IP Library › Granted Patent US 9,316,493
Granted Patent B2
US 9,316,493 · App. 14/105,251 · Granted Apr 19, 2016

Method and apparatus for determining gas turbine dampening cone inner diameter

Inventor: Praveen J. Matlapudi (Houston, TX)
Assignee: Siemens Energy, Inc.
G01B21/14F01D25/285G01B5/12G01M15/14F01D5/10
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Quick Facts
Patent No.
US 9,316,493
App. No.
14/105,251
Granted
Apr 19, 2016
Kind
B2
Abstract

Gas turbine engine generally ring-shaped dampening cone inner diameters, including those having spherical or other convex inner diameter surface profiles, are determined with a fixture including a displacement indicator having an axis of displacement in alignment with a locating pin. The dampening cone inner diameter surface is placed in contact with the locating pin on one side and a displacement point on the other side, so that the dampening cone inner diameter surface circumscribes a contact surface formed on the locating pin and the displacement point. The indicator displacement is correlated with the dampening cone inner diameter.

Claims (40)

1. A method for determining internal diameter of a ring-shaped, dampening cone for gas turbine engine, comprising:

providing a measurement fixture, which includes:

a base defining a self-standing, elevated, planar reference surface;

a single locating pin projecting upwardly from an elevated upper end of the defined planar reference surface, the locating pin defining a single contact surface;

a displacement indicator, coupled to base, having a displaceable point with a displacement range of motion below the contact surface of the locating pin, along a displacement axis that is parallel to the planar reference surface and aligned with the contact surface;

resting an axial end surface of a ring-shaped dampening cone of a gas turbine engine upon the elevated, planar reference surface of the base, supported in an elevated position by hanging an inner radial surface of the dampening cone in abutting engagement with only the single locating pin's single contact surface, while an opposite side inner radial surface thereof abuts against and circumscribes the displacement indicator's displaceable point; and

determining the dampening cone inner diameter by swinging, in pendulum-like fashion, the dampening cone relative to the locating pin single contact surface, the dampening cone inner diameter constituting distance from the locating pin's single contact surface to the displacement indicator maximum-extension displacement reading.

2. The method of claim 1 , further comprising swinging the dampening cone relative to the locating pin in order to obtain a maximum inner diameter displacement reading with the indicator.

3. The method of claim 2 , dampening cone swinging performed with at least one pusher assembly coupled to the measurement fixture that abuts against an outer diameter surface of the dampening cone.

4. The method of claim 3 , further comprising the dampening cone swinging performed by providing first and second opposed pusher assemblies coupled to the measuring plate in opposed orientation, respectively having selectively translatable first and second opposed pusher screws for capturing and swinging the dampening cone relative to the single locating pin in pendulum-like fashion, by translating the respective pusher screws in abutment with an outer diameter surface of the dampening cone, in order to obtain a maximum inner diameter displacement reading with the indicator, and for selectively locking the dampening cone in a fixed rocking position there between.

5. The method of claim 1 the displaceable point comprising a knife edge point having a linear edge oriented parallel to the locating pin contact surface.

6. The method of claim 5 the knife edge point linear edge oriented perpendicular to the planar reference surface.

7. The method of claim 1 , the planar reference surface defined by three reference buttons for abutment against the dampening cone axial end surface.

8. The method of claim 1 , dampening cone inner diameter determined by:

placing a reference dampening cone gage on the fixture and determining a displaceable point reference maximum-extension displacement reading;

replacing the reference dampening cone gage with an inspected dampening cone on the fixture and determining a second displacement point maximum-extension displacement reading; and

comparing the reference and second displacement maximum-extension displacement readings.

9. A method for inspecting dampening cone inner diameter using the method of claim 8 by:

comparing reference and second maximum-extension displacement readings;

designating the inspected dampening cone as meeting inner diameter specification if the reference and second maximum-extension displacement reading are within a permissible specification tolerance variance; and

failing the inner diameter specification if the reference and second maximum-extension displacement readings are outside the permissible specification tolerance variance.

10. The method of claim 1 , further comprising determining internal diameter at a plurality of circumferential positions about the dampening cone.

11. An apparatus for determining an inner diameter of a ring-shaped, dampening cone for gas turbine engine, comprising:

a base defining a self-standing, elevated, planar reference surface;

a single locating pin projecting upwardly from an elevated upper end of the defined planar reference surface, the locating pin defining a single contact surface;

a displacement indicator, coupled to base, having a displaceable point with a displacement range of motion below the contact surface of the locating pin, along a displacement axis that is parallel to the planar reference surface and aligned with the contact surface;

the apparatus determining an inner diameter of a ring-shaped, dampening cone for gas turbine engine when an axial end surface of the dampening cone rests upon the elevated, planar reference surface of the base, supported in an elevated position by hanging an inner radial surface of the dampening cone in abutting engagement with only the single locating pin's single contact surface, while an opposite side inner radial surface thereof abuts against and circumscribes the displacement indicator's displaceable point, the dampening cone inner diameter constituting distance from the locating pin's single contact surface to the displacement indicator maximum-extension displacement reading, as the dampening cone swings on the single contact surface, in pendulum-like fashion.

12. The apparatus of claim 11 , further comprising:

a measuring plate coupled to the base at an inclined angle;

three reference buttons coupled to the measuring plate for abutment against a dampening cone axial end surface, the reference buttons defining the planar reference surface.

13. The apparatus of claim 12 , further comprising at least one pusher assembly having a selectively translatable pusher screw coupled to the measuring plate, for swinging the dampening cone relative to the locating pin in pendulum-like fashion, by translating the pusher screw in abutment with an outer diameter surface of the dampening cone, in order to obtain a maximum inner diameter displacement reading with the indicator.

14. The apparatus of claim 13 , further comprising first and second opposed pusher assemblies coupled to the measuring plate in opposed orientation, respectively having selectively translatable first and second opposed pusher screws for capturing and swinging the dampening cone relative to the single locating pin in pendulum-like fashion, by translating the respective pusher screws in abutment with an outer diameter surface of the dampening cone, in order to obtain a maximum inner diameter displacement reading with the indicator, and for selectively locking the dampening cone in a fixed rocking position there between.

15. The apparatus of claim 12 , further comprising the single locating pin coupled to the measuring plate and the indicator coupled to the measuring plate by an indicator holder and split collar.

16. The apparatus of claim 11 , the displaceable point comprising a knife edge point having a linear edge oriented parallel to the locating pin contact surface.

17. The apparatus of claim 16 , the knife edge point linear edge oriented perpendicular to the planar reference surface.

18. The apparatus of claim 11 , further comprising:

first and second measuring plates coupled to the base at an inclined angle;

three reference buttons coupled to each respective measuring plate for abutment against a dampening cone axial end surface, the reference buttons defining respective first and second planar reference surfaces;

respective first and second single locating pins projecting upwardly from the respective first and second planar reference surfaces, each respective locating pin defining a contact surface; and

respective first and second displacement indicators respectively coupled to its respective first and second measuring plates; each indicator having a displaceable point defining a displacement axis that is aligned with its respective locating pin contact surface.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 8, 2014
From: MATLAPUDI, PRAVEEN J.
To: SIEMENS ENERGY, INC
Reel/Frame 031915/0864 →
Continuity (1)
Related Publication 20150168139A1 · Jun 18, 2015