EP1528224A2

Method and apparatus for cooling gas turbine engine rotor blade

Abstract

A rotor blade (40) for a gas turbine engine, includes a platform (62) including a radially outer surface (152) and a radially inner surface (144). An airfoil (60) extends radially outward from the platform. A shank (64) extends radially inward from the platform. A dovetail (66) extends from the shank such that an internal cavity is defined at least partially by the airfoil, the platform, the shank, and the dovetail. A cooling circuit extends through a portion of the shank for supplying cooling air from the cavity for impingement cooling of the platform radially inner surface.

EP1528224A2, drawing sheet 1
Sheet 1 of 8

Term

Term ended

Projected expiry passed 27 October 2024, 1.9 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

10 claims: 10 independent, 0 dependent

  1. 1
    A rotor blade (40) for a gas turbine engine (10), said rotor blade comprising:a platform (62) comprising a radially outer surface (152) and a radially inner surface (144);an airfoil (60) extending radially outward from said platform;a shank (64) extending radially inward from said platform;a dovetail (66) extending from said shank such that an internal cavity (84) is defined at least partially by said airfoil, said platform, said shank, and said dovetail;and a cooling circuit (140) extending through a portion of said shank for supplying cooling air from said cavity for impingement cooling of said platform radially inner surface.
  2. 2
    A rotor blade (40) in accordance with Claim 1 wherein said platform (62) further comprises a purge slot (170) formed within at least a portion of said platform radially inner surface (144), said purge slot configured to channel cooling air therethrough for purging a gap (48) defined between adjacent said rotor blade platforms.
  3. 3
    A rotor blade (40) in accordance with Claim 1 wherein said platform (62) further comprises a plurality of film cooling openings (150) extending between said platform radially outer and radially inner surfaces (152 and 144) for supplying cooling air for film cooling said platform radially outer surface.
  4. 4
    A rotor blade (40) in accordance with Claim 3 wherein said shank (64) extends axially between a forward sidewall (124) and an aft sidewall (126), at least a portion (160) of said forward sidewall is recessed to facilitate increasing pressure of cooling air supplied through said plurality of film cooling openings (150).
  5. 5
    A rotor blade (40) in accordance with Claim 4 wherein said shank (64) further comprises at least one angel wing (134) extending outward from said shank forward sidewall (124), at least a portion (160) of said shank forward sidewall radially inward from said at least one angel wing is recessed.
  6. 6
    A rotor blade (40) in accordance with Claim 1 wherein said platform (62) further comprises a convex-side wall (122), a concave-side wall (120) and a plurality of convection cooling openings (302), said convex-side and concave-side walls each extend between said platform radially outer and radially inner surfaces (152 and 144), said plurality of convection cooling openings extend between said cavity and said platform concave-side wall for supplying cooling air for convective cooling of said platform concave-side wall.
  7. 7
    A rotor blade (40) in accordance with Claim 1 wherein at least a portion (184) of said platform (62) is chamfered to facilitate reducing heat transfer coefficient of at least a portion of said platform.
  8. 8
    A rotor blade (40) in accordance with Claim 1 wherein said platform (62) further comprises a leading edge sidewall (90) and a trailing edge sidewall (92) connected together by a convex-side wall (96) and an opposite concave-side wall (94), at least a portion (178) of said trailing edge sidewall is recessed between said platform radially outer and radially inner surfaces (152 and 144) to facilitate platform trailing edge cooling.
  9. 9
    A rotor blade (40) in accordance with Claim 1 wherein said shank (64) further comprises a leading edge seal pin cavity (200) and a trailing edge seal pin cavity (202), each said pin cavity configured to facilitate sealing between adjacent said rotor blades.
  10. 10
    A rotor blade (40) in accordance with Claim 9 further comprising only one radial seal pin (204), said only one radial seal pin positioned within said trailing edge seal pin cavity (202) when said rotor blade is coupled within the gas turbine engine (10), said shank leading edge seal pin cavity (200) facilitates increasing platform film cooling.