Claims
- 1. A turbine blade, through which cooling fluid flows, comprising:a plurality of flow ducts adjacently arranged in an efflux direction of the working fluid, the flow ducts extending between inlet flow openings on a radially inner blade root and further radially outwardly located outlet flow openings; a cooling fluid flow which is practically free of reversal relative to the radial direction; viewed in the efflux direction, a front flow duct whose outlet flow openings are introduced into a rubbing edge of the turbine blade, wherein at least one trailing edge duct is present whose cooling fluid flow has local transverse flow components at predetermined locations and, for which trailing edge duct, outlet flow openings are introduced into a trailing edge of the turbine blade; and wherein the resultant, effective overall cross-sectional area of the inlet flow openings is equal to the overall cross-sectional area of the outlet flow openings of a flow duct, and wherein the respective overall cross-sectional area corresponds to the internal cross section.
- 2. A turbine comprising a turbine blade as claimed in claim 1 for the rear region of a turbine and/or for a turbine with little cooling.
- 3. The turbine blade as claimed in claim 1, wherein at least one of a trailing edge duct and a front flow duct deflects, at least in its outer radial sections, from the radial direction in the efflux direction.
- 4. A turbine comprising a turbine blade as claimed in claim 1 for the rear region of a turbine.
- 5. A turbine comprising a turbine blade as claimed in claim 1 for a turbine with little cooling.
- 6. The turbine blade as claimed in claim 1, wherein a plurality of trailing edge ducts are present.
- 7. The turbine blade as claimed in claim 1, wherein at least one of a trailing edge duct and a front flow duct deflects, at least in sections, from the radial direction in the efflux direction.
- 8. The turbine blade as claimed in claim 3, wherein rounded deflection sections are present.
- 9. The turbine blade as claimed in claim 1, wherein a radially continuous trailing edge duct is present which includes both outlet flow openings introduced into the rubbing edge and outlet flow openings introduced into the trailing edge.
- 10. The turbine blade as claimed in claim 9, wherein the last trailing edge duct includes radially inwardly located outlet flow openings, introduced into the trailing edge, and wherein the radially continuous trailing edge duct includes outlet flow openings, located radially further outward and introduced into the trailing edge.
- 11. The turbine blade as claimed in claim 1, wherein the local, resultant, effective internal cross section is practically of the same size over the complete length of a flow duct, with the exception of negligible cross-sectional deviations relating to the flow resistance of the flow duct.
- 12. The turbine blade as claimed in claim 11, wherein the cross-sectional deviations are less than 20 percent of the internal cross section.
- 13. The turbine blade as claimed in claim 11, wherein the cross-sectional deviations are less than 10 percent of the internal cross section.
- 14. The turbine blade as claimed in claim 1, wherein, the last trailing edge duct viewed in the efflux direction, includes outlet flow openings introduced exclusively into the trailing edge.
- 15. The turbine blade as claimed in claim 14, wherein the last trailing edge duct includes radially inwardly located outlet flow openings, introduced into the trailing edge, and wherein a radially continuous trailing edge duct includes outlet flow openings, located radially further outward and introduced into the trailing edge.
- 16. The turbine blade as claimed in claim 14, wherein the last trailing edge duct ends before the rubbing edge radially inward at a radial distance.
- 17. The turbine blade as claimed in claim 16, wherein the last trailing edge duct includes radially inwardly located outlet flow openings, introduced into the trailing edge, and wherein a radially continuous trailing edge duct includes outlet flow openings, located radially further outward and introduced into the trailing edge.
- 18. The turbine blade as claimed in claim 1, wherein the transverse flow components are present in the efflux direction.
- 19. A turbine comprising a turbine blade as claimed in claim 18.
- 20. A turbine comprising a turbine blade as claimed in claim 18 for the rear region of a turbine.
- 21. A turbine comprising a turbine blade as claimed in claim 18 for a turbine with little cooling.
- 22. The turbine blade as claimed in claim 18, wherein at least one of a trailing edge duct and a front flow duct deflects, at least in sections, from the radial direction in the efflux direction.
- 23. The turbine blade as claimed in claim 18, wherein a plurality of trailing edge ducts are present.
- 24. The turbine blade as claimed in claim 18, wherein, the last trailing edge duct viewed in the efflux direction, includes outlet flow openings introduced exclusively into the trailing edge.
- 25. The turbine blade as claimed in claim 24, wherein the last trailing edge duct ends before the rubbing edge radially inward at a radial distance.
- 26. A turbine blade, through which cooling fluid flows, comprising:a plurality of flow ducts adjacently arranged in an efflux direction of the working fluid, the flow ducts extending between inlet flow openings on a radially inner blade root and further radially outwardly located outlet flow openings; a cooling fluid flow which is practically free of reversal relative to the radial direction; viewed in the efflux direction, a front flow duct whose outlet flow openings are introduced into a rubbing edge of the turbine blade, wherein at least one trailing edge duct is present whose cooling fluid flow has local transverse flow components at predetermined locations and, for which trailing edge duct, outlet flow openings are introduced into a trailing edge of the turbine blade; wherein the resultant, effective overall cross-sectional area of the inlet flow openings is equal to the overall cross-sectional area of the outlet flow openings of a flow duct, and wherein the respective overall cross-sectional area corresponds to the internal cross section, wherein, the last trailing edge duct viewed in the efflux direction, includes outlet flow openings introduced exclusively into the trailing edge, wherein the last trailing edge duct includes radially inwardly located outlet flow openings, introduced into the trailing edge, and wherein a radially continuous trailing edge duct includes outlet flow openings, located radially further outward and introduced into the trailing edge, and wherein the last trailing edge duct communicates with the radially continuous trailing edge duct by way of an opening.
- 27. A turbine blade, through which cooling fluid flows, comprising:a plurality of flow ducts adjacently arranged in a flow-off direction of the working fluid and adapted to run between inflow orifices on a radially inner blade root and outflow orifices lying radially outwardly of the inflow orifices; a cooling fluid flow which is virtually reversal free relative to the radial direction; a front flow duct, viewed in the flow-off direction, whose outflow orifices are introduced into a leading edge of the turbine blade; at least one trailing edge duct, whose cooling fluid flow includes, at predetermined points, local transverse flow components parallel to the flow-off direction and in which outflow orifices are introduced into a trailing edge of the turbine blade, wherein a resulting effective overall cross-sectional area of the inflow orifices is equal to an overall cross-sectional area of the outflow orifices of a flow duct and wherein the respective overall cross-sectional area corresponds to the inner cross section and the circumferential shape of a cross section of a flow duct changes over its entire length, wherein a radially continuous trailing edge duct is present, including outflow orifices in the rubbing edge and the trailing edge, and wherein, the last trailing edge duct communicates via an orifice, with the radially continuous trailing edge duct.
- 28. A turbine blade, through which cooling fluid flows, comprising:a plurality of flow ducts adjacently arranged in a flow-off direction of the working fluid and adapted to run between inflow orifices on a radially inner blade root and outflow orifices lying radially outwardly of the inflow orifices; a cooling fluid flow which is virtually reversal free relative to the radial direction; a front flow duct, viewed in the flow-off direction, whose outflow orifices are introduced into a leading edge of the turbine blade; and at least one trailing edge duct, whose cooling fluid flow includes, at predetermined points, local transverse flow components parallel to the flow-off direction and in which outflow orifices are introduced into a trailing edge of the turbine blade, wherein a resulting effective overall cross-sectional area of the inflow orifices is equal to an overall cross-sectional area of the outflow orifices of a flow duct and wherein the respective overall cross-sectional area corresponds to the inner cross section and the circumferential shape of a cross section of a flow duct changes over its entire length, wherein, the last trailing edge duct communicates via an orifice, with a radially continuous trailing edge duct.
- 29. A turbine blade, through which cooling fluid flows, comprising:a plurality of flow ducts adjacently arranged in a flow-off direction of the working fluid and adapted to run between inflow orifices on a radially inner blade root and outflow orifices lying radially outwardly of the inflow orifices; a cooling fluid flow which is virtually reversal free relative to the radial direction; a front flow duct, viewed in the flow-off direction, whose outflow orifices are introduced into a leading edge of the turbine blade; and at least one trailing edge duct, whose cooling fluid flow includes, at predetermined points, local transverse flow components parallel to the flow-off direction and in which outflow orifices are introduced into a trailing edge of the turbine blade, wherein a resulting effective overall cross-sectional area of the inflow orifices is equal to an overall cross-sectional area of the outflow orifices of a flow duct and wherein the respective overall cross-sectional area corresponds to the inner cross section and the circumferential shape of a cross section of a flow duct changes over its entire length.
- 30. A turbine, including the turbine blade of claim 29.
- 31. The turbine of claim 30, wherein the turbine blade is used in a relatively rear region of the turbine.
- 32. The turbine of claim 30, wherein the turbine is one with relatively little cooling.
- 33. The turbine blade as claimed in claim 29, wherein a radially continuous trailing edge duct is present, including outflow orifices in the rubbing edge and the trailing edge.
- 34. A turbine, including the turbine blade of claim 33.
- 35. The turbine of claim 34, wherein the turbine blade is used in a relatively rear region of the turbine.
- 36. The turbine of claim 34, wherein the turbine is one with relatively little cooling.
Priority Claims (1)
Number |
Date |
Country |
Kind |
00113298 |
Jun 2000 |
EP |
|
Parent Case Info
This application is the national phase under 35 U.S.C. § 371 of PCT International Application No. PCT/EP00/06502 which has an International filing date of Jun. 8, 2001, which designated the United States of America and which claims priority on European Patent Application number EP 00113298.4 filed Jun. 21, 2000, the entire contents of which are hereby incorporated herein by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/EP01/06502 |
|
WO |
00 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO01/98634 |
12/27/2001 |
WO |
A |
US Referenced Citations (7)
Foreign Referenced Citations (2)
Number |
Date |
Country |
0 034 961 |
Feb 1981 |
EP |
2152150 |
Jul 1985 |
GB |