Automated systems for conserving oxygen and other substances
The expandable donor reservoir with an inflation detection system ensures oxygen is delivered only during inhalation, addressing waste and cost issues in existing systems by maximizing utilization and maintaining a consistent supply.
Patent Information
- Application Number
- JP2023505984
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-10-12
- Filing Date
- 2021-07-27
- Publication Date
- 2025-08-28
- Estimated Expiration
- 2041-07-27
AI Technical Summary
Existing oxygen delivery systems waste significant amounts of oxygen due to continuous flow during exhalation, leading to shortages and increased costs, especially in emergencies or remote areas, necessitating a system that maximizes oxygen utilization and minimizes waste.
An expandable and compressible donor reservoir maintains oxygen at ambient pressure, using an inflation detection system to refill automatically when needed, ensuring oxygen is only delivered during inhalation phases and preventing backflow, with a valve system controlling oxygen flow based on reservoir expansion.
The system effectively conserves oxygen by delivering it only during inhalation, reducing waste and maintaining a consistent supply, thus optimizing patient care and reducing costs.
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Abstract
Description
[Technical Field]
[0001] This application claims priority to U.S. Provisional Patent Application No. 63 / 056,944, filed July 27, 2020, and U.S. Patent Application Publication No. 17 / 068,718, filed October 12, 2020, both of which are incorporated herein by reference.
[0002] The present invention relates generally to the delivery of gases from a source to a recipient. More particularly, disclosed herein are systems and methods for preserving oxygen and other gases and substances when delivered from a donor reservoir to a recipient by volumetric displacement at ambient pressure with automatic filling of the donor reservoir from the source. In embodiments of the system and method, oxygen and other gases and substances are transferred from the donor reservoir to the recipient via a pressure differential therebetween with automatic filling of the donor reservoir with gas at ambient pressure, as needed by the recipient. [Background technology]
[0003] A supply of oxygen can be essential for hospital patients and others. However, in developing countries and during times of increased demand everywhere, oxygen shortages and excessive costs can significantly limit availability and endanger the health and safety of patients in need. For example, during the COVID-19 pandemic, which continues as of this writing, the demand for oxygen has left hospitals and other care facilities in dire need of the life-saving gas. A headline from AP Network News on June 24, 2020, sounded the alarm: "Scarce Medical Oxygen Worldwide Leaves Many Gasping for Life." A day later, Reuters noted, "WHO Warns of Oxygen Shortage as COVID Cases Set to Top 10 Mln," stating that the World Health Organization estimates that roughly one million new coronavirus cases are occurring worldwide each week, and the world is experiencing an average of 620,000 m² of oxygen a day. 3 The study estimates that approximately 88,000 large cylinders of oxygen will be needed for COVID-19 patients alone.
[0004] One way supplemental oxygen is delivered to a patient is through a fluid connection, usually an extension tube, between a pressurized oxygen source, such as an oxygen cylinder or tank, and the patient. The pressurized source provides a constant flow of oxygen to the patient because oxygen moves continuously from the tank through the connecting tube, whether the patient is breathing or not. As a result, oxygen is constantly flowing and wasted while the patient is exhaling and therefore unable to inhale. In fact, with this continuous pressure delivery method, more than half of the oxygen constantly delivered is wasted and vented to the environment.
[0005] Therefore, preserving one patient's oxygen resources can save another's life. Furthermore, conserving oxygen would not only reduce the overall demand per patient, but also contribute to lowering the cost per unit of oxygen. Meanwhile, each patient requires an adequate supply of oxygen. Thus, the challenge is how to provide an adequate supply of oxygen as needed while minimizing waste.
[0006] To understand the solution to this problem, one must understand what drives the flow of oxygenated air into the lungs, how flow is normally initiated and maintained between the patient and the ambient air, and how intra-alveolar pressure changes as intrathoracic pressure decreases throughout inspiration. Air, like other fluids, moves from an area of higher pressure to an area of lower pressure. Air flow into the lungs requires the establishment of a pressure gradient between the ambient and the alveoli. This driving pressure gradient is achieved by the contraction of the inspiratory muscles. Contraction of the inspiratory muscles expands the chest wall, reducing pressure in the thoracic cavity, thereby decreasing intrathoracic and intra-alveolar pressures according to Boyle's Law. Muscle contraction changes the volume of the chest, resulting in a change in alveolar pressure, which in turn provides the driving pressure for airflow into the lungs.
[0007] Normally, the lungs absorb oxygen from the air during breathing. However, certain conditions can prevent a person from obtaining enough oxygen. As a result, oxygen therapy using an oxygen delivery device is necessary. Patients can receive oxygen therapy from an oxygen source through a tube placed in the patient's nose, a face mask, or a tube placed in the patient's duct or trachea. Oxygen therapy increases the amount of oxygen the lungs receive and deliver to the blood. Oxygen therapy can be prescribed to patients when their blood oxygen levels are too low. Low blood oxygen can leave patients feeling short of breath, fatigued, or drowsy, and can be damaging to the patient's body. Oxygen therapy can be required temporarily or long-term, such as for treatable respiratory conditions. Oxygen sources are often compressed oxygen gas or liquid.
[0008] Oxygen tanks must be continuously produced, transported, stored, and filled. In emergency situations, such as during epidemics or pandemics involving respiratory distress, need can dangerously exceed supply. Furthermore, providing adequate supplemental oxygen supplies in remote and economically challenged areas can be prohibitively costly or hopelessly impossible. Meanwhile, life-saving oxygen is in critical short supply, and because oxygen is constantly being delivered to patients through tubes, at least half of the delivered oxygen is lost to the atmosphere, including during exhalation, where all of the delivered oxygen is wasted.
[0009] In view of the foregoing, the present inventors have recognized a significant need for systems and methods that allow for ready oxygen delivery to patients while minimizing or eliminating wasted oxygen, thereby minimizing individual patient requirements and maximizing effective delivery of oxygen, cost-effectively enabling better patient care and optimal health outcomes, even during a public health crisis. Summary of the Invention [Problem to be solved by the invention]
[0010] Recognizing the critical need for adequate oxygen supply to patients, the primary objective of the present invention is to save lives.
[0011] The present invention will now be further described with the basic objective of providing a system and method for delivering oxygen and other flowable substances to patients and other recipients in a manner that maximizes the effective use of available oxygen supplies by reducing wasted oxygen.
[0012] Another object of embodiments of the present invention is to provide a system and method for delivering oxygen and other flowable substances to a recipient that allows for sufficient oxygen delivery when needed while minimizing or eliminating inefficient oxygen loss.
[0013] Another stated object of the present invention is to provide a system and method for delivering oxygen and other flowable substances to a recipient that maximizes utilization efficiency and minimizes delivery costs. [Means for solving the problem]
[0014] These and other goals, advantages, and details of the present invention will become apparent to those who examine the specification and drawings, as well as to those who have the opportunity to consider the systems and methods disclosed herein in operation. However, while it is possible, and in fact preferred, for several of the aforementioned goals to be achieved in a single embodiment of the invention, it is to be understood that not all embodiments seek or require that each and every possible advantage and feature be achieved. Nevertheless, all such embodiments should be considered within the scope of the present invention.
[0015] It should be appreciated that the foregoing has outlined broadly the more important objects and features of the present invention in order to better interpret the more detailed description that follows, and to provide a better understanding of the inventors' contributions to the art. Before describing any particular embodiment or aspect thereof in detail, it should be made clear that the following detailed constructions and illustrations of the inventive concepts are merely illustrative of the many possible manifestations of the invention.
[0016] To advance one or more of the foregoing objects, an embodiment of the present invention can be characterized as a system for storing oxygen for delivery to a patient. The system includes an expandable and compressible donor reservoir having an outer wall, a volume for holding an amount of oxygen, and at least one aperture for allowing oxygen to enter and leave the volume. As disclosed herein, the donor reservoir can include a shell of flexible material, such as a foil shell. A supply conduit is adapted to receive oxygen from an oxygen source. The supply conduit has a first end for supplying oxygen to the donor reservoir and a second end for fluid connection to the oxygen source. An ambient pressure conduit is adapted to supply oxygen along a fluid path from the donor reservoir to a recipient. The ambient pressure conduit has a first end in fluid communication with the donor reservoir, such as through a connector for receiving oxygen from the donor reservoir, and a second end for fluid connection to the recipient. The inflation detection system is operable to detect a first state in which the donor reservoir is inflated with oxygen to a predetermined inflation state and a second state in which the donor reservoir is below the predetermined inflation state. Finally, a valve system is disposed between the oxygen source and the donor reservoir. The valve system operates to a closed state to prevent oxygen from flowing into the donor reservoir from the oxygen source when the donor reservoir is in the first state, and operates to an open state to allow oxygen to flow into the donor reservoir from the oxygen source when the donor reservoir is in the second state. Under this configuration, oxygen can be supplied to a patient from the donor reservoir through the patient's breathing mask as a recipient. The donor reservoir can be automatically refilled to the predetermined inflation state.
[0017] In this implementation of the system, the valve system and the expansion detection system operate to maintain the amount of oxygen in the donor reservoir at substantially ambient pressure. For example, the donor reservoir can be considered to have a fully expanded state. The expansion detection system can operate to detect when the donor reservoir has expanded to within a predetermined range of the fully expanded state. The expansion detection system can detect a first state when the donor reservoir has expanded to within the predetermined range of the fully expanded state, and can detect a second state when the donor reservoir is less than the predetermined range of the fully expanded state.
[0018] In certain embodiments, the expansion detection system comprises an electromechanical system. For example, the expansion detection system can include a switch disposed to be actuated by an outer wall of the donor reservoir when the donor reservoir is inflated with oxygen to a predetermined expansion state. The switch can be biased toward the donor reservoir by gravity, an elastically compressible member, or other effective method. The switch can be considered to have an activated state, in which the switch is disposed at or beyond an inward position relative to the volume of the donor reservoir, and an inactivated state, in which the switch is actuated outward by the outer wall of the donor reservoir when the oxygen content in the donor reservoir reaches the predetermined expansion state. The valve system operates to prevent oxygen from flowing into the donor reservoir from the oxygen source when the switch is in the inactivated state and to allow oxygen to flow into the donor reservoir from the oxygen source when the switch is in the activated state.
[0019] In a detailed specification of the system, the switch includes a float switch. For example, the float switch can have a contact structure with an expandable and contractible collar relative to a central post. The collar can carry a magnet, and the central post can carry electrical contacts that are electrically contacted by the proximity of the magnet when the switch is in an actuated state.
[0020] According to an implementation of the system, the valve system can take the form of a solenoid valve in electrical communication with an expansion detection system. When the donor reservoir is in a first state, the solenoid valve can be induced by the expansion detection system to a closed state to prevent oxygen from flowing from the oxygen source into the donor reservoir. When the donor reservoir is in a second state, the solenoid valve can be induced by the expansion detection system to an open state to allow oxygen from the oxygen source to flow into the donor reservoir.
[0021] A recipient delivery device, such as a patient's respiratory mask, or another recipient delivery device, can be coupled to the second end of the ambient pressure conduit. In certain embodiments, the donor reservoir can be disposed within a housing. This housing can include the system's main housing, a sub-housing within the main housing, or another type of housing. In other implementations, the donor reservoir can be disposed without a housing. When a housing is provided, the inflation detection system can include an electromechanical system with a switch. The switch is supported by the housing and is configured to be actuated by the outer wall of the donor reservoir when the donor reservoir is inflated with oxygen to a predetermined inflation state. More particularly, the housing can be transparent to allow visual recognition of the inflation state of the donor reservoir.
[0022] Embodiments of the system may further incorporate a one-way intake valve disposed along the fluid pathway from the donor reservoir to the recipient, which is operable to allow oxygen to flow from the donor reservoir, through the ambient pressure conduit, and to the recipient, while preventing backflow of oxygen.
[0023] In an alternative implementation of the present invention, the inflation detection system comprises a non-contact detection system, for example the inflation detection system can take the form of an optical detection system.
[0024] While the present invention has been primarily described as utilized to deliver oxygen to a human or other living patient in a manner that conserves the oxygen supply, the present invention is not limited to retaining and dispensing oxygen. Indeed, other gases and mixtures of gases, as well as other fluids, are possible within the scope of the present invention. To that extent, embodiments of the present invention may be more broadly characterized as a system for providing a supply of gas. Moreover, gas need not necessarily be delivered to the patient. Other recipients are contemplated and are within the scope of the present invention, unless expressly excluded by the claims.
[0025] It should be appreciated that the foregoing has outlined broadly the more important objects and features of the present invention in order to better understand the detailed description that follows, and to provide a better understanding of the inventors' contributions to the art. Before describing any particular embodiment or aspect thereof in detail, it should be made clear that the following structural details and illustrations of the inventive concept are merely illustrative of the many possible manifestations of the invention. [Brief explanation of the drawings]
[0026] [Figure 1] 1 is a schematic diagram of an automated system for storing gas in accordance with the present invention; [Figure 2] 1 is a schematic diagram illustrating a series of breathing cycles utilizing the automated system for conserving gas disclosed herein. [Figure 3] FIG. 10 is a top view of an alternative embodiment of an automated system for storing gas. [Figure 4] FIG. 4 is a front elevation view of the automated system for storing gas in FIG. 3. [Figure 5] 4 is a side perspective view of the automated system for storing gas in FIG. 3. FIG. [Figure 6] FIG. 1 is a top perspective view of an inflation detection system for an automated system for storing gas in an on state. [Figure 7] FIG. 1 is a bottom perspective view of the inflation detection system in an on state. [Figure 8] FIG. 2 is a side elevational view of the inflation detection system in an off state. [Figure 9] 1 is a top view of an automated system for storing gas as disclosed herein with the cover portion and retained inflation detection system removed. FIG. [Figure 10] 10 is a bottom view of the automated system for storing gas in FIG. 9. FIG. [Figure 11] FIG. 1 is a top view of an alternative automated system for storing gas in accordance with the present invention. [Figure 12] 12 is an enlarged top view of the automated system for storing gas in FIG. 11. FIG. [Figure 13] FIG. 12 is a bottom view of the automated system for storing gas in FIG. [Figure 14] FIG. 12 is a side elevation view of the automated system for storing gas in FIG. [Figure 15] FIG. 12 is a front perspective view of the automated system for storing gas in FIG. 11. [Figure 16] 12 is a perspective view of the filter and one-way intake valve of the automatic system for storing gas in FIG. 11. FIG. [Figure 17] 1A-1C are schematic top and side elevation views of another automated system for storing gas in accordance with the present invention; [Figure 18] 10A-10C are schematic top and side elevation views of yet another automated system for storing gas in accordance with the present invention; DETAILED DESCRIPTION OF THE INVENTION
[0027] The systems and methods for conserving oxygen and other substances disclosed herein are subject to a wide variety of embodiments, but certain preferred embodiments of the broader invention are described below and illustrated in the accompanying drawings to ensure that those skilled in the art can understand the invention and, where appropriate, practice the invention disclosed herein.
[0028] Turning to the drawings in more detail, the structure and operation of an automatic gas conservation system 400 according to the present invention can be understood with reference to FIG. 1. As shown and described herein, the automatic gas conservation system 400 provides for the supply of oxygen at ambient pressure from a donor reservoir 404 to a recipient, such as a patient's respiratory mask 426, on an as-needed basis. The donor reservoir 404 holds oxygen at ambient pressure and is continuously supplied with oxygen from an oxygen source 406, such as a tank of compressed oxygen gas or liquid oxygen. By holding oxygen at ambient pressure in the donor reservoir 404, a large and ample supply of oxygen is constantly available for the patient's inspiration. Concomitantly, oxygen loss during the patient's expiration is virtually eliminated, thereby preserving the supply of oxygen without compromising its availability to individual recipients, because the oxygen in the donor reservoir 404 is automatically replenished.
[0029] The donor reservoir 404 in this embodiment comprises an expandable and compressible shell, bladder, or other expandable and compressible body disposed within a housing 402. The housing 402 can be a primary or secondary housing within a larger structure. However, the donor reservoir 404 need not necessarily be within the housing 402 within the scope of the present invention. The housing 402 defines boundaries for the reservoir 404 such that, when the reservoir 404 is expanded, the shell of the reservoir 404 presses toward one or more of the boundaries defined by the housing 402. In this non-limiting example, the housing 402 has a bottom defining a lower boundary of the reservoir 404, a top defining an upper boundary of the reservoir 404, and a distal end defining a longitudinal boundary of the reservoir 404. Here, the reservoir 404 has an elliptical oval shape, and the housing 402 has a generally cubical shape. However, other shapes and combinations of shapes are readily possible and within the scope of the present invention, except as expressly limited by the claims. For example, as in the embodiment of the automatic gas storage system 400 shown in Figure 10, the lower wall portion of the shell of the reservoir 404 can be adhered or secured to the bottom of the housing 402 by adhesive strips 448 or any other method.
[0030] In this example, the reservoir 404 is sealingly defined by first and second ellipsoids joined along their edges to define a shell, or outer wall structure, with a body portion and a neck. The reservoir 404 is sealed except for an inlet hole at the neck of the reservoir 404. The shell is formed from a flexible, substantially gas-impermeable material; many such materials known to those skilled in the art are possible, each within the scope of the present invention. The shell of the reservoir 404 can be formed, for example, from a flexible polymeric material, with or without a lining layer. The material defining the reservoir 404 can be composed of a foil formed from one or more layers of polymeric material, for example, with an aluminum lining. Other configurations of the reservoir 404 are possible and within the scope of the present invention. The reservoir 404 can have one or more flexible, compressible, collapsible, expandable, thin, or other wall configurations capable of retaining a volume of gas therein.
[0031] Preferably, as is possible with the lightweight, flexible foil construction of reservoir 404, once expanded, reservoir 404, whether due to its own structural integrity or otherwise, tends to substantially maintain its expanded shape and configuration even when vented to ambient pressure, such as by fluid connection to receptacle 426 through ambient pressure tubing 422. As taught herein, when expanded, reservoir 404 in preferred embodiments does not collapse significantly on itself due to the weight of its walls. When filled with oxygen, reservoir 404 temporarily stores a compartmentalized amount of oxygen at ambient pressure, awaiting withdrawal therefrom by receptacle 426.
[0032] Fluid connector 418, which in this example comprises a T-connector, has a first longitudinal port in fluid communication with donor reservoir 404, such as through an aperture in the neck of reservoir 404. Fluid connector 418 has a second longitudinal port in fluid communication with ambient pressure tubing 422 and, through tubing 422, to recipient 426. Finally, fluid connector 418 has a third lateral port between the first and second openings in fluid communication with oxygen source 406. Fluid communication from source 406 to connector 418 can be through, for example, high pressure tubing 408, which acts as a supply conduit from oxygen source 406 to oxygen connector 410 secured to housing 402, and high pressure tubing 452 from oxygen connector 410 to supply valve 412. The first, second, and third ports are in fluid communication with one another within fluid connector 418.
[0033] Supply valve 412, which in this example comprises an electromechanical solenoid valve 412, has an open state and a closed state. Valve 412 is fluidly interposed between pressurized oxygen source 406 and reservoir 404. When supply valve 412 is in the open state, oxygen can be transferred from oxygen source 406, through tubing 408, through valve 412, through connector 418, and into reservoir 404. When valve 412 is in the closed state, the passage of oxygen between oxygen source 406 and reservoir 404 is prevented.
[0034] A one-way intake valve 424 is interposed between the reservoir 404 and the recipient 426, such as by fluidly connecting the one-way intake valve 424 to the second port of the fluid connector 418 and fluidly connecting the fluid connector 418 to the neck of the reservoir 404 through the first port. The one-way intake valve 424 operates to allow gas to flow from the donor reservoir 404 through the ambient pressure tubing 422 to the recipient 426, but prevents backflow of gas, such as from the recipient 426 into the donor reservoir 404. A gas filter 420 is fluidly interposed between the recipient 426 and the one-way intake valve 424, and thus between the recipient 426 and the donor reservoir 404. The filter 420 and the one-way intake valve 424 are shown separated from the rest of the automated gas conservation system 400 in FIG. 16 .
[0035] As disclosed herein, the amount of oxygen in the donor reservoir 404 is maintained at substantially ambient pressure. Ambient pressure can be defined as the pressure of the air surrounding the donor reservoir 404. When the recipient is in the inspiratory phase of breathing, oxygen will be drawn from the donor reservoir 404 through the ambient pressure tube 422, thereby drawing from and tending to reduce the amount of oxygen in the donor reservoir 404. Due to the compressible nature of the donor reservoir 404, the reservoir 404 will tend to contract. When contracted, the donor reservoir 404 is automatically replenished with oxygen by operation of an expansion detection system without pressurizing the reservoir, thereby maintaining the oxygen in the reservoir 404 at substantially ambient pressure.
[0036] The expansion detection system has a first state in which supplemental oxygen is not supplied to the donor reservoir 404 and a second state in which supplemental oxygen is supplied to the donor reservoir 404. The first state can be a state in which the donor reservoir 404 is inflated with oxygen to a predetermined expansion state, and the second state can be a state in which the donor reservoir 404 is inflated with oxygen to less than the predetermined expansion state. The expansion detection system operates to detect when the donor reservoir 404 reaches the predetermined expansion state. The predetermined expansion state can be detected when the donor reservoir 404 reaches a predetermined size or other expansion state of any dimension or combination of dimensions. In embodiments of the present invention, the donor reservoir 404 can be considered to have a fully inflated state, and the expansion detection system detects when the donor reservoir 404 has expanded to the fully inflated state or to within a predetermined range of the fully inflated state. By way of example and not limitation, the expansion detection system can detect when the donor reservoir 404 is expanded with oxygen above a threshold expansion level, which may be below a fully expanded state.
[0037] Upon reviewing this disclosure, one skilled in the art will recognize multiple mechanisms that would operate as an inflation detection system to detect when the donor reservoir 404 has been inflated to a predetermined inflation state. Each such mechanism is within the scope of the present invention unless expressly limited by the claims. The inflation detection mechanism can include mechanical systems, electrical systems, electromagnetic systems, optical systems, electromechanical systems, sound-activated systems, motion sensors, optical sensors, and any other type of system effective for detecting when the donor reservoir 404 has been inflated to a predetermined inflation state. Note again that the predetermined inflation state can be reached while the oxygen in the donor reservoir 404 is at substantially ambient pressure.
[0038] 1 , the expansion detection system includes an electromechanical system for detecting when the donor reservoir 404 has filled to a predetermined expansion state. The expansion detection system includes a contact structure 416 arranged to contact, be contacted by, be moved by, or be actuated by the donor reservoir 404 when the reservoir 404 reaches the expansion stage. The location and structure of the contact structure 416 may vary within the scope of the present invention. For example, in the embodiment of FIG. 1 , the contact structure 416 is arranged to protrude into the volume of the housing 402 from or through the distal end wall of the housing 402, so that the contact structure 416 can protrude toward and engage the distal end of the reservoir 404. 3-15, however, the contact structure 416 is disposed so as to protrude from or through the top wall of the housing 402 into the volume of the housing 402 and engage an intermediate portion of the reservoir 404. The contact structure 416 is then held by a support structure 434 fixed to the top wall of the housing 402. In accordance with the present invention, the contact structure 416 can be held differently.
[0039] The contact structure 416 is positioned to be moved by the donor reservoir 404 as it expands toward the expanded state. The contact structure 416 can be, for example, depressed, pivoted, rotated, or otherwise actuated by the donor reservoir 404, more particularly by the expansion of the donor reservoir 404. The contact structure 416 operates as a flow switch 414, as a component of the flow switch 414, or by actuating the flow switch 414. When the contact structure 416 is actuated by the expansion of the donor reservoir 404, the flow switch 414 causes actuation of the valve 412 between an on state, which allows oxygen to flow from the oxygen source 406 into the reservoir 404 to replenish and fill the reservoir 404, and an off state, which prevents oxygen from flowing from the oxygen source 406 into the reservoir 404. Contact member 416 is biased toward donor reservoir 404 by spring force under gravity, by resiliency, or by other biasing methods, or a combination thereof.
[0040] In the non-limiting embodiment of FIG. 1 , donor reservoir 404 is disposed within housing 402. Additionally or alternatively, donor reservoir 404 can be disposed within a sub-housing, which in turn can be disposed within housing 402 or located independently. Further, as shown in FIG. 17 , for example, donor reservoir 404 can be disposed without a housing or enclosure, in which case, as described in more detail below, contact structure 416 and, optionally, flow switch 414 can be held by a surrounding band, rigid arm, or another retention structure 454, etc., for contacting or otherwise sensing or engaging donor reservoir 404. Contact structure 416 and flow switch 414 can be held together, optionally as a unit or as separate arrangements. In FIG. 17 , contact structure 416 is held by retention structure 454. The retaining structure 454 may be a rigid support arm or any other support structure that engages the donor reservoir 404. The flow switch 414 is integrated into the contact structure 416.
[0041] Thus, contact structure 416 is held in contact with reservoir 404 by housing 402, by holding structure 454, or by reservoir 404. Without limiting the invention, contact structure 416 may be held in contact with reservoir 404 partially or wholly within housing 402, through an aperture in housing 402, or through an aperture in a sub-housing that holds reservoir 404, or contact structure 416 not in a housing at all may be held in contact with donor reservoir 404.
[0042] When the contact structure 416 is moved sufficiently, such as by expanding, pivoting, or other movement inward toward the volume of the donor reservoir 404, the flow switch 414 has an activated state and it can be considered to be in an on state. When the oxygen content of the donor reservoir 404 is below a predetermined expansion state, thereby distorting or moving the outer wall inward, the contact structure 416 can move inward toward the donor reservoir 404 and be in an activated state. When the contact structure 416 is moved, such as by contracting, pivoting, or other movement outward away from the donor reservoir 404, the flow switch 414 is in a deactivated state and it can be considered to be in an off state. When the oxygen content of the donor reservoir 404 reaches a predetermined expansion state and the outer wall of the donor reservoir 404 is forced outward by the expansion of the donor reservoir 404, the contact structure 416 is moved outward to adjust the flow switch 414 to a deactivated state, which is an OFF state. For example, if the contact structure 416 is a push-button switch, the expansion of the donor reservoir 404 will push the outer wall or shell of the donor reservoir 404 outward, depressing the contact structure 416 and the flow switch 414 to a deactivated state.
[0043] In the embodiment of Figures 3-10, contact structure 416 and switch 414 are embodied as a float switch with an actuation framework. With particular reference to Figures 7 and 8, it can be seen that actuation framework of contact structure 416 is supported for movement along a vertical axis generally perpendicular to the length and generally the surface of donor reservoir 404. Actuation framework of contact structure 416 has a distal toroidal ring 444 disposed to engage and be engaged by the wall of reservoir 404. Proximal toroidal ring 442 is maintained parallel and spaced apart relative to distal toroidal ring 444 by a plurality of rod members 446, and collar 440 is secured for movement with proximal toroidal ring 442.
[0044] The actuation framework, rod member 446, and collar 440 formed by toroidal rings 442 and 444 are expandable and contractible relative to central post 436. An annular plate 438 is fixed along the length of central post 436 distal to collar 440 of the actuation framework, such that annular plate 438 holds contact structure 416 in a floating manner. As FIG. 7 shows, collar 440 tends to drop into contact with annular plate 438 under gravity when donor reservoir 404 is filled below a certain level.
[0045] Central post 436 houses a magnetic switch 414, such as a reed switch 414, and an actuation framework of contact structure 416 holds a magnet 447 within collar 440. When the actuation framework expands the donor reservoir below its inflated state, as in FIG. 7, contacts 445 (shown in FIG. 8) of reed switch 414 are drawn into contact with each other, completing an electrical circuit and actuating switch 414 to an activated state, which actuates valve 412 to an on state. Oxygen is now allowed to flow from the oxygen source 406 into reservoir 404. When reservoir 404 is filled to a predetermined inflated state, magnet 447 within collar 440 is moved away from contacts 445 of reed switch 414, breaking the circuit and actuating switch 414 to a deactivated state, thereby actuating valve 412 to an off state. Oxygen is now prevented from flowing from oxygen source 406 into reservoir 404.
[0046] Upon biasing of the contact structure 416, which may be by any mechanism including gravity, a resilient compression member or an expansion member, or any combination of mechanisms, when the amount of oxygen in the donor reservoir 404 falls below a predetermined threshold, such as below a predetermined expansion state, the contact structure 416 automatically moves to an activated state, actuating the flow switch 414 and actuating the valve 412 to an on state, allowing oxygen to flow from the oxygen source 406 into the reservoir 404. When the amount of oxygen in the donor reservoir 404 reaches a predetermined threshold, such as above the predetermined expansion state, the contact structure 416 is moved by the wall of the donor reservoir 404 to a deactivated state, and the switch is disposed in an off state. In the deactivated state, the valve 412 is closed, preventing storage gas from flowing from the source 406 into the donor reservoir 404.
[0047] Thus, the donor reservoir 404 can be expanded to or within a given maximum volume range of the donor reservoir 404 without over-expansion or over-pressure. Thus, oxygen within the donor reservoir 404 is generally prevented from exceeding ambient pressure. However, unless required by the claims, embodiments of the present invention may calibrate the contact structure 416 or the flow switch 414, or both, to induce a deactivation state or an expansion state significantly below the maximum capacity of the donor reservoir 404 at some other predetermined expansion state or pressure, potentially including a pressure or expansion state above ambient pressure. The flow switch 414 and valve 412 may be electrical, mechanical, electromechanical, or otherwise configured and constructed.
[0048] Those skilled in the art will also recognize other mechanisms operating as an inflation detection system for detecting inflation of the donor reservoir 404 to a predetermined inflation state, with each mechanism falling within the scope of the present invention, except as may be expressly limited by the claims. For example, as in the embodiment of FIG. 18 , the inflation detection system can alternatively take the form of a non-contact detection system 456, such as an optical detection system, which may be implemented, for example, by a laser detection system, a camera system, an infrared inflation detection system, or other effective optical or non-contact detection system. For example, in the non-limiting embodiment of FIG. 18 , the non-contact detection system 456 is formed with a light emitter, such as a laser or other light emitter, held on one side of the reservoir 404 and a light receiver held on the opposite side of the reservoir 404. With such a configuration, the inflation state of the donor reservoir 404 can be sensed in a non-contact manner, such as when the donor reservoir 404 is inflated to a state that prevents light communication from the light emitter to the light receiver. The reservoir 404 demonstrates a predetermined reflectance or demonstrates it in other non-contact manner.
[0049] In the embodiment of the automated gas storage system 400 in FIGS. 1-16, the supply valve 412 includes a solenoid valve. The solenoid valve is in electrical communication with a flow switch 414, such as through electrical wiring in an electrical circuit. Illustratively, an electrical control system, which may include electrical circuitry, electronic memory, wiring, and other electrical control and connection elements, cooperates with the inflation detection system to steer the solenoid supply valve 412 to an open state, allowing oxygen to flow from the source 406 when the flow switch 414 is in an activated state. The electrical control system may receive power from a power source. The power source may be an alternating current source through a power supply connection 430, a direct current source such as a battery power source, or other power source. The flow of power from the power source may be controlled by a power switch 432. The solenoid valve 412 is steered to a closed state by the inflation detection system and the electrical control system to prevent oxygen from flowing from the source 406 into the reservoir 404 when the flow switch 414 is in an inactivated state. Each of the components referred to herein may be further combined or separated within the scope of the present invention.
[0050] The solenoid valve 412 can be electrically open when the electrical circuit is closed by movement of the flow switch 414 in the inflation detection system to an actuated state or by other actuation. The solenoid valve 412 can automatically close to prevent further filling of the donor reservoir 404 when the electrical circuit is opened by the contact structure 416 and the flow switch 414 is moved to a de-actuated state, which can indicate that the donor reservoir 404 has been filled to a predetermined inflation state. In an example of the present invention in which the contact structure 416 and flow switch 414 are actuated by the reservoir 404 pressing or depressing the contact structure 416 outward, an open electrical circuit is established and no electricity flows when the contact structure 416 is sufficiently pressed outward by the reservoir 404 and the solenoid valve 412 is in a closed position. When the contact structure 416 advances sufficiently, such as by expanding inward toward the reservoir, to indicate that the reservoir 404 has decreased below a predetermined expanded state, the electrical circuit is closed, allowing electricity to flow and actuate the solenoid valve 412 to an open state, thereby allowing oxygen to flow and fill the donor reservoir 404.
[0051] Even when valve 412 is in an open state, the flow rate, flow pressure, or both flow pressure and flow rate of oxygen from source 406 to donor reservoir 404 can be limited by, for example, flow-restricting connector 415 shown in FIG. 1 . Flow-restricting connector 415 can limit the flow rate of oxygen from source 406 to donor reservoir 404 to a predetermined rate, such as less than 1 liter / minute or any other rate. Flow-restricting connector 415 can comprise a small-diameter tubing connector, such as a connector having an inner diameter of 0.02 mm or other dimensions that are reduced compared to other conduit connections in the fluid system. Thus, sudden pressure changes in donor reservoir 404 can be prevented by opening valve 412.
[0052] Referring to FIG. 2 , an automatic gas conservation system 400 is shown in operation during a series of breathing cycles, providing an on-demand supply to a recipient 426, such as a mask worn by a person in need or other living patient. In operation, inspiration by the patient tends to draw oxygen at ambient pressure from a donor reservoir 404, thereby tending to deflate the reservoir 404. When the reservoir 404 is depleted during a predetermined inflation state, the reservoir 404 is automatically filled to the predetermined inflation state by supplying oxygen from a source 406. Thus, a continuously replenishing amount of ambient pressure oxygen is available in the reservoir 404 to be drawn through a one-way inhalation valve 424 and in the ambient pressure tube 422 during the natural inhalation phase of the breathing cycle. When the recipient 426 is not engaged for inspiration, oxygen is not drawn from the reservoir 404. If the amount of oxygen in reservoir 404 falls below a predetermined inflation state, the inflation detection system formed by contact structure 416 and flow switch 414 will detect this and actuate valve 412 to an open state. Oxygen flow is then permitted from oxygen source 406, causing donor reservoir 404 to fill with oxygen until the predetermined inflation state is reached. Once the predetermined inflation state is reached, the inflation detection system will detect this and actuate valve 412 to a closed state, preventing further delivery of oxygen from source 406 to donor reservoir 404 until another inspiratory phase of the breathing cycle draws an amount of oxygen from reservoir 404. In this manner, donor reservoir 404 is automatically oxygenated, while pressurization of oxygen within reservoir 404 is automatically prevented. Supplemental oxygen can be safely and effectively delivered to the patient at ambient pressure by an on-demand volume displacement system, allowing oxygen transfer during the entire inspiratory phase of the breathing cycle. On the other hand, the release of unnecessary oxygen during the expiratory phase of breathing, indeed at any phase other than the inhalation phase, is prevented.
[0053] The donor reservoir 404 automatically receives supplemental oxygen from the pressurized source 406 through the high-pressure tube 408 and through the supply valve 412 as soon as the reservoir 404 begins to collapse. Automatically filling the reservoir 404 ensures that the donor reservoir 404 always maintains a supply of oxygen available for the next inspiratory phase of the breathing cycle, while ensuring that the oxygen in the reservoir 404 does not exceed ambient pressure. When the donor reservoir 404 is visually exposed through a partially or fully transparent housing 402 or an observation aperture in the housing 402, the observer is provided with visual confirmation of the expanded state of the donor reservoir 404. In this manner, the automatic gas conservation system 400 can provide consistent delivery of supplemental oxygen to the recipient 426. This is because the donor reservoir 404 and system 400 generally match the patient's physiological ventilation based on the storage and replenishment of oxygen at ambient pressure in the donor reservoir 404 and the automatic termination of oxygen delivery in the donor reservoir 404 when a predetermined expansion state is reached.
[0054] Within the scope of the present invention, system 400 can measure, record, and analyze oxygen flow and patient respiratory characteristics. By way of non-limiting example, a volumetric flow meter can be connected to oxygen source 406. Additionally or alternatively, one or more flow meters can be retained within housing 402 along the path of gas flow through system 400. For example, a flow meter can be disposed to measure oxygen passing through valve 412. In the illustrated embodiment, valve 412 can incorporate a flow meter, whereby a flow meter is considered to be present within the valve, or the flow meter can be disposed otherwise. For example, a flow meter can also or additionally be disposed between reservoir 404 and ambient pressure tube 422. By measuring the amount of oxygen delivered by system 400 to receptor 426 over a given period of time, determinations, measurements, and analyses can be made for each inspiration and expiration cycle, or multiple determinations. For example, the amount of oxygen inhaled by the patient and, additionally or alternatively, the amount of oxygen remaining in oxygen source 406 can be determined. Through software operating on or in communication with electronic memory and electrical systems, system 400 can collect, process, and analyze data based on use of system 400 .
[0055] As often shown and described herein, the receptacle 426 can be a respiratory mask for a living patient receiving supplemental oxygen, although other receptacles and delivery equipment are possible and within the scope of the present invention. When attached to the patient, the patient and the respiratory mask or other oxygen delivery equipment may be collectively referred to as the receptacle 426. Other receptacle delivery equipment may include other respiratory attachments, such as, for example, but not limited to, a nasal cannula, a laryngeal mask airway (LMA), an endotracheal tube, a tracheostomy, a ventilator attachment, a CPAP machine connector, an Ambu bag, or a delivery device for recreational oxygen. The automatic gas conservation system 400 is not limited to the receptacle 426 unless the claims expressly require.
[0056] 1, the receptor mask 426 can have one or more one-way exhalation valves 428 and can include adjustment mechanisms known to those skilled in the art for adjusting the oxygen delivery to the patient. If necessary, the oxygen concentration required by the patient as determined by the physician can be reliably and predictably diluted and controlled with the currently used device, and it is within the scope of the system 400. By way of example and not limitation, the number, diameter, or other characteristics of the holes in the inspiratory tube 422 or receptor mask 426 can be adjusted to allow more or less oxygen to achieve the desired concentration clinically required in the receptor mask 426 for the patient.
[0057] With further reference to FIG. 2, the method for necessary oxygen delivery to the patient's recipient 426 and the associated coordinated operation of the automated gas conservation system 400 can be further understood. There, the evolution of the respiratory cycle is shown in parallel with the filling and refilling of the donor reservoir 404 in the automated gas conservation system 400. To expand the lungs, the inspiratory muscles overcome two primary factors: lung compliance and airway resistance, which is primarily in the form of frictional resistance to airflow through the airways. At the onset of inspiration, the diaphragm contracts and descends, expanding the chest volume. Diaphragm depression compresses the abdominal contents, reducing the pressure on the thoracic contents. With the expansion of the thoracic cavity and its resulting pressure drop, both intrapleural and intraalveolar pressures decrease. The intraalveolar pressure drops to subambient levels, establishing a pressure gradient for airflow into the lungs. Airflow into the lungs, and lung volume, increases until the intra-alveolar pressure rises to the ambient pressure level (0 cm H2O), when the pressure gradient in airflow into the lungs ceases to exist. At the end of quiet inspiration, intrapleural pressure reaches approximately -8 cm H2O, and transpulmonary pressure, expanding the lungs, increases to 8 cm H2O (PI = Pa - Ppl = 0 - (-8) = 8 cm H2O).
[0058] During quiet expiration, the cycle is reversed. The inspiratory muscles relax, and the inward elastic recoil of the lungs causes them to contract. During contraction, the lungs and chest wall move as a unit. Airflow from the lungs stops when intra-alveolar pressure equals atmospheric or ambient pressure (0 cm H2O).
[0059] According to Boyle's law, in a closed system with a constant number of gas molecules, at any constant temperature, the pressure exerted by a gas varies inversely with the volume of gas. Thus, as the volume of gas increases, the pressure exerted by the gas decreases. Conversely, as the volume decreases, the pressure increases.
[0060] Thus, in operation of the present system 400 and method, as the patient breathes during the inspiratory phase of the respiratory cycle, a continuous flow of supplemental oxygen enters the patient's lungs from the system 400 throughout the entire inspiratory phase of the respiratory cycle. The flow, pressure, and volume vary at different points in the inspiratory phase. Flow begins when the intra-alveolar pressure drops below ambient pressure inside the donor reservoir 404. It is understood that the system 400 may operate at pressures above and below ambient pressure, unless otherwise required by the claims. The donor reservoir 404 then delivers unpressurized oxygen at ambient pressure directly to the patient through the receiver 426 as a continuous flow, but at various speeds during the inspiratory cycle. The flow, pressure, volume, and respiratory rate closely match those of the patient because the donor reservoir 404 is maintained at ambient pressure. By using system 400 to match supplemental oxygen to the patient's physiological ventilation at each point in time throughout the inspiratory phase of the respiratory cycle, the prescribed oxygen concentration is ensured to be delivered through the recipient face mask 426, or any other available oxygen delivery device, without increasing or decreasing supplemental oxygen beyond the plan. Flow, alveolar pressure, and tidal volume can be matched at each point throughout the inspiratory phase of the respiratory cycle, understanding that the patient's physiological ventilation will vary at different points in the inspiratory phase.
[0061] The continued flow of oxygen to the patient's lungs is maintained until the patient's intrathoracic pressure equilibrates with the donor reservoir 404's ambient pressure at the end of the inspiratory phase of the respiratory cycle. At that time, oxygen flow to the patient ceases until the next inspiratory phase begins. During the expiratory phase of the respiratory cycle, no oxygen flows from the system 400 to the patient, but a flow of compressed oxygen from the hyperbaric oxygen source 406 is supplied, expanding the donor reservoir 404 until it reaches a predetermined inflation state. Once the reservoir 404 has refilled to its predetermined inflation state at ambient pressure, the donor oxygen reservoir 404 is ready to deliver supplemental oxygen when the patient's next inspiratory phase begins. An inflation detection system automatically shuts off the supply valve 412, preventing further oxygen flow once the reservoir 404 has filled to ambient pressure. Passive, continuous transfer of reliable amounts and concentrations of supplemental oxygen from the donor reservoir 404 to the patient's lungs throughout the entire inhalation cycle is possible with the donor reservoir 404 positioned between the compressed oxygen source 406 and the patient's oxygen delivery equipment, such as the recipient mask 426.
[0062] Thus, automatic gas conservation system 400 can be utilized to provide supplemental oxygen to a patient in a wide variety of situations. Moreover, unless the claims expressly so limit, automatic gas conservation system 400 is not limited to handling oxygen, and is not necessarily limited to providing gas to a patient. Other applications are possible, such as dispensing gas or other substances by automatically refilling reservoir 404.
[0063] Many conditions may require supplemental oxygen. For example, at the time of writing, numerous patients require supplemental oxygen due to acute hypoxemic respiratory failure resulting from COVID-19 coronavirus infection. Other conditions requiring supplemental oxygen include acute exacerbations of chronic obstructive pulmonary disease (COPD) and acute severe bronchial asthma. Patients with chronic obstructive pulmonary disease often have chronic hypoxemia with or without CO2 retention. Oxygen in this situation is required until the exacerbation subsides. A high FiO2 (fraction of inspired oxygen) of up to 100% may be initially administered if hypoxemia is severe, but it is quickly tapered to an FiO2 of 50–60%. The goal of supplemental oxygen is to maintain a PaO2 (arterial oxygen partial pressure) of 55–60 mmHg, which corresponds to an SpO2 (arterial oxygen saturation) of approximately 90%. High concentrations of oxygen blunt the hypoxic ventilatory drive, which can promote hypoventilation and CO2 retention. It is considered preferable to use a regulated flow device, such as a bench mask, which ensures oxygen delivery to a significant degree. Once the patient is stabilized, they can be transitioned to a nasal cannula, which is more comfortable and acceptable for most patients. Patients with acute severe asthma or persistent asthma have severe airway obstruction and inflammation. They are generally hypoxemic. In such cases, an arterial blood sample is immediately obtained, and oxygen is initiated via a nasal cannula or, preferably, a face mask, at a flow rate of 4-6 liters / min to achieve an FiO2 of 35-40%. Faster flows are unlikely to improve oxygen delivery. The flow rate is adjusted to maintain a PaO2 of approximately 80 mmHg or near normal. If hypoxemia persists and / or hypercapnia develops, ventilatory support is required.
[0064] These clinical samples demonstrate the importance of delivering a reliable FiO2 (fraction of inspired oxygen) to patients. However, conventional systems require continuous flow at high rates to overcome air trapping, rendering these systems useless when delivering compressed oxygen directly to the patient from a cylinder. Furthermore, even when these systems avoid continuous delivery of oxygen by delivering compressed oxygen intermittently only during the inspiratory phase of the breathing cycle, such as with pulsed flow (PF), these systems must still provide pulses of compressed oxygen to the patient containing significantly more oxygen than the patient requires to overcome air trapping.
[0065] By delivering oxygen only as needed during the inhalation phase of the breathing cycle, the present system 400 and method are elegant and efficient in conserving oxygen and reducing oxygen costs without compromising essential supplies. Because no gas is delivered to the patient during the exhalation phase of the breathing cycle, the flow of oxygen from the compressed oxygen source 406 is intermittent only during inspiration, rather than a continuous flow as required by, for example, prior art high-concentration oxygen masks to maintain a reliable oxygen concentration and overcome air entrapment. These dilute the oxygen concentration and deliver an unreliable concentration to the patient. Oxygen delivery systems that use a constant flow of compressed oxygen, especially at high flow rates, are wasteful and costly. Furthermore, delivering pressurized oxygen can be complex and difficult, often requiring complex software, detailed algorithms, and multiple components susceptible to failure and damage. This requires repairs and safety features, further contributing to the cost and complexity of such systems.
[0066] Thus, while typical prior art systems offer relatively inexpensive oxygen delivery systems, they require a constant flow of pressurized oxygen, with more than half of the valuable gas simply being vented to the environment. Systems involving oxygen delivered using a pulsed flow (PF) through a face mask or another oxygen delivery device strive to provide oxygen only during the inspiratory phase and not during exhalation, reducing overall oxygen requirements. However, such delivery requires expensive equipment and is not delivered at ambient pressure. Furthermore, providing pulses of supplemental oxygen at the right time and perfectly aligned with the patient's breathing can be difficult or impossible, especially if the patient's oxygen needs change over time.
[0067] The on-demand supply of naturally inspired oxygen provided by the donor reservoir 404 using the present automated gas conservation system 400 overcomes many of the drawbacks and limitations presented by prior art systems. For example, many prior art systems rely on the patient's peak inspiratory flow rate (PIFR) to achieve a prescribed inspired oxygen concentration. For example, using a nasal cannula at a low flow rate can be helpful when the patient requires a low inspired oxygen concentration, but this practice limits the patient's oxygen to only that low inspired oxygen concentration. If the patient's oxygen demand were to increase significantly, the inspiratory effort to force more air into the lungs, which is governed by tidal volume, inspiration "speed," and respiratory rate, would cause the PIFR to exceed the flow rate at which oxygen or oxygen / air mixture is delivered by the nasal cannula or other delivery device. This means that during the PIFR, more or less room air entrainment occurs, causing the resulting FiO2 to vary unpredictably. On the other hand, if a patient requires high concentrations of oxygen, using a non-rebreathing face mask with a very high oxygen flow (10-15 liters / min) again ensures reliable oxygen delivery at the prescribed concentration and with less dependence on PIFR. However, more than half of the oxygen is wasted to the environment, and supply costs increase accordingly.
[0068] While a tank of compressed gas is often referred to and illustrated herein as the oxygen source 406, other oxygen sources 406 are possible and within the scope of the present invention. By another non-limiting example, the automated gas storage system 400 can provide oxygen to a patient on demand using oxygen supplied by an oxygen concentrator. The oxygen concentrator does not require a tank. Instead, the oxygen concentrator takes in air and removes nitrogen from it, leaving an oxygen-enriched gas for patients requiring medical oxygen. The typical flow of this compressed oxygen is 1-5 liters per minute. High-end oxygen concentrators can deliver up to 50 liters per minute, but they require more electricity and more maintenance.
[0069] By placing the automatic gas conservation system 400 disclosed herein between an oxygen concentrator and a receptacle 426, such as a patient's face mask or nasal cannula, excess oxygen can be stored at ambient pressure for use if the concentrator does not provide the required amount or sufficient supply due to flow limitations. For example, if the oxygen concentrator provides 10 liters per minute and the patient suddenly needs more when their saturation level drops, there will be an available amount of ambient atmospheric oxygen in the donor reservoir 404. Without the reservoir 404, the patient would be limited to the concentrator's flow, which is itself limited. Therefore, without the reservoir 404, if the patient needed more oxygen to survive, the only option would be to increase the oxygen flow to the mask, which might not be possible, or to intubate the patient and use mechanical ventilation, which both the physician and the patient would want to avoid.
[0070] If the oxygen source 406 is an oxygen concentrator, the automatic gas conservation system 400 can be installed between the oxygen concentrator and the patient's mask 426 or other receptor, so that as oxygen leaves the concentrator, it enters a large reservoir 404 where it remains at ambient pressure until the patient inhales. As the patient breathes and draws oxygen from the reservoir 404, the reservoir 404 begins to deplete, and a supply valve 412 from the oxygen concentrator as the oxygen source 406 opens, replenishing the reservoir 404 with compressed oxygen from the oxygen concentrator. When the patient exhales, there is no flow between the reservoir 404 and the patient through the receptor mask 426 or other means. During the patient's exhalation phase, rather than wasting oxygen flowing from the concentrator, the flow is utilized to refill the reservoir 404. Once the reservoir 404 is full, the supply valve 412 stops the flow of oxygen from the oxygen concentrator source 406. When the patient breathes again, the donor reservoir 404 deflates below the predetermined inflation state, and the shutoff valve 412 opens, replenishing the reservoir 404 with oxygen from the oxygen concentrator. This cycle is repeated with every breath. In this way, oxygen not taken in by the patient during inspiration is stored rather than lost. In one example, a concentrator 406 with an oxygen output of 20 liters / minute used by a patient requiring only about 5 liters of high-concentration oxygen during inspiration leaves more than 10 liters, which can extend the usefulness of the supply. In this way, oxygen concentrators can be used for their intended purpose while having fewer requirements for operating time, electricity, wear and tear, and repairs, thereby representing a more useful and reliable investment for the end user. Furthermore, the system 400 and the concentrator as the oxygen source 406 work together to provide more reliable oxygen concentrations for patients requiring higher concentrations.
[0071] As disclosed herein, the automated gas conservation system 400 and method provides a gas or mixture of gases at ambient pressure from a donor reservoir 404 to a recipient 426. The ambient pressure gas or mixture of gases in the reservoir 404 can be drawn from the donor reservoir 404 when the recipient 426 reduces its pressure below that of the donor reservoir 404, and immediately stops drawing ambient pressure gas from the reservoir 404 once the pressure in the recipient 426 equilibrates with the pressure in the reservoir 404. The system 400 can provide the gas or mixture of gases at ambient pressure from the donor reservoir 404 to the recipient 426, and the percentage of gas in the mixture reaching the recipient 426 can be adjusted, such as by the resistance in the conduits for each gas included in the ambient pressure mixture.
[0072] System 400 conserves gas from one or more sources 406 by restricting the flow of continuously pressurized gas only when the acceptor 426 creates a need for gas by reducing the pressure of the donor reservoir 404 below ambient pressure. Thus, the donor reservoir 404 can passively allow the transfer of gas from the ambient pressure reservoir 404 by making gas available to the acceptor 426 in a manner that meets the precise amount and speed of demand based on control of the pressure differential by the acceptor 426. In an embodiment of system 400, the donor reservoir 404 is not only at ambient pressure, but is also large enough to accommodate fully passive transfer of gas volumes without resistance at a 1:1 ratio at all points in time throughout the transfer of flow created by the pressure differential between the acceptor 426 and the donor reservoir 404, such as the inhalation phase during a breathing cycle. In the implementation of system 400, the patient's inspiration, speed, pressure, time, and volume profiles and the gas transfer from donor reservoir 404 are equivalent and essentially mirror images. The pressure drop across the recipient 426, such as during inhalation, is used entirely to transfer volume from reservoir 404. No additional pressure is required to open a pressure check valve and initiate flow, such as when a chamber or reservoir contains oxygen at a pressure higher than ambient pressure. System 400 can operate as a closed system or can be open to ambient pressure while maintaining ambient pressure. System 400 conserves gas by restricting gas flow to recipient 426 only when needed. Because the patient inhales supplemental oxygen flowing to the recipient mask 426 only during inhalation, a significantly reduced amount of oxygen, such as half to one-third, is required compared to a continuous flow system.
[0073] In practicing the present invention, system 400 can be used as a source providing various oxygen concentrations for CPAP machines used to treat sleep apnea and COPD. System 400 can help conserve oxygen from a pressurized source 406, for example, by connecting system 400 to the air input of a CPAP machine. When high flows are needed, particularly to treat patients with respiratory failure, system 400 provides a reservoir 404 at ambient pressure for an oxygen concentrator, allowing the patient to inhale or exhale a more reliable oxygen concentration at ambient pressure. Furthermore, system 400 can supplement an oxygen concentrator as oxygen source 406, providing the same oxygen concentration to a patient with lower oxygen flow requirements, reduced operating time, reduced electrical consumption, increased machine life, and fewer repairs and parts. Furthermore, an oxygen concentrator that stores gas and has previously supplied only one patient can be used for multiple patients, possibly depending on the required supply volume.
[0074] As used herein, reference to a singular item should be understood to include a plural number of items, and vice versa, unless expressly stated otherwise or apparent from the context. Unless expressly stated otherwise or apparent from the context, grammatical conjunctions are intended to represent any and all disjunctive and conjunctive combinations of joined clauses, sentences, words, and the like. Thus, for example, the term "or" should generally be understood to mean "and / or." The recitation of ranges of values herein is not intended to be limiting and, unless otherwise indicated herein, instead refers to any and all values falling within the range, and each individual value within such range is incorporated herein as if individually recited herein. The terms "about," "approximately," and the like, when used in conjunction with numerical values, should be construed to indicate a variation that would be understood by one of ordinary skill in the art to operate to meet the intended purpose. Similarly, approximation terms such as "approximately" or "substantially," when used to refer to physical characteristics, should be understood to contemplate a range of variation that can be understood by one skilled in the art to operate to fulfill a corresponding use, function, or purpose. Any and all examples or exemplary terms "such as" provided herein are intended merely to better illustrate the embodiments and do not impose limitations on the scope of the embodiments. Terms in this specification should not be construed to indicate any undefined elements that are essential to implementing the embodiments. In this description, terms such as "first," "second," "top," "bottom," "upper," and "lower" are terms of convenience and should not be construed as limiting terms.
[0075] It will be appreciated that the specific details and embodiments of the invention disclosed for an automated system for conserving oxygen and other substances will enable those skilled in the art to make numerous modifications and additions thereto without departing from the spirit or scope of the invention. This is particularly true when one keeps in mind that the presently preferred embodiments are merely examples of the broad invention disclosed herein. Thus, by keeping in mind the main features of the invention, it will be apparent that one can create embodiments incorporating those main features while not incorporating all of the features included in the preferred embodiments.
[0076] Accordingly, the following claims shall define the scope of protection afforded this invention. The claims shall include equivalent structures within their scope so long as they do not depart from the spirit and scope of the present invention. It should be further noted that the following claims may, at times, express or be construed to express certain elements as means for performing a particular function without reciting the structure or material. As required by law, any such claims shall be construed to cover not only the corresponding structure and materials explicitly described herein, but also their legally recognizable equivalents.
Claims
1. A system (10) for conserving oxygen for delivery to a patient, comprising: an expandable and compressible donor reservoir (404) having an outer wall, a volume for holding an amount of oxygen, and at least one hole for allowing passage of oxygen into and out of said volume; a supply conduit (408) adapted to receive oxygen from an oxygen source (406), the supply conduit having a first end for supplying oxygen to said donor reservoir (404) and a second end for fluidly connecting to said oxygen source (406); an ambient pressure conduit (422) adapted to deliver oxygen along a fluid path from the donor reservoir (404) to a recipient, the ambient pressure conduit having a first end in fluid communication with the donor reservoir (404) for receiving oxygen from the donor reservoir (404) and a second end for fluid connection to the recipient; an inflation detection system operable to detect a first condition in which the donor reservoir (404) is inflated with oxygen to a predetermined inflation state, and a second condition in which the donor reservoir (404) is below the predetermined inflation state; a valve system disposed between the oxygen source (406) and the donor reservoir (404), the valve system operable to a closed state to prevent air from flowing from the oxygen source (406) into the donor reservoir (404) when the donor reservoir (404) is in the first state, and operable to an open state to allow oxygen to flow from the oxygen source (406) into the donor reservoir (404) when the donor reservoir (404) is in the second state; A system (10) comprising:
2. 2. The system (10) for storing oxygen as recited in claim 1, wherein said valve system and said expansion detection system operate to maintain the oxygen volume in said donor reservoir (404) at substantially ambient pressure.
3. 3. The system for storing oxygen (10) of claim 2, wherein the donor reservoir (404) has a fully expanded state, and the expansion detection system operates to detect when the donor reservoir (404) is expanded to within a predetermined range of the fully expanded state, the expansion detection system detecting a first state in which the donor reservoir (404) is expanded to within the predetermined range of the fully expanded state, and the expansion detection system detecting a second state in which the donor reservoir (404) is expanded to less than the predetermined range of the fully expanded state.
4. 2. The system (10) for storing oxygen as recited in claim 1, wherein said donor reservoir (404) comprises a shell of flexible material.
5. 5. The system (10) for storing oxygen according to claim 4, wherein the donor reservoir (404) comprises a foil shell.
6. The system (10) for storing oxygen according to claim 1, further comprising an oxygen source (406).
7. 2. The system (10) for storing oxygen as described in claim 1, wherein the expansion detection system comprises a switch (414) arranged to be actuated by an outer wall of the donor reservoir (404) when the donor reservoir (404) is expanded with oxygen to a predetermined expansion state.
8. 8. The system (10) for storing oxygen as recited in claim 7, wherein said switch (414) is biased toward said donor reservoir (404).
9. 8. The system for storing oxygen of claim 7, wherein the switch has an activated state in which the switch is disposed inside or beyond the volume of the donor reservoir and an inactivated state in which the switch is moved outward by an outer wall of the donor reservoir when the amount of oxygen in the donor reservoir reaches a predetermined expansion state, and wherein the valve system operates to prevent oxygen from flowing from the oxygen source into the donor reservoir when the switch is in the inactivated state, and the valve system operates to allow oxygen to flow from the oxygen source into the donor reservoir when the switch is in the activated state.
10. 10. The system (10) for storing oxygen as recited in claim 9, wherein the switch (414) comprises a float switch (414).
11. 11. The system for storing oxygen (10) of claim 10, wherein the float switch (414) comprises a contact structure (416) with a collar (440) expandable and contractible relative to a central post (436), the collar (440) carrying a magnet (447), and the central post (436) carrying an electrical contact (445), the electrical contact (445) being brought into electrical contact by the proximity of the magnet (447) when the switch (414) is in an activated state.
12. 2. The system (10) for storing oxygen as set forth in claim 1, wherein said valve system comprises a solenoid valve (412) in electrical communication with said inflation detection system.
13. 13. The system for storing oxygen of claim 12, wherein the solenoid valve is induced by the expansion detection system to a closed state when the donor reservoir is in a first state to prevent oxygen flow from the oxygen source into the donor reservoir, and the solenoid valve is induced by the expansion detection system to an open state when the donor reservoir is in a second state to allow oxygen flow from the oxygen source into the donor reservoir.
14. 10. The system (10) for storing oxygen as recited in claim 1, further comprising a receptor delivery device (426) coupled to a second end of said ambient pressure conduit.
15. 15. The system (10) for storing oxygen as recited in claim 14, wherein the receptor delivery device (426) comprises a respiratory mask (426).
16. 2. The system (10) for storing oxygen as recited in claim 1, wherein said donor reservoir (404) is disposed within a housing (402).
17. 17. The system (10) for storing oxygen as described in claim 16, wherein the inflation detection system comprises an electromechanical system with a switch (414) supported by the housing and arranged to be moved by an outer wall of the donor reservoir (404) when the donor reservoir (404) is inflated with oxygen to the predetermined inflation state.
18. 17. The system (10) for storing oxygen as recited in claim 16, wherein said housing (402) is transparent, thereby allowing visual recognition of the expansion state of said donor reservoir (404).
19. 2. The system for storing oxygen (10) of claim 1, further comprising a one-way intake valve (424) disposed along a fluid path from the donor reservoir (404) to the recipient, the one-way intake valve (424) operative to allow oxygen to flow from the donor reservoir (404), through the ambient pressure conduit (422), and to the recipient, but to prevent backflow of oxygen.
20. The system (10) for storing oxygen as recited in claim 1, wherein said expansion detection system comprises a non-contact detection system (456).
21. 21. The system (10) for storing oxygen as recited in claim 20, wherein the expansion detection system includes an optical detection system (456).
22. A system (10) for providing a supply of gas, comprising: an expandable and compressible donor reservoir (404) having an outer wall, a volume for holding a quantity of gas, and at least one hole for allowing passage of gas into and out of said volume; a supply conduit (408) adapted to receive gas from a gas source (406), the supply conduit having a first end for supplying gas to the reservoir (404) and a second end for fluidly connecting to the gas source (406); an ambient pressure conduit (422) adapted to deliver gas along a fluid path from the reservoir (404) to a recipient, the ambient pressure conduit having a first end in fluid communication with the reservoir (404) for receiving gas from the reservoir (404) and a second end for fluidly connecting to the recipient; an inflation detection system operable to detect a first condition in which the reservoir (404) is inflated with gas to a predetermined inflation state, and a second condition in which the reservoir (404) is below the predetermined inflation state; a valve system disposed between the gas source and the reservoir, the valve system being operative in a closed state to prevent gas from flowing into the reservoir when the reservoir is in the first state, and operative in an open state to allow gas to flow into the reservoir when the reservoir is in the second state.
23. 23. The system (10) of claim 22, wherein the valve system and the inflation detection system operate to maintain the gas volume in the reservoir (404) at substantially ambient pressure.
24. 24. The system of claim 23, wherein the reservoir has a fully expanded state, and the expansion detection system operates to detect when the reservoir is expanded to within a predetermined range of the fully expanded state, the expansion detection system detecting a first state in which the reservoir is expanded to within the predetermined range of the fully expanded state, and the expansion detection system detecting a second state in which the reservoir is expanded to less than the predetermined range of the fully expanded state.
25. 23. The system (10) of claim 22, wherein the donor reservoir (404) comprises a shell of flexible material consisting of a foil shell.
26. 23. The system (10) of claim 22, wherein the inflation detection system comprises a switch (414) arranged to be actuated by an outer wall of the reservoir (404) when the reservoir (404) is inflated to a predetermined inflation state.
27. 27. The system of claim 26, wherein the switch has an actuated state in which the switch is disposed inside or beyond the volume of the reservoir and an inactivated state in which the switch is moved outward by an outer wall of the reservoir when a gas volume in the reservoir reaches a predetermined expansion state, the valve system operating to prevent gas from flowing into the reservoir from the gas source when the switch is in the inactivated state, and the valve system operating to allow gas to flow into the donor reservoir from the gas source when the switch is in the actuated state.
28. 28. The system (10) of claim 27, wherein the switch (414) comprises a float switch (414).
29. 23. The system (10) of claim 22, wherein the inflation detection system includes a non-contact detection system (456).
30. 30. The system (10) of claim 29, wherein the expansion detection system includes an optical detection system (456).
31. The system (10) described in claim 1, characterized in that the donor reservoir (404) has a shell of flexible material consisting of a foil shell.
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