Heated aerosol generator and method for generating aerosols with consistent characteristics

Through the three-stage control of the power supply of heating elements, the problem of uneven release of smoke components during continuous or repeated heating is solved, uniform and continuous generation of smoke is achieved, and the user experience is improved.

JP7675164B2Active Publication Date: 2025-05-12PHILIP MORRIS PRODUCTS SA
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Patent Information

Application Number
JP2023215747
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2012-12-28
Filing Date
2023-12-21
Publication Date
2025-05-12
Estimated Expiration
2033-12-17

AI Technical Summary

Technical Problem

The prior art is difficult to maintain uniform release of smoke components such as nicotine and spices in the tobacco substrate under continuous or repeated heating conditions, resulting in a gradual decrease in the aroma, taste and feeling of the smoke.

Method used

By controlling the power supply on the heating element, it is divided into three stages: the first stage heats to a higher temperature to quickly generate smoke, the second stage reduces the temperature to reduce energy consumption and prevents the substrate combustion, and the third stage raises the temperature again to compensate for the reduction in smoke generation caused by the substrate depletion.

Benefits of technology

It realizes the uniformity and persistence of smoke during continuous or repeated heating, extends the lasting time of the fragrance and taste of smoke, and improves the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method for controlling the generation of aerosol in an aerosol generation device.SOLUTION: An aerosol generation device includes a heater including at least one heating element configured so as to heat an aerosol forming base material and a power source for supplying power to the heating element. A method for controlling the generation of aerosol includes a step to control the power to be supplied to the heating element so that power is supplied in order for the temperature of the heating element to increase from an initial temperature to a first temperature in a first stage, power is supplied in order for the temperature of the heating element to decrease to a second temperature lower than the first temperature in a second stage, and power is supplied in order for the temperature of the heating element to increase again in a third stage. When the temperature of the heating element is caused to increase in a final stage of the heating process, a decrease in aerosol delivery by a lapse of time is reduced or prevented.SELECTED DRAWING: Figure 5
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Description

[Technical field]

[0001] The present invention relates to an aerosol generating device and a method for generating an aerosol by heating an aerosol-forming substrate, and in particular to an device and method for generating an aerosol from an aerosol-forming substrate with consistent desired characteristics over periods of continuous or repeated heating of the aerosol-forming substrate. [Background technology]

[0002] In the art, aerosol generating devices are known, including, for example, heated smoking devices, which operate by heating an aerosol-forming substrate. WO 2009 / 118085 describes a heated smoking device that generates an aerosol by heating a substrate while controlling the temperature within a desired temperature range to prevent the substrate from burning.

[0003] It is desirable for an aerosol generating device to be able to generate a consistent aerosol over time. This is especially true when the aerosol is intended for human consumption, such as in a heated smoking device. In devices where an exhaustible substrate is heated continuously or repeatedly over a period of time, generating a consistent aerosol can be difficult, since the properties of the aerosol-forming substrate may change significantly with continuous or repeated heating, both in relation to the amount and distribution of aerosol-forming components remaining in the substrate, and the temperature of the substrate. In particular, users of continuous or repeated heating devices may experience a diminished aerosol aroma, taste, and sensation as the substrate is depleted of the aerosol formers that deliver nicotine and possibly flavorants. Thus, a consistent aerosol delivery is achieved over time, such that the aerosol delivered at the beginning of operation is approximately the same as the aerosol delivered at the end. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] International Publication No. 2009 / 118085 Summary of the Invention [Problem to be solved by the invention]

[0005] It is an object of the present disclosure to provide aerosol generating devices and systems that provide aerosols with more consistent properties over periods of continuous or repeated heating of the aerosol-forming substrate. [Means for solving the problem]

[0006] In a first aspect, the present disclosure provides a method of controlling aerosol generation in an aerosol generating device, the device comprising: a heater including at least one heating element configured to heat the aerosol-forming substrate; a power source for powering the heating element; the method comprising the steps of controlling power supplied to the heating element such that in a first stage, power is supplied to increase the temperature of the heating element from an initial temperature to a first temperature, in a second stage, power is supplied to decrease the temperature of the heating element to a second temperature lower than the first temperature, and in a third stage, power is supplied to increase the temperature of the heating element to a third temperature higher than the second temperature.

[0007] As used herein, "aerosol-generating device" refers to a device that interacts with an aerosol-forming substrate to generate an aerosol. The aerosol-forming substrate can be part of an aerosol-generating article, such as part of a smoking article. The aerosol-generating device can be a smoking device that interacts with the aerosol-forming substrate of the aerosol-generating article to generate an aerosol that can be inhaled directly through the user's mouth into the user's lungs. The aerosol-generating device can be a holder.

[0008] The term "aerosol-forming substrate" as used herein relates to a substrate capable of releasing a volatile compound capable of forming an aerosol. Such a volatile compound can be released by heating the aerosol-forming substrate. The aerosol-forming substrate can conveniently be part of an aerosol-generating article or a smoking article.

[0009] The terms "aerosol-generating article" and "smoking article" as used herein refer to an article that includes an aerosol-forming substrate capable of releasing a volatile compound capable of forming an aerosol. For example, the aerosol-generating article may be a smoking article that generates an aerosol that can be inhaled directly into the user's lungs through the user's mouth. The aerosol-generating article may be disposable. In the following, the term "smoking article" is generally used. The smoking article may be or may include a tobacco stick.

[0010] Existing aerosol generating devices, which generate aerosol by repeatedly or continuously heating a substrate, are usually controlled to achieve a single constant temperature over time. However, the aerosol-forming substrate is depleted by heating, i.e. the amount of the main aerosol components in the substrate decreases, which means that the aerosol generation at a given temperature decreases. Furthermore, when the temperature of the aerosol-forming substrate reaches a steady state, the delivery of aerosol decreases due to the decrease in the thermal diffusion effect. As a result, the delivery of aerosol measured in terms of the main aerosol components, such as nicotine in the case of a heated smoking device, decreases over time. Increasing the temperature of the heating element during the final stage of the heating process can reduce or prevent the decrease in aerosol delivery over time.

[0011] In this context, continuous or repeated heating means heating the substrate or a portion of the substrate to generate an aerosol for a duration that is typically greater than 5 seconds, and sometimes greater than 30 seconds. In the context of a heated smoking device, or other device in which a user draws on the device to inhale the aerosol, this means heating the substrate so that an aerosol is generated continuously over a period that includes multiple puffs by the user, whether or not the user is drawing on the device. In this context, substrate depletion becomes a significant issue. This is in contrast to instantaneous heating, in which a separate substrate or portion of the substrate is heated for each puff by the user, and the substrate portion is not heated for longer than a single puff, which may be approximately 2-3 seconds in duration.

[0012] The terms "puffing" and "inhalation" are used interchangeably herein to refer to the action of a user drawing an aerosol into their body through their mouth or nose, including situations where the aerosol is inhaled into the user's lungs, as well as situations where the aerosol is inhaled solely into the user's mouth or nasal passages before being expelled from the user's body.

[0013] The first, second and third temperatures are selected so that aerosol is generated continuously during the first, second and third stages. The first, second and third temperatures are preferably determined based on a temperature range corresponding to the volatilization temperature of the aerosol former present in the substrate. For example, when glycerin is used as the aerosol former, a temperature of 290 to 320 degrees Celsius or higher (i.e., a temperature higher than the boiling point of glycerin) is used. During the second stage, power can be supplied to the heating element to ensure that the temperature does not fall below a minimum acceptable temperature.

[0014] In the first stage, the temperature of the heating element is raised to a first temperature at which aerosol is generated from the aerosol-forming substrate. In many devices, particularly heated smoking devices, it is desirable to generate an aerosol containing the desired components as soon as possible after activation of the device. The "time to first puff" is considered critical to a satisfactory consumer experience with a heated smoking device. Consumers do not want to have to wait a long time between activation of the device and their first puff. Thus, in the first stage, power may be provided to the heating element to raise the heating element to the first temperature as quickly as possible. The first temperature may be selected to be within an acceptable temperature range, but may be selected near the maximum acceptable temperature to generate a satisfactory amount of aerosol for initial delivery to the consumer. During the initial operating time of the device, condensation within the device reduces the delivery of aerosol.

[0015] The acceptable temperature range depends on the aerosol-forming substrate. Aerosol-forming substrates release a range of volatile compounds at different temperatures. Some volatile compounds released from the aerosol-forming substrate are only formed through a heating process. Each volatile compound is released above its own release temperature. By controlling the maximum operating temperature below the release temperature of some volatile compounds, the release or formation of components of these volatile compounds can be avoided. The maximum operating temperature can also be selected to ensure that combustion of the substrate does not occur under normal operating conditions.

[0016] The acceptable temperature range may have a lower limit of 240°C to 340°C and an upper limit of 340°C to 400°C, preferably 340°C to 380°C. The first temperature may be 340°C to 400°C. The second temperature may be 240°C to 340°C, preferably 270°C to 340°C, and the third temperature may be 340°C to 400°C, preferably 340°C to 380°C. The maximum operating temperatures of the first, second and third temperatures are preferably none of the above exceeding the combustion temperature of undesirable compounds present in conventional cigarettes with lighting ends or about 380°C.

[0017] Advantageously, in the second and third stages, the step of controlling the power supplied to the heating element is performed so as to maintain the temperature of the heating element within an acceptable or desired temperature range.

[0018] There are many possibilities for determining when to transition from the first stage to the second stage, and similarly when to transition from the second stage to the third stage. In one embodiment, the first, second and third stages can each have a predetermined duration. In this embodiment, the time after activation of the device is used to determine when to start and end the second and third stages. In another example, the first stage can be ended as soon as the heating element reaches the first target temperature. In yet another example, the first stage can be ended based on a predetermined time after the heating element reaches the first target temperature. In another example, the first and second stages can be ended based on the total energy delivered to the heating element after activation. In yet another example, the device can be configured to detect a puff by the user, for example with a dedicated flow sensor, and the first and second stages can be ended after a predetermined number of puffs. It will be apparent that combinations of these options can be used to apply to the transition of any two stages. It will also be apparent that the heating element may have more than three different operating stages.

[0019] Once the first stage is complete, a second stage begins in which power to the heating element is controlled to reduce the temperature of the heating element to a second temperature that is lower than the first temperature but within an acceptable temperature range. This reduction in the heating element temperature is desirable because as the device and substrate warm up, a given heating element temperature reduces condensation and increases aerosol delivery. After the first stage, it is desirable to reduce the temperature of the heating element to reduce the possibility of substrate combustion. Reducing the temperature of the heating element also reduces the amount of energy consumed by the aerosol generating device. Additionally, varying the temperature of the heating element during operation of the device allows for the introduction of a time-modulated temperature gradient at the substrate.

[0020] In the third stage, the temperature of the heating element is increased. During the third stage, it is desirable to continuously increase the temperature as the substrate becomes increasingly depleted. Increasing the temperature of the heating element during the third stage compensates for the decrease in aerosol delivery due to substrate depletion and reduced thermal diffusion. However, the increase in temperature of the heating element during the third stage can have any desired temporal profile and can depend on the geometry of the device and substrate, the composition of the equipment, and the duration of the first and second stages. It is desirable for the temperature of the heating element to remain within an acceptable range throughout the third stage. In one embodiment, the step of controlling the power to the heating element is performed to continuously increase the temperature of the heating element during the third stage.

[0021] The step of controlling the power to the heating element may include measuring the temperature of or near the heating element to provide a measured temperature, comparing the measured temperature to a target temperature, and adjusting the power supplied to the heating element based on the comparison. The target temperature preferably varies with time as the first, second and third stages after operation of the device are effected. For example, during the first stage, the target temperature may be a first target temperature, during the second stage, the target temperature may be a second target temperature, and during the third stage, the target temperature may be a third target temperature, which gradually increases with time. It will be apparent that the target temperature may be selected to have any desired temporal profile within the constraints of the first, second and third stages of operation.

[0022] The heating element may be an electrically resistive heating element, and controlling the power supplied to the heating element may include measuring the electrical resistance of the heating element and adjusting the current supplied to the heating element in dependence on the measured electrical resistance. The electrical resistance of the heating element indicates the temperature of the heating element, and thus the measured electrical resistance may be compared to a target electrical resistance and the supplied power may be adjusted accordingly. A PID control loop may be used to drive the measured temperature to the target temperature. Furthermore, other than detecting the electrical resistance of the heating element, mechanisms for sensing temperature may also be used, such as a bimetallic plate, a thermocouple or a dedicated thermistor, or an electrical resistance element electrically isolated from the heating element. These optional temperature sensing mechanisms may be used in addition to or instead of measuring temperature by monitoring the electrical resistance of the heating element. For example, a separate temperature sensing mechanism may be used within the control mechanism for reducing the power to the heating element when the temperature of the heating element exceeds an acceptable temperature range.

[0023] The method may further comprise identifying a characteristic of the aerosol-forming substrate. The step of controlling the power may then be adjusted depending on the identified characteristic. For example, different target temperatures may be used for different substrates.

[0024] In a second aspect of the present invention there is provided an electrically actuated aerosol generating device comprising: at least one heating element configured to heat the aerosol-forming substrate to generate an aerosol; a power source for powering the heating element; an electrical circuit for controlling the supply of power from the power source to the at least one heating element; the electrical circuit configured to control power supplied to the heating element such that in a first stage the temperature of the heating element increases from an initial temperature to a first temperature, in a second stage the temperature of the heating element decreases below the first temperature, and in a third stage the temperature of the heating element increases again, with power being supplied continuously during the first, second and third stages.

[0025] The options for the duration of each stage and the temperature of the heating element during each stage are as described in relation to the first aspect. The electrical circuitry may be configured such that the first, second and third stages each have a fixed duration. The electrical circuitry may be configured to control the power supplied to the heating element such that the temperature of the heating element increases continuously during the third stage.

[0026] The circuitry can be configured to provide power to the heating element as current pulses, and the power provided to the heating element can be adjusted by adjusting the duty cycle of the current, which can be adjusted by varying the pulse width or the frequency of the pulses, or both. Alternatively, the circuitry can be configured to provide power to the heating element as a continuous DC signal.

[0027] The electrical circuitry may include temperature sensing means arranged to measure the temperature of or near the heating element to provide a measured temperature and may be arranged to compare the measured temperature to a target temperature and adjust the power supplied to the heating element based on the comparison. The target temperature may be stored in electronic memory and preferably varies with time following operation of the apparatus as the first, second and third stages are effected.

[0028] The temperature sensing means may be a dedicated electrical component, such as a thermistor, or a circuit configured to measure the temperature based on the electrical resistance of the heating element.

[0029] The electrical circuitry may further include means for identifying a characteristic of an aerosol-forming substrate within the device, and a memory that holds a look-up table of power control instructions and corresponding aerosol-forming substrate characteristics.

[0030] In both the first and second aspects of the invention, the heating element may include an electrically resistive material. Suitable electrically resistive materials include, but are not limited to, doped ceramics, "conductive" ceramics (e.g., molybdenum disilicide), semiconductors such as carbon, graphite, metals, metal alloys, and composites of ceramic and metal materials. Such composites may include doped or undoped ceramics. An example of a suitable doped ceramic is doped silicon carbide. Examples of suitable metals include titanium, zirconium, tantalum, platinum, gold, and silver. Examples of suitable metal alloys include stainless steels, nickel-containing alloys, cobalt-containing alloys, chromium-containing alloys, aluminum-containing alloys, titanium-containing alloys, zirconium-containing alloys, hafnium-containing alloys, niobium-containing alloys, molybdenum-containing alloys, tantalum-containing alloys, tungsten-containing alloys, tin-containing alloys, gallium-containing alloys, manganese-containing alloys, gold-containing alloys, and iron-containing alloys, as well as nickel, iron, cobalt, stainless steels, Timetal®-based superalloys, and iron-manganese-aluminum-based alloys. In composite materials, the electrically resistive material can optionally be embedded in, encapsulated or coated with an insulating material, or vice versa, depending on the kinetics of energy transfer and the required external physicochemical properties.

[0031] In both the first and second aspects of the invention, the aerosol generating device may include an internal or external heating element, or both, where "internal" and "external" refer to the aerosol-forming substrate. The internal heating element may take any suitable form. For example, the internal heating element may take the form of a heating blade. Alternatively, the internal heater may take the form of a casing or substrate with different conductive portions, or an electrically resistive metal tube. Alternatively, the internal heating element may be one or more heating needles or rods that run through the center of the aerosol-forming substrate. Other options include, for example, a heating wire or filament, such as Ni-Cr (nickel chromium), platinum, tungsten, or alloy wire, or a heating plate. Optionally, the internal heating element may be deposited in or on a rigid carrier material. In one such embodiment, a metal with a defined temperature-resistivity relationship may be used to form the electrically resistive heating element. In such an exemplary device, the metal may be formed as a track on a suitable insulating material, such as a ceramic material, and sandwiched between another insulating material, such as glass. A heater so formed can be used to both heat the heating element and monitor the temperature during operation.

[0032] The external heating element may take any suitable form. For example, the external heating element may take the form of one or more flexible heating foils on a dielectric substrate, such as polyimide. The flexible foil may be molded to fit the perimeter of the substrate receiving cavity. Alternatively, the external heating element may take the form of one or more metal grids, flexible circuit boards, molded interconnect devices (MIDs), ceramic heaters, flexible carbon fiber heaters, or may be formed on a suitable molded substrate using coating techniques such as plasma deposition. The external heating element may also be formed using a metal having a defined temperature-resistivity relationship. In such an exemplary device, the metal may be formed as a track between two layers of suitable insulating material. The external heating element thus formed may be used to both heat and monitor the temperature of the external heating element during operation.

[0033] The internal or external heating element may comprise a heat sink or a heat store comprising a material capable of absorbing and storing heat and then releasing it over time to the aerosol-forming substrate. The heat sink may be made of any suitable material, such as a suitable metal or ceramic material. In one embodiment, the material has a high heat capacity (sensible heat store) or is capable of absorbing heat and then releasing it through a reversible process, such as a high temperature phase change. Suitable sensible heat store materials include silica gel, alumina, carbon, glass mat, glass fiber, minerals, metals or alloys, such as aluminum, silver or lead, and cellulosic materials, such as paper. Other suitable materials that release heat through a reversible phase change include paraffin, sodium acetate, naphthalene, wax, polyethylene oxide, metals, metal salts, eutectic salt mixtures, or alloys. The heat sink or heat store may be configured to be in direct contact with the aerosol-forming substrate so that the stored heat can be transferred directly to the substrate. Alternatively, the heat stored in the heat sink or heat store may be transferred to the aerosol-forming substrate using a thermal conductor, such as a metal tube.

[0034] Advantageously, the heating element heats the aerosol-forming substrate by thermal conduction. The heating element may be in at least partial contact with the substrate or with the carrier on which the substrate is deposited. Alternatively, heat from either an internal or external heating element may be conducted to the substrate by a thermally conductive element.

[0035] In both the first and second aspects of the invention, the aerosol-forming substrate may be fully contained within the aerosol-generating device during operation, whereby a user may puff on a mouthpiece of the aerosol-generating device. Alternatively, the smoking article comprising the aerosol-forming substrate may be partially contained within the aerosol-generating device during operation, whereby a user may puff on the smoking article directly. The heating element may be located within a cavity of the device, the cavity being configured to receive the aerosol-forming substrate such that in use the heating element is present within the aerosol-forming substrate.

[0036] The smoking article may be substantially cylindrical in shape. The smoking article may be substantially elongated. The smoking article may have a length and a circumference substantially perpendicular to the length. The aerosol-forming substrate may be substantially cylindrical in shape. The aerosol-forming substrate may be substantially elongated. The aerosol-forming substrate may also have a length and a circumference substantially perpendicular to the length.

[0037] The smoking article can have an overall length of about 30 mm to about 100 mm. The smoking article can have an outer diameter of about 5 mm to about 12 mm. The smoking article can include a filter plug. The filter plug can be located at a downstream end of the smoking article. The filter plug can be a cellulose acetate filter plug. The filter plug can have a length of about 5 mm to about 10 mm, although in one embodiment the filter plug is about 7 mm in length.

[0038] In one embodiment, the smoking article has a total length of about 45 mm. The smoking article can have an outer diameter of about 7.2 mm. Furthermore, the aerosol-forming substrate can have a length of about 10 mm. Alternatively, the aerosol-forming substrate can have a length of about 12 mm. Furthermore, the diameter of the aerosol-forming substrate can be about 5 mm to about 12 mm. The smoking article can include an outer paper wrapper. Furthermore, the smoking article can have a separation distance between the aerosol-forming substrate and the filter plug. This separation distance can be about 18 mm, but may be about 5 mm to about 25 mm. This separation distance is preferably filled within the smoking article by a heat exchanger that cools the aerosol as it passes from the substrate to the filter plug within the smoking article. The heat exchanger can be, for example, a polymeric filter, such as a crinkled PLA material.

[0039] In both the first and second aspects of the present invention, the aerosol-forming substrate may be a solid aerosol-forming substrate. Alternatively, the aerosol-forming substrate may comprise both solid and liquid components. The aerosol-forming substrate may comprise a tobacco-containing material comprising volatile tobacco flavour compounds that are released from the substrate upon heating. Alternatively, the aerosol-forming substrate may comprise a non-tobacco material. The aerosol-forming substrate may further comprise an aerosol former. Examples of suitable aerosol formers include glycerin and propylene glycol.

[0040] When the aerosol-forming substrate is a solid aerosol-forming substrate, the solid aerosol-forming substrate may comprise, for example, one or more of powders, granules, pellets, pieces, filaments, strips or sheets comprising one or more of herb leaves, tobacco leaves, tobacco stem pieces, reconstituted tobacco, homogenized tobacco, extracted tobacco, extruded tobacco and expanded tobacco. The solid aerosol-forming substrate may be in loose form or may be provided in a suitable container or cartridge. Optionally, the solid aerosol-forming substrate may also comprise additional tobacco or non-tobacco volatile flavour compounds that are released upon heating of the substrate. The solid aerosol-forming substrate may also comprise capsules comprising additional tobacco or non-tobacco volatile flavour compounds, such capsules being capable of dissolving during heating of the solid aerosol-forming substrate.

[0041] Homogenized tobacco, as used herein, refers to a material formed by agglomerating particulate tobacco. The homogenized tobacco may be in the form of a sheet. The homogenized tobacco material may have an aerosol former content of greater than 5% by dry weight. Alternatively, the homogenized tobacco material may have an aerosol former content of 5-30% by dry weight. A sheet of homogenized tobacco material may be formed by agglomerating particulate tobacco obtained by grinding or otherwise pulverizing either or both of the tobacco blades and the tobacco stems. Alternatively or in addition, a sheet of homogenized tobacco material may include one or more of tobacco shreds, tobacco powder, and other particulate tobacco formed as by-products, for example, during tobacco processing, handling, and shipping. The sheet of homogenized tobacco material may include one or more intrinsic binders originating from within the tobacco, one or more extrinsic binders originating from outside the tobacco, or a combination thereof, to assist in agglomerating the particulate tobacco, and alternatively or in addition, the sheet of homogenized tobacco material may also include other additives, including but not limited to tobacco and non-tobacco fibers, aerosol formers, humectants, plasticizers, flavorants, fillers, aqueous and non-aqueous solvents, and combinations thereof.

[0042] Optionally, the solid aerosol-forming substrate can be provided on or embedded in a thermally stable carrier. The carrier can be in the form of a powder, granules, pellets, flakes, threads, strips or sheets. Alternatively, the carrier can be a tubular carrier having a thin layer of the solid substrate deposited on its inner or outer surface, or both. Such a tubular carrier can be formed, for example, of paper or paper-like material, non-woven carbon fiber mat, low-mass mesh metal screen or perforated metal foil, or any other thermally stable polymeric matrix.

[0043] The solid aerosol-forming substrate may be deposited on the surface of the carrier in the form of, for example, a sheet, foam, gel, or slurry. The solid aerosol-forming substrate may be deposited on the entire surface of the carrier or may be deposited in a pattern to provide non-uniform flavor delivery during use.

[0044] Although a solid aerosol-forming substrate has been mentioned above, it will be clear to the skilled person that other forms of aerosol-forming substrate can be used in other embodiments. For example, the aerosol-forming substrate may be a liquid aerosol-forming substrate. When a liquid aerosol-forming substrate is provided, the aerosol generating device preferably has a means for holding the liquid. For example, the liquid aerosol-forming substrate may be held in a container. Alternatively, or in addition, the liquid aerosol-forming substrate may be absorbed into a porous carrier material. The porous carrier material may be formed from any suitable absorbent plug or absorbent, such as, for example, foamed metal or plastic materials, polypropylene, terylene, nylon fibers or ceramics. The liquid aerosol-forming substrate may be held in the porous carrier material before use of the aerosol generating device, or the liquid aerosol-forming substrate material may be released into the porous carrier material during or immediately before use. For example, the liquid aerosol-forming substrate may be provided in a capsule. The shell of the capsule preferably dissolves upon heating to release the liquid aerosol-forming substrate into the porous carrier material. The capsule may also contain a solid, optionally in combination with a liquid.

[0045] Alternatively, the carrier may be a nonwoven fabric or fiber bundle incorporating the tobacco component. The nonwoven fabric or fiber bundle may comprise, for example, carbon fibers, natural cellulose fibers, or cellulose-derived fibers.

[0046] In both the first and second aspects of the present invention, the aerosol generating device may further comprise a power source for supplying power to the heating element. The power source may be any suitable power source, such as, for example, a DC voltage source. In one embodiment, the power source is a lithium-ion battery. Alternatively, the power source may be a nickel-metal hydride battery, a nickel-cadmium battery, or a lithium-based battery, such as, for example, a lithium-cobalt battery, a lithium iron phosphate battery, a lithium titanate battery, or a lithium polymer battery.

[0047] In a third aspect of the invention there is provided an electrical circuit for an electrically operated aerosol generating device configured to carry out the method of the first aspect of the invention.

[0048] In a fourth aspect of the invention there is provided a computer program which, when executed on a programmable electrical circuit for an electrically operated aerosol generating device, causes the programmable electrical circuit to carry out the method of the first aspect of the invention. In a fifth aspect of the invention there is provided a computer readable storage medium having stored thereon a computer program according to the fourth aspect of the invention.

[0049] Although the present disclosure has been described with reference to different embodiments, it will be apparent that features described in relation to one embodiment of the present disclosure may also be applied to other embodiments of the present disclosure.

[0050] Embodiments of the invention will now be described in detail, by way of example only, with reference to the accompanying drawings, in which: [Brief description of the drawings]

[0051] [Figure 1] 1 is a schematic diagram of an electrically heated smoking device according to the present invention; [Diagram 2] 2 is a schematic cross-sectional view of the front end of a first embodiment of a device of the type shown in FIG. 1; [Diagram 3] FIG. 2 is a schematic diagram of a flat temperature profile of a heating element. [Figure 4] FIG. 1 is a schematic diagram illustrating reduced aerosol delivery due to a flat temperature profile. [Diagram 5] FIG. 2 is a schematic diagram of a temperature profile of a heating element according to an embodiment of the present invention. [Figure 6] FIG. 1 is a schematic diagram of consistent aerosol delivery according to an embodiment of the present invention. [Figure 7] FIG. 2 illustrates a control circuit used to regulate the temperature of a heating element, according to one embodiment of the present invention. [Figure 8] 11A-11C illustrate several alternative target temperature profiles in accordance with the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0052] Figure 1 illustrates, in simplified form, the components of an embodiment of an electrically heated aerosol generator 100. In particular, the elements of the electrically heated aerosol generator 100 are not shown to scale in Figure 1. For simplicity, elements not relevant to an understanding of the present embodiment have been omitted from Figure 1.

[0053] The electrically heated aerosol generating device 100 comprises a housing 10 and an aerosol-forming substrate 12, such as a cigarette. The aerosol-forming substrate 12 is pressed into the interior of the housing 10 and in thermal proximity to a heating element 14. The aerosol-forming substrate 12 releases a range of volatile compounds at different temperatures. By controlling the operating temperature of the electrically heated aerosol generating device 100 to be below the release temperature of some volatile compounds, the release or formation of components of these volatile compounds can be avoided.

[0054] Within the housing 10 is an electrical energy source 16, such as a rechargeable lithium ion battery. A controller 18 is connected to the heating element 14, the electrical energy source 16, and a user interface 20, such as a button or a display. The controller 18 controls the power supplied to the heating element 14 to regulate the temperature of the heating element 14. Typically, the aerosol-forming substrate is heated to a temperature of between 250 degrees Celsius and 450 degrees Celsius.

[0055] In the embodiment described, the heating element 14 is one or more electrically resistive tracks deposited on a ceramic substrate. The ceramic substrate is in the form of a blade, which is inserted into the aerosol-forming substrate 12 in use. Figure 2 is a schematic diagram of the front end of the device, showing the airflow through the device. It is noted that Figure 2 does not accurately depict the relative dimensions of the elements of the device. A smoking article 102 including the aerosol-forming substrate 12 is received in a cavity 22 of the device 100. Air is drawn into the device by a user drawing on a mouthpiece 24 of the smoking article 102. The air is drawn through an inlet 26 forming a proximal face of the housing 10. The air drawn into the device passes through an air channel 28 around the outside of the cavity 22. The drawn air enters the aerosol-forming substrate 12 at the distal end of the smoking article 102 adjacent to the proximal end of the blade-like heating element 14 located in the cavity 22. The inhaled air travels through the aerosol-forming substrate 12, entraining the aerosol, to the mouth end of the smoking article 102. The aerosol-forming substrate 12 is a cylindrical plug of tobacco-based material.

[0056] As shown in Figure 3, current aerosol generating devices are configured to provide a constant temperature during operation. After activation of the device, power is applied to the heating element until a target temperature 50 is reached. Once the target temperature 50 is reached, the heating element is maintained at this temperature until the device is shut down. Figure 4 is a schematic diagram illustrating the delivery of the primary aerosol component using the flat temperature profile shown in Figure 3. Line 52 represents the amount of the primary aerosol component, such as glycerol or nicotine, delivered during operation of the device. It can be seen that the delivery of the component peaks and then declines over time as the substrate is depleted and the thermal diffusion effect weakens.

[0057] 5 is a schematic diagram of a temperature profile of a heating element according to an embodiment of the present invention. Line 60 represents the temperature of the heating element over time.

[0058] In a first stage 70, the temperature of the heating element is increased from ambient temperature to a first temperature 62. The temperature 62 is within an acceptable temperature range between a minimum temperature 66 and a maximum temperature 68. The acceptable temperature change is set to volatilize desired volatile compounds from the substrate while not volatilizing undesirable compounds that would volatilize at higher temperatures. The acceptable temperature range is also below the temperature at which combustion of the substrate would occur under normal operating conditions, i.e., normal temperature, pressure, humidity, user puffing and air composition.

[0059] In a second stage 72, the temperature of the heating element is reduced to a second temperature, which is within the acceptable temperature range but is lower than the first temperature.

[0060] In a third phase 74, the temperature of the heating element is gradually increased until a stop time 76. The temperature of the heating element is maintained within an acceptable temperature range throughout the third phase.

[0061] Figure 6 is a schematic diagram of the delivery profile of the main aerosol component according to the temperature profile of the heating element shown in Figure 5. After an initial increase in delivery after activation of the heating element, delivery remains constant until the heating element is turned off. The increase in temperature in the third stage compensates for the depletion of the aerosol former in the substrate.

[0062] FIG. 7 illustrates a control circuit used to achieve the described temperature profile, according to one embodiment of the present invention.

[0063] The heater 14 is connected via a connection 42 to a battery. This battery (not shown in FIG. 7) provides a voltage V2. In series with the heating element 14, a further resistor 44 of known resistance r is inserted and connected to a voltage V1 intermediate ground and voltage V2. The frequency modulation of the current is controlled by the microcontroller 18 and delivered via its analog output 47 to a transistor 46 which functions as a simple switch.

[0064] The regulation is based on a PID regulator that is part of the software built into the microcontroller 18. The temperature (or an indication of the temperature) of the heating element is determined by measuring the electrical resistance of the heating element. This determined temperature is used to adjust the duty cycle (frequency modulation in this example) of the pulses of current supplied to the heating element in order to hold the heating element at or regulate the temperature of the heating element towards the target temperature. The temperature is determined at a frequency selected to be compatible with the control of the duty cycle, and may be as frequent as once every 100 ms.

[0065] An analog input 48 to the microcontroller 18 is used to collect the voltage across resistor 44 and provides an image of the current through the heating element. The battery voltage V+ and the voltage across resistor 44 are used to calculate the resistance variation of the heating element and / or its temperature.

[0066] The resistance of the heater measured at a particular temperature is R heater The microprocessor 18 calculates the resistance R of the heater 14. heater To measure resistance, one needs to determine both the current in heater 14 and the voltage across heater 14. Then, the resistance can be determined using the well known formula: TIFF0007675164000001.tif620(1)

[0067] In Figure 6, the heater voltage is V2-V1 and the heater current is I. Therefore, we have: TIFF0007675164000002.tif1437(2)

[0068] Using an additional resistor 44 with known resistance r, we again use (1) above to find the current I. The current in resistor 44 is I and the voltage across resistor 24 is V1. We therefore obtain TIFF0007675164000003.tif1417(3)

[0069] Therefore, by combining (2) and (3), we obtain the following equation. TIFF0007675164000004.tif1446(4)

[0070] In this manner, the microprocessor 18 can measure V2 and V1 when the aerosol generation system is in use, and with the value of r known, can determine the resistance R of the heater at a particular temperature. heater can be sought.

[0071] The resistance of the heater is related to temperature. Using a linear approximation, the resistance R measured at temperature T can be expressed as heater and can be related according to the following formula: TIFF0007675164000005.tif1439(5) where A is the thermal resistivity coefficient of the heating element material and R0 is the resistance of the heating element at room temperature T0.

[0072] Other more complex methods for approximating the relationship between resistance and temperature can also be used if a simple linear approximation is not sufficient over the range of operating temperatures. For example, in another embodiment, a relationship can be derived based on a combination of two or more linear approximations, each covering a different temperature range. This scheme relies on three or more temperature calibration points at which the resistance of the heater is measured. At temperatures intermediate these calibration points, resistance values ​​are interpolated from the calibration point values. The calibration point temperatures are selected to cover the expected temperature range of the heater during operation.

[0073] An advantage of these embodiments is that they do not require a temperature sensor, which can be large and expensive. Also, the PID regulator can use the resistance directly instead of temperature. This resistance is directly correlated to the temperature of the heating element as shown in equation (5). Thus, if the measured resistance is within the desired range, the temperature of the heating element is also within the desired range. Thus, there is no need to calculate the actual heating element temperature. However, it is also possible to use a separate temperature sensor and connect it to the microcontroller to provide the necessary temperature information.

[0074] FIG. 8 shows an example of a target temperature profile in which three operating phases can be clearly seen. In the first phase 70, the target temperature is set to T0. Power is applied to the heating element to raise its temperature to T0 as quickly as possible. As described above, a PID regulator is used to keep the temperature of the heating element as close as possible to the target temperature throughout the operation of the device. At time t1, the target temperature changes to T1, which means that the first phase 70 ends and the second phase begins. The target temperature is maintained at T1 until time t2, at which time the second phase ends and the third phase 74 begins. During the third phase 74, the target temperature increases linearly with increasing time until time t3, at which time the target temperature becomes T2 and no more power is applied to the heating element.

[0075] A target temperature profile of the shape shown in Figure 8 results in an actual temperature profile of the shape shown in Figure 5. The values ​​of T0, T1, T2 can be adjusted to suit a particular substrate and a particular apparatus, heating element, and substrate geometry. Similarly, the values ​​of t1, t2, and t3 can be selected to suit the circumstances.

[0076] In one example, the first stage is 45 seconds long with T0 set at 360° C., the second stage is 145 seconds long with T1 at 320° C., and the third stage is 170 seconds long with T2 at 380° C. The smoking experience lasts a total of 360 seconds.

[0077] In another example, the first stage is 60 seconds long with T0 set at 340° C., the second stage is 180 seconds long with T1 at 320° C., and the third stage is 120 seconds long with T2 at 360° C. Again, the heating cycle or smoking experience lasts a total of 360 seconds.

[0078] In yet another example, the first stage is 30 seconds long with T0 set at 380°C, the second stage is 110 seconds long with T1 at 300°C, and the third stage is 220 seconds long with T2 at 340°C.

[0079] The duration and temperature target of each operational step is stored in memory in the controller 18. This information can be part of the software executed by the microcontroller. Alternatively, this information can be stored in a look-up table to allow the microcontroller to select different profiles. The consumer can select different profiles via a user interface based on user preference or the particular substrate to be heated. The device can include a substrate identification means, such as an optical reader, and a heating profile that is automatically selected based on the identified substrate.

[0080] In another embodiment, only target temperatures T0, T1 and T2 are stored in memory and the transition between stages is triggered by the number of puffs. For example, the microcontroller may receive puff number data from a flow sensor and be configured to terminate the first stage after two puffs and the second stage after an additional five puffs.

[0081] Each of the above-described embodiments results in a more even delivery of aerosol during heating of the substrate when compared to the flat heating profile shown in FIG. 3. The optimal heating profile depends on several factors and can be experimentally determined for a given device, substrate geometry and substrate composition. For example, the device can include more than one heating element, and the configuration of the heating elements affects substrate depletion and heat diffusion effects. Each heating element can be controlled to have a different heating profile. The shape and size of the substrate relative to the heating element are also important factors.

[0082] It should be apparent that the above exemplary embodiments are illustrative and not limiting. In view of the above exemplary embodiments, other embodiments in accordance with these exemplary embodiments will be readily apparent to those skilled in the art. [Explanation of symbols]

[0083] 60 lines 62 First Temperature 66 minimum temperature 68 Maximum temperature 70 First Stage 72 Second Stage 74 Third Stage 76 Downtime

Claims

1. 1. A method for controlling aerosol generation in an aerosol generating device, the device comprising: a heater including at least one heating element configured to heat the aerosol-forming substrate; a power source for supplying power to the heating element; The method comprises: controlling the power supplied to the heating element such that in a first stage, power is supplied such that the temperature of the heating element increases from an initial temperature to a first temperature, in a second stage, power is supplied such that the temperature of the heating element decreases from the first temperature to a second temperature, and in a third stage, power is supplied such that the temperature of the heating element increases again; the aerosol-forming substrate, or a portion of the aerosol-forming substrate, is continuously heated for a period of more than 30 seconds to generate an aerosol; the heating element heats the aerosol-forming substrate by thermal conduction; A method comprising:

2. the step of controlling the power supplied to the heating element is performed to maintain a temperature of the heating element within a desired temperature range during the second and third stages.

2. The method of claim 1 .

3. the first stage having a fixed or predetermined duration; 3. The method according to claim 1 or 2.

4. the second and third stages having a fixed or predetermined duration; 4. The method according to claim 1, wherein the first and second electrodes are connected to a first electrode.

5. the first stage ends when the heating element reaches the first temperature; 5. The method according to claim 1, wherein the first and second electrodes are connected to a first electrode.

6. the first stage and / or the second stage are terminated based on the total energy delivered to the heating element after activation; 6. The method according to claim 1, wherein the first and second electrodes are connected to a first electrode.

7. the duration of the second phase is determined based on a total amount of power provided to the heating element during the second phase.

7. The method according to claim 1, wherein the first and second electrodes are connected to a first electrode.

8. and detecting a user taking a puff on the aerosol generating device, the first, second or third phase terminating after detection of a predetermined number of puffs by the user.

8. The method according to claim 1, wherein the first and second electrodes are connected to a first electrode.

9. further comprising identifying a characteristic of the aerosol-forming substrate, and the step of controlling the power is adjusted in dependence on the identified characteristic.

9. The method according to any one of claims 1 to 8.

10. the aerosol-forming substrate is a solid aerosol-forming substrate, the aerosol-forming substrate comprising a tobacco-containing material; 10. The method according to claim 1 , wherein the first and second electrodes are connected to a first electrode.

11. The aerosol-forming substrate comprises an aerosol former, such as glycerin and / or propylene glycol; 11. The method according to any one of claims 1 to 10.

12. an aerosol-generating article comprising the aerosol-forming substrate is only partially contained in the aerosol generating device; 12. The method according to any one of claims 1 to 11.

13. The aerosol-generating article has a substantially cylindrical and substantially elongated shape.

13. The method of claim 12.

14. the at least one heating element is an external heating element; 14. The method according to any one of claims 1 to 13.

15. the at least one external heating element comprises one or more flexible heating foils shaped to fit around an outer periphery of a cavity that receives the aerosol-forming substrate; 15. The method of claim 14.

16. In the third stage, power is supplied to raise the temperature of the heating element to a third temperature; the first, second and third temperatures are selected such that aerosols are generated sequentially during the first, second and third stages; 16. The method according to any one of claims 1 to 15.

17. During the second stage, power is supplied to the heating element to ensure that the temperature does not fall below a minimum acceptable temperature.

17. The method according to any one of claims 1 to 16.

18. measuring a temperature at or near the heating element to provide a measured temperature; performing a comparison between the measured temperature and a target temperature; The power supplied to the heating element is In the first stage, power is supplied to raise the temperature of the heating element from an initial temperature to a first target temperature; In the second stage, power is supplied to reduce the temperature of the heating element to a second target temperature that is lower than the first target temperature; In the third stage, power is supplied to again raise the temperature of the heating element to a third target temperature that gradually increases over time. and controlling the 18. The method according to any one of claims 1 to 17, comprising:

19. the first temperature is within a range of allowable temperatures between a minimum temperature and a maximum temperature, the allowable temperatures within the range of allowable temperatures being set to volatilize desired volatile compounds; the second temperature is within the acceptable temperature range; the temperature of the heating element is maintained within the acceptable temperature range throughout the third stage; 20. The method of claim 18 .

20. Power is supplied to the heating element as pulses of current; 20. The method according to any one of claims 1 to 19.

21. The power supplied to the heating element is adjusted by adjusting the duty cycle of the current.

21. The method of claim 20.

22. The duty cycle is adjusted by varying the pulse width or the frequency of the pulses, or both.

22. The method of claim 21 .

23. a user inhales a mouthpiece of an aerosol-generating article including the aerosol-forming substrate received in a cavity of the aerosol-generating device, thereby drawing air into the aerosol-generating device; the air drawn into the aerosol-generating device passes through an air channel and into the aerosol-forming substrate at a distal end of the aerosol-generating article; the drawn-in air travels through the aerosol-forming substrate, entraining the aerosol and reaching the mouth end of the aerosol-generating article; 23. The method according to any one of claims 1 to 22.

24. 1. An electrically actuated aerosol generating device, comprising: at least one heating element configured to heat the aerosol-forming substrate to generate an aerosol; a power source for supplying power to the heating element; an electrical circuit for controlling the supply of power from the power source to the at least one heating element; wherein the electrical circuit is configured to perform the method according to any one of claims 1 to 23. An electrically actuated aerosol generating device.

25. 25. A system comprising the electrically operated aerosol generating device of claim 24 and an aerosol-forming article comprising the aerosol-forming substrate, wherein the aerosol generating device interacts with the aerosol-forming substrate to generate an aerosol. A system characterized by:

26. Configured to carry out the method according to any one of claims 1 to 23, An electrical circuit for an electrically operated aerosol generating device, comprising:

27. A method for generating an aerosol using a programmable electrical circuit for an electrically operated aerosol generating device, comprising: A computer program comprising:

28. 28. A computer program according to claim 27, A computer-readable storage medium comprising:

Citation Information

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