This disclosure relates generally to valves and, more particularly, to apparatus to visually indicate a leak from a relief valve.
Relief valves are often used to control or limit the pressure in pipes to which they are connected by releasing any pressure built up within the pipes (e.g., when an on/off valve or pressure regulator leaks). Various apparatus and/or methods have been developed to indicate when there is a leak via a relief valve to an operator or other plant personnel to be able to identify and appropriately respond to such a leak.
Apparatus to visually indicate a leak from a relief valve are disclosed. In one example, an apparatus is disclosed that includes a pipe plug having a head and a shaft. The pipe plug is to attach to a relief valve. An opening is to extend through the head and shaft. The apparatus also includes a first flexible membrane to cover an end of the opening. In some examples, the first flexible membrane is to expand when fluid is released via the relief valve into the opening of the pipe plug. In some examples, the first flexible membrane includes a hole to release pressure built up in the opening by the fluid released via the relief valve. In some examples, the first flexible membrane is to expand to a first size under a first pressure in the opening and expand to a second size under a second pressure in the opening. In such examples, a size of the expanded membrane is to indicate an amount of pressure released by the relief valve.
In some examples, the apparatus further includes a second flexible membrane disposed beneath the first flexible membrane. The second flexible membrane to be a different color than the first flexible membrane. In some such examples, an opacity of the first flexible membrane is to decrease when the first flexible membrane is expanded to expose the second flexible membrane. In other such examples, the first flexible membrane is to burst when a pressure in the opening expands the first flexible membrane beyond a failure point to expose the second flexible membrane. In yet other such examples, the first flexible membrane is to burst when a pressure in the opening expands the first flexible membrane beyond a failure point to expose the head of the pipe plug, the head of the pipe plug to be a different color than the first flexible membrane.
In some examples, the apparatus also includes an o-ring to secure the first flexible membrane over the opening of the pipe plug. In some examples, the first flexible membrane is secured to the pipe plug via at least one of an adhesive or welding. In some examples, the first flexible membrane is to glow in the dark. In some examples, the relief valve and the pipe plug are to be disposed within a transparent tube that is sealed off from an external environment.
Another example apparatus disclosed herein includes a pipe plug including a head and a threaded shaft. The pipe plug is to be threaded to be coupled to a relief valve. An opening is to extend through the shaft and the head of the pipe plug. The apparatus also includes a first flexible membrane to be secured to the head of the pipe plug to enclose the opening. In some examples, the first flexible membrane is to inflate under pressure produced by fluid released by the relief valve into the opening. In some examples, the first flexible membrane includes a hole to release excess pressure within the opening. In some examples, the apparatus further includes a second flexible membrane disposed beneath the first flexible membrane. The first flexible membrane is to at least one of become translucent as the first flexible membrane expands or burst when the first flexible membrane expands beyond a failure point to expose the second flexible membrane. In such examples, the second flexible membrane to be a different color than the first flexible membrane. In some examples, the first flexible membrane is to burst when the first flexible membrane expands beyond a failure point to expose the head of the pipe plug, the head of the pipe plug to be a different color than the first flexible membrane. In some examples, the first flexible membrane is secured over the head of the pipe plug via at least one of an o-ring, an adhesive or welding.
In another example disclosed herein, an apparatus includes a pipe plug to be fastened to a relief valve. The pipe plug is to have an opening extending through the pipe plug to enable a fluid released by the relief valve to pass through the pipe plug. The apparatus further includes a flexible membrane secured to the pipe plug to cover an end of the opening opposite the relief valve. The flexible membrane is to inflate under pressure of the fluid to visually indicate a release of the fluid.
Typically, when a relief valve is actuated to release pressure, the relief valve makes a loud hissing noise. However, in a production facility or processing plant where many noise producing processes are active and where many systems, devices, etc., may demand the attention of operators, sound (e.g., the aforementioned hissing noise) and/or its source may not be readily apparent. In some situations, operators may attach an electronic pressure indictor to send a signal to a control station to indicate when a relief valve has opened. In other situations, a filter delta pressure indicator incorporated into the system may pop up when the pressure difference across the filter increases above a set point indicative of a need to change the filter. While these methods provide a visual indication of pressure changes within a piping system they are complex and expensive. Another known approach involves taping one edge of a paper over the outlet of a relief valve to move when the relief valve is actuated. However, this is not visually appealing and the paper may be blown by the movement of air in the system from sources within the process space other than the relief valve outlet.
As shown in
As shown, the example visual leak indicator 300 is connected to the relief valve 402 via the threads 102. Through the process of threading the visual indicator 300 onto the relief valve 402, the o-ring 304 is compressed between the head 106 of the plug 200 and the relief valve 402. This compressive force passes through the membrane 302 to further secure the membrane 302 in place over the head 106 of the plug 200.
The relief valve 402 is shown with a disc 404 that is forced against a valve seat 406 via the force of a spring 408. Furthermore, the relief valve 402 is shown connected to a pipe 410. As fluid passes through the pipe 410, the fluid travels up the relief valve 402 until it reaches the disc 404 in sealing engagement with the valve seat 406. If pressure within the pipe 410 exceeds the sealing force produced by the spring 408, the disc 404 is forced upward to create a gap 412 between the disc 404 and the valve seat 406, thereby allowing fluid to pass through the relief valve 402 and reduce the pressure within the pipe 410. Furthermore, as shown in
However, in the example relief valve assembly 400, once fluid has been released through the relief valve 402, the fluid passes through the opening 202 of the visual leak indicator 300 until it reaches the membrane 302. As fluid pressure builds up within the visual indicator 300, the membrane 302 inflates into a generally curved or domed shape 414 (containing a generally hemispherical profile similar to at least a portion of an inflated balloon or bubble) as the flexible membrane 302 stretches or expands. To prevent the membrane 302 from bursting or tearing the hole 306 is placed within the membrane 302 to enable the pressure within the visual indicator 300 to be released, but not before the membrane 302 is inflated into the curved shape 414. In this manner, when the relief valve 402 is actuated by a pressure, the curved shape 414 is produced to provide a visual indication that the relief valve 402 has been actuated by an excessive pressure within the pipe 410.
Additionally, as stated above, the relief valve 402 may release fluid from the pipe 410 at different pressures. As a result, the curved shape 414 may vary in size to provide a visual indication of the severity of the pressure being released from the pipe 410. For example, in
Other alternative indications of the severity of pressure being released from the pipe 410 may be incorporated into the valve relief assembly disclosed herein. One alternative includes enabling the curved surface 414 to change color as the severity of the pressure released through the relief valve 402 increases. As the membrane 302 expands to form the curved surface 414, the color and/or opacity of the stretched membrane 302 may fade and/or become nearly clear and/or translucent. Accordingly, a color changing curved surface 414 may be accomplished by including a second membrane 602 under the first membrane 302 having a different color as illustrated in
In another alternative, multiple membranes 302, 602 may be included in an individual indicator 300 designed to burst at different pressures. For example, as the relief valve assembly 400 is actuated, each membrane 302, 602 inflates. At some point, the outer membrane 302 having one color may reach a failure point and burst, thereby revealing the inner membrane 602 having a second color. The different failure points of the membranes 302, 602 may be accomplished by varying how tight each membrane 302, 602 is initially stretched around the head 106 of the plug 200, the size of the hole 306, 604 within each membrane 302, 602 to release the built up pressure, the thickness of each membrane 302, 602, and/or the material used for each membrane 302, 602. The material used for any of the membranes 302 disclosed herein may include nitrile, latex, or any other suitable material with elastic properties.
Another alternative visual indicator 300 includes implementing a membrane 302 that can glow in the dark. A glow-in-the-dark membrane 302 may be accomplished by applying glow paint to the membrane 302 when assembling the visual indicator 300. The paint may be applied to an outer membrane 302 or a membrane 302 beneath the outer layer as described above. In some examples, the material of the membrane 302 has glow-in-the-dark properties.
As described thus far, the example relief valve assembly 400 releases pressure from the pipe 410 to the atmosphere. Accordingly, the fluid being released is typically required to be safe (i.e., non-toxic, non-flammable, etc). However, the relief valve assembly 400 described herein can be adapted in a piping system to enable the capture and/or containment of the fluid released by the relief valve assembly 400. In particular, the relief valve assembly 400 may function exactly the same way for harmful fluids. To contain the release of the harmful fluid, the entire relief valve assembly 400 may be housed within a transparent pipe or tube 700 that is sealed off from an external environment as illustrated in
The relief valve assembly 400 and the embodiments disclosed herein may be advantageously applied in settings where the fluid released by the example relief valve assembly 400 is a gaseous fluid. However, nothing in this disclosure limits the use of the disclosed relief valve assembly 400 in any suitable setting where non-gaseous fluids are released by the relief valve assembly 400.
Although certain example methods, apparatus and articles of manufacture have been described herein, the scope of coverage of this patent is not limited thereto. Such examples are intended to be non-limiting illustrative examples. On the contrary, this patent covers all methods, apparatus and articles of manufacture fairly falling within the scope of the appended claims either literally or under the doctrine of equivalents.
This patent claims the benefit of provisional application Ser. No. 61/582,027, which was filed on Dec. 30, 2011, and which is incorporated herein by reference in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
1846311 | Clare | Feb 1932 | A |
2297378 | Wittenberg | Sep 1942 | A |
2570655 | Druge | Oct 1951 | A |
2631607 | Keller | Mar 1953 | A |
3111930 | Zipper | Nov 1963 | A |
3241514 | Grimland | Mar 1966 | A |
3452708 | Richardson | Jul 1969 | A |
3459218 | Cranage | Aug 1969 | A |
3490488 | Grist | Jan 1970 | A |
3492968 | Workman, Jr. | Feb 1970 | A |
3703879 | Huthsing, Jr. | Nov 1972 | A |
3780693 | Parr | Dec 1973 | A |
3844310 | Brindisi | Oct 1974 | A |
4263929 | Kearney | Apr 1981 | A |
4366708 | Warihashi | Jan 1983 | A |
4579001 | Hosterman | Apr 1986 | A |
4606391 | Achterholt | Aug 1986 | A |
4819686 | Achterholt | Apr 1989 | A |
4887730 | Touzani | Dec 1989 | A |
4978947 | Finnegan | Dec 1990 | A |
5189979 | Popenoe | Mar 1993 | A |
5507311 | Combe | Apr 1996 | A |
5664601 | Chen | Sep 1997 | A |
5673563 | Albertson et al. | Oct 1997 | A |
5694117 | Sugarek | Dec 1997 | A |
5775358 | Fawcett et al. | Jul 1998 | A |
5852986 | Mackal | Dec 1998 | A |
6209749 | Guess | Apr 2001 | B1 |
7185955 | Dombroski | Mar 2007 | B2 |
8695631 | Hasegawa | Apr 2014 | B2 |
20070282181 | Findlay et al. | Dec 2007 | A1 |
20110079295 | Nunez et al. | Apr 2011 | A1 |
20120145248 | Huff et al. | Jun 2012 | A1 |
Number | Date | Country |
---|---|---|
1261048 | Jan 1972 | GB |
2069139 | Aug 1981 | GB |
2274919 | Aug 1994 | GB |
10196822 | Jul 1998 | JP |
2011057554 | May 2011 | WO |
Entry |
---|
PCT, “International Search Report,” issued in connection with PCT Application No. PCT/US2012/070818, dated May 7, 2013 (3 pages). |
PCT, “Written Opinion,” issued in connection with PCT Application No. PCT/US2012/070818, dated May 7, 2013 (7 pages). |
Number | Date | Country | |
---|---|---|---|
20130167952 A1 | Jul 2013 | US |
Number | Date | Country | |
---|---|---|---|
61582027 | Dec 2011 | US |