COUNTERLUNG FOR A REBREATHING APPARATUS
20210244975 ยท 2021-08-12
Inventors
Cpc classification
F16L57/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16L11/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62B9/00
HUMAN NECESSITIES
International classification
A62B9/00
HUMAN NECESSITIES
Abstract
A disclosed breathing hose is configured to duct inhaled and exhaled gas between a user and a rebreather apparatus. The breathing hose includes a non-collapsible flexible outer tube and a collapsible inner tube located within the non-collapsible flexible outer tube. The collapsible inner tube is configured to inflate to accommodate the exhaled gas of the user and to deflate to accommodate the inhaled gas of the user. The collapsible inner tube has a size that accommodates at least a portion of a breath volume of the user and may have a size that is configured to accommodate a maximum breath volume of the user. The collapsible inner tube is configured to act to maintain a constant total volume of gas in the lungs of the user and in the rebreather unit throughout a breathing cycle. The breathing hose may be part of a closed-circuit or semi closed-circuit rebreather apparatus.
Claims
1. A breathing hose configured to duct inhaled and exhaled gas between a user and a rebreather apparatus, the breathing hose comprising: a non-collapsible flexible outer tube; and a collapsible inner tube located within the non-collapsible flexible outer tube.
2. The breathing hose of claim 1, wherein the collapsible inner tube is configured to inflate to accommodate the exhaled gas of the user, and to deflate to accommodate the inhaled gas of the user.
3. The breathing hose of claim 1, wherein the collapsible inner tube has a size that is configured to accommodate at least a portion of a breath volume of the user.
4. The breathing hose of claim 3, wherein the collapsible inner tube has a size that is configured to accommodate a maximum breath volume of the user.
5. The breathing hose of claim 1, wherein the collapsible inner tube is made of an in-elastic material having no bias in either the full or empty state.
6. The breathing hose of claim 1, wherein the collapsible inner tube is pre-formed with a memory to create positive and/or negative pressure to counteract hydrostatic pressure imbalances.
7. The breathing hose of claim 1, wherein the breathing hose further comprises an inhale hose and an exhale hose, and wherein the collapsible inner tube is made of an elastic material to thereby bias gas to move through the rebreather apparatus toward the inhale hose.
8. The breathing hose of claim 1, further comprising: a hollow member located inside the collapsible tube, the hollow member extending along at least part of a length of the collapsible inner tube, wherein the hollow member is configured to prevent complete collapse of the inner tube under hydrostatic pressure.
9. The breathing hose of claim 8, wherein the hollow member comprises a hollow tube; or a spiral.
10. The breathing hose of claim 1, wherein the collapsible inner tube is configured to function as an in-hose counterlung.
11. The breathing hose of claim 1, wherein the collapsible inner tube is configured to act, along with the rebreather unit, to maintain a constant total volume of gas in the lungs of the user and in the rebreather unit throughout a breathing cycle.
12. The breathing hose of claim 1, wherein the rebreather apparatus does not include a counterlung, and the collapsible inner tube is configured to perform functions of a counterlung to thereby act to maintain a constant total volume of gas in the lungs of the user and in the rebreather unit throughout a breathing cycle.
13. The breathing hose of claim 1, wherein the breathing hose is configured to act as a counterlung in the rebreather apparatus.
14. A method of using a breathing hose configured to duct inhaled and exhaled gas between a user and a rebreather apparatus, the breathing hose including a non-collapsible flexible outer tube and a collapsible inner tube located within the non-collapsible flexible outer tube, the method comprising: connecting the breathing hose to a rebreather apparatus; further connecting the breathing hose to an external air tank to thereby form a closed circuit rebreather apparatus or a semi closed circuit rebreather apparatus; recycling unused oxygen and nitrogen in a user's breath as the user breathes air supplied by the closed circuit rebreather apparatus or semi closed circuit rebreather apparatus; injecting oxygen from the external air tank into the breathing hose to thereby compensate for metabolic usage of oxygen by the user from the inhaled gas; and removing carbon dioxide from the exhaled gas.
Description
DETAILED DESCRIPTION
[0033]
[0034] Referring to
[0035] Referring to
[0036] Referring to
[0037] Further, increasing the inner diameter of the breathing hoses from 40 mm to 60 mm would increase the volume of the breathing hoses from 1.5 liters up to 3.4 liters, allowing a counterlung volume reduction of 3.4 liters in the process.
[0038] In
[0039] Referring to
[0040] Referring to
[0041] Referring to
[0042] In all of the above embodiments, because the counterlung is located in-hose, just past the mouthpiece or mask, the vertical distance between the diver's lungs and the counterlung is significantly reduced. This results in a reduction in the work of breathing.
[0043] A second major benefit of the disclosed embodiments is that the overall bulk is reduced, leading to a more streamlined, efficient diver profile.
[0044] In addition, as previously discussed, the total air volume of the breathing loop of a traditional rebreather system includes the counterlung volume (movable portion) as well as the breathing hose volume (immovable portion). This large air volume requires the diver to use lead ballast in order to counteract the buoyant lift of the air volume. The disclosed in-hose counterlung eliminates the immovable portion and therefore reduces the overall volume of the breathing loop, requiring less lead ballast and leading to a smaller, lighter and more streamlined system.
[0045] Numerous modifications are possible without departing from the scope of the disclosure, for example, the collapsible inner tube may be in-elastic, with no bias in either the full or empty state, alternatively the collapsible inner tube may be pre-formed with a memory to create positive and/or negative pressure to counteract hydrostatic pressure imbalances, further alternatively, the inner tube may be elastic so as to bias the gas to move through the rebreather apparatus towards the inhale hose.