VENTILATION MASK
20220257893 · 2022-08-18
Inventors
- Michael J. Pedro (Brooklyn, NY, US)
- Steven H. Cataldo (New York, NY, US)
- David M. Kane (Tucson, AZ, US)
- Thomas Reilly (Tucson, AZ, US)
- Ryan Redford (Tucson, AZ, US)
Cpc classification
A61B5/097
HUMAN NECESSITIES
A61M16/0003
HUMAN NECESSITIES
A61B5/082
HUMAN NECESSITIES
A61M2205/0238
HUMAN NECESSITIES
A61M16/0605
HUMAN NECESSITIES
A61M16/208
HUMAN NECESSITIES
A61M16/009
HUMAN NECESSITIES
International classification
A61B5/08
HUMAN NECESSITIES
A61B5/097
HUMAN NECESSITIES
A61M16/00
HUMAN NECESSITIES
A61M16/08
HUMAN NECESSITIES
A61M16/20
HUMAN NECESSITIES
Abstract
Disclosed is a nasal ventilation mask having separate ports to monitor end-tidal CO.sub.2 expulsion integrated into the mask in order to monitor end-tidal CO.sub.2 expelled nasally or orally. Also disclosed is a CPR mask for nose-to-mouth and/or mouth-to-mouth resuscitation, having a body shaped to cover the nose and/or mouth of a victim, the mask including a CO.sub.2 absorber for eliminating at least in part rescuer's exhaled CO.sub.2 delivered to the victim.
Claims
1. A nasal ventilation mask comprising: a body having an interior forming a nasal cavity, a gas channel, and an exterior opening, wherein the nasal cavity is configured to cover a nose of a patient while leaving a mouth of the patient uncovered and the gas channel is separated from the nasal cavity; an O.sub.2 port fluidly coupled to the nasal cavity and configured for introducing oxygen into the nasal cavity; a ventilation port fluidly coupled to the nasal cavity and configured for directing a gas toward or away from the nasal cavity; and an end-tidal CO.sub.2 port fluidly coupled to the exterior opening through the gas channel of the body, wherein the exterior opening is adapted to scavenge a gas expelled orally by a wearer, and the gas channel is configured to direct the gas expelled orally from the exterior opening to the end-tidal CO.sub.2 port.
2. The nasal ventilation mask of claim 1, comprising a gas hood located under a nose region of the mask and extending from an outer surface of the mask around the exterior opening to enhance the collection of anesthetic gases around the mouth of the patient.
3. The nasal ventilation mask of claim 1, wherein the end-tidal CO.sub.2 port is configured to couple with a monitoring line, and the ventilation port is configured to couple with a ventilation line that is different than the monitoring line.
4. The nasal ventilation mask of claim 1, wherein the gas channel is configured to isolate the gas expelled orally from the nasal cavity.
5. The nasal ventilation mask of claim 1, wherein the gas channel is configured to direct a gas expelled nasally toward the end-tidal CO.sub.2 port.
6. The nasal ventilation mask of claim 1, wherein the mask comprises a gas monitoring attachment.
7. The nasal ventilation mask of claim 1, further comprising a removable cap configured to be coupled to and obstruct the O.sub.2 port.
8. The nasal ventilation mask of claim 1, further comprising tabs or eyelets for attaching the mask anteriorly with a mask anchor, or posteriorly with a traditional anesthesia mask strap.
9. The nasal ventilation mask of claim 1, wherein the gas channel extends inside of the nasal cavity.
10. The nasal ventilation mask of claim 1, wherein a periphery of the body comprises a resiliently deformable material.
11. A nasal ventilation mask comprising: a body having an interior forming a nasal cavity, a gas channel, and an exterior opening, wherein the nasal cavity is configured to cover a nose of a patient while leaving a mouth of the patient uncovered and the gas channel is separated from the nasal cavity; a first port fluidly coupled to the nasal cavity and configured for introducing oxygen into the nasal cavity; a second port fluidly coupled to the nasal cavity and configured for directing a gas toward or away from the nasal cavity; and a third port fluidly coupled to exterior opening through the gas channel of the body, and configured for coupling with a monitoring line; wherein the exterior opening is adapted to scavenge a gas expelled orally by a wearer, and the gas channel is configured to direct the gas from the exterior opening to the third port.
12. The nasal ventilation mask of claim 11, comprising a gas hood located under a nose region of the mask and extending from an outer surface of the mask around the exterior opening to enhance the collection of anesthetic gases around the mouth of the patient.
13. The nasal ventilation mask of claim 11, wherein the second port is configured to couple with a ventilation line that is different than the monitoring line.
14. The nasal ventilation mask of claim 11, wherein the gas channel is configured to isolate the gas expelled orally from the nasal cavity.
15. The nasal ventilation mask of claim 11, wherein the gas channel is configured to direct a gas expelled nasally toward the third port.
16. The nasal ventilation mask of claim 11, wherein the mask comprises a gas monitoring attachment.
17. The nasal ventilation mask of claim 11, further comprising a removable cap configured to be coupled to and obstruct the first port.
18. The nasal ventilation mask of claim 11, further comprising tabs or eyelets for attaching the mask anteriorly with a mask anchor, or posteriorly with a traditional anesthesia mask strap.
19. The nasal ventilation mask of claim 11, wherein the gas channel extends inside of the nasal cavity.
20. The nasal ventilation mask of claim 11, wherein a periphery of the body comprises a resiliently deformable material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] Further features and advantages of the present invention will be seen from the following detailed description, taken in conjunction with the accompany drawings, wherein:
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[0046] DETAILED DESCRIPTION OF THE DRAWINGS
[0047] A nasal ventilation mask 10 in accordance with a first embodiment of the present invention is illustrated in
[0048] The mask also includes three eyelets or tabs 60, 62, 64, or four eyelets or tabs 66 68, 70, 72 (
[0049] An interior view of the nasal ventilation mask 10 of the present invention is illustrated in
[0050] When O.sub.2 or O.sub.2 and anesthesia gasses and are being supplied to the patient, they travel to the nasal cavity 26 through a ventilation circuit 28 attached to the ventilation port 12, and a cap shown in phantom at 30, seals the O.sub.2 port. Post operation, the cap 30 can be removed from the O.sub.2 port 22 and an O.sub.2 line attached to the port, supplying O.sub.2 to the patient. The ventilation circuit 28 is removed from the ventilation port 12 and the nasal cavity 26 is open to the atmosphere where end-tidal CO.sub.2 can be expelled nasally.
[0051] The gas circuit for both the Nasal Mask Ventilation/end-tidal CO.sub.2 monitor Oral Gas Scavenger/end-tidal CO.sub.2 monitoring lines are illustrated in
[0052] Referring also to
[0053] In an alternate configuration, the gas circuit for both the Nasal Mask Ventilation and end-tidal CO.sub.2 monitoring are illustrated in
[0054] A side view of the alternate configuration for the nasal mask ventilation and monitoring end-tidal CO.sub.2 expulsion from the oral airway is illustrated in
[0055] The nasal ventilation mask also allows only one combined anterior-posterior head strap to be attached, where the posterior head strap can attach to the mask alone, or can attach to the mask and then to a surface, which will prevent movement of the patient's head and/or neck. By securing the patient's head with the head strap to the support surface, the patient's head will stay in the desired position and the support surface will stay in the desired position when the provider changes the head and/or neck angles.
[0056]
[0057] An alternative approach for accomplishing the same gas sampling feature is illustrated in
[0058] Referring to
[0059] A ventilation tube 116 is attached to an integral inlet port 118 protruding from the mask through which air may be supplied by the rescuer by exhaling into the tube. Ventilation tube 116 or inlet port 118 typically includes a one-way valve 120 that permits air to enter the mask through tube 116. Ventilation tube 116 and its associated valve 120 may be formed integrally with the port 118, or may be a replaceable, disposable element or package. (
[0060] The inside surface 122 of mask 110 is coated in part by a CO.sub.2 absorbing material such as activated carbon or a zeolite. Also, certain minerals such as serpentinite advantageously may be employed. Typically, these materials are sorted to optimal size and encased in a filter material 124 bound to the inside surface 122 of the mask 110. Alternatively, the inside surface 122 of the mask 110 may be coated with a CO.sub.2 absorbing polymer such as polyethylenimine containing fumed silica or the like as reported in Scientific American, Jan. 6, 2012, page 33.
[0061] Alternatively, as shown in
[0062] In use, the rescuer places the CPR mask 110 over the nose and/or mouth of a victim to initiate emergency ventilation of the victim. The rescuer applies moderate force to obtain a substantially air-tight seal against the victim's face, and ventilation is then supplied by the rescuer by exhaling into the ventilation tube 116. While the exhaust from the rescuer contains CO.sub.2, most of the CO.sub.2 will be removed by the CO.sub.2 filter material.
[0063] Mask 110 may be formed in different sizes, for example, adult size, youth size and child size, to accommodate different size faces. A feature and advantage of the CPR mask of the present invention is that significantly reduces the amount of CO.sub.2 administered to the victim. Also, the mask helps to protect both victim and rescuer in an emergency situation by preventing transfer of disease.
[0064] Various changes may be made in the above invention without departing from the spirit and scope thereof. For example, a biological filter (shown in phantom at 130 in