable techniques,
for example based around a screw thread, latch mechanism, bayonet fixing or magnetic
coupling. In some implementations, the interface 6 may also provide an electrical
coupling between the device 2 and the cartridge 4 using suitable electrical contacts.
The electrical coupling may allow for power and / or data to be supplied to / from
the cartridge 4.
[0073] It should also be understood that in some implementations, the cartridge 4 may be
refillable. That is, the cartridge 4 may be refilled with aerosol-generating material
when the cartridge 4 is depleted, using an appropriate mechanism such as a one-way
refilling valve or the like. The cartridge 4 may be removed from the device 2 in order
to be refilled. In other examples, the cartridge 4 may be configured so as to be refilled
while attached to the device 2.
[0074] In implementations where the aerosol provision system 1 is a one-part or unitary
system, the aerosol provision system 1 may be provided with a suitable mechanism,
such as a one-way valve or the like, to enable the integrated cartridge 4 (or integrated
aerosol-generating material storage area) to be refilled with aerosol-generating material.
[0075] In Figure 1, the cartridge part 4 comprises a cartridge housing 42, an aerosol-generating
material storage area 44, an aerosol generator 48, an aerosol-generating material
transport component 46, an outlet or opening 50, an air path 52 and an air path direction
adjustor 60.
[0076] The cartridge housing 42 supports other components of the cartridge 4 and provides
the mechanical interface 6 with the device 2. The cartridge housing 42 is formed from
a suitable material, such as a plastics material or a metal material. In the described
implementation, the cartridge housing 42 is generally circularly symmetric about a
longitudinal axis along which the cartridge 4 couples to the device 2. In this example
the cartridge 4 has a length of around 4 cm and a diameter of around 1.5 cm. However,
it will be appreciated the specific geometry, and more generally the overall shapes,
may be different in different implementations. The cartridge 4 comprises a first end,
broadly defined by the interface 6, and a second end which is opposite the first end
and includes the opening 50. The second end including the opening is intended to be
received in / by a user's mouth and may be referred to as a mouthpiece end of the
cartridge 4.
[0077] Within the cartridge housing 42 is an aerosol-generating material storage area 44,
which may be referred to herein as a reservoir 44. The cartridge 4 of Figure 1 is
configured to store a liquid aerosol-generating material, which may be referred to
herein as a source liquid, e-liquid or liquid. The source liquid may contain nicotine
and / or other active ingredients, and / or one or more flavours, as described above.
In some implementations, the source liquid may contain no nicotine. The reservoir
44 is suitably configured to hold or retain liquid therein.
[0078] The reservoir 44 in this example has an annular shape with an outer wall defined
by the cartridge housing 42 and an inner wall that defines an air path 52 through
the cartridge 4. The reservoir 44 is closed at each end with end walls to contain
the liquid. The reservoir 44 may be formed in accordance with suitable techniques,
for example it may comprise a plastics material and be integrally moulded with the
cartridge housing 42.
[0079] The cartridge 4 further comprises an aerosol generator 48. The aerosol generator
48 is an apparatus configured to cause aerosol to be generated from the aerosol-generating
material (e.g., the source liquid). The aerosol generator 48 is shown highly schematically
in Figure 1. The aerosol generator 48 may also be provided adjacent an aerosol-generating
material transport component (not shown), which is configured to transport the aerosol-generating
material from the aerosol-generating material storage area 44 (e.g., reservoir 44)
to the aerosol generator 48. In some implementations, the aerosol-generating material
transport component may be integrated with the aerosol generator 48 to form a combined
aerosol generator and aerosol-generating material transport component.
[0080] The aerosol generator 48 is configured to cause aerosol to be generated from the
aerosol-generating material. In some implementations, the aerosol generator 48 is
a heater 48. The heater 48 is configured to subject the aerosol-generating material
to heat energy, so as to release one or more volatiles from the aerosol-generating
material to form an aerosol. By way of example, the heater 48 may take the form of
an electrically resistive wire or trace intended to have electrical current passed
between ends thereof, or a susceptor element which is intended to generate heat upon
exposure to an alternating magnetic field.
[0081] In the described implementation of Figure 1, the aerosol generator 48 is a combined
heater and aerosol-generating material transport element. The heater may take the
form of an electrically conductive trace, such as a nickel chrome alloy (Cr20Ni80)
trace. The aerosol-generating material transport element is a porous substrate, such
as a porous ceramic, where the electrically conductive trace disposed on a surface
of the porous ceramic (to thereby act as the heater). In other implementations, the
heater and porous substrate may be formed from a single component, e.g., a plurality
of sintered steel fibres forming a planar structure. The porous substrate is configured
to transport aerosol-generating material from the aerosol-generating material storage
area 44 (reservoir 44) to the heater.
[0082] The aerosol generator 48 is arranged in the cartridge air path 52 such that a region
of the cartridge air path 52 around the aerosol generator 48 in effect defines a vaporisation
region for the cartridge 4. This vaporisation region (or aerosol generation region)
is the region of the cartridge 4 where vapour is initially generated and aerosol initially
formed. In use, electrical power may be supplied to the aerosol generator 48 to vaporise
an amount of liquid provided to the aerosol generator 48 from the reservoir 44.
[0083] Aerosol is delivered to the user via the outlet 50 provided at the mouthpiece end
of the cartridge 4. During use, the user may place their lips on or around the mouthpiece
end of the cartridge 4 and draw air / aerosol through the outlet 50. More specifically,
air is drawn into and along the air path 52, past the aerosol generator 48 where aerosol
is entrained into the air, and the combined aerosol / air is then inhaled by the user
through the opening 50. Although Figure 1 shows the mouthpiece end of the cartridge
4 as being an integral part of the cartridge 4, a separate mouthpiece component may
be provided which releasably couples to the end of the cartridge 4.
[0084] The device 2 comprises an outer housing 12, an optional indicator 14, an inhalation
sensor 16 located within a chamber 18, a controller or control circuitry 20, a power
source 26, an air inlet 28 and an air path 30.
[0085] The device part 2 comprises an outer housing 12 with an opening that defines an air
inlet 28 for the aerosol provision system 1, a power source 26 for providing operating
power for the aerosol provision system 1, a controller or control circuitry 20 for
controlling and monitoring the operation of the aerosol provision system 1, and an
inhalation sensor (puff detector) 16 located in a chamber 18. The device 2 further
comprises an optional indicator 14.
[0086] The outer housing 12 may be formed, for example, from a plastics or metallic material
and in this example has a circular cross-section generally conforming to the shape
and size of the cartridge 4 so as to provide a smooth transition between the two parts
at the interface 6. In this example, the device 2 has a length of around 8 cm so the
overall length of the aerosol provision system 1 when the cartridge 4 and device 2
are coupled together is around 12 cm. However, and as already noted, it will be appreciated
that the overall shape and scale of an aerosol provision system 1 implementing the
present disclosure is not significant to the principles described herein.
[0087] The outer housing 12 further comprises an air inlet 28 which connects to an air path
30 provided through the device 2. The device air path 30 in turn connects to the cartridge
air path 52 across the interface 6 when the device 2 and cartridge 4 are connected
together. In this regard, the interface 6 is also arranged to provide a connection
of the respective air paths 30 and 52, such that air and/or aerosol is able to pass
along the coupled air paths 30, 52. In other implementations, the device 2 does not
comprise an air path 30 and instead the cartridge 4 comprises the air path 52 and
a suitable air inlet which permits air to enter into the air path 52 when the cartridge
4 and device 2 are coupled.
[0088] The power source 26 in this implementation is a battery 26. The battery 26 is rechargeable
and may be, for example of the kind normally used in aerosol provision systems and
other applications requiring provision of relatively high currents over relatively
short periods. The battery 26 may be, for example, a lithium ion battery. The battery
26 may be recharged through a suitable charging connector provided at or in the outer
housing 12, for example a USB connector. Additionally or alternatively, the device
2 may comprise suitable circuitry to facilitate wireless charging of the battery 26.
[0089] The control circuitry 20 is suitably configured / programmed to control the operation
of the aerosol provision system 1. The control circuitry 20 may be considered to logically
comprise various sub-units / circuitry elements associated with different aspects
of the aerosol provision system's operation and may be implemented by provision of
a (micro)controller, processor, ASIC or similar form of control chip. The control
circuitry 20 may be arranged to control any functionality associated with the system
1. By way of non-limiting examples only, the functionality may include the charging
or re-charging of the battery 26, the discharging of the battery 26 (e.g., for providing
power to the aerosol generator 48), in addition to other functionality such as controlling
visual indicators (e.g., LEDs) / displays, communication functionality for communicating
with external devices, etc. The control circuitry 20 may be mounted to a printed circuit
board (PCB). Note also that the functionality provided by the control circuitry 20
may be split across multiple circuit boards and / or across components which are not
mounted to a PCB, and these additional components and / or PCBs can be located as
appropriate within the aerosol provision device. For example, functionality of the
control circuit 20 for controlling the (re)charging functionality of the battery 26
may be provided separately (e.g. on a different PCB) from the functionality for controlling
the discharge of the battery 26.
[0090] As noted above, when the device 2 and the cartridge 4 are coupled together at interface
6, the interface 6 provides an electrical connection between the device 2 and the
cartridge 4. More particularly, electrical contacts on the device 2, which are coupled
to the power source 26, are electrically coupled to electrical contacts on the cartridge,
which are coupled to the aerosol generator 48. Accordingly, under suitable control
by the control circuitry 20, electrical power from the power source 26 is able to
be supplied from the power source 26 to the aerosol generator 48, thereby allowing
the aerosol generator 48 to vaporise liquid.
[0091] In the example of Figure 1, the aerosol provision device 2 comprises a chamber 18
containing the inhalation sensor 16, which in this example is a pressure sensor 16.
However, the inhalation sensor 16 may be any suitable sensor, such as an air flow
sensor, for sensing when a user inhales on the mouthpiece end of the cartridge 4 and
subsequently draws air along the air paths 30, 52. Accordingly, the presence of the
chamber 18 is optional and its presence may depend on the characteristics of the selected
inhalation sensor 16.
[0092] The pressure sensor 16 is in fluid communication with the air path 30 in the device
2 (e.g. the chamber 18 branches off from the air path 30 in the device 2). Thus, when
a user inhales on the opening 50, there is a drop in pressure in the chamber 18, which
if sufficient, is detected by the pressure sensor 16. The aerosol provision system
1 is controlled to generate aerosol in response to detecting an inhalation by a user.
That is, when the pressure sensor 16 detects a drop in pressure in the pressure sensor
chamber 18, the control circuitry 20 responds by causing electrical power to be supplied
from the battery 26 to the aerosol generator 48 sufficient to cause vaporisation of
the liquid held within the wick 46. This is an example of an aerosol provision system
which is said to be "puff actuated". The pressure sensor 16 may be used to start and
/ or end the power supply to the aerosol generator 48 (e.g., when the pressure sensor
detects the absence of an inhalation).
[0093] In other implementations, the aerosol provision system 1 includes a button or other
user actuatable mechanism. When the button or other user actuatable mechanism is actuated
by the user, the control circuitry 20 caused power to be supplied to the aerosol generator
48 as described above. This is an example of an aerosol provision system which is
said to be "button actuated". The button may be used to start and / or end power supply
to the aerosol generator 48 (e.g., when the button is released by the user). In some
implementations, both a button (or other user actuatable mechanism) and an inhalation
sensor 16 may be used to control the delivery of power to the heater 48, e.g., by
requiring both the button press and a pressure drop indicative of an inhalation to
be present before supplying power to the aerosol generator 48.
[0094] As noted above, the power source 26 in the aerosol provision device 2 is a rechargeable
battery 26. As the aerosol provision device 2 is intended to be used with multiple
cartridges (or multiple refills of an integrally formed reservoir 44), by providing
a rechargeable battery 26 capable of being recharged, the lifetime of the aerosol
provision device 2 is able to be extended and thus the aerosol provision device 2
is capable of being used with more cartridges 4 than would otherwise be possible with
a non-rechargeable battery of a similar size or capacity. In addition or alternatively,
by virtue of the fact the battery 26 is rechargeable, the physical size of the battery
26 may be reduced thereby allowing for smaller scale aerosol provision devices 2 without
compromising on an overall lifetime usage of the aerosol provision system 1.
[0095] In accordance with the present disclosure, the aerosol provision system 1 (and in
the described implementation, the cartridge 4) is provided with an air path direction
adjustor 60. The air path direction adjustor 60 is configured to selectively adjust
the direction along which air flows in the vicinity of the aerosol generator 48. In
particular, the air path direction adjustor 60 is configured to switch between a first
configuration in which air in the vicinity of the aerosol generator 48 flows in a
first direction relative to the aerosol generator 48 and a second configuration in
which air in the vicinity of the aerosol generator 48 flows in a second direction
relative to the aerosol generator 48, where the first direction is different to the
second direction.
[0096] As used herein, the term "air in the vicinity of the aerosol generator 48" refers
to air in a region that is adjacent or next to the aerosol generator 48 and is typically
the region into which the vapour/aerosol passes into initially when the aerosol-generating
material is vaporised by the aerosol generator 48. Put another way, this references
the air that is within the vaporisation region of the aerosol generator 48.
[0097] The term "flows in a first/second direction relative to the aerosol generator 48"
refers to the direction along which all, or substantially all, of the air within the
vaporisation region / region adjacent the aerosol generator 48 flows relative to a
reference point of the aerosol generator 48. "Substantially all" is intended to encompass
scenarios where the majority, but not necessarily all of the air flow is along the
particular (i.e., first/second) direction. In this regard, when considering a volume
of air or a volumetric flow rate of air through the aerosol provision system 1, substantially
all may encompass 80% or greater, 90% or greater, 95% or greater, or 99% or greater
of the total air / air flow into the aerosol provision system 1 following the particular
(i.e., first or second) directions in the vicinity of the aerosol generator 48. The
reference point is, in some implementations, the surface of the aerosol generator
48 that is primarily responsible for generating aerosol (for example, the surface
of the aerosol generator comprising the heater / electrical trace). Primarily is used
here because in some implementations it may be that aerosol is generated at other
locations on or within the aerosol generator 48, for example due to thermal conduction
from the surface that primarily produces aerosol. A surface of the aerosol generator
48 that is primarily responsible for generating aerosol may therefore be considered
a surface of the aerosol generator 48 that generates greater than 50% of the total
vaporised aerosol-generating material delivered.
[0098] The air path direction adjustor 60 may be implemented in any desired manner that
allows for the direction of the air flow along the air path 52 in the vicinity of
the aerosol generator 48 to be adjusted. In the example of Figure 1, the air path
direction adjustor 60 is a separate component that is installed between the air inlet
of the cartridge 4 and the aerosol generator 48. However, in other implementations,
the air path direction adjustor 60 may be integrated with the cartridge 4 and/or the
aerosol provision device 2.
[0099] The air path direction adjustor 60 of Figure 1 comprises a plurality of channels,
where the plurality of channels can broadly be considered to fall into one of two
categories; a first category in which air that exits the channels is broadly directed
along a first direction relative to the aerosol generator 48, and a second category
in which air that exits the channels is broadly directed along a second direction
relative to the aerosol generator 48. The air path direction adjustor 60 is configured
to selectively couple either of the first category of channels or the second category
of channels to the air path 52. That is to say, the first category of channels of
the air path direction adjustor 60, when selected, form a part of the air path 52
from the inlet of the cartridge 4 to the mouthpiece outlet 50. Conversely, the second
category of channels of the air path direction adjustor 60, when selected, also form
a part of the air path 52 from the inlet of the cartridge 4 to the mouthpiece outlet
50, but now in place of the first category of channels. Accordingly, the air path
direction adjustor 60 may be described as being adjustable between a first configuration
in which the first category of channels is coupled to the air path 52 (and the second
category of channels are not coupled to the air path 52) and a second configuration
in which the second category of channels is coupled to the air path 52 (and the first
category of channels are not coupled to the air path 52).
[0100] The air path direction adjustor 60 is arranged to adjust the direction of the air
flow in the vicinity of the aerosol generator 48. In particular, the air path direction
adjustor 60 is configured to selectively adjust whether the air flow in the vicinity
of the aerosol generator 48 is in (or substantially in) a first direction relative
to the aerosol generator 48 or whether the air flow in the vicinity of the aerosol
generator 48 is in (or substantially in) a second direction relative to the aerosol
generator 48. It has been found that the direction along which air flows relative
to the aerosol generator 48 can impact the properties of the aerosol that is delivered
to the user at the mouthpiece opening 50, and in particular, a property that is impacted
is the average particle size of the aerosol.
[0101] Figures 2 and 3 schematically show the air path direction adjustor 60 of Figure 1
in more detail, and hence will be understood from Figure 1. Certain details have been
omitted from Figures 2 and 3 as compared to Figure 1, for the purposes of explaining
the principles of the present disclosure more clearly. Figure 2 shows the air path
direction adjustor 60 in a first configuration, while Figure 3 shows the air path
direction adjustor 60 in a second configuration.
[0102] Figures 2 and 3 show the air path direction adjustor 60, aerosol generator 48 and
the air path 52 downstream of the aerosol generator 48. As described above, the air
path direction adjustor 60 comprises a first category of channels, which in Figures
2 and 3 is a first channel 64, and a second category of channels, which in Figures
2 and 3 is a second channel 66. The air path direction adjustor 60 also comprises
a moveable flap 62, which is sized so as to block one of the first or second channels
64, 66 depending upon the position of the moveable flap 62.
[0103] Figure 2 shows the air path direction adjustor 60 in a first configuration in which
the first channel 64 is fluidly coupled to the air path 52 (and hence forms a first
subsection of the air path 52) and in which the moveable flap 62 is positioned so
as to block air flow along the second channel 66. Hence, in the first configuration,
when a user inhales on the aerosol provision system 1, e.g., at the mouthpiece opening
50, air is drawn into the aerosol provision system 1 through air inlet 28, along air
path 30, into the cartridge 4 through an inlet at interface 6, along the first channel
64 of the air path direction adjustor 60 and along the remaining part of the air path
52 downstream of the aerosol generator 60.
[0104] As is schematically shown in Figure 2 by the black arrow, when air flows along the
first channel 64, the air flow exits the air path direction adjustor 60 along a first
direction, and in particular, a direction that is perpendicular to the aerosol generator
48. As described above, the aerosol generator 48 in some implementations is a porous
substrate having an electrically conductive trace disposed on one surface thereof.
The porous substrate may have a broadly cube or cuboid shape, with the surface having
the electrically conductive trace disposed facing towards the air inlet of the cartridge
4. Therefore, during use, air that flows out of the air path direction adjustor 60
is directed towards the face or plane of the aerosol generator that is primarily responsible
for generating aerosol (i.e., the surface comprising the electrically conductive trace).
The air impinges on (or impacts / strikes against) the aerosol generator 48, and in
particular, the plane of the aerosol generator 48 comprising the electrically conductive
trace). In this implementation, once the air impinges on the aerosol generator 48,
the air then proceeds to flow around the aerosol generator 48 and along the remaining
part of the air path 52. It should be appreciated that, in some implementations, while
the majority of the air flow is directed towards the aerosol generator 48, it may
be that not all of the air impinges on the aerosol generator 48 (for example, some
of the air flow may pass by the edges of the aerosol generator 48).
[0105] Figure 3 shows the air path direction adjustor 60 in a second configuration in which
the second channel 66 is fluidly coupled to the air path 52 (and hence forms a second
subsection of the air path 52) and in which the moveable flap 62 is positioned so
as to block air flow along the first channel 64. Hence, in the second configuration,
when a user inhales on the aerosol provision system 1, e.g., at the mouthpiece opening
50, air is drawn into the aerosol provision system 1 through air inlet 28, along air
path 30, into the cartridge 4 through an inlet at interface 6, along the second channel
66 of the air path direction adjustor 60 and along the remaining part of the air path
52 downstream of the aerosol generator 60.
[0106] As is schematically shown in Figure 3 by the black arrow, when air flows along the
second channel 66, the air flow exits the air path direction adjustor 60 and flows
along a second direction, and in particular, a direction that is parallel to a surface
of the aerosol generator 48 that is primarily responsible for generating aerosol (i.e.,
the surface comprising the electrically conductive trace). In the second configuration,
the air now flows parallel to the surface of the aerosol generator 48 (as opposed
to impinging on the aerosol generator 48, as in the first configuration). In this
implementation, the air may still flow around the aerosol generator 48 and along the
remaining part of the air path 52, but does so after passing parallel to the surface
of the aerosol generator 48 as described above.
[0107] Therefore, it should be appreciated that the air flow in the vicinity of the aerosol
generator 48 is different depending on the configuration of the air path direction
adjustor 60. In particular, in the first configuration, as shown in Figure 2, the
air flow is directed perpendicular to the surface of the aerosol generator 48 that
is primarily responsible for generating aerosol, whereas in the second configuration,
as shown in Figure 3, the air flow is directed parallel to the surface of the aerosol
generator 48 that is primarily responsible for generating aerosol. It has been found
that the aerosol generated and delivered by aerosol provision system 1 when the air
path direction adjustor 60 is in the first configuration, i.e. the air flow is perpendicular
to the aerosol generator 48, typically has a much smaller average particle or droplet
diameter. Conversely, it has been found that the aerosol generated and delivered by
aerosol provision system 1 when the air path direction adjustor 60 is in the second
configuration, i.e. the air flow is parallel to the aerosol generator 48, typically
has a much larger average particle or droplet diameter. Without wishing to be bound
by theory, it is thought that the rate of cooling of the air in the vicinity of the
aerosol generator 48 (and hence also of the vapour entrained in the air flow) leads
to differences in the average particle or droplet size of the aerosol generated. In
the first configuration, i.e., the air flow perpendicular to the aerosol generator
48, it is thought that there is a greater (i.e., faster) rate of cooling, whereas
in the second configuration, i.e., the air flow parallel to the aerosol generator
48, there is a smaller (i.e. slower) rate of cooling.
[0108] Accordingly, by changing the direction of the air flow in the vicinity of the aerosol
generator 48, the properties of the aerosol, namely the average particle or droplet
size, can be altered. This can subsequently impact the user's perception of the aerosol.
For instance, a larger average particle size (for instance of 1.2 to 2 µm) has been
found to increase the impact (e.g., mouth feel) and irritation (e.g., throat hit)
while reducing the amount of visible vapour in the aerosol delivered, as compared
to smaller average particle sizes (for instance of 0.5 to 1 µm). Therefore, by switching
the configuration of the air path direction adjustor 60, the user is able to customise
the user's experience of the aerosol that is delivered by adjusting the average particle
size of the particles / droplets forming the aerosol.
[0109] In the described example, the first configuration of the air path direction adjustor
60 is arranged such that the air flow in the vicinity of the aerosol generator 48
is perpendicular to a surface of the aerosol generator 48, while the second configuration
of the air path direction adjustor 60 is arranged such that the air flow in the vicinity
of the aerosol generator 48 is parallel to a surface of the aerosol generator 48.
However, it should be appreciated that the air path direction adjustor 60 may be configured
differently, such that the direction of the air flow in the vicinity of the aerosol
generator 48 in either of the first or second configurations is not perpendicular
or parallel to the aerosol generator 48. The direction of the air flow relative to
the aerosol generator 48 may be set to be along any direction (or angle) relative
to the aerosol generator 48 (e.g., along a line at 10°, 20°, 30°, 40°, 50°, etc. to
the plane of the aerosol generator 48). It should be appreciated that the average
particle size may be tailored based on the angle the air flows relative to the aerosol
generator 48. That is, the average particle size for a generated aerosol may be relatively
smaller for air flow that is along a direction that is at a 50° angle to the plane
of the aerosol generator 48 as opposed to air flow that is along a direction that
is at a 0° (i.e., parallel) or 10° angle to the plane of the aerosol generator 48.
[0110] However, in some implementations, it should be appreciated that the difference between
the first and second configurations of the air path direction adjustor 60 should be
set so as to provide a noticeable difference in the properties of the aerosols that
are delivered in the first and second configurations. For example, in some instances,
a difference of greater than 10° to 15° between the first and second configurations
in respect of the air path direction relative to the aerosol generator 48, may provide
a perceivable difference in the aerosol delivered in the first or second configuration,
although this value may be dependent on the specific implementation at hand. However,
it should be appreciated that when the first configuration and the second configuration
provide air flow directions in the vicinity of the aerosol generator 48 that are 90°
apart (or substantially 90°, e.g., within ±5°), this typically provides the greatest
difference in the properties of the aerosol that is delivered when either of the first
and second configurations are used. One way of implementing this, as described above,
is to provide a first configuration of the air path direction adjustor 60 in which
the first direction is a direction that is perpendicular, or substantially perpendicular,
to a plane of the aerosol generator 48 that, in use, is configured to generate aerosol
such that the air flow along the first direction is perpendicular to, or substantially
perpendicular, to the plane of the aerosol generator 48, and a second configuration
of the air path direction adjustor 60 in which the second direction is a direction
that is parallel, or substantially parallel, to a plane of the aerosol generator that,
in use, is configured to generate aerosol such that the air flow along the second
direction is parallel, or substantially parallel, to the plane of the aerosol generator
48.
[0111] In addition, it should be appreciated that the air path direction adjustor 60 as
shown in Figures 2 and 3 represents one example of the air path direction adjustor
60. In this example, the first and second channels 64, 66 follow substantially straight
lines extending from one side of the air path direction adjustor 60 to the other,
with the second channel 66 is being configured off-centre from the longitudinal axis
of the air path direction adjustor 60. However, the air path direction adjustor 60
and the first and second channels 64, 66 thereof may be configured in any suitable
manner to allow the direction of the air flow relative to the aerosol generator 48
to follow a particular direction. For instance, the channels 64, 66 may follow a non-straight
path in some implementations, or be provided at, or have sections that are provided
at, an inclined angle relative to the longitudinal axis of the aerosol provision system
1 / air path direction adjustor 60. In other implementations, the channels (such as
the second channel 66) may be formed in conjunction with the housing 42 of the cartridge
4.
[0112] In the described example, the air path direction adjustor 60 comprises the moveable
flap 62, however it should be appreciated that this is just an example of a component
that is capable of selectively blocking one of the channels 64, 66, and other components
may be utilised in other implementations. For example, one or more closable valves
may be implemented in place of the moveable flap 62 in other implementations. The
moveable flap 62 (or valves) may be coupled to an actuator which is capable of causing
the moveable flap 62 (or valves) to open or close the respective channel 64, 66. The
actuator may be physically accessible to a user, and therefore the user manually actuates
the moveable flap 62 (or valves) to place the air path direction adjustor 60 into
the first or second configurations, or alternatively, the actuator may be electronically
actuated, e.g., via an electrically powered motor or the like, which may be responsive
to a user input (such as a button press or other signal from a user input mechanism
on the aerosol provision device 2). In some examples, the actuator is accessible to
the user only when the cartridge 4 is decoupled from the aerosol provision device
2. That is, the cartridge 4 and the aerosol provision device 2 are releasably engaged
with one another, and the air path direction adjustor 60 and/or the actuator coupled
thereto, are accessible to a user when the cartridge 4 is disengaged with the aerosol
provision device 2. For instance, the air path direction adjustor 60 and/or the actuator
coupled thereto, may be exposed at the interface 6 and hence when the cartridge 4
is coupled to the aerosol provision device 2 at the interface 6, the air path direction
adjustor 60 and/or the actuator coupled thereto are not accessible to a user. To change
the configuration of the air path direction adjustor 60, the user must first remove
the cartridge 4 to expose the air path direction adjustor 60 and/or the actuator coupled
thereto.
[0113] Furthermore, it should be appreciated that although the air path direction adjustor
60 is shown in Figures 1 to 3 as comprising a plurality of selectable air flow paths,
in the form of first and second channels 64, 66, in yet further implementations, more
complex configurations of the air path direction adjustor 60 may be realised. For
instance, in some implementations, a single air channel may be provided whereby the
direction of the single air channel is capable of being manipulated, e.g., bent or
angled, to provide the first and second configurations. Various ways of implementing
the present disclosure will be apparent to the skilled person.
[0114] Although the above has described an air path direction adjustor 60 that is configured
to be in either of a first configuration or a second configuration, it should be appreciated
that in other implementations, the air path direction adjustor 60 can be modified
to comprise more than two configurations, such that the air path direction adjustor
60 is capable of being selectively switched between the first, second, and third (and
/ or fourth, fifth, sixth, etc.) configurations. For example, the air path direction
adjustor 60 may be configured with a plurality (e.g., three) paths or channels through
the air path direction adjustor 60 and the moveable flap (or valves) 62 may be configured
to selectively couple any of the plurality of paths or channels to the main flow path
52. In such implementations, each configuration is arranged such that air flow in
the vicinity of the aerosol generator 48 is capable of flowing, substantially, along
a corresponding direction. For example, the first and second configurations may be
described as above (i.e., providing airflow at 90° (perpendicular) and 0° (parallel)
to the plane of the aerosol generator 48) while the third configuration may be arranged
such that air flow that exits the air path direction adjustor 60 is at 45° to the
plane of the aerosol generator 48. Accordingly, the average particle size of aerosol
generated when the air path direction adjustor 60 is in the third configuration may
be somewhere between the average particle size of the aerosol generated when the air
path direction adjustor 60 is in the first configuration and when the air path direction
adjustor 60 is in the second configuration.
[0115] In principle, the air flow direction adjustor 60 may be provided such that it is
capable of being in any number of configurations. In some implementations, the air
flow direction adjustor 60 may be configured such that it is capable of selecting
between discrete configurations. Alternatively, the configurations may be considered
continuous, in that the air flow direction adjustor 60 can be configured to be in
any one of a continuous number of configurations between two limits (e.g., such as
in implementations where a single channel is able to be manipulated, e.g., bent).
Increasing the number of available discrete configurations or providing a plurality
of configurations selectable from a continuous range affords more control and flexibility
to a user in terms of customising the delivery of the aerosol (e.g., average particle
size) according to the specific user's preferences. Above has been described a system
in which the air flow in the vicinity of the aerosol generator 48 is either along
a first direction (if the air path direction adjustor 60 is in a first configuration)
or a second direction (if the air path direction adjustor 60 is in a second configuration).
In such implementations, the majority (if not all) of the inhaled air that passes
along the air path 52 passes along the first or second direction depending on whether
the air path direction adjustor 60 is in the first or second configuration.
[0116] However, in some other implementations, the air path direction adjustor 60 is configured
to be capable of switching to a configuration that is between the first configuration
and the second configuration. In particular, in such a configuration, air in the vicinity
of the aerosol 48 generator is able to flow both in the first direction and in the
second direction.
[0117] Figure 4 schematically shows the air path direction adjustor 60 of Figures 2 and
3, where the air path direction adjustor 60 is in a further configuration that is
part way between the first and second configurations of Figures 2 and 3. Figure 4
will broadly be understood from Figures 2 and 3, where like components are shown with
the same reference signs and a description thereof is omitted for conciseness.
[0118] In the configuration of Figure 4, the moveable flap 62 is provided at a position
that is part way between the first configuration (i.e., fully blocking the second
channel 66) and the second configuration (i.e., fully blocking the first channel 64).
Accordingly, it can be seen that the moveable flap 62 does not fully block either
of the first channel 64 or second channel 66, such that air is capable of flowing
along both of the first channel 64 and the second channel 66. Figure 4 schematically
shows this via the two black arrows that are directed along the first and second channels
64, 66.
[0119] In such implementations, in the vicinity of the aerosol generator 48, in use, the
flow of air is subsequently mixed - some of the air flows along the first direction
while some of the air flows along the second direction. As described above, it is
thought that the rate of cooling has an impact on the average particle size of the
aerosol generated. By providing a proportion of the air flow that is perpendicular
to the plane of the aerosol generator 48 (e.g., along the first channel 64 / in the
first configuration), the degree of cooling at the aerosol generator 48 can be increased
relative to the degree of cooling when the air flow is parallel to the aerosol generator
48 (e.g., along the second channel 66 / in the second configuration). Consequently,
the average particle size of any aerosol generated can be relatively increased as
compared to the aerosol generated in the second configuration (i.e., where the majority
or all the air flow is parallel to the aerosol generator 48).
[0120] In this way, control of the average particle size of the generated aerosol can be
implemented by changing the proportion of the air flow that, in use, flows along the
first direction and the second direction in the vicinity of the aerosol generator
48. The moveable flap 62 can be arranged so as to adopt any position between a position
that fully closes the second channel 66 (where 100% of the inhaled air flows along
the first channel 64) and a position that fully closes the first channel 64 (where
100% of the inhaled air flows along the second channel 66). In the example of Figure
4, the moveable flap 62 is arranged to move through a 90° angle between the first
configuration and the second configuration, and thus the moveable flap 62 may be configured
to adopt an angular position between 0° and 90° to thereby vary the proportion of
air that flows in the first direction and second direction. For example, if the moveable
flap 62 is positioned at 45°, this may result in 50% of the inhaled air flowing through
the first channel 64 and 50% of the inhaled air flowing through the second channel
66, whereas if the moveable flap 62 is positioned at 22.5°, this may result in 75%
of the inhaled air flowing through the first channel 64 and 25% of the inhaled air
flowing through the second channel 66. It should be appreciated that, similar to the
above, the air path direction adjustor 60 may be configured such that the moveable
flap 62 is only able to adopt a discrete number of positions (e.g., 0°, 45°, 90°)
or the moveable flap 62 may be able to adopt any position between the limits of 0°
and 90°.
[0121] Figure 5 schematically represents a cartridge 4 implementing the principles of the
present disclosure according to a second implementation in exploded view. The cartridge
4 of Figure 5 will be broadly understood from Figures 1 to 3, and like components
are labelled with the same reference signs. A description of these components is not
repeated herein for conciseness.
[0122] Broadly speaking, the cartridge 4 of Figure 5 comprises a cartridge housing 42, including
a mouthpiece opening 50 at one end thereof, and a not shown reservoir 44 and channel
that forms a part of the air path 52.
[0123] The cartridge housing 42 is provided with a separate lower cap 42a that attaches
to the main body of the cartridge housing 42 (e.g., via lugs or protrusions, as schematically
shown in Figure 5). When attached, the lower cap 42a completes the cartridge housing
42. In the implementation of Figure 5, the aerosol generator 48 is provided in an
aerosol generator support 48a, which is a separate component that is inserted into
the cartridge housing 42, and retained in place via the lower cap 42a. The aerosol
generator support 48a is configured to hold the aerosol generator 48 within the cartridge
4 as well as provide a fluid pathway from the reservoir 44 to the aerosol generator
48 such that aerosol-generating material in the reservoir 44 is capable of being provided
to the aerosol generator 48 for vaporisation. When the aerosol generator support 48a
is inserted into the cartridge housing 42, the aerosol generator support 48a may complete
the reservoir 44 (e.g., by sealing an open end thereof). The aerosol generator support
48a additionally also comprises a receptacle for receiving the air path direction
adjustor 60, which in this implementation is embodied as a cylinder that is received
in a corresponding cylindrical recess of the aerosol generator support 48a. The aerosol
generator support 48a additionally comprises an empty region around the aerosol generator
48 and between the aerosol generator 48 and the air path direction adjustor 60 (seen
best in Figures 6 and 7) which acts, at least in part, as the vaporisation region
and in which air is able to flow to the aerosol generator 48. Further details of the
cartridge housing 42, aerosol generator support 48a, and lower cap 42a are not significant
for the purposes of the present disclosure (and indeed these components may be configured
differently in differently implementations).
[0124] In the example of Figure 5, the air path direction adjustor 60 is provided at a position
located between (or incorporating) an air inlet of the cartridge 4 and the aerosol
generator 48. In a similar manner to that described above, the air path direction
adjustor 60 is capable of being in a first configuration, in which the air flow in
the vicinity of the aerosol generator is along a first (perpendicular) direction relative
to the plane of the aerosol generator 48, and a second configuration, in which the
air flow in the vicinity of the aerosol generator is along a second (parallel) direction
relative to the plane of the aerosol generator 48. In this example, the air path direction
adjustor 60 comprises a hollow cylindrical main body 60a comprising a plurality of
outlets or openings 61a, 61b and a moveable air path selector 62' that fits inside
the hollow cylindrical main body 60a and is rotatable with respect to the main body
60a. The moveable air path selector 62' may be considered similar, in function, to
the moveable flap 62 of Figures 1 to 3, and is arranged so as to selectively couple
respective outlets of the 61a, 61b of the main body 60a of the air path direction
adjustor 60 to one or more channels (such as the first and second channels 64, 66)
running through the moveable air path selector 62'. The operation of the air path
direction adjustor 60 of this implementation will be described in more detail below.
However, it should be appreciated that the air path direction adjustor 60 may be retained
in the cartridge 4 via any suitable mechanism, and in the present example, the combination
of the lower cap 42a and an actuator arm 62a retains the air path direction adjustor
60 in the cartridge 4.
[0125] The explanation of the air path direction adjustor 60 according to this implementation
is described below with reference to Figures 6 and 7. Figures 6 and 7 schematically
show the position of the air path direction adjustor 60 when located in the aerosol
generator support 48a with the cartridge housing 42 (including lower cap 42a) removed
for clarity.
[0126] Figure 6 shows the air path direction adjustor 60 in a first configuration. The first
configuration is similar to the first configuration of the air path direction adjustor
60 as described with respect to Figures 1 to 3 in that the air exiting the air path
direction adjustor 60 is directed along a first direction that is perpendicular to
the plane of the aerosol generator 48 primarily responsible for generating aerosol
in use.
[0127] In particular, in the first configuration, the moveable air path selector 62' is
rotated to a first position relative to the main body 60a of the air path direction
adjustor 60 such that a channel (not shown, but for example, the first channel 64)
extending through the moveable air path selector 62' aligns with the one or more outlets
61b provided on an upper (flat) surface of the main body 60a of the air path direction
adjustor 60. Accordingly, when the air path direction adjustor 60 is in this configuration,
air that enters the cartridge 4 via an inlet is capable of flowing along the one or
more channels of the moveable air path selector 62' and through the openings 61b of
the main body 60a where the air flow is directed, perpendicularly, towards the aerosol
generator 48. Note that in this implementation, the openings 61b are provided such
that the normal of the openings 61b is parallel to the normal of the surface of the
aerosol generator 48 comprising the electrically conductive trace. This is one way
in which the air path direction adjustor 60 may be configured to provide the perpendicular
air flow arrangement as described above. The air flow in the first configuration is
shown by the arrows in Figure 6.
[0128] Hence, by setting the (rotational) position of the air path selector 62' of the air
path direction adjustor 60 accordingly, the air path direction adjustor 60 is capable
of directing air along a first direction relative to the aerosol generator 48. Consequently,
the aerosol that is delivered via mouthpiece opening 50 has characteristics (such
as average particle size) of a first value (or values).
[0129] Figure 7 shows the air path direction adjustor 60 in a second configuration. The
second configuration is similar to the second configuration of the air path direction
adjustor 60 as described with respect to Figures 1 to 3 in that the air exiting the
air path direction adjustor 60 is directed along a second direction that is parallel
to the plane of the aerosol generator 48 primarily responsible for generating aerosol
in use.
[0130] In particular, in the second configuration, the moveable air path selector 62' is
rotated to a second position relative to the main body 60a of the air path direction
adjustor 60 such that a channel (not shown, but for example, the second channel 66)
extending through the moveable air path selector 62' aligns with the one or more outlets
61a provided on a side (curved) surface of the main body 60a of the air path direction
adjustor 60. The air path selector 62' may be moved (rotated) using an actuator, which
in this example is an actuator arm 62a that protrudes radially outward from the cylindrical
air path selector 62'. The position of the actuator arm 62a is accordingly different
in each of the first and second configurations, as seen in Figures 6 and 7 respectively.
The actuator arm 62a may be configured such that a user is able to manually actuate
the actuator arm 62a in order to change the (rotational) position of the moveable
air path selector 62' relative to the main body 60a of the air path direction adjustor
60.
[0131] Accordingly, when the air path direction adjustor 60 is in the second configuration,
air that enters the cartridge 4 via an inlet is capable of flowing along the one or
more channels of the moveable air path selector 62' and through the openings 61a of
the main body 60a where the air flow, in the vicinity of the aerosol generator 48,
is directed parallel to the surface of the aerosol generator 48. In particular, in
this configuration, it can be seen that the air exits through the side of the main
body 60a and consequently flows along the side surfaces of the main body 60a and then
through the gap between the flat surface of the main body 60a (comprising openings
61b) and the surface of the aerosol generator 48 comprising the electrically conductive
trace (i.e., in a direction parallel to the aerosol generator 48) before being directed
along the air path 52 towards the mouthpiece opening 50. Accordingly, the side surfaces
of the main body 60a of the air path direction adjustor 60 act to guide the air flow
into the vaporisation region where the air flow may be substantially parallel to the
surface of the aerosol generator 48. Note that in this implementation, the openings
61a are provided such that the normal of the openings 61a is perpendicular to the
normal of the surface of the aerosol generator 48 comprising the electrically conductive
trace. This is one way in which the air path direction adjustor 60 may be configured
to provide the parallel air flow arrangement as described above. The air flow in the
second configuration is shown by the arrows in Figure 7.
[0132] Hence, by setting the (rotational) position of the air path selector 62' of the air
path direction adjustor 60 accordingly, the air path direction adjustor 60 is capable
of directing air along a second direction relative to the aerosol generator 48. Consequently,
the aerosol that is delivered via mouthpiece opening 50 has characteristics (such
as average particle size) of a second value (or values).
[0133] Figure 8 represents a graph showing results in average particle sizes of aerosol
from a cartridge 4, similar to that shown in Figures 5 to 7, when the cartridge 4
is placed in the first configuration (vertical dashed columns) and in the second configuration
(diagonal line columns). The graph was obtained when subjecting the cartridge to an
air flow rate of 18.3 ml/s. The graph of Figure 8 shows three different parameters;
the DX (10 Average), the DX (50 Average) and the DX (90 Average). DX (10 Average)
is a parameter indicating that 10% of the analysed sample, in this case aerosol, comprises
particles having a particle size (or diameter) smaller than this value. A DX (10 Average)
of say 1 µm means that 10% of the particles of the delivered aerosol have a particle
size of 1 µm or less. Correspondingly, DX (50 Average) and DX (90 Average) are parameters
indicating that 50% and 90% of the analysed sample, in this case aerosol, comprises
particles having a particle size (or diameter) smaller than these values respectively.
The DX (10 Average), DX (50 Average), and DX (90 Average) may be alternatively referred
to as D10, D50 and D90 in other literature.
[0134] As can be seen from Figure 8, when the air path direction adjustor 60 is in the first
configuration (air flow perpendicular to the aerosol generator 48), the DX (10 Average),
DX (50 Average), and DX (90 Average) are approximately 0.23, 0.42, and 0.78 µm, respectively.
Conversely, when the air path direction adjustor 60 is in the second configuration
(air flow parallel to the aerosol generator 48), the DX (10 Average), DX (50 Average),
and DX (90 Average) are significantly larger than the corresponding values in the
first configuration at approximately 0.97, 1.3, and 1.73 µm, respectively. This means
that by altering the direction of the air flow in the vicinity of the aerosol generator
48, the average particle sizes of the aerosol delivered to the user can be changed.
This has been found to alter the user's experience in terms of at least impact, irritation
and visible vapour, and thus these (and other properties of the delivered aerosol,
where applicable) can be altered and customised accordingly by adjusting the direction
of the air flow in the vicinity of the aerosol generator 48.
[0135] In the example cartridge 4 of Figures 5 to 7, the air path direction adjustor 60
is a component formed of two cylindrical parts (the main body 60a adapted to receive,
coaxially, the moveable air path selector 62'). However, it should be appreciated
that the air path direction adjustor 60 may be configured differently from that shown,
for example in terms of shape, size, etc.
[0136] In a similar manner to as described above in respect of the implementation of Figures
1 to 3, the air path direction adjustor 60 is, or comprises, a component that is moveably
mounted with respect to a housing of the aerosol provision system 1. The air path
direction adjustor 60 is in the first configuration when the air path direction adjustor
60 is moved to a first position and is in the second configuration when the air path
direction adjustor 60 is moved to a second position. The air path direction adjustor
60, in effect, comprises a first subsection of the air path 52 (which may be formed
from a first channel passing through the moveable air path selector 62' and the outlets
61b) and a second subsection of the air path 52 (which may be formed from a second
channel passing through the moveable air path selector 62' and the outlet 61a). When
the air path direction adjustor 60 is in the first configuration, the first subsection
of the air path (i.e., a first channel passing through the moveable air path selector
62' and the outlets 61b) is fluidly coupled to, and forms, the air path 52. When the
air path direction adjustor 60 is in the second configuration, the second subsection
of the air path (i.e., a second channel passing through the moveable air path selector
62' and the outlet 61a) is fluidly coupled to, and forms, the air path 52. In order
to provide the adjustment in the direction of the air flow in the vicinity of the
aerosol generator 48, the first subsection and the second subsection are different
from one another.
[0137] In the example cartridge 4 of Figures 5 to 7, the air path direction adjustor 60
is a cylinder having two air outlets 61b on the flat face of the main body 60a, and
a single air outlet on the curved surface of the man body 60a. However, it should
be appreciated that the number and/or positions of the outlets 61a, 61b on the main
body 60a of the air path direction adjustor 60 may be different from that shown. For
example, only a single opening 61b may be provided on the flat surface of the main
body 60a, while in other implementations, more than two openings 61b may be provided.
In addition, in some implementations, a plurality of openings 61a may be provided
at different radial and/or axial positions of the main body 60a on the curved surface
thereof. It should also be appreciated that moveable air path selector 62' may be
correspondingly configured so as to couple the corresponding number of outlets in
each of the first and second configurations.
[0138] When considering a parallel air flow in the vicinity of the aerosol generator 48,
it has been found that channelling the air flow along a single direction (or at least
substantially along a single direction) can provide the desired effect of slower cooling
and larger particle size. In the examples of Figures 1 to 3 and in Figures 5 to 7,
the air path direction adjustor 60 comprises a single outlet (such as outlet 61a)
such that when the air flow exits the air path direction adjustor 60, the air is provided
to one side of the air path direction adjustor 60 and substantially flows along a
common direction toward the central axis of the cartridge 4 as it passes parallel
to the surface of the aerosol generator 48 (before then passing along the remaining
parts of the air path 52 towards the mouthpiece opening 50). However, as noted above,
in the example of Figures 5 to 7, there exists a volume in which the main body 60a
of the air path direction adjustor 60 is located and around which air is capable of
flowing in during use.
[0139] In such implementations where the air flow is not particularly restricted, the air
path direction adjustor 60 may be provided with a baffle 69 (or other guiding element)
that may be arranged so as to guide or restrict the flow of the air in a particular
direction (i.e., the second direction). Figure 9 schematically represents a modified
air path direction adjustor 60' which includes a baffle 69. Figure 9 will broadly
be understood from Figures 6 and 7, and like components are shown with like reference
signs. Only the differences are described herein.
[0140] Figure 9 shows the air path direction adjustor 60' in the second configuration. As
described above, when air exits the outlet 61a (not shown specifically in Figure 9),
the air flows out of the outlet 61a, along the side of the main body 60a of the air
path direction adjustor 60' and then along the flat surface of the main body 60a along
a direction that is parallel to the aerosol generator 48 (not shown in Figure 9).
This air flow as described previously is shown highly schematically in Figure 9 with
the dashed arrows A.
[0141] However, when the user inhales, air that is located in the vaporisation region and/or
any of the air that exits the main body 60a through the outlet 61a that does not follow
the air flow indicated by dashed arrows A may subsequently follow a different path
to join the flow path 52 downstream of the aerosol generator 48. In Figure 9, for
the purposes of explanation, it is possible to consider air flow to the right of the
air path direction adjustor 60' (e.g., air that exits the outlet 61a and flows along
the air path A) and air flow to the left of the air path direction adjustor 60'(e.g.,
air on the opposite side). Considering the air to the left of the air path direction
adjustor 60', in the absence of the baffle 69, when the user inhales, the air may
pass along the left side of the main body 60a of the air path direction adjustor 60'
and along the flat surface of the main body 60a. In other words, the air flow path
may be similar, but opposite, to the air path A. What this means is that, relative
to the flat surface of the main body 60a, the air on the right side of the air path
direction adjustor 60' and the air on the left side of the air path direction adjustor
60' flow in opposite directions towards one another. As a result, the degree of cooling
when these two opposite air streams collide increases relative to the scenario where
air flows only along a single direction relative to the flat surface of the main body
60a. In other words, although the air path direction adjustor 60' may be in the second
configuration, because of these opposing air flows, the cooling effect may be similar
to the cooling effect experienced when the air path direction adjustor 60' is in the
first configuration, and therefore the difference in the characteristics of the aerosol
delivered when the air path direction adjustor 60' is in the first configuration and
when the air path direction adjustor 60' is in the second configuration is reduced
(and potentially to such an extent as to no longer be perceivable to a user).
[0142] The above situation is also present, and in some instances increased, when a plurality
of air outlets 61a are located on the main body 60a of the air path direction adjustor
60' (for example, if two air outlets 61a are provided at opposite radial positions
of the main body 60a of the air path direction adjustor 60'.
[0143] In order to help reduce this effect, and subsequently provide air flow that is substantially
along a single direction, the air path direction adjustor 60' is provided with a baffle
69 that extends from the end of the cylindrical main body 60a (in the direction of
the longitudinal axis of the main body 60a). The baffle 69 is arranged such that the
baffle 69 acts to guide the flow of air in the aerosol provision system 1 such that
the flow of air is substantially along the second (i.e. parallel) direction. In particular,
when considering the example of the air to the left of the air path direction adjustor
60', the baffle acts to prevent the flow of air in a direction opposite the second
direction (i.e., parallel to the surface of the aerosol generator 48), and instead
the air is guides around the baffle 69, as schematically represented by the solid
arrow B in Figure 9. That is to say, the baffle 69 acts as an obstruction to the air
flow, and as such, the air flow must flow around the baffle 69 in order to subsequently
pass to the aerosol generator 48 / flow path 52 downstream of the aerosol generator
48. When the baffle 69 is suitably configured, by virtue of flowing around the baffle
69, the air flow is capable of joining with the air flow along the second direction.
Put another way, the air flow as shown by arrow B flows around the baffle 69 and then
flows in the same direction as the air flow as shown by arrow A.
[0144] Accordingly, in implementations where the air path direction adjustor 60' is arranged
such that, in any given configuration, there may be multiple directions for the air
to flow relative to the surface of the aerosol generator 48 that primarily generates
aerosol in use, the air path direction adjustor 60' may be provided with one or more
baffles 69 (or guiding elements) that, in effect, reduces the number of directions
that the air may flow relative to the surface of the aerosol generator 48 that primarily
generates aerosol in use.
[0145] It should be appreciated that such guides or baffles 69 may not be necessary in respect
of the air flow in the perpendicular direction (i.e., the first configuration) owing
to the fact that the first direction is parallel to the general direction along which
air flows under suction from the user. In other words, the suction force may be sufficient
to draw the air along the first direction without any significant deviation therefrom.
However, in other configurations, and in particular where the first direction is not
parallel with the direction of the air flow along the air path 52 to the mouthpiece
opening 50, baffles 69 and/or guiding elements may be used in order to provide air
flow in a more uniform manner along the first direction.
[0146] Hence, in accordance with the principles of the present disclosure, an aerosol provision
system 1 is provided with an air path direction adjustor 60, 60' configured to selectively
adjust the direction along which air flows in the vicinity of the aerosol generator
48. By adjusting the direction along which air flows in the vicinity of the aerosol
generator 48, the properties of the aerosol generated, and in particular the average
particle size, can be changed, thereby leading to different user experiences when
using the aerosol provision system 1 when the air path direction adjustor 60, 60'
is in a first configuration in which air in the vicinity of the aerosol generator
48 flows in a first direction relative to the aerosol generator 48 as compared to
when the air path direction adjustor 60, 60' is in a second configuration in which
air in the vicinity of the aerosol generator 48 flows in a second, different direction
relative to the aerosol generator 48.
[0147] Figure 10 represents an example method for adjusting the configuration of an air
path direction adjustor 60, 60' of an aerosol provision system 1 in accordance with
the present disclosure.
[0148] The method starts at step S1 where the air path direction adjustor 60, 60' is provided
in a first configuration. The air path direction adjustor 60, 60' may be provided
in the first configuration as a default, for example, when the aerosol provision system
1 and/or cartridge 4 is manufactured and sold.
[0149] The method proceeds to step S2 when the air path direction adjustor 60, 60' is actuated
to the second configuration. As should be appreciated from the above, by actuating
the air path direction adjustor 60, 60' to the second configuration, the direction
along which air flows in the vicinity of the aerosol generator is subsequently altered.
That is, when the air path direction adjustor 60, 60' is in the first configuration,
air in the vicinity of the aerosol generator 48 flows in a first direction relative
to the aerosol generator 48 when a user inhales on the aerosol provision system 1,
while when the air path direction adjustor 60, 60' is in the second configuration,
air in the vicinity of the aerosol generator 48 when a user inhales on the aerosol
provision system 1 flows in a second, different direction relative to the aerosol
generator 48.
[0150] In order to actuate the air path direction adjustor 60, 60', the user may be required
to remove or decouple the cartridge 4 (containing the air path direction adjustor
60, 60') from the aerosol provision device 2 in order to manually actuate the actuator
or otherwise adjust the configuration of the air path direction adjustor 60, 60'.
In some implementations, the actuator is located at a position of the cartridge 4
that is inaccessible to a user when the cartridge 4 and aerosol provision device 2
are coupled together. For example, the actuator may be located at the interface 6.
In the example of Figures 5 to 7, the cartridge 4 is configured to be inserted into
a receptacle of the aerosol provision device 2, which thereby obscures a part of the
cartridge 4 which contains the actuator arm 62a. However, it should be appreciated
that in other implementations, the actuator or air path direction adjustor 60, 60'
may be accessible even when the cartridge 4 is coupled to the aerosol provision device
2 and/or in implementations when the cartridge 4 and aerosol provision device 2 are
integrally formed as a single, unitary system. In other implementations, the air path
direction adjustor 60, 60' may be actuated electronically, e.g., through a motor or
the like as described above.
[0151] After step S2, the aerosol provision system 1 may be used, i.e., inhaled on, by a
user to generate and deliver aerosol to a user, with the air path direction adjustor
60, 60' in the second configuration.
[0152] Thus, there has been described an aerosol provision system for generating aerosol
from aerosol-generating material, the aerosol provision system including an aerosol
-generating material storage portion for storing an aerosol-generating material; an
aerosol generator for generating aerosol from aerosol-generating material from the
aerosol-generating material storage portion; an air path extending from an air inlet
to an outlet, wherein the aerosol generator is arranged at least partly in the air
path; and an air path direction adjustor configured to selectively adjust the direction
along which air flows in the vicinity of the aerosol generator, wherein the air path
direction adjustor is configured to switch between a first configuration in which
air in the vicinity of the aerosol generator flows in a first direction relative to
the aerosol generator and a second configuration in which air in the vicinity of the
aerosol generator flows in a second direction relative to the aerosol generator, the
first direction being different to the second direction. Also described is an article
and method.
[0153] While the above described embodiments have in some respects focussed on some specific
example aerosol provision systems, it will be appreciated the same principles can
be applied for aerosol provision systems using other technologies. That is to say,
the specific manner in which various aspects of the aerosol provision system function
are not directly relevant to the principles underlying the examples described herein.
[0154] In order to address various issues and advance the art, this disclosure shows by
way of illustration various embodiments in which the claimed invention(s) may be practiced.
The advantages and features of the disclosure are of a representative sample of embodiments
only, and are not exhaustive and/or exclusive. They are presented only to assist in
understanding and to teach the claimed invention(s). It is to be understood that advantages,
embodiments, examples, functions, features, structures, and/or other aspects of the
disclosure are not to be considered limitations on the disclosure as defined by the
claims or limitations on equivalents to the claims, and that other embodiments may
be utilised and modifications may be made without departing from the scope of the
claims. Various embodiments may suitably comprise, consist of, or consist essentially
of, various combinations of the disclosed elements, components, features, parts, steps,
means, etc. other than those specifically described herein, and it will thus be appreciated
that features of the dependent claims may be combined with features of the independent
claims in combinations other than those explicitly set out in the claims. The disclosure
may include other inventions not presently claimed, but which may be claimed in future.