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A wireless connectivity dongle facilitates secure, efficient data exchange between electronic nicotine delivery devices and management services, addressing the challenge of wireless connectivity and configuration management without physical docking or mobile device intermediation.
Patent Information
- Application Number
- JP2023143494
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-12-17
- Filing Date
- 2023-09-05
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2039-12-17
AI Technical Summary
Existing electronic nicotine delivery devices face challenges in efficiently exchanging diagnostic and configuration information with management services without the need for physical docking, mobile device intermediation, or high-power wireless interfaces.
A wireless connectivity dongle that enables wireless communication between an electronic nicotine delivery device and a management service via a network-accessible management system, which includes a wireless data connection interface configured to establish a wireless data connection to the end device for receiving data from the end device, and a data connectivity interface configured to establish a network connection to the management service, allowing end devices to access a network-connected management service.
Enables end devices to exchange information with management services wirelessly, eliminating the need for physical docking or mobile device intermediation, and supports secure, efficient data transfer and management of configuration updates.
Smart Images

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Abstract
Description
[Technical Field]
[0001]
[0001] The present disclosure relates to methods and apparatus for providing a connectivity intermediary, and in particular, but not exclusively, to a connectivity dongle for providing connectivity between an electronic nicotine delivery device and a management service. [Background technology]
[0002]
[0002] Some electronic nicotine delivery "end" devices may include a data connection interface to allow diagnostic and / or usage information to be provided by the end device to a management service. Such an interface may also be used to provide configuration updates, etc. to the end device.
[0003]
[0003] In the field of end devices, WO 2014 / 066730 describes an electronic cigarette, and US Patent Application Publication No. 2016 / 0081393 describes a personal vaping device. Summary of the Invention
[0004]
[0004] Some particular aspects and embodiments are set forth in the accompanying claims.
[0005]
[0005] In a first aspect, a connectivity dongle can be provided for providing connectivity between an electronic nicotine delivery "end" device and a management service. The connectivity dongle includes a wireless connectivity interface configured to establish a wireless data connection to the end device for receiving data from the end device, and a data connectivity interface configured to establish a network connection to the management service, the data connectivity interface configured to pass data received from the connected end device to the management service via the network connection. This allows end devices equipped with short-range, low-power wireless devices to access a network-connected management service. By providing the dongle in this manner, the approach enables end devices to exchange information with the management service without the need to physically dock the end device in a suitable connected docking station, without the need to link the end device via a mobile device (such as a smartphone, tablet, phablet, or laptop) equipped with a suitable information synchronization application, and without the end device having a high-power-emitting wireless interface and an embedded connectivity application for direct connection to a network access point. Thus, an end device user may own a dongle for use with their home internet connection access point, allowing any end device with corresponding capabilities to synchronize with the dongle whenever it comes within range.
[0006]
[0006] From another aspect, an end device management environment can be provided that includes such a connectivity dongle and management service.
[0007]
[0007] Viewed from a further aspect, there can be provided a data communications method comprising the steps of: collecting information describing the operation of an electronic nicotine delivery "end" device during use; establishing a wireless data connection from the end device to a connectivity dongle when the end device is within range of the connectivity dongle; transmitting the collected information from the end device to the connectivity dongle via the wireless data connection; establishing a data connection from the connectivity dongle to a network-accessible management service via a router providing access to the network; transmitting the collected information from the connectivity dongle to the management service via the data connection; and storing the collected information at the management service, thereby enabling an end device equipped with a short-range, low-power wireless device to access a management service connected to a network.
[0008]
[0008] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a schematic diagram showing a connected system. [Figure 2] FIG. 1 is a schematic diagram showing the logical structure of a dongle. [Figure 3] FIG. 1 is a schematic diagram showing a connected system. DETAILED DESCRIPTION OF THE INVENTION
[0010]
[0012] While various modifications and alternatives to the techniques described herein are possible, specific embodiments have been shown in the drawings and are described in detail herein for purposes of illustration. It should be understood, however, that the drawings and detailed description thereto are not intended to limit the scope to the particular forms disclosed, but rather that the scope is to cover all modifications, equivalents, and alternatives falling within the spirit and scope as defined by the appended claims.
[0011]
[0013] This example describes an approach for providing connectivity between end devices and network access points via base stations, hubs, dongles, or other connection devices referred to herein as dongles. In some examples, forward connectivity from the network access points to a management system may be provided.
[0012]
[0014] 1 illustrates an example of a connected system in which an end device 10 has a data connection 12 with a dongle 14. This data connection 12 may be a wireless connection, which may provide the convenience of accessing the dongle 14 without having to physically connect to a wired connector. The data connection 12 may be intermittent, meaning that it may be active when the end device 10 is within range of the dongle 14 and inactive when it is beyond that range. The data connection 12 may also be intermittent, meaning that it may be triggered only at certain times (which may be based on a connection schedule for one or both of the end device 10 and the dongle 14) or when a connection mode is initiated in the end device 10 or the dongle 14.
[0013]
[0015] In some examples, dongle 14 may also function as a charger station for end device 10, which may provide wired or wireless charging of one or more batteries within end device 10.
[0014]
[0016] The data connection 12 may use a low-power wireless technology to avoid excessive power drain on the end device 10 caused by connecting to the dongle 14. Examples of wireless technologies suitable for the data connection 12 may include Bluetooth®, Bluetooth Low Energy® ("BLE"), formerly known as Bluetooth Smart, Zigbee®, LoRa, or SigFox, although other low-power wireless technologies, such as other personal area networks or other LPWAN technologies, may also be used.
[0015]
[0017] As further shown in FIG. 1 , dongle 14 has a data connection 16 with access point 18. Access point 18 may be a router or other device providing access to the Internet, such as a cable modem, an ADSL router, or a fixed-line router. Data connection 16 may be wired or wireless, based on a networking infrastructure such as Ethernet or Wi-Fi. Access point 18 may provide network access control technologies, such as firewalls and other perimeter protection technologies. If data connection 16 is wireless using Wi-Fi, dongle 14 may be capable of connecting to a Wi-Fi access point (which may be part of a single physical device that constitutes access point 18 or may be part of a distributed configuration of multiple physical devices that collectively provide the functionality of access point 18) using Wireless Protected Setup (WPS) to establish a Wi-Fi connection. In this manner, dongle 14 may be capable of creating a Wi-Fi connection without having to set up a locally accessible or Ethernet-accessible user interface of dongle 14 for operation. In some examples, a locally accessible or Ethernet accessible user interface for dongle 14 may be provided to allow the settings of dongle 14 to be viewed and changed.
[0016]
[0018] 1, the access point 18 has a data connection 20 with a network 22. In this example, the network 22 is the Internet, but in other implementations it may be a wide area network or other dedicated network configuration.
[0017]
[0019] 1 further shows a management service 26 connected to the network 22 via a data connection 24. The data connection 24 may include appropriate network access technology, such as perimeter protection to prevent unwanted access to the management service 26 from the network 22. The management service 26 may be hosted by one or more physical or virtual servers that may be located at the premises of the provider of the management service 26, or may be hosted as a so-called cloud service.
[0018]
[0020] 1, the end device 10 may be able to communicate with the dongle 14 to provide diagnostic and / or usage information from the end device 10 to the dongle 14. The dongle 14 may store such received information for forwarding to the management service 26. The dongle may also store update information (e.g., configuration information or firmware updates) and subsequently communicate that information to the end device 10. As noted above, this information exchange may occur whenever the end device 10 and dongle 14 are powered on and within range of each other, or it may occur when either device activates the data connection 12 according to a schedule, or when triggered by a user (e.g., using an initiate connection control on the end device 10 or dongle 14).
[0019]
[0021] An exemplary schematic structure of dongle 14 is shown in Figure 2. In this example, dongle 14 includes a processor 30 connected to a program memory 32 that stores operating instructions for dongle 14 and a data memory 34 that stores information received from end device 10 or management service 26. The program memory and data memory may be physically separate or may be different logical locations within the same physical storage device.
[0020]
[0022] 2 also has a wireless communication interface 36 that provides a data connection 12 between the dongle 14 and the end device 10. This wireless communication interface 36 may support data connections to multiple end devices 10, either as multiple simultaneous connections or as a single connection shared over time among multiple end devices.
[0021]
[0023] 2 also has an upstream data connection interface 38 that provides a data connection 16 between the dongle 14 and the access point 18. This upstream data connection interface 38 can be wired and / or wireless, depending on the connection technology required to link to the access point 18.
[0022]
[0024] The dongle 14 shown in FIG. 2 also includes an optional synchronization input control element 40. This may be a button or other input device for allowing a user to initiate activation of a data connection 12 to the end device 10 for information exchange with the end device 10. Such information exchange may be referred to as a synchronization operation. In some examples, such a synchronization input control element 40 may have additional or alternative functionality for initiating the establishment of a data connection relationship with one or more end devices. In the example of a Bluetooth-based wireless connection approach, such establishment of a data connection relationship may be referred to as pairing. Once such a data connection relationship is established, the end device and dongle may store properties of the data connection relationship so that the connection can be re-established at future times without the need for re-pairing.
[0023]
[0025] By providing a dongle in this manner, the present approach enables end devices to exchange information with a management service without having to physically dock the end device in an appropriate connected docking station, without having to link the end device via a mobile device (such as a smartphone, tablet, phablet, or laptop) equipped with an appropriate information synchronization application, and without the end device having a high-power emitting wireless interface and built-in connectivity application for direct connection to a network access point. Thus, an end device user may own a dongle for use with their home internet-connected access point, allowing any end device with corresponding capabilities to synchronize with the dongle whenever it comes within range.
[0024]
[0026] Thus, for example, a user's end device may record any diagnostic and / or usage information and be configured to store that information for one or more periods of time while it is away from the dongle, and then, when the end device returns within range of the dongle, establish a data connection with the dongle and allow that information to be transferred to the dongle. The dongle may transfer that information to the management service at any appropriate time, which may be upon receipt of the information or at a later time based on the availability of a data connection to the management service and / or based on a schedule for data transfer.
[0025]
[0027] On the return path, the management service may provide configuration updates and / or updated firmware to the dongle at a time that may be determined by the management service and / or as a response communication to some data received from the dongle. Providing updates in response to some data received from the dongle may enable the management service to direct updates for a particular end device 10 to the dongle 14 that currently has a data connection to that end device, thus facilitating an end device user to use multiple dongles at different times while still receiving updates at the earliest possible time. In another example, a user may have a pre-registered “home” dongle to which all updates are provided, even if the user also connects the end device to another dongle to send usage and / or diagnostic information. The dongle may buffer received updates for inward transmission to the end device when it has an active data connection to the end device, or it may store updates received from the management service until the next connection with the end device and provide the updates to the end device at that time.
[0026]
[0028] In another example, a vendor location, such as an end vendor, or a retail store, such as a coffee shop, may operate the dongle for use by customers. In this way, end device users may be able to enjoy the benefits of the dongle without having or being near their own dongle.
[0027]
[0029] To provide data integrity and security, the dongle may be provided with the capability (e.g., under the control of processor 30 using program instructions found in program memory 32) to establish a secured connection to management service 26. Examples of suitable secured connections may include a VPN or other secure tunneling technique, or may include individual data encryption using a public / private key pair, or may include error correction coding to provide for correction of data corruption that occurs during transmission, or a combination thereof. In this way, end device users may be assured that data transmitted from their connected dongles is protected en route to management service 26.
[0028]
[0030] With respect to data passing from the end device to the dongle, this data may be protected using some form of data encryption for passage between the end device and the dongle. Technologies such as Bluetooth-based technologies may support data encryption to secure such connections. Alternatively, this data may be anonymized and abstracted so that it is meaningless without access to corresponding identifying information maintained by the management service. For example, this data may include a simple data set, such as a unique identifier for the device, and a series of data values transmitted according to a predefined data schema, where the data values are in known locations so that the data does not need to include field identifiers.
[0029]
[0031] If data is encrypted between the end device 10 and the dongle 14, the data may be stored in encrypted form by the dongle 14 pending onward transmission to the management service. In this situation, the dongle 14 may not store or have access to unencrypted data. While such an implementation may be useful in any implementation, it may be particularly useful for dongles that are shared among multiple users' end devices.
[0030]
[0032] FIG. 3 illustrates a modified implementation in which a user interface for user interaction with the management service may be provided for access via the user's connected device.
[0031]
[0033] As shown in Figure 3, users may be provided with one or more devices capable of accessing network 22. For example, these devices may include a computer terminal 50 that can access network 22 through access point 18, or a portable computer 52 or tablet computer 54, which is shown in Figure 3 as accessing network 22 through another access point 56, or a smartphone or phablet 58, which is shown as having a direct connection to network 22.
[0032]
[0034] Using such devices, users can access a user interface of management service 26 through which they can access, view, or manage their associated user account and any end devices registered to that user account. Such access may be through a web interface exposed by management service 26, which users can access using a web browser and use to log in and perform browsing activities. Alternatively or additionally, this access may be through a device interface, such as a public API, which may allow users to use a dedicated application to provide access to the user interface of management service 26.
[0033]
[0035] The management service user interface, according to this example, provides users with access to information collected from end devices and for updating end device configuration information. In other implementations, the user interface may provide only one of these types of access, or separate user interfaces may be provided for different types of access.
[0034]
[0036] The ability to access information collected from the end device not only provides transparency to the user regarding the collected data, but also allows the user to easily view any relevant diagnostic details. Such diagnostic information may include, for example, periods when the end device had a low battery, thereby informing the user about the need for more frequent charging of the device. Other example relevant diagnostic information may include information regarding when the user attempted to use the end device during a low nicotine storage state, such that the end device was unable to provide the expected nicotine aerosol for delivery to the user.
[0035]
[0037] Additionally, the ability to access information collected from end devices also allows users to easily view usage information, which can be beneficial, for example, to users seeking to manage their end use (e.g., as part of an effort to reduce personal nicotine dependence or to wean themselves off other forms of nicotine delivery that the user deems undesirable).
[0036]
[0038] As mentioned above, the user interface of the management service, in this example, also allows the user to manage configuration information for the end device. Thus, the user may be able to change settings on the end device, such as power / intensity. Other settings that can be changed may include, for end devices with light emitters such as LEDs, the action that activates the light emitter, and for end devices with multi-color light emitters such as multi-color LEDs, the color that is emitted for a given action. For example, the end device may be configured to emit a first light color when activated for nicotine delivery and a second color when establishing a data connection to the dongle.
[0037]
[0039] Other setting changes that can be accomplished via the user interface include updating settings for replaceable parts of the end device. For example, if the end device has a replaceable reservoir, the settings can be updated to indicate the concentration of the reservoir. This allows the management service to automatically update the power settings to ensure that the nicotine delivery concentration is maintained even though the new reservoir has a different concentration than the previous reservoir.
[0038]
[0040] Thus, it can be seen that by using the techniques described herein, a user is provided with a convenient technique for collecting information from and providing settings to an end device without having to link to the end device via a dedicated smartphone app or the like.
[0039]
[0041] If a user has multiple end devices associated with a single user account, access to that user account may provide access to data from and / or settings for all associated end devices.
[0040]
[0042] In the above examples, the dongle 14 has been described as having functionality tailored to end device information and configuration exchange techniques. In some examples, the dongle 14 may be a dedicated device for end device synchronization. As noted above, this can take the form of a charger station for the end devices, but the dongle can also be a standalone dedicated device. In other implementations, the dongle 14 may have other functionality not related to end devices. For example, the dongle may provide smart home functionality or other home automation functionality. Thus, other devices, such as automatic curtain actuators, lighting controllers, or HVAC controllers, capable of communicating using a wireless communication interface, may also receive control signals from the dongle; in that situation, the dongle would also include functionality for communicating with or hosting the corresponding smart home or home automation control functionality.
[0041]
[0043] The various embodiments described herein are presented solely to aid in the understanding and teaching of the claimed features. These embodiments are provided only as a representative sample of embodiments and are not intended to be exhaustive and / or exclusive. The advantages, embodiments, examples, functions, features, structures, and / or other aspects described herein should not be construed as limitations on the scope of the disclosure as defined by the claims or limitations on the equivalents of the claims, and it should be understood that other embodiments may be utilized and changes may be made without departing from the scope and / or spirit of the claims.
[0042]
[0044] Various embodiments of the claims may suitably comprise, consist of, or consist essentially of any suitable combination of the disclosed elements, components, features, parts, steps, means, etc. other than those specifically described herein. In addition, the present disclosure may include other concepts not currently claimed, but which may be claimed in the future, either in combination with the currently claimed features or separately from those features.
[0043]
[0045] For example, while the present specification has been described with reference to electronic nicotine delivery "end" devices, it should be understood that the teachings herein can also be used with more general aerosol delivery devices that do not necessarily contain or use nicotine. In such more general aerosol delivery devices, the aerosol delivery device (which in some embodiments may comprise an electronic cigarette (e-cigarette) and / or end device) may contain an aerosol precursor material—e.g., a reservoir of source liquid containing a formulation that typically, but not necessarily, includes nicotine, or a solid material such as a tobacco-based product—from which an aerosol is generated, e.g., by thermal vaporization, for inhalation by a user. Thus, an aerosol delivery device will typically include a vaporizer, e.g., a heating element, positioned to vaporize a portion of the precursor material to generate an aerosol in an aerosol-generation region of an air channel through the aerosol delivery device. When a user draws on the device and power is applied to the vaporizer, air is drawn into the device through one or more inlet holes and along the air channel to the aerosol-generation region, where the air mixes with the vaporized precursor material to form a condensation aerosol. Air drawn through the aerosol-generation region continues to flow along the air channel to the mouthpiece opening, carrying with it a portion of the aerosol, and exits through the mouthpiece opening for inhalation by the user.
Claims
1. 1. An aerosol delivery device management environment comprising: a connection dongle for providing connectivity between an aerosol delivery device and a management services system; and the management services system, wherein the management services system is hosted by one or more physical or virtual servers, and the connection dongle: a wireless connection interface configured to establish a wireless data connection to an aerosol delivery device to receive data from the aerosol delivery device, the data including diagnostic and / or usage information from the aerosol delivery device; and a data connection interface configured to establish a connection to the management services system, the data connection interface configured to pass data received from a connected aerosol delivery device to the management services system via the connection; Equipped with the data connection interface is further configured to receive data from the management services system, and the wireless connection interface is configured to pass data from the management services system to the aerosol delivery device; An aerosol delivery device management environment, wherein the management service system includes a user interface accessible to access the diagnostic information and / or the usage information from the aerosol delivery device.
2. The aerosol delivery device management environment of claim 1 , wherein the diagnostic information includes battery level information.
3. The aerosol delivery device management environment of claim 1 or 2, wherein the connection dongle is configured to provide control signals via the wireless connection interface for communication with devices other than an aerosol delivery device.
4. The aerosol delivery device management environment of claim 1 , wherein the user interface is configured to allow a user of the aerosol delivery device to change settings of the aerosol delivery device.
5. The aerosol delivery device management environment of claim 4 , wherein the setting includes activating a light emitter of the aerosol delivery device.
6. The aerosol delivery device management environment of claim 5 , wherein the light emitter comprises a multi-color light emitter, and the setting comprises a color emitted by the multi-color light emitter for an operation.
7. The aerosol delivery device management environment of any one of claims 1 to 6, wherein the wireless connection interface is a personal area network interface or a low-power wide area network interface.
8. The aerosol delivery device management environment of any one of claims 1 to 7, further configured to establish a secure connection to the management service system before sending data to the management service system or before receiving data from the management service system.
9. The aerosol delivery device management environment of any one of claims 1 to 8, wherein the aerosol delivery device comprises an electronic nicotine delivery device, and the wireless connection interface is configured to establish a wireless data connection to the electronic nicotine delivery device.
10. The aerosol delivery device management environment of claim 1 , wherein the management service system is configured to provide management services as a cloud service.
11. collecting information describing operation of the aerosol delivery device during use of the aerosol delivery device, the information including diagnostic and / or usage information from the aerosol delivery device; establishing a wireless data connection from the aerosol delivery device to the connectivity dongle when the aerosol delivery device is within range of the connectivity dongle; transmitting the collected information from the aerosol delivery device to the connectivity dongle via the wireless data connection; transmitting the collected information from the connectivity dongle to a management services system, the management services system being hosted by one or more physical or virtual servers; providing the information to a user interface of the management services system to allow a user of the aerosol delivery device to access the diagnostic information and / or the usage information; 1. A method for communicating data, comprising:
12. The method of claim 11 , wherein the step of providing the information to a user interface of the management service system allows a user of the aerosol delivery device to change settings on the aerosol delivery device, the settings including activating a light emitter on the aerosol delivery device.
13. The method of claim 12 , wherein the light emitter comprises a multi-color light emitter, and the settings include colors emitted by the multi-color light emitter for an operation.
14. The method of any one of claims 11 to 13, wherein the management service system is configured to provide management services as a cloud service.
Citation Information
Patent Citations
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