IP Library › Granted Patent US 8,925,327
Granted Patent B2
US 8,925,327 · App. 13/605,169 · Granted Jan 6, 2015

Radial staging method and configuration of a liquid injection system for power plants

Inventors: Walter Kasimierz Omielan (Dorval, CA); Gabriel Taraboulsi (Dorval, CA); Chris Pin Harry (Dorval, CA)
Assignee: Rolls-Royce Power Engineering PLC
F02C7/1435F02C3/30F02C3/305F04D29/5846F04D29/705F05D2260/212F05D2270/16
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Quick Facts
Patent No.
US 8,925,327
App. No.
13/605,169
Granted
Jan 6, 2015
Kind
B2
Abstract

A turbine power plant employs a radial staging of a liquid injection system to provide a uniform fluid distribution, for use in wet compression. The liquid injection system can be actuated to inject liquid to various radial regions of an air intake case of the turbine power plant. During a stage one actuation, liquid is directed to a first radial region of the air intake case. During a stage two actuation, liquid is directed to the first radial region and also to a second radial region of the air intake case.

Claims (22)

1. A method of injecting liquid into an air intake case of a turbine power plant, said method comprising:

selecting among injection options including a stage one actuation, a stage two actuation, a stage three actuation, and a stage four actuation;

wherein, during a stage one actuation, liquid is directed to a first annular region of said air intake case, concentrically aligned with an operating axis of said turbine; during a stage two actuation, liquid is directed to the first annular region and also to a second annular region of said air intake case concentrically aligned with said operating axis; during a stage three actuation, liquid is directed to the first and second annular regions and to a third annular region distinct from either of the first or second annular regions; and, during a stage four actuation, liquid is directed to the third annular region and to a fourth annular region.

2. A method as defined in claim 1 , wherein the first and second annular regions are non-overlapping.

3. A method as defined in claim 1 , further comprising selectively varying the pressure of liquid flow.

4. A method as defined in claim 3 , further comprising increasing the flow of liquid to full strength at one of the annular regions.

5. A method as defined in claim 1 , further comprising orienting a flow of liquid in at least one annular region to spray toward an inlet of the air intake case.

6. A method as defined in claim 1 , further comprising orienting a flow of liquid in at least one annular region to spray away from an inlet of the air intake case.

7. A method as defined in claim 1 , further comprising orienting a flow of liquid in at least one annular region to spray toward the hub of the air intake case.

8. A method as defined in claim 1 , further comprising orienting a flow of liquid in at least one annular region to spray away from the hub of the air intake case.

9. A method of injecting liquid into an air intake case of a turbine power plant, said method comprising:

selecting among injection options including a stage one actuation, a stage two actuation, a stage three actuation, and a stage four actuation;

wherein, during a stage one actuation, liquid is directed to a first annular region of said air intake case, concentrically aligned with an operating axis of said turbine;

during a stage two actuation, liquid is directed to the first annular region and also to a second annular region of said air intake case concentrically aligned with said operating axis; during a stage three actuation, liquid is directed to the first and second annular regions and to a third annular region distinct from either of the first or second annular regions; and, during a stage four actuation a flow of liquid to at least the first, second, and third annular regions is increased to full strength.

10. A method of injecting liquid into an air intake case of a turbine power plant, said method comprising:

selecting among injection options including no actuation, a stage one actuation, a stage two actuation, a combined actuation, a stage three actuation, and a stage four actuation;

wherein, during a stage one actuation, liquid is directed to a first annular region of said air intake case, concentrically aligned with an operating axis of said turbine; during a stage two actuation, liquid is directed to a second annular region of said air intake case distinct from and concentrically aligned with the first annular region; during a combined actuation, liquid is directed to each of the first and second annular regions of said air intake case; during a stage three actuation, liquid is directed to the first and second annular regions and to at least a third annular region distinct from either of the first or second annular regions; and during a stage four actuation a flow of liquid to the first, second, and third annular regions is increased to full strength.

11. A method as defined in claim 10 , wherein the first and second annular regions are non-overlapping.

12. A method as defined in claim 10 , wherein, during the stage three actuation, liquid is directed also to a fourth annular region.

13. A method as defined in claim 10 , further comprising selectively varying the pressure of liquid flow.

14. A method as defined in claim 13 , further comprising increasing the flow of liquid to full strength in one of the annular regions.

15. A method as defined in claim 10 , further comprising orienting the liquid flow in at least one of the annular regions to spray in a predetermined direction.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2015
From: ROLLS-ROYCE POWER ENGINEERING PLC
To: INDUSTRIAL TURBINE COMPANY (UK) LIMITED
Reel/Frame 035035/0491 →
Continuity (2)
Division 12329124 · Dec 5, 2008
Related Publication 20120324904A1 · Dec 27, 2012