Cartridge for an inhalation apparatus
Abstract
A cartridge (32) for use in an inhalation apparatus (20) in which said inhalation apparatus (20) comprises a mouthpiece (26) comprising a central bore (40), the cartridge comprising a head portion (102) , a rear portion (104) and a chamber (110) for storing an inhalable substance; wherein the cartridge (32) additionally includes at least a receiving portion in the central bore (40) of the nozzle (26); wherein the cartridge (32) can be rotated from a first position in which the chamber (110) It is closed to an environment, to a second position, where a flow path has been opened from the environment through the chamber (110), when the cartridge (32) is inserted into the central bore (40) of the nozzle ( 26); and where the cartridge (32) comprises structures configured to engage with the inhalation apparatus and to retain the second position once the second position has been reached, characterized in that the cartridge (32) comprises an inlet conduit (112) for the intake of air, the inlet conduit comprising a feed channel (114) and a collimation tube (116), extending the collimation tube (116) into the chamber and comprising the cartridge (32) additionally at least one projection (132) and two or more edges (130a, 130b) that together with the collimation tube (116) in use create vortices from the air flow through the collimation tube when the cartridge (32) is in the second position.

Term
Term ended
Projected expiry passed 7 March 2023, 3.6 years ago.
- Priority
- Filed
- Published
- Projected expiry
- Today
8 claims: 1 independent, 7 dependent
- 1ES 2 425 392 T3 REIVINDICACIONES 1. Un cartucho (32) para su uso en un aparato de inhalación (20) en el que dicho aparato de inhalación (20) comprende una boquilla (26) que comprende un ánima central (40), comprendiendo el cartucho una porción de cabeza (102), una porción posterior (104) y una cámara (110) para almacenar una sustancia inhalable;en donde el cartucho (32) incluye adicionalmente al menos una porción de recepción en el ánima central (40) de la boquilla (26);en donde el cartucho (32) se puede girar desde una primera posición en la que la cámara (110) está cerrada a un medio ambiente, a una segunda posición, donde se ha abierto una trayectoria de flujo desde el medio ambiente a través de la cámara (110), cuando el cartucho (32) se inserta dentro del ánima central (40) de la boquilla (26);y en donde el cartucho (32) comprende estructuras configuradas para engancharse con el aparato de inhalación y para retener la segunda posición una vez se haya alcanzado la segunda posición, caracterizado porque el cartucho (32) comprende un conducto de entrada (112) para la toma de aire, comprendiendo el conducto de entrada un canal de alimentación (114) y un tubo de colimación (116), extendiéndose el tubo de colimación (116) dentro de la cámara y comprendiendo el cartucho (32) adicionalmente al menos un saliente (132) y dos o más bordes (130a, 130b) que junto con el tubo de colimación (116) en uso crean vórtices desde la corriente de aire a través del tubo de colimación cuando el cartucho (32) está en la segunda posición.
- 2Un aparato de inhalación (20) con el cartucho (32) de la reivindicación 1, en el que el aparato de inhalación (20) comprende una cubierta (24), estando adaptada la cubierta (24) para cubrir la boquilla (26), en donde la cubierta (24) y la boquilla (26) incluyen estructuras (54, 57) configuradas en cooperación para retener la cubierta (24) enganchada con la boquilla (26), una vez que la cubierta (24) se ha situado en la boquilla (26).
- 3El cartucho (32) de la reivindicación 1, en el que la porción de cabeza (102) comprende una porción cilíndrica, en el que pestañas (45) se extienden alrededor de la porción cilíndrica, y en el que las pestañas (45) se enganchan con las pestañas (44) correspondientes de la boquilla (26) cuando el cartucho se engancha con la boquilla (26).
- 4El cartucho (32) de la reivindicación 3, en el que el tubo de colimación (116) en uso dirige la corriente de aire a un saliente (132) de la cámara (110).
- 5El cartucho (32) de la reivindicación 1, en el que la porción posterior (104) comprende un saliente central (132).
- 6El cartucho (32) de la reivindicación 1, en el que el saliente central (132) está conformado en forma de cono.
- 7El cartucho (32) de la reivindicación 1, en el que la porción de cabeza (102) y el ánima central (40) de la boquilla (26) están conformados con una forma correspondiente.
- 8El aparato de inhalación (20) de la reivindicación 2, en el que la cubierta (24) está adaptada para enganchar la porción posterior (104) del cartucho (32).
Independent claims8
68 paragraphs in 3 sections, as filed
ES 2 425 392 T3
DESCRIPTION
Cartridge for an inhalation device
Technical field
The present invention is directed to inhalers, and in particular to dry powder inhalers, and forms a cartridge for use in an inhalation apparatus.
Background
Inhalers or inhalation devices that deliver their content in the form of liquid mist and powder in the form of an aerosol, are in common use today. However, these inhalers generally used propellants whose efficiency depends on the pressure, and therefore on the altitude and the atmosphere. Additionally, propellants such as chlorofluorocarbon are prohibited by the treaties, as they are harmful to the environment.
Consequently, dry powder inhalers or inhalation devices were developed. However, these dry powder inhalers were of limited use, especially when transmission of the drug deep into the lung was desired.
These dry powder inhalers had disadvantages in that their design produced particles that moved too fast or clumped together. When the particles traveled too fast, they generally reached the back of the throat, where they were absorbed, never reaching the lungs. Similarly, the agglomerated particles were too heavy, and generally fell out of the inhaled breath stream into the mouth or oral cavity, where they were swallowed without ever reaching the lungs. Consequently, if some dust reached the lungs it was generally in ineffective amounts for proper treatment.
Furthermore, these conventional inhalers are relatively large. As a result of its large size, its portability in pockets and other compartments is limited, and to a large extent, the space required for its use is large. For example, the space required for the use of these conventional inhalers would make it difficult, if not impossible, to use them under a gas mask or the like, since the air space in it is extremely limited. Coupled with the amount of space they take up in pockets, first aid kits, etc., many of these conventional inhalers are not recommended for battlefield and other emergency uses. US Patent No. 5,394,868 discloses an inhalation device in which a chamber that discharges substances is attached to a mouthpiece. A base mechanism is moved relative to the chamber to load the chamber with the inhalation substance in a subsequent operation that follows subsequent movement of the base mechanism.
The structure of the device of US 5,394,868 is complex, and does not lend itself to economical use as a single dose article.
WO-A-97/30743 discloses a similar configuration, in which rotating parts are used to load a chamber that is attached to a nozzle.
EP 1 068 871 A1 discloses an inhalant medicator suitable for prescribing powdered or granulated drugs into the lungs of a patient by the respiratory action of the patient. It also describes a cylindrical medical powder storage member.
Document US 4,338,931 A shows a device for the inhalation of a medicine in powder form in which the medicine is in a capsule comprising two members shaped in a cylindrical shape where at least one of them has hollow means drilling.
US 5,562,918 A describes a drug capsule comprising a sleeve that forms a side wall of the capsule and having a first and a second closure cap that closes the open ends of the sleeve while WO 99/04840 A discusses a pharmaceutical inhaler with a mouthpiece and cap that are rotatably connected to each other.
Summary
According to a first aspect of the invention there is provided a cartridge according to claim 1.
Summary
The invention is as defined in the appended claims.
The apparatus, components, and methods disclosed herein improve upon current art by providing a dry powder inhaler the contents of which can reach the lungs in amounts effective for the treatment of various ailments. The apparatus disclosed herein includes an inhaler (inhalation piece) that uses the user's breath to pass the dry powder from the body of the device to the
ES 2 425 392 T3 lungs of the user, eliminating the need for propellants. Accordingly, the inhaler disclosed herein can be used regardless of altitude and atmospheric conditions.
The inhaler disclosed herein is configured such that when the user's breath reaches a sufficient predetermined flow rate, the dry powder contained therein will de-agglomerate. These non-agglomerated dry powder particles then enter the inhaled breath stream, thus allowing the contents of the inhaler to reach the lungs in effective amounts.
The inhaler is small and compact. This small size makes it possible to use it in small spaces. For example, the inhaler can be worn under, or inserted into, a gas mask or other protective device, utilizing the closed air space of the inhaler without interrupting its function. The inhaler can also be single use or single use and can be disposable.
The inhaler is instantly activated by removing it from a cover or cover unit. The inhaler is detached from the cover by simply pushing it in a direction away from the cover or by rotation, if a helix-shaped screw mechanism is present between the cover and the inhaler. By rotating a cartridge component of the inhaler, where the medication in the inhaler is stored in a chamber, a channel is opened from this chamber to the environment. Additionally, the storage chamber opens to the mouthpiece, providing immediate access to chamber contents for immediate inhalation.
The inhaler is hygienic and its contents are protected until use, while the mouthpiece and the opening to the environment are under a cover that places the inhaler body in a locking configuration until it is desired to use it. Each inhaler can be individually covered, or the individual covers can be joined to make a single unit consisting of multiple covers with corresponding inhalers.
Brief description of the drawings
Attention is now directed to the drawing figures, where like reference numerals or characters indicate corresponding or similar components. In the drawings:
Fig. 1 is an isometric view of one embodiment of the apparatus disclosed herein as a single unit;
Fig. 2 is an exploded view of the device of Fig. 1;
Fig. 3A is an isometric view of the nozzle of Fig. 2;
Fig. 3B is a front view of the nozzle of Fig. 2;
Figs. 3C and 3D are side views of the nozzle of Fig. 2;
Fig. 3E is a rear view of the nozzle of Fig. 2;
Fig. 4 is a cross-sectional view of the apparatus of Fig. 1 showing it in a closed position;
Fig. 5A is a view of the nozzle of Fig. 3D, taken along line 5A-5A;
Figs. 5B, 5C, 5D are cross-sectional views of Fig. 5A, taken along lines 5B-5B, 5C-5C, and 5D-5D, respectively;
Fig. 6A is a front view of the cartridge of Fig. 2;
Fig. 6B is a view of the cartridge of Fig. 6A taken along line 6B-6B;
Fig. 6C is an exploded view of the cartridge of Fig. 6A;
Fig. 7A is a front view of the apparatus of Fig. 1 with the cover repositioned on the part of the inhaler;
Fig. 7B is a cross-sectional view of the apparatus of Fig. 7a taken along line 7B-7B;
Fig. 8 is an isometric view of a second embodiment of an apparatus disclosed herein; Y
Fig. 9 is an isometric view of the embodiment of Fig. 8, showing removal of the part of the inhaler.
Detailed description of the drawings
Figs. 1 and 2 show an apparatus 20 formed by an inhaler part 22 (inhaler) and a cover 24. The inhaler part 22 includes a mouthpiece 26, formed by a tube section 28 and a body section 30, and a cartridge 32 The nozzle 26 includes an inner bore 40 (Figs. 4 and 5A) to receive the cartridge 32 in a friction and rotation joint, allowing the rotation of the cartridge 32 with respect to the nozzle 26, and vice versa (according to the double arrow 41). This connection is maintained by flanges 44 (Figs. 4 and 5A), 45 arranged correspondingly on the nozzle 26 and on the cartridge 32, which are joined together. Both the mouthpiece 26 and the cartridge 32 include ribbed neck sections 48, 49 to facilitate gripping by the user to rotate the cartridge 32 in the mouthpiece 26.
The cover 24 is generally attached to the inhaler portion 22 at the shank 52 of the mouthpiece 26. This shank 52 is generally only slightly smaller in diameter than the corresponding inner diameter of the cover 24 (between the inner surfaces 53 of the cover 24). Shaft 52 also includes at least one recess 54, for engaging correspondingly formed protrusion (s) 57, normally extending continuously around inner surface 53 (Fig. 4) of the cover 24. The dimensions of the shank 52 and of the cover 24, linked to the recess 54 and the corresponding projection (s) 57, allow the cover 24 to be retained on the mouthpiece 26 in a joint by friction, where removing the cover 24 from the nozzle 26 requires minimal effort. Deck 24
ES 2 425 392 T3 may include a cylindrical grooved grip 58 for the fingers that assists the user in grasping the cover 24 when it is desired to use the inhaler portion 22.
Cover 24 and nozzle 26 are normally designed such that it is not possible to reattach cover 24 to nozzle 26, since recess 54 or projection (s) 57 are damaged during removal of the cover. 24, therefore they will no longer serve to maintain the aforementioned coupling. Alternatively, the cover 24 and the mouthpiece 26 could include threaded portions as structures, at least one of which is removed in separation of the inhaler portion 22 from the cover 24, or either of the cover 24 or the Nozzle 26 includes one-way ratchet-like structures that damage said gap. This ensures that the inhaler section 22 will be a one-time, single-use device. Therefore, testing the apparatus 20 to ensure that it has not been used simply involves flipping the apparatus 20 upside down, with the cover 24 pointing to the ground. If the cover 24 falls off easily, this is a true indication that the inhaler part 22 has been used.
Returning also to Figs. 3A-3E and 4 (apparatus 20 is shown in the closed or stowed position in Fig. 4), port 60, extends through shank 52. Port 60 includes an intake opening 62 (through which air from the environment enters the inhaler part 22) above which the cover 24 extends. This allows the inhaler part 22 to be separated from the cover simply by fracturing / detaching it or by twisting or turning it (in the direction of the double arrow 63), if a mechanical screw-in system is used (for example, a screw-type helix joint) between the inhaler part 22 and the cover 24.
Cover 24 extends over and into intake opening 62 and port 60 such that shank 52 fits beyond intake opening 62, since it is desired that port 60 and intake opening be low. the cover and not exposed to the environment until use (ie, removal of the inhaler portion 22 from the cover 24). Being below the cover minimizes the likelihood that dust or other particles could reach the interior of port 60 and clog it. Port 60 is, for example, rectangular in cross-section, with other cross-sectional shapes, such as round, also appropriate. Port 60 terminates in an interior aperture 64, which corresponds in shape and dimensions to aperture 122 (FIG. 6B) in cartridge 32.
The nozzle 26, in its tubular section 28 includes the reed 52, with a particle discharge tube 70 (from the chamber 110, detailed below), which extends the entire length. As shown in Fig. 5A, tube 70 includes an opening 72, typically a rounded or circular opening at its inner end 73. Moving outside, tube 70 has a constant diameter portion 74, followed by a tapered portion 76 and a straight portion 78, terminating in an opening 80, at the outer end 81 through which the particles leave the inhaler portion. 22 and enter the oral cavity of a user. These three parts 74, 76 and 78, join the aggregations of the non-agglomerated residual particles within the particle flow and control the rate at which they are discharged into the oral cavity. Additionally, the lengths of each portion 74, 76, and 78 are optimized such that flow separation (backward flow creating vortices or eddies) does not increase.
Constant diameter portion 74 is of constant diameter and of sufficient length to provide the particles with a direct inlet tube for particle / gas acceleration and development of a high shear flow field. This portion is normally oval or rounded in cross section, as shown in Fig. 5B. This geometry allows the removal of most of the residual agglomerated particles.
The tapered portion 76 tapers outwardly (toward the outer opening 80), typically at angles of about 3 to 7 degrees, and for example about 4 degrees to achieve, for example, a 2: 1 aspect ratio. In this relationship between dimensions, there may be transition of the velocity of the particle stream traveling in this tube 70. This tapered portion 76 originates, for example, with an oval cross section (Fig. 5B) and tapers outwardly into a bean or kidney shaped cross section, as shown in Fig. 5C.
The straight portion 78 is of constant dimensions. This allows collimation and control of the velocity of the particle stream leaving tube 70. This portion 78 is normally bean or kidney shaped in cross section, as shown in Fig. 5D, similar to that of aperture 80. However, other shapes are also possible, as long as they allow control of the velocity of the particle stream.
A bulb 86 on the outside of tubular section 28, typically a raised oval or other rounded shape, functions as a tongue depressor, as well as the locator for the nozzle discharge tube. Specifically, as shown in detail in Figs. 3C-3E, 4 and 7B, this shape and these dimensions for the bulb 86 keep the tongue down, so as not to block the flow of particles in the mouth (oral cavity). Shaft 52, particularly where it is larger in diameter than tube 70, serves as a stop surface to support the user's lips, allowing the lips to form a seal around tubular section 28 at this point for suction, to in order to reinforce the inhalation. Alternatively, there may be a protrusion on the tubular section 28, on the opposite side of the bulb 86 (i.e., tongue depressor), which serves as a butt surface for the lips, allowing the lips to form a seal around the section. tubular 28 at this point of suction, in order to reinforce inhalation.
The inner bore 40 of the nozzle 26 is formed in correspondence with the shape of the head portion 102 (Figs. 6A-6C) of the cartridge 32. This bore 40 includes a serrated groove 90 (Figs. 4 and 7B) that allows to a
ES 2 425 392 T3 Correspondingly sized key 154 of the cartridge 32 to be retained there, while up to 90 degree turns of the cartridge 32 in the mouthpiece 26 are allowed in order for the inhaler portion 22 to move from the off position. closed or collected (shown in Fig. 4), to the open or inhalation position (shown in Figs. 7A and 7B), for inhalation and transport of particles to the lungs. The teeth (not shown), normally positioned at 90 degrees to each other, extend into the surface 94 of the inner bore 40. These teeth are cooperatively configured to engage the edges 150 to the cartridge 32, after the cartridge 32 rotates to the open position (detailed below). These teeth generally include radial or rounded edges, which allow movement of cartridge 32 with respect to nozzle 26 (and vice versa), between the open and closed positions. Alternatively, these teeth, if provided with square or sharp edges, will be one-way, thus not allowing movement back to the closed position (Fig. 4) from the open position (Fig. 7B), with which apparatus 20 is a one-time or single use apparatus.
Figs. 6A-6C show cartridge 32 in detail. Cartridge 32 is generally formed of a head portion 102 and a rear portion 104, which may be together in a friction snap fit, weld, or bond by other conventional attachment techniques and / or mechanisms. The head 102 and rear 104 portions when put together house a chamber 110 therein combined.
An inlet conduit 112 for intake of air extends into chamber 110, at head portion 102. This inlet conduit 112 is formed by a feed channel 114, formed correspondingly with respect to port 60, to alignment when inhaler portion 22 is in the open position, and a collimation tube 116, extending from feed channel 114 (through aperture 117a) into chamber 110 (through aperture 117b) .
An outlet tube 118 for the particles extends from chamber 110 (through aperture 119) to outer surface 120 of cartridge 32. This outlet tube 118 terminates in an aperture 122 sized to correspond to aperture 72 in the mouthpiece 26 for particle flow therethrough, when cartridge 32 and mouthpiece 26 are aligned with inhaler portion 22 being in the open position (FIG. 7).
Inside chamber 110 are edges 130a, 130b, usually rounded in shape. At the rear portion 104, the edges 130b extend to form a central boss 132. This boss 132 is normally cone-shaped, and attached to the edges 130a, 130b, creates the vortices for the particles (represented by arrows 134) of the air stream through collimation tube 116 (represented by arrows 136). By creating the vortexes, the particles are deagglomerated and suspended at a uniform dry propelled aerosol concentration. This is maximized by effectively emptying chamber 110 and allowing particles to be introduced into the flow of respiration.
Inside this chamber 110, the inhalant, which is normally in dry powder form, is kept. This inhalant can be for example bioactive molecule (s) encapsulated in Technosphere® particles from Mannkind Corporation, Valencia, California, 91355, as described in document US 2004/018152, or atropine, antibiotics, such as penicillin, doxycycline, ciprofloxacin and fluoroquinolones, encapsulated in Technosphere® particles, These Technosphere® particles and the processes for their manufacture are disclosed in US Patent Nos. 5,352,461,5,503,852 and 6,071,497.
Head portion 102 is generally formed of a cylindrical portion 140, a conical portion 142 (for example at about a 60-70 degree angle), and a discoidal portion 144, above conical portion 142. Flanges 45 extend typically around cylindrical portion 140 to thereby engage corresponding flanges 44 of nozzle 26, and maintain the frictional and rotational bonding of cartridge 32 and nozzle 26 as detailed above. The conical portion 142 includes an opening 146 for the feed channel 114, which is normally rectangular for optimal flow control, as well as the opening 122 for the outlet tube 118.
The edges 150 protrude a slight distance from the surface 151 of the conical portion 142. By extending this slight distance attached to the cartridge material, and thus the edge 150, the edges 150 behave in a spring-like manner. Edges 150 are typically square or sharp points 152, but could also be radial or rounded at their edges. Edges 150 are dimensioned corresponding to openings 64, 72 in nozzle 26, where they seat when apparatus 20 is in the closed position. (Openings 64, 72 typically include radial or rounded edges to allow rotation of cartridge 32 in nozzle 26 from closed to open position). The edges 150 ultimately rest on the teeth (as detailed above), with the spring-like behavior of the edges 150 providing the tactile sensation that the cartridge 32 and nozzle 26 are no longer attached in the initial closed position and the open position has been reached. These edges 150 are normally located at 180 degrees from each other (although other positions are also possible), these 180 degrees corresponding to the positions of the nozzle openings 64, 72 and the respective teeth on the nozzle 26.
ES 2 425 392 T3
A key 154 extends from the discoidal portion 144. The key 154 is normally crescent-shaped, and fits within the slot 90 (Figs. 4 and 7B) in the nozzle 28, with the slot 90 serving as a limit for the key.
154, and consequently has enough space to limit the rotation of the cartridge 32 with respect to the nozzle (and vice versa) to eg 90 degrees (so that the rotation is between the open and closed positions).
The rear portion 104 includes the ribbed neck section 49, as detailed above. Additionally, there are threads 158 or ring teeth at the end of rear portion 104, which can be mated with corresponding threads 159 or edges on cover 24, to hold the cover on inhaler section 22. Alternatively, this section of the rear portion 104 and the corresponding portion of the cover 24 may be permanently locked once attached, thereby causing one-time use of the apparatus 20, as shown in Figs. 7A and 7B. However, this attachment of the cover 24 to the rear portion 104 is optional, since normal operation of the inhaler portion 22 does not require the cover 24 to be attached to the rear portion 104.
All the components mentioned above, the cover 24, the nozzle 26 and the cartridge 28, and all the structures located on and / or inside them are normally made of plastics, polymers, or the like, one of such plastics being acetal plastic. for example the plastics DELRIN® 500 and Antistatic CELCON®. Although these plastics are cited, multiple other plastics, polymers, and other materials are also suitable for the components mentioned herein. These plastics, polymers, and other materials can be selected, for example, based on the composition that will be in chamber 110, environmental and storage factors, and the like. These components are typically formed by techniques such as molding and, for example, injection molding.
Turning specifically to Figs. 7A and 7B, the inhaler portion 22 is detailed in an open position, ready for use (inhalation of the contents of chamber 110). As shown here, feed channel 114 and outlet tube 118 are positioned in cartridge 32, which, having been rotated, are aligned respectively with inlet port 60 and discharge tube 70. This alignment in the open position creates a flow path for inhalation, from inlet opening 62 (for intake of ambient air), through chamber 110, where a flow of particles is created, and through the discharge tube 70 from mouthpiece 26, where the particle stream is inhaled for final delivery to the lungs, even the deepest area of the lungs. The inlet port 60, attached to the feed channel 114, and the outlet tube 118, are normally angled at an angle Θ, being at approximately 0 to 180 degrees from each other, and for example, approximately 45 degrees, to avoid large back pressures, which inhibit air flow along the flow path.
Figs. 8 and 9 show a multi-unit system 200. Here, unique inhaler parts 222, similar in all respects to inhaler parts 22 (detailed above), are in covers 224, similar to covers 24 (detailed above). ), which are joined as a single unit. Covers 224 include weak parts 227 and openings 229 therebetween, allowing easy separation into individual units 20 '.
Contents3
8 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8
35 members in 14 offices
Priority claims5
| Document | Office | Kind | Date |
|---|---|---|---|
| 366302P | United States of America | – | |
| 36630202 | United States of America | P | |
| 36630202 | United States of America | P | |
| 366302P | – | – | – |
| US20020366302P | – | – | – |
Members35
| Document | Office | Kind | |
|---|---|---|---|
| CA2479751A1 | Canada | A1 | |
| WO03080149A2 | World Intellectual Property Organization (WIPO) | A2 | |
| AU2003220125A1 | Australia | A1 | |
| US2003209245A1 | United States of America | A1 | |
| WO03080149A3 | World Intellectual Property Organization (WIPO) | A3 | |
| EP1494732A2 | European Patent Office (EPO) | A2 | |
| EP1494732A4 | European Patent Office (EPO) | A4 | |
| JP2005520641A | Japan | A | |
| US6923175B2 | United States of America | B2 | |
| US2005188988A1 | United States of America | A1 | |
| AU2003220125B2 | Australia | B2 | |
| US7140365B2 | United States of America | B2 | |
| EP1494732B1 | European Patent Office (EPO) | B1 | |
| AT385193T | Austria | T | |
| ATE385193T1 | Austria | T1 | |
| US2008041372A1 | United States of America | A1 | |
| EP1894591A2 | European Patent Office (EPO) | A2 | |
| DE60318938D1 | Germany | D1 | |
| PT1494732E | Portugal | E | |
| CA2479751C | Canada | C | |
| DK1494732T3 | Denmark | T3 | |
| ES2300568T3 | Spain | T3 | |
| SI1494732T1 | Slovenia | T1 | |
| EP1894591A3 | European Patent Office (EPO) | A3 | |
| HK1116106A1 | Hong Kong, China | A1 | |
| DE60318938T2 | Germany | T2 | |
| JP4681231B2 | Japan | B2 | |
| US8166970B2 | United States of America | B2 | |
| US2012247464A1 | United States of America | A1 | |
| EP1894591B1 | European Patent Office (EPO) | B1 | |
| ES2425392T3This record | Spain | T3 | |
| CY1108072T1 | Cyprus | T1 | |
| US8783249B2 | United States of America | B2 | |
| US2014290654A1 | United States of America | A1 | |
| US9700690B2 | United States of America | B2 |
Numbers
- Publication
- 2425392
- Publication, DOCDB
- 2425392
- Publication, EPODOC
- ES2425392T
- Application
- 7022752
- Application, DOCDB
- 07022752
- Application, EPODOC
- ES20070022752T
Titles2
- Spanish
- Cartucho para un aparato de inhalación
- English
- Cartridge for an inhalation device
Classification
- CPC, 9
- A61M15/0028
- A61M15/0093
- A61M15/06
- A61M2202/064
- A61M2205/12
- A61M2206/16
- A61M15/0021
- A61M15/0025
- A61K9/14
- IPC, 3
- A61M15 00
- A61M15 06
- B67D7 78