Control device for an electronic aerosol provision system

The control device for electronic aerosol delivery systems addresses compatibility and efficiency issues by using a communication interface and memory to manage identifiers, ensuring optimal operation and authentication of replaceable components, thereby enhancing user experience and safety.

JP2026010036APending Publication Date: 2026-01-21NICOVENTURES TRADING LTD
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Patent Information

Application Number
JP2025170266
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2018-03-29
Filing Date
2025-10-08
Publication Date
2026-01-21

AI Technical Summary

Technical Problem

Existing electronic aerosol delivery systems face challenges in maintaining compatibility and efficient operation with various replaceable components, particularly in tobacco heated products, where consumables are often single-use and require easy and cost-effective replacement, while ensuring compatibility with reusable control units.

Method used

A control device for electronic aerosol delivery systems that includes a communication interface, memory, and control system to manage and update identifiers for replaceable components, enabling communication with remote servers to ensure compatibility and optimal operation based on received identifiers.

Benefits of technology

Ensures seamless integration and efficient operation of replaceable components by identifying and authenticating cartridges, optimizing heating profiles, and updating identifiers to support diverse consumables, enhancing user experience and safety.

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Abstract

A control device for an electronic aerosol provision system is provided.SOLUTION: The control device is configured to receive the replaceable component to form the electronic aerosol provision system. The control device comprises a communications interface 195 for performing communications external to the electronic aerosol provision system, a memory configured to hold a set of stored identifiers, and a control system. The control system is configured to receive control information from a remote server via the communications interface, to update a stored set of identifiers based on the control information received from the remote server, to receive an identifier from a replaceable component received by the control device, to perform a comparison of the received identifier against the stored set of identifiers, and to perform a control action on the electronic aerosol provision system in dependence on a result of the comparison.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to electronic aerosol delivery systems. [Background technology]

[0002] The present invention relates to electronic aerosol delivery systems, which may also be referred to (for example) as e-cigarettes, vaping devices, electronic vapor delivery systems (or devices), and other similar terms. Many e-cigarettes contain a reservoir of liquid (often a compound) that is vaporized for inhalation. This liquid is more commonly referred to as an aerosol precursor. The liquid reservoir may be provided in a replaceable component, often referred to as a cartridge or cartomizer, which may be attached to or detached from the rest of the e-cigarette.

[0003] Other e-cigarettes, sometimes called tobacco heated products (THPs), may contain aerosol precursor (consumable) material derived from tobacco (or possibly from other plants). This aerosol precursor is heated to produce a vapor for inhalation. Heating a THP consumable does not mean burning, or pyrolyzing, the THP consumable, as in conventional cigarettes. THP aerosol precursors are typically in non-liquid forms, such as dried leaves, solid powders, regenerated plant material, gels, and the like. In many cases, THP consumables can include an outer container (such as one or more layers of paper) with the aerosol precursor disposed therein. Like a single (conventional) cigarette, THP consumables can be used only once, i.e., for a single smoking session. This contrasts with e-cigarettes, whose cartridges have liquid consumables that can last for multiple smoking sessions, sometimes for multiple days. This means that there is considerable interest in making the rapid replacement of THP consumable containers as easy and cost-effective as possible.

[0004] More generally, many electronic aerosol delivery systems include reusable components, which often include a control system and a rechargeable battery for use with replaceable (disposable) components, which often include an aerosol precursor (solid or liquid) used as a precursor to generate a vapor or aerosol for inhalation. Over the life of such an electronic aerosol delivery system, the reusable component (also called a control unit) may be utilized with several different replaceable components (also called consumables or cartridges). For example, a user may exchange a replaceable component when the aerosol precursor is depleted or if the user prefers to use a different replaceable component, such as one with an aerosol precursor for providing a different flavor. Therefore, it is desirable to be able to maintain good compatibility between the control unit and different replaceable consumables or cartridges that can be attached to or accepted by the control unit. Summary of the Invention

[0005] The invention is defined in the appended claims.

[0006] A control device for an electronic aerosol delivery system is provided. The control device is configured to accept replaceable components to form the electronic aerosol delivery system. The control device includes a communication interface for communicating with an external device, a memory configured to hold a set of stored identifiers, and a control system. The control system is configured to receive control information from a remote server via the communication interface, update the set of stored identifiers based on the control information received from the remote server, receive identifiers from replaceable components accepted by the control device, compare the received identifiers against the set of stored identifiers, and perform a control action on the electronic aerosol delivery system depending on the result of the comparison.

[0007] A method for operating a control device for an electronic aerosol delivery system is provided, wherein the control device is configured to accept replaceable components to form the electronic aerosol delivery system. The method includes storing a set of identifiers in the control device, receiving control information from a remote server via a communication interface of the control device, updating the stored set of identifiers based on the control information received from the remote server, receiving identifiers from replaceable components accepted by the control device, comparing the received identifiers against the stored set of identifiers, and performing a control action on the electronic aerosol delivery system depending on the result of the comparison.

[0008] A server is provided for communicating control information to the control devices, each configured to accept replaceable components to form an electronic aerosol delivery system, the server including a storage for maintaining a list of identifiers for the replaceable components, a processing system configured to update the list of identifiers in the storage, and a communications interface for sending the list of identifiers and updates to the list of identifiers to the control devices.

[0009] It will be appreciated that the features and aspects of the invention described above in relation to the first and other aspects of the invention are equally applicable to embodiments of the invention according to the other aspects of the invention and may be combined therewith as appropriate, not just in the specific combinations set out above. [Brief explanation of the drawings]

[0010] Various embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings, in which: [Figure 1] 1 is a schematic cross-sectional view of an electronic aerosol delivery device according to various embodiments of the present disclosure. [Figure 2] 1 is a schematic flow diagram of a method performed by a control unit according to various embodiments of the present disclosure. [Figure 3] 10 is a schematic flow diagram of another method performed by a control unit according to various embodiments of the present disclosure. [Figure 4] FIG. 1 is a schematic diagram illustrating communication between different systems and devices according to various embodiments of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0011] The present disclosure relates to aerosol delivery devices, also known as aerosol delivery systems, e-cigarettes, and vapor delivery systems. In the following description, the terms "e-cigarette" and "electronic cigarette" are generally used interchangeably with (electronic) vapor delivery systems / devices unless otherwise clear from the context. Similarly, the terms "vapor" and "aerosol," as well as related terms such as "vaporize," "volatilize," and "aerosolize," are generally used interchangeably unless otherwise clear from the context.

[0012] Aerosol delivery systems often have a modular design, including, for example, a reusable module (control or device unit) and a replaceable (disposable) cartridge module containing a liquid aerosol precursor. The replaceable cartridge typically includes an aerosol precursor and a vaporizer, such as a heater (and is therefore sometimes called a cartomizer), while the reusable module typically includes a power source, such as a rechargeable battery, and control circuitry. In some systems, the aerosol precursor may be a liquid, such as a synthetic e-liquid, contained in a reservoir within the cartridge module and vaporized by heating. In some systems, the aerosol precursor may be in a non-liquid form, such as dried leaves, solid powder, or gel obtained from tobacco plants. Such aerosol precursors can then be heated to release vapor. Some systems, sometimes referred to as hybrids, use both e-liquid and non-liquid aerosol precursors. For example, in such systems, the e-liquid can be vaporized by heating, and the resulting vapor can be passed through the non-liquid aerosol precursor to generate additional vapor from the latter and / or to capture flavorants from the latter.

[0013] It will be appreciated that the reusable and disposable modules may include additional elements depending on their functionality, for example, the control unit may include a user interface for receiving user input and displaying operating status characteristics, and / or the replaceable cartridge components may include a temperature sensor for use in helping to control temperature.

[0014] In operation, the cartridge is typically electrically and mechanically (removably) coupled to the control unit using (for example) screws, latches, or bayonet fasteners, with electrical contacts appropriately engaged. When the vapor precursor in the cartridge is used up, or when the user wishes to change to a different cartridge (perhaps with a different vapor precursor or flavoring), the cartridge can be removed (disconnected) from the control unit and a replacement cartridge installed in its place. Devices following such a two-part modular configuration can be referred to as two-part devices, although the techniques described herein can also be applied to devices having more than two components or modules, where appropriate.

[0015] FIG. 1 is a schematic cross-sectional view through an exemplary aerosol delivery device 100. The aerosol delivery device 100 comprises two main components or modules: a reusable unit / control unit 101 and a replaceable / disposable cartridge 102. In normal use, the reusable part 101 and the cartridge 102 are releasably coupled to each other at an interface 105 (connection interface), as indicated by the two two-way arrows. The interface 105 generally provides a structural, electrical, and airway connection between the two parts 101, 102, and may utilize a latching mechanism, a bayonet lock, or any other form of mechanical coupling, as appropriate. The interface 105 typically provides an electrical coupling between the two parts, which may be wired using a connector, or wireless, for example, based on induction.

[0016] 1, cartridge 102 comprises a chamber or container 120 for holding an aerosol precursor material, which in one example described herein is a solid or non-liquid material such as dried leaves, solid powder, or gel that provides an aerosol (for inhalation by a user) upon application of heat. In particular, material container 120 is formed within an outer shell or housing 125. In this example, outer shell 125 is further configured as a mouthpiece and provides air outlet 118. In other examples, the mouthpiece may be a separate component, with outer shell 125 configured to attach between reusable part 101 and the mouthpiece.

[0017] The housing 125 and tip may be provided as one integral component formed directly as a single unit during manufacture, or may be formed from two pieces and then assembled substantially permanently together during manufacture. For example, the housing 125 and tip may be secured together along a joint by friction welding, spin welding, ultrasonic welding, etc. (or any other suitable technique). The cartridge housing 125 may be formed from plastic. It should be understood that the particular shape of the housing 125, along with the material, size, etc., may vary according to the particular design of a given embodiment.

[0018] In some examples, when the cartridge 102 is used up or when the user wishes to change to a different cartridge, the cartridge 102 can be removed from the reusable part 101 and a new cartridge 102 can be installed in its place in the reusable part 101. In the same or other examples, the user may be able to remove the solid material container 120 from the housing 125 to provide a new solid material container 120 containing, for example, new tobacco or other material. In this way, the same cartridge can be reused if desired. It will be understood that such cartridges 102 will generally have a similar chamber or container configured to receive the container 120.

[0019] The cartridge 102 includes a heater 135 for heating the material placed in the material container 120. The heater 135 may be, for example, an electrical resistance heater, a ceramic heater, or the like. The heater 135 may form one or more walls or boundaries of the material container 120. The heater 135 is configured to provide heat to the material in the material container 120 such that the material in the material container 120 is heated sufficiently to generate an aerosol for inhalation, but not so high that the material in the material container 120 burns.

[0020] In use, the cartridge 102 is attached to the reusable part 101 in a manner that allows the heater 135 to receive power via wires connected to the reusable part 101 across the interface 105. The interface 105 includes electrical contacts or connectors, not shown in FIG. 1 , that connect the wires 137 of the cartridge 102 with corresponding wires on the reusable part 101 (more generally, the wires in FIG. 1 are shown only in schematic form, rather than showing detailed paths and characteristics of such wires). Some devices allow the heating power to be varied using a suitable control interface that varies the amount of power supplied to the heater 135 during operation. Adjusting the power level supplied from the reusable part to the heater 135 can be performed using pulse-width modulation or any other suitable control technique. The device 100 can be activated by a user drawing on the mouthpiece 118, triggering the puff detector or airflow sensor 160 to detect airflow or pressure changes resulting from the inhalation. Other types of devices can alternatively or additionally be activated by a user pressing a button 150 or similar on the outside of the device.

[0021] In response to a detected puff or button press, the reusable part 101 provides power to activate the heater 135 to generate an aerosol, which is then drawn from the container 120 by the user's inhalation and then exits through the mouthpiece 118 for inhalation by the user.

[0022] The solid material container 120 is connected to the airflow channel 130 by a first end wall 117 and (at the mouth end) a second end wall 127. Each end wall 117, 127 is designed to retain the solid material within the container 120 while allowing air to flow along the channel 130, through the container 120, and out through the mouthpiece 118. This can be achieved, for example, by the end walls 117, 127 having appropriate pores that retain the granules (or the like) of the solid material within the container 120 but allow air to flow through. The end walls 117, 127 of the material container 120 can be provided by separate retainers, for example, in the form of disks that are inserted into each end of the housing 125 during manufacture. Alternatively, one or both of the end walls 117, 127 can be formed directly as part of the material container 120.

[0023] The reusable part 101 comprises a housing 165 having an opening defining one or more air inlets 170 for the e-cigarettes, a battery 177 for providing operating power to the device, control circuitry 175, user input buttons 150, a visual display 173, and a puff detector 160. In the configuration shown in FIG. 1 , the battery 177 and control circuitry 175 have a generally planar shape, with the battery 177 located below the control circuitry. The housing 165 may be formed, for example, from a plastic or metal material and has a cross-section that generally matches the shape and size of the cartridge part 102, ensuring a smooth outer surface at the transition between the two parts at the interface 105. The battery 177 is rechargeable and can be charged through a USB connector (not shown in FIG. 1 ) on the reusable part's housing 165.

[0024] In the device 100 shown in FIG. 1 , the air passage 130 begins at the air inlet 170 of the reusable part 101 and connects to the material container 120 through an interface 105. A puff detector (sensor) 160 is disposed within or adjacent to the air flow passage 130 of the reusable part 101 to notify a control circuit 175 when a user takes a puff on the device 100. The combination of the air inlet 170, air flow channel 130, material container 120, and mouthpiece 118 can be considered to form or represent the primary air flow passage of the e-cigarette 100, whereby airflow resulting from a user's puff flows from the air inlet 170 (upstream) to the mouthpiece 118 (downstream) in the direction indicated by the single-headed arrow in FIG. 1 .

[0025] The user input button 150 may be embodied in any suitable manner, e.g., as a mechanical button, a touch-sensitive button, or the like, to allow for various forms of user input. For example, the user may use the input button 150 to turn the device on and off (whereby detecting a puff and activating the heater is only available when the device is turned on). The user input button 150 may also be used to set control settings, such as adjusting the power level. The display 173 visually indicates to the user various characteristics associated with the e-cigarette, such as the current power level setting, remaining battery power, on / off status, etc. The display may be embodied in various ways, e.g., using one or more light emitting diodes (LEDs) (possibly multicolored) and / or as a small liquid crystal display (LCD) screen. Some e-cigarettes may also provide other forms of information to the user, e.g., using audio signals and / or tactile feedback.

[0026] Control circuitry (or controller or control unit) 175 may be provided by a printed circuit board (PCB) and / or other electronics or circuitry for controlling the aerosol delivery device as a whole. Control circuitry 175 includes a processor 185 or microcontroller (or the like) programmed or otherwise configured to control the operation of aerosol delivery device 100, non-volatile memory 180 for storing programs and / or configuration settings, and a communications interface 195 for communicating with systems and devices external to device 100. The memory may include a set of stored identifiers 181 and other related information, as described in more detail below.

[0027] In operation, control circuitry 175 may be configured to be notified of puff detection from puff detector 160 and / or from pressing button 150, and in response to such notification, provide power from battery 177 over line 137 to heater / vaporizer 135 to produce vapor for inhalation by the user. Control circuitry 175 may also monitor further conditions within the device, such as battery power level, and provide a corresponding output via display 173.

[0028] In some embodiments, the characteristics of the aerosol substrate in the container 120, such as flavor or nicotine strength, can vary, for example, with different batches or sources of different cartridges. Therefore, it can be useful to identify the material in the container 120 and make it available to the control circuit 175, which can store in memory 180 the operations (programming) associated with different types of cartridges. For example, programming can enable the control circuit 175 to provide appropriate control signals and power levels for proper operation of the heater 135 for a given type of material in the container 120. As an example, (flavor) ingredients used in different aerosol precursor materials may deliver flavor at different rates or different operating temperatures, and a control signal can be provided to operate the heater 135 appropriately to ensure consistent or proper delivery of the flavor. In some cases, programming can enable selection of an appropriate heating profile depending on the identity of the container 120, thereby ensuring that the material in the container 120 is heated in a desired manner to provide a specific user experience (and may help prevent undesirable effects, such as burning the material).

[0029] Different varieties or types of containers 120 (e.g., having different aerosol precursor materials therein) can be provided by a single manufacturer or by multiple different manufacturers. As a result, a large number of different containers 120 having a range of properties, characteristics, etc., can be selected from among those available for use in electronic aerosol delivery system 100. As described herein, each container can have an identifier component 190 that can be recognized or otherwise interpreted by identification component 191 of connection interface 105, thereby enabling control unit 101 to determine (for example) the type and / or variety of container 120 (and the material therein) of cartridge 101.

[0030] By way of example, identifier component 190 may be an optically distinguishable pattern (such as a bar code), and identification component 191 may be an optical reader (such as a bar code scanner). In some cases, the bar code or other identifier may be longitudinally disposed such that the optical reader scans along the bar code when cartridge 101 is received into control unit 102. In other embodiments, identifier component 190 may comprise a suitable electronic memory, such as a ROM, gate array, or the like. In such an embodiment, identification component 191 may (for example) be embodied with processor 185 to access the identifier from the electronic memory when the cartridge is coupled (engaged) to control unit 102. In other embodiments, identifier component 190 may comprise an RFID tag or the like that is read by identification component 191 when the cartridge is received into control unit 102 (perhaps simply brought nearby). It will be appreciated that there are many other methods that can be used by identifier component 190 and identification component 191 to pass the identifier from the cartridge to the control unit.

[0031] A set of identifiers 181 can be stored in memory 180 of control circuitry 175, and these identifiers are typically associated with different variants of container 120 or cartridge. This set of identifiers can include any number of identifiers, such as one identifier, or two or more identifiers. In some examples, each variant (i.e., each variant of aerosol precursor and / or each container 120) can be assigned a specific identifier. In other examples, several variants can be grouped together and assigned the same identifier, for example, if they share similar characteristics. As an example, if two different fragrance ingredients release fragrance at the same rate and / or the same operating temperature, they can be assigned the same identifier.

[0032] Memory 180 may also be used to store operations or programming associated with each identifier. Such programming may be (for example) the selection of a certain heating profile for a given variant of cartridge. There may be a one-to-one relationship between the identifiers stored in memory 180 and the various heating profiles, or different groups of identifiers may correspond to different heating profiles.

[0033] In some implementations, the control circuitry 175 can process the identifier 190 before enabling operation of the heater 135. For example, the control circuitry 175 may not provide power to operate the heater if the container 120 (and the material therein) is not appropriate for use with that heater, e.g., because the heater is not powerful enough to vaporize the material in the container 120. The identification component 191 may also be prevented from operating if it does not recognize the identifier received from the cartridge 102. This may indicate, for example, that the cartridge is a counterfeit or unauthorized product and therefore cannot be properly matched to the control unit 101. Thus, the set of stored identifiers may be controlled using the control unit 101 to ensure, for example, that only appropriate, authorized containers 120 or cartridges 102 are used.

[0034] Thus, the present approach utilizes a control circuit 175 configured to identify a material container 120 and / or cartridge component 102 attached for use with the control unit 101. One or more characteristics of the cartridge can be inferred from the identifier received from the cartridge, and this information is then used by the control unit during subsequent use of the electronic aerosol delivery system.

[0035] The set of identifiers stored in the control unit's memory 180 can be updated when a new variant (of cartridge 102 or container 120), e.g., an aerosol precursor, is introduced. One or more new identifiers for the new cartridge can be added to the set of authorized identifiers stored in memory 180. Similarly, an identifier stored in memory 180 can be removed or deleted when a variant is no longer available for sale. Additionally, other updates can be performed, such as changing the association between a particular identifier and a variant stored in memory 180, or modifying the actions stored with or associated with a stored set of identifiers. For example, when a new identifier is added to a stored set of identifiers, a corresponding action (e.g., a new heating profile) can also be added. Furthermore, in some cases, the actions associated with an identifier can be modified without changing the identifier or its association with a particular variant. Such updates to the set of stored identifiers 181 and / or their corresponding actions are facilitated by the communication interface 195 of the control circuitry 175. In some examples, communication interface 195 may be a transceiver operable to communicate wirelessly with systems and devices external to aerosol delivery device 100. In some cases, the external systems or devices may act as an intermediary to facilitate indirect communication between aerosol delivery device 100 and one or more remote servers, etc.

[0036] FIG. 2 shows a flow diagram of an exemplary method for operating an electronic aerosol delivery system 100 (or its control unit 101), such as that shown in FIG. 1, where the device has a memory 180 that holds a set of stored identifiers 181. In a first step 310, the control unit 101 receives control information from a remote server via a communication interface 195. According to certain embodiments, the communication interface 195 can support wired and / or wireless communication with an external device (i.e., a device external to the electronic aerosol delivery system). The external device or system can contain the control information (and thus itself act as a remote server) or can easily access a remote server storing the control information. For example, the external device or system can be a smartphone, laptop, or other local device that connects to a remote server over the Internet. The received control information can include instructions to be executed (e.g., by the processor 185) and / or data, such as one or more identifiers. The instructions and data can be stored in the memory 180 (or any other suitable storage device or component).

[0037] In a second step 320, the control unit updates the set of stored identifiers based on the control information received from the remote server. Updates to the set of stored identifiers may include adding new identifiers to the set of stored identifiers, removing identifiers from the set of stored identifiers, and / or modifying identifiers in the set of stored identifiers, as appropriate.

[0038] In some cases, the control information may include a complete set of (updated) information for the stored identifiers. In this case, one option is for the control unit to overwrite all control information previously stored in memory 180 with the newly received information. In other cases, the control unit may compare the newly received control information with the control information already held in memory and perform updates (i.e., add, delete, and / or modify) only with respect to the information that has changed. In other cases, the control information may itself be formatted as a set of update operations (add this, delete this, and modify this).

[0039] In a third step 330, the control unit updates the control actions held in memory that relate to (correspond to) the various stored identifiers based on the control information received from the remote server in operation 310. For example, each stored identifier can have its own respective control action, or a subset of the stored identifiers can share a respective set of one or more control actions. As with identifier updates, the format of control action updates can vary according to implementation, for example, completely overwriting previously stored control actions or simply selectively updating.

[0040] In a fourth step 340, the control unit updates the associations between identifiers in the set of stored identifiers and control actions based on the control information received from the remote server. For example, one of the stored identifiers can be associated with a newly provided (updated) control action, or an association can be updated to connect a stored identifier with a different (but already stored) action. Furthermore, if a subset of the stored identifiers is associated with a particular control action, the control information can update the identifiers in that subset. For example, an identifier can be added or removed.

[0041] With respect to identifier updates, it will be appreciated that the format of the control action updates and / or relationship updates may vary according to the implementation. For example, a complete overwrite of previously stored control actions and / or relationships may be performed, or only selective updates may be performed. Furthermore, some updates of received control information may not include updates to stored identifiers, control actions, and relationships, but rather may include updates to any one or two of these items.

[0042] 3 shows a flow diagram of an exemplary method of operating electronic aerosol delivery system 100 (or its control unit 101), such as that shown in FIG. 1, whereby an identifier received from a cartridge is compared to a set of identifiers stored in memory 180. Note that the method of FIG. 3 can occur independently of, in parallel with, or subsequent to the method of FIG. 2.

[0043] In a first step 410, the control unit 101 receives an identifier from the cartridge 102, or typically from another consumable (disposable) component that engages with (is received within) the control unit 101 to form the electronic aerosol delivery system. In some embodiments, the identifier can be received via (by) a connection interface 105 provided between the cartridge 102 and the control unit 101.

[0044] In a second step 420, the control unit 101 performs a comparison of the received identifier against a set of stored identifiers held in memory. The control unit, e.g., the control unit's processor 185, is configured to compare the received identifier with each identifier in the set of stored identifiers to determine whether the received identifier matches one of the stored identifiers. Finding a match may indicate, for example, that the cartridge can be considered authentic and therefore can be properly fitted to the control unit 101.

[0045] In a third step 430, the control unit 101 performs some control action depending on the result of the comparison in the second step 420. In some cases, the control action may depend on whether the comparison finds any matches with the received identifier in a set of stored identifiers. This may confirm the authenticity of the cartridge 102, as described above. In other cases, the control action may depend on which particular identifier in the set of stored identifiers matches the received identifier. For example, matching different stored identifiers may correspond to applying different heating profiles to the operation of the vaporizer. In some cases, there may be multiple control actions depending on the outcome of the identifier matches.

[0046] Additionally, if no match is found between the received identifier and the set of stored identifiers, there may be a default control action(s). For example, the default control action may include disabling (or deactivating) the heater by preventing power to the heater. Alternatively, the default control action may allow operation of the heater, but typically in a more conservative manner than when the identifiers match (e.g., for safety reasons). For example, it may be desirable to reduce the amount of heating to avoid the possibility of dissociating certain THP or e-liquid components that may be present in the received replaceable component. However, such a reduction in heating may also result in less vapor being produced.

[0047] In contrast, if a higher level of heating is known to be compatible with the THP or e-liquid components present in the identified replaceable component, then this higher level of heating may be used with a matching identifier. In this regard, a matching identifier may optimize control operation to the characteristics of the identified replaceable component, e.g., with respect to the amount of heat and vapor production. In contrast, a mismatched identifier may result in the use of default control operation and / or settings that may employ a lowest common denominator (general) approach to help match the unidentified replaceable component. While this may result in less-than-optimal operation (compared to a matching identifier), it may be more appealing to the user than completely disabling operation.

[0048] FIG. 4 is a schematic diagram illustrating communication between different systems and devices according to various embodiments of the present disclosure. In particular, FIG. 4 illustrates an electronic vapor delivery system 100 (electronic aerosol delivery system) such as that shown in FIG. 1, comprising reusable components such as a control unit 101 and replaceable components such as a cartridge 102. The cartridge 102 contains a consumable component (not shown), such as e-liquid or a tobacco plant derivative (e.g., dried leaf). The consumable component serves as a vapor or aerosol precursor and, when heated, generates a vapor / aerosol for inhalation by a user. The control unit 101 typically includes a rechargeable battery (not shown) for powering a heater used to generate the vapor / aerosol from the precursor material.

[0049] Cartridge 102 further includes an identifier (ID) component 190, which can be provided in a variety of different ways as described above, for example, as a bar code marking for optical reading, as electronic memory, etc. Control unit 101 typically includes an ID reader 191 that can receive (e.g., read or access) the ID from ID component 190 when cartridge 102 is coupled to (engaged with or accepted by) control unit 101, or possibly when the cartridge is brought near the control unit. It will be understood that the characteristics of ID reader 191 and the details of how the ID is received from cartridge 102 depend on (and correspond to) the implementation of ID component 190. For example, if ID component 190 comprises a bar code, ID reader 191 typically comprises some form of optical reader. If the ID component 190 comprises an electronic memory such as a ROM, the ID reader 191 may be embodied as an electronic reading function and may be integrated into the processor 185 (for example).

[0050] In addition to the ID reader 191, the control unit 101 includes a communications interface 195 and a memory 180. The memory is used, among other things, to hold a set of stored identifiers 181. The memory can also hold (or facilitate access to) various control (operational) actions associated with the identifiers. For example, the control actions can include a heating profile (how long the heater is operated and the magnitude of the power level), whether the device can be activated for vapor generation, display of a message to the user, etc. The control unit 101 is configured to execute one or more control actions depending on a match (or otherwise) between a stored identifier and a received identifier. Note that multiple stored identifiers can match a given control action. For example, one heating profile can be appropriate for a first set of batch numbers of cartridges 102, and another heating profile can be appropriate for a second set of batch numbers of cartridges.

[0051] The list of identifiers 181 is maintained through communications between the electronic vapor delivery system 100 and a remote server 550. While FIG. 4 shows an external device 540, such as a smartphone and app, mediating these communications (typically over the internet), in some cases the electronic vapor delivery system 100 and the remote server 550 can communicate directly with each other, thereby eliminating the external device 540. Such a communications interface 195 can be implemented in a variety of ways, for example, using a USB link (which can also be used to charge the control unit 101's battery) or by using a wireless connection, such as Bluetooth, to the external device. In some devices, the communications interface 195 can support multiple forms of connectivity.

[0052] The control unit 101 may receive updates to the stored identifier list 181 from the remote server 550 at various times; for example, the control unit may contact the remote server 550 when a network connection is established (and, optionally, when no contact has been made for a given time interval). If the control unit 101 receives an identifier from the cartridge 102 that it does not recognize, i.e., an identifier that does not match any in the list of stored identifiers 181, the control unit 101 may also contact the remote server. The remote server may then be able to provide an up-to-date match for this identifier (if available).

[0053] In some systems, the control unit can be configured to always request information from a remote server 550 for newly received identifiers from cartridges 102. In this case, the control unit may not include memory 180, which can reduce costs. On the other hand, having a set of stored identifiers 181 in memory 180 allows matching of received identifiers to be performed more quickly, without any communication delays (and without the need for any network connection).

[0054] As described herein, a control device for an electronic aerosol delivery system is provided. The control device is configured to accept a replaceable component to form the electronic aerosol delivery system. The control device includes a communication interface for communicating with an external device of the electronic aerosol delivery system, a memory configured to hold a set of stored identifiers, and a control system. The control system is configured to receive control information from a remote server via the communication interface, update the set of stored identifiers based on the control information received from the remote server, receive identifiers from replaceable components coupled to the control device, compare the received identifiers against the set of stored identifiers, and perform a control action on the electronic aerosol delivery system depending on the result of the comparison.

[0055] In some embodiments, the replaceable component includes a consumable material, such as an aerosol precursor material. The control action can be directed to the particular consumable (aerosol precursor) material contained in the replaceable component; for example, the control action can identify the best method for generating an aerosol from the aerosol precursor material. In other embodiments, the replaceable component may not contain an aerosol precursor material. For example, the control unit may initially be supplied with a first, non-refillable (by the user) replaceable component. This first replaceable component can then be removed and replaced with a second replaceable component. This second replaceable component contains no consumable material when received by the control unit, but can then be (re)filled with aerosol precursor material by the user for use as an electronic aerosol delivery system. In some embodiments, the replaceable component may be an element that can be attached to the control unit and intended to be replaced periodically. For example, in some THP devices, a tubular sleeve is known to be inserted into a heating chamber of a control unit, and then a rod-shaped consumable is inserted into the sleeve for heating. Each pack of 20 consumables may include such a sleeve. In such an arrangement, it may be easier (and more cost-effective) to provide an identifier for each sleeve (as a replaceable component) rather than providing an identifier for every rod-shaped consumable.

[0056] The identifier received from the replaceable component may include (consist of) information specific to the replaceable component, such as one or more of the following: a unique serial number, model number, date of manufacture, expiration date, authentication code, batch number, or other information about the consumable material in the replaceable component; one or more operating parameters to apply to the control device (control unit), such as a blend or flavoring, a heating profile, or other information provided to the consumer, such as a description of the consumable material in the replaceable component.

[0057] A further possibility is that the identifier is a reference that can be sent to a remote server to obtain some or all of the information specific to the replaceable component. It is also possible to combine these embodiments, in which the identifier includes some information specific to the replaceable component and also provides a reference to access other such information from a remote server.

[0058] The control system of the control device, which may be embodied, for example, by control circuitry 175 shown in FIG. 1, compares the received identifier against a set of stored identifiers. In some cases, this comparison may look for a direct match of the received identifier against the stored identifiers. In other cases, a different form of comparison may be used. For example, the stored identifiers may be organized in pairs, with each pair defining a range of model numbers. In this case, the comparison determines whether the received identifier falls within the range of model numbers defined by one or more of the paired model numbers (which may result in a match).

[0059] If the received identifier includes multiple pieces of information, e.g., multiple components, two or more components can potentially be compared separately against the stored identifier information (and more particularly against their associated components). For example, a given identifier can include both the flavor of an ingredient in a replaceable component and the operating parameters for use in heating that ingredient.

[0060] The control device performs at least one control action on the electronic aerosol delivery system depending on the result of comparing the received identifier with the stored identifier. For example, if a match is found, the control device can perform one or more actions specific to the matched identifier, such as heating using a heating profile specific to the matched identifier, while if no match is found, the control device can utilize a default heating profile. In another example, if a match is found, the control device can operate the electronic aerosol delivery system to generate vapor, while if no match is found, the control device can reduce the functionality level for the electronic aerosol delivery system. In one such case, if there is no match, the action is disabled (or deactivated), such as because it is not possible to confirm that a replaceable component is compatible with the control device.

[0061] In some cases, the control action(s) may depend on the two results of the comparison (match or no match, yes or no); in other cases, some or all of the control action(s) may depend on the particular match achieved. In the latter situation, different control actions may be associated with different stored identifiers (or groups or subsets of stored identifiers). These control actions may also be stored in memory 180 or elsewhere referenced by memory 180, allowing the electronic aerosol delivery system to execute one or more control actions specific to (and appropriate for) the particular matched identifier(s). In some cases, multiple actions may be executed in response to a match (or matching of different components). For example, a heating profile may be selected, and information may be provided to the user on display 173. The action(s) executed may depend on which component(s) of the identifier found a match in the stored identifier.

[0062] The control device interacts with the remote server to update the set of stored identifiers. For example, the control device can use control information received from the remote server to add, delete, or modify one or more identifiers in the set of stored identifiers. In this way, for example, the control device can be prepared for use with new types of interchangeable components that were not available when the control device was originally sold. The control information can likewise be used to update stored actions associated with the set of stored identifiers, for example, by modifying the control actions themselves and / or by changing the relationship between different identifiers and different control actions.

[0063] In some cases, the remote server can send updated control information to the electronic aerosol delivery system, and in other cases, the control system can send a request for updated control information from the remote server. For example, the control system can send such a request weekly, or perhaps whenever it establishes a network connection (or some other set of criteria). The control system can also send a request for updated control information from the remote server in response to a received identifier not matching one of the stored identifiers. The control system can receive updated control information from the remote server in response to such a request, and then use this information to evaluate the received identifier, as described above, i.e., by comparing the received identifier against an updated set of stored identifiers, and then perform control actions on the electronic aerosol delivery system depending on the result of this comparison.

[0064] In some cases, electronic aerosol delivery systems are used with replaceable components to form tobacco heating products (THPs). In some cases, the aerosol precursors in consumable THP products are derived directly from natural sources and are therefore more prone to variability. Thus, a consumable identifier can be used to indicate, for example, a particular blend of tobacco(s) or a particular batch of consumables and the heating profile selected for such blend or batch.

[0065] While the container 120 has generally been described above as being formed from a plastic material and containing a portion of a solid aerosol precursor therein, in other embodiments, the container 120 may be formed from a paper or cardboard material. In some embodiments, the paper or cardboard material is wrapped around the exterior of an aerosol-forming material formed into a substantially rod shape. Such a container 120 may be formed in a manner similar to a combustible cigarette and may also include a tipping (e.g., a filter) incorporated into one end thereof. The overall approach to heating the container described above still applies; that is, the container is heated but not combusted to produce a inhalable aerosol. In these containers, the identifier may be provided in any suitable manner, as described above. For example, it may be optically printed on the surface of the container.

[0066] To address various challenges and advance the art, this disclosure provides illustrative examples of various embodiments in which the claimed invention(s) may be practiced. The advantages and features of the present disclosure are merely representative examples of embodiments and are not intended to be exhaustive or exclusive of all advantages or features. They are presented solely to aid in the understanding and teaching of the claimed invention(s). The advantages, embodiments, examples, functions, features, structures, and / or other aspects of the present disclosure should not be construed as limiting the disclosure as defined by the claims or the equivalents thereof, and it is understood that other embodiments may be utilized and changes may be made without departing from the scope of the claims. It is understood that the various embodiments may suitably comprise, consist of, or consist essentially of various combinations of the disclosed elements, components, features, parts, steps, means, etc., other than as specifically described herein, and thus features of the dependent claims may be combined with features of the independent claims in combinations other than those explicitly set forth in the claims. This disclosure may include other inventions not currently claimed but that may be claimed in the future.

Claims

1. A control device for an electronic aerosol delivery system, the control device being configured to receive replaceable components to form the electronic aerosol delivery system; a communication interface for communicating with an external device of the electronic aerosol delivery system; a memory configured to hold a set of stored identifiers; 1. A control system comprising: receiving control information from a remote server via the communication interface; updating the set of stored identifiers based on the control information received from the remote server; receiving an identifier from a replaceable component accepted by the control device; comparing the received identifier against the set of stored identifiers; Performing a control action on the electronic aerosol delivery system depending on the result of the comparison. The control system is configured as follows: a control device.

2. updating the set of stored identifiers based on the control information; adding one or more identifiers to said set of stored identifiers; removing one or more identifiers from the set of stored identifiers; and Modifying one or more identifiers in said set of stored identifiers. The control device of claim 1 , comprising at least one of:

3. The control device of claim 1 or 2, wherein the control device is configured to provide the electronic aerosol delivery system with reduced functionality when the received identifier does not match one of the stored identifiers compared to the functionality available to the electronic aerosol delivery system when the received identifier matches one of the stored identifiers.

4. The control device of claim 3 , wherein the reduced functionality includes the control device not enabling operation of the electronic aerosol delivery system to generate aerosol.

5. A control device according to any one of claims 1 to 4, wherein the control action comprises a default action if the received identifier does not match one of the stored identifiers.

6. The control device of claim 5 , wherein the default operation includes disabling the electronic aerosol delivery system for aerosol generation.

7. The control device of claim 5 , wherein the default operation includes enabling operation of the electronic aerosol delivery system for aerosol generation according to one or more default settings.

8. A control device as described in any one of claims 1 to 7, wherein if the received identifier matches one of the stored identifiers, the control action includes a stored action associated with the stored identifier that matches the received identifier.

9. The control device of claim 8 , wherein the control system is further configured to update the stored actions associated with the set of stored identifiers based on the control information received from the remote server.

10. 10. A control device according to claim 8 or 9, wherein the memory is configured to hold the stored actions associated with the set of stored identifiers.

11. A control device according to any preceding claim, wherein the control system is further configured to periodically request updated control information from the remote server.

12. A control device according to any one of claims 1 to 11, wherein the control system is further configured to send a request for updated control information from the remote server in response to the received identifier not matching one of the stored identifiers.

13. The control device of claim 12 , wherein the request for updated control information includes the received identifier.

14. the control system updating the set of stored identifiers based on updated control information received from the remote server in response to the request; comparing the received identifier against the updated set of stored identifiers; Performing updated control actions on the electronic aerosol delivery system depending on the results of the comparison. The control device of claim 13 further configured to:

15. A control device according to any preceding claim, wherein each identifier represents a different type or class of replaceable component.

16. A control device according to any preceding claim, wherein the replaceable component comprises an aerosol precursor material.

17. The control device of claim 16 , configured to aerosolize the aerosol precursor material disposed within the replaceable component.

18. An electronic aerosol delivery system comprising a control device according to any one of claims 1 to 17.

19. 20. The electronic aerosol delivery system of claim 18, wherein the replaceable component comprises a tobacco heating product.

20. 1. A method of operating a control device for an electronic aerosol delivery system, the control device being configured to accept replaceable components to form the electronic aerosol delivery system; storing a set of identifiers in the control device; receiving control information from a remote server via a communication interface of the control device; updating the set of stored identifiers based on the control information received from the remote server; receiving an identifier from a replaceable component accepted by the control device; comparing the received identifier against the set of stored identifiers; performing a control action on the electronic aerosol delivery system depending on the result of the comparison; and A method comprising:

21. a server for communicating control information to the control devices, each control device configured to accept replaceable components to form an electronic aerosol delivery system; storage for maintaining a list of identifiers for the replaceable components; a processing system configured to update the list of identifiers in the storage; and a communications interface for sending the list of identifiers and the updates to the list of identifiers to the control device; A server comprising: