1. Field of the Invention
The present invention relates to a tapered needle plug for a bleed port on a float operated pneumatic valve assembly for a pneumatic operated liquid level switch for tanks and vessels.
2. Description of the Related Art
There are a number of existing devices that include float operated valves. In each case, when the liquid level rises or falls in a tank or vessel, a float shifts a pneumatic valve to one of two positions. Some existing devices couple the float to the pneumatic valve using a magnet couple while others use mechanical linkage.
Some existing devices control the pneumatic valve by a pad or flap. Large forces are required to seal such a pad or flap, requiring the use of a powerful magnet where magnet coupling is used.
Based on the foregoing, it is desirable to provide a float operated pneumatic valve utilizing a tapered needle plug instead of a pad or flap. This would reduce the force needed to seal the port, which in turn makes the pneumatic valve more reliable and allows for lower operating specific gravities. It also means the coupling used to connect the float to the valve does not have to supply as much force, which makes for more coupling options, such as a weaker magnetic coupling.
Some existing pneumatic conical or tapered valves with a magnetic switch are direct acting, such as seen in Felgote (U.S. Pat. No. 2,893,427). It is desirable to provide a magnetic opposing pole snap switch with a block and bleed valve arrangement.
It would also be desirable to provide a tapered needle plug for a bleed port on a float operated pneumatic valve assembly wherein a block and bleed valve is externally adjustable.
In general, in a first aspect, the invention relates to a float operated liquid level switch having a body, a float assembly, a switch magnet, and a needle plug. The float assembly may be pivotally attached to the body at a pivot axis. The float assembly may have a first end and a second end opposite the first end, where the pivot axis is located between the first end and the second end. The float assembly may further comprise a float attached to the first end and a float magnet attached to the second end, such that raising the float causes the float magnet to lower and lowering the float causes the float magnet to rise. The switch magnet may be responsive to movement of the float magnet, and the needle plug may be responsive to movement of the switch magnet.
The switch magnet may be responsive to movement of the float magnet such that lowering the float magnet causes the switch magnet to rise and raising the float magnet causes the switch magnet to lower. Likewise, the needle plug may be responsive to movement of the switch magnet such that raising the switch magnet causes the needle plug to lower and lowering the switch magnet causes the needle plug to rise. Raising the float may cause the needle plug to lower and lowering the float may cause the needle plug to rise.
The switch magnet may be housed within the body. The float operated liquid level switch may further comprise a block and bleed valve controlled by the needle plug. The block and bleed valve may be a pneumatic valve.
In a second embodiment, a float operated liquid level switch comprises a body, a float assembly, a switch magnet assembly, a needle valve, and a block and bleed valve. The float assembly may be pivotally attached to the body at a pivot axis. The float assembly may have a first end and a second end opposite the first end, where the pivot axis is located between the first end and the second end. The float assembly may further comprise a float attached to the first end and a float magnet attached to the second end, such that raising the float causes the float magnet to lower and lowering the float causes the float magnet to rise. The switch magnet assembly may be pivotally attached to the body via a pivot shaft. The switch magnet assembly may comprise a first end and a second end opposite the first end, where the pivot shaft is located between the first end and the second end. The switch magnet assembly may further comprise a switch magnet attached to the first end and located proximate the float magnet, where the switch magnet and the float magnet have like poles such that they repel each other. The needle valve may comprise a needle plug, where the needle plug is attached to the second end of the switch magnet assembly. The block and bleed valve may be controlled by the needle valve.
The switch magnet assembly may be housed within the body. The block and bleed valve may have a seat assembly that is externally adjustable. The block and bleed valve may be a pneumatic valve.
The devices and methods discussed herein are merely illustrative of specific manners in which to make and use this invention and are not to be interpreted as limiting in scope.
While the devices and methods have been described with a certain degree of particularity, it is to be noted that many modifications may be made in the details of the construction and the arrangement of the devices and components without departing from the spirit and scope of this disclosure. It is understood that the devices and methods are not limited to the embodiments set forth herein for purposes of exemplification.
In general, in a first aspect, the present invention relates to a pneumatic operated liquid level switch assembly 10 for tanks and vessels used in a wide variety of industrial applications.
As seen in
The block and bleed valve assembly 30, shown in a cut-away view in
The diaphragm 40 has a top side and an opposed bottom side. When the bleed port is blocked by the tapered needle plug 22, gas flowing through the inlet 36 may pressurize both the top side and bottom side of the diaphragm 40. The bottom of the diaphragm 40 may have a larger surface area than the top. The larger surface area provided by the bottom of the diaphragm 40 may force the diaphragm 40 upward, shifting the diaphragm and the pin 15 up and shifting the diaphragm 40 into the diaphragm seat 42. This may seal off the lower seat 42 and at the same time open up the upper seat 44, thereby connecting the outlet port 35 to the exhaust port 37 and blocking the inlet port. This would be considered one position of the two position valve.
Movement of the needle plug 22 by movement of the switch magnet 18 may move the valve to an alternate position. When the bleed port is open by retraction of the tapered needle plug 22 by moving the tapered needle away from the bleed port, the bottom of the diaphragm 40 may be depressurized. Since the top of the diaphragm 40 continues to receive pressured air from the gas through the inlet port 36, a positive force may be created in the downward direction, shifting the diaphragm 40 and pin 15 downward and the upper seal 38 into the upper seat 44. This may seal the upper seat 44 and open the lower seat thereby connecting the inlet port to the outlet port 35 and blocking the exhaust port 37. This would be considered position two of the two position valve.
An optional externally adjustable seat assembly (not shown) may reside within an optional threaded opening (not shown) in the valve portion 30. The seat assembly may have external threads that mate with threads on the valve portion 30. Rotation of the seat assembly may cause advancement or retraction of the seat assembly within the valve portion 30.
Whereas, the devices and methods have been described in relation to the drawings, it should be understood that other and further modifications, apart from those shown or suggested herein, may be made within the spirit and scope of this invention.
This application is based on and claims priority to U.S. Provisional Patent Application Ser. No. 61/453,725, which was filed on Mar. 17, 2011.
Number | Name | Date | Kind |
---|---|---|---|
1745762 | Honiss | Feb 1930 | A |
1894367 | Corcoran | Jan 1933 | A |
2076591 | Rhodes et al. | Apr 1937 | A |
2113345 | Haymond | Apr 1938 | A |
2636508 | Resek et al. | Apr 1953 | A |
2752932 | Newboult | Jul 1956 | A |
2893427 | Felgate | Jul 1959 | A |
2944562 | Glasgow et al. | Jul 1960 | A |
3506028 | Kmiecik et al. | Apr 1970 | A |
3710613 | Innes et al. | Jan 1973 | A |
3822933 | Johnson | Jul 1974 | A |
3858602 | Brym | Jan 1975 | A |
3970099 | Murphy, Jr. et al. | Jul 1976 | A |
4481389 | Johnson | Nov 1984 | A |
4543979 | Olmsted et al. | Oct 1985 | A |
4557071 | Fah | Dec 1985 | A |
4577657 | Alexander | Mar 1986 | A |
4865073 | Kocher | Sep 1989 | A |
5080126 | De Rycke et al. | Jan 1992 | A |
6820763 | Bilskie et al. | Nov 2004 | B2 |
7412988 | Alexander | Aug 2008 | B1 |
Number | Date | Country | |
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61453725 | Mar 2011 | US |