Aerosol Delivery System
A motion detection system in aerosol delivery systems, like e-cigarettes, adjusts operation based on detected conditions, enhancing user experience and system efficiency by adapting to varying usage scenarios.
Patent Information
- Application Number
- JP2024515627
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-10-22
- Filing Date
- 2022-10-12
- Publication Date
- 2025-12-15
- Estimated Expiration
- 2042-10-12
AI Technical Summary
Existing aerosol delivery systems, such as e-cigarettes, do not adapt their operation to varying conditions effectively, leading to inconsistent user experience.
Incorporation of a motion detection system that uses a motion detector to generate data, which a controller processes to adjust the operation of the aerosol delivery system based on predetermined criteria, allowing for adaptive functionality.
Enhances the usability of aerosol delivery systems by ensuring optimal operation in different conditions, improving user experience and system efficiency.
Smart Images

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Abstract
Description
Field
[0001] The present disclosure relates to aerosol delivery systems, such as, but not limited to, nicotine delivery systems (e.g., electronic cigarettes, etc.).
[0002] Electronic aerosol delivery systems often employ electronic cigarettes (e-cigarettes), or more generally, aerosol delivery devices. Such aerosol delivery systems typically include an aerosolizable material (also referred to as an aerosol-generating material), such as a fluid or liquid reservoir containing a formulation, but typically not necessarily containing nicotine, or a solid, such as a tobacco-based product, from which a vapor / aerosol is generated, e.g., by thermal vaporization, for inhalation by a user. Thus, aerosol delivery systems typically include a vaporizer (also referred to as an aerosol generator), e.g., a heating element, positioned to aerosolize a portion of the aerosolizable material to generate a vapor.
[0003] After the vapor is generated, it may be passed through a scented material to add flavor to the vapor (if the aerosolizable material is not itself scented), and the (scented) vapor may then be delivered from the aerosol delivery system to the user via the mouthpiece.
[0004] A potential drawback of existing aerosol delivery systems and related aerosol delivery devices is that it may not always be appropriate to use the aerosol delivery system in the same way in all conditions. Accordingly, various approaches are described herein that attempt to address or help alleviate some of these issues through the use of motion detectors with data that can be used to influence the operation of the aerosol delivery system to better meet the demands for operation in these different conditions. Overview
[0005] According to a first aspect of certain embodiments, there is provided a motion detection system comprising an aerosol delivery system for generating an aerosol, a motion detector for generating motion data, and a controller, the controller comprising: receiving motion data from a motion detector; determining whether the motion data meets a first predetermined criterion, the predetermined criterion representing a motion condition of the aerosol delivery system; and generating an output signal in response to the movement data meeting a first predetermined criterion to affect operation of the aerosol delivery system.
[0006] According to a second aspect of certain embodiments, there is provided a method for influencing operation of an aerosol delivery system configured to generate an aerosol in a motion detection system, the method comprising: generating motion data from a motion detector of a motion detection system; receiving, at a controller of the motion detection system, motion data from the motion detector; determining whether the motion data meets a first predetermined criterion, the predetermined criterion representing a motion condition of the aerosol delivery system; The controller generates an output signal to affect operation of the aerosol delivery system in response to determining that the movement data meets the first predetermined criterion.
[0007] It will be understood that the features and aspects of aspects of the invention described above with respect to various aspects of the invention are equally applicable to embodiments of the invention, as appropriate, in accordance with other aspects of the invention, and may be combined with embodiments of the invention not only in the specific combinations described herein.
[0008] Embodiments of the present invention 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] 1 is a schematic representation in perspective of an aerosol delivery system including a cartridge and an aerosol delivery device (shown separated) in accordance with certain embodiments of the present disclosure. [Figure 2] FIG. 2 is a schematic exploded perspective view of the cartridge components of the aerosol delivery system of FIG. 1. [Figure 3A] 2A-2C are schematic representations of various cross-sectional views of the housing portion of the cartridge of the aerosol delivery system of FIG. 1. [Figure 3B] 2A-2C are schematic representations of various cross-sectional views of the housing portion of the cartridge of the aerosol delivery system of FIG. 1. [Figure 3C] 2A-2C are schematic representations of various cross-sectional views of the housing portion of the cartridge of the aerosol delivery system of FIG. 1. [Figure 4A] 2A and 2B are schematic perspective and plan views of a septum element of the cartridge of the aerosol delivery system of FIG. 1. [Figure 4B] 2A and 2B are schematic perspective and plan views of a septum element of the cartridge of the aerosol delivery system of FIG. 1. [Figure 5A] 2A and 2B are schematic representations of two perspective and plan views of a resilient plug of the cartridge of the aerosol delivery system of FIG. 1. [Figure 5B] 2A and 2B are schematic representations of two perspective and plan views of a resilient plug of the cartridge of the aerosol delivery system of FIG. 1. [Figure 5C] 2A and 2B are schematic representations of two perspective and plan views of a resilient plug of the cartridge of the aerosol delivery system of FIG. 1. [Figure 6A] 2A and 2B are schematic perspective and plan views of the bottom cap of the cartridge of the aerosol delivery system of FIG. 1. [Figure 6B] 2A and 2B are schematic perspective and plan views of the bottom cap of the cartridge of the aerosol delivery system of FIG. 1. [Figure 7]FIG. 10 is a schematic representation of an embodiment of a motion detection system usable with an aerosol delivery system, such as the aerosol delivery system shown in FIGS. 1-6B, in accordance with certain embodiments of the present disclosure, the motion detection system comprising a motion detector for generating data that can be used to affect the operation of the aerosol delivery system. [Figure 8A] 1A and 1B are schematic representations of an embodiment of a gesture-controlled aerosol delivery system when operated in a first situation, in accordance with certain embodiments of the present disclosure. [Figure 8B] 8B is a schematic representation of an embodiment of a gesture-controlled aerosol delivery system when operated in a second situation different from the first situation of FIG. 8A in accordance with certain embodiments of the present disclosure. Detailed Description
[0010] Aspects and features of certain examples and embodiments are explained / described herein. Some aspects and features of certain examples and example embodiments may be implemented in conventional manners, and those aspects and features will not be explained / described in detail for the sake of brevity. Therefore, it will be understood that aspects and features of the apparatus and methods described herein that are not explained in detail may be implemented according to any conventional techniques for implementing such aspects and features.
[0011] The present disclosure relates to non-combustible aerosol delivery systems (e.g., e-cigarettes). According to the present disclosure, a "non-combustible" aerosol delivery system is a device in which the aerosol delivery system (or its components) is not burned or incinerated to facilitate delivery to a user. An aerosolizable material, which may be referred to herein as an aerosol-generating material or aerosol precursor material, is a material that can generate an aerosol when, for example, heated, irradiated, or energized in any other manner. In some embodiments, the aerosolizable material may be flavored.
[0012] Throughout the following description, the terms "e-cigarette" or "electronic cigarette" may be used, but it will be understood that these terms may be used interchangeably with aerosol delivery systems. Note that e-cigarettes are sometimes known as vaping devices or electronic nicotine delivery systems (ENDs), although the presence of nicotine in the aerosolizable material is not a requirement.
[0013] In some embodiments, the aerosol delivery system is a hybrid device configured to generate an aerosol using a combination of aerosolizable materials, one or more of which may be heated. In some embodiments, the hybrid device includes a liquid or gel aerosolizable material and a solid aerosolizable material. The solid aerosolizable material may include, for example, a tobacco product or a non-tobacco product.
[0014] Typically, a (non-combustible) aerosol delivery system may comprise a cartridge / consumable portion and a body / reusable / aerosol delivery device portion configured to removably mate with the cartridge / consumable portion.
[0015] The aerosol delivery system may include means for powering the vaporizer and may include an aerosolizable material transport element for receiving the aerosolizable material to be vaporized. The aerosol delivery system may include a reservoir for containing the aerosolizable material and, in some embodiments, a further reservoir for containing a flavoring material for flavoring the vapor generated from the aerosol delivery system.
[0016] In some embodiments, the vaporizer may be a heater / heating element that can interact with the aerosolizable material to release one or more volatile substances from the aerosolizable material to form a vapor / aerosol. In some embodiments, the vaporizer can generate an aerosol from the aerosolizable material without heating. For example, the vaporizer may be capable of generating a vapor / aerosol from the aerosolizable material without applying heat, for example, by one or more of vibrational, mechanical, pressurized, or electrostatic means.
[0017] In some embodiments, the substance to be delivered may be an aerosolizable material that may include an active ingredient, a carrier constituent, and, optionally, one or more other functional ingredients.
[0018] The active ingredient may include one or more physiologically active ingredients and / or olfactory active ingredients included in the aerosolizable material to achieve a physiological and / or olfactory response in the user. The active ingredient may be selected from, for example, a nutraceutical, a nootropic, and a psychotropic drug. The active ingredient may be naturally occurring or synthetically obtained. The active ingredient may include, for example, nicotine, caffeine, taurine, theine, vitamins such as B6, B12, or C, melatonin, cannabinoids, or components, derivatives, or combinations thereof. The active ingredient may include components, derivatives, or extracts of tobacco or another plant. In some embodiments, the active ingredient is a physiologically active ingredient and may be selected from nicotine, nicotine salts (e.g., nicotine tartrate / nicotine acid bitartrate), nicotine-free tobacco substitutes, other alkaloids such as caffeine, or mixtures thereof.
[0019] In some embodiments, the active ingredient is an olfactory active ingredient and may be selected from "fragrances" and / or "flavorings," which, where local regulations permit, may be used to create a desirable taste, aroma, or other bodily sensation in products for adult consumers. In some cases, such ingredients may be referred to as fragrances, flavorings, perfuming materials, cooling agents, heating agents, and / or sweetening agents.The ingredients may be naturally occurring flavoring materials, botanicals, extracts of botanicals, synthetically obtained materials, or combinations thereof (e.g., tobacco, cannabis, licorice, hydrangea, eugenol, magnolia leaf, chamomile, fenugreek, clove, maple, matcha, menthol, peppermint, aniseed (aniseed), cinnamon, turmeric, Indian spices, Asian spices, herbs, wintergreen, cherry, berry, red berry, cranberry, peach, apple, orange, mango, clementine, lemon, lime, tropical fruit, etc.) Fruits: Papaya, Rhubarb, Grapes, Durian, Dragon Fruit, Cucumber, Blueberry, Mulberry, Citrus Fruit, Drambuie, Bourbon, Scotch, Whisky, Gin, Tequila, Rum, Spearmint, Peppermint, Lavender, Aloe, Cardamom, Celery, Cascarilla, Nutmeg, Sandalwood, Bergamot, Geranium, Khat, Naswar, Betel, Shisha, Pine, Honey Extract, Rose Oil, Vanilla, Lemon Oil, Orange Oil, Orange Blossom, Cherry Blossom, Cassia, Caraway, Cognac, Jasmine, Ylang-ylang Other than citrus fruits, sage, fennel, wasabi, bell pepper, ginger, coriander, coffee, Indian hemp, peppermint oil from any species of the genus Mentha, eucalyptus, star anise, cocoa, lemongrass, rooibos, flax, ginkgo, hazel, hibiscus, bay leaf, yerba mate, orange peel, rose, tea such as green tea or black tea, thyme, juniper, elderflower, basil, bay leaf, cumin, oregano, paprika, rosemary, saffron, lemon peel, mint, sedge, curcuma, cilantro, myrtle, black currant, valerian, pimento, mace, dham The flavor enhancers may include other additives such as cinnamon, oregano, olive, lemon balm, lemon basil, chives, caraway seeds, verbena, tarragon, limonene, thymol, camphene), flavor enhancers, bitter taste receptor site blockers, sensory receptor site activators or stimulants, sugars and / or sugar substitutes (e.g., sucralose, acesulfame potassium, aspartame, saccharin, cyclamate, lactose, saccharose, glucose, fructose, sorbitol, or mannitol), and other additives such as charcoal, chlorophyll, minerals, botanicals, or breath fresheners.These ingredients may be imitation, synthetic, or natural ingredients, or mixtures thereof. The ingredients may be in any suitable form (e.g., liquid such as an oil, solid such as a powder, or gas) and may include one or more extracts (e.g., licorice, hydrangea, magnolia leaf, chamomile, fenugreek, clove, menthol, peppermint, aniseed, cinnamon, herbs, wintergreen, cherry, berry, peach, apple, Drambuie, bourbon, Scotch, whiskey, spearmint, peppermint, lavender, cardamom, celery, cascarilla, nutmeg, sandalwood, bergamot, geranium, honey extract, rose oil, vanilla, lemon oil, orange oil, cassia, The ingredients may be other additives such as caraway, cognac, jasmine, ylang-ylang, sage, fennel, bell pepper, ginger, anise, coriander, coffee, or mint oil from any species of the genus Mentha), flavor enhancers, bitter taste receptor site blockers, sensory receptor site activators or stimulants, sugars and / or sugar substitutes (e.g., sucralose, acesulfame potassium, aspartame, saccharin, cyclamate, lactose, saccharose, glucose, fructose, sorbitol, or mannitol), and other additives such as charcoal, chlorophyll, minerals, botanicals, or breath fresheners. These ingredients may be imitation, synthetic, or natural ingredients, or mixtures thereof. The ingredients may be in any suitable form, such as an oil, liquid, or powder.
[0020] In some embodiments, the flavoring material (flavoring) may include menthol, spearmint, and / or peppermint. In some embodiments, the flavoring includes cucumber, blueberry, citrus fruit, and / or red berry flavoring ingredients. In some embodiments, the flavoring includes eugenol. In some embodiments, the flavoring includes flavoring ingredients extracted from tobacco. In some embodiments, the flavoring may include sensory-perceivable agents, typically chemically induced and intended to achieve bodily sensations perceived by stimulation of the fifth cranial nerve (trigeminal nerve) in addition to or instead of the aroma or taste nerves, and may include agents that produce heating, cooling, tingling, or numbing effects. Suitable thermal effect agents may be, but are not limited to, vanillyl ethyl ether, and suitable cooling agents may be, but are not limited to, eucalyptol, WS-3.
[0021] The carrier component may include one or more components capable of forming an aerosol. In some embodiments, the carrier component may include one or more of glycerin, glycerol, propylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, 1,3-butylene glycol, erythritol, meso-erythritol, ethyl vanillate, ethyl laurate, diethyl suberate, triethyl citrate, triacetin, diacetin mixtures, benzyl benzoate, benzyl phenylacetate, tributyrin, lauryl acetate, lauric acid, myristic acid, and propylene carbonate.
[0022] The one or more other functional ingredients may include one or more of a pH adjuster, a colorant, a preservative, a binder, a bulking agent, a stabilizer, and / or an antioxidant.
[0023] As previously mentioned, aerosol delivery systems (e-cigarettes) often comprise modular assemblies that include both a reusable portion (the body or aerosol delivery device) and a replaceable consumable (cartridge) portion. Devices that conform to this type of two-part modular configuration may generally be referred to as two-component devices. It is also common for electronic cigarettes to have a generally elongated shape. To provide a concrete example, certain embodiments of the present disclosure described herein may include this type of generally elongated two-component device that employs a consumable portion. However, it will be understood that the underlying principles described herein may similarly be employed in other electronic cigarette configurations, including modular devices having three or more components, such as devices conforming to other overall shapes, e.g., based on so-called box-mod high-performance devices that typically have a more rectangular shape.
[0024] Accordingly, in light of the foregoing, and with reference to Figure 1, a schematic perspective view of an exemplary aerosol delivery system (e-cigarette) 1 is shown in accordance with certain embodiments of the present disclosure. Terms relating to the relative positions of various aspects of an e-cigarette (e.g., terms such as upper, lower, top, bottom, upper, lower, etc.) are used herein with reference to the orientation of the e-cigarette as shown in Figure 1 (unless the context indicates otherwise). However, it will be understood that this is merely for ease of explanation and is not intended to indicate that there is a required orientation of the e-cigarette in use.
[0025] The e-cigarette 1 (aerosol delivery system 1) comprises two main components: a cartridge 2 and an aerosol delivery device 4. The aerosol delivery device 4 and cartridge 2 are shown separated in Figure 1 but are coupled together in use.
[0026] The cartridge 2 and the aerosol delivery device 4 are coupled by establishing a mechanical and electrical connection therebetween. The specific manner in which the mechanical and electrical connections are established is not critical to the principles described herein and may be established according to conventional techniques, for example, based on a threaded, bayonet, latch, or friction-fit mechanical fastening, using appropriately positioned electrical contacts / electrodes to establish an electrical connection between the two components as needed. In the case of the exemplary electronic cigarette 1 depicted in FIG. 1 , the cartridge includes a mouthpiece 33, a mouthpiece end 52, and an interface end 54. At the interface end of the cartridge, the interface end portion 6 is coupled to the aerosol delivery device by inserting the interface end portion 6 into a corresponding receptacle 8 / receiving section of the aerosol delivery device. The interface end portion 6 of the cartridge is an interference fit into the receptacle 8 and includes a protrusion 56 that mates with a corresponding detent on the inner surface of the receptacle wall 12 defining the receptacle 8 to achieve a releasable mechanical interlock between the cartridge and the aerosol delivery device. An electrical connection between the aerosol delivery device and the cartridge is established by a pair of electrical contacts at the bottom of the cartridge (not shown in FIG. 1 ) and corresponding spring-loaded contact pins (not shown in FIG. 1 ) at the base of the receptacle 8. As previously mentioned, the specific manner in which the electrical connection is established is not important to the principles described herein, and indeed some implementations may not have an electrical connection between the cartridge and the aerosol delivery device at all, for example, because the transfer of power from the reusable part to the cartridge may be wireless (e.g., based on electromagnetic induction technology).
[0027] The electronic cigarette 1 (aerosol delivery system) has a generally elongated shape extending along a longitudinal axis L. When the cartridge is coupled to the aerosol delivery device, the overall length of the electronic cigarette (along the longitudinal axis) is approximately 12.5 cm in this example. The overall length of the aerosol delivery device is approximately 9 cm, and the overall length of the cartridge is approximately 5 cm (i.e., there is approximately 1.5 cm of overlap between the interface end portion 6 of the cartridge and the receptacle 8 of the aerosol delivery device when they are coupled together). The electronic cigarette has a generally oval cross-section that is largest around the center of the electronic cigarette and tapers in a curved manner toward the ends. The cross-section around the center of the electronic cigarette is approximately 2.5 cm wide and approximately 1.7 cm thick. The end of the cartridge is approximately 2 cm wide and approximately 0.6 mm thick, while the other end of the electronic cigarette is approximately 2 cm wide and approximately 1.2 cm thick. The outer housing of the electronic cigarette is formed from plastic in this example. It will be understood that the particular size and shape of the electronic cigarette, and the materials from which the electronic cigarette is made, are not critical to the principles described herein and may vary in different implementations, i.e., the principles described herein may be similarly employed in electronic cigarettes having different sizes, shapes, and / or materials.
[0028] The aerosol delivery device 4 may be broadly conventional in terms of function and general construction techniques, according to certain embodiments of the present disclosure. In the example of FIG. 1 , the aerosol delivery device 4 comprises a plastic outer housing 10 including receptacle walls 12 defining a receptacle 8 for receiving the end of a cartridge, as previously described. In this example, the outer housing 10 of the aerosol delivery device 4 has a generally oval cross-section that conforms to the shape and size of the cartridge 2 at the interface of these two components to allow a smooth transition between these components. The receptacle 8 and the end portion 6 of the cartridge 2 are symmetrical when rotated 180°, so that the cartridge can be inserted into the aerosol delivery device in two different orientations. The receptacle walls 12 include two aerosol delivery device inlet openings 14 (i.e., holes in the wall). These openings 14 are positioned to align with the cartridge inlets 50 when the cartridge is coupled to the aerosol delivery device. Different ones of the openings 14 align with the cartridge inlets 50 in different orientations. It will be understood that some implementations may not have any degree of rotational symmetry, such that the cartridge can be coupled to the aerosol delivery device in only one orientation, while other implementations may have a greater degree of rotational symmetry, such that the cartridge can be coupled to the aerosol delivery device in more orientations.
[0029] The aerosol delivery device further comprises a battery 16 for providing operating power to the electronic cigarette, control circuitry 18 for controlling and monitoring the operation of the electronic cigarette, user input buttons 20, indicator lights 22, and charging port 24.
[0030] Battery 16, in this example, is rechargeable and may be conventional, such as the type typically used in e-cigarettes and other applications requiring the delivery of relatively high currents for relatively short periods of time. Battery 16 may be recharged via charging port 24, which may include, for example, a USB connector.
[0031] The input button 20, in this example, is a conventional mechanical button, e.g., with a spring-loaded mounting component, that can be pressed by a user to establish electrical contact in an underlying circuit. In this regard, the input button may be considered an input device for detecting user input, e.g., triggering aerosol generation, and the specific manner in which the button is implemented is not important. For example, in other implementations, other forms of mechanical buttons or touch-sensitive buttons (e.g., based on capacitive or optical sensing technologies) may be used, or there may be no button and the device may rely on a breath detector to trigger aerosol generation.
[0032] Indicator lights 22 are provided to give the user visual indications of various characteristics associated with the e-cigarette, such as its operating state (e.g., on / off / standby) and other characteristics such as battery life or fault conditions. For example, various characteristics may be indicated by different colors and / or different flashing sequences, in accordance with conventional prior art.
[0033] The control circuit 18 is suitably configured / programmed to control the operation of the e-cigarette to achieve conventional operational functions consistent with established techniques for controlling e-cigarettes. The control circuit (processor circuit) 18 may be considered to logically comprise various subunits / circuit elements associated with various aspects of the operation of the e-cigarette. For example, depending on the functionality provided in various implementations, the control circuit 18 may comprise a power control circuit for controlling the supply of power from the battery / power source to the cartridge in response to user input, user programming circuitry for establishing configuration settings (e.g., user-defined power settings) in response to the user input, in accordance with the principles described herein and conventional aspects of the operation of e-cigarettes, such as an indicator light display driver circuit and a user input detection circuit, in addition to functions associated with other functional units / circuits. It will be appreciated that the functionality of the control circuit 18 may be provided in a variety of different ways, for example, using one or more suitably programmed programmable computers and / or one or more suitably configured application-specific integrated circuit(s) / circuit(s) / chip(s) / chipset(s) configured to provide the desired functionality.
[0034] 2 is an exploded schematic perspective view of cartridge 2 (exploded along longitudinal axis L). Cartridge 2 includes housing portion 32, air channel seal 34, septum element 36, outlet tube 38, vaporizer / heating element 40, aerosolizable material transport element 42, plug 44, and end cap 48 with contact electrode 46. Figures 3-6 depict some of these components in more detail and generally.
[0035] Figure 3A is a schematic cutaway view of housing portion 32 through longitudinal axis L, where housing portion 32 is at its thinnest. Figure 3B is a schematic cutaway view of housing portion 32 through longitudinal axis L, where housing portion 32 is at its widest. Figure 3C is a schematic view of the housing portion along longitudinal axis L, from interface end 54 (i.e., as viewed from below in the orientation of Figures 3A and 3B).
[0036] Figure 4A is a schematic perspective view of the bulkhead element 36 as viewed from below, and Figure 4B is a schematic cross-section through the upper portion of the bulkhead element 36 as viewed from below.
[0037] Figure 5A is a schematic perspective view of plug 44 from above, Figure 5B is a schematic perspective view of plug 44 from below, and Figure 5C is a schematic view of plug 44 along longitudinal axis L as viewed from mouth end 52 of the cartridge (i.e., as viewed from above in the orientation of Figures 1 and 2).
[0038] Figure 6A is a schematic perspective view of end cap 48 from above. Figure 6B is a schematic view of end cap 48 along longitudinal axis L as viewed from mouth end 52 of the cartridge (i.e., from above).
[0039] In this example, the housing portion 32 includes an outer housing wall 64 and an inner housing tube 62, which in this example are formed from a single molding of polypropylene. The outer housing wall 64 defines the exterior of the cartridge 2, and the inner housing tube 62 defines a portion of the air tunnel through the cartridge. The housing portion is open at the interface end 54 of the cartridge and closed at the mouth end 52 of the cartridge, except for a mouth opening / aerosol outlet 60 from the mouthpiece 33, which is in fluid communication with the inner housing tube 62. The housing portion 32 includes an opening in its side wall that provides the inlet 50 to the cartridge. In this example, the inlet 50 is approximately 2 mm 2 The outer surface of the outer wall 64 of the housing portion 32 includes the aforementioned projections 56 that mate with corresponding detents in the inner surface of the receptacle wall 12 defining the receptacle 8 to provide a releasable mechanical interlock between the cartridge and the aerosol delivery device. The inner surface of the outer wall 64 of the housing portion includes a further projection 66 that serves to form an abutment stop for locating the septum element 36 along the longitudinal axis L when the cartridge is assembled. The outer wall 64 of the housing portion 32 further includes a hole forming a latch recess 68 that is positioned to receive a corresponding latch projection 70 in the end cap to secure the end cap to the housing portion when the cartridge is assembled.
[0040] The outer wall 64 of the housing portion 32 includes a double-walled section 74 that defines a gap 76 that is in fluid communication with the intake port 50. The gap 76 forms part of an air tunnel through the cartridge. In this example, the double-walled section 74 of the housing portion 32 is positioned so that the gap is approximately 3 mm. 2 The airflow channel 76 defines a wind tunnel extending within the housing outer wall 64 parallel to the longitudinal axis, the wind tunnel 76 having a cross section in a plane perpendicular to the longitudinal axis of the housing portion 32. A gap / portion of the wind tunnel 76 defined by the double-walled section of the housing portion extends down to the open end of the housing portion 32.
[0041] The wind tunnel seal 34 is typically a silicone molded tube containing a through-hole 80. The outer wall of the wind tunnel seal 34 includes a circumferential ridge 84 and an upper collar 82. The inner wall of the wind tunnel seal 34 also includes a circumferential ridge, but these circumferential ridges are not visible in FIG. 2 . When the cartridge is assembled, the wind tunnel seal 34 is attached to the housing inner tube 62, with the end of the housing inner tube 62 extending partially into the through-hole 80 in the wind tunnel seal 34. The through-hole 80 in the wind tunnel seal has a diameter of approximately 5.8 mm in a relaxed state, while the end of the housing inner tube 62 has a diameter of approximately 6.2 mm so that a seal is formed when the wind tunnel seal 34 is stretched to accommodate the housing inner tube 62. This seal is facilitated by the ridges on the inner surface of the wind tunnel seal 34.
[0042] The outlet tube 38 comprises a tubular section made of, for example, ANSI 304 stainless steel or polypropylene having an inner diameter of approximately 8.6 mm and a wall thickness of approximately 0.2 mm. The lower end of the outlet tube 38 includes a pair of diametrically opposed slots 88, the end of each slot including a semicircular recess 90. When the cartridge is assembled, the outlet tube 38 is attached to the outer surface of the wind tunnel seal 34. The outer diameter of the wind tunnel seal is approximately 9.0 mm in its relaxed state so that a seal is formed when the wind tunnel seal 34 is compressed to fit inside the outlet tube 38. This seal is facilitated by a ridge 84 on the outer surface of the wind tunnel seal 34. A collar 80 on the wind tunnel seal 34 forms a stop for the outlet tube 38.
[0043] The aerosolizable material transport element 42 includes a capillary wick, and the vaporizer (aerosol generator) 40 includes a resistive wire heater wrapped around the capillary wick. In addition to the portion of resistive wire wrapped around the capillary wick, the vaporizer includes electrical leads 41 that extend through holes in plug 44 to contact electrodes 46 attached to end cap 54, allowing power to be supplied to the vaporizer via an electrical interface established when the cartridge is connected to an aerosol delivery device. The vaporizer leads 41 may include the same material as the resistive wire wrapped around the capillary wick, or may include a different material (e.g., a lower resistance material) connected to the resistive wire wrapped around the capillary wick. In this example, the heater coil 40 includes an iron-nickel alloy wire, and the wick 42 includes a bundle of glass fibers. The vaporizer and aerosolizable material transport element may be implemented according to any conventional technology and may include different forms and / or different materials. For example, in some implementations, the wick may comprise a fibrous or solid ceramic material, and the heater may comprise a different alloy. In other examples, the heater and wick may be combined, for example, in the form of a porous material and a resistive material. More generally, it will be understood that the specific nature of the aerosolizable material transport element and vaporizer is not critical to the principles described herein.
[0044] When the cartridge is assembled, the wick 42 is received in a semicircular recess 90 in the outlet tube 38 so that the central portion of the wick, around which the heating coil is wrapped, is inside the outlet tube, while the ends of the wick are outside the outlet tube 38.
[0045] In this example, plug 44 comprises a single molded piece of silicone and may be resilient. The plug includes a base 100 with an outer wall 102 extending upwardly (i.e., toward the mouth end of the cartridge). The plug further includes an inner wall 104 extending upwardly from base 100 and surrounding a through-hole 106 through base 100.
[0046] An outer wall 102 of plug 44 conforms to the inner surface of housing portion 32 so that plug 44 forms a seal with housing portion 32 when the cartridge is assembled. An inner wall 104 of plug 44 conforms to the inner surface of outlet tube 38 so that plug 44 also forms a seal with outlet tube 38 when the cartridge is assembled. Inner wall 104 includes a pair of diametrically opposed slots 108, the end of each slot including a semicircular recess 110. Extending outward (i.e., away from the longitudinal axis of the cartridge) from the bottom of each slot in inner wall 104 is a cradle section 112 shaped to receive a section of an aerosolizable material transport element 42 when the cartridge is assembled. The slots 108 and semicircular recesses 110 formed by the inner wall of the plug 44 and the slots 88 and semicircular recesses 90 of the outlet tube 38 are aligned so that the semicircular recesses in the outlet tube and plug cooperate to define holes through which the aerosolizable material transport element passes, and the slots 88 in the outlet tube 38 accommodate the cradles 112. The size of the holes formed by the semicircular recesses through which the aerosolizable material transport element passes closely corresponds to the size and shape of the aerosolizable material transport element, but is slightly smaller, allowing some compression due to the resiliency of the plug 44. This allows the aerosolizable material to be transported along the aerosolizable material transport element by capillary action while limiting the extent to which aerosolizable material not transported by capillary action can pass through the opening. As previously mentioned, the plug 44 further includes an opening 114 in the base 100 through which the vaporizer contact lead 41 passes when the cartridge is assembled. The lower portion of the plug base includes spacers 116 that maintain the offset between the remaining surface of the lower portion of the base and the end cap 48. These spacers 116 include openings 114 through which the carburetor contact leads 41 pass.
[0047] The end caps 48 comprise polypropylene moldings onto which a pair of gold-plated copper electrode posts 46 are attached.
[0048] The ends of the electrode posts 46 on the bottom surface of the end cap are generally flush with the cartridge interface end 54 formed by the end cap 48. These electrode post 44 ends are the part of the electrodes that are connected to correspondingly aligned spring-loaded contacts in the aerosol delivery device 4 when the cartridge 2 is assembled and connected to the aerosol delivery device 4. The ends of the electrode posts inside the cartridge extend away from the end cap 48 into holes 114 in the plug 44, through which the contact leads 41 pass. The electrode posts are slightly larger in size relative to the holes 114 and include chamfered surfaces on their upper ends to facilitate insertion into the holes 114 in the plug, which maintains the electrode posts in pressure contact with the vaporizer contact leads.
[0049] The end cap includes a base section 124 and an upstanding wall 120 that conforms to the inner surface of the housing portion 32. When the cartridge is assembled, the upstanding wall 120 of the end cap 48 is inserted into the housing portion 32 so that the latch projections 70 engage with the latch recesses 68 in the housing portion 32, snapping the end cap 48 into the housing portion. The upper portion of the upstanding wall 120 of the end cap 48 abuts the periphery of the plug 44, and the underside of the spacer 116 on the plug also abuts the base section 124 of the end cap, so as to bear against the resilient portion 44 and maintain it in a slight compression when the end cap 48 is attached to the housing portion.
[0050] The base 124 of the end cap 48 includes a peripheral edge 126 beyond the base of the upstanding wall 112 that has a thickness that matches the thickness of the outer wall of the housing portion at the interface end of the cartridge. The end cap also includes an upstanding locating pin 122 that mates with a corresponding locating hole 128 in the plug to help establish relative positioning during assembly.
[0051] The septum element 36 comprises a single molding of polypropylene and includes a septum 130 and a collar 132 formed by a protrusion from the septum 130 in a direction toward the interface end of the cartridge. The septum element 36 includes a central opening 134 through which the outlet tube 38 passes (i.e., the septum is disposed around the outlet tube 38). In some embodiments, the septum element 36 may be integrally formed with the outlet tube 38. When the cartridge is assembled, the upper surface of the outer wall 102 of the plug 44 engages the lower surface of the septum 130, which in turn engages the protrusion 66 on the inner surface of the outer wall 64 of the housing portion 32. In this manner, the septum 130 prevents the plug from being pushed too far into the housing portion 32, i.e., the septum 130 is fixedly positioned along the longitudinal axis of the cartridge by the protrusion 66 within the housing portion, thereby providing the plug with a fixed surface to push against. The collar 132 formed by the projection from the septum includes a first pair of opposing protrusions / protrusions 134 that mate with corresponding recesses on the inner surface of the outer wall 102 of the plug 44. The projections from the septum 130 further form a pair of cradle sections 136 configured to mate with corresponding ones of the cradle sections 112 in the part 44 when the cartridge is assembled to further define an opening through which the aerosolizable material transport element passes.
[0052] When the cartridge 2 is assembled, a wind tunnel is formed through the cartridge, extending from the inlet 50 to the aerosol outlet 60. A first section of the wind tunnel, beginning at the inlet 50 in the side wall of the housing portion 32, is defined by a gap 76 formed by a double-wall section 74 in the outer wall 64 of the housing portion 32 and extending from the inlet 50 past the plug 44 toward the interface end 54 of the cartridge. A second section of the wind tunnel is defined by a gap between the base of the plug 44 and the end cap 48. A third section of the wind tunnel is defined by a hole 106 through the plug 44. A fourth section of the wind tunnel is defined by the inner wall 104 of the plug and the area within the outlet tube around the vaporizer 40. This fourth section of the wind tunnel may be referred to as the aerosol region / aerosol-generation region and is the primary region where aerosol is generated during use. The wind tunnel from the inlet 50 to the aerosol-generation region may be referred to as the inlet section of the wind tunnel. A fifth section of the wind tunnel is formed by the remaining portion of the outlet tube 38. A sixth section of the wind tunnel is formed by an inner tube 62 of the outer housing that connects the wind tunnel to an aerosol outlet 60 located at the end of the mouthpiece 33. The wind tunnel from the aerosol-generation region to the aerosol outlet may be referred to as the aerosol outlet section of the wind tunnel.
[0053] Additionally, when the cartridge is assembled, a reservoir 31 of aerosolizable material is formed by the space outside the wind tunnel and inside the housing portion 32. The reservoir 31 may be filled during manufacturing, for example, through a fill hole that is later sealed, or by other means. The specific nature of the aerosolizable material, e.g., with respect to composition, is not critical to the principles described herein, and generally, any conventional aerosolizable material of the type typically used in electronic cigarettes may be used. This disclosure may refer to a liquid as the aerosolizable material, which may be a conventional e-liquid, as previously described. However, the principles of this disclosure apply to any aerosolizable material, which may include a liquid, gel, or solid, having the ability to flow; in the case of a solid, a plurality of solid particles may be considered to have the ability to flow when considered in large quantities.
[0054] The reservoir is closed at the interface end of the cartridge by plug 44. The reservoir includes a first region above septum 130 and a second region below septum 130 in the space formed between the wind tunnel and the outer wall of the plug. An aerosolizable material transport element (capillary wick) 42 passes through an opening in the wall of the wind tunnel formed by interlocking semicircular recesses 108, 90 in plug 44 and outlet tube 38 and cradle sections 112, 136 in plug 44 and septum element 36, as described above. Thus, the end of the aerosolizable material transport element extends into the second region of the reservoir, and the end of the aerosolizable material transport element removes aerosolizable material from the second region of the reservoir through the opening in the wind tunnel to vaporizer 40 for subsequent vaporization.
[0055] In normal use, cartridge 2 is coupled to aerosol delivery device 4, which is activated to provide power to the cartridge via contact electrode 46 in end cap 48. Power then travels through connecting conductor 41 to vaporizer 40. Electrically heating the vaporizer causes a portion of the aerosolizable material to vaporize from the aerosolizable material transport element near the vaporizer, thereby generating an aerosol in the aerosol-generating region of the airpath. The vaporized aerosolizable material from the aerosolizable material transport element is replaced by additional aerosolizable material drawn from the reservoir by capillary action. While the vaporizer is activated, the user inhales on mouth end 52 of the cartridge. This causes air to be drawn through whichever aerosol delivery device inlet 14 is aligned with inlet 50 of the cartridge (this alignment depends on the orientation of the cartridge inserted into receptacle 8 of the aerosol delivery device). Air then enters the cartridge through the inlet 50, passes along the gap 76 in the double-walled section 74 of the housing portion 32, passes between the plug 44 and the end cap 48, and then through the hole 106 in the base 100 of the plug 44 into the aerosol-generation region surrounding the vaporizer 40. The incoming air mixes with the aerosol generated from the vaporizer to generate a concentrated aerosol that is then removed along the outlet tube 38 and the interior 62 of the housing portion before exiting through the mouthpiece outlet / aerosol outlet 60 for inhalation by the user.
[0056] From Figures 1-6B above, the structure of possible embodiments of an aerosol delivery system 1 configured to generate an aerosol suitable for use in the context of the present disclosure (possibly along with other forms of aerosol delivery system) can be understood.
[0057] 7-8B, the present disclosure also provides a motion detection system 300 comprising an aerosol delivery system for generating an aerosol (which may be based, for example, on aerosol delivery system 1 as shown in FIGS. 1-6B, although clearly other forms of aerosol delivery system may be used as long as they are capable of generating an aerosol). The motion detection system, according to some embodiments, also comprises a motion detector 200 for generating motion data and a controller, such as (but not necessarily limited to) control circuitry / controller 18 as described above.
[0058] Thus, in such an embodiment in which a motion detector 200 is employed, the controller 18 may be configured to receive motion data from the motion detector 200 and, in response to the motion data meeting, i.e., being determined (in some embodiments, by the controller 18, etc.) to satisfy, a first predetermined criterion, generate an output signal to affect the operation of the aerosol delivery system 1.
[0059] Thus, at a general level, as described, the introduction of a motion detector 200 may be used to influence the operation of the aerosol delivery system 1 based on motion data associated with the aerosol delivery system 1 and / or its environment.
[0060] To further indicate this operation, according to some embodiments, the output signal may include a signal to disable the aerosol delivery system 1 and / or one or more component(s) or portion(s) of the aerosol delivery system, such as the aerosol generator 40 or user input buttons 20 of the aerosol delivery system 1. According to such embodiments, these embodiments find particular application in instances where the aerosol delivery system 1 (or an associated user) is subjected to an adverse event, such as excessive speed or acceleration / deceleration, which may therefore indicate the aerosol delivery system being damaged as a result of the adverse event (e.g., damage as part of a fall from a height or collision and / or damage from being moved at an excessively fast speed). Thus, in these embodiments, the predetermined criteria are set to provide some indication of the movement of the aerosol delivery system, in particular whether the movement of the aerosol delivery system is indicative of a fall or particularly severe acceleration / deceleration of the aerosol delivery system.
[0061] Therefore, understanding the above, it will be understood that when the output signal includes a signal for disabling all or part of the aerosol delivery system 1, in accordance with some embodiments of the aerosol delivery system 1, the output signal may include a signal for disabling the aerosol delivery system 1 (or part(s) of the aerosol delivery system 1) for a predetermined period of time (e.g., for a period of time long enough after which the user can have the aerosol delivery system 1 repaired), for example to better prevent use of the aerosol delivery system 1 when the aerosol delivery system 1 is in a damaged state, and / or may be configured to permanently disable the aerosol delivery system 1 (or part(s) of the aerosol delivery system 1).
[0062] With the above in mind, it will be appreciated that the motion data may include any suitable data that may enable controller 18 to determine whether the first predetermined criterion has been adequately met. In this regard, therefore, according to some embodiments, the motion data may possibly include acceleration data and / or velocity data.
[0063] Any such motion data may obviously be generated using a suitable motion detector 200. For example, according to some embodiments, the motion detector 200 of the motion detection system 300 may include at least one of an accelerometer, a gyroscope, or a magnetometer, or any other form of motion detector capable of outputting relevant motion data such as velocity data and / or acceleration data.
[0064] Regarding the location of any provided motion detector(s) 200, according to some embodiments, such as those shown in Figures 7 and 8A-8B, motion detector 200 may be located in aerosol delivery system 1, or within aerosol delivery system 1, such as in cartridge 2 or aerosol delivery device 4 (if such a cartridge 2 / aerosol delivery device 4 arrangement is employed). However, it is clear that according to some embodiments, motion detector 200 may be located in electrical device 250 operable to communicate wirelessly with aerosol delivery system 1, for example, via wireless connection protocol 270.
[0065] With regard to what such electrical device 250 may be, it is anticipated that electrical device 250 may include any form of electrical device 250 capable of operatively communicating with aerosol delivery system 1, such as (certainly not limited to) any of the portable devices, such as a tablet computer, a smartphone, a portable computer, etc., that may be carried by a user of aerosol delivery system 1. It will be understood that electrical device 250 may be operable to communicate with aerosol delivery system 1, as appropriate, wirelessly, such as via wireless connection protocol 270. Thus, in this case, clearly electrical device 250 may include wireless transmitter / receiver / transceiver 252 as appropriate to facilitate any such wireless communication with aerosol delivery system 1 (which may in turn include wireless transmitter / receiver / transceiver 97 in communication with controller 18).
[0066] With the above in mind, as alluded to above, a first possible application of the motion detector 200 is one in which the motion data includes acceleration data and the first predetermined criterion includes the acceleration data indicating an acceleration or deceleration value having a magnitude exceeding a predetermined amount. In this specification, magnitude is intended to mean the size of the acceleration / deceleration value, regardless of sign. For example, 5 m / s 2 The acceleration value is 5m / s 2 and / or -7 m / s 2 The deceleration value is 7m / s 2 It has a size of
[0067] Thus, in accordance with such an embodiment, for an embodiment intended to indicate an adverse event, the magnitude is 40 m / s 2 , 50 m / s 2 , 60 m / s 2 , 70 m / s 2 , 80 m / s 2 , 90 m / s 2 , 100 m / s 2 , 120 m / s 2, 150 m / s 2 , 180 m / s 2 , 200 m / s 2 , 250 m / s 2 , 300 m / s 2 , 400 m / s 2 , or 500 m / s 2 It may include any of the following.
[0068] Similarly, for embodiments intended to indicate and respond to an adverse event and in which the movement data includes velocity data, the first predetermined criterion may include the velocity data exhibiting a velocity value exceeding a predetermined velocity. According to some particular embodiments, the predetermined velocity may include any of 30 m / s, 40 m / s, 50 m / s, 60 m / s, or 70 m / s (e.g., velocities indicating that the aerosol delivery system 1 may have been dropped from a height).
[0069] Another potential application of motion detector 200 is to enable motion detection system 300 (or aerosol delivery system 1) to affect the operation of aerosol delivery system 1 based on how a user is using aerosol delivery system 1. For example, in this regard, in cases where a user may be operating aerosol delivery system 1 while in a fixed position, such as sitting in a chair, this operation may result in aerosol delivery system 1 being operated in a first manner, e.g., as part of a first operating mode. In contrast, in cases where a user may be operating aerosol delivery system 1 in a different manner, e.g., while exercising or while moving aerosol delivery system 1 more vigorously or while moving themselves more vigorously, which may indicate that the user is exercising and / or under stress, this operation may result in aerosol delivery system 1 being operated in a second manner, e.g., as part of a second operating mode. Also, notably, motion data according to some embodiments may indicate that the aerosol delivery system is located in a particular form of transportation, such as a car, bus, train, or some other motor vehicle.
[0070] Thus, with the above in mind, according to some embodiments, the aerosol delivery system 1 may be configured to operate in a first mode of operation and a second mode of operation different from the first mode of operation. In this manner, the output signal may include a signal to change operation of the aerosol delivery system 1 from one of the first mode of operation and the second mode of operation to the other of the first mode of operation and the second mode of operation.
[0071] In addition to or instead of such a change in the operating mode of the aerosol delivery system from which the output signal is generated, this output signal may, according to some embodiments, obviously include a signal to vary the power supplied to the aerosol generator, for example a signal to vary the magnitude of the power supplied to the aerosol generator and / or a signal to vary the duration of the power supplied to the aerosol generator.
[0072] For example, in this way, to the extent that a user may be operating the aerosol delivery system 1 in an active manner that may indicate that the user is under stress or exercising, this operation may be perceived by the combination of the motion detector 200 and the controller 18 to enable the motion detection system 300 or the aerosol delivery system 1 to cause a change in the operation of the aerosol delivery system 1 to better optimize use in these more active conditions (e.g., by changing the operation of the aerosol delivery system 1 from a first operating mode to a second operating mode and / or by increasing the power supplied to the aerosol generator 40 to generate more aerosolized aerosol-generating material to calm the user, etc.).
[0073] In conjunction with the above embodiments, according to some additional / alternative embodiments, any output signal may be further conditioned on a second predetermined criterion being met, which may allow the controller 18 to have more control over when an output signal is generated.
[0074] With respect to what such second predetermined criteria may be, it will be understood that the second predetermined criteria may take a wide variety of forms. For example, according to some embodiments, controller 18 may be further configured to receive usage data related to use of aerosol delivery system 1 and may be further configured to generate an output signal in response to both the movement data meeting the first predetermined criteria and the usage data also meeting the second predetermined criteria. In this manner, the output signal may be generated only if both these first and second predetermined criteria are met.
[0075] Obviously, any such usage data may include any suitable data relating to the use of aerosol delivery system 1. For example, in some embodiments, the usage data may include data indicating whether aerosol generator 40 is being operated and / or whether user input button 20 has been pressed, so long as the second predetermined criterion is that the aerosol delivery system is currently being operated to generate aerosol 1. Obviously, in such embodiments, the usage data may include data indicating whether a power source (e.g., battery 16) of the aerosol delivery system is providing power to aerosol generator 40.
[0076] Thus, provision of such an additional second predetermined criterion may facilitate generation of an output signal only when the aerosol delivery system (e.g., aerosol generator 40) is actually being operated to generate aerosol, as opposed to when the aerosol delivery system 1 is not being operated, for example. This additional second predetermined criterion, at least in some embodiments, can thus help prevent unnecessarily generating an output signal when the aerosol delivery system is not being operated to generate aerosol, and can also help conserve power in any power source provided by the aerosol delivery system.
[0077] Thus, with the above in mind, it can be appreciated that the above disclosure may generally provide a method for affecting operation of an aerosol delivery system 1 configured to generate an aerosol in a motion detection system 300. Such a method may include generating motion data from a motion detector 200 of the motion detection system, receiving the motion data from the motion detector 200 at a controller 18 of the motion detection system, determining whether the motion data meets first predetermined criteria (the predetermined criteria representing a motion status of the aerosol delivery system), and generating an output signal to affect operation of the aerosol delivery system 1 in response to the controller 18 determining that the motion data meets the first predetermined criteria.
[0078] It will be understood that, along with such a method, the method may further include any of the features or functions described herein in connection with the exchange of information between the motion detector 200 and the controller 18. For example, as alluded to above, according to certain embodiments of the method, the method may further include receiving, at the controller 18, usage data related to use of the aerosol delivery system 1 and determining whether the usage data meets a second predetermined criterion. Thus, if an output signal is configured to be generated, this generation may be in response to the controller 18 determining that the motion data meets the first predetermined criterion and that the usage data also meets the second predetermined criterion. According to some embodiments, as mentioned above, possible applications of the second predetermined criterion include being used to help prevent any generation of an unwanted output signal when the aerosol delivery system 1 is not being operated to generate aerosol (e.g., via the aerosol generator 40). Thus, according to some embodiments, the second predetermined criterion may be that the aerosol delivery system 1 is currently being operated to generate aerosol.
[0079] Thus, in conjunction with the above method, insofar as any output signal may ultimately be generated in response to the relevant predetermined criteria(s) being met, the method may then obviously include a final step of affecting the operation of the aerosol delivery system 1 in response to the output signal being generated.
[0080] For example, such an influence on the operation of the aerosol delivery device 1 can be an influence of the aerosol delivery system 1 on the aerosol generator 40, for example, to affect the amount of power supplied to the aerosol generator 40. Similarly, according to some embodiments, affecting the operation of the aerosol delivery system 1 can obviously include changing (e.g., in some narrower embodiments, increasing or decreasing) the amount of aerosol generated by the aerosol delivery system 1 and / or changing (e.g., in some narrower embodiments, increasing or decreasing) the rate at which aerosol is generated (from the aerosol-generating material) from the aerosol delivery system 1.
[0081] Therefore, with the above techniques in mind, it may be understood that these techniques may be used to more generally provide a gesture-controlled aerosol delivery system 1, the operation of which may be controlled by a user based on the user performing a particular gesture or action, which can then be identified / acted upon using a combination of the motion detector 200 and the controller 18.
[0082] A particular application of this gesture control system 1, as can be best understood with reference to the disclosure from FIGS. 8A-8B, may be for the gesture control system 1 to vary the rate at which aerosol is generated from the aerosol delivery system 1 in proportion to how vigorously a user moves / accelerates / pulls the aerosol delivery system during use. For example, with reference to FIG. 8A in this regard, FIG. 8A discloses a user accelerating the aerosol delivery system 1 with a first acceleration value A1. In contrast, FIG. 8B discloses a user accelerating the aerosol delivery system 1 with a second acceleration value A2 that is greater than the first acceleration value A1 (i.e., more vigorously than in FIG. 8A). Thus, the application of the aerosol delivery system of FIG. 8B may correspond to when the user is more stressed, excited, or possibly exercising. Thus, in the situation of FIG. 8B, the user may typically desire more aerosolized aerosol-generating material than in a more sedentary / calm situation, such as the situation of FIG. 8A.
[0083] As such, it is also contemplated by the present disclosure to provide an aerosol delivery system for generating an aerosol from an aerosol-generating material, where the system may include a motion detector 200 for generating acceleration data, and a controller 18. Accordingly, the controller 18 may be configured to receive the acceleration data from the motion detector, determine an acceleration value from the acceleration data, and vary the rate at which aerosol is generated from the aerosol delivery system in proportion to the magnitude of the acceleration value.
[0084] In this way, depending on how vigorously the user operates the aerosol delivery system, the aerosol delivery system may then automatically react and vary the rate at which aerosol is produced from the aerosol delivery system 1.
[0085] As alluded to above, according to some embodiments, such as those associated with the embodiments of Figures 8A and 8B, the controller 18 may be configured to increase the rate at which aerosol is generated from the aerosol delivery system as the magnitude of the acceleration value increases.
[0086] Similarly, in accordance with some additional / alternative embodiments, in order to provide more predictable changes in the rate at which aerosol is generated from the aerosol delivery system 1, the controller 18 may be configured to vary the rate at which aerosol is generated from the aerosol delivery system 1 in direct proportion (or linear proportion) to the magnitude of the acceleration value.
[0087] Thus, in conjunction with the above embodiments, it will be appreciated that in some embodiments, aerosol delivery system 1 may optionally include motion detector 200 and / or another component of motion detection system 300. Thus, in certain embodiments, a gesture-controlled aerosol delivery system 1 may be provided herein, as opposed to a broader motion detection system that may otherwise comprise some form of aerosol delivery system 1.
[0088] With this in mind, there may be provided herein a gesture-controlled aerosol delivery system 1 including an aerosol generator 40 for generating an aerosol from an aerosol-generating material, the aerosol delivery system 1 being configured to aerosolize the aerosol-generating material using the aerosol generator 40 at a rate that increases with increasing acceleration of the aerosol delivery system 1 (e.g., as shown in the embodiment of Figures 8A and 8B).
[0089] Thus, in light of the foregoing, there has been described, accordingly, a motion detection system comprising an aerosol delivery system for generating an aerosol, a motion detector for generating motion data, and a controller, wherein the controller: receiving motion data from a motion detector; determining whether the motion data meets a first predetermined criterion, the predetermined criterion representing a motion condition of the aerosol delivery system; and generating an output signal in response to the movement data meeting a first predetermined criterion to affect operation of the aerosol delivery system.
[0090] Also described is a method for affecting operation of an aerosol delivery system configured to generate an aerosol in a motion detection system, the method comprising: generating motion data from a motion detector of a motion detection system; receiving, at a controller of the motion detection system, motion data from the motion detector; determining whether the motion data meets a first predetermined criterion, the predetermined criterion representing a motion condition of the aerosol delivery system; The controller generates an output signal to affect operation of the aerosol delivery system in response to determining that the movement data meets the first predetermined criterion.
[0091] An aerosol delivery system is also described, the aerosol delivery system comprising: an aerosol generator for generating an aerosol from the aerosol-generating material; a motion detector for generating acceleration data; and a controller, the controller comprising: receiving acceleration data from the motion detector; determining an acceleration value from the acceleration data; The acceleration value is configured to vary the rate at which aerosol is generated from the aerosol delivery system in proportion to the magnitude of the acceleration value.
[0092] A gesture-controlled aerosol delivery system is also described that includes an aerosol generator for generating an aerosol from an aerosol-generating material, the aerosol delivery system configured to vaporize the aerosol-generating material using the aerosol generator at a rate that increases with increasing acceleration of the aerosol delivery system.
[0093] A method of controlling aerosol generation using an aerosol generator of an aerosol delivery system is also described, the method comprising: receiving, at a controller, acceleration data from the motion detector; determining an acceleration value from the acceleration data using a controller; and varying the rate at which aerosol is generated from the aerosol delivery system in proportion to the magnitude of the acceleration value.
[0094] Also described are embodiments as presented in the following numbered paragraphs:
[0095] Section 1 an aerosol generator for generating an aerosol from the aerosol-generating material; a motion detector for generating acceleration data; and a controller, the controller comprising: receiving acceleration data from the motion detector; determining an acceleration value from the acceleration data; The aerosol delivery system is configured to vary the rate at which aerosol is generated from the aerosol delivery system in proportion to the magnitude of the acceleration value.
[0096] Section 2 10. The aerosol delivery system of claim 1, wherein the controller is configured to vary the velocity in direct proportion to the magnitude of the acceleration value.
[0097] Section 3 3. The aerosol delivery system of claim 1 or 2, wherein the controller is configured to increase the velocity as the magnitude of the acceleration value increases.
[0098] Section 4 4. The aerosol delivery system according to any one of claims 1 to 3, comprising an aerosol delivery device equipped with a motion detector.
[0099] Section 5 5. The aerosol delivery system of any one of paragraphs 1 to 4, further comprising a cartridge and an aerosol delivery device configured to receive the cartridge.
[0100] Section 6 Item 6. The aerosol delivery system of paragraph 5, wherein the aerosol delivery device comprises a motion detector.
[0101] Section 7 7. The aerosol delivery system of any one of claims 1 to 6, wherein the motion detector comprises at least one of an accelerometer, a gyroscope, or a magnetic force detector.
[0102] Section 8 A gesture-controlled aerosol delivery system including an aerosol generator for generating an aerosol from an aerosol-generating material, the aerosol delivery system configured to vaporize the aerosol-generating material using the aerosol generator at a rate that increases with increasing acceleration of the aerosol delivery system.
[0103] Section 9 1. A method of controlling aerosol generation using an aerosol generator of an aerosol delivery system, comprising: receiving, at a controller, acceleration data from the motion detector; determining an acceleration value from the acceleration data using a controller; and varying the rate at which aerosol is generated from the aerosol delivery system in proportion to the magnitude of the acceleration value.
[0104] Section 10 10. The method of clause 9, wherein the method includes varying the velocity in direct proportion to the magnitude of the acceleration value.
[0105] Section 11 11. The method of claim 9 or 10, wherein the method includes increasing the velocity as the magnitude of the acceleration value increases.
[0106] Also described is a motion detection system 300 comprising the aerosol delivery system 1 for generating an aerosol. The motion detection system also includes a motion detector 200 for generating motion data, and a controller 18. The controller 18 is configured to receive the motion data from the motion detector 200 and, in response to the motion data satisfying a first predetermined criterion, generate an output signal to affect operation of the aerosol delivery system. The predetermined criterion can be when acceleration perceived by the motion detector 200 is too high or exceeds a certain threshold. After the predetermined criterion is met, operation of the aerosol delivery system may be altered, such as changing from one operating mode to another.
[0107] To address various problems and advance the art, this disclosure illustrates, by way of example, various embodiments in which the claimed invention may be practiced. The advantages and features of this disclosure are merely a representative sample of embodiments and are not intended to be exhaustive and / or exclusive. The advantages and features of this disclosure are presented merely to aid in understanding and to teach the claimed invention. It is to be understood that the advantages, embodiments, examples, functions, features, structures, and / or other aspects of this disclosure are not to be considered limitations on the disclosure as defined by the claims or limitations on the equivalents of the claims, and that other embodiments may be utilized and changes may be made without departing from the scope of the disclosure. 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 those specifically described herein, and thus it will be understood that 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. The present disclosure may include other inventions not currently claimed but which may be claimed in the future.
[0108] For example, with regard to how any provided motion detector(s) 200 (if any) may be powered, it will be understood that each motion detector may be powered using power supply 16 (as shown in the embodiment of FIG. 7) or may each be powered using the motion detector's own power supply (not shown).
[0109] Similarly, with regard to the placement of any such motion detector(s) 200, it will be understood that the location of the motion detector 200 may be installed in any location in the motion detection system 300 that may be required to enable the location of the motion detector 200 to provide the required functionality. This may even include a location where the motion detector 200 is not actually located in the aerosol delivery system 1 (e.g., in a separate electrical device 250 that may be attached to the user, such as a strap or some other patch or device that may be secured to the user (e.g., removably, if required, by an adhesive patch)).
[0110] Similarly, where the aerosol delivery system 1 comprises a cartridge 2 and an aerosol delivery device 4, the optional provided motion detector(s) 200 may be located in the cartridge 2 or the aerosol delivery device 4, as necessary, to enable the required functionality of the motion detector.
[0111] Also, for the sake of completeness, it will be understood that with respect to any motion detector(s) 200, any power or signal transmitted may be provided using a wired or wireless connection between control circuitry 18 and motion detector 200. In the particular embodiment shown in Figure 7, for example, a wired connection is provided between motion detector 200 and control circuitry 18, which extends via interface end 54 through contact electrodes 46 located on each of aerosol delivery device 4 and cartridge 2 when motion detector 200 is located on cartridge 2.
Claims
1. 1. A motion detection system comprising: an aerosol delivery system for generating an aerosol; a motion detector for generating motion data; and a controller, the controller comprising: receiving the motion data from the motion detector; determining whether the motion data meets a first predetermined criterion, the predetermined criterion representing a state of the motion of the aerosol delivery system; receiving usage data relating to use of the aerosol delivery system; determining whether the usage data meets a second predetermined criterion, the second predetermined criterion being that the aerosol delivery system is currently operating to generate the aerosol; and A motion detection system configured to: i) generate an output signal to affect operation of the aerosol delivery system in response to the motion data satisfying the first predetermined criterion, and ii) the usage data also satisfying a second predetermined criterion.
2. The motion detection system of claim 1 , wherein the output signal includes a signal to disable the aerosol delivery system.
3. The motion detection system of claim 1 , wherein the output signal comprises a signal for varying a rate at which aerosol is generated from the aerosol delivery system.
4. 4. The motion detection system of claim 3, wherein the output signal comprises a signal that increases the rate at which aerosol is generated as the magnitude of acceleration increases.
5. 2. The motion detection system of claim 1, wherein the aerosol supply system includes an aerosol generator for generating the aerosol, and the output signal includes a signal for varying power supplied to the aerosol generator to vary an amount of aerosol-generating material aerosolized.
6. 2. The motion detection system of claim 1, wherein the aerosol supply system comprises an aerosol generator for generating the aerosol, and the output signal includes a signal for varying the duration of power supplied to the aerosol generator.
7. The motion detection system of claim 1 , wherein the motion data includes acceleration data.
8. 8. The motion detection system of claim 7, wherein the first predetermined criterion includes the acceleration data exhibiting an acceleration or deceleration value having a magnitude exceeding a predetermined amount.
9. The magnitude is 50 m / s 2 The motion detection system of claim 8 , comprising:
10. 2. The motion detection system of claim 1, wherein the aerosol delivery system comprises an aerosol generator for generating the aerosol, and the second predetermined criterion that the aerosol delivery system is currently operating to generate the aerosol includes a power source currently supplying power to the aerosol generator.
11. the aerosol delivery system is configured to operate in a first mode of operation and a second mode of operation different from the first mode; 2. The motion detection system of claim 1, wherein the output signal includes a signal for changing the operation of the aerosol delivery system from one of the first mode and the second mode to another of the first mode and the second mode.
12. The motion detection system of claim 11 , wherein the second mode includes supplying more power to the aerosol generator of the aerosol delivery system than is supplied to the aerosol generator of the aerosol delivery system in the first mode.
13. 12. The motion detection system of claim 11, wherein the second mode includes supplying power to the aerosol generator of the aerosol supply system for a duration longer than the duration of power supplied to the aerosol generator of the aerosol supply system in the first mode.
14. 12. The motion detection system of claim 11, wherein the second mode includes generating aerosol from the aerosol delivery system at a rate different from the rate at which aerosol is generated from the aerosol delivery system in the first mode.
15. The motion detection system of claim 1 , wherein the aerosol delivery system further comprises a cartridge and an aerosol delivery device configured to receive the cartridge.
16. The motion detection system of claim 15 , wherein the aerosol delivery device comprises the motion detector.
17. 1. A method for influencing operation of an aerosol delivery system configured to generate an aerosol in a motion detection system, comprising: generating motion data from a motion detector of the motion detection system; receiving, at a controller of the motion detection system, the motion data from the motion detector; determining whether the motion data meets a first predetermined criterion, the predetermined criterion representing a motion condition of the aerosol delivery system; receiving, at the controller, usage data relating to use of the aerosol delivery system; determining whether the usage data meets a second predetermined criterion, the second predetermined criterion being that the aerosol delivery system is currently operating to generate the aerosol; and The method includes the step of the controller generating an output signal to affect operation of the aerosol delivery system in response to determining: i) that the movement data meets the first predetermined criterion; and ii) that the usage data also meets the second predetermined criterion.
18. The method comprises:
18. The method of claim 17, further comprising the step of affecting the operation of the aerosol delivery system in response to the output signal being generated.
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