PRESSURE REGULATOR VENT GUARD AND METHOD OF USE
20190064855 ยท 2019-02-28
Assignee
Inventors
Cpc classification
F17C13/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05D16/0608
PHYSICS
F17C2270/0745
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/0636
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G05D16/06
PHYSICS
F17C13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A pressure regulator vent guard configured to be in fluid communication with a non-working fluid chamber of a pressure regulator diaphragm. The pressure regulator vent guard includes a housing defining a compartment and a vent diaphragm configured to separate the housing compartment into a first vent chamber and a second vent chamber, the first vent chamber adapted to be in fluid communication with the non-working fluid chamber, and the second vent chamber in fluid communication with the atmosphere. The vent diaphragm seals the non-working fluid chamber from fluid communication with the atmosphere.
Claims
1. A pressure regulator vent guard configured to be in fluid communication with a non-working fluid chamber of a pressure regulator diaphragm, the pressure regulator vent guard comprising: a housing defining a compartment; a vent diaphragm configured to separate the housing compartment into a pressure response first vent chamber and an atmospheric second vent chamber, the first vent chamber adapted to be in fluid communication with the non-working fluid chamber, and the second vent chamber in fluid communication with an atmosphere; wherein the vent diaphragm is adapted to seal the non-working fluid chamber from fluid communication with the atmosphere; and wherein the vent diaphragm is adapted to move to increase or decrease a volume of the first vent chamber in response to changes in pressure in the non-working fluid chamber.
2. The pressure regulator vent guard of claim 1, wherein the housing comprises a vent connector adapted to connect with a pressure regulator diaphragm inlet channel and to establish fluid communication between the pressure regulator vent guard and the non-working fluid chamber.
3. The pressure regulator vent guard of claim 2, wherein the housing comprises a cylindrical housing side wall connected at one end to a circular disc shaped housing base to define the compartment, and a connector extending outwardly from the housing base, wherein the connector is adapted for connection with the pressure regulator.
4. The pressure regulator vent guard of claim 3, wherein the connector includes a channel adapted to provide fluid communication between the non-working fluid chamber and the first vent chamber.
5. The pressure regulator vent guard of claim 3, wherein the housing side wall ends in an inner housing lip and an outer housing lip, the inner and outer housing lips forming a C-shaped protrusion.
6. The pressure regulator vent guard of claim 1, wherein the vent diaphragm includes a generally conical flexible diaphragm side wall, a disc shaped base at one end of the diaphragm side wall, and a vent guard diaphragm lip extending outwardly from the circumference of the vent guard diaphragm lip.
7. The pressure regulator vent guard of claim 6, wherein the diaphragm side wall is adapted to include a U-shape portion so that the base and part of the diaphragm side wall proximate the base is positioned within a portion of the side wall proximate the vent diaphragm lip.
8. The pressure regulator vent guard of claim 6, wherein the vent diaphragm lip is in held in a concave side of the C-shaped protrusion of the annular housing wall.
9. The pressure regulator vent guard of claim 6, wherein the pressure regulator vent compartment and vent diaphragm are sized so the vent diaphragm has sufficient range of travel within the compartment to move to respond to increases and decreases of pressure in the first vent chamber by adjusting a position of the vent diaphragm base to change a volume of the first vent chamber, and the pressure regulator vent guard has a sufficient volume that from an installation position the pressure regulator vent guard can flex to respond to an increase or a decrease in pressure in the first chamber to substantially equalize the pressures, regardless of whether the vent guard is installed with the pressure regulator pressurized or unpressurized.
10. The pressure regulator vent guard of claim 1, further comprising a protective structure adapted to prevent ingress of debris from the atmosphere to the second vent chamber, wherein the protective structure is porous to permit the ingress of gas from the atmosphere to the second vent chamber and the drainage of moisture to the atmosphere from the second vent chamber.
11. A pressure regulator comprising: a pressure regulating stage, the pressure regulating stage comprising: a movable regulator diaphragm separating a non-working fluid chamber from a working-fluid chamber; and a pressure regulator diaphragm vent channel in fluid communication with the non-working fluid chamber; and a vent guard in fluid communication with the non-working fluid chamber through the vent channel, the vent guard comprising: a housing comprising a compartment; a vent diaphragm configured to separate the housing compartment into a first vent chamber and a second vent chamber, the first vent chamber in fluid communication with the non-working fluid chamber, and the second vent chamber in fluid communication with an atmosphere, wherein the vent diaphragm seals the non-working fluid chamber from fluid communication with the atmosphere.
12. The pressure regulator of claim 11, wherein the vent guard further comprises: a vent guard connector adapted to connect the vent guard to the pressure regulating stage and promote the fluid communication between the non-working fluid chamber and the first vent chamber.
13. The pressure regulator of claim 11, wherein the vent diaphragm is adapted to move to increase or decrease a volume of the first vent chamber in response to the fluid communication with the non-working fluid chamber.
14. The pressure regulator of claim 12, wherein the vent guard connector is threaded to engage threads on the pressure regulator to secure the vent guard to the pressure regulator.
15. The pressure regulator of claim 14, wherein the exterior of the vent guard housing includes opposed surfaces for engagement by a driving tool for insertion and removal.
16. The pressure regulator of claim 11, wherein the vent guard further comprises a protective structure adapted to prevent ingress of debris from the atmosphere to the second vent chamber.
17. The pressure regulator of claim 12, wherein the vent guard connector is sized to provide thermal isolation of the vent guard compartment from the pressure regulator.
18. A method of regulating pressure comprising: reducing a pressure of a fluid passing through a pressure regulator, wherein the pressure regulator comprises a non-working fluid chamber in fluid communication with a vent guard, wherein the vent guard comprises: a housing defining a compartment; and a vent diaphragm adapted to separate the housing compartment into a first vent chamber and a second vent chamber, the first vent chamber adapted to be in fluid communication with the non-working fluid chamber, and the second vent chamber in fluid communication with an atmosphere, wherein the vent diaphragm seals the non-working fluid chamber from fluid communication with the atmosphere.
19. A method of installing a vent guard comprising: providing a pressure regulator comprising a non-working fluid chamber in fluid communication with a non-working fluid channel; and connecting a vent guard to the pressure regulator thereby sealing the non-working fluid chamber from fluid communication with an atmosphere, wherein the vent guard is adapted to be connected either when the pressure regulator is pressurized or when the pressure regulator is not pressurized, wherein the vent guard comprises: a housing comprising a compartment; and a vent diaphragm configured to separate the compartment into a first vent chamber and a second vent chamber, the first vent chamber adapted to be in fluid communication with the non-working fluid chamber of the pressure regulator, and the second vent chamber in fluid communication with the atmosphere, wherein the vent diaphragm seals the non-working chamber from fluid communication with the atmosphere.
20. The method of installing the vent guard of claim 19, wherein connecting the vent guard includes using a tool to engage engagement surfaces on the outside of the vent guard housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION
[0030] Referring to
[0031] The first stage 105 includes a housing formed of an upper housing portion 121 and a lower housing portion 122 that are connected together with fasteners (not shown). The housing portions 121, 122 are formed of metal or other suitable material. Once connected, the housing portions 121, 122 define a compartment 141. The compartment 141 is separated by a pressure regulator diaphragm 130 into a non-working fluid chamber 125 and a working fluid chamber 135. The pressure regulator diaphragm 130 is held in place to seal the non-working fluid chamber 125 from the working fluid chamber 135. The pressure regulator diaphragm 130 is disc-shaped, having an outer periphery 132 that is held between the housing portions 121, 122. The diaphragm 130 has an inner periphery 133 that is held between a central fitting 134 and a nozzle 136, the nozzle 136 being screwed into the central fitting 134.
[0032] The pressure regulator diaphragm 130 is made of a flexible elastic material, and can also be, for example, integral, unitary, and one-piece. The pressure regulator 100 also includes a disc-shaped rigid diaphragm plate 137 placed in the non-working fluid chamber 125 and a cup shaped seal plate 131 placed in the working fluid chamber 135 on opposing sides of the pressure regulator diaphragm 130 to support the pressure regulator diaphragm 130.
[0033] The first stage 105 includes the nozzle 136. As the working fluid 25 flows through the first stage 105 of the pressure regulator 100, the working fluid 25 passes through the nozzle 136 and expands into the working fluid chamber 135, thereby reducing the pressure of the working fluid 25. The pressure regulator 100 also includes springs 145, 146 urging the plate 137 and valve cup 131, and positioned within the chambers 125, 135 and configured to control the movement of the diaphragm 130 in response to the pressure of the working fluid 25 to open and close the valve 138 to provide for a flow rate of working fluid 25 at the desired outlet pressure. A reduction in pressure in the working fluid chamber 135, which can be caused by downstream consumption or venting of the working fluid, results in flexing of the pressure regulator diaphragm 130 into the working fluid chamber 135. The amount of expansion of the pressure regulator diaphragm is controlled by the springs 145, 146 as known in the art. Such flexing of the pressure regulator diaphragm results in the valve 138 opening by moving the valve seat 168 away from the nozzle 136. High pressure working fluid 25 is driven by the pressure difference to pass through the pressure regulator 100 and through the valve 138 and into working fluid chamber 135. By controlling the flexing of the pressure regulator diaphragm 130, the springs 145, 146 control the opening of the valve 138 and thus the flow of the working fluid 25, thereby controlling the desired output pressure.
[0034] This flexing displacement of the pressure regulator diaphragm 130 results in an increase in the volume of the non-working fluid chamber 125 and a corresponding reduction in the volume of the working fluid chamber 135. The increase of the volume of the non-working fluid chamber 125 causes a reduction of the pressure in the non-working fluid chamber 125. In order to accommodate the changing volume and pressure caused by the movement of the pressure regulator diaphragm 130, the non-working fluid chamber 125 is in fluid communication with the atmosphere 220 (indicated in
[0035] As discussed above, by exposing the non-working fluid chamber 125 via the vent 115 to the atmosphere 220, either liquid water or water vapor may enter the vent and the non-working fluid chamber 125. And as the pressure regulator 100 may be exposed to an environment below the freezing point temperature of water and/or by the cooling effect from expanding the working fluid 25, the water or water vapor could freeze within the non-working fluid chamber 125. To keep the moisture out of the pressure regulator, the non-working fluid chamber 125 may be sealed from the atmosphere 220. However, this may result in the non-working fluid chamber's volume, including connected passageways, being too small to accommodate volume changes caused by the movement of the pressure regulator diaphragm 130 without resulting in non-working fluid chamber 125 pressures undesirably resisting or interfering in the pressure regulator diaphragm's movement. This resistance may make it more difficult to precisely control flow of the working fluid 25 through the regulator 100.
[0036] Referring now to
[0037] The vent guard 150 has a threaded vent guard connector 185 for connecting to the regulator 100 at vent location 250. The vent guard connector 185 includes external threads 187. The vent guard connector 185 is integral to and projects outward from the vent guard housing base 160. The vent guard connector 185 further includes a central vent guard channel 190 extending through its length to connect and provide fluid communication between the vent guard pressure response chamber 210, described in additional detail below, and the non-working fluid chamber 125 via a hole 161 in the vent guard housing base wall 160. By means of the hole 161 in the vent guard housing base 160, the vent guard channel 190 is in fluid communication with the housing compartment 175. This configuration permits a fluid to pass from beyond the vent guard connector 185 through the vent guard channel 190 and the hole 161 in the vent guard housing base 160, and into the housing compartment 175. The vent guard connector 185 includes external threads 187 for attaching the vent guard connector 185 to the pressure regulator 100 at threaded vent location 250. As shown in
[0038] The vent guard 150 further includes a vent guard diaphragm 205, which is generally cup-shaped and positioned within the vent guard housing compartment 175. The vent guard diaphragm 205 is flexible and adapted to move towards and away from the vent guard base wall 160 in response to pressure changes within the housing compartment 175. The vent guard diaphragm 205 separates the vent housing compartment into two chambers sealed from one another, namely, a vent guard pressure response chamber 210 and a vent guard atmospheric chamber 215. As shown in
[0039] The vent guard diaphragm 205 is made of a flexible material capable of responsively moving within the housing compartment 175 in response to changes in pressure. The vent guard diaphragm 205 further includes a generally cylindrical vent guard diaphragm side wall 230 and a disc-shaped vent guard diaphragm base 225. The vent guard diaphragm side wall 230 extends from the vent guard diaphragm base 225 and ends in a vent guard diaphragm lip 235. The lip 235 extends in a continuous ring outwardly away from the axial center 191, forming a ledge. The vent guard diaphragm lip 235 is captured within the C-shaped protrusion 182 of the vent guard housing thereby sealing the vent guard pressure response chamber 210 from the vent guard atmospheric chamber 215. In order to respond to changes in pressure in the vent guard pressure response chamber 215, as discussed below, the vent guard diaphragm wall 230 flexes and folds back on itself, allowing the vent guard diaphragm base 225 to move in response to the changes in pressure in the vent guard pressure response chamber 210. Such movement of the vent guard diaphragm base 225 changes the volume of the vent guard pressure response chamber 210, to help normalize the pressure in the non-working fluid chamber 125 when the pressure regulator diaphragm 130 displaces the non-working fluid.
[0040] The vent guard 150 further includes a protective structure, such as the vent guard cover 240. The protective structure, which in this embodiment is vent guard cover 240, is positioned adjacent to the vent guard diaphragm lip 235. The periphery of the vent guard cover 240 is captured within the C-shaped protrusion 182. The vent guard cover 240 is positioned external to the vent guard diaphragm 205 such that the vent guard cover 240 is between the vent guard atmospheric chamber 215 and the atmosphere 220. The vent guard cover 240 together with the vent guard diaphragm 205 define the vent guard atmospheric chamber 215. The vent guard cover 240 can conform to the shape of the opening of vent guard housing side wall 200, thereby covering the entire opening. The vent guard cover may be made of metal, plastic, polymer, or a combination thereof, which is structurally sufficient to prevent debris from entering the vent guard atmospheric chamber 215. In order to permit fluid communication between the vent guard atmospheric chamber 215 and the atmosphere 220, the vent guard cover 240 is porous. The vent guard cover 240 includes periphery holes 245 located around the periphery 241 of the vent guard cover 240 and allows gases but not debris to pass through the vent cover. The location of the periphery holes 245 permits water drainage from the vent guard atmospheric chamber 215.
[0041] As described above, the vent guard pressure response chamber 210 is in fluid communication with the vent guard channel 190. The vent guard channel 190 and vent guard connector 185 are configured to join the vent guard pressure response chamber 210 with the non-working fluid chamber 125 of the pressure regulator 100. The vent guard 150 is attached to the pressure regulator through the vent location 250 (
[0042] During operation of a first stage pressure regulator 105, the movement of the pressure regulator diaphragm 130 results in a displacement of fluid in the non-working fluid chamber 125, resulting in a change in pressure and volume of the non-working fluid chamber 125. For example, when the working fluid chamber 135 pressure decreases, the movement of the pressure regulator diaphragm 130 enlarges the volume of the non-working fluid chamber 125. In this situation, the difference in volume results in a decrease in pressure in the non-working fluid chamber 125 which needs to be normalized by either adding fluid to the non-working fluid chamber 125, for example, air in a system vented to the atmosphere, or changing the total volume of the non-working fluid chamber 125 and its connected passageways. As discussed above, in the installed position, the vent guard 150 is adapted to seal the non-working fluid chamber 125 from the atmosphere 220. Therefore, when the pressure regulator diaphragm 130 expandsreducing the pressure in the non-working fluid chamber 125, the vent guard diaphragm 205 moves in response to the reduction in pressure and reduces the volume of the vent guard pressure response chamber 210 to normalize the pressure within the non-working fluid chamber 125. Alternatively, when the pressure regulator diaphragm 130 moves to decrease the volume of the non-working fluid chamber 125, the pressure in the non-working fluid chamber 125 increases and the vent guard diaphragm 205 responds by moving to enlarge the volume of the vent guard pressure response chamber 210.
[0043] Referring to
[0044] The vent guard 150 can be installed in or attached to a pressure regulator while the pressure regulator working fluid chamber 135 is either pressurized or not pressurized. This can, for example, reduce installation cost and inconvenience by permitting the pressure regulator to remain in service when the vent guard is being installed.
[0045] As explained above, when the working fluid chamber 135 is not pressurized the pressure regulator diaphragm 130 moves thereby increasing the volume and decreasing the pressure in the non-working fluid chamber 125. When the pressure regulator working fluid chamber 135 is pressurized, the pressure regulator diaphragm 130 moves to decrease the volume and increase the pressure of the non-working fluid chamber 125. The vent guard diaphragm's initial at rest position, P0, permits installation, and subsequent operation, regardless of the position of the pressure regulator diaphragm 130 at the time of installation of the vent guard 150. As installed, the vent guard diaphragm base 225 is positioned at P0. If the working fluid chamber 135 was depressurized at the time of installation of the vent guard, when the working fluid chamber 135 pressurizes, the pressure regulator diaphragm 130 will move causing an increase in pressure in the non-working fluid chamber. In response to such movement of the pressure regulator diaphragm 130, the vent guard diaphragm 205 will respond to the pressure change and move to create more volume in the vent guard pressure response chamber 210, for example, by moving the vent guard diaphragm base 225 to position P1. In this scenario, when the working fluid chamber 135 returns to a depressurized state, the reduction of volume and associated increase pressure in the non-working fluid chamber 125 caused by the movement of the pressure regulator diaphragm 130 will result in the vent guard diaphragm returning to P0. If instead, the working fluid chamber 135 was pressurized at the time of installation of the vent guard 150, when the working fluid chamber 135 depressurizes, the pressure regulator diaphragm 130 will move to decrease the pressure in the non-working fluid chamber 125. In response to such movement of the pressure regulator diaphragm 130, the vent guard diaphragm base 225 will respond to the pressure change and move to create less volume in the vent guard pressure response chamber 210, for example, by moving to P2. If installed in this situation, once the working fluid chamber 135 re-pressurizes, the increase in volume and associated decrease in pressure of the non-working fluid chamber 125 caused by the movement of the pressure regulator diaphragm 130 will result in the vent guard diaphragm returning to P0.
[0046] As can be seen, the vent guard 150 can be installed whether the working fluid chamber 135 of the pressure regulator is pressurized or depressurized and is adapted to respond to changes in pressure in the non-working fluid chamber 125 during subsequent pressurizations or depressurizations of the working fluid chamber 135. The positions (P0, P1, P2) and distances (D0, D1, D2) specifically shown in
[0047] This disclosure also includes a method of regulating pressure. The method includes a step of regulating the pressure of a working fluid passing through a pressure regulator having a vent guard as described herein. As the pressure of the working fluid is reduced, the vent guard is configured to respond to the changing pressure of the non-working fluid chamber, while also preventing liquid water, water vapor, and/or debris from entering the non-working fluid chamber. The method includes a vent regulator diaphragm housed in the vent guard and adapted to move in response to changes in pressure of the non-working fluid chamber of the pressure regulator.
[0048] This disclosure also contemplates a method of installing the vent guard. The vent guard may be installed in a new pressure regulator prior to its installation in, for example, a service line, or the vent guard may be installed in a pressure regulator already in operation. The method can include removing a vent guard or cover from a pressure regulator. The method includes connecting the vent guard to the pressure regulator, thereby placing the vent guard in fluid communication with the non-working fluid chamber of the pressure regulator. The method may include connecting the vent guard to the pressure regulator using a threaded connector. By means of attached the vent guard, the non-working fluid chamber is sealed from fluid communication with the atmosphere and remains capable of responding to changes in pressure in the working fluid chamber.
[0049] An added benefit of using a vent guard as described in this disclosure is that such a configuration provides for an additional ease of installation of the pressure regulator by permitting the pressure regulator to be installed in any orientation, for example, either in a vertical or a horizontal orientation, and still comply with regulations as drainage of the non-working fluid chamber is not an issue with the vent guard.
[0050] By using a vent guard as described in this disclosure, the vent guard functions as intended, e.g., providing sealed relief to a non-working fluid chamber, regardless of the flow condition, i.e., the pressurization of the working fluid chamber, during installation of the vent guard. This provides the unique benefit of permitting installation of the vent guard without taking the pressure regulator out of service or limiting installation to certain flow conditions of the working fluid.
[0051] As an added benefit of this disclosure, by connecting and sealing the non-working fluid chamber with the vent guard pressure response chamber, a larger overall volume that is sealed from the atmosphere is provided to respond to changes in pressure of the working fluid chamber. This permits the present disclosure to provide for additional advantages during use of the pressure regulator, for example, which reducing the impact on performance of the pressure regulator in the event of an obstruction to the vent guard.
[0052] Moreover, because expansion of the working fluid can cause the internals of the pressure regulator to reach a temperature below the freezing point of water, an added benefit of the present disclosure is to seal the non-working fluid chamber from the atmosphere, thereby preventing water or water vapor for accumulating within the pressure regulator. To the extent that the present invention utilizes a movable diaphragm to respond to changes in pressure, the movable diaphragm is also located outside the pressure regulator, thereby insulating the movable diaphragm from the temperatures internal to the pressure regulator.
[0053] The above description and drawings are only to be considered illustrative of specific embodiments, which achieve the features and advantages described herein. Modifications and substitutions for specific conditions and materials and otherwise can be made. For example, it should be appreciated that the specific pressure set points described with respect to the pressure regulator 100 are not intended to limit the present disclosure. In other embodiments, the vent guard 150 could be used in conjunction with second stage 110 (