Rotatable Pressure Relief Valve Assembly
20170059048 ยท 2017-03-02
Assignee
Inventors
Cpc classification
F16K17/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K47/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotatable pressure relief valve assembly is disclosed. The rotatable pressure relief valve assembly may comprise a rotatable plug mounted within a valve body, along with a release mechanism configured to engage with the shaft and hold the plug in a closed position until an opening pressure of the valve assembly is reached. An assembly may include a damper configured to absorb a rotational kinetic energy or a catching mechanism configured to retain the plug in an open position when the plug rotates into the open position. A plug may be wing-shaped or have a mass balanced across a rotatable shaft offset from a diameter of the plug. An assembly may include a buckling pin, torque pin, tensile member or other release mechanism, which may be pre-loaded. A thermal shield also may be provided.
Claims
1. A rotatable pressure relief valve assembly, comprising: a valve body; a plug mounted within the body, the plug being rotatable between an open position and a closed position about a rotatable shaft; a release mechanism configured to engage with the shaft and hold the plug in a closed position until an opening pressure of the valve assembly is reached; and, a damper configured to absorb a rotational kinetic energy imparted by the shaft when the valve plug rotates into the open position.
2. The rotatable pressure relief valve assembly of claim 1, wherein the rotatable shaft comprises a contact arm; wherein the release mechanism is configured to engage with the shaft via the contact arm; and wherein the contact arm is configured to transmit a torque from the shaft to the release mechanism.
3. The rotatable pressure relief valve assembly of claim 1, wherein the rotatable shaft comprises a contact arm; and wherein the damper is configured to absorb the rotational kinetic energy by engaging with the contact arm.
4. The rotatable pressure relief valve assembly of claim 1, wherein the rotatable shaft comprises a notch; and wherein the damper is positioned within the notch of the rotatable shaft.
5. The rotatable pressure relief valve assembly of claim 1, wherein the rotatable shaft comprises at least one tooth; and wherein the damper is configured to absorb the rotational kinetic energy by engaging with the at least one tooth.
6. The rotatable pressure relief valve assembly of claim 1, wherein the release mechanism comprises a failure member, the assembly further comprising a pre-loading mechanism configured to pre-load the failure member.
7. The rotatable pressure relief valve assembly of claim 1, further comprising a thermal shield.
8. The rotatable pressure relief valve assembly of claim 7, wherein the thermal shield is attached to the valve body.
9. The rotatable pressure relief valve assembly of claim 1, wherein the shaft is offset from a diameter of the valve plug, and wherein the mass of the plug is distributed evenly on either side of the offset shaft.
10. The rotatable pressure relief valve assembly of claim 1, wherein the shaft has a first end and a second end; wherein the release mechanism is configured to engage with the first end of the shaft: and wherein the damper is configured to engage with the second end of the shaft.
11. A rotatable pressure relief valve assembly, comprising: a valve body; a plug mounted within the body, the plug being rotatable between an open position and a closed position about a rotatable shaft a release mechanism configured to engage with the shaft and hold the plug in a closed position until an opening pressure of the valve assembly is reached; and, a catching mechanism configured to engage shaft when the valve plug rotates into the open position, wherein the catching mechanism is further configured to retain the plug in the open position,
12. The rotatable pressure relief valve assembly of claim 11, wherein the shaft comprises a contact arm; and wherein catching mechanism is a latch, and wherein the latch is configured to engage the shaft via the contact arm.
13. The rotatable pressure relief valve assembly of claim 11, wherein the release mechanism comprises a failure member, the assembly further comprising: a pre-loading mechanism configured to pre-load the failure member,
14. The rotatable pressure relief valve assembly of claim 11, wherein the catching mechanism comprises a clutch.
15. The rotatable pressure relief valve assembly of claim 11, wherein the catching mechanism comprises a ratchet.
16. The rotatable pressure relief valve assembly of claim 11, wherein the shaft comprises a notch; and wherein the catching mechanism is configured to engage with the notch when the valve plug rotates into the open position.
17. The rotatable pressure relief valve assembly of claim 11, wherein the shaft comprises at least one tooth; and wherein the catching mechanism is configured to engage with the at least one tooth when the valve plug rotates into the open position,
18. The rotatable pressure relief valve assembly of claim 11, further comprising: a thermal shield.
19. The rotatable pressure relief valve assembly of claim 11, wherein the shaft is offset from a diameter of the valve plug, and wherein the mass of the plug is distributed evenly on either side of the offset shaft.
20. The rotatable pressure relief valve assembly of claim 1, wherein the shaft has a first end and a second end; wherein the release mechanism is configured to engage with the first end of the shaft; and wherein the catching mechanism is configured to engage with the second end of the shaft.
21. A rotatable pressure relief valve assembly, comprising a valve body; a plug mounted within the body, the plug being rotatable between an open position and a closed position about a rotatable shaft; wherein the plug is wing-shaped.
22. A rotatable pressure relief valve assembly, comprising: a valve body; a valve shaft, a plug engaged with the valve shaft and disposed within the valve body, wherein the plug has a diameter parallel to the shaft, and wherein the diameter is offset from the shaft; wherein the mass of the plug is balanced across the shaft.
23. A rotatable pressure relief valve assembly, comprising: a valve body; a valve plug disposed within the valve body, the valve plug having a shaft defining an axis of rotation, wherein the valve plug is configured to translate a pressure differential within the valve body into a torque along the shaft, and a buckling pin configured to engage with the shaft to receive the torque in the form of a first compressive load when the plug is in a closed position; and a pre-loading mechanism configured to pre-load the buckling pin with a second compressive load; wherein the buckling pin is configured to fail when the combined first and second compressive loads reach a set load limit, and wherein the valve plug is configured to rotate into an open position when the buckling pin fails.
24. The rotatable pressure relief valve assembly of claim 23, further comprising: a catching mechanism configured to engage the shaft when the plug rotates into the open position and thereby prevent the shaft from rotating further.
25. The rotatable pressure relief valve assembly of claim 23, further comprising: an energy absorber configured to engage the shaft when the plug rotates into the open position and thereby absorb a Kinetic rotational energy imparted by the shaft.
26. A rotatable pressure relief valve assembly, comprising: a valve body defining a fluid flow path; a valve plug having a rotational shaft, wherein the valve plug is configured to rotate along the rotational shaft between a closed position and an open position, wherein the valve plug obstructs the fluid flow path when in the closed position; a tensile failure member configured to engage with the shaft to receive a rotational torque from the shaft in the form of a first tensile load when the plug is in the closed position; and a pre-loading mechanism configured to pre-load the tensile failure member with a second tensile load; wherein the tensile failure member is configured to fail when the combined first and second tensile loads reach a set load limit, and wherein the valve plug is configured to rotate into the open position when the tensile failure member fails.
27. The rotatable pressure relief valve assembly of claim 26, further comprising: a catching mechanism configured to engage the shaft when the plug rotates into the open position and thereby prevent the shaft from rotating further.
28. The rotatable pressure relief valve assembly of claim 26, further comprising: an energy absorber configured to engage the shaft when the plug rotates into the open position and thereby absorb a kinetic rotational energy imparted by the shaft.
29. A rotatable pressure relief valve assembly, comprising: a valve body defining a fluid flow path, the valve body having an inlet and an outlet; a valve plug disposed within the valve body, the valve plug being configured to rotate about a shaft between a closed position and an open position, wherein the valve plug is configured to prevent fluid from flowing along the fluid flow path when in the closed position; means for keeping the valve plug in the closed position until a set pressure differential between the valve body inlet and valve body outlet is reached; and, means for keeping the valve plug in the open position after the valve plug rotates into the open position.
30. A rotatable pressure relief valve assembly, comprising: a valve body defining a fluid flow path, the valve body having an inlet and an outlet; a valve plug disposed within the valve body, the valve plug being configured to rotate about a shaft between a closed position and an open position, wherein the valve plug is configured to prevent fluid from flowing along the fluid flow path when in the closed position; means for keeping the valve plug in the closed position until a set pressure differential between the valve body inlet and valve body outlet is reached; and, means for absorbing a rotational kinetic energy imparted by the shaft when the valve plug rotates into the open position.
31. A rotatable pressure relief valve assembly, comprising: a valve body having an inlet and an outlet and defining a fluid flowpath; a valve plug disposed within the valve body, wherein the plug is configured to rotate between a closed position and an open position, and wherein the plug is configured to block the fluid flowpath when oriented in the closed position; a release mechanism configured to hold the valve plug in the closed position until a set pressure differential across the inlet and outlet of the valve body is reached; and a thermal shield positioned between the valve body and a heat source external to the valve body, wherein the thermal shield is oriented to protect the valve body from asymmetric heating caused by the external heat source.
32. A rotatable pressure relief valve assembly, comprising: a valve body; a valve plug disposed within the valve body, the valve plug having a shaft defining an axis of rotation, wherein the valve plug is configured to translate a pressure differential within the valve body into a torque along the shaft, and a buckling pin having a first end and a second end; and a pin mount; wherein the first end of the buckling pin is engaged with the shaft, and wherein the second end of the buckling pin is engaged with the pin mount; wherein the buckling pin is configured to receive the torque from the shaft as a compressive load when the plug is in a closed position; and wherein the buckling pin is configured to fail when the compressive load reaches a set load limit, and wherein the valve plug is configured to rotate into an open position when the buckling pin fails.
33. A rotatable pressure relief valve assembly, comprising: a valve body defining a fluid flow path: a valve plug having a rotational shaft, wherein the valve plug is configured to rotate along the rotational shaft between a closed position and an open position, wherein the valve plug obstructs the fluid flow path when in the closed position; a tensile failure member having a first end and a second end; and a tensile failure member mount; wherein the first end of the tensile failure member is engaged with the shaft, and wherein the second end of the tensile failure member is engaged with the tensile failure member mount; wherein the tensile failure member is configured to receive a rotational torque from the shaft in the form of a tensile load when the plug is in the closed position; and wherein the tensile failure member is configured to fail when the tensile load reaches a set load limit, and wherein the valve plug is configured to rotate into the open position when the tensile failure member falls.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate several embodiments and together with the description, serve to explain the principles of the disclosure.
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DESCRIPTION OF THE EMBODIMENTS
[0049] Reference will now be made in detail to the present exemplary embodiments, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts. The drawing figures of this application are intended to provide a general understanding of the working elements of the underlying system. Accordingly, unless explicitly stated, the figures do not represent a literal depiction of proportional dimensions or the precise locations for the illustrated inter-related components.
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[0051] The shaft may extend through the body and may be rotatable with the plug, relative to the body, about the rotational axis. The shaft may be a single, continuous shaft extending across a face of or through the plug, or may be one or more shaft ends, axles, ears, or the like which extend from the plug through the body. A single continuous shaft may be desirable to increase rigidity and keep the shaft in alignment with the rotational axis. Limit switches, motion detection switches, or the like (not shown) may be provided at either or both outside ends of the shaft to indicate whether the plug is in the open or closed position and/or has been opened or closed.
[0052] As illustrated in
[0053] When valve plug is in a closed position, a pressure (P) in the pressurized system generates a torque and moment (M) (as shown in
[0054] In one embodiment, a release mechanism assembly is mounted on the valve body, as illustrated in
[0055] As illustrated in
[0056] Although
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[0059] Although a bumper is illustrated in
[0060] Although a latch is illustrated in
[0061] The torsion spring illustrated in
[0062] The energy-absorbing and latch features illustrated, for example, in
[0063]
[0064] In one embodiment, the shaft may include a notch or other geometry configured to operate with another mechanism to limit the shafts rotation relative to the valve body. For example, as illustrated in
[0065] In another embodiment, the notched end of a shaft may fit within a shaft housing (illustrated in
[0066] It is also contemplated that a shaft may be configured to cooperate with a catching mechanism that may include a clutch mechanism or a ratcheting mechanism. As illustrated in
[0067] The valve plug of a rotatable valve assembly may be shaped to improve fluid flow characteristics upon opening of the valve. As illustrated in
[0068] A rotatable valve assembly may include components that are susceptible to warping or damage from environmental heat. Accordingly, a thermal shield may be used to protect the rotatable valve assembly or its components from environmental heat. As illustrated in
[0069] As a result of the offset shaft design used with a known rotatable valve plug, the mass of a known plug may be unevenly distributed across the rotatable shaft. The present disclosure contemplates a providing a weight-balanced or gravity-neutral plug with an offset shaft. For example, as illustrated in
[0070] Although at least a portion of the foregoing disclosure focuses on a rotatable valve plug assembly having one release mechanism positioned at one end of a valve shaft, the disclosure is not limited to such an arrangement. Principles of the disclosure may be used with a rotatable valve plug assembly having multiple release mechanisms. For example, a pair of mated release mechanisms may be provided, with one release mechanism on each end of a valve shaft. Such an arrangement may result in a more even load on the valve plug and valve shaft when placed under pressure e.g., such an arrangement may reduce a torsion applied to the valve shaft. Principles of the disclosure may be used to provide, e.g., a latch and/or energy absorber on one or both ends of the shaft (i.e., with one or both of the release mechanisms).
[0071] The foregoing embodiments are exemplary only. Other embodiments will be apparent to those skilled in the art from consideration of the specification and practice of the disclosure herein.