TECHNICAL FIELD
[0001] The present invention relates to a smoking substitute device and a method of controlling
operation of the smoking substitute device.
BACKGROUND
[0002] The smoking of tobacco is generally considered to expose a smoker to potentially
harmful substances. It is generally thought that a significant amount of the potentially
harmful substances are generated through the heat caused by the burning and/or combustion
of the tobacco and the constituents of the burnt tobacco in the tobacco smoke itself.
[0003] Conventional combustible smoking articles, such as cigarettes, typically comprise
a cylindrical rod of tobacco comprising shreds of tobacco which is surrounded by a
wrapper, and usually also a cylindrical filter axially aligned in an abutting relationship
with the wrapped tobacco rod. The filter typically comprises a filtration material
which is circumscribed by a plug wrap. The wrapped tobacco rod and the filter are
joined together by a wrapped band of tipping paper that circumscribes the entire length
of the filter and an adjacent portion of the wrapped tobacco rod. A conventional cigarette
of this type is used by lighting the end opposite to the filter, and burning the tobacco
rod. The smoker receives mainstream smoke into their mouth by drawing on the mouth
end or filter end of the cigarette.
[0004] Combustion of organic material such as tobacco is known to produce tar and other
potentially harmful by-products. There have been proposed various smoking substitute
systems (or "substitute smoking systems") in order to avoid the smoking of tobacco.
[0005] Such smoking substitute systems can form part of nicotine replacement therapies aimed
at people who wish to stop smoking and overcome a dependence on nicotine.
[0006] Smoking substitute systems include electronic systems that permit a user to simulate
the act of smoking by producing an aerosol (also referred to as a "vapour") that is
drawn into the lungs through the mouth (inhaled) and then exhaled. The inhaled aerosol
typically bears nicotine and/or flavourings without, or with fewer of, the odour and
health risks associated with traditional smoking.
[0007] In general, smoking substitute systems are intended to provide a substitute for the
rituals of smoking, whilst providing the user with a similar experience and satisfaction
to those experienced with traditional smoking and with combustible tobacco products.
Some smoking substitute systems use smoking substitute articles (also referred to
as a "consumables") that are designed to resemble a traditional cigarette and are
cylindrical in form with a mouthpiece at one end.
[0008] The popularity and use of smoking substitute systems has grown rapidly in the past
few years. Although originally marketed as an aid to assist habitual smokers wishing
to quit tobacco smoking, consumers are increasingly viewing smoking substitute systems
as desirable lifestyle accessories.
[0009] There are a number of different categories of smoking substitute systems, each utilising
a different smoking substitute approach.
[0010] One approach for a smoking substitute system is the so-called Heated Tobacco ("HT")
approach in which tobacco (rather than an "e-liquid") is heated or warmed to release
vapour. HT is also known as "heat not burn" ("HNB"). The tobacco may be leaf tobacco
or reconstituted tobacco. The vapour may contain nicotine and/or flavourings. In the
HT approach the intention is that the tobacco is heated but not burned, i.e. the tobacco
does not undergo combustion.
[0011] A typical HT smoking substitute system may include a device and a consumable. The
consumable may include the tobacco material. The device and consumable may be configured
to be physically coupled together. In use, heat may be imparted to the tobacco material
by a heating element of the device, wherein airflow through the tobacco material causes
components in the tobacco material to be released as vapour. A vapour may also be
formed from a carrier in the tobacco material (this carrier may for example include
propylene glycol and/or vegetable glycerine) and additionally volatile compounds released
from the tobacco. The released vapour may be entrained in the airflow drawn through
the tobacco.
[0012] As the vapour passes through the consumable (entrained in the airflow) from the location
of vaporisation to an outlet of the consumable (e.g. a mouthpiece), the vapour cools
and condenses to form an aerosol for inhalation by the user. The aerosol will normally
contain the volatile compounds.
[0013] In HT smoking substitute systems, heating as opposed to burning the tobacco material
is believed to cause fewer, or smaller quantities, of the more harmful compounds ordinarily
produced during smoking. Consequently, the HT approach may reduce the odour and/or
health risks that can arise through the burning, combustion and pyrolytic degradation
of tobacco.
[0014] There may be a need for improved design of smoking substitute systems, in particular
HT smoking substitute systems, to enhance the user experience and improve the function
of the HT smoking substitute system.
[0015] The present disclosure has been devised in the light of the above considerations.
SUMMARY OF THE INVENTION
[0016] At its most general, the present invention relates to a method of controlling the
operation of a substitute smoking device.
[0017] According to a first aspect of the present invention, there is provided a smoking
substitute device comprising a heater, the device being configured to:
to detect a user taking puff on an aerosol-forming article when power is not being
supplied to the heater; and
in response to detection of the puff activate a supply of power to the heater.
[0018] Accordingly, such a device is activated i.e. switched from an OFF state (where no
power is supplied to the heater such that it is at ambient temperature) to an ON state
(where power is supplied to the heater such that it heats to above ambient temperature)
upon detection of a puff. This accidental activation (e.g. in the pocket of a user)
is avoided.
[0019] Optional features will now be set out. These are applicable singly or in any combination
with any aspect.
[0020] The device may comprise a puff sensor for detecting a user taking a puff on the aerosol-forming
article (e.g. a heated tobacco (HT)/Heat-not-burn (HNB) consumable). The device e.g.
the puff sensor, may be configured to generate a puff signal when the user takes a
puff on the article/consumable.
[0021] The puff sensor (e.g. airflow sensor) may be configured to detect a user drawing
on an end (i.e. a terminal (mouth) end) of the aerosol-forming article/consumable.
The puff sensor may, for example, be a pressure sensor or a microphone. The puff sensor
may be configured to produce a puff signal indicative of a puff state. The puff signal
may be indicative of the user drawing (an aerosol from the aerosol-forming article/consumable)
such that it is e.g. in the form of a binary signal. Alternatively or additionally,
the puff signal may be indicative of a characteristic of the draw (e.g. a flow rate
of the draw, length of time of the draw, etc.).
[0022] The device may comprise a controller or may be connectable to a controller for receiving
a signal (e.g. the puff signal from the puff sensor) when the user takes a puff on
the article/consumable. The controller may be configured such that, upon receipt of
the (puff) signal, an output signal is generated to activate the supply of power to
the heater.
[0023] The controller may comprise a microcontroller that may e.g. be mounted on a printed
circuit board (PCB). The controller may also comprise a memory, e.g. non-volatile
memory. The memory may include instructions, which, when implemented, may cause the
controller to perform certain tasks or steps of a method.
[0024] The controller may be configured to control the voltage applied by power source to
the heater. The device may further comprise a voltage regulator to regulate the output
voltage supplied by the power source to form a regulated voltage. The regulated voltage
may subsequently be applied to the heater. Prior to the activation of the power supply,
there is no voltage applied to the heater such that it is at ambient temperature.
Activation switches it to an ON state where the heater is heated to above ambient
temperature.
[0025] Optionally, the device is further configured to detect at least one operative command
from the user when power is not being supplied to the heater i.e. when the device
is in an OFF state where the heater is at ambient temperature.
[0026] Advantageously, the device further comprises a user interface (Ul) for receiving
at least one operative command from the user. The UI may be operatively coupled to
the controller. In some embodiments the UI may include input means which may comprise
a power button/switch/dial and the operative command may be generated by manual manipulation
of the input means, e.g. depression of the power button.
[0027] In preferred embodiments, the device is configured to activate the supply of power
to the heater upon simultaneous detection of the user taking a puff on the aerosol-forming
article/consumable and the at least one operative command from the user.
[0028] For example, the controller may be configured to generate an output signal to activate
the supply of power to the heater upon detection of the combination of the puff signal
and the operative command e.g. upon manual manipulation of the input means (such as
depression of the button).
[0029] In some embodiments the device (e.g. the Ul) may additionally or alternatively comprise
output means to convey information to the user. In some embodiments the output means
may comprise a visual feedback element e.g. a light to indicate a condition of the
device (and/or the aerosol-forming article/consumable) to the user. The condition
of the device (and/or aerosol-forming article/consumable) indicated to the user may
comprise a condition indicative of the operation of the heater. For example, the condition
may comprise whether the heater is in the ON state or the OFF state. For example,
the output means may comprise one or more (e.g. two, three, four, etc.) light-emitting
diodes ("LEDs") that may be located on the body of the device.
[0030] Additionally or alternatively, the output means comprises a haptic feedback element
and/or an audio feedback element to provide at least one feedback to the user to indicate
active "ON" state of the device when the supply of power to the heater is activated.
[0031] The controller may be configured to send an output signal to the output means e.g.
the visual, haptic or audio feedback elements. The device e.g. the UI may be configured
to convey information to a user, via the output means, in response to such output
signals (received from the controller). For example, where the visual feedback element
comprises one or more LEDs, the LEDs may be operatively connected to the controller.
Hence, the controller may be configured to control the illumination of the LEDs (e.g.
in response to an output signal). For example, the controller may be configured to
control the illumination of the LEDs according to (e.g. an ON or OFF) state of the
heater.
[0032] Advantageously, the controller is configured to verify the detected puff based on
a predetermined test puff and activate the power supply to the heater in response
to verification, wherein the predetermined test puff is a previously registered test
puff of the user. The device may therefore be able to allow only an authorized activation
of the device for receiving a consumable thereby avoiding accidental activation of
the device by child user or when the device is inside the user's pocket or in transit.
[0033] The device comprises a heater for heating the article/consumable. The heater may
comprise a heating element, which may be in the form of a rod, blade or tube that
extends from the body of the device e.g. within a cavity defined within the body of
the device.
[0034] The heater (and thus the heating element) may be rigidly mounted to the body. The
heating element may be elongate so as to define a longitudinal axis and may, for example,
have a transverse cross-sectional profile (i.e. transverse to a longitudinal axis
of the heating element) that is substantially circular (i.e. the heating element may
be generally cylindrical "rod heater"). Alternatively, the heating element may have
a transverse cross-sectional profile that is rectangular (i.e. the heater may be a
"blade heater"). The heating element may alternatively be in the shape of a tube (i.e.
the heater may be a "tube heater"). The heating element may take other forms (e.g.
the heating element may have an elliptical transverse cross-sectional profile). The
shape and/or size (e.g. diameter) of the transverse cross-sectional profile of the
heating element may be generally consistent for the entire length (or substantially
the entire length) of the heating element.
[0035] The heating element may be between 15 mm and 25 mm long, e.g. between 18 mm and 20
mm long, e.g. around 19 mm long. The heating element may have a diameter of between
1.5 mm and 2.5 mm, e.g. a diameter between 2 mm and 2.3 mm, e.g. a diameter of around
2.15 mm.
[0036] The heating element may be formed of ceramic. The heating element may comprise a
core (e.g. a ceramic core) comprising Al2O3. The core of the heating element may have
a diameter of 1.8 mm to 2.1 mm, e.g. between 1.9 mm and 2 mm. The heating element
may comprise an outer layer (e.g. an outer ceramic layer) comprising Al2O3. The thickness
of the outer layer may be between 160 µm and 220 µm, e.g. between 170 µm and 190 µm,
e.g. around 180 µm. The heating element may comprise a heating track, which may extend
longitudinally along the heating element. The heating track may be sandwiched between
the outer layer and the core of the heating element. The heating track may comprise
tungsten and/or rhenium. The heating track may have a thickness of around 20 µm.
[0037] The heating element may be located in the cavity (of the device), and may extend
(e.g. along a longitudinal axis) from an internal base of the cavity towards an opening
of the cavity. The length of the heating element (i.e. along the longitudinal axis)
may be less than the depth of the cavity. Hence, the heating element may extend for
only a portion of the length of the cavity. That is, the heating element may not extend
through (or beyond) the opening of the cavity.
[0038] The heating element may be configured for insertion into the aerosol-forming article/consumable
when it is received in the cavity. In that respect, a distal end (i.e. distal from
a base of the heating element where it is mounted to the device) of the heating element
may comprise a tapered portion, which may facilitate insertion of the heating element
into the aerosol-forming article/consumable. The heating element may fully penetrate
the article/consumable when it is received in the cavity. That is, the entire length,
or substantially the entire length, of the heating element may be received in the
article/consumable.
[0039] The heating element may have a length that is less than, or substantially the same
as, an axial length of an aerosol-forming substrate forming part of the article/consumable.
Thus, when such the article/consumable is engaged with the device, the heating element
may only penetrate the aerosol-forming substrate, rather than other components of
the article/consumable. The heating element may penetrate the aerosol-forming substrate
for substantially the entire axial length of the aerosol forming-substrate of the
article/consumable. Thus, heat may be transferred from (e.g. an outer circumferential
surface of) the heating element to the surrounding aerosol-forming substrate, when
penetrated by the heating element. That is, heat may be transferred radially outwardly
(in the case of a cylindrical heating element) or e.g. radially inwardly (in the case
of a tube heater).
[0040] Where the heater is a tube heater, the heating element of the tube heater may surround
at least a portion of the cavity. When the portion of the article/consumable is received
in the cavity, the heating element may surround a portion of the article/consumable
(i.e. so as to heat that portion of the aerosol-forming article/consumable). In particular,
the heating element may surround the aerosol-forming substrate of the article/consumable.
That is, when the article/consumable is engaged with the device, the aerosol-forming
substrate of the article/consumable may be located adjacent an inner surface of the
(tubular) heating element. When the heating element is activated, heat may be transferred
radially inwardly from the inner surface of the heating element to heat the aerosol-forming
substrate.
[0041] The cavity may comprise a (e.g. circumferential) wall (or walls) and the (tubular)
heating element may extend around at least a portion of the wall(s). In this way,
the wall may be located between the inner surface of the heating element and an outer
surface of the article/consumable. The wall (or walls) of the cavity may be formed
from a thermally conductive material (e.g. a metal) to allow heat conduction from
the heating element to the article/consumable. Thus, heat may be conducted from the
heating element, through the cavity wall (or walls), to the aerosol-forming substrate
of the article/consumable received in the cavity.
[0042] In some embodiments the device may comprise a cap disposed at an end of the body
that is configured for engagement with the article/consumable. Where the device comprises
a heater having a heating element, the cap may at least partially enclose the heating
element. The cap may be moveable between an open position in which access is provided
to the heating element, and a closed position in which the cap at least partially
encloses the heating element. The cap may be slideably engaged with the body of the
device, and may be slideable between the open and closed positions.
[0043] The cap may define at least a portion of the cavity of the device. That is, the cavity
may be fully defined by the cap, or each of the cap and body may define a portion
of the cavity. The cap may comprise an opening to the cavity. The opening may be configured
for receipt of at least a portion of an aerosol-forming article. That is, the aerosol-forming
article/consumable may be inserted through the opening and into the cavity (so as
to be engaged with the device).
[0044] The cap may be configured such that when the aerosol-forming article/consumable is
engaged with the device (e.g. received in the cavity), only a portion of the article/consumable
is received in the cavity. That is, a portion of the aerosol-forming article/consumable
(not received in the cavity) may protrude from (i.e. extend beyond) the opening. This
(protruding) portion of the article/consumable may be a terminal (e.g. mouth) end
of the aerosol-forming article/consumable, which may be received in a user's mouth
for the purpose of inhaling aerosol formed by the device.
[0045] The device may comprise a power source or may be connectable to a power source (e.g.
a power source separate to the device). The power source may be electrically connectable
to the heater. In that respect, altering (e.g. toggling) the electrical connection
of the power source to the heater may affect a state of the heater. For example, toggling
the electrical connection of the power source to the heater may toggle the heater
between an ON state and an OFF state. The power source may be a power store. For example,
the power source may be a battery or rechargeable battery (e.g. a lithium ion battery).
[0046] The device may comprise an input connection (e.g. a USB port, Micro USB port, USB-C
port, etc.). The input connection may be configured for connection to an external
source of electrical power, such as a mains electrical supply outlet. The input connection
may, in some cases, be used as a substitute for an internal power source (e.g. battery
or rechargeable battery). That is, the input connection may be electrically connectable
to the heater (for providing power to the heater). Hence, in some forms, the input
connection may form at least part of the power source of the device.
[0047] Where the power source comprises a rechargeable power source (such as a rechargeable
battery), the input connection may be used to charge and recharge the power source.
[0048] The device may comprise a wireless interface configured to communicate wirelessly
(e.g. via Bluetooth (e.g. a Bluetooth low-energy connection) or Wi-Fi) with an external
device. Similarly, the input connection may be configured for wired connection to
an external device so as to provide communication between the device and the external
device.
[0049] The external device may be a mobile device. For example, the external device may
be a smart phone, tablet, smart watch, or smart car. An application (e.g. app) may
be installed on the external device (e.g. mobile device). The application may facilitate
communication between the device and the external device via the wired or wireless
connection.
[0050] The wireless or wired interface may be configured to transfer signals between the
external device and the controller of the device. In this respect, the controller
may control an aspect of the device in response to a signal received from an external
device. Alternatively or additionally, an external device may respond to a signal
received from the device (e.g. from the controller of the device).
[0051] In a second aspect, there is provided a system (e.g. a smoking substitute system)
comprising a device according to the first aspect and an aerosol-forming article.
The aerosol-forming article may comprise an aerosol-forming substrate at an upstream
end of the aerosol-forming article. The article may be in the form of a smoking substitute
article, e.g. heated tobacco (HT) consumable (also known as a heat-not-burn (HNB)
consumable).
[0052] As used herein, the terms "upstream" and "downstream" are intended to refer to the
flow direction of the vapour/aerosol i.e. with the downstream end of the article/consumable
being the mouth end or outlet where the aerosol exits the consumable for inhalation
by the user. The upstream end of the article/consumable is the opposing end to the
downstream end.
[0053] The aerosol-forming substrate is capable of being heated to release at least one
volatile compound that can form an aerosol. The aerosol-forming substrate may be located
at the upstream end of the article/consumable.
[0054] In order to generate an aerosol, the aerosol-forming substrate comprises at least
one volatile compound that is intended to be vaporised/aerosolised and that may provide
the user with a recreational and/or medicinal effect when inhaled. Suitable chemical
and/or physiologically active volatile compounds include the group consisting of:
nicotine, cocaine, caffeine, opiates and opoids, cathine and cathinone, kavalactones,
mysticin, beta-carboline alkaloids, salvinorin A together with any combinations, functional
equivalents to, and/or synthetic alternatives of the foregoing.
[0055] The aerosol-forming substrate may comprise plant material. The plant material may
comprise least one plant material selected from the list including
Amaranthus dubius, Arctostaphylos uva-ursi (Bearberry),
Argemone mexicana,
Amica,
Artemisia vulgaris, Yellow Tees,
Galea zacatechichi,
Canavalia maritima (Baybean),
Cecropia mexicana (Guamura),
Cestrum noctumum,
Cynoglossum virginianum (wild comfrey),
Cytisus scoparius,
Damiana,
Entada rheedii,
Eschscholzia califomica (California Poppy),
Fittonia albivenis,
Hippobroma longiflora,
Humulus japonica (Japanese Hops),
Humulus lupulus (Hops),
Lactuca virosa (Lettuce Opium),
Laggera alata,
Leonotis leonurus,
Leonurus cardiaca (Motherwort),
Leonurus sibiricus (Honeyweed),
Lobelia cardinalis,
Lobelia inflata (Indian-tobacco),
Lobelia siphilitica, Nepeta cataria (Catnip),
Nicotiana species (Tobacco),
Nymphaea alba (White Lily),
Nymphaea caerulea (Blue Lily), Opium poppy,
Passiflora incamata (Passionflower),
Pedicularis densiflora (Indian Warrior),
Pedicularis groenlandica (Elephant's Head),
Salvia divinorum, Salvia dorrii (Tobacco Sage), Salvia species (Sage),
Scutellaria galericulata, Scutellaria lateriflora, Scutellaria nana, Scutellaria species (Skullcap),
Sida acuta (Wireweed),
Sida rhombifolia,
Silene capensis,
Syzygium aromaticum (Clove),
Tagetes lucida (Mexican Tarragon),
Tarchonanthus camphoratus,
Tumera diffusa (Damiana),
Verbascum (Mullein),
Zamia latifolia (Maconha Brava) together with any combinations, functional equivalents to, and/or
synthetic alternatives of the foregoing.
[0056] The plant material may be tobacco. Any type of tobacco may be used. This includes,
but is not limited to, flue-cured tobacco, burley tobacco, Maryland Tobacco, dark-air
cured tobacco, oriental tobacco, dark-fired tobacco, perique tobacco and rustica tobacco.
This also includes blends of the above-mentioned tobaccos.
[0057] The tobacco may comprise one or more of leaf tobacco, stem tobacco, tobacco powder,
tobacco dust, tobacco derivatives, expanded tobacco, homogenised tobacco, shredded
tobacco, extruded tobacco, cut rag tobacco and/or reconstituted tobacco (e.g. slurry
recon or paper recon).
[0058] The aerosol-forming substrate may comprise a gathered sheet of homogenised (e.g.
paper/slurry recon) tobacco or gathered shreds/strips formed from such a sheet.
[0059] The aerosol-forming substrate may comprise one or more additives selected from humectants,
flavourants, fillers, aqueous/non-aqueous solvents and binders.
[0060] The flavourant may be provided in solid or liquid form. It may include menthol, liquorice,
chocolate, fruit flavour (including e.g. citrus, cherry etc.), vanilla, spice (e.g.
ginger, cinnamon) and tobacco flavour. The flavourant may be evenly dispersed throughout
the aerosol-forming substrate or may be provided in isolated locations and/or varying
concentrations throughout the aerosol-forming substrate.
[0061] The aerosol-forming substrate may be formed in a substantially cylindrical shape
such that the article/consumable resembles a conventional cigarette. It may have a
diameter of between 5 and 10mm e.g. between 6 and 9mm or 6 and 8mm e.g. around 7 mm.
It may have an axial length of between 10 and 15mm e.g. between 11 and 14mm such as
around 12 or 13mm.
[0062] The article/consumable may comprise at least one filter element. There may be a terminal
filter element at the downstream/mouth end of the article/consumable.
[0063] The or at least one of the filter element(s) (e.g. the terminal filter element) may
be comprised of cellulose acetate or polypropylene tow. The at least one filter element
(e.g. the terminal filter element) may be comprised of activated charcoal. The at
least one filter element (e.g. the terminal element) may be comprised of paper. The
or each filter element may be at least partly (e.g. entirely) circumscribed with a
plug wrap e.g. a paper plug wrap.
[0064] The terminal filter element (at the downstream end of the article/consumable) may
be joined to the upstream elements forming the article/consumable by a circumscribing
tipping layer e.g. a tipping paper layer. The tipping paper may have an axial length
longer than the axial length of the terminal filter element such that the tipping
paper completely circumscribes the terminal filter element plus the wrapping layer
surrounding any adjacent upstream element.
[0065] In some embodiments, the article/consumable may comprise an aerosol-cooling element
which is adapted to cool the aerosol generated from the aerosol-forming substrate
(by heat exchange) before being inhaled by the user.
[0066] The article/consumable may comprise a spacer element that defines a space or cavity
between the aerosol-forming substrate and the downstream end of the consumable. The
spacer element may comprise a cardboard tube. The spacer element may be circumscribed
by the (paper) wrapping layer.
[0067] According to a fourth aspect of the present invention, there is provided a method
of operating a smoking substitute device according to the first aspect, the method
comprising detecting a user taking puff on the article when power is not being supplied
to the heater of the device and, in response to the detection of the puff, activating
a power supply to the heater.
[0068] In preferred embodiments, the method comprises inserting the aerosol-forming article/consumable
into the device prior to detecting the user taking a puff. The method also comprises
heating the article/consumable after activating the power supply to the heater.
[0069] In some embodiments the method may comprise inserting the article/consumable into
a cavity within a body of the device and penetrating the article with the heating
element of the device upon insertion of the article/consumable.
[0070] The method may comprise detecting a user taking a puff on the aerosol-forming article
(e.g. a heated tobacco (HT)/Heat-not-burn (HNB) consumable) using a puff sensor (e.g.
airflow sensor). The method may comprise generating a puff signal when the user takes
a puff on the article/consumable. The puff signal may be indicative of the user drawing
(an aerosol from the aerosol-forming article/consumable) such that it is e.g. in the
form of a binary signal. Alternatively or additionally, the puff signal may be indicative
of a characteristic of the draw (e.g. a flow rate of the draw, length of time of the
draw, etc.).
[0071] The method may comprise receiving a signal (e.g. the puff signal from the puff sensor)
at a controller (which may be as described above for the first aspect) when the user
takes a puff on the article/consumable. The method may comprise, upon receipt of the
(puff) signal, generating an output signal (e.g. from the controller) to activate
the supply of power to the heater.
[0072] The method may further comprise detecting at least one operative command from the
user. The method may comprise detecting an operative command comprising switching
the device between from an OFF state to an ON state (e.g. by depressing a button,
activating a switch or turning a dial on the Ul).
[0073] In preferred embodiments, the method comprises activating the supply of power to
the heater upon simultaneous detection of the user taking a puff on the aerosol-forming
article/consumable and the operative command from the user.
[0074] For example, the method may comprise generating an output signal (e.g. from the controller)
to activate the supply of power to the heater upon detection of the combination of
the puff signal and the operative command e.g. upon switching to the ON state.
[0075] In some embodiments the method may comprise conveying information to the user to
indicate a condition of the device (and/or the aerosol-forming article/consumable).
[0076] In some embodiments, the method comprises verifying the detected puff based on a
predetermined test puff and activating the power supply to the heater in response
to verification, wherein the predetermined test puff is a previously registered test
puff of the user.
[0077] The invention includes the combination of the aspects and preferred features described
except where such a combination is clearly impermissible or expressly avoided.
[0078] The skilled person will appreciate that except where mutually exclusive, a feature
or parameter described in relation to any one of the above aspects may be applied
to any other aspect. Furthermore, except where mutually exclusive, any feature or
parameter described herein may be applied to any aspect and/or combined with any other
feature or parameter described herein.
SUMMARY OF THE FIGURES
[0079] So that the invention may be understood, and so that further aspects and features
thereof may be appreciated, embodiments illustrating the principles of the invention
will now be discussed in further detail with reference to the accompanying figures,
in which:
Figure 1 is a schematic of a smoking substitute system;
Figure 2A is a front view of a first embodiment of a smoking substitute system with
the consumable engaged with the device;
Figure 2B is a front view of the first embodiment of the smoking substitute system
with the consumable disengaged from the device;
Figure 2C is a section view of the consumable of the first embodiment of the smoking
substitute system;
Figure 2D is a detailed view of an end of the device of the first embodiment of the
smoking substitute system;
Figure 2E is a section view of the first embodiment of the substitute smoking system;
Figure 3A is a flowchart illustrating method of operating a smoking substitute device
for receiving a consumable in accordance with a first embodiment of the present invention;
and
Figure 3B is a flowchart illustrating method of operating a smoking substitute device
for receiving a consumable in accordance with a second embodiment of the present invention.
DETAILED DESCRIPTION OF THE INVENTION
[0080] Aspects and embodiments of the present invention will now be discussed with reference
to the accompanying figures. Further aspects and embodiments will be apparent to those
skilled in the art. All documents mentioned in this text are incorporated herein by
reference.
[0081] Figure 1 is a schematic providing a general overview of a smoking substitute system
100. The system 100 includes a substitute smoking device 101 and an aerosol-forming
article in the form of a consumable 102, which comprises an aerosol former 103. The
system is configured to vaporise the aerosol former by heating the aerosol former
103 (so as to form a vapour/aerosol for inhalation by a user).
[0082] The system 100 further comprises a power source 105 that forms part of the device
101. In other embodiments the power source 105 may be external to (but connectable
to) the device 101. The power source 105 is electrically connected to a heater 104
of the device 101 for the purpose of heating the aerosol former 103. Thus, control
of the electrical connection of the power source 105 to the heater 104 provides control
of the state of the heater 104. The power source 105 may be a power store, for example
a battery or rechargeable battery (e.g. a lithium ion battery).
[0083] The system 100 further comprises an I/O module comprising a connector 106 (e.g. in
the form of a USB port, Micro USB port, USB-C port, etc.). The connector 106 is configured
for connection to an external source of electrical power, e.g. a mains electrical
supply outlet. The connector 106 may be used in substitution for the power source
105. That is the connector 106 may be electrically connectable to the heater 104 so
as to supply electricity to the heater 104. In such embodiments, the device may not
include a power source, and the power source of the system may instead comprise the
connector 106 and an external source of electrical power (to which the connector 106
provides electrical connection).
[0084] In some embodiments, the connector 106 may be used to charge and recharge the power
source 105 where the power source 105 includes a rechargeable battery.
[0085] The system 100 also comprises a user interface (Ul) 107. Although not shown, the
UI 107 may include input means to receive at least one operative command from a user.
The input means of the UI 107 allows the user to control at least one aspect of the
operation of the system 100. The input means may, for example, be in the form of a
button/dial, touchscreen, switch, microphone, etc.
[0086] The UI 107 also comprises output means to convey information to the user. The output
means may, for example, comprise lights (e.g. LEDs), a display screen, speaker, vibration
generator, etc.
[0087] The system 100 further comprises a controller 108 and a memory 109 coupled to the
controller 108. In the illustrated embodiment, the controller 108 is a component of
the device 101, but in other embodiments may be separate from (but connectable to)
the device 101. The memory 109 stores controller-executable instructions that causes
the controller 108 to perform one or more functions. The controller 108 is configured
to control the operation of the heater 104 and, for example, may be configured to
control the voltage applied from the power source 105 to the heater 104.
[0088] Although not shown, the system 100 may also comprise a voltage regulator to regulate
the output voltage from the power source 105 to form a regulated voltage. The regulated
voltage may then be applied to the heater 104.
[0089] In addition to being connected to the heater 104, the controller 108 is operatively
connected to the UI 107. Thus, the controller 108 may receive an input signal from
the input means of the UI 107. Similarly, the controller 108 may transmit output signals
to the UI 107. In response, the output means of the UI 107 may convey information,
based on the output signals, to a user.
[0090] Figures 2A and 2B illustrate a heated-tobacco (HT) smoking substitute system 200.
The system 200 is an example of the system 100 described in relation to Figure 1.
System 200 includes an HT device 201 and an HT consumable 202. The description of
Figure 1 above is applicable to the system 200 of Figures 2A and 2B, and will thus
not be repeated.
[0091] The device 201 and the consumable 202 are configured such that the consumable 202
can be engaged with the device 201. Figure 2A shows the device 201 and the consumable
202 in an engaged state, whilst Figure 2B shows the device 201 and the consumable
202 in a disengaged state.
[0092] The device 201 comprises a body 209 and cap 210. In use the cap 210 is engaged at
an end of the body 209. Although not apparent from the figures, the cap 210 is moveable
relative to the body 209. In particular, the cap 210 is slideable and can slide along
a longitudinal axis of the body 209.
[0093] The device 201 comprises an output means (forming part of the UI of the device 201)
in the form of a plurality of light-emitting diodes (LEDs) 211 arranged linearly along
the longitudinal axis of the device 201 and on an outer surface of the body 209 of
the device 201. A button 212 is also arranged on an outer surface of the body 209
of the device 201 and is axially spaced (i.e. along the longitudinal axis) from the
plurality of LEDs 211.
[0094] The device 201 optionally comprises a vibrating element (not shown) coupled to the
controller 208 (not shown). The controller 208 activates the vibrating element to
provide haptic feedback to the user operating the device in response to activating
the device based on valid input command detected by the controller 208.
[0095] Figure 2C show a detailed section view of the consumable of 202 of the system 200.
The consumable 202 generally resembles a cigarette. In that respect, the consumable
202 has a generally cylindrical form with a diameter of 7 mm and an axial length of
70 mm. The consumable 202 comprises an aerosol forming substrate 213, a terminal filter
element 215, an upstream filter element 215 and a spacer element 216. In other embodiments,
the consumable may further comprise a cooling element. A cooling element may exchange
heat with vapour that is formed by the aerosol-forming substrate 213 in order to cool
the vapour so as to facilitate condensation of the vapour.
[0096] The aerosol-forming substrate 213 is substantially cylindrical and is located at
an upstream end 217 of the consumable 202, and comprises the aerosol former of the
system 200. In that respect, the aerosol forming substrate 213 is configured to be
heated by the device 201 to release a vapour. The released vapour is subsequently
entrained in an airflow flowing through the aerosol-forming substrate 213. The airflow
is produced by the action of the user drawing on a downstream 218 (i.e. terminal or
mouth end) of the consumable 202.
[0097] In the present embodiment, the aerosol forming substrate 213 comprises tobacco material
that may, for example, include any suitable parts of the tobacco plant (e.g. leaves,
stems, roots, bark, seeds and flowers). The tobacco may comprise one or more of leaf
tobacco, stem tobacco, tobacco powder, tobacco dust, tobacco derivatives, expanded
tobacco, homogenised tobacco, shredded tobacco, extruded tobacco, cut rag tobacco
and/or reconstituted tobacco (e.g. slurry recon or paper recon). For example, the
aerosol-forming substrate 213 may comprise a gathered sheet of homogenised (e.g. paper/slurry
recon) tobacco or gathered shreds/strips formed from such a sheet.
[0098] In order to generate an aerosol, the aerosol forming substrate 213 comprises at least
one volatile compound that is intended to be vaporised/aerosolised and that may provide
the user with a recreational and/or medicinal effect when inhaled. The aerosol-forming
substrate 213 may further comprise one or more additives. For example, such additives
may be in the form of humectants (e.g. propylene glycol and/or vegetable glycerine),
flavourants, fillers, aqueous/non-aqueous solvents and/or binders.
[0099] The terminal filter element 214 is also substantially cylindrical, and is located
downstream of the aerosol forming substrate 213 at the downstream end 218 of the consumable
202. The terminal filter element 214 is in the form of a hollow bore filter element
having a bore 219 (e.g. for airflow) formed therethrough. The diameter of the bore
219 is 2 mm. The terminal filter element 214 is formed of a porous (e.g. monoacetate)
filter material. As set forth above, the downstream end 218 of the consumable 202
(i.e. where the terminal filter 214 is located) forms a mouthpiece portion of the
consumable 202 upon which the user draws. Airflow is drawn from the upstream end 217,
thorough the components of the consumable 202, and out of the downstream end 218.
The airflow is driven by the user drawing on the downstream end 218 (i.e. the mouthpiece
portion) of the consumable 202.
[0100] The upstream filter element 215 is located axially adjacent to the aerosol-forming
substrate 213, between the aerosol-forming substrate 213 and the terminal filter element
214. Like the terminal filter 214, the upstream filter element 215 is in the form
of a hollow bore filter element, such that it has a bore 220 extending axially therethrough.
In this way, the upstream filter 215 may act as an airflow restrictor. The upstream
filter element 215 is formed of a porous (e.g. monoacetate) filter material. The bore
220 of the upstream filter element 215 has a larger diameter (3 mm) than the terminal
filter element 214.
[0101] The spacer 216 is in the form of a cardboard tube, which defines a cavity or chamber
between the upstream filter element 215 and the terminal filter element 214. The spacer
216 acts to allow both cooling and mixing of the vapour/aerosol from the aerosol-forming
substrate 213. The spacer has an external diameter of 7 mm and an axial length of
14mm.
[0102] Although not apparent from the figure, the aerosol-forming substrate 213, upstream
filter 215 and spacer 216 are circumscribed by a paper wrapping layer. The terminal
filter 214 is circumscribed by a tipping layer that also circumscribes a portion of
the paper wrapping layer (so as to connect the terminal filter 214 to the remaining
components of the consumable 202). The upstream filter 215 and terminal filter 214
are circumscribed by further wrapping layers in the form of plug wraps.
[0103] Returning now to the device 201, Figure 2D illustrates a detailed view of the end
of the device 201 that is configured to engage with the consumable 202. The cap 210
of the device 201 includes an opening 221 to an internal cavity 222 (more apparent
from Figure 2D) defined by the cap 210. The opening 221 and the cavity 222 are formed
so as to receive at least a portion of the consumable 202. During engagement of the
consumable 202 with the device 201, a portion of the consumable 202 is received through
the opening 221 and into the cavity 222. After engagement (see Figure 2B), the downstream
end 218 of the consumable 202 protrudes from the opening 221 and thus protrudes also
from the device 201. The opening 221 includes laterally disposed notches 226. When
a consumable 202 is received in the opening 221, these notches 226 remain open and
could, for example, be used for retaining a cover to cover the end of the device 201.
[0104] Figure 2E shows a cross section through a central longitudinal plane through the
device 201. The device 201 is shown with the consumable 202 engaged therewith.
[0105] The device 201 comprises a heater 204 comprising heating element 223. The heater
204 forms part of the body 209 of the device 201 and is rigidly mounted to the body
209. In the illustrated embodiment, the heater 204 is a rod heater with a heating
element 223 having a circular transverse profile. In other embodiments the heater
may be in the form of a blade heater (e.g. heating element with a rectangular transverse
profile) or a tube heater (e.g. heating element with a tubular form).
[0106] The heating element 223 of the heater 204 projects from an internal base of the cavity
222 along a longitudinal axis towards the opening 221. As is apparent from the figure,
the length (i.e. along the longitudinal axis) of the heating element is less than
a depth of the cavity 222. In this way, the heating element 223 does not protrude
from or extend beyond the opening 221.
[0107] When the consumable 202 is received in the cavity 222 (as is shown in Figure 2E),
the heating element 223 penetrates the aerosol-forming substrate 213 of the consumable
202. In particular, the heating element 223 extends for nearly the entire axial length
of the aerosol-forming substrate 213 when inserted therein. Thus, when the heater
204 is activated, heat is transferred radially from an outer circumferential surface
the heating element 223 to the aerosol-forming substrate 213.
[0108] The device 201 further comprises an electronics cavity 224. A power source, in the
form of a rechargeable battery 205 (a lithium ion battery), is located in electronics
cavity 224.
[0109] The device 201 includes a connector (i.e. forming part of an IO module of the device
201) in the form of a USB port 206. The connector may alternatively be, for example,
a micro-USB port or a USB-C port for examples. The USB port 206 may be used to recharge
the rechargeable battery 205.
[0110] The device 201 includes the controller 208 located in the electronics cavity 224.
The controller 208 comprises a microcontroller mounted on a printed circuit board
(PCB). The USB port 206 is also connected to the controller 208 (i.e. connected to
the PCB and microcontroller).
[0111] The controller 208 is configured to control at least one function of the device 201.
For example, the controller 208 is configured to control the operation of the heater
204. Such control of the operation of the heater 204 may be accomplished by the controller
toggling the electrical connection of the rechargeable battery 205 to the heater 204.
For example, the controller 208 is configured to control the heater 204 in response
to detection of user taking puff or receiving a simultaneous user button press input
from the user via the input means of the device 201. The input means may include for
examples a button, a switch, or a capacitive touch sensor.
[0112] The controller is also configured to control the LEDs 211 in response to (e.g. a
detected) a condition of the device 201 or the consumable 202. For example, the controller
may control the LEDs to indicate whether the device 201 is in an on state or an off
state (e.g. one or more of the LEDs may be illuminated by the controller when the
device is in an on state).
[0113] The device 201 comprises a puff sensor 225. The puff sensor 225 is configured to
detect a user drawing (i.e. inhaling) at the downstream end 218 of the consumable
202 when the device is in the OFF state i.e. when no power is being supplied to the
heater 104. The puff sensor 225 may, for example, be in the form of a pressure sensor,
flowmeter or a microphone. The puff sensor 225 is operatively connected to the controller
208 in the electronics cavity 224, such that a signal from the puff sensor 225, indicative
of a puff state (i.e. drawing or not drawing), forms an input to the controller 208
(and can thus be responded to by the controller 208). The controller 208 receives
the (puff) signal from puff sensor 225 when there is no power being supplied to the
heater 204 of the device.
[0114] The controller 208 validates the detected user puff to activate the device. In one
example, the controller 208 validates the detected puff by comparing with a predetermined
test puff previously set by the user. If the controller 208 determines that the detected
puff is valid, then the controller 208 activates the heater of the device 201 by allowing
the power supply to the heater 204. If the controller 208 determines that the detected
puff is invalid, then the controller 208 do not activate the heater of the device
201 and proceeds to detect for the next puff or signal from the puff sensor 225.
[0115] Alternatively, in addition to the puff detected by the puff sensor, the controller
208 may simultaneously receive a button press by the user as further user input. If
the controller 208 determines that the detected puff is valid, and detects the simultaneous
button press by the user, then the controller 208 activates the heater of the device
201 by allowing the power supply to the heater 204. If the controller 208 determines
that the detected puff is invalid, then the controller 208 do not activate the heater
of the device 201 and proceeds to detect for the next puff or signal from the puff
sensor 225.
[0116] The controller 208 may also trigger the vibration generator to provide feedback indicating
the user about the activation of the heater 204 of the device 201 in response to detection
of puff. In one example, the feedback is a haptic feedback. In another example, the
feedback is an audio feedback output by the speaker of the device 201. In yet another
example, the feedback is a visual feedback output by the display of the device 201.
[0117] By validating the received input command, the device 201 allows only an authorized
activation of the heater 204 of the device 201 for receiving a consumable thereby
avoiding accidental activation of the device by child user or when the device 201
is inside the user's pocket or in transit.
[0118] Figure 3A illustrates flowchart of method of operating a smoking substitute device
for receiving a consumable in accordance with a first embodiment of the present invention.
[0119] As illustrated in Figure 3A, the method 300 includes one or more blocks implemented
by the controller 208 of the device 201. The method 300 may be described in the general
context of controller executable instructions. Generally, controller executable instructions
can include routines, programs, objects, components, data structures, procedures,
modules, and functions, which perform particular functions or implement particular
abstract data types.
[0120] The order in which the method 300 is described is not intended to be construed as
a limitation, and any number of the described method blocks can be combined in any
order to implement the method 300. Additionally, individual blocks may be deleted
from the method 300 without departing from the scope of the subject matter described
herein. Furthermore, the method 300 can be implemented in any suitable hardware, software,
firmware, or combination thereof.
[0121] At block 301, the controller 208 detects a puff drawn by a user. The controller 208
receives the signal or puff detected by the puff sensor 225 when there is no power
being supplied to the heater 204 of the device i.e. the device is in the OFF state
with the heater at ambient temperature. At block 302, the controller 208 validates
the detected puff. The controller 208 validates the detected puff to activate the
power supply to the heater of the device. In one example, the controller 208 validates
the detected puff by comparing with a predetermined test puff previously set by the
user. If the controller 208 determines that the detected puff is valid, then the method
proceeds to block 303 along the "YES" path. Otherwise, if the controller 208 determines
that the detected puff is invalid, then the controller 208 does not activate the heater
of the device 201 and proceeds to detect for the next test puff or signal from the
puff sensor 225 to block 301 along the "NO" path.
[0122] At block 303, the controller 208 activates the heater of the device 201. If the controller
208 determines that the detected puff is valid along the "YES" path, then the controller
208 activates the heater of the device 201 by allowing the power supply to the heater
204.
[0123] At block 304, the controller 208 provides feedback to the user about the activation
of the device 201 The controller 208 may also trigger the vibration generator to provide
feedback indicating the user about the activation of the heater 204 of the device
201 in response to detection of puff. In one example, the feedback is a haptic feedback.
In another example, the feedback is an audio feedback output by the speaker of the
device 201. In yet another example, the feedback is a visual feedback output by the
display of the device 201.
[0124] By validating the received input command, the device 201 allows only an authorized
activation of the heater 204 of the device 201 for receiving a consumable thereby
avoiding accidental activation of the device by child user or when the device 201
is inside the user's pocket or in transit.
[0125] Figure 3B illustrates flowchart of method of operating a smoking substitute device
for receiving a consumable in accordance with a second embodiment of the present invention.
[0126] As illustrated in Figure 3B, the method 310 includes one or more blocks implemented
by the controller 208 of the device 201. The method 310 may be described in the general
context of controller executable instructions. Generally, controller executable instructions
can include routines, programs, objects, components, data structures, procedures,
modules, and functions, which perform particular functions or implement particular
abstract data types.
[0127] The order in which the method 310 is described is not intended to be construed as
a limitation, and any number of the described method blocks can be combined in any
order to implement the method 310. Additionally, individual blocks may be deleted
from the method 310 without departing from the scope of the subject matter described
herein. Furthermore, the method 310 can be implemented in any suitable hardware, software,
firmware, or combination thereof.
[0128] At block 311, the controller 208 detects a puff by a user. The controller 208 receives
the signal or puff detected by the puff sensor 225 when there is no power being supplied
to the heater 204 of the device.
[0129] At block 312, the controller 208 validates the detected puff. The controller 208
validates the detected puff to activate the power supply to the heater of the device.
In one example, the controller 208 validates the detected puff by comparing with a
predetermined test puff previously set by the user. If the controller 208 determines
that the test puff is valid, then the method proceeds to block 313 along the "YES"
path. Otherwise, if the controller 208 determines that the detected puff is invalid,
then the controller 208 do not activate the heater of the device 201 and proceeds
to detect for the next puff or signal from the puff sensor 225 to block 311 along
the "NO" path.
[0130] At block 313, the controller 208 detects a simultaneous button press by the user
an operative command. In addition to the puff detected by the puff sensor, the controller
208 may simultaneously receive a button press by the user an operative command. If
the controller 208 determines that the detected puff is valid, and detects the simultaneous
button press by the user, then the controller 208 activates the heater of the device
201 by allowing the power supply to the heater 204. If the controller 208 determines
that the detected puff is invalid, then the controller 208 does not activate the heater
of the device 201 and proceeds to detect for the next puff or signal from the puff
sensor 225.
[0131] At block 314, the controller 208 activates the heater of the device 201. If the controller
208 determines that the detected puff is valid at block 312, then the controller 208
activates the heater of the device 201 by allowing the power supply to the heater
204.
[0132] At block 315, the controller 208 provides feedback to the user about the activation
of the device 201. Controller 208 may also trigger the vibration generator to provide
feedback indicating the user about the activation of the heater 204 of the device
201 in response to detection of puff. In one example, the feedback is a haptic feedback.
In another example, the feedback is an audio feedback output by the speaker of the
device 201. In yet another example, the feedback is a visual feedback output by the
display of the device 201.
[0133] By validating the received input command, the device 201 allows only an authorized
activation of the heater 204 of the device 201 for receiving a consumable thereby
avoiding accidental activation of the device by child user or when the device 201
is inside the user's pocket or in transit.
[0134] The features disclosed in the foregoing description, or in the following claims,
or in the accompanying drawings, expressed in their specific forms or in terms of
a means for performing the disclosed function, or a method or process for obtaining
the disclosed results, as appropriate, may, separately, or in any combination of such
features, be utilised for realising the invention in diverse forms thereof.
[0135] While the invention has been described in conjunction with the exemplary embodiments
described above, many equivalent modifications and variations will be apparent to
those skilled in the art when given this disclosure. Accordingly, the exemplary embodiments
of the invention set forth above are considered to be illustrative and not limiting.
Various changes to the described embodiments may be made without departing from the
spirit and scope of the invention.
[0136] For the avoidance of any doubt, any theoretical explanations provided herein are
provided for the purposes of improving the understanding of a reader. The inventors
do not wish to be bound by any of these theoretical explanations.
[0137] Any section headings used herein are for organizational purposes only and are not
to be construed as limiting the subject matter described.
[0138] Throughout this specification, including the claims which follow, unless the context
requires otherwise, the words "have", "comprise", and "include", and variations such
as "having", "comprises", "comprising", and "including" will be understood to imply
the inclusion of a stated integer or step or group of integers or steps but not the
exclusion of any other integer or step or group of integers or steps.
[0139] It must be noted that, as used in the specification and the appended claims, the
singular forms "a," "an," and "the" include plural referents unless the context clearly
dictates otherwise. Ranges may be expressed herein as from "about" one particular
value, and/or to "about" another particular value. When such a range is expressed,
another embodiment includes from the one particular value and/or to the other particular
value. Similarly, when values are expressed as approximations, by the use of the antecedent
"about," it will be understood that the particular value forms another embodiment.
The term "about" in relation to a numerical value is optional and means, for example,
+/- 10%.
[0140] The words "preferred" and "preferably" are used herein refer to embodiments of the
invention that may provide certain benefits under some circumstances. It is to be
appreciated, however, that other embodiments may also be preferred under the same
or different circumstances. The recitation of one or more preferred embodiments therefore
does not mean or imply that other embodiments are not useful, and is not intended
to exclude other embodiments from the scope of the disclosure, or from the scope of
the claims.