Combustion turbine with airfoil having enhanced leading edge diffusion holes and related methods
View Patent ↗A combustion turbine 20 includes a housing 22 and a plurality of airfoils 40 within the housing. Each airfoil 40 has a leading edge surface 42 and at least one interior cooling passageway 44 . A plurality of diffusion holes 46 extend from the at least one interior cooling passageway 44 to the leading edge surface 42 . Each diffusion hole 46 includes a proximal section 48 having a generally constant cross-sectional shape and a distal tapered section 50 that extends outwardly from the proximal section, tapering in a radially inward direction.
1. An airfoil for a combustion turbine comprising:
a leading edge surface;
at least one interior cooling passageway; and
a plurality of diffusion holes extending from the at least one interior cooling passageway to the leading edge surface;
each diffusion hole being defined by a proximal section having a generally constant cross-sectional shape, and a distal tapered section connected thereto to define a taper in a radially inward direction, wherein the cross-sectional shape of the distal tapered section has no taper in the radially outward direction.
2. A combustion turbine comprising:
a housing and a plurality of airfoils being radially positioned within said housing and being rotatable based upon a gas flow thereover, each airfoil having a leading edge surface, at least one interior cooling passageway, and a plurality of diffusion holes extending from the at least one interior cooling passageway to the leading edge surface;
each diffusion hole being defined by a proximal section having a generally constant cross-sectional shape, and a distal tapered section connected thereto to define a taper in a radially inward direction, wherein the cross-sectional shape of the distal tapered section has no taper in the radially outward direction.
3. A method for making diffusion holes in an airfoil for a combustion turbine, the airfoil having a leading edge surface and at least one interior cooling passageway, the method comprising:
forming a plurality of diffusion holes to extend from the at least one interior cooling passageway to the leading edge surface;
each diffusion hole being defined by a proximal section having a generally constant cross-sectional shape, and a distal tapered section connected thereto to define a taper in a radially inward direction, wherein the cross-sectional shape of the distal tapered section of each has no taper in the radially outward direction.
4. An airfoil for a combustion turbine comprising:
a leading edge surface;
at least one interior cooling passageway; and
a plurality of diffusion holes extending from the at least one interior cooling passageway to the leading edge surface;
each diffusion hole having a length L and being defined by a proximal section having a generally constant cross-sectional shape and diameter D, wherein a ratio R defined by L/D is in the range of about 8 to about 20, and a distal tapered section connected thereto to define a taper in a radially inward direction and no taper in the radially outward direction, wherein the distal tapered section opens at the leading edge surface in an oblong shape having a major dimension extending along the radially outward direction.
5. An airfoil for a combustion turbine according to claim 4 wherein the proximal section defines an axis inclined at an angle in a range of about 20° to about 35° from tangent to the leading edge surface.
6. An airfoil for a combustion turbine according to claim 4 wherein the cross-sectional shape of the distal tapered section tapers outwardly from the proximal section along the radially inward direction at an angle in a range of about 5° to about 20°.
7. An airfoil for a combustion turbine according to claim 4 wherein, for each diffusion hole, a ratio of a length of the diffusion hole to a diameter of the proximal section of the diffusion hole is in a range of about 10 to about 20.
8. An airfoil for a combustion turbine according to claim 4 wherein the cross-sectional shape of the distal tapered section defines a distinct angular transition with the proximal section.
9. A combustion turbine comprising:
a housing and a plurality of airfoils being radially positioned within said housing and being rotatable based upon a gas flow thereover, each airfoil having a leading edge surface, at least one interior cooling passageway, and a plurality of diffusion holes extending from the at least one interior cooling passageway to the leading edge surface;
each diffusion hole having a length L and being defined by a proximal section having a generally constant cross-sectional shape and diameter D, wherein a ratio R defined by L/D is in the range of about 8 to about 20, and a distal tapered section connected thereto to define a taper in a radially inward direction and no taper in the radially outward direction, wherein the distal tapered section opens at the leading edge surface in an oblong shape having a major dimension extending along the radially outward direction.
10. A combustion turbine according to claim 9 wherein the proximal section defines an axis inclined at an angle in a range of about 20° to about 35° from tangent to the leading edge surface.
11. A combustion turbine according to claim 9 wherein the cross-sectional shape of the distal tapered section tapers outwardly from the proximal section along the radially inward direction at an angle in a range of about 5° to about 20°.
12. A combustion turbine according to claim 9 wherein, for each diffusion hole, a ratio of a length of the diffusion hole to a diameter of the proximal section of the diffusion hole is in a range of about 10 to about 20.
13. A combustion turbine according to claim 9 wherein the cross-sectional shape of the distal tapered section defines a distinct angular transition with the proximal section.
14. A method for making diffusion holes in an airfoil for a combustion turbine, the airfoil having a leading edge surface and at least one interior cooling passageway, the method comprising:
forming a plurality of diffusion holes to extend from the at least one interior cooling passageway to the leading edge surface;
each diffusion hole having a length L and being defined by a proximal section having a generally constant cross-sectional shape and diameter D, wherein a ratio R defined by L/D is in the range of about 8 to about 20, and a distal tapered section connected thereto to define a taper in a radially inward direction and no taper in the radially outward direction, the distal tapered section of each opens at the leading edge surface in an oblong shape having a major dimension extending along the radially outward direction.
15. A method according to claim 14 wherein forming comprises forming each diffusion hole so that the proximal section of each defines an axis inclined at an angle in a range of about 20° to about 35° from tangent to the leading edge surface.
16. A method according to claim 14 wherein forming comprises forming each diffusion hole so that the cross-sectional shape of the distal tapered section of each tapers outwardly from its proximal section along the radially inward direction at an angle in a range of about 5° to about 20°.
17. A method according to claim 14 wherein forming comprises forming each diffusion hole such that a ratio of a length of the diffusion hole to a diameter of its proximal section is in a range of about 10 to about 20.
18. A method according to claim 14 wherein forming comprises forming each diffusion hole using an electro-discharge machining apparatus.
19. A method according to claim 14 wherein forming comprises forming each diffusion hole using a laser.