Shut-Off Valve For Liquefied Natural Gas
20170146134 ยท 2017-05-25
Inventors
Cpc classification
F25J1/0257
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K41/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/0022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K1/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K41/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25J1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention is directed to a valve for gas under pressure, for example at temperatures below 100 C., comprising a body with a gas inlet, a gas outlet and a passage connecting the inlet with the outlet; a shut-off device for closing the gas passage; a spindle designed for operating the shut-off device; and at least one gasket between the spindle and the body. The valve further comprises at least one cavity around the spindle for accumulating particles separated from the at least one gasket while operating the spindle and the shut-off device, for example at temperatures below 100 C.
Claims
1.-23. (canceled)
24. A valve for gas under pressure at temperatures below 100 C., said valve comprising: a body with a gas inlet, a gas outlet and a passage connecting the inlet with the outlet; a shut-off device for closing the gas passage; a spindle designed for operating the shut-off device; at least one gasket between the spindle and the body; and at least one cavity around the spindle for accumulating particles separated from the at least one gasket while operating the spindle and the shut-off device at temperatures below 100 C.
25. The valve according to claim 24 further comprising a first gasket and a second gasket, and a first cavity between the first and second gaskets.
26. The valve according to claim 25, wherein the first cavity is shaped as a groove on the external surface of the spindle.
27. The valve according to claim 26, wherein the cross-section of the first cavity is generally rectangular shaped with a width that is more than 5 times higher than the height.
28. The valve according to claim 27, wherein the cross-section of the first cavity is generally rectangular shaped with at least one of a width that is comprised between 1 mm and 8 mm, and a height that is comprised between 0.1 mm and 1 mm.
29. The valve according to claim 28, wherein the first cavity is in front of a cylindrical internal surface of the body that supports the spindle.
30. The valve according to claim 29, wherein the spindle comprises a shoulder axially abutting against a corresponding shoulder of the valve body, the first gasket being positioned between the shoulder of the spindle and the shoulder of the body.
31. The valve according to claim 30, wherein the shut-off device comprises a movable closure member housed in the valve body, the member cooperating with a seat around the gas passage in the body, a second cavity of the valve being formed in the member, the spindle engaging with the second cavity for actuating the member.
32. The valve according to claim 31, wherein the second cavity widens towards the spindle so as to be able to collect the particles separated from the first gasket while operating the spindle and the shut-off device.
33. The valve according to claim 32, wherein the second cavity widens to the maximum diameter of the shoulder of the spindle.
34. The valve according to claim 33, wherein the external surface of the shoulder of the spindle tapers towards the movable closure member, the internal surface of the second cavity on the member being shaped to conform to the tapering external surface of the shoulder.
35. The valve according to claim 34, wherein in the movable closure member is in threaded engagement with the body, and the engagement between the spindle and the second cavity is in rotation.
36. The valve according to claim 35, wherein the second cavity extends opposite to the spindle, beyond a proximal end of the spindle in the cavity to create a space for accumulating the particles from at least one of the first and second gaskets.
37. The valve according to claim 36, wherein the body comprises a main portion housing and guiding the movable closure member, and an auxiliary cap portion screwed on the main portion and bearing the spindle, the first gasket and/or the second gasket.
38. The valve according to claim 37, wherein the auxiliary cap portion comprises a bore portion surrounding the shoulder of the spindle and configured for receiving, when the shut-off device is in an open position, an end of the movable closure element corresponding to the opening of the second cavity.
39. The valve according to claim 38, wherein at least one of the shoulder of the spindle comprises a surface that extends radially and that contacts the first gasket, the surface being raised at its external portion, and the shoulder of the valve body comprises a surface that extends radially and that contacts the first gasket, the surface comprising at least one rib at its external portion that penetrates the gasket.
40. The valve according to claim 39, wherein the second gasket cooperates with a cylindrically shaped external surface of the spindle, at an axial position of the spindle that is more distant from the shut-off device than the first gasket.
41. The valve according to claim 40 further comprising: a hand wheel in rotational engagement with the spindle; a sleeve around the spindle between the hand wheel and the second gasket; and resilient biasing means acting between a distal end of the spindle and the hand wheel so as to axially press the hand wheel against the sleeve and thereby press the second gasket.
42. The valve according to claim 41, wherein the second gasket is a ring with a generally trapezoid cross-section with the larger base in contact with the spindle and the smaller base in contact with the body.
43. The valve according to claim 42, wherein one leg of the trapezoid cross-section of the second gasket is against a corresponding beveled surface of the body and the other opposite leg of the trapezoid is against a corresponding beveled surface of the sleeve.
44. The valve according to claim 43, wherein the larger base of the trapezoid cross-section of the second gasket comprises a recess at a middle portion.
45. The valve according to claim 44, wherein the resilient biasing means comprises stacked Belleville washers.
46. The valve according to claim 45 further comprising a cage housing the resilient biasing means and limiting the compression of the resilient means by the hand wheel.
Description
DRAWINGS
[0031]
[0032]
DETAILED DESCRIPTION
[0033] The valve 2 illustrated in
[0034] A shut-off device consisting essentially of a movable closure member 12 is provided in the body 4 for closing the gas passage 10. The movable closure member 12 is operated by a spindle 14 extending through the valve body 4.
[0035] The valve body 4 is comprised of a main portion 16 and a cap 18 that is attached to the main portion 16, for instance by screwing. The main portion comprises a bore that houses the movable closure member 12, the spindle 14 and the cap 18. The movable closure member 12 is generally cylindrically shaped and comprises at its external surface a male thread that engages a corresponding female thread on an internal surface of the bore of the main portion 16 of the body. It comprises a front surface with a recess housing an element 121 of softer material that cooperates in a tightly fashion with a valve seat 20 that is formed in the valve body 4 around the gas passage 10. The element 121 can be made of plastic material.
[0036] The movable closure member 12 comprises also a cavity 122 that opens in a direction that is opposite to the element 121 and the valve seat 20. This cavity 122 comprises a cylindrical internal surface that receives and engages in rotation only with a proximal end 141 of the spindle 14. The proximal end 142 of the spindle 14 and the internal surface of the cavity 122 of the closure member 12 can take various shapes which are as such well known from the skilled person, e.g. splines or any section that is not symmetrical in rotation.
[0037] The spindle 14 comprises a shoulder 142 that cooperates with a corresponding shoulder 181 and bore 182 on the cap 18. A generally ring shaped first gasket 22 is housed in the chamber delimited by these two shoulders 142 and 181 and the bore 182.
[0038] The external surface 143 of the shoulder 142 of the spindle 14 can be bevelled so as to taper towards the shut-off device 12. The shoulder 142 of the spindle 14 at the maximum diameter of the tapering external surface 143 closes the chamber that houses the first gasket 22 while keeping a minimal surface of contact between the external surface 143 of the spindle and the corresponding surface of the bore 182 of the cap 18.
[0039] In addition, the cap 18 forms a second bore 183, larger than the first one bore 182 and positioned in front of the tapering external surface 143 of the shoulder 142 of the spindle 14. This bore 183 can receive the raised end 123 of the movable closure member 12 that is opposed to the valve seat 20.
[0040] The cavity 122 in the movable closure member 12 widens towards the spindle 14, thereby forming the raised end 123. When operating the spindle 14, the frictional forces acting on the first gasket 22 are likely to produce particles of the elastomer material of the gasket. Under the condition that the valve is positioned upwardly as illustrated in
[0041] As is visible in
[0042] The valve 2 comprises a second gasket 24 that is ring-shaped and with a trapezoid cross-section. The larger base of the trapezoid cross-section is in contact with the external cylindrical surface of the spindle 14 whereas the smaller base is in contact with the internal surface of the cap 18. A sleeve 26 is slidably provided around the spindle 14 for pressing the second gasket 24.
[0043] The spindle 14 comprises at its external surface a groove 28, the groove being between the first gasket 22 and the second gasket 24. The groove forms a cavity that can accumulate particles separated from the gaskets 22 and 24, more particularly from the second gasket 24, similarly to the cavity 122 in the movable closure member 12. The groove 28 can have a generally rectangular cross shape with a width that is larger, in various instances at least 5 times larger, for example at least 10 times larger than the height.
[0044] The valve 2 comprises a hand wheel 30 that is in rotatable engagement with the distal end 144 of the spindle 14. The hand wheel 30 can slide along the spindle while being in rotatable engagement. To that end the spindle 14 can provide a cross-section with a non-circular outer surface, e.g. a square outer surface, that engages with a corresponding inner surface of the hand wheel 30. A sliding or anti-friction washer 32 can be interposed between the lower surface of the hand wheel 30 and the upper surface of the sleeve 26. A stack of Belleville spring washers 38 is provided around the distal end 144 of the spindle 14, between a nut 34 that is engaged with the distal end, and the hand wheel 30. The spring washers 38 can be housed in an opened housing 36 that is interposed between the nut 34 and the springs 38 and that extends at the lateral surface of the springs up to close to the surface of the hand wheel that is in contact with the spring washers. The spring washers exert a biasing force on the hand wheel that is oriented downward, e.g., in the direction of the valve body so as to transmit that force to the sleeve 26 and to the second gasket 24. The second gasket 24 is thereby constantly under pressure so as to cooperate in a gas tight fashion with the spindle 14. The biasing force of the springs is also transmitted to the spindle 14 by means of the nut 34. The spindle 14 is then biased upwardly, e.g., in a direction opposite to the valve body and that presses the first gasket 22 between the shoulders 142 and 181, so as to provide a first gas tight barrier between the spindle 14 and the body 4.
[0045] The use of the housing 36 for the resilient biasing means 38 is interesting for it permits to keep the washers in position so as to work properly. It permits also to facilitate the assembly of the valve. In various instances, when tightening the nut 34 in order to pre-stress both first and second gaskets 22 and 24, the nut can be tighten until the housing 36 contacts the hand wheel 30, so as to ensure a minimum and also an adequate pre-stress of the gaskets. Any wear or matting of one or both of the gaskets will be compensated by the biasing force of the pre-stressed resilient means 38.
[0046] During operation of the valve, for example at low and very low temperatures, e.g., less than 100 C., or even less than 150 C., which is typical for liquefied natural gas (LNG), the material of the gaskets 22 and 24 becomes hard and stiff. The contact pressure between the gaskets and the spindle resulting from the mechanical pre-stress and/or the fluid pressure has for effect that the material of the gaskets can be subject to mechanical wear during rotation of the spindle, the wear resulting in the separation of material in small particles or even powder. These particles can accumulate at some places in the valve, for example between moving parts and non-moving parts, leading to an increase of the operating torque or even a blocking of the valve. The cavity 28 formed on the outer surface of the spindle 14 can accumulate these particles and avoid a blocking of the spindle 14. In case the valve is in an upright position as illustrated in the
[0047]
[0048] It is exemplarily illustrated in
[0049] It is exemplarily illustrated in
[0050] Still in
[0051] In various embodiments, the different elements of the valve 2, like the main body 16, the plug 18, the spindle 14 and/or the movable closure element 12 can be made of brass, steel and/or stainless steel. In various embodiments, some elements, such as the movable closure element 12 and/or the spindle 14 can be coated with Teflon so as to lower the frictional forces.