The subject matter described herein relates to vaporizer devices and cartridges for use with vaporizer devices, including cartridges and vaporizer devices having a bifunctional wick-heater assembly including a porous metal substrate.
Vaporizer devices, which can also be referred to as vaporizers, electronic vaporizer devices, or e-vaporizer devices, can be used for delivery of an aerosol (e.g., vapor-phase and/or condensed-phase material suspended in a stationary or moving mass of air or some other gas carrier) containing one or more active ingredients by inhalation of the aerosol by a user of the vaporizing device. For example, electronic nicotine delivery systems (ENDS) include a class of vaporizer devices that are battery powered and that may be used to simulate the experience of smoking, but without burning of tobacco or other substances. Vaporizers are gaining increasing popularity both for prescriptive medical use, in delivering medicaments, and for consumption of tobacco, nicotine, and other plant-based materials. Vaporizer devices may be portable, self-contained, and/or convenient for use.
In use of a vaporizer device, the user inhales an aerosol, colloquially referred to as “vapor,” which may be generated by a heating element that vaporizes (e.g., causes a liquid or solid to at least partially transition to the gas phase) a vaporizable material, which may be liquid, a solution, a solid, a paste, a wax, and/or any other form compatible for use with a specific vaporizer device. The vaporizable material used with a vaporizer can be provided within a cartridge (e.g., a separable part of the vaporizer device that contains vaporizable material) that includes an outlet (e.g., a mouthpiece) for inhalation of the aerosol by a user.
To receive the inhalable aerosol generated by a vaporizer device, a user may, in certain examples, activate the vaporizer device by taking a puff, by pressing a button, and/or by some other approach. A puff as used herein can refer to inhalation by the user in a manner that causes a volume of air to be drawn into the vaporizer device such that the inhalable aerosol is generated by a combination of vaporized vaporizable material with the volume of air.
An approach by which a vaporizer device generates an inhalable aerosol from a vaporizable material involves heating the vaporizable material in a vaporization chamber (e.g., a heater chamber) to cause the vaporizable material to be converted to the gas (or vapor) phase. A vaporization chamber can refer to an area or volume in the vaporizer device within which a heat source (e.g., conductive, convective, and/or radiative) causes heating of a vaporizable material to produce a mixture of air and vaporized material to form a vapor for inhalation of the vaporizable material by a user of the vaporization device.
In some implementations, the vaporizable material can be drawn out of a reservoir and into the vaporization chamber via a wicking element (e.g., a wick). Drawing of the vaporizable material into the vaporization chamber may be at least partially due to capillary action provided by the wick as the wick pulls the vaporizable material along the wick in the direction of the vaporization chamber.
Vaporizer devices can be controlled by one or more controllers, electronic circuits (e.g., sensors, heating elements), and/or the like on the vaporizer. Vaporizer devices may also wirelessly communicate with an external controller (e.g., a computing device such as a smartphone).
In certain aspects of the current subject matter, challenges associated with heating and/or wicking of vaporizable material may be addressed by inclusion of one or more of the features described herein or comparable/equivalent approaches as would be understood by one of ordinary skill in the art. Aspects of the current subject matter relate to bifunctional wick-heater assemblies including a porous metal substrate for use in a vaporizer device or a cartridge for use in a vaporizer device.
In an aspect, a cartridge for a vaporizer device is provided. The cartridge includes a reservoir configured to contain a vaporizable material and an atomizer configured to vaporize the vaporizable material. The atomizer includes a porous metal substrate configured to draw the vaporizable material from the reservoir. The porous metal substrate is further configured to receive an electrical current to vaporize the vaporizable material.
In an interrelated aspect, the device is provided. The device includes a receptacle configured to receive the cartridge as described and illustrated herein.
In another interrelated aspect, a system is provided. The system includes the device having the receptacle configured to receive a cartridge as described and illustrated herein.
In another aspect, a vaporizer device configured to couple a cartridge is provided. The cartridge includes a reservoir configured to contain a vaporizable material. The vaporizer device includes an atomizer positioned within the vaporizer device and configured to vaporize the vaporizable material. The atomizer includes a porous metal substrate configured to draw the vaporizable material from the reservoir. The porous metal substrate is further configured to receive an electrical current to vaporize the vaporizable material.
In yet another aspect, a vaporizer device including a reservoir is provided. The reservoir is configured to contain a vaporizable material. The vaporizer device includes an atomizer positioned within the vaporizer device and configured to vaporize the vaporizable material. The atomizer includes a porous metal substrate configured to draw the vaporizable material from the reservoir. The porous metal substrate is further configured to receive an electrical current to vaporize the vaporizable material.
In some variations, one or more of the following features may optionally be included in any feasible combination.
In embodiments, the cartridge further includes a condensation chamber in fluid communication with the atomizer and configured to generate an aerosol from the vaporizable material. In embodiments, the cartridge further includes a mouthpiece configured to deliver the aerosol to a user.
In embodiments, the cartridge further includes a first bus bar and a second bus bar. The first bus bar is disposed at a first end of the porous metal substrate and the second bus bar is disposed as a second end of the porous metal substrate. In embodiments, the first bus bar includes a first cartridge contact and the second bus bar includes a second cartridge contact. In embodiments, the porous metal substrate includes an air channel disposed therethrough to provide air to the condensation chamber.
In embodiments, the cartridge includes an air channel disposed proximate to the porous metal substrate. In embodiments, the cartridge further includes a first air inlet in fluid communication with the atomizer. The first air inlet is configured to deliver air to the atomizer. In embodiments, the cartridge further includes a second air inlet in fluid communication with the atomizer. The second air inlet is configured to deliver air to the atomizer. In embodiments, the cartridge further includes a cannula in fluid communication with the atomizer and the condensation chamber to deliver the vaporizable material from the atomizer to the condensation chamber.
In embodiments, the porous metal substrate includes aluminum, titanium, or alloys thereof. In embodiments, the porous metal substrate includes an alloy including iron, chromium, and aluminum. In embodiments, the porous metal substrate is a metal foam. In embodiments, the porous metal substrate includes a plurality of fluid channels is configured to provide fluid flow of the vaporizable material. In embodiments, the porous metal substrate has an average pore size diameter from about 5 microns to about 50 microns. In embodiments, the porous metal substrate has an average pore size diameter from about 10 microns to about 40 microns. In embodiments, the porous metal substrate has an average pore size diameter from about 10 microns to about 30 microns. In embodiments, the porous metal substrate has an average pore size diameter from about 10 microns to about 20 microns. In embodiments, the porous metal substrate includes a surface treatment.
In embodiments, the cartridge further includes vaporizable material. In embodiments, the vaporizable material includes a nicotine formulation. In embodiments, the vaporizable material includes a humectant including propylene glycol, vegetable glycerin, or combinations thereof. In embodiments, the vaporizable material includes a nicotine salt formulation.
The details of one or more variations of the subject matter described herein are set forth in the accompanying drawings and the description below. Other features and advantages of the subject matter described herein will be apparent from the description and drawings, and from the claims. The claims that follow this disclosure are intended to define the scope of the protected subject matter.
The accompanying drawings, which are incorporated into and constitute a part of this specification, show certain aspects of the subject matter disclosed herein and, together with the description, help explain some of the principles associated with the disclosed implementations. In the drawings:
When practical, similar reference numbers denote similar structures, features, or elements.
Implementations of the current subject matter include methods, apparatuses, articles of manufacture, and systems relating to vaporization of one or more materials for inhalation by a user. Example implementations include vaporizer devices and systems including vaporizer devices. The term “vaporizer device” as used in the following description and claims refers to any of a self-contained apparatus, an apparatus that includes two or more separable parts (e.g., a vaporizer body that includes a battery and other hardware, and a cartridge that includes a vaporizable material), and/or the like. A “vaporizer system,” as used herein, may include one or more components, such as a vaporizer device. Examples of vaporizer devices consistent with implementations of the current subject matter include electronic vaporizers, electronic nicotine delivery systems (ENDS), and/or the like. In general, such vaporizer devices are hand-held devices that heat (e.g., by convection, conduction, radiation, and/or some combination thereof) a vaporizable material to provide an inhalable dose of the material.
The vaporizable material used with a vaporizer device may be provided within a cartridge (e.g., a part of the vaporizer that contains the vaporizable material in a reservoir or other container) which may be refillable when empty, or disposable such that a new cartridge containing additional vaporizable material of a same or different type can be used. A vaporizer device may be a cartridge-using vaporizer device, a cartridge-less vaporizer device, or a multi-use vaporizer device capable of use with or without a cartridge. For example, a vaporizer device may include a heating chamber (e.g., an oven or other region in which material is heated by a heating element) configured to receive a vaporizable material directly into the heating chamber, and/or a reservoir or the like for containing the vaporizable material. A liquid vaporizable material may likewise be capable of being completely vaporized, or may include some portion of the liquid material that remains after all of the material suitable for inhalation has been vaporized.
Described herein are various cartridge embodiments that are time and resource efficient to manufacture and package, as well as result in minimal harm to the environment (e.g., reduce or eliminate plastics and packaging waste). For example, some cartridge embodiments described herein include a porous material, such as a metal (e.g., porous metal such as Titanium or Aluminum), that is saturated with a vaporizable material. The porous metal substrate can include a plurality of fluid channels having a capillary pressure that can assist with controlling fluid flow of the vaporizable material. For example, the capillary pressure can cause the vaporizable material to travel into the porous metal substrate (e.g., during filling and/or manufacturing of the cartridge). Additionally, the capillary pressure provided by the porous metal substrate can cause the vaporizable material to remain contained within the porous metal substrate, as well as allow the vaporizable material to exit the cartridge (e.g., for vaporization and inhalation by a user), as will be described in detail below. As such, the porous metal substrate can act as a reservoir for containing the vaporizable material, as well as act as a wick or fluid filling/dispensing mechanism. Cartridges including such porous metal substrate can thus include less parts and be more easily manufactured at least compared to cartridges including separate features for achieving vaporizable material containment (e.g., reservoir) and flow control (e.g., wick). By reducing parts and simplifying manufacturing, cost and waste associated with the cartridge can be reduced. Other benefits are within the scope of this disclosure.
Alternative embodiments of vaporizers for use with the cartridges including a porous metal substrate are also described herein. In some such embodiments, a vaporizer body optionally includes a receptacle for releasably coupling the cartridge. In other words, the cartridge includes a part that is inserted into a mating receptacle on a vaporizer device and that is held there via some form of coupling mechanism (e.g., friction, suction, magnetic attraction, a snap-fit connection, or the like, optionally including more than one such type of coupling). Other approaches to coupling a cartridge containing a metal substrate and a vaporizer body are also within the scope of the current subject matter. For example, a threaded connection may be used, as can an arrangement in which part of the cartridge is configured to have a part of the vaporizer body, or other coupling mechanisms.
Embodiments of the vaporizer device may also include a heating element that is configured to vaporize liquid vaporizable material dispensed from the cartridge to form an inhalable aerosol. In some embodiments, the heating element is configured to directly contact the porous metal substrate containing vaporizable material to thereby heat and/or vaporize the vaporizable material. In some embodiments, the heating element is configured to heat airflow prior to entering a vaporization chamber, which is in fluid communication with the porous metal substrate containing the vaporizable material, to thereby heat and/or vaporize the vaporizable material. Other features and configurations associated with the vaporizer device and cartridge are described in greater detail below.
Referring to the block diagram of
In general, vaporizer devices 100 for use with liquid vaporizable materials 102 (e.g., neat liquids, suspensions, solutions, mixtures, etc.) can include a bifunctional wick-heater assembly 141 in which a wicking portion conveys an amount of a liquid vaporizable material 102 to a part of the bifunctional wick-heater assembly 141 that includes a heating portion (not shown in
As used herein, the terms “wick,” “wicking element” and “wicking portion” include any form of a material capable of causing fluid motion via capillary pressure.
A heater, heating element, or heating portion of a bifunctional wick-heater assembly for use with at least some embodiments of the current subject matter may include one or more of a conductive heater, a radiative heater, and/or a convective heater. One type of heating element is a resistive heating element, which may comprise a material (e.g., a metal or alloy, for example a nickel-chromium alloy, or a non-metallic resistor) configured to dissipate electrical power in the form of heat when electrical current is passed through one or more resistive segments of the heating element. In some implementations of the current subject matter, a bifunctional wick-heater assembly 141 can include a heating portion which includes a resistive coil or other heating element wrapped around, positioned within, integrated into a bulk shape of, pressed into thermal contact with, or otherwise arranged to deliver heat to a wicking portion of the bifunctional wick-heater assembly, to cause a liquid vaporizable material 102 drawn from a reservoir 140 by the wicking portion to be vaporized for subsequent inhalation by a user in a gas and/or a condensed (e.g., aerosol particles or droplets) phase. Other wicking elements, heating elements, and/or atomizer assembly configurations are also possible. As noted elsewhere herein, in some implementations of the current subject matter, the porous metal substrate may also serve as the heating element such that current is passed through the porous metal substrate to result in heating based on the resistance of the porous metal substrate. The skilled person will also note that the heating and wicking features need not always both be provided by the porous metal substrate. For example, as noted above, the porous metal substrate may provide capillary drive to bring liquid vaporizable material form a reservoir or other liquid storage compartment to a heating zone while heat is provided convectively, radiatively, and/or conductively to the heating zone from a separate heating element or heater.
The bifunctional wick-heater assembly element may be activated in association with a user puffing (e.g., drawing, inhaling, etc.) on a mouthpiece 130 of the vaporizer device 100 to cause air to flow from an air inlet, along an airflow path that passes the bifunctional wick-heater assembly 141 (e.g., wicking element and heating element). Optionally, air may flow from an air inlet through one or more condensation areas or chambers, to an air outlet in the mouthpiece 130. Incoming air moving along the airflow path moves over or through the bifunctional wick-heater assembly 141, where gas-phase vaporizable material 102 is entrained into the air. In some embodiments, the heating element of the bifunctional wick-heater assembly may be activated via a controller 104, which may optionally be a part of a vaporizer body 110 as discussed herein, causing current to pass from the power source 112 through a circuit including the resistive heating element, which is optionally part of a vaporizer cartridge 120 as discussed herein. As noted herein, the entrained gas-phase vaporizable material 102 may condense as it passes through the remainder of the airflow path such that an inhalable dose of the vaporizable material 102 in an aerosol form can be delivered from the air outlet (e.g., of a mouthpiece 130) for inhalation by a user.
Activation of the heating element of the bifunctional wick-heater assembly may be caused by automatic detection of the puff based on one or more signals generated by one or more sensors 113. These sensors 113 and signals may include one or more of: a pressure sensor or sensors disposed to detect pressure along the airflow path relative to ambient pressure (or optionally to measure changes in absolute pressure), one or more motion sensors (e.g., an accelerometer) of the vaporizer device 100, one or more flow sensors of the vaporizer device 100, a capacitive lip sensor of the vaporizer device 100, detection of interaction of a user via one or more input devices 116 (e.g., buttons or other tactile control devices of the vaporizer device 100), receipt of signals from a computing device in communication with the vaporizer device 100, and/or via other approaches for determining that a puff is occurring or imminent.
As discussed herein, a vaporizer device 100 consistent with implementations of the current subject matter may be configured to connect (e.g., wirelessly or via a wired connection) to a computing device (or optionally two or more devices) in communication with the vaporizer device 100. To this end, the controller 104 may include communication hardware 105. The controller 104 may also include a memory 108. The communication hardware 105 can include firmware and/or can be controlled by software for executing one or more cryptographic protocols for the communication.
A computing device can be a component of a vaporizer system that also includes the vaporizer device 100, and can include its own hardware for communication, which can establish a wireless communication channel with the communication hardware 105 of the vaporizer device 100. For example, a computing device used as part of a vaporizer system may include a general-purpose computing device (e.g., a smartphone, a tablet, a personal computer, some other portable device such as a smartwatch, or the like) that executes software to produce a user interface for enabling a user to interact with a vaporizer device 100. In other implementations of the current subject matter, such a device used as part of a vaporizer system can be a dedicated piece of hardware such as a remote control or other wireless or wired device having one or more physical or soft (e.g., configurable on a screen or other display device and selectable via user interaction with a touch-sensitive screen or some other input device like a mouse, pointer, trackball, cursor buttons, or the like) interface controls. The vaporizer device 100 can also include one or more outputs 117 or devices for providing information to the user. For example, the outputs 117 can include one or more light emitting diodes (LEDs) configured to provide feedback to a user based on a status and/or mode of operation of the vaporizer device 100.
In the example in which a computing device provides signals related to activation of the resistive heating element, or in other examples of coupling of a computing device with a vaporizer device 100 for implementation of various control or other functions, the computing device executes one or more computer instruction sets to provide a user interface and underlying data handling. In one example, detection by the computing device of user interaction with one or more user interface elements can cause the computing device to signal the vaporizer device 100 to activate the heating element of the bifunctional wick-heater assembly to an operating temperature for creation of an inhalable dose of vapor/aerosol. Other functions of the vaporizer device 100 may be controlled by interaction of a user with a user interface on a computing device in communication with the vaporizer device 100.
The temperature of a resistive heating element of a vaporizer device 100 may depend on a number of factors, including an amount of electrical power delivered to the resistive heating element and/or a duty cycle at which the electrical power is delivered, conductive heat transfer to other parts of the electronic vaporizer device 100 and/or to the environment, latent heat losses due to vaporization of a vaporizable material 102 from the bifunctional wick-heater assembly 141 as a whole, and convective heat losses due to airflow (e.g., air moving across the heating element of the bifunctional wick-heater assembly 141 as a whole when a user inhales on the vaporizer device 100). As noted herein, to reliably activate the heating element of the bifunctional wick-heater assembly or heat the heating element of the bifunctional wick-heater assembly to a desired temperature, a vaporizer device 100 may, in some implementations of the current subject matter, make use of signals from a sensor 113 (e.g. a pressure sensor) to determine when a user is inhaling. The sensor 113 can be positioned in the airflow path and/or can be connected (e.g., by a passageway or other path) to an airflow path containing an inlet for air to enter the vaporizer device 100 and an outlet via which the user inhales the resulting vapor and/or aerosol such that the sensor 113 experiences changes (e.g. pressure changes) concurrently with air passing through the vaporizer device 100 from the air inlet to the air outlet. In some implementations of the current subject matter, the heating element may be activated in association with a user's puff, for example by automatic detection of the puff, or by the sensor 113 detecting a change (e.g. a pressure change) in the airflow path.
The sensor(s) 113 can be positioned on or coupled to (e.g., electrically or electronically connected, either physically or via a wireless connection) the controller 104 (e.g., a printed circuit board assembly or other type of circuit board). To take measurements accurately and maintain durability of the vaporizer device 100, it can be beneficial to provide a resilient seal 150 to separate an airflow path from other parts of the vaporizer device 100. The seal 150, which can be a gasket, may be configured to at least partially surround the sensor(s) 113 such that connections of the sensor(s) 113 to the internal circuitry of the vaporizer device 100 are separated from a part of the sensor(s) 113 exposed to the airflow path. In an example of a cartridge-based vaporizer, the seal 150 may also separate parts of one or more electrical connections between a vaporizer body 110 and a vaporizer cartridge 120. Such arrangements of a seal 150 in a vaporizer device 100 can be helpful in mitigating against potentially disruptive impacts on vaporizer components resulting from interactions with environmental factors such as water in the vapor or liquid phases, other fluids such as the vaporizable material 102, etc. and/or to reduce escape of air from the designated airflow path in the vaporizer device 100. Unwanted air, liquid or other fluid passing and/or contacting circuitry of the vaporizer device 100 can cause various unwanted effects, such as altered pressure readings, and/or can result in the buildup of unwanted material, such as moisture, excess vaporizable material 102, etc. in parts of the vaporizer where they may result in poor pressure signal, degradation of the sensor(s) or other components, and/or a shorter life of the vaporizer device 100. Leaks in the seal 150 can also result in a user inhaling air that has passed over parts of the vaporizer device 100 containing or constructed of materials that may not be desirable to be inhaled.
In some implementations, a vaporizer body 110 includes a controller 104, a power source 112 (e.g., battery), one more sensors 113, charging contacts, (e.g., for charging the power source 112), a seal 150, and optionally a cartridge receptacle 118 configured to receive a vaporizer cartridge 120 for coupling with the vaporizer body 110 through one or more of a variety of attachment structures (e.g., friction, suction, magnetic attraction, a snap-fit connection, or the like, optionally including more than one such type of coupling). Other approaches to coupling a cartridge containing a metal substrate and a vaporizer body are also within the scope of the current subject matter. For example, a threaded connection may be used, as can an arrangement in which part of the cartridge is configured to have a part of the vaporizer body, or other coupling mechanisms including a receptacle-less coupling mechanism. In some examples, the vaporizer cartridge 120 includes a reservoir 140 for containing a liquid vaporizable material 102, and a mouthpiece 130 having an aerosol outlet for delivering an inhalable dose to a user. The vaporizer cartridge 120 can include a bifunctional wick-heater assembly 141 having a wicking element and a heating element, or alternatively, the bifunctional wick-heater assembly 141 can be part of the vaporizer body 110. In implementations in which any part of the bifunctional wick-heater assembly 141 (e.g., heating element and/or wicking element) is part of the vaporizer body 110, the vaporizer device 100 can be configured to supply liquid vaporizable material 102 from a reservoir 140 in the vaporizer cartridge 120 to the part(s) of the bifunctional wick-heater assembly 141 included in the vaporizer body 110.
In vaporizer devices in which the power source 112 is part of a vaporizer body 110 and a heating element is disposed in a vaporizer cartridge 120 configured to couple with the vaporizer body 110, the vaporizer device 100 may include electrical connection features (e.g., means for completing a circuit) for completing a circuit that includes the controller 104 (e.g., a printed circuit board, a microcontroller, or the like), the power source 112, and the heating element (e.g., within an atomizer 141). These features may include at least two contacts (referred to herein as cartridge contacts 124) that are part of the vaporizer cartridge 120 (e.g., on a bottom surface, a side surface, etc.) and at least two vaporizer body contacts 125 (also optionally referred to herein as receptacle contacts 125), which in some implementations may be disposed near a base of a cartridge receptacle 118 of the vaporizer device 100 such that the cartridge contacts 124 and the receptacle contacts 125 make electrical connections when the vaporizer cartridge 120 is inserted into and coupled with the cartridge receptacle 118. The circuit completed by these electrical connections can allow delivery of electrical current to a heating element and may further be used for additional functions, such as measuring a resistance of the heating element for use in determining and/or controlling a temperature of the heating element based on a thermal coefficient of resistivity of the heating element.
In some implementations of the current subject matter involving coupling of a cartridge and a vaporizer body, the at least two cartridge contacts 124 and the at least two vaporizer body contacts 125 can be configured to electrically connect in either of at least two orientations. In other words, one or more circuits necessary for operation of the vaporizer device 100 can be completed by insertion of a vaporizer cartridge 120 into the cartridge receptacle 118 (or other coupling of the vaporizer cartridge 120 and the vaporizer body 110 in a first rotational orientation (around an axis along which the vaporizer cartridge 120 and vaporizer body 110 are joined) such that a first cartridge contact of the at least two cartridge contacts 124 is electrically connected to a first vaporizer body contact of the at least two vaporizer body contacts 125 and a second cartridge contact of the at least two cartridge contacts 124 is electrically connected to a second vaporizer body contact of the at least two vaporizer body contacts 125. Furthermore, the one or more circuits necessary for operation of the vaporizer device 100 can be completed by coupling of a vaporizer cartridge 120 with the vaporizer body 110 in a second rotational orientation such that the first cartridge contact of the at least two cartridge contacts 124 is electrically connected to the second vaporizer body contact of the at least two vaporizer body contacts 125 and the second cartridge contact of the at least two cartridge contacts 124 is electrically connected to the first vaporizer body contact of the at least two vaporizer body contacts 125.
In one example of an attachment structure for coupling a vaporizer cartridge 120 to a vaporizer body 110, the vaporizer body 110 includes one or more detents (e.g., dimples, protrusions, etc.) protruding inwardly from an inner surface of the cartridge receptacle 118, additional material (e.g., metal, plastic, etc.) formed to include a portion protruding into the cartridge receptacle 118, and/or the like. One or more exterior surfaces of the vaporizer cartridge 120 can include corresponding recesses (not shown in
In some implementations, the vaporizer cartridge, or at least an insertable or otherwise couplable end 122 of the vaporizer cartridge 120 configured for insertion or other coupling in the cartridge receptacle 118, may have a non-circular cross section transverse to the axis along which the vaporizer cartridge 120 is inserted into the cartridge receptacle 118. For example, the non-circular cross section may be approximately rectangular, approximately elliptical (e.g., have an approximately oval shape), non-rectangular but with two sets of parallel or approximately parallel opposing sides (e.g., having a parallelogram-like shape), or other shapes having rotational symmetry of at least order two. In this context, approximate shape indicates that a basic likeness to the described shape is apparent, but that sides of the shape in question need not be completely linear and vertices need not be completely sharp. Rounding of both or either of edges or vertices of the cross-sectional shape is contemplated in the description of any non-circular cross section referred to herein.
The at least two cartridge contacts 124 and the at least two vaporizer body contacts (e.g., receptacle contacts) 125 can take various forms. For example, one or both sets of contacts may include conductive pins, tabs, posts, receiving holes for pins or posts, or the like. Some types of contacts may include springs or other features to facilitate better physical and electrical contact between the contacts on the vaporizer cartridge 120 and the vaporizer body 110. The electrical contacts may optionally be gold-plated, and/or include other materials.
Further to the discussion above regarding the electrical connections between a vaporizer cartridge 120 and a vaporizer body 110 being reversible such that at least two rotational orientations of the vaporizer cartridge 120 in the cartridge receptacle 118 are possible, in some vaporizer devices, the shape of the vaporizer cartridge 120, or at least a shape of the end of the vaporizer cartridge 120 that is configured for insertion into the cartridge receptacle 118, may have rotational symmetry of at least order two. In other words, the vaporizer cartridge 120 or at least an insertable end 122 of the vaporizer cartridge 120 may be symmetrical upon a rotation of 180° around an axis along which the vaporizer cartridge 120 is inserted into the cartridge receptacle 118. In such a configuration, the circuitry of the vaporizer device 100 may support identical operation regardless of which symmetrical orientation of the vaporizer cartridge 120 occurs.
Referring to the block diagram of
Using the bifunctional wick-heater assembly 241, such as a bifunctional wick-heater assembly 241 comprising porous metal substrate, simplifies the design of the vaporizer system 200. This simplified design can simplify the manufacturing process, and may increase the energy efficiency of the vaporizer system 200. Metal can also be made partially porous with sealed faces or solid sections, allowing direct contact between the bifunctional wick-heater assembly 241 and the vaporizer body 210, and reducing the time and cost of manufacturing in comparison to manufacturing a heating coil. The size of the bifunctional wick-heater assembly 241 can be reduced significantly compared to a traditional fiber wick and heating coil assembly. This can allow more vaporizable material 202 to be contained within the reservoir 240. Additionally and/or alternatively, this can allow for a reduction in the size of the vaporizer system 200. The reduced size of the bifunctional wick-heater assembly 241 can also increase the energy efficiency of the vaporizer system 200 by heating the entirety of the porous metal substrate, which is filled with vaporizable material 202. In traditional fiber wick and heating coil configurations, vaporization occurs only at the portions of the fiber wick that are in contact with the heating coil. Using a bifunctional wick-heater assembly 241, which has a higher surface area than a traditional wick, can allow a lower operating temperature and thus a reduction in HPHC byproduct generated. A lower operating temperature can be achieved via increased vaporization and energy efficiency. This can also allow longer battery life and a potential reduction in the size of the vaporizer system 200. Additionally and/or alternatively, the vaporizer system 200 having the bifunctional wick-heater assembly 241 located within the vaporizer body 210 can allow for a vaporizer cartridge 220 with no electrical components. A vaporizer cartridge 220 without electrical components may have increased recyclability and/or decreased environmental impact. For example, the vaporizer cartridge 220 and/or the mouthpiece 230 may comprise biodegradable materials, recyclable materials, post-consumer recycled materials, or the like, thereby reducing environmental impact when disposing of the vaporizer cartridge 220.
In a variation of vaporizer system 200, the vaporizer device (not shown) includes a reservoir, a bifunctional wick-heater assembly (e.g. a porous metal substrate), and a mouthpiece. In this variation, the reservoir can be filled and refilled with vaporizable material, and no cartridge is required. The vaporizer device can be disassembled for cleaning and maintenance. In this manner, only the additional vaporizable material and charging of the power source, if necessary, are required for sustained and repeated operation of the vaporizer device.
Referring to the block diagram of
In this embodiment, as in the embodiment shown in
By using a porous metal substrate with a controlled pore size, the replenish rate or wicking efficiency of the bifunctional wick-heater assembly 341 can be maximized. The replenish rate is largely dependent on the capillary pressure, defined in part by pore size and porosity of the porous metal substrate, and the viscosity of the vaporizable material 302 at an operating temperature. In embodiments, the pore size is less than 50 um. Preferably, the pore size is between about 10 um to about 20 um. The porous metal substrate can also reduce the potential issues around leakage of vaporizable material 302 out of the reservoir 340. A porous metal substrate can impede the flow of vaporizable material 302 at room temperature, when the vaporizable material 302 is too viscous to pass through the porous metal substrate. During use, when the porous metal substrate reaches an operating temperature, the viscosity of the vaporizable material 302 will be lower, allowing easy flow of vaporizable material 202 into the bifunctional wick-heater assembly 341. This can create a self-regulated leak prevention system.
Using an atomizer, such as the bifunctional wick-heater assembly 241 configured to be within a vaporizer body 210 or the bifunctional wick-heater assembly 341 configured to be within a vaporizer cartridge 320, provides a higher surface area than a traditional wick and can allow a lower operating temperature and thus a reduction in HPHC byproduct generated. Additionally and/or alternatively, surface coatings can be applied to the porous section 705 and/or to the first side bus bar 704a and/or the second side bus bar 704b. In some embodiments, surface coatings may be used to reduce fouling of the porous section 705. For example, a surface coating comprising a metal or a metal alloy can be applied to increase the resistance of the porous section 705 and thereby accelerate heating of the vaporizable material 202 within the porous section 705. In another example, a surface coating comprising a hydrophobic material may be used to lower the contact angle between the porous section 705 and the vaporizable material 202, thereby increasing the replenish rate of the vaporizable material 202 into the porous section 705.
When a feature or element is herein referred to as being “on” another feature or element, it can be directly on the other feature or element or intervening features and/or elements may also be present. In contrast, when a feature or element is referred to as being “directly on” another feature or element, there are no intervening features or elements present. It will also be understood that, when a feature or element is referred to as being “connected”, “attached” or “coupled” to another feature or element, it can be directly connected, attached or coupled to the other feature or element or intervening features or elements may be present. In contrast, when a feature or element is referred to as being “directly connected”, “directly attached” or “directly coupled” to another feature or element, there are no intervening features or elements present.
Although described or shown with respect to one embodiment, the features and elements so described or shown can apply to other embodiments. It will also be appreciated by those of skill in the art that references to a structure or feature that is disposed “adjacent” another feature may have portions that overlap or underlie the adjacent feature.
Terminology used herein is for the purpose of describing particular embodiments and implementations only and is not intended to be limiting. For example, as used herein, the singular forms “a,” “an,” and “the” are intended to include the plural forms as well, unless the context clearly indicates otherwise.
In the descriptions above and in the claims, phrases such as “at least one of” or “one or more of” may occur followed by a conjunctive list of elements or features. The term “and/or” may also occur in a list of two or more elements or features. Unless otherwise implicitly or explicitly contradicted by the context in which it used, such a phrase is intended to mean any of the listed elements or features individually or any of the recited elements or features in combination with any of the other recited elements or features. For example, the phrases “at least one of A and B;” “one or more of A and B;” and “A and/or B” are each intended to mean “A alone, B alone, or A and B together.” A similar interpretation is also intended for lists including three or more items. For example, the phrases “at least one of A, B, and C;” “one or more of A, B, and C;” and “A, B, and/or C” are each intended to mean “A alone, B alone, C alone, A and B together, A and C together, B and C together, or A and B and C together.” Use of the term “based on,” above and in the claims is intended to mean, “based at least in part on,” such that an unrecited feature or element is also permissible.
Spatially relative terms, such as “forward”, “rearward”, “under”, “below”, “lower”, “over”, “upper” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. It will be understood that the spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if a device in the figures is inverted, elements described as “under” or “beneath” other elements or features would then be oriented “over” the other elements or features. Thus, the exemplary term “under” can encompass both an orientation of over and under. The device may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein interpreted accordingly. Similarly, the terms “upwardly”, “downwardly”, “vertical”, “horizontal” and the like are used herein for the purpose of explanation only unless specifically indicated otherwise.
Although the terms “first” and “second” may be used herein to describe various features/elements (including steps), these features/elements should not be limited by these terms, unless the context indicates otherwise. These terms may be used to distinguish one feature/element from another feature/element. Thus, a first feature/element discussed below could be termed a second feature/element, and similarly, a second feature/element discussed below could be termed a first feature/element without departing from the teachings provided herein.
As used herein in the specification and claims, including as used in the examples and unless otherwise expressly specified, all numbers may be read as if prefaced by the word “about” or “approximately,” even if the term does not expressly appear. The phrase “about” or “approximately” may be used when describing magnitude and/or position to indicate that the value and/or position described is within a reasonable expected range of values and/or positions. For example, a numeric value may have a value that is +/−0.1% of the stated value (or range of values), +/−1% of the stated value (or range of values), +/−2% of the stated value (or range of values), +/−5% of the stated value (or range of values), +/−10% of the stated value (or range of values), etc. Any numerical values given herein should also be understood to include about or approximately that value, unless the context indicates otherwise. For example, if the value “10” is disclosed, then “about 10” is also disclosed. Any numerical range recited herein is intended to include all sub-ranges subsumed therein. It is also understood that when a value is disclosed that “less than or equal to” the value, “greater than or equal to the value” and possible ranges between values are also disclosed, as appropriately understood by the skilled artisan. For example, if the value “X” is disclosed the “less than or equal to X” as well as “greater than or equal to X” (e.g., where X is a numerical value) is also disclosed. It is also understood that the throughout the application, data is provided in a number of different formats, and that this data, represents endpoints and starting points, and ranges for any combination of the data points. For example, if a particular data point “10” and a particular data point “15” are disclosed, it is understood that greater than, greater than or equal to, less than, less than or equal to, and equal to 10 and 15 are considered disclosed as well as between 10 and 15. It is also understood that each unit between two particular units are also disclosed. For example, if 10 and 15 are disclosed, then 11, 12, 13, and 14 are also disclosed.
Although various illustrative embodiments are described above, any of a number of changes may be made to various embodiments without departing from the teachings herein. For example, the order in which various described method steps are performed may often be changed in alternative embodiments, and in other alternative embodiments, one or more method steps may be skipped altogether. Optional features of various device and system embodiments may be included in some embodiments and not in others. Therefore, the foregoing description is provided primarily for exemplary purposes and should not be interpreted to limit the scope of the claims.
One or more aspects or features of the subject matter described herein can be realized in digital electronic circuitry, integrated circuitry, specially designed application specific integrated circuits (ASICs), field programmable gate arrays (FPGAs) computer hardware, firmware, software, and/or combinations thereof. These various aspects or features can include implementation in one or more computer programs that are executable and/or interpretable on a programmable system including at least one programmable processor, which can be special or general purpose, coupled to receive data and instructions from, and to transmit data and instructions to, a storage system, at least one input device, and at least one output device. The programmable system or computing system may include clients and servers. A client and server are generally remote from each other and typically interact through a communication network. The relationship of client and server arises by virtue of computer programs running on the respective computers and having a client-server relationship to each other.
These computer programs, which can also be referred to programs, software, software applications, applications, components, or code, include machine instructions for a programmable processor, and can be implemented in a high-level procedural language, an object-oriented programming language, a functional programming language, a logical programming language, and/or in assembly/machine language. As used herein, the term “machine-readable medium” refers to any computer program product, apparatus and/or device, such as for example magnetic discs, optical disks, memory, and Programmable Logic Devices (PLDs), used to provide machine instructions and/or data to a programmable processor, including a machine-readable medium that receives machine instructions as a machine-readable signal. The term “machine-readable signal” refers to any signal used to provide machine instructions and/or data to a programmable processor. The machine-readable medium can store such machine instructions non-transitorily, such as for example as would a non-transient solid-state memory or a magnetic hard drive or any equivalent storage medium. The machine-readable medium can alternatively or additionally store such machine instructions in a transient manner, such as for example, as would a processor cache or other random access memory associated with one or more physical processor cores.
The examples and illustrations included herein show, by way of illustration and not of limitation, specific embodiments in which the subject matter may be practiced. As mentioned, other embodiments may be utilized and derived there from, such that structural and logical substitutions and changes may be made without departing from the scope of this disclosure. Such embodiments of the inventive subject matter may be referred to herein individually or collectively by the term “invention” merely for convenience and without intending to voluntarily limit the scope of this application to any single invention or inventive concept, if more than one is, in fact, disclosed. Thus, although specific embodiments have been illustrated and described herein, any arrangement calculated to achieve the same purpose may be substituted for the specific embodiments shown. This disclosure is intended to cover any and all adaptations or variations of various embodiments. Combinations of the above embodiments, and other embodiments not specifically described herein, will be apparent to those of skill in the art upon reviewing the above description. Use of the term “based on,” herein and in the claims is intended to mean, “based at least in part on,” such that an unrecited feature or element is also permissible.
The subject matter described herein can be embodied in systems, apparatus, methods, and/or articles depending on the desired configuration. The implementations set forth in the foregoing description do not represent all implementations consistent with the subject matter described herein. Instead, they are merely some examples consistent with aspects related to the described subject matter. Although a few variations have been described in detail herein, other modifications or additions are possible. In particular, further features and/or variations can be provided in addition to those set forth herein. For example, the implementations described herein can be directed to various combinations and subcombinations of the disclosed features and/or combinations and subcombinations of several further features disclosed herein. In addition, the logic flows depicted in the accompanying figures and/or described herein do not necessarily require the particular order shown, or sequential order, to achieve desirable results. Other implementations may be within the scope of the following claims.
This application claims the benefit of U.S. Provisional Application No. 62/946,344, filed Dec. 10, 2019, which is incorporated herein by reference in entirety and for all purposes
Number | Date | Country | |
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62946344 | Dec 2019 | US |
Number | Date | Country | |
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Parent | PCT/US20/63884 | Dec 2020 | US |
Child | 17836887 | US |