Main valve with pressure relief valve having a lockout feature
11389680 · 2022-07-19
Assignee
Inventors
- George J. McHugh, IV (Malvern, PA, US)
- James P. McHugh (Newtown Square, PA, US)
- Bentley F. Gleeson (Plymouth Meeting, PA, US)
Cpc classification
F16K27/067
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62C35/60
HUMAN NECESSITIES
F16K5/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62C37/50
HUMAN NECESSITIES
F16K37/0058
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A62C35/60
HUMAN NECESSITIES
Abstract
An integral valve arrangement may comprise a housing. The housing may comprise a main valve and a relief valve. The main valve may comprise an inlet and a first outlet. The relief valve may comprise a relief inlet in a side wall of the inlet, a relief outlet in a side wall of the first outlet, and a pressure relief system. The inlet and the first outlet may be substantially axially perpendicular. The relief inlet and the relief outlet may be substantially axially perpendicular. The pressure relief system may comprise a body abutting walls of the housing, a relief member disposed within the body, and a lever. The relief member may comprise an interior end and an exterior end. The lever may be rotatably coupled to the exterior end of the relief member by a connecting mechanism.
Claims
1. An integral valve arrangement, comprising: a housing comprising a main valve and a relief valve, the main valve comprising an inlet and a first outlet, and the relief valve comprising a relief inlet in a side wall of the inlet, a relief outlet in a side wall of the first outlet, and a pressure relief system, the inlet and the first outlet being substantially axially perpendicular, the relief inlet and the relief outlet being substantially axially perpendicular; wherein the pressure relief system comprises: a body abutting walls of the housing; a relief member disposed within the body, the relief member comprising an interior end and an exterior end; and a lever rotatably coupled to the exterior end of the relief member by a connector; and wherein the main valve and the relief valve are housed in the housing of the integral valve arrangement.
2. The integral valve arrangement according to claim 1, wherein the housing further comprises a hook disposed on an exterior end of the pressure relief system and comprising an opening configured to receive the lever, the exterior end opposite an interior end forming the side wall of the inlet, the hook being configured to prevent the lever and the relief member from moving laterally away from the inlet along an axis of the relief member.
3. The integral valve arrangement according to claim 2, wherein the relief member is configured to axially rotate to enable the lever to be placed in a first position behind the hook and a second position free of the hook, the first position being configured to prevent pressure relief of the inlet, and the second position being configured to enable pressure relief of the inlet.
4. The integral valve arrangement according to claim 3, wherein the lever is configured to rotate about the connector from a position substantially perpendicular to the relief member to a position non-perpendicular to the relief member, the non-perpendicular position being configured to enable an open passage from the relief inlet to the relief outlet.
5. The integral valve arrangement according to claim 1, wherein the pressure relief system further comprises a spring and a tensioner, the spring disposed around the relief member and interposed between the interior end of the relief member and the tensioner, the relief member being biased to a closed position in response to the spring, the closed position preventing an open passage from the relief inlet to the relief outlet.
6. The integral valve arrangement according to claim 5, wherein an outer surface of the tensioner comprises threads to enable precise adjustment of the tensioner and the spring.
7. The integral valve arrangement according to claim 5, wherein the spring is configured to compress in response to a pressure threshold being reached from the inlet to enable an open passage from the relief inlet to the relief outlet.
8. The integral valve arrangement according to claim 7, wherein the pressure threshold is approximately 175 pounds.
9. The integral valve arrangement according to claim 1, wherein the relief inlet is configured to be substantially non-parallel to the inlet, and wherein the relief outlet is configured to be substantially non-parallel to the outlet.
10. The integral valve arrangement according to claim 1, wherein the pressure relief system further comprises a plate defining an exterior wall of the body opposite the relief inlet.
11. The integral valve arrangement according to claim 10, wherein the pressure relief system further comprises a retaining ring external to the plate.
12. The integral valve arrangement according to claim 1, wherein the housing further comprises at least one sight glass disposed in a side wall of the first outlet to enable visibility within the first outlet.
13. The integral valve arrangement according to claim 1, wherein the main valve is a ball valve.
14. The integral valve arrangement according to claim 1, wherein the housing further comprises a second outlet substantially parallel and in a same axis as the first outlet, the second outlet disposed opposite the inlet from the first outlet.
15. The integral valve arrangement according to claim 1, wherein the pressure relief system further comprises at least one ring seal.
16. The integral valve arrangement according to claim 15, wherein the at least one ring seal comprises: a first ring seal interposed between the walls of the housing and a first notch around a first perimeter of the body, the first perimeter being on an interior portion of the body adjacent to the relief inlet; a second ring seal interposed between the walls of the housing and a second notch around a second perimeter of the body, the second perimeter being on a middle portion of the body and opposite the relief outlet from the first perimeter; a third ring seal interposed between the body and a third notch around a third perimeter of a tensioner; and a fourth ring seal interposed between the relief member and a fourth notch around a fourth interior perimeter of the tensioner.
17. A fire suppression sprinkler system, comprising: a main conduit; at least one branch conduit in fluid communication with the main conduit; at least one sprinkler head coupled to the at least one branch conduit; and an integral valve arrangement for testing and draining the fire suppression sprinkler system in fluid communication with the main conduit, the integral valve arrangement comprising: a housing comprising a main valve and a relief valve, the main valve comprising an inlet and a first outlet, and the relief valve comprising a relief inlet in a side wall of the inlet, a relief outlet in a side wall of the first outlet, and a pressure relief system, the inlet and the first outlet being substantially axially perpendicular, the relief inlet and the relief outlet being substantially axially perpendicular; wherein the pressure relief system comprises: a body abutting walls of the housing; a relief member disposed within the body, the relief member comprising an interior end and an exterior end; and a lever rotatably coupled to the exterior end of the relief member by a connecting mechanism; and wherein the main valve and the relief valve are housed in the housing of the integral valve arrangement.
18. The fire suppression sprinkler system according to claim 17, wherein the housing further comprises a hook disposed on an exterior end of the pressure relief system and comprising an opening configured to receive the lever, the exterior end opposite an interior end forming the side wall of the inlet, the hook being configured to prevent the lever and the relief member from moving laterally away from the inlet along an axis of the relief member.
19. The fire suppression sprinkler system according to claim 18, wherein the relief member is configured to axially rotate to enable the lever to be placed in a first position behind the hook and a second position free of the hook, the first position being configured to prevent pressure relief of the inlet, and the second position being configured to enable pressure relief of the inlet.
20. The fire suppression sprinkler system according to claim 19, wherein the lever is configured to rotate about the connecting mechanism from a position substantially perpendicular to the relief member to a position non-perpendicular to the relief member, the non-perpendicular position being configured to enable an open passage from the relief inlet to the relief outlet.
Description
BRIEF DESCRIPTION OF THE DRAWING FIGURES
(1) Exemplary embodiments of the disclosed valve arrangement will be described in greater detail with reference to the accompanying drawings, wherein like members bear like reference numerals and wherein:
(2)
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DETAILED DESCRIPTION OF THE INVENTION
(9) The following disclosure provides many different embodiments, or examples, for implementing different features of the provided subject matter. Specific examples of components and arrangements are described below to simplify the present disclosure. These are, of course, merely examples and are not intended to be limiting. For example, the formation of a first feature over or on a second feature in the description that follows may include embodiments in which the first and second features are formed in direct contact, and may also include embodiments in which additional features may be formed between the first and second features, such that the first and second features may not be in direct contact. In addition, the present disclosure may repeat reference numerals and/or letters in the various examples. This repetition is for the purpose of simplicity and clarity and does not in itself dictate a relationship between the various embodiments and/or configurations discussed.
(10) Further, spatially relative terms, such as “beneath,” “below,” “lower,” “above,” “upper” and the like, may be used herein for ease of description to describe one element or feature's relationship to another element(s) or feature(s) as illustrated in the figures. The spatially relative terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. The apparatus may be otherwise oriented (rotated 90 degrees or at other orientations) and the spatially relative descriptors used herein may likewise be interpreted accordingly.
(11) With regard to
(12) With regard to
(13) The valve arrangement 102 may be an integral valve arrangement that comprise a housing that may form the outer walls of a main valve and a relief valve. The main valve may comprise an inlet 202 and a first outlet 204. In some embodiments, the main valve may further comprise a second outlet 206. The inlet 202 and the first outlet 204 may be substantially perpendicular to one another. The second outlet 206 may be substantially perpendicular to the inlet 202 and may be provided along a common axis with the first outlet 24. The inlet 202 of the main valve may be provided in fluid communication with the main conduit 104 of
(14) The housing may further comprise a handle 208. In one embodiment, the handle 208 may be moveable between an “off” position, a “test” position, and a “drain” position. In response to the handle 208 being in the “off” position, fluid communication between the inlet 202 and the first outlet 204 is prevented because one side of the orifice or orifices of a ball 606 (
(15) The relief valve may comprise an integral pressure relief system 212 and a lever 214 rotatably coupled to the pressure relief system 212. In one embodiment, the relief valve may further comprise a hook 216 that may hold the lever 214. In response to the lever 214 being placed in the hook 216, a relief member of the pressure relief system 212 may be prevented from opening in response to a pressure substantially higher than a pressure threshold for opening the relief member. The pressure relief system 212 may be discussed in greater detail hereinbelow with regard to
(16) With regard to
(17) The pressure relief system 212 may be configured to be integrated into the housing 604 of the valve arrangement, making the main valve and the relief valve integral to one another. In operation, service personnel may place the lever 214 behind the hook 216 so that the hook 216 may hold captive the lever 214 and pressure relief system 212 so that a test may be done on the sprinkler system without the pressure relief system 212 relieving the higher than normal operating pressure during a test, for instance. After the test, the service personnel may move the lever 214 out from behind the hook 216 to allow the pressure relief system 212 to function. In one embodiment, the pressure relief system 212 may be detachably coupled to the housing 604 so that service personnel may repair and/or replace the pressure relief system 212.
(18) In one embodiment, the lever 214 may be configured to be moved from behind the hook 216 and rotated away from the pressure relief system 212 to cause the pressure relief system 212 to open. In one embodiment, the opening the pressure relief system 212 by way of rotating the lever 214 may be part of an alarm test process.
(19) With regard to
(20) The relief inlet 705 may disposed within a side wall of the inlet 202 of the main valve to enable fluid communication between the main valve and the relief valve. The relief outlet 707 may disposed within a top wall of the first outlet 204 of the main valve to enable fluid communication between the relief valve and the main valve. In one embodiment, the relief inlet 705 and the relief outlet 707 may be substantially perpendicular to one another. In an exemplary embodiment such as shown, this integral and compact design may represent a compact, adaptable, unitary design that avoids the additional piping and connections of the prior art.
(21) In one embodiment, the at least one ring seal 710 may comprise a first ring seal 710d interposed between walls of the housing 604 and a first notch around a first perimeter of the body 704, a second ring seal 710c interposed between the walls of the housing 604 and a second notch around a second perimeter of the body 704, a third ring seal 710b interposed between the body 704 and a third notch around a third perimeter of the tensioner 708, and a fourth ring seal 710a interposed between the relief member 712 and a fourth notch around a fourth interior perimeter of the tensioner 708. The first perimeter may be on an interior portion of the body 704 adjacent to the relief inlet 705. The second perimeter may be on a middle portion of the body 704 and opposite the relief outlet 707 from the first perimeter.
(22) The lever 214 may be rotatably coupled to the relief member 712 by a connecting mechanism 714. In one embodiment, the connecting mechanism 714 may be a pin. One of skill in the art will appreciate that a plurality of mechanisms may exist to rotatably couple items together. The lever 714 may be rotatably coupled so that a lower portion 716 of the lever 214 extends beyond the connecting mechanism 714. In response to the lever 214 being rotated away from the pressure relief system 212, the lower portion 716 rotates up and into the pressure relief system 212 so that the relief member 712 is pulled away from the relief inlet 705 and into the open position.
(23) In one embodiment, the pressure relief system 212 may further comprise a nameplate 718 and a retaining ring 720. The nameplate 718 may define an exterior wall of the body 704 opposite the body 704 from the relief inlet 705. The retaining ring 720 may be disposed external to the nameplate 718 to seal and prevent leakage of the pressure relief system 212.
(24) In one embodiment, the tensioner 708 may comprise threads 722 to provide precise adjustment of the tensioner 708 and spring 706 in order to bias the relief member 712 to the closed position according to a predetermined standard and/or pressure threshold. The spring 706 and tensioner 708 may be configured to provide a force to the relief member 712 such that fluid communication between the relief inlet 705 and the relief outlet 707 may be prevented until pressure at the relief inlet 705 may exceed the pressure threshold. In one embodiment, the pressure threshold may be approximately 175 pounds, but of course by selecting various dimensions and materials, nearly any pressure threshold could be selected. In another embodiment, the pressure threshold may be a value set by service personnel or other operators of the sprinkler system.
(25) The foregoing outline features several embodiments so that those skilled in the art may better understand the aspects of the present disclosure. Those skilled in the art should appreciate that they may readily use the present disclosure as a basis for designing or modifying other processes and structures for carrying out the same purposes and/or achieving the same advantages of the embodiments introduced herein. Those skilled in the art should also realize that such equivalent constructions do not depart from the spirit and scope of the present disclosure, and that they may make various changes, substitutions, and alterations herein without departing from the spirit and scope of the present disclosure.