An apparatus and method for performing positive pressure (PP) therapy alone or in combination with an aerosol delivery apparatus. The positive pressure apparatus includes a positive pressure valve having a continuously variable respiratory window. The PP valve may be associated with a patient respiratory system interface alone, such as, but not limited to, a mask or mouthpiece, or in combination with an aerosol delivery apparatus.
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1. A positive respiratory pressure apparatus comprising:
a patient respiratory system interface;
a one-way valve positionable in the patient respiratory interface and configured to pass a fluid traveling in a predetermined direction from a first side to a second side of the one-way valve; and
wherein the patient respiratory system interface comprises a bypass window integral with, and defined by, the patient respiratory interface, the bypass window positioned adjacent the one-way valve, and wherein the patient respiratory interface further comprises a window opening adjustment mechanism movably disposed in the patient respiratory system interface and operable to change a size of an opening between the patient respiratory system interface and ambient air outside of the patient respiratory system interface, whereby the bypass window and window opening adjustment mechanism cooperate to selectively create one of a plurality of fluid resistances.
0. 22. A respiratory apparatus comprising:
a holding chamber extending in a longitudinal direction and comprising input and output ends;
a mouthpiece in fluid communication with and connected to said output end, wherein said mouthpiece comprises:
a first annular wall arranged around and defining an inhalation passageway and extending longitudinally away from an output end of said mouthpiece and towards said holding chamber in said longitudinal direction, said first annular wall having an inner side surface and an outer side surface, wherein said first annular wall has a window formed therein, wherein said window is formed by a notch defined in an edge of said first annular wall, and wherein said inner side surface of said annular wall defines an entirety of an exhaust conduit upstream of said window;
a second annular wall disposed laterally outwardly of said first annular wall and forming a gap between said first and second annular walls;
a one-way inhalation valve member disposed in said inhalation passageway; and
a flow control member extending in said longitudinal direction and positioned in said gap between said first and second annular walls immediately adjacent said outer side surface of said first annular wall, wherein said flow control member is moveable between a first position, wherein at least a portion of said window is open such that exhaust gases can escape through said window during exhalation, and a second position, wherein said flow control member is positioned over and closes said window.
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0. 23. The apparatus of claim 22 wherein said one-way inhalation valve member is configured as a duck-bill valve.
0. 24. The apparatus of claim 22 wherein said mouthpiece comprises a patient interface component and a connector component, wherein said connector component is coupled to said output end of said holding chamber.
0. 25. The apparatus of claim 24 wherein said one-way inhalation valve comprises a base portion.
0. 26. The apparatus of claim 25 wherein said base portion is secured between said patient interface component and said connector component.
0. 27. The apparatus of claim 25 wherein said first annular wall seals against said base portion of said one-way inhalation valve member.
0. 28. The apparatus of claim 24 wherein said patient interface component and said connector component are releasably connected.
0. 29. The apparatus of claim 28 wherein said patient interface component and said connector component are releasably connected with a snap-fit.
0. 30. The apparatus of claim 22 wherein said mouthpiece comprises a first opening mating with said holding chamber and a second opening axially spaced from said first opening, wherein said second opening is smaller than said first opening.
0. 31. The apparatus of claim 22 wherein a portion of said mouthpiece has a dome- shaped interior surface.
0. 32. The apparatus of claim 22 wherein said mouthpiece comprises a mask.
0. 33. The apparatus of claim 22 further comprising a backpiece disposed at said input end, said backpiece having an opening shaped and adapted to receive a metered dose inhaler.
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This application is a continuation of U.S. application Ser. No. 09/833,019, filed Apr. 11, 2001, now U.S. Pat. No. 6,557,549, which claims the benefit of U.S. Provisional Application No. 60/196,555, filed Apr. 11, 2000, wherein the entirety of each of the aforementioned applications are incorporated herein by reference.
The invention relates to an apparatus and method for performing Positive Expiratory Pressure (PEP) therapy. More particularly, this invention relates to a method and apparatus for performing PEP therapy alone or in conjunction with an aerosol delivery apparatus.
PEP therapy is used primarily in pulmonary secretion removal. Devices used to perform PEP therapy provide positive pressure during expiration. The patient or user exhales against a fixed orifice resistor and generates a pressure ranging approximately from 10-20 cm H2O. The resistance orifice is an important consideration and frequently is initially set by a physician, veterinarian, or a skilled practitioner in the art. An orifice that is too large may result in a short exhalation that will not produce proper expiratory pressure. An orifice that is too small may result in a longer expiratory phase that raises the pressure above approximately 20 cm H2O and ultimately increases the work of breathing.
During the exhalation phase of PEP therapy, the airway is splinted open by the pressure. This causes the movement of secretions from the peripheral airways into the larger airways where they can be expelled. PEP therapy usually lasts for about 10-20 minutes and is performed as required, generally 1-4 times per day. Typically, the patient performs 10-20 PEP breaths, removes the device from their mouth and follows this with a forceful exhalation. This final exhalation triggers a cough that loosens secretions.
Studies indicate that PEP therapy dilates the airways and improves the distribution of ventilation, resulting in a better deposition of an inhaled substance, such as, but not limited to, a medicine or remedy. As used herein, the term “aerosol delivery apparatus” means any apparatus capable of producing and/or delivering a substance, such as, but not limited to, a medicine, in a form suitable for inhalation by a patient and includes, without limitation, an aerosol holding chamber, nebulizer, spacer with integrated actuator, a dry powder inhaler, and a metered dose inhaler.
One aspect of the present invention is directed to a positive respiratory pressure apparatus including a patient respiratory system interface and a valve assembly in fluid communication with the patient respiratory system interface. The valve assembly has a valve configured to pass a fluid traveling in a predetermined direction from a first side to a second side of the valve, and a variable resistance bypass window positioned adjacent the valve and having a resistance to a fluid traveling in a direction opposed to the predetermined direction, where the variable resistance bypass window is continuously adjustable between a first fluid resistance and a second fluid resistance.
According to another aspect of the invention an apparatus is disclosed that is capable of performing positive expiratory pressure (PEP) therapy alone or in combination with providing a substance, generally in aerosol form. The apparatus includes a positive pressure (PP) valve having a continuously variable respiratory window. As used herein, the term respiratory is intended to encompass both inhalation and exhalation. Whether inhalation resistance or exhalation resistance is called for will be known to one skilled in the art. The valve may be located at or near the output end of an aerosol delivery apparatus. U.S. application Ser. No. 08/938,686 filed Sep. 26, 1997 in the name of Engelbreth et al. and Ser. No. 09/287,997 filed on Apr. 7, 1999 in the name of Schmidt et al. describe exemplary embodiments of an aerosol delivery apparatus and the disclosures of these references are incorporated herein by reference. Further, U.S. Pat. No. 4,470,412 to Nowacki et al., describing a spacer or expansion chamber, is additionally incorporated herein by reference. The aerosol delivery apparatus with the PP apparatus may be used alone or in combination with a mask or mouthpiece.
In one embodiment, the PP apparatus is associated with a mask. The mask with the PP apparatus may be used alone or in combination with an aerosol delivery apparatus. In another embodiment, the PP apparatus is associated with a mouthpiece. The mouthpiece with the PP apparatus may be used alone or in combination with an aerosol delivery apparatus. In a further embodiment, the PP apparatus is associated with a nebulizer. The nebulizer with the PP apparatus may be used alone or in combination with a patient respiratory system interface, such as a mask or mouthpiece. In yet another embodiment, the PP apparatus is associated with a spacer chamber with an integrated actuator. The spacer chamber with the integrated actuator associated with the PP apparatus may be used alone or in combination with a mouthpiece or mask.
In another embodiment, a pressurized metered dose inhaler canister is capable of association with an aerosol holding chamber having a PP valve associated therewith. In yet a further embodiment, a pressurized metered dose inhaler canister is capable of association with an aerosol holding chamber engageable with a mouthpiece or mask having a PP valve associated therewith.
Another aspect of the invention is directed to a kit for performing positive expiratory pressure including an aerosol delivery apparatus, a mouthpiece and/or mask attachable to the output end of the aerosol delivery apparatus, and a PP apparatus. The PP apparatus may be located on the aerosol delivery apparatus or the mouthpiece and/or mask. In alter- native embodiments, the PP apparatus may be attached to the aerosol delivery apparatus or integrally formed with the apparatus. The aerosol delivery apparatus, mouthpiece, and PP valve can be combined so as to accomplish positive expiratory therapy and administration of a substance, such as, but not limited to, a medicine in aerosol form. Any aerosol delivery apparatus may be used. In further embodiments of the kit, a backpiece is included for association with an aerosol delivery apparatus. A pressurized metered dose inhaler can engage with the backpiece for delivery of a medicament.
One embodiment of a method of performing positive expiratory pressure therapy includes providing a PP apparatus with a valve that is capable of providing a continuously variable expiratory window. The method further includes performing a series of breaths. When exhalation is performed, the exhalant is directed through the continuously variable expiratory window. Performance of a therapeutic cough triggers the loosening of secretions. Upon loosening of the secretions, a substance, such as a medicament, may be provided for inhalation into the respiratory system. In an alternative embodiment of method, the PP valve may be positioned so as to provide positive inspiratory pressure upon inhalation into the apparatus.
A further aspect of another embodiment includes association of a PP apparatus associable with a mask or mouthpiece engageable with a backpiece device. The backpiece device includes a plastic or an elastomeric adapter suited to receive the mouthpiece of a pressurized metered dose inhaler.
One embodiment of a method of performing positive expiratory pressure therapy includes providing a positive expiratory pressure apparatus having a valve capable of providing a continuously variable resistance window, performing a series of breaths including inhalation and exhalation; exhaling so that the exhalant is directed through the continuously variable resistance window, performing a therapeutic cough triggering the loosening of secretions, and providing an inhaleable medicament.
Another embodiment of a method of performing positive expiratory pressure therapy includes providing a positive respiratory pressure apparatus having a valve capable of providing a continuously adjustable resistance to exhalation, where the valve is located in a mouthpiece attachable to a chamber. A patient then executes a series of therapeutic breaths, including inhalation and exhalation, wherein the exhalant is directed through the continuously adjustable resistance window, the patient performs a therapeutic cough triggering the loosening of secretions, and medicament is provided via the chamber.
According to another aspect of the invention, a method of performing positive expiratory pressure therapy in combination with providing an aerosolized medicament includes providing a positive expiratory pressure apparatus having a positive expiratory pressure valve capable of providing a continuously variable resistance window, where the valve is positionable in a mouthpiece and the mouthpiece attachable to an aerosol holding chamber. A series of therapeutic breaths, including inhalation and exhalation, are then taken where the exhalant is directed through the continuously variable resistance window. The continuously variable resistance window is preferably capable of providing a variable back pressure to the exhalant. A therapeutic cough capable of triggering the loosening of sections is performed and aerosolized medicament from the aerosol holding chamber is administered through inhalation.
One embodiment of an apparatus capable of performing positive respiratory pressure therapy in combination with providing an aerosolized medicament includes a positive respiratory pressure valve having a continuously variable resistance window; and an aerosol holding chamber having an output end, the positive respiratory pressure valve locatable at the output end.
Another embodiment of an apparatus capable of performing positive respiratory pressure therapy includes a positive respiratory pressure valve having a slide control, the slide control providing a continuously variable resistance window; and a mouthpiece, the mouthpiece having a first and a second end, the second end capable of association with the positive respiratory pressure valve.
Yet another embodiment of an apparatus capable of performing positive respiratory pressure therapy in combination with providing an aerosolized medicament includes a positive respiratory pressure valve having a continuously variable resistance window; an aerosol holding chamber having an input end and an output end, the positive respiratory pressure valve locatable at the output end; and a metered dose inhaler canister capable of association with the input end of the aerosol holding chamber.
A still further embodiment of a kit for performing positive expiratory pressure includes an aerosol holding chamber having an inlet and an outlet. A backpiece is attachable to the inlet of the aerosol holding chamber with a metered dose inhaler capable of association with the backpiece. A mouthpiece is attachable to the outlet of the aerosol holding chamber. A positive expiratory pressure valve is generally locatable at the outlet end of the aerosol holding chamber, wherein the aerosol holding chamber, backpiece, mouthpiece, and positive expiratory pressure valve can be combined so as to accomplish positive expiratory therapy and administration of an aerosolized medicament.
An additional embodiment of an apparatus capable of performing positive expiratory pressure therapy in combination with providing an aerosolized medicament includes a positive expiratory pressure valve having a continuously variable resistance window, a mouthpiece, the positive expiratory pressure valve associable with the mouthpiece, and a nebulizer having an input end and an output end, the positive expiratory pressure valve associable with the output end.
Further embodiments include a mouthpiece wherein the improvement comprises a positive pressure valve. An additional embodiment includes a nebulizer wherein the improvement comprises a positive pressure valve. Moreover, an embodiment includes an aerosol holding chamber wherein the improvement comprises a positive pressure valve. A yet further embodiment includes a pressurized metered dose inhaler wherein the improvement comprises a positive pressure valve.
The invention will best be understood by reference to the following detailed description of the preferred embodiment, taken in conjunction with the accompanying drawings. The discussion below is descriptive, illustrative and exemplary and is not to be taken as limiting the scope defined by any appended claims.
In the embodiment of
In the embodiment depicted in
The PP valve 12 may be located on or in conjunction with a mouthpiece 16. An exemplary embodiment of the mouthpiece 16 shown in
Generally, in one exemplary embodiment, the PP valve 12 may be located at or near the distal end 30 of the mouthpiece 16. Although, it is understood that the PP valve 12 may be located anywhere on the mouthpiece 1 and its location is not to be limited. In an alternative embodiment, the PP valve 12 may be located at or near the output end 20 of the aerosol delivery apparatus, such as, but not limited to, the aerosol holding chamber 14 of
In a preferred embodiment the mouthpiece 16 is formed of plastic. The plastic may be either rigid or soft. Other materials that can also be used for the mouthpiece 16 include metal or other materials known to one in the art. In the embodiment depicted in
In a further embodiment, as shown in
In the illustrated embodiment, the tab setting 46 is a uniformly molded projection from the slide control 26. In a preferred embodiment, the tab setting 46 has smooth edges for easy engagement with the finger, thumb or appendix of the user. The tab setting 46 may also have a serrated edge or any other edge known in the art. When assembled with the mouthpiece 16, the tab setting 46 projects through the mouthpiece from the tab window 48. The user of the device manipulates the tab setting 46 in such a manner as to cause, either directly or indirectly, the movement of the slide control 26 thereby varying the opening of the resistance window 28.
In the embodiment of
In the embodiment shown in
The end of the slide control 26 opposite the control arm 56 may either be provided with a finger projection 58 or may be smooth. The length of the slide control 26 extending from the tab setting 46 to the end of the control arm 56 opposite the projection 58 is generally the length of the resistance window 28. This resistance control length 60 is at least the length that the resistance window 28 can be opened allowing for exhalant to exit the window 28. In a preferred embodiment, the slide control 26 is manufactured of a plastic. The plastic may be either rigid or soft. Other materials that can also be used for the slide control 26 include metal or other materials known in the art.
In general, as shown in
An alternative embodiment of an assembly 100 for performing PEP therapy is shown in
The detent 158 located on the tab setting 146 is associated with at least one detent notch 154 as shown in
The slide control 126, as shown in
As described above, and similar to the embodiment of
Referring to
Referring to
The mouthpiece assembly 216 is connected to the output end 222 of the chamber housing 214 by placing the apertures 284 over the locking tabs 281. As with the embodiment of
A valve 278 having a valve member 279 and a valve seat 280 is shown. The valve seat 280 preferably comprises the rim of the valve and the corresponding raised lip 283 on the outlet end 222 of the chamber housing 214. The valve member has a sealing surface that preferably forms between two parallel portions, or lips, of the valve. In a preferred embodiment, the valve material seals against itself when fluid flows against a predetermined flow direction of the valve. In the embodiment shown, the valve is a duck-bill valve where the valve seat 280 is positioned axially away from the valve opening. The valve 278 defines a central open area toward the end having the valve seat. The valve member 279, shown as parallel sealing lips in
In one preferred embodiment, the duck-bill valve 278 has a central open area 274 at its base that has a diameter of approximately 26.09 millimeters (mm). The width of the lips that form the valve member 279 is approximately 21.35 mm and the angle at which the walls 285 converge is approximately 72 degrees. Also, the height of the duck-bill valve 278 measured from the upper portion 282 of the valve seat to the valve member 279 is approximately 18.8 mm. The mouthpiece 216 for containing this valve 278 preferably includes a resistance widow gap 225 having a length of 59 degrees of arcuate cut in the annular sealing ring 224, where the annular sealing ring is approximately 31.4 mm in diameter and has a height of 4.5 mm.
The operation of the apparatus will now be discussed generally with reference to the embodiments of
Exhalation by the patient results in air traveling through the mouthpiece in a direction opposite the predetermined inhalation flow path of the valve. This air, which is blocked from passage through the valve along the inhalation path, then passes along a second path through the resistance window in the mouthpiece. Also, the force of the exhaled air causes the outer portion of the valve to move away from the mouthpiece in a direction towards the chamber housing. As a result, an exhalation pathway is created between the outer portion of the valve and the mouthpiece through which the exhaled air passes out to the atmosphere or some other predetermined location. As described above, the amount of effort that exhalation requires is set by the slide control, which may be set to block the appropriate amount of the resistance window to achieve the desired resistance.
Referring specifically to the duck-bill valve embodiment of
As shown in
Although the embodiments of
In
Referring again to
Upon exhalation into the proximal end 430 of the mouthpiece 416, a positive pressure builds in the nebulizer 414 and the piston acts as a one-way valve to close off the flow of air out of the nebulizer. Now, the exhalant must travel through the one-way valve in the PP valve assembly 412, through the slide control and out the resistance window. Preferably the slide control 426 under the resistance window 428 has been set to the appropriate position for the patient so that effective PEP therapy may be provided. Although the PEP apparatus of
Although positive expiratory devices have been shown in detail, embodiments of positive inspiratory devices are also contemplated.
As discussed above, embodiments of patient respiratory system interfaces aside from the mouthpiece configurations already disclosed are contemplated. A PP apparatus 510 utilizing a mask 512 as the interface is illustrated in
Referring to
This embodiment depicts the resistance window 528 as a curved tear-drop like shape. The platform 526 is shown as a circular disc having at least one port opening 530. The port opening 530 may vary in size and shape. The opening formed for the exhalant to pass through is related to the alignment of the resistance window 528 with the port opening 530. In this embodiment, the resistance window is moveably mounted relative to a fixed slide control portion attached to the mask. Tabs 542 on the platform 526 preferably mate with tab receiving regions 544 on the end of the nosepiece section 516 to retain the platform in a fixed position relative to the mask. Moving the tear-drop shaped resistance window 528 past the part opening 530 vanes the exhalant path. In other embodiments, a plurality of resistance window openings 528 may be moved past the port 530. Alternatively, there may be a plurality of ports in the slide control 526.
As shown in
In alternative embodiments, PEP therapy maybe performed with a mouthpiece or mask having the PP valve associated with a backpiece. The mask or mouthpiece may have an extended inlet for association with the backpiece.
Asthmatic medications are commonly supplied in metered dose inhalers, frequently referred to as pressurized metered dose inhalers. Pressurized metered dose inhalers are generally cylindrical canisters with axially extending vent tubes from internal valves. When the external tube or stem of a pressurized metered dose inhaler canister is depressed it operates the internal valve to dispense a measured dose of medicine from the stem. The medicine is commonly packed in the canister with a suitable compressed gas to propel the medicine and gas from the stem or tube when the later is depressed. The medicine may be in gas, liquid, or solid form. The manufacturer or distributor of the pressurized metered dose inhaler canister generally supplies it with a substantially L-shaped adapter which receives the canister in a substantially upright position, and has a substantial horizontal outlet portion for reception in the mouth of an asthmatic patient for inhalation of the medicine.
In order to address the problem of coordination and other problems known in the art with regard to pressurized metered dose inhalers, a spacer chamber with an integrated actuator, or an aerosol holding chamber, have been used in attempts to overcome inappropriate particle size. The aerosol holding chamber is generally provided at the upstream or entering end with a flexible, resilient adapter or backpiece made of rubber or the like material. A central aperture is provided for receipt of the horizontal outlet portion of the pressurized metered dose inhaler adapter.
One embodiment provides for an improved pressurized metered dose inhaler or pressurized metered dose inhaler with an aerosol holding chamber. As shown in
Generally, a mouthpiece or mask may be associated the PP apparatus. In one configuration, an aerosol holding chamber may be attached to the mouthpiece or mask end and a metered dose inhaler may be positioned on a generally opposite end of the chamber via a backpiece. The user of the device may insert the mouthpiece into the mouth to obtain a dose of medicament. Further, the user may place the mask over the mouth and/or nose to inspire a dose of the medicament. In either situation, the mask or mouthpiece aids in the delivery of the medicament to the user.
As has been described, a method and apparatus from providing positive expiration or inhalation therapy, with or without separate aerosol generating devices, has been disclosed. In the embodiment where the positive expiratory pressure valve is located at or near the output end of the aerosol delivery apparatus, a one way inhalation valve can be located further downstream from the positive expiratory pressure valve. A mouthpiece and or mask can be affixed at or near the output end of the aerosol delivery apparatus. The positioning of the inhalation valve either upstream or downstream in respect to the positive expiratory pressure valve is well known to one skilled in the art. Further, it is envisioned that PEP therapy may be performed nasally with the positive expiratory pressure apparatus.
When the mouthpiece having the PP apparatus associated therewith is used alone to perform PEP therapy, and not in conjunction with a mechanism for the delivery of a substance, a one way inhalation valve is engageable with the mouthpiece. The inhalation valve functions so as to allow for inhalation by the patient into the mouthpiece. The exhalant of the patient is prevented from exiting via the inhalation valve and is directed to exit through the PP valve. Generally, an inhalation valve opens upon inhalation to allow a fluid, such as an aerosol, to enter a chamber or channel or the like but that closes upon exhalation to prevent exhaled fluids to enter into the chamber of the like. The drawings depict an exemplary embodiment of the one-way inhalation valve but are not to be limiting to the embodiments shown.
One aspect of the method of use of the PP apparatus can be understood by the following disclosure and reference to
The method of performing PEP therapy using the PP apparatus includes performing a series of breaths. When exhalation is performed, the exhalant is directed through the continuously variable expiratory window. Performance of a therapeutic cough triggers the loosening of secretions. Upon loosening of the secretions, a medicament may be provided for inhalation into the respiratory system. In one embodiment of PEP therapy, the user will exhale into the mouthpiece and/or mask, against the desired resistance. This is done either prior to or in combination with inhalation of the medicament. The exhaled gases exit through the resistance window. This process may be repeated as many times as prescribed by the patient's physician.
As has been described, a method and apparatus for providing positive expiration, or inhalation, pressure therapy, with or without separate aerosol generating devices, has been disclosed. The aerosol delivery apparatus with the PP apparatus may be used alone or in combination with a mask or mouthpiece. Also, an improved aerosol delivery apparatus with an integrated actuator has been shown, wherein the improvement comprises a PP valve. The discussion above is descriptive, illustrative and exemplary and is not to be taken as limiting the scope defined by any appended claims.
Schmidt, James N., Blacker, Rick, Engelbreth, Daniel
Patent | Priority | Assignee | Title |
10004872, | Mar 06 2015 | VLAB, LLC | Positive expiratory pressure device having an oscillating valve |
10076616, | Nov 30 2012 | Trudell Medical International | Oscillating positive expiratory pressure device |
10245396, | Apr 20 2012 | AVALO THERAPEUTICS, INC | Inhalation devices and systems and methods including the same |
10272224, | Jul 12 2013 | Trudell Medical International | Huff cough simulation device |
10363383, | Feb 07 2014 | Trudell Medical International | Pressure indicator for an oscillating positive expiratory pressure device |
10413698, | Jun 06 2011 | Trudell Medical International | Oscillating positive expiratory pressure device |
10449324, | Jul 30 2015 | Trudell Medical International | Combined respiratory muscle training and oscillating positive expiratory pressure device |
10589043, | Nov 30 2012 | Trudell Medical International | Oscillating positive expiratory pressure device |
10668235, | May 27 2008 | Trudell Medical International | Oscillating positive respiratory pressure device |
10668238, | Oct 28 2008 | Trudell Medical International | Oscillating positive expiratory pressure device |
10722668, | Feb 23 2009 | Trudell Medical International | Oscillating positive expiratory pressure device |
10729863, | Feb 23 2009 | Trudell Medical International | Method and device for performing orientation dependent oscillating positive expiratory pressure therapy |
10814080, | Aug 22 2013 | Trudell Medical International | Oscillating positive respiratory pressure device |
10857317, | Dec 04 2015 | Trudell Medical International | Huff cough simulation device |
10881816, | May 21 2002 | Trudell Medical International | Medication delivery apparatus and system and methods for the use and assembly thereof |
10953278, | Feb 02 2018 | Trudell Medical International | Oscillating positive expiratory pressure device |
10960170, | Mar 06 2015 | VLAB, LLC | Positive expiratory pressure device having an oscillating valve |
11040167, | Jun 06 2011 | Trudell Medical International | Oscillating positive expiratory pressure device |
11116923, | Feb 07 2014 | Trudell Medical International | Pressure indicator for an oscillating positive expiratory pressure device |
11260197, | Jul 30 2015 | Trudell Medical International | Combined respiratory muscle training and oscillating positive expiratory pressure device |
11529480, | Feb 23 2009 | Trudell Medical International | Oscillating positive expiratory pressure device |
11547819, | Feb 23 2009 | Trudell Medical International | Device for performing orientation dependent aerosol therapy |
11559723, | May 03 2017 | Trudell Medical International | Combined oscillating positive expiratory pressure therapy and Huff Cough simulation device |
11577033, | Jun 05 2018 | Medline Industries, LP | Valved spacer for inhalation device |
11633646, | Feb 02 2018 | Trudell Medical International | Oscillating positive expiratory pressure device |
11738167, | Jun 06 2011 | Trudell Medical International | Oscillating positive expiratory pressure device |
11813398, | Feb 07 2014 | Trudell Medical International | Pressure indicator for an oscillating positive expiratory pressure device |
11865254, | Oct 28 2008 | Trudell Medical International | Oscillating positive expiratory pressure device |
9220855, | Feb 23 2009 | Trudell Medical International | Oscillating positive expiratory pressure device |
9358417, | Jun 06 2011 | Trudell Medical International | Oscillating positive expiratory pressure device |
9364622, | Apr 20 2012 | CERECOR INC | Inhalation devices and systems and methods including the same |
9517315, | Nov 30 2012 | Trudell Medical International | Oscillating positive expiratory pressure device |
9636473, | May 27 2008 | Trudell Medical International | Oscillating positive respiratory pressure device |
9700689, | May 21 2002 | Trudell Medical International | Medication delivery apparatus and system and methods for the use and assembly thereof |
9737677, | Oct 28 2008 | Trudell Medical International | Oscillating positive expiratory pressure device |
9808588, | May 27 2008 | Trudell Medical International | Oscillating positive respiratory pressure device |
9814849, | May 21 2002 | Trudell Medical International | Medication delivery apparatus and system and methods for the use and assembly thereof |
9849257, | Aug 22 2013 | Trudell Medical International | Oscillating positive respiratory pressure device |
9913955, | Oct 28 2008 | Trudell Medical International | Oscillating positive expiratory pressure device |
9950128, | Feb 23 2009 | Trudell Medical International | Oscillating positive expiratory pressure device |
9981106, | Jun 06 2011 | Trudell Medical International | Oscillating positive expiratory pressure device |
D735316, | Mar 11 2013 | AVADEL PHARMACEUTICALS USA , INC | Inhalation spacer |
D757246, | Mar 11 2013 | AVADEL PHARMACEUTICALS USA , INC | Inhalation spacer |
D759806, | Mar 11 2013 | AVADEL PHARMACEUTICALS USA , INC | Inhalation spacer |
D776804, | Jun 06 2012 | Trudell Medical International | Oscillating positive expiratory pressure device |
D778429, | Sep 02 2015 | Trudell Medical International | Respiratory treatment device |
D780906, | Sep 02 2015 | Trudell Medical International | Respiratory treatment device |
RE45068, | Apr 11 2000 | Trudell Medical International | Aerosol delivery apparatus |
RE46050, | Apr 11 2000 | Trudell Medical International | Aerosol delivery apparatus |
Patent | Priority | Assignee | Title |
2670739, | |||
3236458, | |||
3556122, | |||
3565071, | |||
3643686, | |||
3809084, | |||
3809294, | |||
3838686, | |||
3897779, | |||
393869, | |||
3994421, | Sep 29 1975 | American Cyanamid Company | Unitary therapeutic aerosol dispenser |
4174712, | Nov 09 1976 | Aktiebolaget Draco | Device for use with medicinal inhalation devices |
4182366, | Jan 08 1976 | Positive end expiratory pressure device | |
4198969, | Oct 06 1978 | Baxter Travenol Laboratories, Inc. | Suction-operated nebulizer |
4231375, | Oct 20 1977 | Pulmonary exerciser | |
4267832, | Apr 18 1978 | Expiration valve apparatus for use with a respirator or like apparatus | |
4275722, | May 04 1979 | Respiratory exerciser and rebreathing device | |
4292966, | Feb 16 1979 | Aktiebolaget Draco | Aerosol inhalation device |
4298023, | Sep 09 1980 | VITAL SIGNS, INC , A CORP OF N Y | Spring loaded exhalation valve |
4344573, | Jun 08 1979 | DUPHAR INTERNATIONAL RESEARCH B V | Spray applicator |
4470412, | Mar 19 1982 | TRUDELL MEDICAL, 926 LEATHORNE STREET, LONDON, ONTARIO, CANADA N5Z 3M5, COMPRISING A PARTNERSHIP CONSISTING OF TRUDELL PARTNERSHIP HOLDING LIMITED | Inhalation valve |
4496086, | May 14 1981 | Pari-Symac | Devices which comprise a helical spring used as conveying, extracting, quantity-controlling or mixing means |
4509515, | Feb 23 1982 | Fisons plc | Inhalation device |
4635631, | Nov 04 1983 | Sharp Kabushiki Kaisha | Artificial respiration ventilator of air constant flow |
4637528, | Jan 19 1984 | WILLIAM H RORER, INC , A CORP OF PA | Articulated joint in aerosol medicament dispenser |
4641644, | Sep 15 1981 | Aktiebolaget Draco | Aerosol inhalation device |
4646644, | Apr 09 1984 | Lockheed Martin Corporation | Pneumatic time delay valve |
4770413, | Apr 27 1987 | Trudell Medical International | Breathing exercise device |
4796614, | Feb 26 1987 | TRUDELL MEDICAL A PARTNERSHIP OF ONTARIO | Collapsible inhalation valve |
4846168, | Dec 05 1986 | Mect Corporation | Inhaler |
4852561, | Jul 27 1988 | BAUWENS, JOSEPH A | Inhalation device |
4886057, | Nov 30 1987 | CAREFREE TRADING, INC , AN AZ CORP | Assisted breathing interface device |
4907583, | Mar 07 1986 | AstraZeneca AB | Device in powder inhalators |
4940051, | Dec 28 1983 | Leiras Oy | Inhalation device |
4981295, | May 11 1987 | CITY OF HOPE, A NOT-FOR-PROFIT CORP OF CA | Respiratory training using feedback |
5012803, | Mar 06 1989 | Trudell Medical | Modular medication inhaler |
5012804, | Mar 06 1989 | Trudell Medical | Medication inhaler with adult mask |
5033463, | Oct 27 1989 | ANDI-VENTIS LTD | Multi-dose inhaler for medicaments in powder form |
5040527, | Dec 18 1990 | RESPIRONICS NEW JERSEY, INC | Metered dose inhalation unit with slide means |
5042467, | Jan 03 1989 | Trudell Medical | Medication inhaler with fitting having a sonic signalling device |
5048729, | Aug 03 1989 | United Kingdom Atomic Energy Authority | Aerosol dispenser with flow diverter |
5109840, | Feb 14 1991 | Specialty Packaging Licensing Company | Resuscitator having directional control valve with internal "PEEP" adjustment valve |
5178138, | Sep 11 1990 | Drug delivery device | |
5193529, | Aug 03 1989 | Applicance for use in inspiration and expiration techniques and exercises | |
5241954, | May 24 1991 | Nebulizer | |
5250287, | Jun 14 1991 | Miat S.p.A. | Multi-dose insufflator for medicaments in powder form |
5280784, | Sep 19 1990 | Paul Ritzau Pari-Werk GmbH | Device in particular and inhalating device for treating the lung and the respiratory tracts |
5297543, | Jun 24 1992 | RESPIRONICS NEW JERSEY, INC | Medication inhaler mixer |
5309900, | Mar 21 1991 | Paul Ritzau Pari-Werk GmbH | Atomizer particularly for use in devices for inhalation therapy |
5312046, | Nov 07 1991 | Paul Ritzau Pari Werk GmbH | Liquid atomizer |
5357951, | Jun 02 1993 | MERCURY ENTERPRISES, INC | Cardiac pulmonary resuscitator apparatus valve with integral air sampling port |
5385140, | May 14 1991 | VISIOMED GROUP LIMITED | Aerosol inhalation device |
5427089, | Apr 17 1989 | Glaxo Group Limited | Valved auxiliary device for use with aerosol container |
5456249, | Oct 15 1991 | Tyco Healthcare Group LP | Resuscitator with carbon dioxide detector |
5458136, | Mar 31 1994 | Paul Ritzau Pari-Werk GmbH | Assembly for producing aerosol pulses |
5461695, | Aug 05 1992 | Paul Ritzau Pari-Werk GmbH | Nebulizing assembly with heating equipment |
5477849, | May 31 1994 | Spacer for medication inhaler | |
5479920, | Mar 01 1994 | WELLS FARGO BANK, N A | Breath actuated medicinal aerosol delivery apparatus |
5497765, | May 26 1994 | RD-Chus Inc. | Device for the simultaneous delivery of beta-2 agonists and oxygen to a patient |
5497872, | Jul 01 1994 | PARI INDUSTRIES, INC | Method and apparatus for cleaning conveyor belts |
5501214, | Sep 26 1994 | WESTMED, INC | Non-rebreathing valve and valve element therefor |
5505194, | Mar 23 1994 | AbbVie Inc | Aerosol inhalation device having slideably and rotatably connected elliptical cylinder portions |
5549102, | Sep 22 1992 | PARI GmbH Spezialisten fur effektive inhalation | Nebulizer, especially for application in devices for inhalation therapy |
5562093, | Sep 06 1995 | CERTIFIED SAFETY MANUFACTURING, INC | Mouth-to-mouth resuscitation barrier |
5575282, | Feb 22 1991 | PARI GmbH Spezialisten fur effektive inhalation | Oxygen distributor with both mouth and nose delivery ports |
5596982, | May 19 1994 | Paul Ritzau Pari-Werk GmbH | Apparatus for drying and buffering aerosols |
5598839, | Apr 20 1994 | DHD Healthcare Corporation | Positive expiratory pressure device |
5617844, | Sep 21 1995 | Aerosol medication delivery system | |
5629032, | Aug 25 1995 | ALLOY TOOL & MFG CORP | Blow-molding apparatus |
5645049, | Nov 09 1992 | CANADIAN MONAGHAN, LTD | Exhalation valve for face mask with spacer chamber connection |
5647345, | May 12 1992 | Respiratory stimulator & methods of use | |
5657853, | Aug 29 1994 | Pari Industries, Inc. | Belt conveyors having cleaning rollers |
5658221, | Feb 10 1995 | EVERETT D HOUGEN IRREVOCABLE TRUST | Portable personal breathing apparatus and method of using same |
5676130, | Mar 19 1992 | Boehringer Ingelheim GmbH, Inc. | Separator for powdered inhalers |
5724959, | Oct 02 1990 | Aea Technology PLC | Powder inhaler with specific orifice and baffle arrangement |
5724962, | Oct 15 1992 | Orion-yhtyma Oy | Valve for use in connection with an inhaler apparatus |
5738087, | Sep 21 1995 | Aerosol medication delivery system | |
5740966, | Dec 17 1993 | PARI GmbH Spezialisten fur effektive inhalation | Nebulizer nozzle |
5755221, | Sep 12 1990 | Aerosol inhaler with piston dump | |
5765553, | Nov 27 1996 | DHD Healthcare Corporation | Aerosol medication delivery facemask adapter |
5775320, | Jul 02 1991 | Novartis Pharma AG | Method and device for delivering aerosolized medicaments |
5816240, | Jul 14 1995 | Techbase Pty. Ltd. | Spacer |
5840279, | Jun 21 1995 | AstraZeneca AB | Pharmaceutical powder cartridge with integrated metering device and inhaler for powdered medicaments |
5848588, | May 25 1994 | Trudell Medical Group | Backpiece for receiving an MDI adapter in an aerosolization spacer |
5881718, | Apr 11 1994 | Astra Aktiebolag | Valve |
5890998, | Feb 10 1995 | EVERETT D HOUGEN IRREVOCABLE TRUST | Portable personal breathing apparatus |
5896857, | Dec 20 1996 | ResMed Limited | Valve for use in a gas delivery system |
5899832, | Jun 14 1996 | EVERETT D HOUGEN IRREVOCABLE TRUST | Compact lung exercising device |
5925831, | Oct 18 1997 | CardioPulmonary Technologies, Inc.; CARDIOPULMONARY TECHNOLOGIES, INC | Respiratory air flow sensor |
5957389, | Jan 21 1997 | PARI GmbH Spezialisten fur effektive inhalation | Nebuliser |
6000394, | Oct 26 1994 | PARI GmbH Spezialisten fur effektive inhalation | Generation of an aerosol of an exact dose |
6026807, | Feb 27 1998 | DHD Healthcare Corporation | Metered dose inhaler cloud chamber |
6026808, | Oct 17 1997 | MAP PHARMACEUTICALS, INC | Methods and apparatus for delivering aerosolized medication |
6026809, | Jan 25 1996 | MICRODOSE THERAPEUTX, INC | Inhalation device |
6039042, | Feb 23 1998 | THAYER MEDICAL CORPORATION | Portable chamber for metered dose inhaler dispensers |
6044841, | Aug 29 1997 | Trudell Medical International | Breath actuated nebulizer with valve assembly having a relief piston |
6085741, | Jun 06 1995 | PARI GmbH Spezialisten fur effektive inhalation | Device for atomisation of fluids |
6089105, | Oct 18 1997 | CardioPulmonary Technologies, Inc. | Tubing connector |
6106479, | Apr 02 1997 | PARI Pharma GmbH | Breath simulator |
6123075, | Oct 15 1991 | Tyco Healthcare Group LP | Resuscitator regulator with carbon dioxide detector |
6138673, | Jun 29 1995 | Fisons plc | Inhalation device and method |
6176237, | Aug 06 1997 | PARI GmbH Spezialisten fur effektive inhalation | Inhalation therapy unit with a valve for limiting the inspiration flow |
6228346, | Apr 25 1996 | PARI Pharma GmbH | Propellant mixtures and aerosols for micronizing medicaments with compressed gas |
6240917, | Dec 20 1999 | Aerosol holding chamber for a metered-dose inhaler | |
6257231, | Dec 03 1998 | KoKo IT, LLC | Aerosol enhancement |
6293279, | Sep 26 1997 | Trudell Medical International | Aerosol medication delivery apparatus and system |
6345617, | Sep 26 1997 | Trudell Medical International | Aerosol medication delivery apparatus and system |
6367471, | Nov 01 1999 | MAP PHARMACEUTICALS, INC | Internal vortex mechanism for inhaler device |
6412481, | Dec 23 1999 | O ROURKE, SAM | Sealed backpressure attachment device for nebulizer |
6435177, | Sep 26 1997 | Trudell Medical International | Aerosol medication delivery apparatus and system |
6464388, | Nov 03 2000 | Pari | Mixer incorporating imbalance |
6481438, | Oct 08 1998 | PARI Pharma GmbH | Meter |
6513519, | Dec 22 1999 | PARI GMBH - SPEZIALISTEN FUR | Inhalation atomizer with a one-piece valve element |
6513727, | Jun 18 1998 | PARI GmbH Spezialisten fur effektive inhalation | Liquid atomizer device |
6514177, | Nov 05 1996 | PARI GmbH Spezialisten fur effektive inhalation | Inhaling apparatus compressor with improved diaphragm assembly |
6557549, | Apr 11 2000 | Trudell Medical International | Aerosol delivery apparatus with positive expiratory pressure capacity |
6581598, | Nov 24 1999 | SMITHS MEDICAL ASD, INC | Positive expiratory pressure device |
6606990, | Dec 30 1998 | PARI GmbH Spezialisten fur effektive inhalation | Mouth piece for inhalation therapy units |
6631721, | Nov 06 1998 | Salter Labs | Nebulizer mouthpiece and accessories |
6679251, | Oct 08 1998 | PARI Pharma GmbH | Actuating device for meters and metering aerosol dispensing device with an actuating device for meters |
6679252, | Feb 23 1998 | THAYER MEDICAL CORPORATION | Collapsible, disposable MDI spacer and method |
6848443, | Apr 11 2000 | Trudell Medical International | Aerosol delivery apparatus with positive expiratory pressure capacity |
6962151, | Nov 05 1999 | PARI Pharma GmbH | Inhalation nebulizer |
6983747, | Jan 23 2001 | PARI Pharma GmbH | Aerosol generator |
7013896, | May 08 2001 | Trudell Medical International | Mask with inhalation valve |
7059320, | Oct 18 2001 | PARI Pharma GmbH | Inhalation therapy apparatus |
7077126, | May 19 2003 | PARI GmbH Spezialisten fur effektive inhalation | Inhalation therapy mask and device for animals |
7131440, | Jun 01 2001 | PARI GmbH Spezialisten fur effektive inhalation | Inhalation therapy apparatus having a valve for limiting the inspiration flow |
7562656, | May 02 2002 | PRE HOLDING, INC | Aerosol medication inhalation system |
20010013341, | |||
20010054421, | |||
20020005196, | |||
20020056448, | |||
20030037785, | |||
20030037788, | |||
20030205226, | |||
20040089295, | |||
20040094148, | |||
20040250816, | |||
20050039741, | |||
20050056274, | |||
20050224076, | |||
20050244339, | |||
20060011196, | |||
20060048772, | |||
20060054166, | |||
20060057073, | |||
20060065267, | |||
20060102172, | |||
20060102178, | |||
20060162723, | |||
20060207591, | |||
20060213503, | |||
20060254578, | |||
20060289002, | |||
CA2072544, | |||
D483860, | Nov 12 2002 | PARI Pharma GmbH | Electronic inhaler and control unit |
EP9667, | |||
EP15247, | |||
EP134847, | |||
EP289563, | |||
EP347779, | |||
EP372148, | |||
EP475257, | |||
EP514085, | |||
EP520571, | |||
EP548152, | |||
EP585379, | |||
EP678306, | |||
EP820780, | |||
EP938908, | |||
EP1358901, | |||
EP678306, | |||
EP938908, | |||
GB1017032, | |||
GB2000555, | |||
GB2299512, | |||
GB975754, | |||
JP548152, | |||
JP5540595, | |||
JP6178954, | |||
WO27455, | |||
WO59565, | |||
WO176671, | |||
WO9100117, | |||
WO9220391, | |||
WO9311817, | |||
WO9520414, | |||
WO9632149, | |||
WO9701365, | |||
WO9731668, | |||
WO9826827, | |||
WO9916490, |
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