Inflow contour for a single-shaft arrangement
10533438 · 2020-01-14
Assignee
Inventors
- Simon HECKER (Recklinghausen, DE)
- Martin KUHN (Neuss, DE)
- Christoph KÄSTNER (Oberhausen, DE)
- Alexander TODOROV (Mülheim, DE)
Cpc classification
F01D17/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D9/026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/31
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2270/17
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D9/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A steam turbine having an inflow ring channel which is connected to an inflow connecting piece in terms of flow technology. The inflow connecting piece is designed in such a way that an incoming flow is first slowed down, subsequently accelerated and simultaneously deflected.
Claims
1. A steam turbine, comprising a rotor mounted rotatably about an axis of rotation, a housing arranged about the rotor, and a flow duct formed between the rotor and the housing, an inflow region, which comprises an inflow connecting piece and issues into an annular inflow duct, wherein the annular inflow duct substantially comprises an annular duct cross section and is connected fluidically to the flow duct, wherein the annular inflow duct is formed about the axis of rotation, wherein the inflow connecting piece comprises an inflow cross section A1, through which a flow medium flows in a flow direction during operation, wherein an inflow cross section increases to a maximum cross section A2 in the flow direction and subsequently reduces to an annular inflow duct cross section A3, and wherein the following holds true: 1.1<A2/A1<1.7.
2. The steam turbine as claimed in claim 1, wherein the annular inflow duct substantially comprises a rotationally symmetrical form about the axis of rotation.
3. The steam turbine as claimed in claim 1, wherein the flow direction is formed substantially tangentially to the annular inflow duct in a region of the inflow connecting piece.
4. The steam turbine as claimed in claim 1, wherein the following holds true:
0.7<A3/A1>1.0.
5. The steam turbine of claim 1, wherein the inflow connecting piece is the sole inflow connecting piece that issues into the annular inflow duct.
6. A method for optimizing flow conditions in an inflow region of a steam turbine, wherein the steam turbine comprises a rotor mounted rotatably about an axis of rotation, a housing arranged about the rotor, and a flow duct formed between the rotor and the housing, and further comprises the inflow region, which comprises an inflow connecting piece and issues into an annular inflow duct, wherein the annular inflow duct substantially comprises an annular inflow duct cross section A3 and is connected fluidically to the flow duct, wherein the inflow connecting piece comprises an inflow cross section A1, through which a flow medium flows in a flow direction during operation, the method comprising: increasing an inflow cross section to a maximum cross section A2 in the flow direction, and subsequently reducing the inflow cross section to the annular inflow duct cross section A3, wherein the following holds true: 1.1<A2/A1<1.7.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF INVENTION
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(9) A further housing, for example an outer housing, can be arranged about the inner housing. A flow duct (not shown) is formed between the rotor and the housing. The rotor comprises a plurality of rotor blades on its surface. The inner housing has a plurality of guide vanes on its inner surface. The flow duct is therefore formed by the guide vanes and rotor blades, with thermal energy of the steam being converted into rotational energy of the rotor during operation.
(10) The inflow region furthermore has an inflow connecting piece 9. The inflow connecting piece 9 is substantially a tubular connection which connects a steam line (not shown) to the annular inflow duct 3. The inflow connecting piece 9 has an individual geometrical shape. This shape will now be described in more detail. The initial contour 10 forms the connection to a tubular steam line (not shown). The cross section of the initial contour 10 may therefore be circular. Other geometrical tubular contours are also possible, however. This initial contour 10 comprises a lower connecting piece delimitation 11, which is formed in such a manner as to adjoin in the 6 o'clock position 5. That is to say that the lower connecting piece delimitation 11 is directed tangentially with respect to the axis of rotation 2 to the outer delimitation 4. In this case, the lower connecting piece delimitation 11 can by all means be arranged in such a way that, in the vicinity of the initial contour 10, it is arranged below the outer delimitation 4 at the 6 o'clock position 5. The lower connecting piece delimitation 11 at the initial contour 10 is therefore lower by a height distance 12 than the outer delimitation 4 in the 6 o'clock position 5.
(11) The inflow connecting piece 9 furthermore comprises an upper connecting piece delimitation 13. The upper connecting piece delimitation 13 begins from the initial contour 10 and describes a semicircular arc upward to the 3 o'clock position 7. The upper connecting piece delimitation 13 adjoins the 3 o'clock position 7 tangentially to the outer delimitation 4. The inflow connecting piece 9 therefore issues into the annular inflow duct 3. The annular inflow duct 3 substantially has an annular duct cross section A3 (not shown in greater detail) and is connected fluidically to the flow duct (not shown). For reasons of clarity,
(12) At the initial contour 10, the inflow connecting piece 9 has an inflow cross section A1. The inflow cross section A1 can have a circular or else an oval shape. During operation, a flow medium, in particular steam, flows through the steam turbine in a flow direction 16 into the annular inflow duct 3. The flow of the steam into the annular inflow duct is complex and will be described in more detail hereinbelow in
(13) In this respect, the following holds true: 1.1<A2/A1<1.7 and 0.7<A3/A1<1.0.
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(17) Although the invention has been illustrated and described in more detail by the preferred exemplary embodiment, the invention is not limited by the disclosed examples, and other variations can be derived therefrom by a person skilled in the art without departing from the scope of protection of the invention.