Inhaler article having tangential airflow end element
A biodegradable inhaler article with a tangential airflow mechanism efficiently delivers nicotine particles to the lungs, addressing inefficiencies in existing dry powder inhalers by using cellulose acetate and polylactic acid materials, and mimicking traditional smoking techniques.
Patent Information
- Application Number
- JP2022523922
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-10-25
- Filing Date
- 2020-10-23
- Publication Date
- 2025-09-03
- Estimated Expiration
- 2040-10-23
AI Technical Summary
Dry powder inhalers are not biodegradable, require complex manufacturing processes, and often deliver dry powder particles inefficiently, making them difficult to use and assemble quickly.
A biodegradable inhaler article with a tubular element that induces tangential airflow to create a swirling effect, allowing efficient delivery of dry powder particles similar to traditional smoking, using materials like cellulose acetate and polylactic acid, and a holder system for easy assembly and use.
The inhaler efficiently delivers nicotine particles to the lungs at inhalation volumes and airflow rates similar to traditional smoking, with a simplified structure that is easy to use and manufacture, and reduces particle aggregation through airflow management.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to inhaler articles having tangential airflow tip elements and inhaler systems including the inhaler articles. [Background technology]
[0002] Dry powder inhalers are not always fully adequate to deliver dry powder particles to the lungs at inhalation volumes or airflow rates that are within the range of those of conventional smoking. Dry powder inhalers can be complicated to operate or involve moving parts. Dry powder inhalers often attempt to deliver the entire dry powder dose or capsule load in a single breath. Summary of the Invention [Problem to be solved by the invention]
[0003] Dry powder inhalers are typically made of materials that are not biodegradable. Additionally, they are often made of materials that may require injection molding or casting, and the assembly of these parts can present a bottleneck in the manufacturing process and is difficult to produce at high speeds.
[0004] It would be desirable to provide a dry powder inhaler that is substantially biodegradable. It would be desirable to provide an inhaler article that can be assembled quickly. It would also be desirable to provide an inhaler article that has a form similar to a conventional cigarette that is easy to hold and familiar to users. It would also be desirable to provide an inhaler article that is convenient to use by consumers. [Means for solving the problem]
[0005] The inhaler article includes a body extending along a longitudinal axis from a mouthpiece end to a distal end, a capsule cavity defined within the body, and a tubular element extending from the distal end toward the capsule cavity. The tubular element defines a central passage extending from the distal end toward the capsule cavity. The tubular element includes at least one air inlet that allows air to enter the central passage. The at least one air inlet extends in a direction tangential to the central passage.
[0006] Advantageously, the inhaler article provides a simplified structure that utilizes a tangential inhalation airflow into the central passage to induce a rotational or swirling airflow within the tubular element. This rotational or swirling airflow is delivered to a capsule cavity of the inhaler article. The rotational or swirling airflow induces a capsule contained within the capsule cavity to rotate and release particles into the rotational or swirling airflow to the consumer.
[0007] The at least one air inlet is preferably proximate the distal end of the inhaler article body. The central passage may include a first end defining an upstream boundary of the capsule cavity and a second opposite end defining the distal end of the inhaler article body. The second opposite end preferably defines the open distal end of the inhaler article body. The central passage may extend along the longitudinal axis of the inhaler article body and may define an opening at the distal end of the inhaler article body coaxial with the longitudinal axis of the inhaler article body. The lateral distance between the at least one air inlet and the capsule cavity is preferably greater than the lateral distance from the distal end of the inhaler article body to the at least one air inlet.
[0008] Advantageously, the tubular element may define an open opening along the longitudinal axis, and may have no element blocking or obstructing the open distal end of the inhaler article to reduce the complexity of the inhaler article: a consumer may simply block or obstruct the open distal end with the holder or the consumer's finger to direct the inhalation airflow substantially through the tangential air inlet on the inhaler article.
[0009] The tubular element may comprise at least two air inlets, the at least two air inlets extending in a direction tangential to the central passage. The open tubular element may comprise at least three air inlets, the at least three air inlets extending in a direction tangential to the central passage.
[0010] Preferably the tubular element is made of a biodegradable material. Preferably the tubular element comprises a fibrous material. Preferably the tubular element is made of a porous material. Preferably the tubular element is made of a cellulosic material such as cellulose acetate. Preferably the tubular element is made of a polylactic acid material.
[0011] Advantageously, the tubular element may be formed from materials used to construct conventional cigarettes. Advantageously, the inhaler article may be formed from biodegradable materials.
[0012] The capsule is preferably held within the capsule cavity. The tubular element central passage may have a diameter within the range of about 50% to about 90% of the diameter of the capsule. Of course, as the diameter of the tubular element central passage increases, the overall diameter of the tubular element may also increase to provide an air inlet of sufficient length to direct the airflow into the tangential airflow.
[0013] Advantageously, the distal end tubular element may create a "swirling" airflow from the tangential air inlet into the central passage of the tubular element. This swirling airflow is useful for efficient depletion of the capsule during consumption after it has been pierced. Advantageously, this "swirling" effect may cause rotation of the capsule to provide uniform entrainment of a portion or fraction of the nicotine particles from the capsule over two or more, or five or more, or ten or more inhalations or "puffs" by the user.
[0014] According to one aspect of the present invention, there is provided an inhaler system including an inhaler article as described herein having a capsule disposed within the capsule cavity, and a holder for receiving the inhaler article. The holder includes a housing having a housing cavity for receiving the inhaler article and a sleeve configured to hold the inhaler article within the housing cavity. The sleeve includes a sleeve cavity, and the sleeve is movable within the housing cavity along the longitudinal axis of the housing. The sleeve includes a first open end and a second opposite end. The first open end is configured to receive the inhaler article, and the second opposite end of the sleeve is configured to contact the distal end of the inhaler article.
[0015] A second, opposite end of the sleeve is preferably configured to direct substantially all of the inhaled air to flow through at least one air inlet port in the inhaler article that extends in a direction that is tangential to the central passage.
[0016] Advantageously, the holder may cooperate with the inhaler article to direct substantially all of the inhalation airflow through a tangential air inlet on the inhaler article.
[0017] Preferably, the holder further includes a piercing element secured to and extending from the inner surface of the housing, the piercing element extending through the second opposite end of the sleeve and configured to extend into the capsule cavity to penetrate the capsule along the longitudinal axis of the housing.
[0018] The capsule preferably contains pharmaceutically active particles. The pharmaceutically active particles may include nicotine. The pharmaceutically active particles may have a mass median aerodynamic diameter of about 5 micrometers or less, or in the range of about 0.5 micrometers to about 4 micrometers, or in the range of about 1 micrometer to about 3 micrometers.
[0019] The inhaler articles described herein may be combined with a piercing element or a holder containing a piercing element to deliver nicotine particles from the capsule to the user. The piercing element or piercing device (or holder) may be separate from or not form part of the inhaler article. Multiple inhaler articles may be combined with a piercing element or piercing device (or holder) to form a kit.
[0020] Advantageously, the inhaler system efficiently delivers nicotine particles to the lungs at an inhalation dose or airflow rate within that of traditional smoking. The inhaler delivers nicotine powder using an inhaler article having a configuration similar to that of a traditional cigarette. The inhaler systems described herein may deliver dry powder to the lungs at an inhalation dose or airflow rate within that of traditional smoking. The consumer may take multiple inhalations or "puffs," with each "puff" delivering a portion of the dry powder contained within the capsule cavity. The inhaler article may have a configuration similar to that of a traditional cigarette and may mimic traditional smoking techniques. The inhaler article may be simple to manufacture and convenient for consumers to use.
[0021] Airflow management through the capsule cavity of the inhaler article may cause the capsule contained therein to rotate during inhalation and consumption. The capsule may contain nicotine-containing particles (also referred to as "nicotine powder" or "nicotine particles") and, optionally, flavor-containing particles (also referred to as "flavor particles"). Rotation of the pierced capsule may suspend and aerosolize the nicotine particles released from the pierced capsule into the inhaled air moving through the inhaler article. The flavor particles may be larger than the nicotine particles and may assist in the delivery of the nicotine particles to the user's lungs, while the flavor particles preferentially reside in the user's mouth or oral cavity. The nicotine particles and optional flavor particles may be delivered using the inhaler article at an inhalation volume or airflow within the inhalation volume or airflow of conventional smoking methods.
[0022] The term "nicotine" refers to nicotine and nicotine derivatives (eg, free base nicotine, nicotine salts, and the like).
[0023] The term "flavorant" or "flavor" refers to an organoleptic compound, composition, or material that alters, or is intended to alter, the taste or aroma characteristics of nicotine during its consumption or inhalation.
[0024] The terms "upstream" and "downstream" refer to the relative positions of the holder, inhaler article, and inhaler system elements described with respect to the direction of inhalation airflow as it is drawn through the body of the holder, the inhaler article, and the inhaler system.
[0025] The terms "proximal" and "distal" are used to describe the relative positions of components or portions of components of an inhaler article, holder, or system. According to the present invention, the holder or an element forming the holder (such as a sleeve) has a proximal end that receives the inhaler article in use and an opposite distal end that may be a closed end or have an end closer to the proximal end of the holder. According to the present invention, the inhaler article has a proximal end. In use, nicotine particles exit the proximal end of the inhaler article for delivery to the user. The inhaler has a distal end opposite the proximal end. The proximal end of the inhaler article may also be referred to as the mouth end.
[0026] A holder for an inhaler article may be combined with an inhaler article (described herein) that contains a capsule for activating the inhaler article by piercing the capsule, provides reliable activation of the capsule within the inhaler article (by piercing the capsule with a piercing element in the holder), and releases particles contained within the capsule, allowing the article to deliver the particles to a consumer. Although the holder is separate from the inhaler article, a consumer may utilize both the inhaler article and the holder while consuming particles released within the inhaler article. A plurality of these inhaler articles may be combined with a holder to form a system or kit. A single holder may be utilized with 10 or more, or 25 or more, or 50 or more, or 100 or more inhaler articles to activate (puncture or pierce) the capsule contained within each inhaler article and provide reliable activation or, optionally, a visual indication (marking) of inhaler article activation for each inhaler article.
[0027] The inhaler article holder includes a housing having a housing cavity for receiving the inhaler article and a sleeve configured to hold the inhaler article within the housing cavity. The sleeve has a sleeve cavity and is movable within the housing cavity along the longitudinal axis of the housing. The sleeve has a first open end and a second opposite end. The first open end is configured to receive the distal end of the inhaler article. The second opposite end of the sleeve is configured to contact the distal end of the inhaler article. The second opposite end of the sleeve is configured to direct substantially all inhaled air to flow through at least one air inlet of the inhaler article, which extends in a direction tangential to the central passage.
[0028] The inhaler system includes an inhaler article described herein having a capsule disposed within the capsule cavity, and a holder for receiving the inhaler article. The holder includes a housing having a housing cavity for receiving the inhaler article and a sleeve configured to hold the inhaler article within the housing cavity. The sleeve includes a sleeve cavity, and the sleeve is movable within the housing cavity along the longitudinal axis of the housing. The sleeve includes a first open end and a second opposite end. The first open end is configured to receive the inhaler article, and the second opposite end of the sleeve is configured to contact the distal end of the inhaler article.
[0029] The method, as described herein, includes inserting an inhaler article into the sleeve of an inhaler article holder until the distal end of the inhaler article contacts the second, opposite end of the sleeve. The inhaler article includes a body (extending from the mouthpiece end to the distal end along the inhaler longitudinal axis), a length of the body, and a capsule disposed within the inhaler article body. The inhaler article and sleeve are then moved toward the piercing element until the piercing element penetrates the capsule. Air is then drawn into the second, opposite end of the holder sleeve, forming a rotating or swirling airflow through the central passage of the tubular element of the inhaler article, to direct an inhalation airflow into a tangential air inlet on the inhaler article. This swirling inhalation airflow is directed into the capsule cavity while the inhaler article is disposed within the inhaler article holder. The consumed inhaler article may then be removed from the holder and disposed of. An unused inhaler article may then be inserted into the holder, and the method may be repeated.
[0030] The inhaler article includes a body extending along a longitudinal axis from a mouthpiece end to a distal end, a capsule cavity defined within the body, and a tubular element disposed at the distal end and extending from the distal end to the capsule cavity. The tubular element defines a central passage extending from the distal end to the capsule cavity. The tubular element includes at least one air inlet opening that allows air to enter the central passage. The at least one air inlet opening extends in a direction that is tangential to the central passage.
[0031] The body of the inhaler article, or "inhaler body," may have any suitable shape. The body of the inhaler article, or "inhaler body," may resemble a smoking article or a conventional cigarette in size and shape. The inhaler body may have an elongated cylindrical body extending along the longitudinal axis of the inhaler article. In other words, the inhaler body may have a length that is substantially greater than other dimensions of the inhaler body. The inhaler body may have a substantially uniform outer diameter along the length of the inhaler body. The inhaler body may have a substantially uniform inner diameter along the length of the inhaler body. The inhaler body may have any suitable transverse cross-sectional shape. For example, the transverse cross-section may be circular, oval, square, or rectangular. The inhaler body preferably has a circular cross-section, which may be uniform along the length of the inhaler body, forming an elongated cylindrical body.
[0032] The inhaler body may have an outer diameter within the range of about 6 mm to about 10 mm, or about 7 mm to about 10 mm, or about 7 mm to about 9 mm, or about 7 mm to about 8 mm, or about 7.2 mm. The inhaler body may have a length (along the longitudinal axis) within the range of about 40 mm to about 100 mm, or about 40 mm to about 80 mm, or about 40 mm to about 65 mm. The length of the inhaler body is preferably the same as the length of the inhaler article. The length of the inhaler article is preferably about 45 mm. The length of the inhaler body is preferably selected so that the mouthpiece end of the inhaler article protrudes from the holder.
[0033] The inhaler body may be formed of a polymeric or cellulosic material, or any other suitable material. The inhaler body may be formed of a biodegradable material. The inhaler body may be formed of cardboard or thick paper. The inhaler body may have a uniform thickness along its length. The inhaler body may have a thickness in the range of about 1 mm to about 2 mm.
[0034] The inhaler body may form an inseparable, single structure in which the body extends continuously from the tubular element to the mouthpiece end. The distal end tubular element, the capsule cavity (and capsule, if present), and the porous support element (or filter) may be arranged in series within the inhaler body. In other words, the distal end tubular element, the capsule cavity (and capsule, if present), and the porous support element (or filter) may be arranged end-to-end along the longitudinal axis of the inhaler body. The porous support element (or filter) may be disposed within the mouthpiece of the body. The mouthpiece air channel may extend from the capsule cavity to the mouthpiece end. The porous support element (or filter) may extend from the capsule cavity to the mouthpiece end of the inhaler article.
[0035] The inhaler body may be formed of two or more sections. The two or more sections may be axially aligned in serial adjacent relationship and joined together to form the inhaler body. A wrapper may be utilized to join the two or more sections. The wrapper may be a biodegradable material. The wrapper may be a paper wrapper.
[0036] The distal tubular element is configured to induce a swirling airflow relative to the capsule cavity of the inhaler body. The distal tubular element may include an open central passage having a tangential air inlet for inducing a swirling inhalation airflow into the capsule cavity. The distal tubular element may induce a rotational or swirling airflow as air flows through the tangential air inlet and through the capsule cavity.
[0037] Airflow through the inhaler article preferably enters the inhaler article through the sidewall of the inhaler article, flows into the central passage, then flows along the longitudinal axis of the inhaler article, through the capsule and filter, and exits at the mouthpiece end at the proximal end of the inhaler article.
[0038] The tubular element may be disposed at a distal end of the body. The tubular element may define the distal end of the inhaler article.
[0039] The tubular element defines an open central passageway ("central passageway") that may include a first end that defines an upstream boundary of the capsule cavity and a second, opposite end that defines a distal end of the inhaler article body.
[0040] The second, opposite end may define an open distal end of the inhaler article body. The central passageway may extend along the longitudinal axis of the inhaler article body and may define an opening at the distal end of the inhaler article body that is coaxial with the longitudinal axis of the inhaler article body. The central passageway may define an open opening that extends longitudinally from the distal end of the inhaler article to the capsule cavity. During use, a consumer may block or obstruct the open opening at the distal end such that substantially all inhaled air flows through the tangential air inlet (through the tubular element sidewall) into the central passageway, through the capsule cavity, and out the mouth end of the inhaler article.
[0041] Blocking or obstructing a second, opposite end of the tubular element enables the tubular element to define a swirl-generating element configured to generate a swirling or rotating inhalation airflow that may be directed into the capsule cavity to rotate the capsule and expel the dry powder contained therein.
[0042] The tubular element has one or more air inlet openings proximate or near the distal end of the inhaler article, the one or more air inlet openings allowing inhaled air to enter the central passage of the tubular element, and at least one air inlet opening extends in a direction that is tangential to the central passage.
[0043] The tubular element has two or more air inlet openings proximate or near the distal end of the inhaler article, the two or more air inlet openings allowing inhaled air to enter the central passage of the tubular element, and the at least two air inlet openings extending in a direction tangential to the central passage.
[0044] The tubular element has three or more air inlet openings proximate or near the distal end of the inhaler article, the three or more air inlet openings allowing inhaled air to enter the central passage of the tubular element, and the at least three air inlet openings extending in a direction tangential to the central passage.
[0045] The tubular element has four air inlet openings proximate or near the distal end of the inhaler article, which allow inhaled air to enter the central passage of the tubular element, and which extend in a direction tangential to the central passage.
[0046] The tubular element may be coaxial with the longitudinal axis of the inhaler article.
[0047] The one or more air inlets may extend through the sidewalls forming the tubular element. Preferably, the one or more air inlets enter the central passage in a direction tangential to the inner surface defining the central passage.
[0048] At least one air inlet extending in a direction tangential to the central passage enters the central passage proximate the second opposite end of the tubular member. At least one air inlet extending in a direction tangential to the central passage enters the central passage proximate the open distal end of the inhaler article. Preferably, the at least one air inlet extending in a direction tangential to the central passage enters the central passage at the second opposite end of the tubular member. Preferably, the at least one air inlet extending in a direction tangential to the central passage enters the central passage at the distal end of the inhaler article. Improved capsule depletion occurs when the tangential air inlet is located closer to the second opposite end of the tubular member.
[0049] Preferably, the lateral distance between the at least one air inlet and the capsule cavity is greater than the lateral distance from the distal end of the inhaler article body to the at least one air inlet.
[0050] The tubular element may have a length between a first end and a second opposite end extending along the longitudinal axis of the inhaler body. The tubular element may have any suitable length, such as from about 3 mm to about 10 mm. The tubular element may have a length within the range of from about 5 mm to about 8 mm. The central passage length may be equal to the length of the tubular element.
[0051] The tubular element may substantially fill the inner diameter of the inhaler body. The tubular element may have an outer diameter in the range of about 6 mm to about 8 mm. The tubular element may be sized and shaped to fit within and against the inner surface of the body. The tubular element may have an outer diameter sufficient to form a friction or interference fit with the inner surface of the inhaler body.
[0052] The tubular element may have a central passageway with a uniform open diameter, which may be in the range of about 2 mm to about 5 mm, or about 3 mm to about 4 mm.
[0053] The at least one air inlet is proximate to the distal end of the inhaler article. Locating the at least one air inlet near, adjacent to, or proximate to the second, opposite end of the tubular element may improve particle depletion from the capsule compared to locating the at least one air inlet closer to the first end of the tubular element.
[0054] Preferably, the at least one air inlet is located within about 2 mm or within about 1 mm of the distal end of the inhaler article. Preferably, the at least one air inlet is located within about 2 mm or within about 1 mm of the second, opposite end of the tubular element. Preferably, the at least one air inlet is located within about 2 mm or within about 1 mm of both the second, opposite end of the tubular element and the distal end of the inhaler article.
[0055] The tubular element may be formed from a fibrous material. The tubular element may be formed from a porous material. The tubular element may be formed from a biodegradable material. The tubular element may be formed from a cellulosic material, such as cellulose acetate. The tubular element may be formed from a polylactic acid material.
[0056] The central passageway may have a uniform inner or open diameter extending from the capsule cavity to the open distal or most upstream end of the inhaler article. The central passageway may have an inner diameter that is at least about 50%, or at least about 70%, or at least about 75% of the diameter of the distal end of the body. The central passageway may have an inner diameter within the range of about 50% to about 90% of the diameter of the capsule held within the capsule cavity.
[0057] The central passageway may have a uniform inner or open diameter in the range of about 3 mm to about 6.5 mm, or about 4 mm to about 6 mm, or about 5 mm to about 6 mm, or about 5.5 mm.
[0058] The open tubular element defining the open central passageway may have a thickness in the range of about 0.5 mm to about 1.5 mm, or about 0.5 mm to about 1 mm.
[0059] The filter element, located downstream of the capsule cavity, may extend from the capsule cavity to the mouthpiece end of the inhaler article and may have a length in the range of about 10 mm to about 30 mm, preferably about 15 mm to about 25 mm, and more preferably about 20 mm to about 22 mm.
[0060] The capsule cavity may be axially aligned with the tubular element and disposed in series downstream of the tubular element. The tubular element may form an upstream or distal boundary of the capsule cavity. The capsule cavity may define a cylindrical space configured to contain a capsule. The capsule cavity may define a space configured to receive a capsule having an oval or rounded rectangular shape. The capsule cavity may have a substantially uniform or uniform diameter along the length of the capsule cavity. The capsule cavity may have a circular transverse cross-section along the length of the capsule cavity. The capsule cavity may have a cylindrical shape. The configuration of the capsule cavity relative to the capsule may allow the capsule to rotate with some stability within the capsule cavity. The longitudinal axis of the capsule may rotate with some stability about the longitudinal axis of the inhaler body during inhalation.
[0061] The capsule cavity may have a fixed cavity length bounded on the upstream end of the first end of the tubular element and bounded on the downstream end by a porous support element or filter. The capsule cavity may have a cavity length of at least about 110% to less than about 200% of the length of the capsule contained therein, or about 120% to about 130% of the capsule length, or about 125% of the capsule length. The cavity length may be in the range of about 15 mm to about 25 mm, and the capsule length may be in the range of about 14 mm to about 18 mm, or the cavity length may be about 20 mm, and the capsule length may be about 16 mm. The cavity length may be about 20 mm. The capsule cavity and the tubular element may have a combined length of about 25 mm to about 35 mm, or the combined length may be about 27 mm to about 32 mm.
[0062] The capsule cavity has an inner diameter perpendicular to the longitudinal axis, and the capsule has an outer diameter. The outer diameter may be about 80% to about 99% of the inner diameter of the cavity, or about 85% to about 95% of the inner diameter of the cavity, or about 90% of the inner diameter of the cavity. The outer diameter may be about 5.4 mm to about 6.4 mm, and the inner diameter may be about 6 mm to about 7 mm.
[0063] The insert body may be contained within the capsule cavity. The insert body may define a cylindrical space configured to contain the capsule. The insert body may provide additional rigidity to the body along the capsule cavity. The insert body may have a substantially uniform or uniform diameter along the length of the capsule cavity. The insert body may have a length that is at least about 110% to less than about 200% of the length of the capsule contained therein, or about 120% to about 130% of the capsule length, or about 125% of the capsule length. The insert body may be formed of the same or a different material as the main body. The insert body is preferably formed of cardboard or thick paper.
[0064] The capsule cavity may be bounded on the upstream end by a tubular element and on the downstream or mouthpiece end by a porous support element or filter, which may be joined in abutting axial alignment with the wrapper.
[0065] The tubular element and the porous support element or filter may cooperate to longitudinally contain the capsule within the capsule cavity. The tubular element and the porous support element may each fill the inner diameter of the elongated inhaler body. The porous support element may allow airflow to exhibit uniformity through the porous support element along the cross-section of the elongated inhaler body. The porous support element may function as a filter or diffuser to reduce turbulence or edge effects and ensure or maintain a desired airflow pattern through the capsule cavity. The porous support element may support the capsule within the capsule cavity during capsule activation, such as by providing support to the capsule when a piercing element is received within the inhaler article at its distal end and pierces the capsule to activate it.
[0066] The capsule may be sealed within the inhaler article prior to consumption. For transport and storage, the inhaler article may be contained in a sealed or airtight container or bag. The inhaler article may include one or more peelable sealing layers for covering one or more air inlet channels at the distal end of the inhaler article or the air outlet at the mouthpiece end of the inhaler article. This may ensure that the inhaler article maintains proper hygiene and freshness, or may prevent the capsule from drying out, becoming hard, and becoming brittle.
[0067] The capsule may rotate about its longitudinal or central axis as air is drawn through the inhaler article. The capsule may be formed of an airtight material that substantially contains the particles within the capsule interior. The capsule may be configured to be pierced or perforated by a piercing element when within the capsule cavity. The piercing element may be separate from or combined with the inhaler article. The capsule may be formed of any suitable material. The capsule may be formed of a metallic or polymeric material that functions to keep contaminants out of the capsule but can be pierced or perforated by a piercing element prior to consumption to allow release of nicotine particles from within the capsule. The capsule may be formed of a polymeric material. The polymeric material may be hydroxypropyl methylcellulose (HPMC). The capsule may be any suitable size. The capsule may be a size 1 to size 4 capsule, or a size 3 capsule, or a size 3 capsule.
[0068] The system may include a separate piercing element, such as a metal or rigid needle. The piercing element may form a single opening through the capsule received within the capsule cavity. The piercing element may be configured to pass through the tubular element and into the capsule cavity.
[0069] The capsule may contain nicotine (also referred to as "nicotine powder" or "nicotine particles") and, optionally, pharmaceutically active particles, including flavor-containing particles (also referred to as "flavor particles"). The capsule may contain a predetermined amount of nicotine particles and, optionally, flavor particles. The capsule may contain sufficient nicotine particles to provide at least two inhalations or "puffs," or at least about five inhalations or "puffs," or at least about 10 inhalations or "puffs." The capsule may contain sufficient nicotine particles to provide about 5-50 inhalations or "puffs," or about 10-30 inhalations or "puffs." Each inhalation or "puff" may deliver about 0.1 mg to about 3 mg of nicotine particles to the user's lungs, or about 0.2 mg to about 2 mg of nicotine particles to the user's lungs, or about 1 mg of nicotine particles to the user's lungs.
[0070] The nicotine particles may have any useful concentration of nicotine based on the particular formulation employed. The nicotine particles may have at least about 1% up to about 30% by weight nicotine, or about 2% to about 25% by weight nicotine, or about 3% to about 20% by weight nicotine, or about 4% to about 15% by weight nicotine, or about 5% to about 13% by weight nicotine. Preferably, with each inhalation or "puff," about 50 to about 150 micrograms of nicotine may be delivered to the user's lungs.
[0071] The capsule may hold or contain at least about 5 mg of nicotine particles, or at least about 10 mg of nicotine particles. The capsule may hold or contain less than about 900 mg of nicotine particles, or less than about 300 mg of nicotine particles, or less than 150 mg of nicotine particles. The capsule may hold or contain between about 5 mg and about 300 mg of nicotine particles, or between about 10 mg and about 200 mg of nicotine particles.
[0072] When flavor particles are blended or combined with nicotine particles in a capsule, the flavor particles may be present in an amount that provides the desired flavor with each inhalation or "puff" delivered to the user.
[0073] The nicotine particles may have any size distribution useful for preferential inhalation delivery into the user's lungs. The capsule may contain particles other than nicotine particles. The nicotine particles and other particles may form a powder system.
[0074] A capsule may hold or contain at least about 5 mg of dry powder (also called a powder system), or at least about 10 mg of dry powder. A capsule may hold or contain less than about 900 mg of dry powder, or less than about 300 mg of dry powder, or less than about 150 mg of dry powder. A capsule may hold or contain between about 5 mg and about 300 mg of dry powder, or between about 10 mg and about 200 mg of dry powder, or between about 25 mg and about 100 mg of dry powder.
[0075] The dry powder or powder system may have at least about 40% by weight, or at least about 60% by weight, or at least about 80% by weight of the powder system consisting of nicotine particles with a particle size of about 5 micrometers or less, or in the range of about 1 micrometer to about 5 micrometers.
[0076] The nicotine-containing particles may have a mass median aerodynamic diameter of about 5 micrometers or less, or in the range of about 0.5 micrometers to about 4 micrometers, or in the range of about 1 micrometer to about 3 micrometers, or in the range of about 1.5 micrometers to about 2.5 micrometers, preferably as measured by a cascade impactor.
[0077] The flavor-containing particles may have a mass median aerodynamic diameter of about 20 micrometers or more, or about 50 micrometers or more, or in the range of about 50 to about 200 micrometers, or in the range of about 50 to about 150 micrometers, preferably as measured by a cascade impactor.
[0078] The dry powder may have an average particle size of about 60 micrometers or less, or in the range of about 1 micrometer to about 40 micrometers, or in the range of about 1.5 micrometers to about 25 micrometers, where average particle size refers to the average particle size per mass and is preferably measured by laser diffraction, laser diffusion, or electron microscopy.
[0079] The nicotine in the powder system or nicotine particles may be a pharmaceutically acceptable free base nicotine, or a nicotine salt or nicotine salt hydrate. Useful nicotine salts or nicotine salt hydrates include, for example, nicotine pyruvate, nicotine citrate, nicotine aspartate, nicotine lactate, nicotine bitartrate, nicotine salicylate, nicotine fumarate, nicotine mono-pyruvate, nicotine glutamate, or nicotine hydrochloride. The compound that combines with nicotine to form a salt or salt hydrate may be selected based on its expected pharmacological effect.
[0080] Preferably, the nicotine particles contain an amino acid. Preferably, the amino acid may be leucine, such as L-leucine. Providing an amino acid, such as L-leucine, to nicotine-containing particles may reduce the adhesive force of the nicotine-containing particles, and may also reduce the attractive force between nicotine particles, thereby reducing the aggregation of the nicotine particles. Similarly, it may also reduce the adhesive force to flavor-containing particles, thereby reducing the aggregation of nicotine particles with flavor particles. Therefore, the powder system described herein may be a free-flowing material, and may have a stable relative particle size of each powder component even when nicotine particles and flavor particles are combined.
[0081] Preferably, the nicotine may be a surface-modified nicotine salt, in which case the nicotine salt particles include coated particles or composite particles. A preferred coating or composite material may be L-leucine. One particularly useful nicotine particle may be nicotine bitartrate with L-leucine.
[0082] The powder system may comprise a population of flavor particles, which may have any useful size distribution, optionally for inhalation delivery into the mouth or oral cavity of a user.
[0083] The powder system may have at least about 40%, or at least about 60%, or at least about 80% by weight of the population of the flavor particles of the powder system comprised of particles having a particle size of about 20 micrometers or greater. The powder system may have at least about 40%, or at least about 60%, or at least about 80% by weight of the population of the flavor particles of the powder system comprised of particles having a particle size of about 50 micrometers or greater. The powder system may have at least about 40%, or at least about 60%, or at least about 80% by weight of the population of the flavor particles of the powder system comprised of particles having a particle size in the range of about 50 micrometers to about 150 micrometers.
[0084] The flavor-containing particles may include a compound for reducing adhesion or surface energy and the resulting aggregation. The flavor particles may be surface-modified with an adhesion-reducing compound to form coated flavor particles. One preferred adhesion-reducing compound may be magnesium stearate. Providing flavor particles, particularly coating the flavor particles, with an adhesion-reducing compound such as magnesium stearate may reduce the adhesion of the flavor-containing particles and may also reduce the attractive forces between the flavor particles, thereby reducing the aggregation of the flavor particles. Therefore, it may also reduce the aggregation of flavor particles with nicotine particles. Therefore, the powder system described herein may have a stable relative particle size of the nicotine-containing particles and the flavor-containing particles, even when the nicotine particles and the flavor particles are combined. Preferably, the powder system may be free-flowing.
[0085] Conventional formulations for dry powder inhalation contain carrier particles that function to increase the fluidization of active particles, because the active particles may be too small to be affected by simple airflow through the inhaler.Powder systems may contain carrier particles.These carrier particles may be saccharides such as lactose or mannitol, which may have a particle size of more than about 50 micrometers.Carrier particles may be used in formulations to improve dose uniformity by acting as a diluent or bulking agent.
[0086] Powder systems utilized with the nicotine powder delivery systems described herein may be carrier-free or substantially free of saccharides such as lactose or mannitol. The absence of a carrier or substantially free of saccharides such as lactose or mannitol may allow the nicotine to be inhaled and delivered to the user's lungs at an inhalation volume or airflow rate similar to that of a typical smoking session.
[0087] The nicotine particles and flavor may be combined in a single capsule.As mentioned above, the nicotine particles and flavor may each have a reduced adhesive force, and if the particle size of each component does not change substantially when combined, this adhesive force results in a stable particle formulation.Alternatively, the powder system includes nicotine particles contained in a single capsule and flavor particles contained in a second capsule.
[0088] The nicotine particles and flavor particles may be combined in any useful relative amounts such that the flavor particles are noticeable to the user when consumed along with the nicotine particles. Preferably, the nicotine particles and flavor particles form at least about 90% by weight, or at least about 95% by weight, or at least about 99% by weight, or 100% by weight of the total weight of the powder system.
[0089] The inhaler and inhaler system may be less complex and have a simplified airflow path compared to conventional dry powder inhalers. Advantageously, the rotation of the capsule within the inhaler body may aerosolize the nicotine particles or powder system and help maintain a free-flowing powder. Therefore, the inhaler article may not require the high inhalation dose typically utilized by conventional inhalers to deliver the nicotine particles deep into the lungs.
[0090] The inhaler article may use a flow rate of less than about 5 L / min, or less than about 3 L / min, or about 2 L / min, or less than about 1.6 L / min. Preferably, the flow rate may be in the range of about 1 L / min to about 3 L / min, or about 1.5 L / min to about 2.5 L / min. Preferably, the inhalation volume or flow rate may be similar to that of Health Canada smoking method, i.e., about 1.6 L / min.
[0091] The inhaler system may be used by a consumer similar to smoking a traditional cigarette or vaping an e-cigarette. Such smoking or vaping may be characterized by two steps: during the first step, a small volume containing the total amount of nicotine desired by the consumer is drawn into the oral cavity, followed by a second step, in which this small volume containing an aerosol containing the desired amount of nicotine is further diluted with fresh air and drawn deeper into the lungs. Both steps are controlled by the consumer. During the first inhalation step, the consumer may determine the amount of nicotine to be inhaled. During the second step, the consumer may determine the amount to be diluted from the first volume and drawn deeper into the lungs to maximize the concentration of active agent delivered to the epithelial surface of the airways. This smoking mechanism is sometimes referred to as "puff-inhale-exhale."
[0092] The dry powder utilized in the dry powder inhalers of the present invention may eliminate or substantially reduce any exhalation of pharmaceutically active particles during the "exhalation" phase. Preferably, substantially all, or at least about 99%, or at least about 95%, or at least 90% of the pharmaceutically active particles have a particle size that is delivered to the lungs but is not small enough to be exhaled normally by breathing. The pharmaceutically active particle size may be within the range of about 0.75 micrometers to about 5 micrometers, or 0.8 micrometers to about 3 micrometers, or 0.8 micrometers to about 2 micrometers.
[0093] A holder for an inhaler article may be combined with an inhaler article (described herein) that contains a capsule for activating the inhaler article by piercing the capsule, provides reliable activation of the capsule within the inhaler article (by piercing the capsule with a piercing element in the holder), and releases particles contained within the capsule, allowing the article to deliver the particles to a consumer. Although the holder is separate from the inhaler article, a consumer may utilize both the inhaler article and the holder while consuming particles released within the inhaler article. A plurality of these inhaler articles may be combined with a holder to form a system or kit. A single holder may be utilized with 10 or more, or 25 or more, or 50 or more, or 100 or more inhaler articles to activate (puncture or pierce) the capsule contained within each inhaler article and provide reliable activation or, optionally, a visual indication (marking) of inhaler article activation for each inhaler article.
[0094] The inhaler article holder includes a housing having a housing cavity for receiving the inhaler article and a sleeve configured to hold the inhaler article within the housing cavity. The sleeve has a sleeve cavity and is movable within the housing cavity along the longitudinal axis of the housing. The sleeve has a first open end and a second opposite end. The first open end is configured to receive the distal end of the inhaler article. The second opposite end of the sleeve is configured to contact the distal end of the inhaler article. The second opposite end of the sleeve is configured to direct substantially all inhaled air to flow through at least one air inlet of the inhaler article, which extends in a direction tangential to the central passage.
[0095] The inhaler system includes an inhaler article described herein having a capsule disposed within the capsule cavity, and a holder for receiving the inhaler article. The holder includes a housing having a housing cavity for receiving the inhaler article and a sleeve configured to hold the inhaler article within the housing cavity. The sleeve includes a sleeve cavity, and the sleeve is movable within the housing cavity along the longitudinal axis of the housing. The sleeve includes a first open end and a second opposite end. The first open end is configured to receive the inhaler article, and the second opposite end of the sleeve is configured to contact the distal end of the inhaler article.
[0096] The holder may further include a piercing element secured to and extending from the inner surface of the housing, the piercing element extending through the second opposite end of the sleeve and configured to extend into the capsule cavity to pierce the capsule along the longitudinal axis of the housing.
[0097] The holder may further include a spring element configured to bias the sleeve toward the open proximal end of the housing and between a relaxed position and a compressed position. The spring element may be contained within the inhaler article cavity of the holder and may be compressed as the movable sleeve and inhaler article move toward the piercing element. The spring element may be between the sleeve and the distal end of the housing, or may contact the sleeve and the distal end of the housing. The spring element may be between the distal end of the sleeve and the distal end of the housing. The spring element may contact the distal end of the sleeve and the distal end of the housing. The spring element may be disposed around the piercing element. The spring element may be coaxial with the piercing element. The spring element may be a conical spring.
[0098] The spring element biases the inhaler article away from the piercing element. During use, a user may insert the inhaler article into the inhaler article cavity of the holder. By doing so, the spring may be compressed, allowing the inhaler article to move toward the distal end of the inhaler article cavity. Eventually, the piercing element may penetrate a capsule disposed within the inhaler article. Once penetration occurs, the user may release the inhaler article, allowing the spring to bias the inhaler article toward the proximal end of the inhaler article cavity and away from the piercing element. The user may then inhale the proximal end of the inhaler article.
[0099] The sleeve may define a first air inlet zone comprising at least one air opening through the sleeve. The first air inlet zone is proximate the proximal end of the sleeve. The first air inlet zone is configured to allow air to flow from an interior of the sleeve to an airflow channel formed between the sleeve and the housing inner surface. The sleeve may include a second air inlet zone comprising at least one air opening through the sleeve. The second air inlet zone is proximate the distal end of the sleeve. The second air inlet zone is configured to allow air to flow from the airflow channel into the interior of the sleeve.
[0100] All scientific and technical terms used herein have meanings commonly used in the art unless otherwise specified. The definitions provided herein are provided to facilitate understanding of certain terms used frequently herein.
[0101] As used herein, the singular forms "a," "an," and "the" include embodiments having plural referents unless the content clearly dictates otherwise.
[0102] As used herein, "or" is generally intended to include "and / or," unless the context clearly dictates otherwise. The term "and / or" refers to one or all of the listed elements or a combination of any two or more of the listed elements.
[0103] As used herein, the words "have," "having," "include," "including," "comprise," "comprising," and the like are used in an open-ended sense and generally mean "including, but not limited to." It should be understood that "consisting essentially of," "consisting of," and the like are encompassed by "comprising" and the like.
[0104] The words "preferred" and "preferably" refer to embodiments of the invention that may offer certain advantages, under particular circumstances. However, other embodiments may also be preferred, under the same or other circumstances. Moreover, the recitation of one or more preferred embodiments does not imply that other embodiments are not useful, and is not intended to exclude other embodiments from the scope of the present disclosure, including the claims.
[0105] The invention will now be further described with reference to the figures. [Brief explanation of the drawings]
[0106] [Figure 1] FIG. 1 is a cross-sectional view of an exemplary inhaler article taken along its longitudinal axis. [Figure 2] FIG. 2 is a cross-sectional view of another exemplary inhaler article taken along its longitudinal axis. [Figure 3-6] 3 to 6 are cross-sectional schematic views of exemplary tubular elements having one to four tangential air inlets. [Figure 7A] FIG. 7A is a side elevational schematic view of an exemplary flat holder useful with an inhaler article. [Figure 7B] FIG. 7B is a top elevational schematic view of the exemplary planar holder of FIG. 7A. [Figure 7C] FIG. 7C is a cross-sectional schematic view of the exemplary flat holder of FIG. 7B taken along line AA. DETAILED DESCRIPTION OF THE INVENTION
[0107] The schematic drawings are not necessarily to scale and are presented for purposes of illustration, not limitation. The drawings illustrate one or more aspects described in the present disclosure. However, it will be understood that other aspects not shown in the drawings fall within the scope and spirit of the present disclosure.
[0108] 1 and 2 illustrate an exemplary inhaler article 110. The inhaler article 110 may include a capsule 160 disposed within the inhaler article 110.
[0109] The inhaler article 110 includes a body 112 extending along a longitudinal axis "A" from a mouthpiece end 113 to a distal end 114. The mouthpiece end 113 forms the downstream end of the inhaler article 110, and the distal end 114 forms the upstream end. In other words, the mouthpiece end 113 is downstream from the distal end, as indicated by the arrow. A capsule cavity 116 is defined within the body 112. A tubular element 130 extends from the distal end 114 toward the capsule cavity 116.
[0110] The tubular element 130 defines a central passage 132 extending between a first end 134 and a second opposite end 136, with the first end 134 facing a distal end surface 136 of the inhaler article 110 and the sleeve cavity 116. The tubular element 130 includes at least one air inlet 138 that allows air to enter the central passage 132. The at least one air inlet 138 extends in a direction that is tangential to the central passage 132.
[0111] In this embodiment, the second opposite end 136 is shown as being located directly at the distal end 114 of the body 112. Furthermore, in this embodiment, there are no components between the second opposite end 136 and the distal end 114 of the body 112. This simplifies construction of the inhaler article 110 and also facilitates airflow through the inhaler article 110. However, it should be understood that the tubular element 130 "at" the distal end 114 should be interpreted as the tubular element 130 being about the same location as the distal end 114. For example, the tubular element 130 may be offset from the distal end 114 along the longitudinal axis toward or away from the mouthpiece end 113.
[0112] In this example, the second, opposite end 136 is shown as being located directly at the distal end 114 of the body 112. However, it should be understood that the tubing element 130 at the distal end 114 should be interpreted as the tubing element 130 being about the same location as the distal end 114. For example, the tubing element 130 may be offset from the distal end 114 along the longitudinal axis toward or away from the mouthpiece end 113.
[0113] The tubular element 130, capsule cavity 116 (and capsule 160, if present), and porous support element 170 may be axially aligned and disposed in series within the body 112. The tubular element 130 may form the upstream or distal end or boundary of the capsule cavity 116. The capsule cavity 116 may define a space configured to contain the capsule 160. The capsule cavity 116 may have a fixed cavity length bounded on the first end 134 of the tubular element 130 and bounded on the downstream end by the porous support element 170. As shown in FIG. 1 , the porous support element 170 may be disposed within the mouthpiece air channel portion 133 of the body 110. The mouthpiece air channel portion 133 may extend beyond the porous support element 170 to the mouthpiece end 113.
[0114] Tubing element 130 may be disposed within distal end 114 of body 112. A second, opposite end 136 of tubing element 130 may be substantially aligned with distal end 114 of body 112.
[0115] 2, the inhaler article 110 may include an insert body 140 that defines a capsule cavity 116 that contains the capsule 160 and provides support and rigidity to the body 112 along the capsule cavity 116. A filter or porous support element 170 extends from the capsule cavity 116 to the mouthpiece end 113.
[0116] Figures 3-6 are cross-sectional schematic diagrams of exemplary tubular elements 130 having a central passage 132 with one to four tangential air inlets 138. The inner diameter of the tubular element 130 may be approximately 4 mm. Figure 3 illustrates a single tangential air inlet 138 having a diameter of approximately 1.45 mm. Figure 4 illustrates two tangential air inlets 138, each having a diameter of approximately 1 mm and entering the tubular element 130 at 180 degrees from each other. Figure 5 illustrates three tangential air inlets 138, each having a diameter of approximately 0.85 mm and entering the tubular element 130 at 120 degrees from each other. Figure 6 illustrates four tangential air inlets 138, each having a diameter of approximately 0.6 mm and entering the tubular element 130 at 90 degrees from each other.
[0117] 7A-7C, the inhaler system 100 includes an inhaler article 110 and a holder 150. The inhaler article 110 comprises a body 112 that defines the inhaler outer surface. The inhaler article 110 may resemble either of the exemplary inhaler articles 110 of FIG. 1 or FIG. 2. The body 112 extends the length of the body along the inhaler longitudinal axis from a mouthpiece or proximal end 113 to a distal end 114.
[0118] The holder 150 for the inhaler article 110 includes a housing 151 and a piercing element 101. The holder 150 may also include a marking element 190. The housing 151 has an outer housing surface and an inner housing surface. The inner housing surface defines an inhaler article cavity 154 configured to receive the inhaler article 110. The housing 151 extends along a housing longitudinal axis from a distal end 155 to an open proximal end 156 to define a housing length. The open proximal end 156 is configured to receive the distal end 114 of the inhaler article 110 within the inhaler article cavity 154.
[0119] The holder 150 for the inhaler article 110 includes a housing 151 having a housing cavity 154 for receiving the inhaler article 110, and a sleeve 201 configured to hold the inhaler article 110 within the housing cavity 154. The sleeve 201 defines the sleeve cavity and is movable within the housing cavity 154 along the longitudinal axis of the housing. The sleeve 201 has a first open end 202 and a second opposite end 203. The first open end 202 is configured to receive the distal end 114 of the inhaler article 110. The second opposite end 203 of the sleeve 201 is configured to contact the distal end 114 of the inhaler article 110. The second opposite end 203 of the sleeve is configured to direct substantially all inhaled air to flow through at least one air inlet of the inhaler article 110 that extends in a direction tangential to the central passage.
[0120] The piercing element 101 is secured to the housing inner surface and extends from the housing inner surface into the inhaler article cavity 154 along the piercing element's longitudinal axis the length of the piercing element. The piercing element 101 is recessed a recessed distance from the open proximal end 156. The piercing element 101 extends through a central passage of the tubular element 130 and is configured to be movable to extend into the capsule 160 contained within the capsule cavity 116 to penetrate the capsule 160. A spring element 200 may bias the inhaler article 110 away from the piercing element 101.
[0121] The exemplary embodiments described above are not limiting, and other embodiments consistent with the exemplary embodiments described above will be apparent to those skilled in the art.
Claims
1. 1. An inhaler article comprising: a body extending along a longitudinal axis from the mouthpiece end to the distal end; a capsule cavity defined within the body; an inhaler article comprising: a tubular element extending from the distal end into the capsule cavity, the tubular element defining a central passageway having a uniform open diameter extending from the distal end into the capsule cavity, the tubular element comprising at least one tangential air inlet for allowing air to enter the central passageway, the at least one tangential air inlet extending in a direction tangential to the central passageway.
2. The inhaler article of claim 1 , wherein the at least one tangential air inlet is proximate the distal end of the inhaler article body.
3. 3. The inhaler article of claim 1 or claim 2, wherein the central passage has a first end defining an upstream boundary of the capsule cavity and a second, opposite end defining the distal end of the inhaler article body.
4. The inhaler article of claim 3 , wherein the second opposite end defines an open distal end of the inhaler article body.
5. The inhaler article of any one of claims 1 to 4, wherein a central passage extends along the longitudinal axis of the body of the inhaler article and defines an opening at the distal end of the body of the inhaler article that is coaxial with the longitudinal axis of the body of the inhaler article.
6. The inhaler article of any one of claims 1 to 5, wherein a lateral distance along the longitudinal axis between the at least one tangential air inlet and a distal end of the capsule cavity is greater than a lateral distance along the longitudinal axis from the distal end of the inhaler article body to the at least one tangential air inlet.
7. An inhaler article according to any one of claims 1 to 6, wherein the tubular element comprises at least two air inlets, the at least two air inlets extending in a direction that is tangential to the central passage.
8. An inhaler article according to any one of claims 1 to 7, wherein the tubular element comprises at least three air inlets, the at least three air inlets extending in a direction that is tangential to the central passage.
9. An inhaler article according to any preceding claim, wherein the tubular element is formed from a cellulose acetate material.
10. An inhaler article according to any preceding claim, wherein the tubular element is formed from a polylactic acid material.
11. The inhaler article of any of claims 1 to 10, further comprising a capsule held within the capsule cavity.
12. 12. The inhaler article of claim 11, wherein the tubular element central passage has a diameter within the range of about 50% to about 90% of the diameter of the capsule.
13. 1. An inhaler system comprising: An inhaler article according to any one of claims 1 to 12, and a capsule disposed within the capsule cavity; a holder for receiving the inhaler article, a housing having a housing cavity for receiving an inhaler article; An inhaler system comprising: a sleeve configured to hold an inhaler article within the housing cavity, the sleeve having a sleeve cavity and movable within the housing cavity along a longitudinal axis of the housing, the sleeve having a first open end and a second opposite end, the first open end configured to receive an inhaler article, and the second opposite end of the sleeve configured to contact the distal end of the inhaler article.
14. 14. The inhaler system of claim 13, wherein a second opposite end of the sleeve is configured to direct inhaled air to flow through at least one tangential air inlet of the inhaler article extending in a direction tangential to the central passage.
15. 15. The inhaler system of claim 13 or claim 14, further comprising a piercing element fixed to and extending from an inner surface of the housing, the piercing element configured to extend through the second opposite end of the sleeve and into the capsule cavity to penetrate the capsule along the longitudinal axis of the housing.
16. 16. An inhaler system according to one of claims 13 to 15, wherein the capsule contains pharmaceutically active particles comprising nicotine, the pharmaceutically active particles having a mass median aerodynamic diameter of less than about 5 micrometers, or in the range of about 0.5 micrometers to about 4 micrometers, or in the range of about 1 micrometer to about 3 micrometers.
Citation Information
Patent Citations
JP1974130094A
inhaler
JP2009533114A
Dry powder inhaler
JP2014500779A
Non-combustion-type flavor inhaler
WO2017017970A1
Inhaler with vortex tunnel
WO2019130158A1
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