Shut-off rotary valve, particularly for gas turbine
09719603 ยท 2017-08-01
Assignee
Inventors
Cpc classification
F16K5/0605
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K49/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/0873
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K11/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A valve for use in a gas turbine. The valve includes at least one valve body, at least first, second and third fluid delivery pipes positioned on the valve body, at least one outlet pipe positioned on the valve body and a rotatable spherical shutter inside the valve body (and including first and second distribution channels formed within the shutter so as to allow the outlet pipe to be selectively connected to one of the delivery pipes during rotation of the shutter.
Claims
1. A valve for use in a turbine, the valve comprising: a valve body; at least first, second and third fluid delivery pipes positioned on the valve body; at least one outlet pipe positioned on the valve body; and a rotatable spherical shutter inside the valve body and comprising first and second distribution channels formed on the shutter such that: in a first position of the shutter, the first distribution channel is configured to allow fluid communication between the first delivery pipe and the outlet pipe; in a second position of the shutter, the first distribution channel is configured to allow fluid communication between the second delivery pipe and the outlet pipe; and in a third position of the shutter, the second distribution channel is configured to allow fluid communication between the third delivery pipe and the outlet pipe, wherein the first distribution channel of the shutter comprises a first portion that traverses the shutter for connection of the first delivery pipe and the outlet pipe in the first position of the shutter, and a second portion extending from the first portion and positioned on an external surface of the shutter for connection of the second delivery pipe and outlet pipe in the second position of the shutter.
2. The valve according to claim 1, wherein the first portion comprises a cylindrical portion.
3. The valve according to claim 1, wherein the valve body comprises a plurality of outlet pipes, the first and second distribution channels of the shutter being configured to allow supply to all the outlet pipes.
4. The valve according to claim 1, wherein the first and second distribution channels are formed on the shutter by machining.
5. The valve according to claim 1, wherein the first and second distribution channels of the shutter extend in separate planes to each other in order to avoid fluid communication between the channels.
6. The valve according to claim 1, wherein the shutter is rotatable about a transverse axis relative to the delivery pipes and the outlet pipe.
7. The valve according to claim 1, further comprising a cooling circuit located inside the valve body and configured to allow a cooling fluid to flow therein.
8. The valve according to claim 7, wherein the cooling circuit surrounds the shutter.
9. The valve according to claim 1, further comprising at least one evacuation drain extending from inside the valve body with an opening in a housing of the said valve body inside of which the shutter is fitted.
10. The valve according to claim 1, wherein the valve body is spherical.
11. A supply system for a turbine, comprising the valve according to claim 1.
12. The supply system according to claim 11, wherein the first portion comprises a cylindrical portion.
13. The supply system according to claim 11, wherein the second portion comprises a circumferential portion.
14. The valve according to claim 1, wherein the second portion comprises a circumferential portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Various aspects, advantages and features of the present invention will become apparent from the following detailed description, in conjunction with the drawings identified below, in which:
(2)
(3)
DETAILED DESCRIPTION OF THE INVENTION
(4) In
(5) The valve 10 includes of a body 12, a delivery pipe 14 configured to be supplied with liquid fuel, a first drain pipe 16 configured to be supplied with a drain liquid, a second drain pipe 18 configured to be supplied with a drain gas, an outlet pipe 20 configured to be connected to one or more fuel chambers of the turbine, and a spherical shutter 22 fitted inside a housing 24 of the valve body. The delivery pipes 14, drain pipes 16, 18 and outlet pipes 20 are individual pipes and are positioned on the valve body 12 and have an open end on the housing 24. In the illustrated embodiment, the valve body 12 has a generally square cross-section but other cross-sections may be used such as, for example, spherical. The valve body 12 and the shutter 22 may be made of metal, which facilitates the formation of a strong seal between these two elements.
(6) As will be described more in detail, the shutter 22 is rotatable relative to the valve body 12 in such a way so as to selectively connect the outlet pipe 20 to the inlet pipe 14 for the supply of a liquid fuel or to one of the drain pipes 16, 18 for the supply of a drain liquid or gas. The shutter 22 is rotatable about a transverse axis 22a with respect to the delivery pipes 14, the drain pipes 16, 18 and the outlet pipe 20.
(7) The shutter 22 includes a distribution channel 26 formed thereon and, as illustrated in
(8) The distribution channel 26 includes a cylindrical portion 26a of constant diameter which traverses the shutter 22 by plugging on either side of the housing 24 of the valve body 12. The cylindrical portion allows connection of the delivery pipe 14 and outlet pipe 20. In this first liquid fuel supply position illustrated in
(9) As illustrated in
(10) In this second drain liquid inlet position illustrated in
(11) The shutter 22 also includes a second distribution channel 28 that is configured to allow fluid communication between the drain pipe 18 and the outlet pipe 20 in a third position of the shutter relative to the valve body 12 as is illustrated in
(12) The distribution channel 28 includes a cylindrical portion of constant diameter traversing the shutter 22, with open ends on either side of the housing 24 of the valve body 12. The distribution channel 28 allows connection of the drain pipe 18 and outlet pipe 20. In this third drain gas supply position illustrated in
(13) The distribution channel 28 extends inside the shutter 22 in a separate plane to that of the distribution channel 26 so as to avoid any fluid communication between the two channels. Only the outlets of the distribution channels 26, 28 are located in the same plane so that each may be connected to the outlet pipe 20. The drain pipe 18 is located in a different plane to that of the delivery pipe 14 and the drain pipe 16.
(14) The shutter 22 can be activated by an actuator (not shown), for example, an air actuator, to control the positioning of the valves 10 into one of four separate positions, i.e. the first liquid fuel supply position, the second drain liquid supply position, the third drain gas supply position, or a closed position.
(15) The valve 10 includes a cooling circuit 30 positioned inside the valve body 12 and surrounding the shutter 22. A cooling fluid, for example water, circulates inside the circuit 30. The cooling circuit 30 includes four circulation pipes 32 to 38 formed directly within the valve body 12 and interconnected so as to form a square-shaped cooling circuit 30 inside of which is located the shutter 22. An inlet 40 is located on the valve body 12 at the intersection of the pipes 32, 36 and an outlet is located on the valve body 12 at the intersection of the pipes 34, 38. The cooling circuit 30 facilitates cooling of the delivery pipe 14 and the shutter 22 so as to minimize the risk of solidification of liquid fuel inside these two elements.
(16) The valve 10 also includes several evacuation drains 44 positioned on the valve body 12 and open to the housing 24 in order to allow, if necessary, evacuation of the liquid fuel and drain liquid that can flow between the housing 24 and the shutter 22.
(17) In the illustrated embodiment, there are four drains 44 but it should be understood that any number of drains may be provided and the layout of such drains may be different from that illustrated in
(18) In the embodiment illustrated in
(19) The shutter 22 includes distribution channels 60, 62 configured to simultaneously supply all the outlet pipes 20 and 50 to 56. Similarly to the previously described embodiment, the distribution channel 60 allows fluid communication between the outlet pipes 20 and 50 to 56 and the delivery pipe 14 or the drain pipe 16. The distribution channel 62 allows fluid communication between the outlet pipes 20 and 50 to 56 and the drain pipe 18. The distribution channels 60, 62 traverse the shutter 22 and has open ends on either side of the housing 24 of the valve body 12. The distribution channel 60 extends inside the shutter 22 in a separate plane to that of the distribution channel 62.
(20) The distribution channel 60 includes of first conical portion 60a of small diameter which extends to a second conical portion 60b of larger diameter that opens out towards the exterior of the valve body 12. Six bypass channels 60c to 60h extend from the end of the second portion 60b. In a first position of the shutter 22 relative to the valve body 12 as illustrated in
(21) The distribution channel 62 includes of a cylindrical portion 62a which extends to a conical portion 62b that opens out towards the exterior of the valve body 12. In a third position of the shutter 22 relative to the valve body 12 as illustrated in
(22) In both of the illustrated embodiments, the valve is described as being used in the liquid fuel supply system of the turbine. Alternatively, the valve may be used in the gaseous fuel supply system of the turbine or in other systems in which at least three different types of fluids are used.