Gas turbine blade and manufacturing method
10669858 ยท 2020-06-02
Assignee
Inventors
Cpc classification
F01D5/187
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/181
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/186
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D5/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A blade for a gas turbine is described, the blade comprising a trailing edge and a trailing edge cooling channel extending from a first upstream end to a second downstream end, in which the width of the trailing edge cooling channel in the direction perpendicular to the camber line of the blade varies and the narrowest width in the trailing edge cooling channel is at the first upstream end, so as to provide a blade where the trailing edge can be removed with a minimal change or no change in the cooling flow capacity through the trailing edge cooling channel. Related methods are also described.
Claims
1. A blade for a gas turbine, the blade comprising: a blade body having a leading edge, a trailing edge, and a pressure surface opposite from a suction surface, wherein the pressure and suction surfaces extend between the leading and trailing edges; and a trailing edge cooling channel extending between the pressure and suction surfaces in a downstream direction of a cooling fluid flow from a first upstream end to a second downstream end of the trailing edge cooling channel, wherein the trailing edge cooling channel is symmetrical along a camber line to the trailing edge, wherein a width of the trailing edge cooling channel in a direction perpendicular to the camber line of the blade varies in the downstream direction and the width is narrowest at the first upstream end; wherein the trailing edge is configured to be removed between the first upstream end and the second downstream end with a minimal change or no change in the cooling flow capacity through the trailing edge cooling channel.
2. The blade of claim 1, wherein the trailing edge cooling channel comprises a pin field with the pins in the pin field extending across the trailing edge cooling channel in the direction perpendicular to the camber line.
3. The blade of claim 2, wherein the pins nearest to the first upstream end are closer to one another than the pins nearest to the second downstream end.
4. The blade of claim 1, wherein the trailing edge cooling channel diverges in the downstream direction of the cooling fluid flow through the trailing edge cooling channel when in use.
5. The blade of claim 4, wherein the trailing edge cooling channel diverges for at least half of the distance from the first upstream end to the second downstream end.
6. The blade of claim 2, wherein the width of the trailing edge cooling channel in the direction perpendicular to the camber line is less in between the pins in the direction of the camber line than the width at the pins.
7. The blade of claim 1, wherein the narrowest width is situated more than 5%, more than 10%, more than 15% or more than 20% of the chord of the blade from the trailing edge.
8. A gas turbine comprising the blade of claim 1.
9. A system, comprising: a blade, comprising: a blade body having a leading edge, a trailing edge, and a pressure surface opposite from a suction surface, wherein the pressure and suction surfaces extend between the leading and trailing edges; a trailing edge cooling channel extending between the pressure and suction surfaces in a downstream direction of a cooling fluid flow from an upstream end to a downstream end of the trailing edge cooling channel, wherein the trailing edge cooling channel is symmetrical along a camber line to the trailing edge, wherein the trailing edge cooling channel increases in width in the downstream direction between a throat and the downstream end; and a plurality of pins disposed in the trailing edge cooling channel downstream from the throat, wherein the plurality of pins are spaced apart from one another via one or more gaps in the downstream direction, and the plurality of pins extend across the trailing edge cooling channel between the pressure and suction surfaces, wherein a geometry of the blade is configured to be modified by cutting through the blade along a portion of the trailing edge cooling channel having the plurality of pins.
10. The system of claim 9, wherein the trailing edge cooling channel increases in width in the downstream direction along at least half of a distance between the throat and the downstream end.
11. The system of claim 9, wherein the trailing edge cooling channel extends through the trailing edge of the blade body, and the trailing edge is the second downstream end of the trailing edge cooling channel.
12. The system of claim 9, wherein the one or more gaps vary between the plurality of pins.
13. The system of claim 12, wherein the one or more gaps comprise a first gap upstream from a second gap, and the first gap is smaller than the second gap.
14. The system of claim 9, comprising a turbomachine having the blade.
15. The system of claim 14, wherein the turbomachine comprises a turbine.
16. The blade of claim 2, wherein the pin field has the pins positioned downstream of the first upstream end.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) An embodiment of the invention will now be described by way of example only and with reference to the accompanying drawings in which:
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DETAILED DESCRIPTION
(9) Some gas turbine designs, particularly iterative designs made by the same manufacturer, may have the same overall blade size and blade attachment as blades in previous designs; in other words, it may be physically possible to insert a blade designed for one design of gas turbine into another design of gas turbine. However, aerodynamic features of the actual blade need to be a particular size or shape depending on factors that vary between designs such as hot gas flow capacities and pressure ratios, and therefore different blade designs are needed in different designs of gas turbine.
(10) The blade described herein is a new blade designed for one type of gas turbine that is also designed so that it can be modified for use in another gas turbine by cutting back the trailing edge. This relatively radical solution allows a single blade design to be used in two or more different designs of gas turbine engine. For example, in one design of gas turbine engine the blade could be used in its unaltered state, and a cut back version of the blade could be used in a second design of gas turbine engine. The ability to cut back a blade also allows for alteration of a blade to reflect a modification of an existing gas turbine or a change in use of a gas turbine or to achieve suitable performance characteristics for alternative applications. In one example, if the compressor massflow of a gas turbine is altered, then the blades could also be cut back. In another example, blades could be cut back to move between a maximum power optimised setup and a maximum efficiency optimised setup. In a third example, a gas turbine could move between optimised single cycle and combined cycle operation setups, or between optimised setups for different types of fuel by cutting back the blades, such as optimising for low energy fuel types (low Btu fuels).
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(13) It can be seen in
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(16) Widths a, b, c and f denote widths in the direction perpendicular to the camber line 20, so in the direction across the blade from the pressure surface 16 to the suction surface 18. Widths d and e denote widths in the direction of the trailing edge.
(17) In a method of producing a gas turbine blade, a blade is manufactured in a first step. The resulting blade is in a form that allows it to be used in a particular gas turbine, with a particular aerodynamic setup. Thermodynamic setup may alternatively or additionally be an important factor. Relevant factors in the aerodynamic setup can include flow capacities (maximum flow rates) and pressure ratios in the turbine. In a different gas turbine with the same type of blade but with a different aerodynamic setup, it is generally not possible to use the same blade. In a second step in the method of producing a gas turbine blade, a portion of the trailing edge of the blade is removed to provide a blade with an increased opening width between adjacent blades. This can provide a blade for a different aerodynamic setup, allowing the blade to be used in a different design of gas turbine. As a result, this method of producing a blade can allow for a single blade to be designed for two or more different designs of gas turbine engine, thereby avoiding the need for designing and testing multiple different blades. As discussed above, this method can also allow for adjustments in the performance characteristics within the same gas turbine, potentially allowing the same gas turbine and blades to be used in various different applications.
(18) Returning to
(19) The cutback may remove a total of at least 5%, at least 10%, at least 15% or at least 20% of the length of the chord 22. For example, a turbine vane 1 (in stage 1 of the turbine) is cut back by at least 10 mm, between 10 and 30 mm, between 15 and 25 mm or by at least 20 mm.
(20) Normally, the cutback would remove some but not all of the rows of pins, leaving at least one row of pins.
(21) Many blades have a thermal barrier coating (TBC) on the outside. A portion of the blade will be left without a TBC after the blade has been cut back. In some designs, a new layer of TBC may be applied to the blade to compensate. Alternatively, the cut back may be performed immediately before the TBC is applied to the blade during manufacture of the blade, so that the TBC is also applied on the cut back trailing edge.
(22) A gas turbine comprises a compressor, a combustor downstream of the compressor and a turbine. The blade 10 described above may be used as a blade (a rotating blade or a stationary vane) in the first stage of the turbine of a gas turbine. Blades as described could also be used in second or later stages of a turbine.
(23) The terms used herein to describe the general parts of a blade (such as leading edge, pressure surface and chord) correspond to the definitions as set out in the glossary of terms on pages 487 to 492 of The Design of High-Efficiency Turbomachinery and Gas Turbines by David Gordon Wilson, as published by the MIT press, Cambridge Massachussetts, USA, 5.sup.th printing (1991). The glossary of terms (pages 487 to 492) is hereby incorporated by reference.
(24) Several example structures are described herein, but various modifications to these structures are possible. For example, the trailing edge cooling channel 32 is shown as being symmetrical along the camber line, but this is not necessary. The trailing edge cooling channel extends from the cavity to the trailing edge and allows cooling fluid to flow from the cavity out of the blade (into the hot gas stream).
(25) The shape of the cross-section of the trailing edge cooling channel may be various shapes other than those described above. For example, the cavity and the trailing edge cooling channel may between them describe a de Laval nozzle, with a smoothed curvature (hourglass shape) with a converging section in the cavity upstream of the narrowest point in the trailing edge cooling channel and a diverging section downstream of the narrowest point. Similarly, the interpin throat (the throat 34 in
(26) The trailing edge cooling channel extends from an upstream end to a downstream end. The narrowest point in the trailing edge cooling channel is generally upstream of the majority of the pins.
(27) The pins 40 may be organised in various ways, with the layouts in
(28) Three distinct features are described in this application, namely a particular shape of trailing edge cooling channel (e.g.
(29) Although cutback lines 50 are shown between pins in the examples above, the cut could also be made through pins. The remaining portion of the pins that are cut through would help to support the trailing edge, therefore ensuring that mechanical integrity of the component as a whole remains unaffected or is not significantly affected.
(30) It is to be understood that even though numerous characteristics and advantages of various embodiments have been set forth in the foregoing description, together with details of the structure and functions of various embodiments, this disclosure is illustrative only, and changes may be made in detail, especially in matters of structure and arrangement of parts within the principles of the embodiments to the full extent indicated by the broad general meaning of the terms in which the appended claims are expressed. It will be appreciated by those skilled in the art that the teachings disclosed herein can be applied to other systems without departing from the scope and spirit of the application.