Heater Management

The electrical circuit in aerosol generating systems measures resistance ratios to detect adverse conditions, addressing variability in heaters and substrates, ensuring consistent performance and safety across different cartridges.

JP7789864B2Active Publication Date: 2025-12-22PHILIP MORRIS PRODUCTS SA
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Patent Information

Application Number
JP2024135291
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2015-03-26
Filing Date
2024-08-14
Publication Date
2025-12-22
Estimated Expiration
2036-03-21

AI Technical Summary

Technical Problem

Existing electrically heated aerosol generating systems are optimized for heaters with specific electrical resistances, failing to accommodate variations due to manufacturing tolerances or different cartridge designs, and lack effective methods to detect depleted or counterfeit aerosol-forming substrates.

Method used

An electrical circuit that measures the initial resistance of a heater and its subsequent change over time, comparing the ratio to threshold values to detect adverse conditions, such as depleted substrates or counterfeit heaters, without requiring temperature sensors or pre-stored resistance values.

Benefits of technology

Enables operation with diverse heaters and substrates, ensuring consistent performance by preventing power supply to damaged or counterfeit components, maintaining user safety and experience.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an electrically operated aerosol generation system equipped with means for detecting a harmful state of a dried heater, an unauthorized type of heater, etc.SOLUTION: An aerosol generation system includes an electric heater (30) equipped with at least one heater element for heating an aerosol forming substrate, a power source (14), and an electric circuit (16) connected to the electric heater and the power source, which includes a memory. The electric circuit (16) is configured so as to determine a harmful state when a ratio of an initial electric resistance (R1) of the heater (30) to a change in an electric resistance from the initial resistance (R2-R1) is larger than a maximum threshold stored in the memory, or smaller than a minimum threshold, and, when there is a harmful state, limit the power supplied to the electric heater (30) or supply a display to a user. The system has an advantage that a maximum resistance value stored beforehand is not needed, so that the system can use different heaters, and can cope with resistance fluctuations attributed to a manufacturing tolerance.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The invention relates to heater management. Certain disclosed embodiments relate to heater management within an electrically heated aerosol generating system. Aspects of the invention are directed to electrically heated aerosol generating systems and methods for operating electrically heated aerosol generating systems. Some described embodiments relate to a system capable of detecting abnormal changes in the electrical resistance of a heater element, which may indicate a harmful condition in the heater element. For example, a harmful condition may indicate a depleted level of aerosol-forming substrate within the system. In some described embodiments, the system may be effective for heater elements having different electrical resistances. In other embodiments, detected characteristics of the electrical resistance may be used to determine or select how the system may be operated. Some aspects and features of the invention have particular application to electrically heated smoking systems. [Background technology]

[0002] International Patent Publication No. 2012 / 085203 discloses an electrically heated smoking system comprising a liquid reservoir for storing a liquid aerosol-forming substrate, an electric heater with at least one heating element for heating the liquid aerosol-forming substrate, and an electrical circuit configured to determine consumption of the liquid aerosol-forming substrate based on the relationship between the power applied to the heating element and the resulting temperature change of the heating element. In particular, the electrical circuit is configured to calculate the rate of temperature rise of the heating element, where a high rate of temperature rise indicates that the wick carrying the liquid aerosol-forming substrate to the heater has dried out. The system compares the rate of temperature rise with a threshold value stored in memory during manufacture. If the rate of temperature rise exceeds the threshold, the system may stop supplying power to the heater. Summary of the Invention [Problem to be solved by the invention]

[0003] The system of WO 2012 / 085203 can use the electrical resistance of the heater element to calculate the temperature of the heating element, which has the advantage of not requiring a dedicated temperature sensor, however the system still requires the storage of a threshold value that depends on the resistance of the heater element so that the system is optimized for heater elements with a particular electrical resistance or range of resistances.

[0004] However, it may be desirable to enable the system to operate with different heaters. Typically, in systems of the type described in WO 2012 / 085203, the heater is provided in a disposable cartridge along with a quantity of liquid aerosol-forming substrate. The heater elements in different cartridges may have different electrical resistances. This may be the result of manufacturing tolerances within the same type of cartridge, or because different cartridge designs are available for use with the system to provide different user experiences. The WO 2012 / 085203 system is optimized for heaters with known specific electrical resistances that are determined during system manufacture for use in the system.

[0005] In electric smoking systems, and particularly in systems that are operable with different heaters, it would be desirable to have an alternative system for determining when the heater has dried out or other adverse conditions in the heater.

[0006] In electrically heated aerosol generating systems that have permanent device parts and consumable parts, including an aerosol-forming substrate, it would be desirable for the manufacturer of the device to be able to easily determine whether the consumable parts are "genuine" or consumables that are considered compatible with the device. This applies to both systems in which the heater is a consumable component and systems in which the heater is part of a permanent device. [Means for solving the problem]

[0007] In a first aspect, there is provided an electrically operated aerosol generation system, comprising: an electric heater comprising at least one heating element for heating the aerosol-forming substrate; Power supply and an electrical circuit connected to the electric heater and the power source and having a memory, the electrical circuit configured to determine a harmful condition when a ratio between the initial electrical resistance of the heater and a change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in the memory, or when the ratio reaches a threshold value stored in the memory outside of an expected time period, and to control power supplied to the electric heater based on whether a harmful condition exists, and to provide an indication based on whether a harmful condition exists.

[0008] It will be apparent that the phrase "the ratio reaches the threshold value stored in memory outside the expected time period" encompasses both situations when the ratio reaches the threshold value sooner than the expected time period, and situations when the ratio reaches the threshold value later than the expected time period, or when the threshold value is not reached at all.

[0009] One harmful condition in an aerosol-generating system or device is an insufficient or depleted aerosol-forming substrate in the heater. Generally speaking, the less aerosol-forming substrate is delivered to the heater for vaporization, the higher the temperature of the heating element will be for a given applied power. For a given power, the evolution of the temperature of the heating element during a heating cycle, or how that evolution changes over multiple heating cycles, can be used to detect whether the heater is depleted of the amount of aerosol-forming substrate, and in particular whether the heater is depleted of the aerosol-forming substrate.

[0010] Another detrimental condition is the presence of a counterfeit, incompatible, or damaged heater in a system with replicable or disposable heaters. If the resistance of a heater element rises more quickly or more slowly than expected for a given applied power, this may be because the heater is counterfeit and has different electrical characteristics than a genuine heater, or it may be because the heater has been damaged in some way. In either case, the electrical circuit may be configured to prevent power from being supplied to the heater.

[0011] Another harmful condition is the presence of a counterfeit, incompatible, old, or damaged aerosol-forming substrate in the system. If the resistance of the heater element rises more quickly or slowly than expected for a given applied power, this may indicate that the aerosol-forming substrate is counterfeit or old, and therefore has a higher or lower moisture content than expected. For example, if a solid aerosol-forming substrate is used, the substrate may be very old or dry if it has not been properly stored. If the substrate is drier than expected, less energy is used for vaporization than expected, and the heater temperature will rise more quickly. This results in an unexpected change in the electrical resistance of the heater element.

[0012] By using the ratio of initial resistance to subsequent resistance, the system does not need to determine the actual temperature of the heating element or have any pre-stored knowledge of the heating element's resistance at a given temperature. This allows for different approved heaters to be used in the system without triggering a harmful condition, and also allows for variations in absolute resistance due to manufacturing tolerances of heaters of the same type. This also allows for the detection of incompatible heaters.

[0013] The use of the initial resistance measurement and the subsequent change in resistance also allows for more accurate threshold setting to determine specific adverse conditions. The ratio of the change in resistance to the initial resistance is independent of variations in heater size or shape due to manufacturing tolerances or variations in parasitic contact resistance within the system, but depends only on the material properties of the heater and aerosol-forming substrate.

[0014] The electrical circuitry may not actually calculate a ratio or change in electrical resistance and compare the ratio to a threshold value, but may perform an equivalent comparison of the measured resistance value to one or more stored values ​​and a threshold value derived from the one or more measured resistance values. For example, the electrical circuitry may compare the electrical resistance of the heater element measured at a time subsequent to the initial delivery of power from the power source to the electric heater to a value calculated from the initial electrical resistance and a threshold value stored in memory.

[0015] The electrical circuit may be configured to measure the electrical resistance of the heater element initially and at a time after the initial delivery of power from the power source to the electric heater. If the time between measurements of the electrical resistance is known or determined, then for a given resistance coefficient of the heater element, a rate of change of resistance corresponding to a rate of change of temperature can be calculated. The system may always be configured to supply the same power to the heater, or the threshold(s) may depend on the power supplied to the heater.

[0016] The initial electrical resistance may be measured before the heater is first used. If the initial resistance is measured before the heater is first used, it can be assumed that the heater element is at or near room temperature. Because the expected change in resistance over time may depend on the initial temperature of the heater element, measuring the initial resistance at or near room temperature can establish a narrower band of expected behavior.

[0017] The initial resistance may be calculated as the measured initial resistance minus assumed parasitic resistances contributed by other electrical components and electrical contacts in the system.

[0018] The system may comprise a device and a cartridge removably coupled to the device, with the power source and electrical circuitry within the device and the electric heater and aerosol-forming substrate within the removable cartridge. As used herein, a cartridge "removably coupled" to a device means that the cartridge and device can be coupled and separated from one another without significant damage to either the device or the cartridge.

[0019] The electrical circuitry may be configured to detect the insertion and removal of a cartridge into and from the device. The electrical circuitry may be configured to measure the initial electrical resistance of the heater when the cartridge is first inserted into the device, but before any significant heating occurs. The electrical circuitry may compare the measured initial resistance with a range of acceptable electrical resistances stored in memory. If the initial resistance is outside the range of acceptable resistances, it may be considered counterfeit, incompatible, or damaged. In that case, the electrical circuitry may be configured to prevent the delivery of power until the cartridge is removed and replaced with a different cartridge.

[0020] The device may use cartridges with different characteristics. For example, the device may use two different cartridges with different sized heaters. A larger heater may be used to deliver more aerosol for users with such personal preferences.

[0021] The cartridge may be refillable or may be configured to be disposed of when depleted of the aerosol-forming substrate.

[0022] An aerosol-forming substrate is a substrate capable of releasing a volatile compound capable of forming an aerosol. The volatile compound may be released by heating the aerosol-forming substrate.

[0023] The aerosol-forming substrate may comprise a plant-derived material. The aerosol-forming substrate may comprise tobacco. The aerosol-forming substrate may comprise a tobacco-containing material containing volatile tobacco flavor compounds that are released from the aerosol-forming substrate upon heating. Alternatively, the aerosol-forming substrate may comprise a non-tobacco-containing material. The aerosol-forming substrate may comprise a homogenized plant-derived material. The aerosol-forming substrate may comprise a homogenized tobacco material. The aerosol-forming substrate may comprise at least one aerosol former. The aerosol former is any suitable known compound or mixture of compounds that facilitates the formation of a dense, stable aerosol in use and that is substantially resistant to thermal decomposition at the operating temperatures of the system. Suitable aerosol formers are well known in the art and include, but are not limited to, polyhydric alcohols (such as triethylene glycol, 1,3-butanediol, and glycerin), esters of polyhydric alcohols (such as glycerol monoacetate, diacetate, or triacetate), and aliphatic esters of monocarboxylic, dicarboxylic, or polycarboxylic acids (such as dimethyl dodecanedioate and dimethyl tetradecanedioate). Preferred aerosol formers are polyhydric alcohols or mixtures thereof (such as triethylene glycol, 1,3-butanediol, and glycerin, most preferred). The aerosol-forming substrate may also contain other additives and ingredients, such as flavorings.

[0024] The cartridge may include a liquid aerosol-forming substrate. For liquid aerosol-forming substrates, certain physical properties of the substrate, such as vapor pressure or viscosity, are selected to make it suitable for use in the aerosol generating system. The liquid preferably includes a tobacco-containing material containing volatile tobacco flavor compounds that are released from the liquid when heated. Alternatively, or in addition, the liquid may include non-tobacco materials. The liquid may include water, ethanol or other solvents, plant extracts, nicotine solutions, and natural or artificial flavors. Preferably, the liquid further includes an aerosol former. Examples of suitable aerosol formers are glycerin and propylene glycol.

[0025] An advantage of providing a liquid reservoir is that the liquid therein is protected from ambient air. In some embodiments, ambient light is likewise prevented from entering the liquid reservoir, so as to avoid the risk of light-induced degradation of the liquid. Furthermore, a high level of hygiene can be maintained.

[0026] Preferably, the liquid reservoir is arranged to hold liquid for a predetermined number of puffs. If the liquid reservoir is not refillable and the liquid in the liquid reservoir is used up, the user must replace the liquid reservoir. Contamination of the user by the liquid during such replacement must be prevented. Alternatively, the liquid reservoir may be refillable. In that case, the aerosol generation system may be replaced after a certain number of refills of the liquid reservoir.

[0027] Alternatively, the aerosol-forming substrate may be a solid substrate. The aerosol-forming substrate may comprise a tobacco-containing material that contains volatile tobacco flavor 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 are glycerin and propylene glycol.

[0028] When the aerosol-forming substrate is a solid aerosol-forming substrate, the solid aerosol-forming substrate may comprise, for example, one or more of powder, granules, pellets, shreds, spaghetti, strips, or sheets, including one or more of herb leaves, tobacco leaves, tobacco stem fragments, reconstituted tobacco, homogenized tobacco, extruded tobacco, cast leaf tobacco, and expanded tobacco. The solid aerosol-forming substrate may be in loose form, or may be provided with a suitable container or cartridge. Optionally, the solid aerosol-forming substrate may contain additional tobacco or non-tobacco volatile flavor compounds that are released upon heating of the substrate. The solid aerosol-forming substrate may also comprise, for example, capsules containing additional tobacco or non-tobacco volatile flavor compounds, which may dissolve during heating of the solid aerosol-forming substrate.

[0029] As used herein, "homogenized tobacco" 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 about 5 to about 30 weight percent by dry weight. The homogenized tobacco material sheet may be formed by agglomerating particulate tobacco obtained by grinding or otherwise comminuted one or both of tobacco lamina and tobacco stems. Alternatively, or additionally, the homogenized tobacco material sheet may include one or more of tobacco dust, tobacco fines, and other particulate tobacco by-products formed, for example, during tobacco processing, handling, and transportation. The homogenized tobacco material sheet may include one or more inherent binders (i.e., tobacco intrinsic binders), one or more extrinsic binders (i.e., tobacco extrinsic binders), or a combination thereof to aid in the cohesion of the particulate tobacco, although alternatively or additionally, the homogenized tobacco material sheet may 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.

[0030] Optionally, the solid aerosol-forming substrate may be provided on or embedded in a thermally stable carrier. The carrier may take the form of a powder, granules, pellets, pieces, spaghetti, strips, or sheets, etc. Alternatively, the carrier may be a tubular carrier having a thin layer of the solid substrate disposed on its interior surface, its exterior surface, or both its interior and exterior surfaces. Such a tubular carrier may be formed, for example, from paper or paper-like material, nonwoven carbon fiber mat, low-mass open-mesh metal screen, or perforated metal foil, or any other thermally stable polymeric matrix.

[0031] The solid aerosol-forming substrate may be disposed on the surface of a carrier in the form of, for example, a sheet, foam, gel or slurry. The solid aerosol-forming substrate may be disposed on the entire surface of the carrier or, alternatively, may be disposed in a pattern to provide a non-uniform flavor delivery during use.

[0032] The solid aerosol-forming substrate may be provided as a smoking article, such as a cigarette, for use in a device comprising a heater, a power source, and an electrical circuit.

[0033] The electrical circuit may be configured to detect the insertion and removal of an aerosol-forming substrate into and from the device. The electrical circuit may be configured to measure the initial electrical resistance of the heater when the aerosol-forming substrate is first inserted into the device, but before any significant heating occurs. The electrical circuit may compare the measured initial resistance with a range of acceptable electrical resistances stored in memory. If the initial resistance is outside the range of acceptable resistances, the aerosol-forming substrate may be considered counterfeit, incompatible, or damaged. In that case, the electrical circuit may be configured to prevent the supply of power until the aerosol-forming substrate is removed and replaced.

[0034] The electric heater may comprise a single heating element. Alternatively, the electric heater may include multiple heating elements, for example, two, three, four, five, six, or more heating elements. The heating element(s) may be appropriately arranged to most effectively heat the liquid aerosol-forming substrate.

[0035] Preferably, at least one electric heating element comprises an electrically resistive material. Suitable electrically resistive materials include, but are not limited to, semiconductors such as doped ceramics, "conductive" ceramics (e.g., molybdenum disilicide), carbon, graphite, metals, alloys, and composites made of ceramic and metallic materials. Such composites may include doped or undoped ceramics. Examples of suitable doped ceramics include doped silicon carbide. Examples of suitable metals include titanium, zirconium, tantalum, and platinum group metals. Examples of suitable alloys include stainless steel, constantan, nickel-, cobalt-, chromium-, aluminum-titanium-zirconium-, hafnium-, niobium-, molybdenum-, tantalum-, tungsten-, tin-, gallium-, manganese-, and iron-containing alloys, as well as nickel-, iron-, cobalt-, and stainless steel-based superalloys, Timetal®, iron-aluminum-based alloys, and iron-manganese-aluminum-based alloys. Timetal® is a registered trademark of Titanium Metals Corporation. In composite materials, the electrically resistive material may optionally be embedded, encapsulated, or coated in an insulating material, or vice versa, depending on the required energy transfer kinetics and external physicochemical properties. The heating element may comprise a metallic, etched foil insulated between two layers of inert material. In this case, the inert material may include Kapton®, an all-layer polyimide, or mica foil. Kapton® is a registered trademark of EI du Pont de Nemours and Company.

[0036] The at least one electric heating element may take any suitable form. For example, the at least one electric heating element may take the form of a heating blade. Alternatively, the at least one electric heating element may take the form of a casing or substrate with different conductive sections or electrically resistive metal tubes. The liquid reservoir may incorporate a disposable heating element. Alternatively, one or more heating needles or rods that penetrate the liquid aerosol-forming substrate may also be suitable. Alternatively, the at least one electric heating element may comprise a flexible sheet of material. Other alternatives include a heating wire or filament, such as a wire or heating plate made of Ni-Cr (nickel-chromium), platinum, tungsten, or an alloy. Optionally, the heating element may be deposited within or on a solid carrier material.

[0037] In one embodiment, the heating element comprises a mesh, array, or fabric of conductive filaments, which may define interstices between the filaments, and the interstices may have a width between 10 μm and 100 μm.

[0038] The conductive filaments may form a mesh with a size of 160 to 600 mesh US (±10%) (i.e., 160 to 600 filaments per inch (±10%)). The gap width is preferably 25 μm to 75 μm. The open area ratio of the mesh, which is the ratio of the gap area to the total area of ​​the mesh, is preferably 25 to 56%. The mesh may be formed using different types of weaves or lattice structures. Alternatively, the conductive filaments may consist of an array of filaments aligned parallel to one another.

[0039] The diameter of the conductive filaments can be 10 μm to 100 μm, preferably 8 μm to 50 μm, and more preferably 8 μm to 39 μm. The filaments may have a round or flat cross section.

[0040] The area of ​​the mesh, array or fabric of conductive filaments may be small, 25 mm2 Preferably, the conductive filament mesh, array, or fabric is less than 10% of the area of ​​the heater assembly, preferably allowing for incorporation into a handheld system. The conductive filament mesh, array, or fabric may be rectangular, for example, with dimensions of 5 mm x 2 mm. Preferably, the conductive filament mesh or array covers an area of ​​10% to 50% of the area of ​​the heater assembly. More preferably, the conductive filament mesh or array covers an area of ​​15% to 25% of the area of ​​the heater assembly.

[0041] The filaments may be formed by etching a sheet material (such as foil). This may be particularly advantageous when the heater assembly comprises an array of parallel filaments. Where the heating element comprises a mesh or fabric of filaments, the filaments may be individually formed and woven together.

[0042] Preferred materials for the conductive filaments are 304, 316, 304L, and 316L stainless steel.

[0043] At least one heating element may heat the liquid aerosol-forming substrate by conduction. The heating element may be in at least partial contact with the substrate. Alternatively, heat from the heating element may be conducted to the substrate by means of a thermally conductive element.

[0044] In use, the aerosol-forming substrate is preferably in contact with a heating element.

[0045] The electrically operated aerosol generating system preferably further comprises a capillary material for conveying the liquid aerosol-forming substrate from the liquid reservoir to the electric heater element.

[0046] Preferably, a capillary material is positioned to contact the liquid in the liquid storage portion. Preferably, a capillary wick extends into the liquid storage portion. In use, the liquid is then transferred from the liquid storage portion to the electric heater by capillary action within the capillary wick. In one embodiment, the capillary wick has a first end and a second end, the first end extending into the liquid storage portion for contacting the liquid therein, and the electric heater is positioned to heat the liquid in the second end. When the heater is activated, the liquid at the second end of the capillary wick is vaporized by at least one heating element of the heater to form a supersaturated vapor. The supersaturated vapor mixes with and is carried in the airflow. During the flow, the vapor condenses to form an aerosol, which is carried toward the user's mouth. The liquid aerosol-forming substrate has physical properties, including viscosity and surface tension, that allow the liquid to be transported through the capillary wick by capillary action.

[0047] The capillary wick may have a fibrous or spongy structure. Preferably, the capillary wick comprises a bundle of capillaries. For example, the capillary wick may comprise a plurality of fibers or threads, or other fine tubes. The fibers or threads may be generally aligned along the longitudinal axis of the aerosol generation system. Alternatively, the capillary wick may comprise a spongy or foam-like material formed into a rod shape. The rod shape may extend along the longitudinal axis of the aerosol generation system. The wick structure forms a plurality of small holes or tubes through which liquid can be transported by capillary action. The capillary wick may comprise any suitable material or combination of materials. Examples of suitable materials are capillary materials, such as spongy or foam materials, ceramic or graphite-based materials in the form of fibers or sintered powders, foamed metal or plastic materials, and fibrous materials made from spun or extruded fibers (such as cellulose acetate, polyester, or bonded polyolefin, polyethylene, terylene, or polypropylene fibers, nylon fibers, or ceramics). The capillary wick may have any suitable capillary and porosity for use with different liquid physical properties. Liquids have physical properties, including but not limited to viscosity, surface tension, density, thermal conductivity, boiling point, and vapor pressure, that allow them to be transported through a capillary device by capillary action.

[0048] The heating element may be in the form of a heated wire or filament that surrounds and optionally supports the capillary wick. During normal use, when there is a lot of aerosol-forming substrate, the capillary properties of the wick, combined with the liquid properties, ensure that the wick remains wet within the heated area.

[0049] Alternatively, as described, the heater element may include a mesh formed from a plurality of conductive filaments. A capillary material may extend into the gaps between the filaments. The heater assembly may draw the liquid aerosol-forming substrate into the gaps by capillary action.

[0050] The housing may include two or more different capillary materials, where a first capillary material in contact with the heater element has a higher thermal decomposition temperature and a second capillary material in contact with the first capillary material but not the heater element has a lower thermal decomposition temperature. The first capillary material effectively serves as a spacer separating the heater element from the second capillary material, preventing the second capillary material from being exposed to temperatures above its thermal decomposition temperature. As used herein, "thermal decomposition temperature" refers to the temperature at which a material begins to decompose and lose mass by generating gaseous by-products. The second capillary material may advantageously occupy a larger volume than the first capillary material, but may also hold more aerosol-forming substrate than the first capillary material. The second capillary material may have better wick performance than the first capillary material. The second capillary material may be less expensive or have a higher filling capacity than the first capillary material. The second capillary material may be polypropylene.

[0051] The power source may be any suitable power source, such as a DC voltage supply. 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 a lithium-cobalt battery, a lithium iron phosphate battery, a lithium titanate battery, or a lithium polymer battery. Alternatively, the power source may be another form of charge storage device, such as a capacitor. The power source may require recharging and may have a capacity that allows for the storage of energy sufficient for one or more smoking experiences. For example, the power source may have a capacity sufficient to allow continuous aerosol generation for approximately six minutes, or a multiple of six minutes, corresponding to the typical time it takes to smoke one conventional cigarette. In another example, the power source may have a capacity sufficient to allow for a predetermined number of puffs or for discontinuous activation of the heater.

[0052] The aerosol generating system preferably includes a housing. The housing is preferably elongated. The housing may comprise any suitable material or combination of materials. Examples of suitable materials include metals, alloys, plastics, or composites containing one or more of these materials, or thermoplastics suitable for food or pharmaceutical applications, such as polypropylene, polyetheretherketone (PEEK), and polyethylene. Preferably, the material is lightweight and not brittle.

[0053] The aerosol generating system is preferably portable. The aerosol generating system may be an electrically heated smoking system and may be comparable in size to a conventional cigar or cigarette. The aerosol generating system may be a smoking system. The overall length of the smoking system may be between about 30 mm and about 150 mm. The outer diameter of the smoking system may be between about 5 mm and about 30 mm.

[0054] Preferably, the electrical circuitry comprises a microprocessor, more preferably a programmable microprocessor. The system may comprise a data input port or a wireless receiver so that software can be uploaded onto the microprocessor. The electrical circuitry may comprise additional electrical components. The system may comprise a temperature sensor.

[0055] If an unsafe condition is detected, the system does nothing more than provide an indication to the user that an unsafe condition has been detected. This may be done by providing a visual, audible, or tactile warning. Alternatively, or additionally, the electrical circuitry may automatically limit or otherwise control the power supplied to the heater when an unsafe condition is detected.

[0056] There are many possible ways in which the electrical circuit can be configured to control the power supplied to the electric heater when a harmful condition is detected. If insufficient aerosol-forming substrate is delivered to the heating element, or if the solid aerosol-forming substrate becomes dry, it may be desirable to reduce or stop the power supply to the heater. This may be to both ensure a consistent and enjoyable experience for the user and to reduce the risk of overheating and the generation of undesirable compounds in the aerosol. The power supply to the heater may be stopped or limited for a short period of time or until the heater or aerosol-forming substrate is replaced.

[0057] The system may include a puff detector for detecting when a user is puffing on the system, the puff detector connected to an electrical circuit and configured to provide power from the power source to the heater element when a puff is detected by the puff detector, and the electrical circuit configured to determine whether a harmful condition exists between each puff.

[0058] The smoke puff detector may be a dedicated smoke puff detector that directly measures airflow through the device, such as a microphone-based smoke puff detector, or may indirectly detect smoke puffs based, for example, on temperature changes within the device or changes in the electrical resistance of a heater element.

[0059] The electrical circuit may be configured to supply a predetermined power to the heater element for a period t1 following the detection of an initial puff or the initial application of power to the heater, and the electrical circuit may be configured to determine a change in the heater element's electrical resistance based on measuring the heater element's electrical resistance during the period t1 between each puff. The period t1 may be selected to occur immediately after the detection of the initial puff or immediately after the initial application of power to the heater. This is particularly advantageous if the circuit detects an incompatible or counterfeit heater or aerosol-forming substrate during first use following replacement of a consumable. For example, a typical puff may last 3 seconds, and the puff detector's response time may be approximately 100 ms. Then, t1 may be selected to be 100 ms to 500 ms during the puff before the heater temperature stabilizes. Alternatively, the period t1 may be selected to correspond to the period during which the temperature of the heating element is expected to stabilize.

[0060] The electrical circuitry may be configured to prevent power from being delivered from the power source to the heater element if a harmful condition exists for a predetermined number of consecutive user puffs.

[0061] The electrical circuitry may be configured to continuously determine whether a harmful condition exists, prevent or reduce power to the heater when a harmful condition exists, and continue to prevent or reduce power to the heater element until the harmful condition is no longer present.

[0062] In liquid and wick-based systems, excessive puffing can result in the wick drying out because the liquid cannot be replaced quickly enough near the heater. In these situations, it is desirable to limit the power supply to the heater so that it does not get too hot and generate undesirable aerosol components. As soon as a harmful condition is detected, power to the heater may be shut off until the next user puff.

[0063] Similarly, excessive puffs may not allow the heater to cool as expected between puffs, resulting in a gradual, undesirable increase in heater temperature between puffs. This is true for liquid or solid aerosol-forming substrate-based systems. To monitor cooling between puffs, the electrical circuitry may be configured to track the ratio over time and may limit the power supplied to the heater or provide an indication if the difference between the maximum ratio and the subsequent minimum ratio does not exceed a difference threshold stored in memory.

[0064] The electrical circuit may be configured to prevent power from being supplied to the heater element for a predetermined shutdown period when a harmful condition is present.

[0065] The electrical circuit may be configured to prevent power being supplied to the heater until the consumable part containing the aerosol-forming substrate or the heater is replaced.

[0066] Alternatively, or additionally, the electrical circuitry may be configured to continuously calculate whether the ratio has reached a threshold value, compare the time it took for the ratio to reach the threshold value with a stored time value, and determine that a harmful condition exists and prevent or reduce power to the heater if the time it took to reach the threshold value is less than the stored time value, or if the ratio does not reach the threshold value within an expected period of time. If the threshold value is reached more quickly than expected, this may indicate a dried-out heater element or a dried-out substrate, or may indicate an incompatible, counterfeit, or damaged heater. Similarly, if the threshold value is not reached within an expected period of time, this may indicate a counterfeit or damaged heater or substrate. This may allow for quick determination of counterfeit, damaged, or incompatible heaters or substrates.

[0067] As explained, detecting a harmful condition may indicate not only a dry condition in the heater element, but also a heater with electrical characteristics outside of an expected range. This may be due to a defective heater, the accumulation of materials on the heater over its lifespan, or an unauthorized or counterfeit heater. For example, if a manufacturer uses stainless steel heater elements, those heater elements are expected to have an initial electrical resistance at room temperature within a specific range of electrical resistance. Furthermore, the ratio between the heater's initial electrical resistance and the change in electrical resistance from the initial resistance may be expected to be particularly valuable because it relates to the heater element's material. For example, if a heater element made of Ni-Cr is used, the ratio will be lower than expected because Ni-Cr has a much lower temperature coefficient of resistance than stainless steel. Therefore, the electrical circuit may be configured to determine a harmful condition when the ratio between the heater's initial electrical resistance and the change in electrical resistance from the initial resistance is less than a minimum threshold and limit the supply of power to the heater based on the result. This prevents the use of some unauthorized heaters. The electrical circuit may prevent the supply of power to the heater if the ratio is lower than a minimum threshold.

[0068] Different thresholds may be used to generate different control strategies for different conditions. For example, a maximum threshold and a minimum threshold may be used to set a boundary requiring replacement of the heater of the substrate before further power is applied. The electrical circuit may be configured to prevent power application to the heater if the ratio exceeds the maximum threshold or is less than the minimum threshold until the heater or aerosol-forming substrate is replaced. One or more intermediate thresholds may be used to detect excessive puffing behavior resulting in a dry condition in the heater. The electrical circuit may be configured to prevent power application to the heater for a specified period of time or until a subsequent user puff if the intermediate threshold is exceeded but not the maximum threshold. One or more intermediate thresholds may also be used to trigger an indication to the user that the aerosol-forming substrate is nearly worn out and will soon need to be replaced. The electrical circuit may be configured to provide an indication, which may be visual, audible, or tactile, if the intermediate threshold is exceeded but not the maximum threshold.

[0069] One process for detecting counterfeit, damaged, or incompatible heaters is to check the heater's resistance or rate of change of the heater's resistance when the heater is first used or inserted into a device or system. The electrical circuit may be configured to measure the initial resistance of the heater element within a predetermined period of time after power is applied to the heater. The predetermined period may be a short period of time, such as 50 ms to 200 ms. For heaters with mesh heating elements, the predetermined period may be approximately 100 ms. Preferably, the predetermined period is 50 ms to 150 ms. The electrical circuit may be configured to determine the rate of change of the initial resistance during the predetermined period of time. This may be done by taking multiple resistance measurements at different times during the predetermined period of time and calculating the rate of change of resistance based on the multiple resistance measurements. The electrical circuit may be configured to measure the heater's initial resistance or rate of change of the heater's initial resistance, or may be configured to power the heater to heat the aerosol-forming substrate using a much lower power as a separate routine, or may measure the heater's initial resistance for the first short time after the heater is started and before significant heating occurs. The electrical circuit may be configured to compare the initial resistance of the heater or the rate of change of the initial resistance of the heater with a range of acceptable values, and may prevent the supply of power to the electric heater until the heater or aerosol-forming substrate is replaced, or may provide an indication, if the initial resistance or the rate of change of the initial resistance is outside the range of acceptable values.

[0070] If the initial resistance or rate of change of the initial resistance is within an acceptable range of values, the electrical circuit may be configured to determine that the heater is an acceptable heater when the ratio between the heater's initial electrical resistance and the change in electrical resistance from the initial resistance is less than a maximum threshold value or greater than a minimum threshold value stored in memory, and to control the power supplied to the electric heater based on whether the heater is an acceptable heater, or to provide an indication if the heater is not an acceptable heater.

[0071] The electrical circuitry may be configured to determine that an acceptable heater is present within one second of first applying power to the heater.

[0072] In a second aspect, a heater assembly is provided, the heater assembly comprising: an electric heater comprising at least one heating element; an electrical circuit connected to the electric heater and comprising a memory, the electrical circuit configured to determine that a harmful condition exists when a ratio between the heater's initial electrical resistance and a change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in the memory, or when the ratio reaches a threshold value stored in the memory outside of an expected time period, and to control power supplied to the electric heater based on whether a harmful condition exists or provide an indication based on whether a harmful condition exists.

[0073] The heater assembly may be configured for use in an aerosol-generating system and may be configured to heat an aerosol-forming substrate in use.

[0074] In a third aspect, there is provided an electrically operated aerosol generating device comprising: Power supply and and an electrical circuit connected to a power source and comprising a memory, the electrical circuit configured to: in use connect to the electric heater; and determine a harmful condition when a ratio between the heater's initial electrical resistance and the change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in the memory, or when the ratio reaches a threshold value stored in the memory outside of an expected time period; and control power supplied to the electric heater based on whether a harmful condition exists or provide an indication based on whether a harmful condition exists.

[0075] In a fourth aspect of the present invention, there is provided an electrical circuit for use in an electrically operated aerosol generating device, the electrical circuit being connected in use to an electric heater and a power source, the electrical circuit comprising a memory, and configured to determine a harmful condition when a ratio between the initial electrical resistance of the heater and the change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in the memory, or when the ratio reaches a threshold value stored in the memory outside an expected time period, and to control the power supplied to the electric heater based on whether a harmful condition exists, or to provide an indication based on whether a harmful condition exists.

[0076] In a fifth aspect of the present invention, there is provided an electrical circuit for use in an electrically operated aerosol generation device, the electrical circuit being, in use, connected to an electric heater for heating an aerosol-forming substrate and to a power supply, the electrical circuit having a memory and being configured to measure the initial resistance of the heater or the rate of change of the initial resistance of the heater within a predetermined period of time after power is supplied to the heater, compare the initial resistance of the heater or the rate of change of the initial resistance of the heater with a range of acceptable values, and if the initial resistance or the rate of change of the initial resistance is outside the range of acceptable values, prevent the supply of power to the electric heater until the heater or the aerosol-forming substrate is replaced or provide an indication.

[0077] The predetermined period of time may be a short period of time, between 50 ms and 200 ms. For heaters with mesh heating elements, the predetermined period of time may be approximately 100 ms. Preferably, the predetermined period of time is between 50 ms and 150 ms. The electrical circuit may be configured to determine the rate of change of the initial resistance during the predetermined period of time. This may be done by taking multiple resistance measurements at different times during the predetermined period of time and calculating the rate of change of resistance based on the multiple resistance measurements.

[0078] If the initial resistance is within the range of acceptable resistance values, the electrical circuit may be configured to determine a ratio between the initial electrical resistance of the heater and the change in electrical resistance from the initial resistance and compare the ratio to a maximum or minimum threshold value stored in memory, and if the ratio is less than the maximum threshold value or greater than the minimum threshold value stored in memory, determine that the heater is acceptable and control the power supplied to the electric heater based on whether the heater is acceptable or provide an indication based on whether the heater is acceptable.

[0079] In a sixth aspect, there is provided a method of controlling power supply to a heater in an electrically operated aerosol-generating system, the system comprising an electric heater comprising at least one heating element for heating an aerosol-forming substrate, and a power supply for supplying power to the electric heater, the method comprising:

[0080] determining a harmful condition when the ratio between the heater's initial electrical resistance and the change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in memory, or when the ratio reaches a threshold value stored in memory outside of an expected period of time, and controlling the power supplied to the electric heater or providing an indication to a user depending on whether a harmful condition exists.

[0081] The method may include measuring the electrical resistance of the heater element initially and measuring the electrical resistance of the heater element at a time after the initial delivery of power from the power source to the electric heater.

[0082] The method may include providing a constant power to the heater when power is applied, or alternatively, providing a variable power depending on other operating parameters, in which case the threshold may depend on the power applied to the heater.

[0083] The method may include determining the initial electrical resistance of the heater before first use. If the initial resistance is determined before first use of the heater, the heater element can be assumed to be at about room temperature. Because the expected change in resistance over time may depend on the initial temperature of the heater element, measuring the initial resistance at or near room temperature can establish a narrower band of expected behavior.

[0084] The method may include calculating the initial resistance as the measured initial resistance minus assumed parasitic resistances contributed by other electrical components and electrical contacts in the system.

[0085] The electrically operated aerosol generating system may include a puff detector for detecting when a user puffs on the system, and the method may include providing power from a power source to a heater element when a puff is detected by the puff detector, determining whether a harmful condition exists between each puff, and preventing the power source from providing power to the heater element if a harmful condition exists for a predetermined number of consecutive user puffs.

[0086] The method may include preventing power from being supplied from the power source to the heater element if a harmful condition is present.

[0087] The method may include continually determining whether a harmful condition exists, and when the harmful condition exists, preventing power from being supplied to the heater element, and continuing to prevent power from being supplied to the heater element until the harmful condition is no longer present.

[0088] The method may include preventing power to the heater element for a predetermined shutdown period when a harmful condition exists.

[0089] Alternatively, or additionally, the method may include continually calculating whether the ratio exceeds a threshold value and comparing the time taken to reach the threshold value with a stored time value, and may include determining a harmful condition and controlling the supply of power to the heater if the time taken to reach the threshold value is less than the stored time value.

[0090] In a seventh aspect, there is provided a method for detecting an incompatible or damaged heater in an electrically operated aerosol-generating system, the system comprising an electric heater having at least one heating element for heating an aerosol-forming substrate, and a power source for supplying power to the electric heater, the method comprising:

[0091] Determining an incompatible or damaged heater when the ratio between the heater's initial electrical resistance and the change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in memory, or when the ratio reaches a threshold value stored in memory outside of an expected period.

[0092] If an incompatible heater is determined, the method may include preventing power to the electric heater or providing an indication until the heater or aerosol-forming substrate is replaced.

[0093] The method further includes measuring the initial resistance of the heater or the rate of change of the initial resistance of the heater within a predetermined period of time after power is supplied to the heater, comparing the initial resistance of the heater or the rate of change of the initial resistance of the heater with a range of acceptable values, and preventing the supply of power to the electric heater until the heater or the aerosol-forming substrate is replaced or providing an indication if the initial resistance or the rate of change of the initial resistance is outside the range of acceptable values.

[0094] The predetermined period may be short, between 50 ms and 200 ms. For heaters with mesh heating elements, the predetermined period may be approximately 100 ms. Preferably, the predetermined period is between 50 ms and 150 ms.

[0095] Determining the rate of change of the initial resistance during a predetermined period of time may be accomplished by taking multiple resistance measurements at different times during the predetermined period of time and calculating the rate of change of resistance based on the multiple resistance measurements.

[0096] The method may further comprise detecting when a heater or aerosol-forming substrate is inserted into the system. The method may be carried out immediately after detecting that a heater or aerosol-forming substrate has been inserted into the system.

[0097] In an eighth aspect of the present invention, there is provided a method for detecting an incompatible or damaged heater in an electrically operated aerosol-generating system, the system comprising an electric heater having at least one heating element for heating an aerosol-forming substrate, and a power supply for supplying power to the electric heater, the method comprising:

[0098] measuring the initial resistance of the heater or the rate of change of the initial resistance of the heater within a predetermined period of time after power is supplied to the heater; comparing the initial resistance of the heater or the rate of change of the initial resistance with a range of acceptable values; and if the initial resistance of the heater or the rate of change of the initial resistance is outside the range of acceptable values, preventing the supply of power to the electric heater until the heater or the aerosol-forming substrate is replaced or providing an indication.

[0099] The predetermined period may be short, between 50 ms and 200 ms. For heaters with mesh heating elements, the predetermined period may be approximately 100 ms. Preferably, the predetermined period is between 50 ms and 150 ms.

[0100] Determining the rate of change of the initial resistance during a predetermined period of time may be accomplished by taking multiple resistance measurements at different times during the predetermined period of time and calculating the rate of change of resistance based on the multiple resistance measurements.

[0101] The method may further comprise detecting when a heater or aerosol-forming substrate is inserted into the system. The method may be carried out immediately after detecting that a heater or aerosol-forming substrate has been inserted into the system.

[0102] In a ninth aspect, there is provided a computer program product that can be loaded directly into the internal memory of a microprocessor comprising software code portions so as to perform the steps of the sixth, seventh and eighth aspects when the computer program product is executed on a microprocessor in an electrically operated aerosol-generating system, the system comprising an electric heater comprising at least one heating element for heating an aerosol-forming substrate, and a power supply for supplying power to the electric heater, the microprocessor being connected to the electric heater and the power supply.

[0103] The computer program product may be provided as a piece of downloadable software or recorded on a computer-readable storage medium.

[0104] According to a tenth aspect, there is provided a computer readable storage medium having stored thereon a computer program according to the ninth aspect.

[0105] Features described in relation to one aspect of the invention may be applied to other aspects of the invention. In particular, features described in relation to the first aspect may be applied to the second, third, fourth and fifth aspects of the invention. Features described in relation to the first, second, third, fourth and fifth aspects of the invention are also applicable to the sixth, seventh and eighth aspects of the invention.

[0106] The invention will now be further described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0107] [Figure 1a] FIG. 1a is a schematic diagram of a system according to an embodiment of the present invention. [Figure 1b] FIG. 1b is a schematic diagram of a system according to an embodiment of the present invention. [Figure 1c] FIG. 1c is a schematic diagram of a system according to an embodiment of the present invention. [Figure 1d] FIG. 1d is a schematic diagram of a system according to an embodiment of the present invention. [Figure 2] FIG. 2 is an exploded view of a cartridge for use in the system shown in FIGS. 1a-1d. [Figure 3] FIG. 3 is a detailed view of the heater filaments showing the meniscus of the liquid aerosol-forming substrate between the filaments. [Figure 4] FIG. 4 is a schematic diagram of the change in resistance of the heater during a user's puff. [Figure 5] FIG. 5 is an electrical diagram illustrating how the resistance of a heating element may be measured. [Figure 6] FIG. 6 illustrates the control process that follows after the detection of an adverse condition. [Figure 7] FIG. 7 is a schematic diagram of a first alternative aerosol generation system. [Figure 8] FIG. 8 is a schematic diagram of a second alternative aerosol generation system. [Figure 9] FIG. 9 is a flow chart illustrating a method for detecting unauthorized, damaged, or incompatible heaters. DETAILED DESCRIPTION OF THE INVENTION

[0108] Figures 1a-1d are schematic diagrams of an aerosol generation system including a cartridge according to an embodiment of the present invention. Figure 1a is a schematic diagram of an aerosol generation device 10 and a separate cartridge 20, which together form the aerosol generation system. In this example, the aerosol generation system is an electrically operated smoking system.

[0109] The cartridge 20 contains an aerosol-forming substrate and is configured to be received in a recess 18 in the device. The cartridge 20 should be replaceable by the user when the aerosol-forming substrate provided therein is depleted. Figure 1a shows the cartridge 20 just prior to insertion into the device, with arrow 1 in Figure 1a indicating the direction of insertion of the cartridge.

[0110] The aerosol generating device 10 is portable and has a size comparable to that of a conventional cigar or cigarette. The device 10 includes a main body 11 and a mouthpiece portion 12. The main body 11 contains a battery 14 (e.g., a lithium iron phosphate battery), an electrical circuit 16, and a recess 18. The electrical circuit 16 includes a programmable microprocessor. The mouthpiece portion 12 is connected to the main body 11 by a hinged connection 21 and is movable between an open position shown in FIG. 1 and a closed position shown in FIG. 1d. The mouthpiece portion 12 is positioned in the open position to allow insertion and removal of a cartridge 20 and in the closed position when the system is used to generate aerosol. The mouthpiece portion includes multiple air inlets 13 and outlets 15. During use, a user draws or inhales through the outlets, drawing air from the air inlets 13 through the mouthpiece portion and into the outlets 15, which then enter the user's mouth or lungs. An internal baffle 17 is provided to force air flow through the mouthpiece portion 12 and past the cartridge.

[0111] The cavity 18 has a circular cross section and is sized to receive the housing 24 of the cartridge 20. An electrical connector 19 is provided on the side of the cavity 18 to provide electrical connection between the control electronics 16 and battery 14 and corresponding electrical contacts on the cartridge 20.

[0112] Figure 1b shows the system of Figure 1a with the cartridge inserted into the cavity 18 and the cover 26 removed. In this position, the electrical connector rests against the electrical contacts on the cartridge.

[0113] FIG. 1c shows the system of FIG. 1b with cover 26 completely removed and mouthpiece portion 12 moved to the closed position.

[0114] Figure 1d shows the system of Figure 1c with the mouthpiece portion 12 in the closed position. The mouthpiece portion 12 is held in the closed position by a clasp mechanism. The mouthpiece portion 12 in the closed position keeps the cartridge in electrical contact with the electrical connector 19 so that a good electrical connection is maintained during use regardless of the orientation of the system.

[0115] FIG. 2 is an exploded view of cartridge 20. Cartridge 20 includes a generally cylindrical housing 24 having a size and shape selected to be received within cavity 18. The housing includes capillary material 27, 28 immersed in a liquid aerosol-forming substrate. In this example, the aerosol-forming substrate includes 39 weight percent glycerin, 39 weight percent propylene glycol, 20 weight percent water and flavorings, and 2 weight percent nicotine. The capillary material is a material that actively transports liquid from one end to the other and can be made from any suitable material. In this example, the capillary material is formed from polyester.

[0116] has an open end to which a heater assembly 30 is secured. The heater assembly 30 includes a substrate 34 having an opening 35 formed therein, a pair of electrical contacts 32 secured to the substrate and separated from one another by a gap 33, and a plurality of conductive heater filaments 36 secured across the opening to the electrical contacts on opposite sides of the opening 35.

[0117] The heater assembly 30 is covered by a removable cover 26. The cover comprises a liquid-impermeable plastic sheet that is adhered to the heater assembly but is easily removable. Tabs are provided on the sides of the cover to allow the user to grasp the cover when removing it. It will be apparent to those skilled in the art that although adhesion is described as a method of securing the impermeable plastic sheet to the heater assembly, other methods familiar to those skilled in the art may also be used, including heat sealing or ultrasonic welding, so long as the cover can be easily removed by the consumer.

[0118] The cartridge of FIG. 2 includes two separate capillary materials 27, 28. A disk of the first capillary material 27 is provided to contact the heater elements 36, 32 during use. A larger body of the second capillary material 28 is provided on the opposite side of the first capillary material 27 to the heater assembly. Both the first and second capillary materials hold a liquid aerosol-forming substrate. The first capillary material 27, which contacts the heater elements, has a higher thermal decomposition temperature (at least 160°C or higher, e.g., about 250°C) than the second capillary material 28. The first capillary material 27 effectively acts as a spacer, separating the heater elements 36, 32 from the second capillary material 28, so that the second capillary material is not exposed to temperatures above its thermal decomposition temperature. A thermal gradient across the first capillary material ensures that the second capillary material is exposed to temperatures below its thermal decomposition temperature. The second capillary material 28 can be selected to have superior wicking performance to the first capillary material 27, can hold more liquid per unit volume than the first capillary material, and can be less expensive than the first capillary material. In this example, the first capillary material is a heat-resistant element such as glass fiber or a glass fiber-containing element, and the second capillary material is a polymer, such as a suitable capillary material. Exemplary suitable capillary materials include those discussed herein and, in alternative embodiments, can include high density polyethylene (HDPE) or polyethylene terephthalate (PET).

[0119] The capillary material 27, 28 is advantageously oriented within the housing 24 to deliver the liquid to the heater assembly 30. When the cartridge is assembled, the heater filaments 36, 37, 38 may contact the capillary material 27 so that the aerosol-forming substrate can be delivered directly to the mesh heater. Figure 3 is a detailed view of the filaments 36 of the heater assembly, showing the meniscus 40 of the liquid aerosol-forming substrate between the heater filaments 36. It can be seen that the aerosol-forming substrate contacts most of the surface of each filament, such that most of the heat generated by the heater assembly enters directly into the aerosol-forming substrate.

[0120] Thus, in normal operation, the liquid aerosol-forming substrate contacts a large portion of the surface of the heater filament 36. However, when most of the liquid substrate in the cartridge is used, less liquid aerosol-forming substrate is delivered to the heater filament. With less liquid to vaporize, less energy is taken up by the enthalpy of vaporization, and more of the energy supplied to the heater filament is directed toward raising the temperature of the heater filament. As the heater element dries out, the rate at which the heater element heats up for a given applied power increases. The heater element may dry out because the aerosol-forming substrate in the cartridge is nearly used up, or because the user takes very long or very frequent puffs and is unable to deliver liquid to the heater filament as fast as it can vaporize.

[0121] In use, the heater assembly operates by resistive heating. Under the control of the control electronics 16, an electrical current is passed through the filament 36, heating it to a desired temperature range. The mesh or array of filaments has a significantly higher electrical resistance than the electrical contacts 32 and electrical connector 19, so that high temperatures are localized to the filament. In this example, the system is configured to generate heat by providing an electrical current to the heater assembly in response to a user's puff. In another embodiment, the system may be configured to generate heat continuously while the device is in the "on" state. Different materials for the filament may be appropriate for different systems. For example, in a continuous heating system, a Ni-Cr filament is appropriate because of its relatively low specific heat capacity and compatibility with low-current heating. In a puff-operated system in which heat is generated in short bursts using high-current pulses, a stainless steel filament with a high specific heat capacity may be more appropriate.

[0122] The system includes a puff sensor configured to detect when a user draws air through the mouthpiece portion. The puff sensor (not shown) is connected to the control electronics 16, which is configured to supply current to the heater assembly 30 only when it is determined that the user is smoking on the device. Any suitable airflow sensor may be used as the puff sensor, such as a microphone or a pressure sensor.

[0123] To detect this increase in the rate of temperature change, electrical circuitry 16 is configured to measure the electrical resistance of the heater filament. The heater filament in this embodiment is formed from stainless steel and therefore has a positive temperature coefficient of resistance. This means that as the temperature of the heater filament increases, so does its electrical resistance.

[0124] FIG. 4 is a schematic diagram of the change in resistance of the heater during a user's puff. The x-axis is time after the detection of the initial user puff and the resulting application of power to the heater. The y-axis is the electrical resistance of the heater assembly. It can be seen that the heater assembly has an initial resistance R1 before any heating occurs. R1 is derived from the parasitic resistance RP resulting from the electrical contacts 32 and electrical connector 19 and the junctions therebetween, and the resistance of the heater filament R0. When power is applied to the heater during a user's puff, the temperature of the heater filament increases, causing the electrical resistance of the heater filament to increase. As shown, at time t1, the resistance of the heater assembly is R2. Therefore, the change in electrical resistance of the heater assembly from its initial resistance to its resistance at time t1 is ΔR = R2 - R1.

[0125] In this embodiment, the parasitic resistance Rp is assumed to remain constant as the heater filament heats up, since Rp is due to unheated components such as electrical contacts 32 and electrical connector 19. The value of Rp is assumed to be the same for all cartridges, and the value is stored in the memory of the electrical circuitry.

[0126] The relationship between the resistance of a heater filament and its temperature is given by the following equation: R2=R0*(1+α*ΔT)+RP (1) where α is the temperature coefficient of electrical resistance of the heater filament, and ΔT is the change in temperature between the initial temperature before power is applied to the heater and the temperature at time t1.

[0127] The threshold value K is stored in the electrical circuit, and K is equal to α*ΔTmax. If the temperature rises by more than ΔTmax at time t1, this may indicate a harmful condition, such as the heater running dry.

[0128] From Equation 1: K=α*ΔTmax=ΔR / R0 (2)

[0129] Therefore, the value of the ratio ΔR / R can be compared to the stored value of K to detect a sudden increase in temperature that would indicate a dry condition in the heater filament. If ΔR / R>K, there is a dry condition in the heater.

[0130] This comparison can be performed by electrical circuitry, but the inequality signs can be rearranged to suit electronic processing operations, particularly to avoid the need to perform any division. In this example, software running on a microprocessor within the electrical circuitry performs the following comparison, which results from Equation 1: If R2>(R1*(K+1)-K*RP), there is a dry condition in the heater. (3)

[0131] R2 and R1 are both measured values, and K and RP are stored in memory. Ideally, the value of R1 is measured before any heating occurs, in other words, before the heater is first turned on, and that measured value is used for all subsequent puffs. This avoids any errors introduced by residual heat from previous puffs. R1 may be measured only once for each cartridge, and a detection system used to determine when a new cartridge is inserted, or R1 may be measured each time the system is switched on.

[0132] Other harmful conditions besides a dry heater condition may also be detected in this manner. If a cartridge with a heater formed from a material with a different temperature coefficient of resistance is used in the system, the electrical circuitry may be configured to detect this and not supply power to it. In this example, the heater filament is formed from stainless steel. A cartridge with a heater formed from Ni-Cr will have a lower temperature coefficient of resistance, meaning its resistance will increase more slowly with increasing temperature. Therefore, if a value for K2 equal to α*ΔTmin is stored in memory, which corresponds to the lowest temperature rise at time t1 expected for a stainless steel heater element, then if R2<(R1*(K2+1)-K*RP), the circuitry will determine a harmful condition corresponding to the presence of an unauthorized cartridge in the system. Figure 9 illustrates the process of detecting an incompatible heater.

[0133] That is, the system may be configured to compare R2 or ΔR / R0, or even ΔR / R1, to a stored high threshold and a stored low threshold to determine a detrimental condition. R1 may also be compared to a threshold(s) to check that it is within an expected range. There may even be multiple high stored thresholds, with different actions taken depending on which high threshold is exceeded. For example, if the highest threshold is exceeded, the circuit may prevent further power delivery until the heater and / or substrate is replaced. This may indicate a completely worn-out substrate or a damaged or incompatible heater. A lower threshold may be used to determine when the substrate is nearly worn out. If this lower threshold is exceeded but not the higher threshold, the circuit may simply provide an indication, such as an illuminating LED, that the substrate will soon need to be replaced.

[0134] The ratio of ΔR / R0 may be continuously monitored to determine whether the heater cools sufficiently between puffs. If the user puffs so frequently that the ratio does not fall below the cooling threshold between puffs, the electrical circuitry may prevent or limit power to the heater until the ratio falls below the cooling threshold. Alternatively, a comparison may be made between the maximum value of the ratio between puffs and the minimum value for the ratio following a puff to determine whether sufficient cooling is occurring.

[0135] Alternatively, the ratio ΔR / R0 may be continuously monitored and the time to reach the threshold value may be compared to a time threshold. If ΔR / R0 reaches the threshold much faster or slower than expected, this may indicate a harmful condition such as an incompatible heater. The rate of change of ΔR may also be determined and compared to a threshold. If ΔR rises too quickly or too slowly, this may indicate a harmful condition. These techniques may allow for very rapid detection of an incompatible heater.

[0136] Figure 5 is a schematic electrical diagram showing how the resistance of a heating element may be measured. In Figure 5, a heater 501 is connected to a battery 503 that provides a voltage V2. The heater resistance measured at a particular point in time is R ヒーター An additional resistor 505 with known resistance r is inserted in series with the heater 501 and connected to a voltage V1, which is halfway between ground and voltage V2. A microprocessor 507 calculates the resistance R ヒーター To measure , both the current through heater 501 and the voltage across heater 501 can be determined. The resistance can then be determined using the well-known formula: JPEG0007789864000001.jpg6160

[0137] In Figure 5, the voltage across the heater is V2-V1, and the current through the heater is I. JPEG0007789864000002.jpg16160

[0138] Using an additional resistor 505 whose resistance r is known, again using (1) above, determine the current I. The current through resistor 505 is I and the voltage across resistor 505 is V1. Therefore, JPEG0007789864000003.jpg16160Therefore, combining (5) and (6), JPEG0007789864000004.jpg16160

[0139] Thus, the microprocessor 507 can measure V2 and V1 and, since r is known, determine the resistance of the heater at different times when the aerosol generating system is used.

[0140] The electrical circuitry can subsequently control the power supply to the heater in several different ways after an unsafe condition is detected. Alternatively, or additionally, the electrical circuitry may simply indicate to the user that an unsafe condition has been detected. The system may include an LED or display, or may be equipped with a microphone, and these components may be used to alert the user to the unsafe condition.

[0141] FIG. 6a illustrates a first control process for a puff-activated system. In the diagram illustrated in FIG. 6a, if ΔR / R0 exceeds the high threshold for a single puff, the electrical circuit continues to supply power to the heater. FIG. 6a shows three consecutive puffs during which the high threshold is exceeded. Power to the heater is only terminated if ΔR / R0 exceeds the high threshold for a certain number of consecutive puffs, e.g., three, four, or five puffs. While a single instance of exceeding the threshold could be the result of a user taking an extremely long puff, several consecutive puffs during which the high threshold is exceeded are more likely the result of the cartridge being depleted. At that point, the cartridge may be disabled, for example, by blowing a fuse within the cartridge, or the electrical circuit may cut off further power until the cartridge is replaced or refilled.

[0142] Figure 6b discloses another control process that may be used instead of, or in addition to, the process described with reference to Figure 6b. In the control process of Figure 6b, the electrical circuit cuts off power to the heater until the end of the user puff as soon as it is determined that a high threshold has been exceeded. When a new user puff is detected, power is again applied to the heater. This may be useful to prevent the heater from getting too hot, even when the user takes excessive puffs. As well as cutting off power, an indication that a threshold has been reached may be provided.

[0143] FIG. 6c illustrates an alternative control process in which the electrical circuitry stops powering the heater as soon as it determines that a high threshold has been exceeded. Power is also prevented for subsequent user puffs. The user may be required to replace the cartridge or perform a reset operation to allow power to be reapplied to the heater. This control process may be used in conjunction with the process described with reference to FIGS. 6a and 6b, but is based on a higher threshold than that used in the process described with reference to FIGS. 6a and 6b. The higher threshold may indicate a completely worn aerosol-forming substrate or a defective or incompatible heater.

[0144] Although the present invention has been described with reference to a cartridge-based system with a mesh heater, the same method of detecting harmful conditions can be used with other aerosol generating systems.

[0145] FIG. 7 illustrates an alternative system according to the present invention, also using a liquid substrate and capillary material. In FIG. 7, the system is a smoking system. The smoking system 100 of FIG. 7 comprises a housing 101 having a mouthpiece end 103 and a body end 105. The body end is provided with a power source in the form of a battery 107 and electrical circuitry 109. A puff detection system 111 is also provided in communication with the electrical circuitry 109. The mouthpiece end is provided with a liquid reservoir in the form of a cartridge 113 containing a liquid 115, a capillary wick 117, and a heater 119. Note that in FIG. 7, the heater is only shown diagrammatically. One end of the capillary wick 117 extends into the cartridge 113, and the other end of the capillary wick 117 is surrounded by the heater 119. The heater is connected to the electrical circuitry via a connection 121, which may run along the outside of the cartridge 113 (not shown in FIG. 7). The housing 101 also includes an air inlet 123, an air outlet 125 at the mouthpiece end, and an aerosol-forming chamber 127.

[0146] In use, operation is as follows: liquid 115 is transported by capillary action from the cartridge 113 from one end of the wick 117 extending into the cartridge to the other end of the wick surrounded by the heater 119. When a user draws on the aerosol generating system at the air outlet 125, ambient air is drawn in through the air inlet 123. In the arrangement shown in FIG. 7, the puff detection system 111 senses a puff and activates the heater 119. The battery 107 provides electrical energy to the heater 119 to heat the end of the wick 117 surrounded by the heater. The liquid at the end of the wick 117 is vaporized by the heater 119, producing supersaturated vapor. Simultaneously, the vaporized liquid is replaced by additional liquid moving along the wick 117 by capillary action. The generated supersaturated vapor mixes with the air flowing from the air inlet 123 and is carried in the air flow. Within the aerosol formation chamber 127, the vapor condenses to form an inhalable aerosol, which is carried towards the air outlet 125 and into the user's mouth.

[0147] In the embodiment shown in Figure 7, the electrical circuitry 109 and puff detection system 111 are programmable as shown in the embodiment of Figures 1a-1d.

[0148] The capillary wick is preferably made of a variety of porous or capillary materials and has a known, pre-set capillarity. Examples include ceramic or graphite-based materials in the form of fibers or sintered powders. Different porous wicks can be used to accommodate liquids with different physical properties, such as density, viscosity, surface tension, and vapor pressure. The wick must be suitable to deliver the required amount of liquid to the heater when there is sufficient liquid in the liquid reservoir.

[0149] The heater comprises at least one heating wire or filament extending around the capillary wick.

[0150] As in the system described with reference to Figures 1-3, the capillary material forming the wick may dry out near the heater wire if the liquid in the cartridge is used up or if the user takes a very long, deep puff. As described with reference to the system of Figures 1-3, the change in resistance of the heater wire during the first portion of each puff can be used to determine whether a deleterious condition, such as a dry wick, is present.

[0151] In systems of the type illustrated in Figure 7, there may be considerable variation in heater resistance even between cartridges of the same type due to variations in the length of the heater wire wrapped around the wick. The present invention is particularly advantageous because the electrical circuitry does not need to store a maximum heater resistance value as a threshold; instead, the increase in resistance relative to that original measured resistance is used.

[0152] Figure 8 illustrates yet another aerosol generation system in which the present invention may be embodied. The embodiment of Figure 8 is an electrically heated tobacco device in which a tobacco-based solid substrate is heated without combustion to produce an aerosol for inhalation. In Figure 8, the components of the aerosol generation device 700 are shown in a simplified manner and are not to scale. Elements not relevant to an understanding of this embodiment have been omitted to simplify Figure 8.

[0153] The electrically heated aerosol generating device 200 comprises a housing 203 and an aerosol-forming substrate 210, such as a cigarette. The aerosol-forming substrate 210 is pressed into a cavity 205 defined by the housing 203, bringing it into thermal proximity with the heater 201. The aerosol-forming substrate 210 releases various volatile compounds at different temperatures. By controlling the operating temperature of the electrically heated aerosol generating device 200 to be lower than the release temperatures of some volatile compounds, the release or formation of these smoke components can be avoided.

[0154] Within the housing 203 is a power supply 207, such as a rechargeable lithium-ion battery. An electrical circuit 209 is connected to the heater 201 and the power supply 207. The electrical circuit 209 controls the power supplied to the heater 201 to regulate its temperature. An aerosol-forming substrate detector 213 is capable of detecting the presence and identity of an aerosol-forming substrate 210 in thermal proximity to the heater 201 and signals the presence of the aerosol-forming substrate 210 to the electrical circuit 209. The provision of a substrate detector is optional. An airflow sensor 211 is provided within the housing and connected to the electrical circuit 209 to detect the airflow rate through the device.

[0155] In the described embodiment, the heater 201 is an electrically resistive track(s) deposited on a ceramic substrate. The ceramic substrate is in the form of a blade that, in use, is inserted into the aerosol-forming substrate 210. The heater forms part of the device and may be used to heat a number of different substrates. However, the heater may be a replaceable component and alternative heaters may have different electrical resistances.

[0156] A system of the type illustrated in Figure 8 may be a continuously heated system in which the heater temperature is maintained at a target temperature while the system is on, or it may be a puff-activated system in which the heater temperature is increased by supplying more power during periods when a puff is detected.

[0157] In the case of a smoke-activated system, operation is very similar to that described with reference to the previous embodiment: if the substrate is dry near the heater, the heater resistance will rise more quickly for a given applied power than if the substrate contains an aerosol-forming agent that can still vaporize at a relatively low temperature.

[0158] In the case of a continuously heated system, when a user takes a puff on the system, there will initially be a drop in heater temperature due to the cooling effect of the airflow through the heater. When a puff is first detected, the heater resistance can be measured and recorded as R1, and in a manner similar to that described, when the system returns the heater to the target temperature, the subsequent resistance R2 can be measured at time t1 after the puff is detected. ΔR and R0 can then be calculated as described above, and the ratio of ΔR / R0 can then be compared to a stored threshold value as described above to determine whether a substrate is dry near the heater. A substrate may be dry because it has been worn out from use, or because it is old or improperly stored, or because it is counterfeit and has a moisture content different from that of an authentic aerosol-forming substrate.

[0159] The system of Figure 8 includes a warning LED 215 in the electrical circuit 209 that illuminates when a harmful condition is detected.

[0160] FIG. 9 is a flowchart illustrating a method for detecting unauthorized, damaged, or incompatible heaters. In a first step 300, the insertion of a cartridge containing a heater into a device is detected. Next, in step 300, the electrical resistance of the heater R1 is measured. This is done a predetermined period, such as 100 ms, after power is applied to the heater. In step 320, the measured resistance R1 is compared to an expected resistance or acceptable resistance range. The acceptable resistance range takes into account manufacturing tolerances and variations between original equipment heaters and substrates. If R1 is outside the expected range, the process proceeds to step 330, where an indication, such as an audible alarm, is provided and power is prevented from being applied to the heater because it is deemed incompatible with the device. The process then returns to step 300 to await detection of the insertion of a new cartridge.

[0161] Alternatively, or in addition, to measure the initial resistance R1 in step 300, the rate of change of the initial resistance may be measured within a predetermined time period, e.g., up to 100 ms, after power is applied to the heater. This may involve taking multiple resistance measurements at different times during the predetermined time period, and then calculating the rate of change of the initial resistance from the multiple resistance measurements and the times at which those measurements were taken. In the same manner, a particular heater design may be expected to have an initial resistance within a range of acceptable values, and a particular heater design may be expected to have an initial rate of change of resistance within an acceptable range of rate of change values ​​for a given applied power. The calculated rate of change of the initial resistance may be compared to an acceptable range of rate of change values, and if the calculated rate of change of resistance is outside the acceptable range, the process proceeds to step 330.

[0162] If, in step 320, it is determined that R1 is within the expected range of resistance, the process proceeds to step 340. In step 340, power is applied to the heater for a period of time t1, after which the ratio ΔR / R0 is calculated. Advantageously, t1 is chosen to be a short period of time before significant aerosol generation. In step 350, the value of the ratio ΔR / R0 is compared to an expected value or range of acceptable values. The expected range of values ​​again takes into account variations in manufacturing of the heater and substrate assembly. If the value of ΔR / R0 is outside the expected range, the heater is deemed incompatible, and the process proceeds to step 330 as described above, and then returns to step 300. If the value of ΔR / R0 is within the expected range, the process proceeds to step 360, where power is applied to the heater so that it can generate aerosols in response to user demand.

[0163] Although the present invention has been described with reference to three different types of electrical smoking systems, it will be apparent that the present invention is applicable to other aerosol generating systems.

[0164] It should also be apparent that the present invention may be implemented within existing aerosol generating systems as a computer program product for execution on a programmable controller, which may be provided as a piece of downloadable software or on a computer-readable medium such as a compact disc.

[0165] The above exemplary embodiments are illustrative and not limiting. In light of the exemplary embodiments discussed above, other embodiments consistent with the above exemplary embodiments will now be apparent to those skilled in the art.

Claims

1. 1. An electrically operated aerosol generation system, comprising: an electric heater comprising at least one heating element for heating the aerosol-forming substrate; Power supply and an electric circuit connected to the electric heater and the power source and comprising a memory, the electric circuit configured to determine a harmful condition when a ratio between an initial electrical resistance of the heater and a change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in the memory, or when the ratio reaches a threshold value stored in the memory outside an expected time period, and to limit power supplied to the electric heater or provide an indication if a harmful condition exists; An electrically operated aerosol generation system, wherein the electrical circuit is configured to track the ratio over time and limit the power supplied to the heater or provide an indication if the difference between the maximum ratio value and the subsequent minimum ratio value does not exceed a difference threshold stored in memory.

2. 2. The electrically operated aerosol generating system of claim 1, wherein the system comprises a device and a removable cartridge, the power source and the electrical circuit being within the device, and the electric heater being within the removable cartridge, and the cartridge comprising a liquid aerosol-forming substrate.

3. 3. An electrically operated aerosol generating system according to claim 1 or 2, wherein, in use, the aerosol-forming substrate is in contact with the heating element.

4. 4. An electrically operated aerosol generation system as described in any one of claims 1 to 3, comprising a puff detector for detecting when a user is puffing on the system, the puff detector connected to the electrical circuit and configured to supply power from the power source to the electric heater when a puff is detected by the puff detector, and the electrical circuit configured to determine whether a harmful condition exists between each puff.

5. An electrically operated aerosol generating system according to any one of claims 1 to 4, wherein the system is an electrically heated smoking system.

6. 1. A heater assembly comprising: an electric heater comprising at least one heating element; an electrical circuit for use in an electrically operated aerosol generating device, said electrical circuit being connected in use to said electric heater and a power source and comprising a memory, said electrical circuit being configured to determine that a harmful condition exists when a ratio between an initial electrical resistance of said heater and a change in electrical resistance from said initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in said memory, or when said ratio reaches a threshold value stored in said memory outside of an expected time period, and to limit the power supplied to said electric heater or provide an indication if a harmful condition exists; the electrical circuitry is configured to track the ratio over time and limit the power supplied to the heater or provide an indication if the difference between the maximum ratio value and the subsequent minimum ratio value does not exceed a difference threshold stored in memory.

7. 1. An electrically operated aerosol generating device, comprising: Power supply and an electric circuit connected to the power source and comprising a memory, the electric circuit configured to, in use, be connected to an electric heater and to determine a harmful condition and limit power supplied to the electric heater or provide an indication if a harmful condition exists when a ratio between an initial electrical resistance of the heater and a change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in the memory, or when the ratio reaches a threshold value stored in the memory outside an expected time period; An electrically operated aerosol generating device, wherein the electrical circuit is configured to track the ratio over time and limit the power supplied to the heater or provide an indication if the difference between the maximum ratio value and the subsequent minimum ratio value does not exceed a difference threshold stored in memory.

8. 1. An electrical circuit for use in an electrically operated aerosol generating device, the electrical circuit, in use, being connected to an electric heater and a power source, the electrical circuit comprising a memory and configured to determine a harmful condition when a ratio between an initial electrical resistance of the heater and a change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in the memory, or when the ratio reaches a threshold value stored in the memory outside an expected time period, and to limit power supplied to the electric heater or provide an indication if a harmful condition exists; the electrical circuit is configured to track the ratio over time and limit the power supplied to the heater or provide an indication if the difference between the maximum ratio value and the subsequent minimum ratio value does not exceed a difference threshold stored in memory.

9. 1. A method for controlling power supply to a heater in an electrically operated aerosol-generating system, the system comprising an electric heater having at least one heating element for heating an aerosol-forming substrate, and a power source for supplying power to the electric heater, the method comprising: determining a harmful condition when a ratio between an initial electrical resistance of the heater and a change in electrical resistance from the initial resistance is greater than a maximum threshold value or less than a minimum threshold value stored in memory, or when the ratio reaches a threshold value stored in memory outside of an expected time period, and limiting the power supplied to the electric heater or providing an indication to a user in response to detecting a harmful condition; tracking the ratio over time and limiting the power supplied to the heater or providing an indication to a user if the difference between a maximum ratio value and a subsequent minimum ratio value does not exceed a difference threshold stored in memory.

10. 10. The method of claim 9, further comprising measuring the initial resistance or rate of change of the initial resistance of the heater within a predetermined period of time after power is supplied to the heater, comparing the initial resistance or rate of change of the initial resistance of the heater with a range of acceptable values, and preventing the supply of power to the electric heater until the heater or the aerosol-forming substrate is replaced or providing an indication if the initial resistance or rate of change of the initial resistance is outside the range of acceptable values.

11. 11. The method of claim 9 or 10, further comprising detecting when a heater or aerosol-forming substrate is inserted into the system.

12. 12. A computer program comprising software code portions that can be directly loaded into the internal memory of a microprocessor so as to perform the method of any one of claims 9 to 11 when the computer program is executed on a microprocessor in an electrically operated aerosol-generating system, the system comprising an electric heater comprising at least one heating element for heating an aerosol-forming substrate, and a power supply for supplying power to the electric heater, the microprocessor being connected to the electric heater and the power supply.

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