The present disclosure relates generally to inhalers and more particularly to cover assemblies and actuators for inhalers.
Pressurised metered dose inhalers (pMDIs) are generally provided with mouthpiece covers in order to protect their internal passageways from contaminants, such as fluff, lint, dust, etc. Conventional press-and-breathe variants of the pMDIs are typically provided with unattached mouthpiece covers. The unattached mouthpiece covers may be easily lost (for example, pulled off from the inhaler during transportation or misplaced during use). Moreover, the unattached mouthpiece covers may be swallowed by users who forget to remove them before use, and thereby pose a choking hazard. The unattached mouthpiece covers may also be needed to be put somewhere during use of the inhaler, which may not be convenient during certain circumstances.
In response to the aforementioned problem, current inhalers are produced with captive mouthpiece covers. However, strap-like tethers of the current inhalers may restrict movement of the captive mouthpiece covers. Consequently, users may have limited choice on where the captive mouthpiece cover is positioned during the use of the inhaler. The captive mouthpiece cover may obstruct users' hand(s) or face during use of the inhaler. Moreover, the captive mouthpiece covers do not provide flexibility regarding factors, such as handedness, hand-span, hand strength, ergonomic preferences, face shape, etc.
In a first aspect, there is provided an actuator for an inhaler. The actuator includes a sleeve having a first end and a second end. The sleeve is substantially hollow and defines a longitudinal axis along its length. The actuator further includes a base formed at the first end of the sleeve. The actuator further includes a mouthpiece joined to the sleeve and the base. The mouthpiece is substantially hollow and defines a delivery opening. The actuator further includes a cover removably attached to the mouthpiece for covering the delivery opening. The actuator further includes a retaining member for retaining the cover to the sleeve upon removal of the cover from the mouthpiece. The retaining member includes a ring disposed around the sleeve. The ring is at least selectively rotatable about the longitudinal axis and slidable along the longitudinal axis relative to the sleeve. The retaining member further includes a strap extending from the ring and attached to the cover.
In some embodiments, the ring is substantially parallel to the longitudinal axis. The ring is both rotatable and slidable relative to the sleeve.
In some embodiments, the ring is movable between a locked position and an unlocked position. In the locked position, the ring is inclined relative to the longitudinal axis and locked with the sleeve to prevent relative movement between the sleeve and the ring. In the unlocked position, the ring is substantially parallel to the longitudinal axis and is both rotatable and slidable relative to the sleeve.
In some embodiments, in the locked position, the ring is inclined towards the base.
In some embodiments, the mouthpiece is inclined relative to the longitudinal axis.
In some embodiments, the mouthpiece is substantially perpendicular to the longitudinal axis.
In some embodiments, the sleeve further includes a protrusion at the second end thereof. The protrusion is inclined relative to the longitudinal axis.
In some embodiments, the strap is deformable.
In some embodiments, a diameter of the ring is greater than a width of the sleeve.
In a second aspect, there is provided an inhaler. The inhaler includes an actuator. The actuator includes a sleeve having a first end and a second end. The sleeve is substantially hollow and defines a longitudinal axis along its length. The actuator further includes a base formed at the first end of the sleeve. The actuator further includes a mouthpiece joined to the sleeve and the base. The mouthpiece is substantially hollow and defines a delivery opening. The actuator further includes a cover removably attached to the mouthpiece for covering the delivery opening. The actuator further includes a retaining member for retaining the cover to the sleeve upon removal of the cover from the mouthpiece. The retaining member includes a ring disposed around the sleeve. The ring is at least selectively rotatable about the longitudinal axis and slidable along the longitudinal axis relative to the sleeve. The retaining member further includes a strap extending from the ring and attached to the cover. The inhaler further includes a canister containing a fluid formulated with a medicament. The canister is at least partially received within the sleeve.
In a third aspect, there is provided a method of using the inhaler according to the second aspect. The method includes detaching the cover from the mouthpiece to at least partially expose the delivery opening. The method further includes rotating the ring relative to the sleeve to move the cover away from the mouthpiece. The method further includes actuating the inhaler to deliver the medicament through the delivery opening.
In some embodiments, the method further includes sliding the ring towards the second end of the sleeve.
In a fourth aspect, there is provided a cover assembly for an actuator of an inhaler. The actuator includes a sleeve, a base and a mouthpiece. The cover assembly includes a cover removably attached to the mouthpiece for covering a delivery opening of the mouthpiece. The cover assembly further includes a retaining member for retaining the cover to the sleeve upon removal of the cover from the mouthpiece. The retaining member includes a ring disposed around the sleeve. The ring is at least selectively rotatable about a longitudinal axis of the sleeve and slidable along the longitudinal axis relative to the sleeve. The retaining member further includes a strap extending from the ring and attached to the cover.
Exemplary embodiments disclosed herein may be more completely understood in consideration of the following detailed description in connection with the following figures. The figures are not necessarily drawn to scale. Like numbers used in the figures refer to like components. However, it will be understood that the use of a number to refer to a component in a given figure is not intended to limit the component in another figure labelled with the same number.
In the following description, reference is made to the accompanying figures that form a part thereof and in which various embodiments are shown by way of illustration. It is to be understood that other embodiments are contemplated and may be made without departing from the scope or spirit of the present disclosure. The following detailed description, therefore, is not to be taken in a limiting sense.
The present invention will be described with respect to particular embodiments and with reference to certain drawings, but the invention is not limited thereto. The drawings described are only schematic and are non-limiting. In the drawings, the size of some of the elements may for illustrative purposes be exaggerated and not drawn to scale.
It will be understood that the terms “vertical”, “horizontal”, “top”, “bottom”, “above”, “below”, “left”, “right” etc. as used herein refer to particular orientations of the figures and these terms are not limitations to the specific embodiments described herein.
Typically, pressurised metered dose inhaler (pMDI) actuators include a sleeve in which a canister containing a fluid formulated with a medicament is disposed. The pMDI actuator may also include a mouthpiece angled with respect to a longitudinal axis defined along a length of the sleeve. Furthermore, at a base of the sleeve, there may be a nozzle block that includes a stem socket and an exit orifice or actuator nozzle. At the bottom of the actuator, a thumb grip may be provided. The mouthpiece may have a circular, elliptical or oblong cross-section.
During normal operation of an inhaler (an actuator and a canister containing medicament), a plume of medicament is produced from the exit orifice or the actuator nozzle into the mouthpiece and is inhaled by a user through a delivery opening defined by the mouthpiece. The mouthpiece may be covered by a cover removably attached to the mouthpiece, which is detached during the use of the inhaler.
The present disclosure provides a retaining member for retaining the cover to the sleeve upon removal of the cover from the mouthpiece. The retaining member may allow movement of the cover away from the mouthpiece such that the cover may not interfere with the normal operation of the inhaler.
Referring to
The second end 104 may be at a top of the actuator 100 and the sleeve 106. The sleeve 106 may therefore be a hollow tubular component. The canister 202 may be received within the sleeve 106 towards the second end 104 of the sleeve 106 such that at least a portion of the canister 202 extends outwards of the sleeve 106 from the second end 104. The sleeve 106 may also include a front end 103 and a rear end 105. The front end 103 may be at a left side of the actuator 100 and the sleeve 106 as shown in
The actuator 100 further includes a base 108 formed at the first end 102 of the sleeve 106, i.e., the base 108 is formed at the bottom of the actuator 100. Therefore, the hollow structure of the sleeve 106 may terminate at the first end 102 with the base 108.
The actuator 100 may include a nozzle block 208 (shown in
The orifice 212 may be operable for dispensing the spray pattern or spray plume of metered fluid. Moreover, the base 108 may also define a grip section (not shown) at its outside surface. The grip section may aid a user to improve grip on the actuator 100 while using the inhaler 200. The grip section may essentially be a set of protrusions, a set of indents, or any other such structural arrangement.
The actuator 100 may be formed by any suitable material and process. For example, the actuator 100 may be formed with a polyolefin material (e.g., polyethylene or polypropylene), by processes such as injection moulding, compression moulding, rotational moulding, 3-D printing, and the like.
The actuator 100 further includes a mouthpiece 112 joined to the sleeve 106 and the base 108. The mouthpiece 112 may be integrally formed with the sleeve 106. The mouthpiece 112 is substantially hollow and defines a delivery opening 114 (shown in
The actuator 100 further includes a cover 116. The mouthpiece 112 may be covered by the cover 116 to protect the delivery opening 114 from contaminants such as, fluff, lint, dust, etc. Specifically, the cover 116 is removably attached to the mouthpiece 112 for covering the delivery opening 114. The cover 116 may be detachably connected to the mouthpiece 112 by a snap-fit connection. During use of the inhaler 200, the cover 116 can be removed from the mouthpiece 112 to expose the delivery opening 114. The cover 116 may have any suitable shape based on a shape of the mouthpiece 112. The cover 116 may have protrusions or grooves 115 to facilitate gripping by a user.
The actuator 100 further includes a retaining member 118 for retaining the cover 116 to the sleeve 106 upon removal of the cover 116 from the mouthpiece 112. The retaining member 118 and the cover 116 may form a cover assembly 117. In other words, the cover assembly 117 includes the retaining member 118 and the cover 116.
The retaining member 118 includes a ring 120 disposed around the sleeve 106 and a strap 122 extending from the ring 120 and attached to the cover 116. The ring 120 is at least selectively rotatable (indicated by an arrow A1) about the longitudinal axis 110 and slidable (indicated by an arrow A2) along the longitudinal axis 110 relative to the sleeve 106. The ring 120 may have a generally annular shape. The ring 120 is both rotatable and slidable relative to the sleeve 106. The strap 122 may be deformable and may deform in a user desired position without much resistance. Accordingly, the retaining member 118 may be made of any suitable material which may allow deformation of the strap 122. It may be preferable to manufacture the components of the retaining member 118 integrally with each other. Therefore, the retaining member 118 may be preferably made of injection moulded polypropylene.
In some embodiments, a diameter D of the ring 120 is greater than a width W of the sleeve 106, i.e., the ring 120 may be disposed in a slight clearance fit with the sleeve 106. The diameter D corresponds to an inner diameter of the ring 120 that is disposed around the sleeve 106. In some embodiments, the diameter D of the ring 120 may be about 0.2 mm greater than the width W of the sleeve 106. In some embodiments, the diameter D of the ring 120 may be about 0.5 mm greater than the width W of the sleeve 106.
In some embodiments, the sleeve 106 of the actuator 100 further includes a protrusion 107 at the second end 104 of the sleeve 106. The protrusion 107 may aid to retain the ring 120 around the sleeve 106. The protrusion 107 may extend away from the longitudinal axis 110 of the sleeve 106. Further, the protrusion 107 may extend beyond the width W of the sleeve 106.
As shown in
It should be noted that the protrusion 107 is adapted to retain the ring 120 to the sleeve 106. In other words, the protrusion 107 may retain the ring 120 to the sleeve 106 when the ring 120 is slid towards the second end 104. The protrusion 107 may be added to current designs of inhalers. In some embodiments, the sleeve 106 of the actuator 100 may have increased width at the second end 104 such that the diameter D of the ring 120 is less than the width at the second end 104, nullifying the need to include the protrusion 107.
Now referring to
Further, the mouthpiece 112 may define a mouthpiece axis 113 (shown in
In some embodiments, the ring 120 is substantially perpendicular to the longitudinal axis 110 (as shown in
Referring to
As illustrated in
The clearance fit of the ring 120 relative to the sleeve 106 may be greater than the embodiment illustrated in
In the locked position 124, the ring 120 is inclined relative to the longitudinal axis 110 and locked with the sleeve 106 to prevent relative movement between the sleeve 106 and the ring 120. In the locked position 124, the ring 120 may be prevented from any substantial rotation or sliding relative to the sleeve 106. In some embodiments, for locking the ring 120 in the locked position 124, there may be a set of protrusions, a set of indents, or any other such structural arrangement at the front end 103 of the sleeve 106. In some embodiments, a coefficient of friction between the ring 120 and the sleeve 106 may be sufficient to keep the 120 in the locked position 124.
As illustrated in
Users of the inhaler 200 may decide a suitable position for the cover 116 during inhalation. For example, the suitable position for users may depend on their hand size, whether they are right-handed, left-handed or ambidextrous, whether they are a “thumb on top” pusher, a “fingers across the top, and thumb underneath” firer, a “hand wrapped round” holder, and/or whether they are a carer administering a dose to another person. The cover 116 may be positioned to suit them without the cover 116 becoming lost. Two of the many possible suitable positions are illustrated in
In an aspect, the inhaler 200 is provided. The inhaler 200 is shown in
In another aspect, a method of using the inhaler 200 of the present disclosure includes the following steps. The method is explained with reference to
The first step includes detaching the cover 116 from the mouthpiece 112 to at least partially expose the delivery opening 114. During this step, the cover 116 is detached from the mouthpiece 112.
The second step includes rotating the ring 120 relative to the sleeve 106 to move the cover 116 away from the mouthpiece 112. In some cases, the second step further incudes sliding the ring 120 towards the second end 104 of the sleeve 106. The ring 120 may be rotated to any user desired position.
The third step includes actuating the inhaler 200 to deliver the medicament through the delivery opening. Actuating the inhaler 200 may include pressing the canister 202 against the base 108 of the sleeve 106 of the actuator 100.
In some embodiments, a method of using the inhaler 200 of the present disclosure includes the following steps. The method is explained with reference to
The first step includes detaching the cover 116 from the mouthpiece 112 to at least partially expose the delivery opening 114. During this step, the cover 116 is detached from the mouthpiece 112.
The second step includes lifting the ring 120 from the rear end 105 of the sleeve 106 of the actuator 100 in a manner that the ring axis 121 is substantially parallel to the longitudinal axis 110. In other words, the ring 120 is brought to the unlocked position 126 from the locked position 124.
The third step includes rotating the ring 120 relative to the sleeve 106 to move the cover 116 away from the mouthpiece 112. In some cases, the third step further incudes sliding the ring 120 towards the second end 104 of the sleeve 106. The ring 120 may be rotated to any user desired position.
The fourth step includes actuating the inhaler 200 to deliver the medicament through the delivery opening. Actuating the inhaler 200 may include pressing the canister 202 against the base 108 of the sleeve 106 of the actuator 100.
It will be known to one skilled in the art that numerous embodiments of the disclosure are possible. For example, the ring 120 may not be completely continuous and may be in segments. In another example, there may be multiple straps 122 attached to the cover 116. The disclosure is also equally applicable to Dry Powder Inhalers (DPIs), soft mist inhalers, etc.
Unless otherwise indicated, all numbers expressing feature sizes, amounts, and physical properties used in the specification and claims are to be understood as being modified by the term “about”. Accordingly, unless indicated to the contrary, the numerical parameters set forth in the foregoing specification and attached claims are approximations that can vary depending upon the desired properties sought to be obtained by those skilled in the art utilizing the teachings disclosed herein.
Although specific embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that a variety of alternate and/or equivalent implementations can be substituted for the specific embodiments shown and described without departing from the scope of the present disclosure. This application is intended to cover any adaptations or variations of the specific embodiments discussed herein. Therefore, it is intended that this disclosure be limited only by the claims and the equivalents thereof.
This application claims the benefit of U.S. Provisional Application No. 63/017,707, filed Apr. 30, 2020, the disclosure of which is incorporated by reference herein in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/US2021/029125 | 4/26/2021 | WO |
Number | Date | Country | |
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63017707 | Apr 2020 | US |