METHOD FOR CONCENTRATING OXYGEN INSIDE A MASK
20220249795 · 2022-08-11
Inventors
Cpc classification
A61M16/1005
HUMAN NECESSITIES
A61M16/14
HUMAN NECESSITIES
A61M2207/00
HUMAN NECESSITIES
International classification
Abstract
A system for concentrating oxygen inside a mask with filters is provided. The system comprising a mask body having a contoured shape that fits above the patient's nose and mouth; filters which allow gasses but not contaminants to pass through; a port with detachable cap for gas sampling; an inlet port connected which can be open to room air or attached to standard oxygen tubing or a ventilator circuit. The mask may be worn with or without an oxygen source. The mask body is firmly sealed against the patient's face with the filters functioning to prevent microbial contamination of the environment while concentrating oxygen within the lumen of the mask.
Claims
1. A mask comprising: a mask body having a contoured shape that fits above the patient's nose and mouth, said mask body has a pair of opening on sides of the mask body; an inlet port with filter; a pair of side filters positioned in the pair of openings on sides of the mask body; wherein the pair of side filters and the filter on inlet port holds the air inside the mask body and thus concentrate the oxygen level inside the mask body.
2. The mask of claim 1, further comprising a port for gas sampling.
3. The mask of claim 2 further comprising a cap to cover the sampling port when it is not utilized; the cap serves to prevent escape of gas and contaminants.
4. The mask of claim 1, wherein the inlet port comprises compatibility to be used without supplemental oxygen or to be attached to a ventilator circuit.
5. The mask of claim 1, wherein the inlet port attaches to a connector with standard hospital oxygen tubing.
6. The mask of claim 1, wherein the vent assembly is made of hard plastic material.
7. The mask of claim 1, wherein the mask body is firmly sealed against the surroundings and the pair of side filters and the front filter on inlet port prevents the oxygen from escaping from the mask in order to retain the adequate oxygen level inside the mask.
8. The mask of claim 1, wherein the filters prevent microbial contamination from the patient's breath both with or without the use of supplemental oxygen.
9. The mask of claim 1, wherein the oxygen source connected to the inlet port of the mask delivers oxygen at a variable flow rate of 0-10 liters/min.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0009] Further areas of applicability will become apparent from the description provided herein.
[0010] The skilled artisan will understand that the drawings are primarily for illustrative purposes and are not intended to limit the scope of the inventive subject matter described herein. The drawings are not necessarily to scale; in some instances, various aspects of the inventive subject matter disclosed herein may be shown exaggerated or enlarged in the drawings to facilitate an understanding of different features. In the drawings:
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DETAILED DESCRIPTION
[0019] In the following detailed description of embodiments of the invention, numerous specific details are set forth in order to provide a thorough understanding of the embodiments of invention. However, it will be obvious to a person skilled in art that the embodiments of invention may be practiced with or without these specific details. In other instances well known methods, procedures and components have not been described in detail, so as not to unnecessarily obscure aspects of the embodiments of the invention.
[0020] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. As used herein, the term “and/or” includes any and all combinations of one or more of the associated listed items. As used herein, the singular forms “a”, “an”, and “the” are intended to include the plural forms as well as the singular forms, unless the context clearly indicates otherwise.
[0021] It will be further understood that the terms “comprises” and/or “comprising,” when used in this specification, specify the presence of stated features, steps, operations, elements, and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components, and/or groups thereof.
[0022] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one having ordinary skill in the art to which this invention belongs. It will be further understood that terms, such as those defined in commonly used dictionaries, should be interpreted as having a meaning that is consistent with their meaning in the context of the relevant art and the present disclosure and will not be interpreted in an idealized or overly formal sense unless expressly so defined herein.
[0023] In describing the invention, it will be understood that a number of techniques and steps are disclosed. Each of these has individual benefit and each can also be used in conjunction with one or more, or in some cases all, of the other disclosed techniques. Accordingly, for the sake of clarity, this description will refrain from repeating every possible combination of the individual steps in an unnecessary fashion. Nevertheless, the specification and claims should be read with the understanding that such combinations are entirely within the scope of the invention and the claims.
[0024] The present invention discloses a mask for concentrating or retaining the oxygen at a titratable level inside the mask when worn by a wearer while also providing microbial filtration and gas sampling. The invention provides a mask with functions without an oxygen source, or with oxygen via oxygen tubing or ventilator hose that can be used for variety of applications and can be used in procedure rooms, operating rooms, emergency rooms and on the field by paramedics.
[0025] The mask is made of clear malleable plastic or silicone construction with an elastic strap that is used to secure onto a patient's face. The mask comprises a countered shape to fit around the patient's nose; a front inlet for oxygen covered with a filter; two side openings covered with filters; sampling ports; caps and connectors.
[0026]
[0027] The inlet port 106 of the mask 100 allows the vent assembly 108 and front filter 400 to be attached, effectively filtering breath when used without supplemental oxygen. When supplemental oxygen is required, port 106 will attach to a ventilator circuit or oxygen tubing can be attached with connector piece 115. The connector 115 is securely snap-fit with the second end of the vent assembly 108. The connector 115 terminates in a conduit coupler to attach to standard hospital oxygen tubing.
[0028] The mask body 102 is generally molded of a low flammability, gas-impermeable material, such as non-toxic medical grade plastic polymer or silicone material. The mask body 102 material can be transparent to allow clinicians or health care personnel to observe the patient's or wearer's mouth and nose in addition to condensation inside of the mask. The mask body 102, connections and attachments thereto may be disposable.
[0029] The mask body 102 defines a cavity adapted to fit over the mouth and the nose of the wearer. The peripheral edge of the mask body 102 is contoured so as to substantially seal against the surrounding facial tissue of the wearer to establish an inner chamber portion or inner-space. The peripheral edge can be of any shape as long as it is contoured so as to substantially seal against the surrounding facial tissue of the patient or normal wearer.
[0030] The mask body 102 can be held to the wearer by an attachment mechanism. Any suitable mechanism can be utilized. The mechanism can include an elastic material and non-elastic material. The attachment mechanism can include clips, buttons, clamps, hook and loop (e.g., Velcro®), the like, etc. Preferably, the attachment mechanism can be a two piece (or more) partially elastic passive/active adjustable/detachable strap system which may or may not attach via holes 114a and 114b in
[0031] In some embodiments of the present invention the perimeter lining of mask 100 can be lined with a gas permeable or semi-permeable material or filters to inhibit an inner-space of the mask body from substantial contamination with room air when the oxygen mask is in use. The perimeter lining can be made of various materials including, but not limited to, cushion, padding, foam, and elastic. The perimeter lining may be formed integrally and unitarily with the mask body 102 or may be formed separately and permanently joined to the mask body. The perimeter lining may be thinner than the other areas of the mask body.
[0032] The mask 100 comprises an inlet port 106 for directing a flow of gas to the interior of the mask 100. The inlet port 106 is formed on the top of the mask body 102 i.e. around nose and mouth. The inlet port 106 allows oxygen to flow from an oxygen source to the inner-space of the mask 100. For an adult patient in the present invention, the oxygen flow rate can be varied from 0-10 liters/min. Since the peripheral edge of the mask body 102 is firmly sealed against the surroundings and the non-porous filters (two side filters and a front filter) prevent the oxygen from escaping from the mask in order to retain the adequate oxygen level inside the mask 100. The sampling port 112 of the mask 100 is covered by the cap 118 in order to prevent the escaping of gas from the mask when sampling port 112 is not needed for gas analysis. Given the large inlet port 106 and filters 104a and 104b, mask 100 provides the ability to concentrate oxygen inside the mask while allowing the patient to breathe effortlessly with or without supplemental oxygen supply.
[0033] The mask 100 described herein can be used in applications where it is desirable to reduce contaminants flowing to and from a wearer's nose and mouth during exhalation and inhalation. Such contaminants can include, for example, bacteria, viruses, surgical smoke, and the like. As used herein, “wearer”, “user” and “patient” can be synonymous. Generally, the mask described herein may be used by health care professionals for patients to avoid spreading contaminants from their breathe into sterile environments or to other health care workers. The mask 100 of the present invention works as a surgical mask for patients in sterile operating or procedure rooms.
[0034] The filters 104a and 104b are disposed on both sides (i.e. left side and right side) of the mask body 102 to allow the patient to breathe with minimum effort. The oxygen mask 100 of the present invention may serve as a surgical mask to a patient for reducing the risk of contaminating the sterility of an operating or procedure room and when needed equipped via oxygen via vent assembly 108 or connector 115. The filters 104a and 104b are made of materials including but is not limited to, paper, polypropylene, polyethylene, polyester, and/or ePTFE.
[0035] The filters 104a, 104b and front filter (not shown in figure) may be formed integrally with the molded mask body 102 or may be inserted into the mask body 102. The filters are attachable or connectable as accessories in various ways. For example, polytetrafluoroethylene (PTFE) filter 104 attaches to the mask body composed of silicone or plastic such as but not limited to Polyvinyl chloride (PVC). The two side filters and a front filter do not have pours or vents in order to prevent the wearer's breath from contaminating the environment while also retains adequate oxygen level inside the mask.
[0036] The PTFE (fine powder resin) is expanded into a 3-dimensional web-like structure which creates billions of microscopic pores. This structure utilizes the inherent hydrophobic (water-resistant) and non-stick nature of PTFE to allow removal of particulate captured on the membrane surface. Hence, it can block dust, water droplets, micro-organisms, etc. In the preferred embodiment, the filters 104a, 104b and the front filter 400 are sintered PTFE filter, ePTFE. Polyethylene, polypropylene and or polyester blends.
[0037] In another aspect of the present invention the inlet port 106 is formed right above the half-way line that separates the upper half and the bottom half of the mask body 102. In this manner, the inlet port 106 is located around the nostrils of the patient when the mask 100 is worn allowing oxygen to be delivered to the nasal area.
[0038] The mask 100 also comprises a sampling port 112 designed to connect to gas sampling tubing for gas sampling or capnography for sampling exhaled breath or an expiratory gas from a wearer or patient. A cap 118 is used to cover the sampling port 112 when gas sampling is not being utilized. The cap 118 is designed to cover the opening of port 112 to prevent the oxygen/gas from escaping from the mask in order to retain the oxygen concentration inside the mask at an adequate level and prevent microbial contamination.
[0039] In the preferred embodiment the sampling port or outlet port 112 is positioned at the front of the oxygen face mask 100 and between the left side filter 104a right side filter 104b. Preferably, the outlet port 112 is positioned below the inlet port 106 and between the left side filter 104a and right side filter 104b (as shown in
[0040] The sampling port 112 may be connected to gas sampling tubing that is coupled to a device or sensor for sampling and/or analyzing an expiratory gas or exhaled gas of the oxygen mask 100. The gas may be sampled from the gas sampling tubing or a component present with the gas may be sampled. A sampled gas may contain other component(s) such a therapeutic nebulized or aerosolized component or agent. A gas may be expired gas. An expired gas may be mixed, in part, with delivered oxygen, or room air before sampling. In one example, a gas may not contain expired air (e.g., if the patient is not breathing). In one example, carbon dioxide is sampled (capnography). In another example, oxygen is sampled. In another example, end tidal partial pressure of the gas (e.g., carbon dioxide) may be measured (or otherwise determined or calculated).
[0041] In another aspect of the present invention, ventilator circuit and tubing may be attached to the inlet port 106 for supplemental gas flow of oxygen and or air at varying concentrations. When ventilator tubing is not available, standard hospital oxygen tubing may be attached via connector 115.
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[0045] The front filter 400 configured to prevent the wearer's breath from contaminating the environment when connector 115 is not connected.
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[0049] Proof of concept and utility of the present invention is demonstrated in
[0050] Fraction of inspired oxygen (F.sub.iO.sub.2) is the molar or volumetric fraction of oxygen in the inhaled gas. Patients with respiratory compromise or receiving sedation are provided with oxygen-enriched air, which means a higher-than-atmospheric F.sub.iO.sub.2. Natural air includes 21% oxygen, which is equivalent to F.sub.iO.sub.2 of 0.21. Oxygen-enriched air has a higher F.sub.iO.sub.2 than 0.21; up to 1.00 which means 100% oxygen. F.sub.iO.sub.2 is typically maintained below 0.5 even with mechanical ventilation, to avoid oxygen toxicity but there are applications when up to 100% is routinely used. Often used in medicine, the F.sub.iO.sub.2 is used to represent the percentage of oxygen participating in gas-exchange.
[0051] A single oxygen mask 100 incorporating connectors according to various aspects of the present invention can function as a surgical face mask with no supplemental oxygen, a low (or simple) oxygen mask, a medium oxygen mask, a high oxygen (i.e. from 30% to 90% oxygen concentrations) mask, obviating the need for multiple masks and thereby resulting in cost savings.
[0052] For additional details relating to the present invention, materials and manufacturing techniques of the level of ordinary skill in the art can be used. The same may be true for aspects based on the method of the present invention with respect to additional actions commonly or logically used.
[0053] Also, optional features of the described variations of the invention can be described and claimed independently or in combination with any one or more of the features described herein. Similarly, a reference to a singular element includes the possibility that there are pluralities of the same element. More specifically, the singular form (“a,” “and,” “said,” and “the”) is not expressly required by the context as used herein and in the appended claims. As long as it includes a plurality of instructions. It is further noted that the claims may be drafted to exclude optional elements.
[0054] Therefore, this statement should serve as a preceding basis for the use of exclusive terms such as “simply”, “only”, etc. or “negative” limitation in connection with the description of the elements of the claims is intended. Unless defined otherwise herein, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. The scope of the invention is not limited by this specification, but only by the plain meaning of the terms used in the claims.