IP Library Granted Patent US 9,121,285
Granted Patent B2
US 9,121,285 · App. 13/479,935 · Granted Sep 1, 2015

Turbine and method for reducing shock losses in a turbine

Inventor: Neil Ristau (Simpsonville, SC)
Assignee: GENERAL ELECTRIC COMPANY
F01D5/141F01D5/145F05D2240/302F05D2240/307Y10T29/49238
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Quick Facts
Patent No.
US 9,121,285
App. No.
13/479,935
Granted
Sep 1, 2015
Kind
B2
Abstract

A turbine includes a rotor and a casing that circumferentially surrounds at least a portion of the rotor. The rotor and the casing at least partially define a gas path through the turbine. A last stage of rotating blades is circumferentially arranged around the rotor and includes a downstream swept portion radially outward from the rotor. A method for reducing shock losses in a turbine includes removing a last stage of rotating blades circumferentially arranged around a rotor and replacing the last stage of rotating blades with rotating blades having a downstream swept portion radially outward from the rotor.

Claims (22)

1. A turbine comprising:

a. a rotor;

b. a casing circumferentially surrounding at least a portion of the rotor, wherein the rotor and the casing at least partially define a gas path through the turbine;

c. a last stage of rotating blades circumferentially arranged around the rotor, wherein each rotating blade of the last stage of rotating blades includes a downstream swept portion defined along a radial span of the rotating blade, wherein the downstream swept portion extends from a point defined along the span that is radially outward from the rotor to a tip of the rotating blade, wherein a radial length of the rotating blade continuously increases along a chord line of the rotating blade from a leading edge portion of the rotating blade to a trailing edge portion of the rotating blade.

2. The turbine as in claim 1 , wherein the downstream swept portion of each rotating blade of the last stage of rotating blades extends across at least 50% of the span of the rotating blade.

3. The turbine as in claim 1 , wherein the downstream swept portion of each rotating blade of the last stage of rotating blades begins at a point that is at least 90% of the span of the rotating blade from the rotor.

4. The turbine as in claim 1 , wherein each rotating blade in the last stage of rotating blades has a center of gravity axially downstream from a hub center of gravity.

5. The turbine as in claim 1 , wherein each rotating blade of the last stage of rotating blades has a leading edge at the rotor and a center of gravity axially downstream from the leading edge by at least 60% of a cord length of the rotating blade.

6. A turbine comprising:

a. a rotor;

b. a first stage of rotating blades circumferentially arranged around the rotor;

c. a stage of stator vanes downstream from the first stage of rotating blades;

d. a last stage of rotating blades downstream from the stage of stator vanes, wherein each rotating blade of the last stage of rotating blades includes a downstream swept portion defined along a radial span of the rotating blade, wherein the downstream swept portion extends from a point defined along the span that is radially outward from the rotor to a tip of the rotating blade, wherein a radial length of the rotating blade continuously increases along a chord line of the rotating blade from a leading edge portion of the rotating blade to a trailing edge portion of the rotating blade.

7. The turbine as in claim 6 , wherein the downstream swept portion of each rotating blade of the last stage of rotating blades extends across at least 50% of the span of the rotating blade.

8. The turbine as in claim 6 , wherein the downstream swept portion of each rotating blade of the last stage of rotating blades begins at a point that is at least 90% of the span of the rotating blade from the rotor.

9. The turbine as in claim 6 , wherein each rotating blade in the last stage of rotating blades has a center of gravity axially downstream from a hub center of gravity.

10. The turbine as in claim 6 , wherein each rotating blade in the last stage of rotating blades has a leading edge at the rotor and a center of gravity axially downstream from the leading edge by at least 60% of a cord length of the rotating blade.

11. A method for reducing shock losses in a turbine, comprising:

a. removing a last stage of rotating blades circumferentially arranged around a rotor;

b. replacing the last stage of rotating blades with rotating blades having a downstream swept portion radially outward from the rotor, wherein the downstream swept portion extends from a point defined along the span that is radially outward from the rotor to a tip of the rotating blade, wherein a radial length of the rotating blade continuously increases along a chord line of the rotating blade from a leading edge portion of the rotating blade to a trailing edge portion of the rotating blade.

12. The method as in claim 11 , further comprising replacing the last stage of rotating blades with rotating blades having a downstream swept portion, wherein the downstream swept portion of each rotating blade of the last stage of rotating blades begins at a point that is at least 90% of a span of the rotating blade from the rotor.

13. The method as in claim 11 , further comprising replacing the last stage of rotating blades with rotating blades having an axial length and a center of gravity, and the center of gravity is axially downstream from a hub center of gravity.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 17, 2023
From: GENERAL ELECTRIC COMPANY
To: GE INFRASTRUCTURE TECHNOLOGY LLC
Reel/Frame 065727/0001 →
CONFIRMATORY LICENSE Recorded Aug 30, 2013
From: GENERAL ELECTRIC COMPANY
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 031254/0485 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 24, 2012
From: RISTAU, NEIL
To: GENERAL ELECTRIC COMPANY
Reel/Frame 028266/0236 →
Continuity (1)
Related Publication 20130315726A1 · Nov 28, 2013