This application claims priority under 35 U.S.C. §119 to Swiss application no. 01720/08, filed 31 Oct. 2008, the entirety of which is incorporated by reference herein.
1. Field of Endeavor
The present invention relates to the field of steam turbines, and more particularly to a steam turbine with an operating temperature of more than 650° C.
2. Brief Description of the Related Art
Large steam power plants in the power range of about 1000 MW have steam turbine generator units which are divided into high-pressure turbines, medium-pressure turbines, and low-pressure turbines (see, for example, the article by L. Busse et al., “World's highest capacity steam turbosets for the lignite-fired Lippendorf power station”, ABB Review 6/1997, pages 13-22 (1997)).
Currently, a medium-pressure steam turbine of this order of magnitude has a valve unit on each side of the turbine, as is reproduced in
The valve units VE1 and VE2 from
For steam turbines with an operating temperature of >650° C., the housing of the valve unit, which is exposed to the full steam pressure, has to be produced from a nickel-based alloy. This, however, has the following disadvantages:
One of numerous aspects of the present invention relates to a steam turbine of the aforementioned type, which can avoid the disadvantages of conventional solutions and is characterized especially by a reduction of the size of the components which are to be cast from a nickel-based alloy.
Another aspect is directed towards dividing large cast pieces formed of one material into a plurality of small cast pieces of the same material which are produced separately and then interconnected in a materially-bonding manner. An important point relates to the division of a required large component of a nickel-based alloy into a plurality of smaller sub-components which are produced as separate cast parts and then interconnected. This procedure is particularly important and advantageous for very large turbines with an output power of for example >500 MW. The proposed procedure (more sub-components, although each smaller in dimensions or in weight) can be used in the case of steam turbines within the scope of the invention not only on the valve units, which are arranged on a steam turbine, and their housings, but also on the inner housing of the steam turbine itself.
According to another aspect, at least some of the housing sections are welded to each other for forming the housing. For nickel-based alloys, only a slight reduction of the creep limit results on the weld seam compared with steel when loaded by a high internal pressure, so that a large mechanical strength of the welded body is ensured. In this case, the housing sections are preferably welded to each other in planes which are oriented perpendicularly and/or parallel to the direction of flow of the steam.
Another aspect includes that the steam turbine is a medium-pressure steam turbine, and in that the housing which comprises a multiplicity of smaller housing sections is the inner housing of the medium-pressure steam turbine. In particular, the inner housing is divided into at least two shell sections along a parting plane which lies parallel to the axis of the steam turbine. For mechanical reinforcement of the inner housing, in this case provision can additionally be made for reinforcing elements, especially shrink-rings which are arranged in a distributed manner in the axial direction and tightly encompass the inner housing.
A further aspect includes that the steam turbine is a medium-pressure steam turbine. For controlling the steam feed to the medium-pressure steam turbine, at least one valve unit is arranged at a steam inlet of the medium-pressure steam turbine, and the housing, which is divided into a multiplicity of smaller housing sections, is the housing of the at least one valve unit.
Two steam inlets, which are opposite each other, are preferably provided on the medium-pressure steam turbine, wherein a valve unit is associated with each of the steam inlets, and wherein the housings of the two valve units are divided in each case into a multiplicity of smaller housing sections.
According to a further aspect, each valve unit comprises a first valve and a second valve which are connected in series in the direction of flow and accommodated together in the housing, wherein the first valve is formed as a stop valve and the second valve is formed as a control valve.
In particular, the housing of each valve unit has in each case an essentially spherical housing section for the first and second valve, wherein the spherical housing sections are divided in each case into a number of shell sections, which are interconnected in each case by at least one weld seam which extends in the direction of flow.
Furthermore, the housing of each valve unit has a steam feed line which leads to the first valve, and the steam feed line is formed in each case as a one-piece housing section and is connected to the housing section of the first valve by a circumferential weld seam.
Furthermore, the housing of each valve unit has a connecting port which projects from the second valve, and each connecting port is formed as a one-piece housing section and is connected to the housing section of the second valve by a circumferential weld seam.
For mechanical reinforcing of the housing, in order to achieve high mechanical strength despite the reduction in material, provision can be made for reinforcing elements, especially in the form of shrink-rings which tightly encompass the housing at different points, especially in the region of the spherical housing sections.
For reducing the portion of nickel-based alloy it is also conceivable, however, according to another aspect of the invention, to form the housing of each valve unit as an inner section of a double-walled housing construction, wherein the inner section is formed of a nickel-based alloy and the outer section is formed of a steel.
A further aspect includes that the steam turbine is a medium-pressure steam turbine, for controlling the steam feed to the medium-pressure steam turbine, at least one valve unit is arranged on the medium-pressure steam turbine, and the valve unit comprises at least two parallel-operating valves of the same type. By the division of a valve into two parallel valves, the valves can be of smaller design, which leads to a corresponding reduction in the size of the associated cast sections. The at least two valves are preferably formed as control valves to which the steam is fed separately and downstream of which the steam is merged.
The at least two valves can also be formed, however, as stop valves, to which the steam is fed separately, wherein a third valve, which is formed as a control valve, is arranged downstream of the two stop valves in the direction of flow and at which the steam from the two stop valves is merged.
The two stop valves are preferably connected to the one control valve via connecting lines, and the control valve is connected to the steam turbine via a connecting port, and the connecting lines are oriented perpendicularly to the connecting port.
Alternatively, the connecting lines together with the connecting port can also form, however, a configuration in the shape of a “Y”.
Another alternative is that the connecting lines together with the connecting port form a fork-shaped configuration.
The invention is subsequently to be explained in more detail based on exemplary embodiments in conjunction with the drawing. In the drawings,
In
So that the valve unit VE1 withstands the internal pressures of the through-flowing steam, the half-shells G21, G22 and G31, G32 are interconnected by (longitudinal) weld seams S2 and S4 which extend parallel to the direction of flow. The housing sections G1, . . . , G4 in their turn are connected by weld seams S1, S3 and S5 which extend in the circumferential direction.
In order to mechanically reinforce the longitudinally welded, spherical housing sections G2 and G3, outer reinforcing elements, especially shrink-rings 20, 21 according to FIG. 3, can be additionally provided or shrunk onto the pipe connectors of these housing sections. Axially screwed flanges, however, may also be used alternatively or additionally to the shrink rings 20, 21 for reinforcing. Although in
It would be advantageous if the shrink-rings 20, 21 were to have a thermal expansion coefficient which is larger in comparison to the housing G (for example rings formed of austenitic steel for a housing of a nickel-based alloy). Alternatively to this, the rings could also be assembled from ring segments, however, which can be installed one after the other, as is described and disclosed, for example, in publication DE-A1-197 58 160.
In order to even further reduce the weight of the individual cast pieces or housing sections of nickel-based alloy, it is advantageous to produce colder parts of these sections from a cheaper steel with expansion coefficients which are similar to the nickel-based alloy, such as from a 1-2% CrMoV cast steel. The similar thermal expansion coefficients ensure that there are fewer stresses in the component during welding and during operation.
Further improvements can be achieved if the valve units are formed with double walls. In this case, only the inner section is constructed from a nickel-based alloy with longitudinal weld seams and if necessary is additionally reinforced with shrink-rings. The outer section is produced from steel and if necessary is reinforced by flanges and/or longitudinal weld seams and/or shrink-rings. In the gap between the walls a medium would then circulate in order to limit the high temperatures to the inner section and to reduce the thermal conduction to the outer section. The heat which is absorbed by this medium could then be used for improving the efficiency of the steam-cyclic process.
The gap between the inner and outer sections can especially be filled with cooling steam, wherein the pressure of the cooling steam can be greater than or less than the steam pressure inside the inner section. Another variant empties the gap, for example, by connecting the outer section to the condenser via a pipeline, as a result of which a vacuum is almost created within the gap. This vacuum acts as thermal insulation between the inner and outer sections and leads to a lower temperature in the outer section. This insulating effect can be augmented by the inner wall of the outer section being provided with a highly reflective surface, for example, by a coating, since the heat transfer as a result of radiation is consequently reduced.
A reduction of the individual sub-components can also be achieved, however, by a “functional” breaking-down by, for example, two or more parallel-operating smaller valves with smaller spherical housing sections being used instead of a larger valve with a large spherical housing section in a valve unit of a steam turbine. The steam for the steam turbine would then be fed separately to the two or more smaller valves and merged downstream of the valves (for example by a “Y”-shaped pipe section) and fed to the steam turbine at one point. Such valve distributions can be undertaken on the two sides of the steam turbine if the feed is carried out on opposite sides.
Also, in the case of a configuration of the valve units according to
In
In an alternative configuration (
If one of the principles of the invention is applied to the inner housing 12 of the steam turbine 10 (
While the invention has been described in detail with reference to exemplary embodiments thereof, it will be apparent to one skilled in the art that various changes can be made, and equivalents employed, without departing from the scope of the invention. The foregoing description of the preferred embodiments of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed, and modifications and variations are possible in light of the above teachings or may be acquired from practice of the invention. The embodiments were chosen and described in order to explain the principles of the invention and its practical application to enable one skilled in the art to utilize the invention in various embodiments as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the claims appended hereto, and their equivalents. The entirety of each of the aforementioned documents is incorporated by reference herein.
Number | Date | Country | Kind |
---|---|---|---|
01720/08 | Oct 2008 | CH | national |