DEMAND REGULATOR
20210260412 ยท 2021-08-26
Inventors
Cpc classification
International classification
Abstract
A demand regulator for a breathing apparatus. The demand regulator comprises: a flow regulation mechanism for regulating a flow of breathing gas, the flow regulation mechanism having a closed configuration in which breathing gas flow is substantially prevented; a connection mechanism for releasably connecting the flow regulator to a breathing mask, the connection mechanism comprising a release actuator for releasing the connection mechanism; a latch configured to be activated to thereby releasably retain the flow regulation mechanism in the closed configuration; a first latch activation mechanism configured for manual actuation by a user to thereby activate the latch; and a second latch activation mechanism configured to be actuated by the release actuator of the connection mechanism to thereby activate the latch during release of the connection mechanism.
Claims
1. A demand regulator for a breathing apparatus comprising: a flow regulation mechanism for regulating a flow of breathing gas, the flow regulation mechanism having a closed configuration in which breathing gas flow is substantially prevented; a connection mechanism for releasably connecting the flow regulator to a breathing mask, the connection mechanism comprising a release actuator for releasing the connection mechanism; a latch configured to be activated to thereby releasably retain the flow regulation mechanism in the closed configuration; a first latch activation mechanism configured for manual actuation by a user to thereby activate the latch; and a second latch activation mechanism configured to be actuated by the release actuator of the connection mechanism to thereby activate the latch during release of the connection mechanism.
2. A demand regulator as claimed in claim 1, wherein the flow regulation mechanism comprises a diaphragm configured to actuate a flow regulation valve in response to a user inhalation, and wherein, in the closed configuration, the diaphragm has a closed position in which the flow regulation valve substantially prevents breathing gas flow.
3. A demand regulator as claimed in claim 2, wherein the latch comprises a lever element configured to move the diaphragm to the closed position in response to actuation of either of the first or second latch activation mechanisms.
4. A demand regulator as claimed in claim 3, wherein the latch further comprises a axially-movable rod configured to rotate the lever element in response to axial movement of the rod in a first axial direction.
5. A demand regulator as claimed in claim 4, wherein the rod is biased towards the second axial direction.
6. A demand regulator as claimed in claim 4, wherein the first latch activation mechanism comprises a depressible button or switch configured to move the rod axially in the first axial direction in response to depression of the button or switch.
7. A demand regulator as claimed in claim 4, wherein the rod comprises a flange, and wherein the release actuator comprises a pivotable element configured to engage the flange so as to axially move the rod in the first axial direction in response to pivoting of the pivotable element.
8. A demand regulator as claimed in claim 7, wherein the pivotable release element comprises a mask connecting portion and a flange engaging portion arranged with a pivot axis therebetween, wherein pivoting of the pivotable element in a first pivoting direction causes the flange-engaging portion to engage the flange so as to axially move the rod in the first axial direction and causes the mask connecting portion to move to a release position in which connection of the demand regulator to the mask may be released.
9. A demand regulator as claimed in claim 8, wherein the pivotable element is biased towards the second pivoting direction.
10. A demand regulator as claimed in claim 1, wherein the latch comprises a detent configured to releasably retain secure the latch in an activated position.
11. A demand regulator as claimed in claim 1, wherein the flow regulation mechanism comprises a flow regulation valve and wherein the latch comprises a valve latch for latching the flow regulation valve in the closed position.
12. A breathing apparatus comprising a demand regulator according to claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Embodiments will now be described by way of example only, with reference to the accompanying Figures, in which:
[0026]
[0027]
[0028]
DETAILED DESCRIPTION OF THE INVENTION
[0029]
[0030] The breathing apparatus 10 comprises a source of breathing gas 12, in this case a pressurised cylinder of breathing gas 12, which is configured to be supported on a harness 14 which can be worn by the user using shoulder straps 16. The cylinder 12 is connected to a first stage pressure reducer 18, which receives breathing gas at a first, high, pressure from the cylinder 12 and reduces the breathing gas to a second, medium pressure and delivers it to a breathing gas hose 20. The breathing gas hose is connected at its distal end to a demand regulator 100 and delivers the breathing gas at the medium pressure to the demand regulator 100. The demand regulator 100, which will be described in more detail below, is in turn connected to a breathing face mask 22 which is worn by the user using straps 24. Accordingly, it should be understood that the breathing apparatus 10 is generally configured to deliver breathing gas to the user from the source of breathing gas 12.
[0031] The demand regulator 100 is shown in more detail in
[0032] The demand regulator 100 is generally configured to deliver breathing gas to the face mask 22. The demand regulator is shown in
[0033] The demand regulator 100 comprises a connection mechanism comprising a male port 101 which is received within a female port 28 of the face mask 22 to thereby releasably connect the demand regulator 100 to the face mask 22. The female port 28 of the face mask 22 comprises an annular recess 30. The connection mechanism further comprises first and second release actuators 103 and 105 for selectively locking or releasing the connection mechanism from the face mask 22. In particular, the release actuators 103,105 each comprise a locking hook 107 which is configured to extend into the annular recess 30 to thereby prevent release of the demand regulator 100 from the mask 22. Both of the release actuators 103,105 must be actuated by the user to pivot the actuators 103,105 (see arrows P in
[0034] The demand regulator comprises a flow regulation mechanism which comprises a flow regulation valve 102, a diaphragm 104, and a valve actuating lever 106. The demand regulator 100 has a housing 108. The diaphragm 104 is a resiliently deformable disk. The housing 108 is divided into an ambient cavity 110 and a regulator cavity 112 by the diaphragm 104. The ambient cavity 110 is in communication with the ambient environment via openings 114. The diaphragm 104 sealingly separates the cavities 110,112 and can move relative to the housing 108. Accordingly, the diaphragm is 104 is exposed on a first side to the static pressure in the ambient cavity 110 and on a second side to the static pressure in the regulator cavity 112. Accordingly, when a user inhales, the static pressure in the regulator cavity 112 reduces relative to the ambient pressure in the ambient cavity 110, and the resulting pressure gradient causes the diaphragm 104 to move inwardly towards the regulator cavity 112 in the direction of arrow I.
[0035] The valve actuating lever 106 is in contact with the diaphragm 104 and is pivotably connected to the flow regulation valve 102. Pivoting of the lever 106 with respect to the valve 102 causes an adjustment of the flow rate of breathing gas through the valve 102. In particular, clockwise movement of the lever 106 as shown by arrow V in
[0036] Accordingly, when a user inhales and the diaphragm 104 moves in the direction of arrow I, the lever 106 is pivoted in the direction V and the valve 102 opens to permit an increased flow of breathing gas to the user to be inhaled. When the user ceases inhaling, flow from the valve 102 will continue until a sufficient positive pressure is achieved within the face mask cavity 26 that the diaphragm 104 is returned to the position shown in
[0037] In this example, the demand regulator 100 has a positive pressure configuration. The demand regulator further comprises a positive pressure spring 116 which is configured to bias the diaphragm into an open position in the direction of arrow I. In order to maintain the positive pressure within the regulator 100 and the face mask cavity 26, an outlet valve from the face mask cavity 26 (not shown) prevents the exhaust of breathing gas when the static pressure in the face mask cavity 26 is below a predetermined positive pressure.
[0038] When the user finishes inhaling, the spring 116 will initially maintain the diaphragm 104 in a position in which the valve 102 will continue introducing air into the face mask cavity 26 (and the connected regulator cavity 112). As breathing gas continues to be introduced in to the mask and regulator cavity 112, the pressure inside will increase until it is sufficient to overcome the biasing force of the positive pressure spring 116 and move the diaphragm 104 to the position shown in
[0039] Referring additionally now to
[0040] In this example, the latch 118 comprises a lever element 120 having a lifting arm 122 which is configured to contact the diaphragm 104 to thereby move the diaphragm 104 to its closed position as shown in
[0041] The latch 118 also comprises an axially-moveable rod 126. The rod 126 has a first axial end 128 which is configured to engage the actuating arm 124 of the lever element 120. At its second axial end 130, a depressible button 132 is provided. The user can depress the button 132 to thereby axially move the rod in a first axial direction towards its first axial end 128, as illustrated by arrows M in
[0042] In this example, the detent 134 applies a retaining force on the lever element 120 to retain it in the activated (i.e. lifted) position, but it should be understood that other detents may be used. The detent 134 may be configured such that its retaining force may be overcome by a force applied to the diaphragm 104 during a user inhalation to thereby return the regulator to the positive pressure configuration as shown in
[0043] The depressible button 132 therefore forms a first latch activation mechanism 132 configured for manual actuation by a user to thereby activate the latch 118. The latch 118 acts against the biasing force of the positive pressure spring 116 to thereby move the diaphragm 104, and the flow regulation mechanism as a whole, to its closed position. Accordingly, when the latch 118 is activated, the flow regulation mechanism is closed and no breathing gas will flow. As such, if the user requires the flow of breathing gas to be ceased, for example if the user is to remove the mask, then the user can manually activate the latch using button 132 to thereby activate the latch 118 and prevent breathing gas flow.
[0044] The demand regulator 100 further comprises a second latch activation mechanism 136 for activating the latch 118. The second latch activation mechanism 136 is configured to be actuated by the release actuator 103 of the connection mechanism to thereby activate the latch 118 during release of the connection mechanism. The release actuator 103, as shown in
[0045] In this example, the rod 126 comprises a radially-extending flange 142. The flange-engaging portion of the release element 138 is configured to engage with the flange 142. When the release actuator 103 is actuated by a user to release the regulator 100 from the mask 22, the release element 138 is pivoted in direction P about the axis to withdrawn its hook 107 from the recess 30. This in turn also causes the flange-engaging portion 140 to apply a force on the flange 142 to thereby move the rod 126 axially in the direction M. Accordingly, during a release operation by the user to disconnect the regulator 100 from the mask 22, the latch 118 will be activated automatically to move the flow regulation mechanism to the closed configuration. This will prevent breathing gas leakage when the demand regulator 100 is disconnected from the mask.
[0046] Accordingly, the demand regulator of this disclosure provides two latch activation mechanisms for activating a single latch. The regulator of the disclosure provides significant advantages for users of breathing apparatus. In particular, the two separate latch activation mechanisms allows for reliable switching-off of the positive pressure breathing gas flow regardless of the user's method of operation of the breathing apparatus. If the user doffs the apparatus by disconnecting the regulator from the mask, then the second latch activation mechanism will automatically activate the latch to prevent breathing gas leakage and will prevent accidental reactivation of the positive pressure since the release actuator has to be kept depressed to allow removal of the regulator from the mask. If the user alternatively doffs the set without disconnecting the regulator from the mask, then the user can manually use the first latch activation mechanism (e.g. the manual button) to activate the latch to provide switch-off even when the release actuator is not used.
[0047] Furthermore, if reset of the positive pressure is required during use then the first latch activation mechanism can be used without the risk of inadvertent partial disconnection of the regulator from the mask, as might happen if only the release actuator latch activation mechanism were provided. Accordingly, by providing both the first and second latch activation mechanisms disclosed herein, the regulator of the invention may provide a safer and more reliable demand regulator with positive pressure function and reduced leakage.
[0048] Although it is referred to as a demand regulator, the regulator 100 may also be known as a lung demand valve or a second stage pressure reduction valve.
[0049] It will be understood that the invention is not limited to the embodiments above-described and various modifications and improvements can be made without departing from the concepts described herein. Except where mutually exclusive, any of the features may be employed separately or in combination with any other features and the disclosure extends to and includes all combinations and sub-combinations of one or more features described herein.
[0050] For the avoidance of doubt, the present disclosure includes the subject matter recited in the following numbered Paras:
Para 1. A demand regulator for a breathing apparatus comprising:
[0051] a flow regulation mechanism for regulating a flow of breathing gas, the flow regulation mechanism having a closed configuration in which breathing gas flow is substantially prevented;
[0052] a connection mechanism for releasably connecting the flow regulator to a breathing mask, the connection mechanism comprising a release actuator for releasing the connection mechanism;
[0053] a latch configured to be activated to thereby releasably retain the flow regulation mechanism in the closed configuration;
[0054] a first latch activation mechanism configured for manual actuation by a user to thereby activate the latch; and
[0055] a second latch activation mechanism configured to be actuated by the release actuator of the connection mechanism to thereby activate the latch during release of the connection mechanism.
Para 2. A demand regulator as claimed in Para 1, wherein the flow regulation mechanism comprises a diaphragm configured to actuate a flow regulation valve in response to a user inhalation, and wherein, in the closed configuration, the diaphragm has a closed position in which the flow regulation valve substantially prevents breathing gas flow.
Para 3. A demand regulator as claimed in Para 2, wherein the latch comprises a lever element configured to move the diaphragm to the closed position in response to actuation of either of the first or second latch activation mechanisms.
Para 4. A demand regulator as claimed in Para 3, wherein the latch further comprises a axially-movable rod configured to rotate the lever element in response to axial movement of the rod in a first axial direction.
Para 5. A demand regulator as claimed in Para 4, wherein the rod is biased towards the second axial direction.
Para 6. A demand regulator as claimed in Para 4 or 5, wherein the first latch activation mechanism comprises a depressible button or switch configured to move the rod axially in the first axial direction in response to depression of the button or switch.
Para 7. A demand regulator as claimed in Para 4, 5, or 6, wherein the rod comprises a flange, and wherein the release actuator comprises a pivotable element configured to engage the flange so as to axially move the rod in the first axial direction in response to pivoting of the pivotable element.
Para 8. A demand regulator as claimed in Para 7, wherein the pivotable release element comprises a mask connecting portion and a flange engaging portion arranged with a pivot axis therebetween, wherein pivoting of the pivotable element in a first pivoting direction causes the flange-engaging portion to engage the flange so as to axially move the rod in the first axial direction and causes the mask connecting portion to move to a release position in which connection of the demand regulator to the mask may be released.
Para 9. A demand regulator as claimed in Para 8, wherein the pivotable element is biased towards the second pivoting direction.
Para 10. A demand regulator as claimed in any preceding Para, wherein the latch comprises a detent configured to releasably retain secure the latch in an activated position.
Para 11. A demand regulator as claimed in any preceding Para, wherein the flow regulation mechanism comprises a flow regulation valve and wherein the latch comprises a valve latch for latching the flow regulation valve in the closed position.
Para 12. A breathing apparatus comprising a demand regulator according to any of the preceding Paras.