Spirometer breathing tube with compound membrane
09931056 ยท 2018-04-03
Assignee
Inventors
- Fouad Halwani (Kirkland, CA)
- Nathan AYOUBI (Vancouver, CA)
- Jose Ganseman (Denderleeuw, BE)
- Judy Findlay (Vancouver, CA)
- Thomas Lloyd Bellaire (Burnaby, CA)
- Ian Brodkin (Vancouver, CA)
- Arthur Willms (Surrey, CA)
- Victor Dosil (Delta, CA)
- Awni Ayoubi (Surrey, CA)
Cpc classification
International classification
Abstract
A compound membrane breathing tube for use in spirometric applications is provided. The compound membrane comprises a first sheet and a second sheet of flexible sheeting connected together along the periphery thereof, and each of the sheets has an opening cut therethrough to create a flap. The flap of the first sheet overlaps the flap of the second sheet so as to present a higher relative resistance to airflow through the breathing tube at lower airflows.
Claims
1. A spirometer breathing tube comprising: a first tubular section and a second tubular section connected together in end-to-end relationship to secure a compound membrane in a generally perpendicular orientation therebetween, wherein the compound membrane comprises a first sheet of flexible sheeting and a second sheet of flexible sheeting connected together along a periphery thereof, wherein each of said first and second sheets defines a respective opening therethrough configured as a respective flap, and wherein the flap of the first sheet overlaps the flap of the second sheet.
2. The spirometer breathing tube of claim 1, wherein the flap of at least one of said first sheet and said second sheet comprises a protrusion defining a zone of extended overlap relative to the flap of the other one of the first and second sheets.
3. A method of using the spirometer breathing tube of claim 1 in a spirometric evaluation, the method comprising: attaching the spirometer breathing tube to a spirometric measuring device, and measuring a flow rate of air travelling through the spirometer breathing tube.
4. The spirometer breathing tube of claim 1, wherein the peripheries of the first and second sheets are bonded together.
5. The spirometer breathing tube of claim 1, further comprising a peripheral spacer between the respective peripheries of the first and second sheets.
6. The spirometer breathing tube of claim 5, wherein the peripheral spacer defines a variable gap between the first and second sheets, the gap being defined by a thickness of the peripheral spacer.
7. The method of claim 3, wherein the act of attaching the spirometer breathing tube to a spirometric measuring device comprises attaching the spirometer breathing tube using breakaway lugs.
8. The spirometer breathing tube of claim 1, further comprising breakaway lugs for attaching the breathing tube to a spirometric measuring device.
9. A method of manufacturing the compound membrane of claim 1, comprising connecting a front sheet and a back sheet of the compound membrane along their peripheries, wherein the flap in the front sheet and the flap in the back sheet overlap along at least a portion thereof.
10. The method of claim 9, comprising cutting each of the membrane sheets using a laser cutter to create the flaps.
11. The method of claim 10, wherein a gap created by the cutter along the margins of each flap has a constant width.
12. The method of claim 9, wherein the membrane sheets are directly connected together by gluing or welding.
13. The method of claim 9, wherein a peripheral ring-spacer creates a variable gap between the membrane sheets.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For a fuller understanding of the nature and advantages of the disclosed subject matter, as well as the preferred mode of use thereof, reference should be made to the following detailed description, read in conjunction with the accompanying drawings. In the following drawings, like reference numerals designate like or similar parts or steps.
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DETAILED DESCRIPTION
(11) Referring to
(12) The free end of at least section 2 may include locking breakaway lugs 12 to facilitate precise alignment and locking of the breathing tube 1 to a spirometric measuring device 14. Upon removal of the breathing tube 1 (such as after the completion of a test sequence), lugs 12 break off of the breathing tube 1 without damaging the measuring device 14. This discourages any attempt to re-use breathing tube 1.
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(14) The two flaps 24 (one in membrane sheet 16 and the other in membrane sheet 18) overlap along at least a portion thereof, and the overlapped area, along with the gap 22 (if any) between the sheets can be varied in order to modify the response of a particular compound membrane design to the airflow through a particular breathing tube 1. The shape of flaps 24 is also variable, and may include polygonal or curved shapes and/or openings as illustrated by way of example in
(15) The overlap between the flaps 24 will typically present a higher relative resistance at lower airflows when membrane overlap is high. This relative resistance drops as the airflow through breathing tube 1 increases and the overlap between the sheet flaps is reduced or disappears altogether (as the flaps 24 are deflected by the airflow through the breathing tube 1). As seen in
(16) The presently described compound membrane design also readily allows airflow resistance to be optimally modulated for different applications (e.g. children, respiratory deficient patients, Operating Room ventilation devices, etc.), by modifying membrane geometries, membrane orientations and/or working diameters depending on the application.
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(19) The present description includes the best presently contemplated mode of carrying out the subject matter disclosed and claimed herein, and is made for the purpose of illustrating the general principles of the subject matter and not be taken in a limiting sense; the subject matter can find utility in a variety of implementations without departing from the scope of the disclosure made, as will be apparent to those of skill in the art from an understanding of the principles that underlie the subject matter.