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AU2015227520B2 - Float valve system for a respiratory humidification system - Google Patents
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AU2015227520B2 - Float valve system for a respiratory humidification system - Google Patents

Float valve system for a respiratory humidification system Download PDF

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AU2015227520B2
AU2015227520B2 AU2015227520A AU2015227520A AU2015227520B2 AU 2015227520 B2 AU2015227520 B2 AU 2015227520B2 AU 2015227520 A AU2015227520 A AU 2015227520A AU 2015227520 A AU2015227520 A AU 2015227520A AU 2015227520 B2 AU2015227520 B2 AU 2015227520B2
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float
valve seat
valve
chamber
fluid
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AU2015227520A1 (en
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Christopher Jesse Zollinger
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Sunmed Group Holdings LLC
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Sunmed Group Holdings LLC
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Assigned to VYAIRE MEDICAL CONSUMABLES LLC reassignment VYAIRE MEDICAL CONSUMABLES LLC Amend patent request/document other than specification (104) Assignors: CAREFUSION 2200, INC
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Abstract

A float valve system for controlling an amount of liquid in a chamber is disclosed that includes a valve assembly in the chamber. The valve assembly has a support structure a retaining element having a first valve seat and a second valve seat therein and a flexible diaphragm positioned between a support structure and a retaining element. The first valve seat is adapted to receive fluid from an inlet and the second valve seat is fluidly coupled to the first valve seat through a valve conduit formed between the retaining element and the flexible diaphragm. A lower float and an upper float are coupled to the support structure. The lower float is disposed below the valve assembly and the upper float. The upper float is disposed between the valve assembly and the lower float. When a fluid in the chamber reaches a first predetermined level, the lower float moves so as to urge the flexible diaphragm against the first valve seat. When a fluid in the chamber reaches a second predetermined level, the upper float moves so as to urge the flexible diaphragm against the second valve seat.

Description

FLOAT VALVE SYSTEM FOR A RESPIRATORY HUMIDIFICATION SYSTEM
Background [01] Respiratory humidification systems are used in providing respiratory therapy to a patient, hi general terms, the system includes a ventilator, humidifier and patient circuit. The ventilator supplies gases to a humidification chamber coupled with the humidifier. Water within the humidification chamber is heated by the humidifier, which produces water vapor that humidifies gases within the chamber. From the chamber, humidified gases are then carried to the patient through the patient circuit. Humidification chambers can employ a fluid control mechanism to prevent liquid from directly passing to the patient, as this situation can be very harmful to the patient.
[02] Current fluid control mechanism include one or more valves that are operated in response to a level of liquid in the chamber. Single valve chambers can be prone to defects in the event of failure of the valve. As a result, some chambers employ a dual valve mechanism having a primary valve and secondary valve that operates to stop fluid from entering the chamber in the event of failure of the primary valve. Each of the valves are arranged coaxially, thus requiring an inner valve to be positioned within an outer valve. This arrangement requires a large sealing area for the outer valve as well as a relatively large force to seal the outer valve. Due to the large sealing area and large force required to dose the outer valve, failure of the valve can result.
Summary [03] A first aspect of the present invention provides a float valve system controlling an amount of liquid in a chamber, comprising: a valve assembly in the chamber, the valve assembly including a support structure, a retaining element having a first valve seat and a second valve seat therein, and a flexible diaphragm positioned between the support structure and the retaining element, wherein the first valve seat is adapted to receive fluid from an inlet, and the second valve seat is fluidly coupled to the first valve seat through a valve conduit fonned between the retaining element and the flexible diaphragm; a lower float and an upper float coupled to the support structure, wherein the lower float is disposed below the valve assembly and the upper float, and the upper float is disposed between the valve assembly and the lower float; wherein the lower float moves upon a fluid in the chamber reaching a first predetermined level so as to urge the flexible diaphragm against the first valve seat, and the upper float moves upon a fluid in the chamber reaching a second predetermined level so as to urge the flexible diaphragm against the second valve seat.
Preferably, the inlet is positioned toward a top of the chamber. It may be preferable that the flexible diaphragm extends between the first valve seat and the second valve seat.
More preferably, a first actuating member is coupled between the lower float and the support structure, the first actuating member configured to urge the flexible diaphragm against the first valve seat; and a second actuating member is coupled between the upper float and the support structure, the second actuating member configured to urge the flexible diaphragm against the second valve seat. It may be preferable that the first actuating member and the second actuating member are adopted or configured to operate independently.
Preferably, the lower float and the upper float are pivotally coupled to the support structure. It may be more preferable that the lower float and the upper float are independently pivotable.
Preferably, the first valve seat receives fluid from the inlet in a first direction; the second valve seat is spaced apart from the first valve seat in a second direction; and the second valve seat transfers fluid to the chamber in a third direction that is substantially opposite the first direction. It may be further preferable that the first direction and the third direction are substantially vertical, and the second direction is substantially perpendicular to the first direction.
Preferably, the second predetermined level is greater than the first predetennined level. A second aspect of the present invention provides a method of controlling a level of liquid in a chamber, comprising: providing a valve assembly in the chamber, the valve assembly including a support structure, a retaining element having a first valve seat and a second valve seat therein, and a flexible diaphragm positioned between the support structure and the retaining element, wherein the first valve seat is adapted to receive fluid from an inlet, and the second valve seat fluidly coupled to the first valve seat through a valve conduit; coupling a lower float and an upper float to the support structure, wherein the lower float is disposed below the valve assembly and the upper float, and the upper float is disposed between the valve assembly and the lower float; urging the flexible diaphragm against the first valve seat when the lower float moves upon a fluid in the chamber reaching a first predetermined level, and urging the flexible diaphragm against the second valve seat when the upper float moves upon a fluid in the chamber reaching a second predetermined level.
Preferably, the valve conduit is formed between the retaining element and the flexible diaphragm.
More preferably, the flexible diaphragm extends between the first valve seat and the second valve seat.
The method may preferably comprise coupling a first actuating member between the lower float and the support structure such that the first actuating member urges the diaphragm against the first valve seat when a fluid in the chamber reaches a first predetermined level; and coupling a second actuating member between the upper float and the support structure such that the second actuating member urges the diaphragm against the second valve seat when a fluid in the chamber reaches a second predetermined level.
The first actuating member and the second actuating member are preferably independently operable.
The method may further advantageously comprise pivotally coupling a lower float and an upper float to the support structure.
Preferably, the lower float and the upper float are independently pivotable.
The method may more preferably comprise transferring fluid through the first valve seat in a first direction; transferring fluid through a fluid conduit in a second direction; and transferring fluid through the second valve seat in a third direction that is substantially opposite the first direction. It may be more preferably that the first direction and the third direction are substantially vertical, and the second direction is substantially perpendicular to the first direction.
It is also preferable that the second predetermined level is greater than the first predetermined level.
Brief Description of the Drawings
The accompanying drawings are included to provide a further understanding of embodiments and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments and together with the description serve to explain principles of embodiments. Other embodiments and many of the intended advantages of embodiments will be readily appreciated as they become better understood by reference to the following detailed description. The elements of the drawings are not necessarily to scale relative to each other. Like reference numerals designate corresponding similar parts.
Figure 1 is a schematic diagram of a respiratory humidification system.
Figure 2 is an isometric view of a humidification chamber.
Figure 3 is an exploded view of the humidification chamber of Figure 2.
Figure 4 is a sectional view of the humidification chamber of Figure 2.
Figure 5 is an enlarged view of a valve assembly illustrated in Figure 4.
Detailed Description
In the following Detailed Description, reference is made to the accompanying drawings, which form a part hereof, and in which is shown by way of illustration specific embodiments in which the invention may be practiced. In this regard, directional terminology, such as “top,” “bottom,” “front,” “back,” “leading,” “trailing,” etc., is used with reference to the orientation of the Figure(s) being described. Because components of embodiments can be positioned in a number of different. orientations, the directional terminology is used for purposes of illustration and is in no way limiting. It is to be understood that other embodiments may be utilized and structural or logical changes may be made without departing from the scope of the present invention. The following detailed description, therefore, is not to be taken in a limiting sense, and the scope of the present invention is defined by the appended claims. It is to be understood that the features of the various exemplary embodiments described herein may be combined with each other, unless specifically noted otherwise. FIG. 1 is a schematic view of a respiratory humidification system 10 including a ventilator 12, humidifier 14 having a humidification chamber 16 and a patient circuit 18. It is worth noting that system 10 is one exemplary environment for concepts presents herein.
In other embodiments, system 10 can include additional components or have one or more components removed. For example, one other exemplary environment is a continuous positive airway pressure (CPAP) system. Ventilator 12 supplies gases to humidification chamber 16 through an initial conduit 20. Humidifier 14 heats and vaporizes water within the chamber 16. The vaporized water humidifies gas from ventilator 12, which is then output to patient circuit 18. Patient circuit 18 includes an inspiratory conduit (or limb) 22, a y-connector 24 and an expiratory conduit (or limb) 26. In other embodiments, for example a CPAP system, y-connector 24 and limb 26 can be eliminated.
Inspiratory conduit 22 transmits humidified gases from chamber 16 to a patient through a y-connector 24. The y-connector 24 can be selectively coupled to a patient interface such as an endotracheal tube. Other patient interfaces can also be used, for example masks, nasal prongs, etc. After breathing in the humidified gases transferred from chamber 16, the patient can exhale, transmitting exhaled gases through expiratory conduit 26 back to ventilator 12. In one embodiment, inspiratory conduit 22 and expiratory conduit 26 can be heated with a helical wire as described in copending U.S. Application Serial No. 12/616,395 entitled “Heated Conduit for Respiratory Humidification”, filed on even date herewith, the contents of which are hereby incorporated by reference in their entirety. Liquid can be supplied to the chamber 16 from a fluid source 28, which, in one embodiment comprises a bag of liquid (e.g., water) fluidly coupled to the chamber 16. As discussed below, chamber 16 includes a float valve system to control the amount of liquid flowing from source 28 into chamber 16, and, in particular, the amount of liquid in chamber 16.
With further reference to FIGS. 2-4, humidification chamber 16 includes a housing 40 coupled to a base plate 42. Positioned between housing 40 and base plate 42 is a gasket 44, which is configured to provide a water tight seal between housing 40 and base plate 42. Housing 40 further includes a gas inlet 46 adapted for coupling to conduit 20 and a gas outlet 48 for coupling to conduit 22 and transmitting humidified gas to conduit 22. During operation, gas flows into chamber 16 from ventilator 12 through gas inlet 46. Humidifier 14 (FIG. 1) provides heat to base plate 42, which evaporates liquid in chamber 16. From there, the gas within chamber 16 is humidified and transmitted to patient circuit 18 through gas outlet 48. A float valve system 50 is positioned within housing 40 to control an amount of fluid within the chamber 16. In particular, float valve system 50 includes a lower float 52, an upper float 54 and a valve assembly 56. Lower float 52 is coupled to valve assembly 56 through a first actuating member 58 whereas upper float 54 is coupled to valve assembly 56 through a second actuating member 60. First actuating member 58 and second actuating member 60 are spaced apart from one another in a horizontal direction. Lower float 52 cooperates with valve assembly 56 to prevent fluid from entering chamber 16 when a level of liquid in the chamber 16 reaches a first predetermined level. In turn, upper float 54 cooperates with valve assembly 56 to prevent fluid from entering chamber 16 when a level of liquid in the chamber 16 reaches a second predetermined level. In this manner, lower float 52 and upper float 54 operate independently to selectively seal portions of valve assembly 56 such that further fluid is prevented from entering chamber 16. In one embodiment, the second predetermined level is greater than the first predetermined level. In a further embodiment, the first predetermined level is greater than the second predetermined level.
Valve assembly 56 includes a retaining element 62, a support structure 64 and a diaphragm 66 positioned between the retaining element 62 and the support structure 64. Both lower float 52 and upper float 54 are pivotally coupled to support structure 64. Diaphragm 66 is formed of a flexible material (e.g., silicone) configured to seal against retaining element 62, As liquid within the housing 40 rises, lower float 52 urges actuating member 58 against diaphragm 66 and towards retaining element 62. Likewise, upper float 54 urges actuating member 60 against diaphragm 66 toward retaining element 62, As discussed in greater detail below, liquid enters housing 40 through tubing 70, which is fluidly coupled to retaining element 62. From retaining element 62, liquid flows into chamber 16 until lower float 52 or upper float 54 operates to prevent liquid from entering chamber 16.
If desired, a locking assembly 72 can be provided during shipment of the humidification chamber 16 so as to retain the tubing 70 as well as lower float 52 and upper float 54 against base plate 42. The locking assembly 72 can also protect debris and/or other contaminants from entering chamber 16 through gas inlet 46 and/or gas outlet 48. The locking assembly 72 is removed from chamber 16 and disposed prior to operation of the chamber 16.
As discussed with reference to FIG. 5, a multi-directional fluid path 78 is established within valve assembly 56 upon entry of fluid into chamber 16. Path 78 includes a first vertical segment 79, wherein water enters housing 40 through a water inlet 80 coupled to tubing 70. Inlet 80 is fluidly coupled to retaining element 62, which transfers water to a valve conduit 82 between a lower portion of retaining element 62 and an upper portion of diaphragm 66, A valve seat 84 is positioned between retaining element 62 and valve conduit 82. Upon lower float 52 rising with a level of liquid in chamber 16, actuating rod 58 is configured to urge diaphragm 66 against valve seat 84, preventing further water from entering chamber 16. Lower float 52 can be positioned so as to seal valve seat 84 upon fluid in chamber 16 reaching a first predetermined level. If valve seat 84 remains open, fluid then passes through valve conduit 82 to a second valve seat 86 through a second, horizontal segment 87 of path 78. Second segment 87 transfers fluid in a direction that is different (e.g., perpendicular) than the direction of first segment 79. Upon upper float 54 rising with a level of liquid in chamber 16, actuating rod 60 is configured to urge diaphragm 66 against valve seat 86 to prevent further liquid from flowing into chamber 16. Path 78 further includes a third, vertical segment 89, transferring fluid from conduit 82 through valve seat 86. Third segment 89 is in a substantially opposite direction from first segment 79. In one embodiment, valve seat 84 and valve seat 86 are substantially the same size. After passing through valve seat 86, liquid ultimately enters chamber 16.
Upon entering chamber 16, the level of liquid will rise, causing float 52 to rise with the level. Actuating rod 58, being coupled to float 52, will urge diaphragm 66 against valve seat 84, thus preventing liquid from entering chamber 16 through inlet 80. In the event that a seal between diaphragm 66 and valve seat 84 fails, liquid will continue to enter chamber 16 until upper float 54 rises to urge diaphragm 66 against valve seat 86. In any event, fluid path 78 is substantially “U” shaped, transferring fluid entering inlet 80 to chamber 16 so as to provide small sealing areas for valve seats 84 and 86, thereby reducing the risk of leaks occurring in valve assembly 56.
In all, float valve system 50, through use of both lower float 52 and upper float 54, provides a redundant safety mechanism to prevent a fluid level within chamber 16 from rising too high. Thus, if one component in float valve system 50 fails, another component can be utilized to prevent further fluid from entering the chamber 16. For example, if one of the floats 52, 54 fail, the other float will operate to prevent fluid from entering the chamber.
Although specific embodiments have been illustrated and described herein, it will be appreciated by those of ordinary skill in the art that a variety of alternate and/or equivalent implementations may be substituted for the specific embodiments shown and described without departing from the scope of the present invention. This application is intended to cover any adaptations or variations of the specific embodiments discussed herein. Therefore, it is intended that this invention be limited only by the claims and the equivalents thereof.
Comprises/comprising and grammatical variations thereof when used in this specification are to be taken to specify the presence of stated features, integers, steps or components or groups thereof, but do not preclude the presence or addition of one or more other features, integers, steps, components or groups thereof.

Claims (20)

  1. THE CLAIMS DEFINING THE INVENTION ARE AS FOLLOWS:
    1. A float valve system controlling an amount of liquid in a chamber, comprising: a valve assembly in the chamber, the valve assembly including a support structure, a retaining element having a first valve seat and a second valve seat therein, and a flexible diaphragm positioned between the support structure and the retaining element, wherein the first valve seat is adapted to receive fluid from an inlet, and the second valve seat is fluidly coupled to the first valve seat through a valve conduit formed between the retaining element and the flexible diaphragm; a lower float and an upper float coupled to the support structure, wherein the lower float is disposed below the valve assembly and the upper float, and the upper float is disposed between the valve assembly and the lower float; wherein the lower float moves upon a fluid in the chamber reaching a first predetermined level so as to urge the flexible diaphragm against the first valve seat, and the upper float moves upon a fluid in the chamber reaching a second predetermined level so as to urge the flexible diaphragm against the second valve seat.
  2. 2. The float valve system of claim 1, wherein the inlet is positioned toward a top of the chamber.
  3. 3. The float valve system of claim 1 or claim 2, wherein the flexible diaphragm extends between the first valve seat and the second valve seat.
  4. 4. The float valve system of any one of claims 1-3, wherein: a first actuating member is coupled between the lower float and the support structure, the first actuating member configured to urge the flexible diaphragm against the first valve seat; and a second actuating member is coupled between the upper float and the support structure, the second actuating member configured to urge the flexible diaphragm against the second valve seat.
  5. 5. The float valve system of claim 3, wherein the first actuating member and the second actuating member operate independently.
  6. 6. The float valve system of any one of the preceding claims, wherein the lower float and the upper float are pivotally coupled to the support structure.
  7. 7. The float valve system of claim 5, wherein the lower float and the upper float are independently pivotable.
  8. 8. The float valve system of any one of the preceding claims, wherein: the first valve seat receives fluid from the inlet in a first direction; the second valve seat is spaced apart from the first valve seat in a second direction; and the second valve seat transfers fluid to the chamber in a third direction that is substantially opposite the first direction.
  9. 9. The float valve system of claim 7, wherein the first direction and the third direction are substantially vertical, and the second direction is substantially perpendicular to the first direction.
  10. 10. The float valve system of any one of the preceding claims, wherein the second predetermined level is greater than the first predetermined level.
  11. 11. A method of controlling a level of liquid in a chamber, comprising: providing a valve assembly in the chamber, the valve assembly including a support structure, a retaining element having a first valve seat and a second valve seat therein, and a flexible diaphragm positioned between the support structure and the retaining element, wherein the first valve seat is adapted to receive fluid from an inlet, and the second valve seat fluidly coupled to the first valve seat through a valve conduit; coupling a lower float and an upper float to the support structure, wherein the lower float is disposed below the valve assembly and the upper float, and the upper float is disposed between the valve assembly and the lower float; urging the flexible diaphragm against the first valve seat when the lower float moves upon a fluid in the chamber reaching a first predetermined level, and urging the flexible diaphragm against the second valve seat when the upper float moves upon a fluid in the chamber reaching a second predetermined level.
  12. 12. The method of claim 11, wherein the valve conduit is formed between the retaining element and the flexible diaphragm.
  13. 13. The method of claim 11 or 12 wherein the flexible diaphragm extends between the first valve seat and the second valve seat.
  14. 14. The method of any one of the preceding claims, further comprising: coupling a first actuating member between the lower float and the support structure such that the first actuating member urges the diaphragm against the first valve seat when a fluid in the chamber reaches a first predetermined level; and coupling a second actuating member between the upper float and the support structure such that the second actuating member urges the diaphragm against the second valve seat when a fluid in the chamber reaches a second predetermined level.
  15. 15. The method of claim 14, wherein the first actuating member and the second actuating member are independently operable.
  16. 16. The method of any one of claims 11-15, further comprising pivotally coupling a lower float and an upper float to the support structure.
  17. 17. The method of claim 16, wherein the lower float and the upper float are independently pivotable.
  18. 18. The method of any one of claims 11-17, further comprising: transferring fluid through the first valve seat in a first direction; transferring fluid through a fluid conduit in a second direction; and transferring fluid through the second valve seat in a third direction that is substantially opposite the first direction.
  19. 19. The method of claim 18, wherein the first direction and the third direction are substantially vertical, and the second direction is substantially perpendicular to the first direction.
  20. 20. The method of any one of claims 11-19, wherein the second predetermined level is greater than the first predetermined level.
AU2015227520A 2009-11-11 2015-09-18 Float valve system for a respiratory humidification system Active AU2015227520B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
AU2015227520A AU2015227520B2 (en) 2009-11-11 2015-09-18 Float valve system for a respiratory humidification system

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
US12/616,414 2009-11-11
AU2010318561A AU2010318561B2 (en) 2009-11-11 2010-10-12 Float valve system for a respiratory humidification system
AU2015227520A AU2015227520B2 (en) 2009-11-11 2015-09-18 Float valve system for a respiratory humidification system

Related Parent Applications (1)

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AU2010318561A Division AU2010318561B2 (en) 2009-11-11 2010-10-12 Float valve system for a respiratory humidification system

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AU2015227520A1 AU2015227520A1 (en) 2015-10-08
AU2015227520B2 true AU2015227520B2 (en) 2016-12-15

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Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6450196B1 (en) * 2000-08-07 2002-09-17 Gaap Gas Controls Llc Float valve
US6745800B1 (en) * 2003-09-04 2004-06-08 Datex-Ohmeda, Inc. Arrangement for preventing overfill of anesthetic liquid

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6450196B1 (en) * 2000-08-07 2002-09-17 Gaap Gas Controls Llc Float valve
US6745800B1 (en) * 2003-09-04 2004-06-08 Datex-Ohmeda, Inc. Arrangement for preventing overfill of anesthetic liquid

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