IP Library Granted Patent US 8,474,269
Granted Patent B2
US 8,474,269 · App. 12/524,788 · Granted Jul 2, 2013

Method of detecting a partial flame failure in a gas turbine engine and a gas turbine engine

Inventor: Vili Panov (Lincoln, GB)
Assignee: Siemens Aktiengesellschaft
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Quick Facts
Patent No.
US 8,474,269
App. No.
12/524,788
Granted
Jul 2, 2013
Kind
B2
Abstract

A method of detecting a partial flame failure in a gas turbine is provided. The method includes a gas duct to guide a propulsion gas and several combustors, each combustor leads into the gas duct and includes a burner. The method includes measuring a first temperature over time at each of at least two probing points located downstream from the combustors in the gas duct, measuring a second temperature over time in each of at least two of the burners, and detecting a partial flame failure from the first temperature measurements and the second temperature measurements, wherein the detecting of a partial flame failure includes determining a first detection parameter, the first detection parameter is determined from a rate of change of a variation between the first temperature measurements at different probing points. A gas turbine including temperature sensors to detect a partial flame failure is also provided.

Claims (50)

1. A method of detecting a partial flame failure in a gas turbine engine, the gas turbine engine includes a gas duct to guide a propulsion gas and includes a plurality of combustors, the method comprising:

measuring a first temperature over time at each of at least two probing points located in the gas duct downstream from the plurality of combustors;

measuring a second temperature over time in each of at least two of a plurality of burners; and

detecting a partial e failure from the first temperature measurement and the second temperature measurement,

wherein each of the plurality of combustors leads into the gas duct and includes a burner, and

wherein the detecting of the partial flame failure includes determining a first detection parameter, the first detection parameter is determined from a first rate of change of a first variation between a plurality of first temperature measurements at a plurality of different probing points whereby the first detection parameter is determined by calculating a smoothed first rate of change of a first variation,

wherein the detecting of the partial flame failure further includes determining a second detection parameter, and

wherein the second detection parameter is determined from a second variation between a plurality of second rates of change of a plurality of second temperature measurements in a plurality of different burners.

2. The method as claimed in claim 1 ,

wherein the second detection parameter is determined by calculating a third variation of a plurality of smoothed second rates of change.

3. The method as claimed in claim 2 ,

wherein the first detection parameter is compared to a first threshold,

wherein the second detection parameter is compared to a second threshold, and

wherein the partial flame failure is declared when the first detection parameter exceeds the first threshold and when the second detection parameter exceeds the second threshold.

4. The method as claimed in claim 3 ,

wherein the partial flame failure is declared when the first detection parameter exceeds the first threshold for a first predetermined number of consecutive samples of the first detection parameter and when the second detection parameter exceeds the second threshold for a second predetermined number of consecutive samples of the second detection parameter.

5. The method as claimed in claim 1 ,

wherein the second temperature is measured at a tip of the burner facing into the combustor.

6. The method as claimed in claim 1 ,

wherein the gas turbine engine further includes a power turbine driven by the propulsion gas, the power turbine followed by an exhaust duct, and

wherein the at least two probing points measuring the first temperature are located in an area of an exit of the power turbine opening into the exhaust duct.

7. The method as claimed in claim 1 ,

wherein the gas turbine engine further includes a high-pressure turbine and a low-pressure turbine, each turbine is driven by the propulsion gas, and an interduct to guide the propulsion gas from the high-pressure turbine to the low-pressure turbine, and

wherein the at least two probing points measuring the first temperature are located in the interduct.

8. A gas turbine engine, comprising:

a gas duct, guiding a propulsion gas;

a plurality of combustors, each leading into the gas duct, each combustor comprises:

a burner; and

an evaluation unit,

wherein the gas duct includes a first temperature sensor at each of at least two probing points located downstream from the plurality of combustors, wherein each first temperature sensor is adapted for measuring a first temperature over time,

wherein each of at least two of the burners includes a second temperature sensor to measure a second temperature over time,

wherein the evaluation unit detects a partial flame failure from the first temperature measurement and the second temperature measurement, and

wherein the evaluation unit uses a first detection parameter and a second detection parameter to determine when the partial flame failure occurs, and

wherein the second detection parameter is determined from a second variation between a plurality of second rates of change of a plurality of second temperature measurements in a plurality of different burners.

9. A gas turbine engine as claimed in claim 8 , wherein the first detection parameter is determined from a first rate of change of a first variation between a plurality of first temperature measurements at a plurality of different probing points.

10. The gas turbine engine as claimed in claim 8 , wherein the first temperature sensor and the second temperature sensor each include a thermocouple.

11. The gas turbine as claimed in claim 8 ,

wherein the gas turbine engine further includes a power turbine driven by the propulsion gas, the power turbine followed by an exhaust duct, and

wherein the at least two probing points measuring the first temperature are located in an area of an exit of the power turbine opening into the exhaust duct.

12. The gas turbine as claimed in claim 11 , wherein 12 first temperature sensors are located at the exit of the power turbine.

13. The gas turbine as claimed in claim 8 ,

wherein the gas turbine engine further includes a high-pressure turbine and a low-pressure turbine, each turbine is driven by the propulsion gas, and an interduct to guide the propulsion gas from the high-pressure turbine to the low-pressure turbine, and

wherein the at least two probing points measuring the first temperature are located in the interduct.

14. The gas turbine as claimed in claim 8 , wherein 16 first temperature sensors are located in an interduct.

15. The gas turbine as claimed in claim 8 ,

wherein the first detection parameter is compared to a first threshold,

wherein the second detection parameter is compared to a second threshold, and

wherein the partial flame failure is declared when the first detection parameter exceeds the first threshold and when the second detection parameter exceeds the second threshold.

16. The gas turbine as claimed in claim 8 ,

wherein the second temperature is measured at a tip of each burner facing into the combustor.

Assignments (3)
CHANGE OF NAME Recorded May 27, 2021
From: SIEMENS GAS AND POWER GMBH & CO. KG
To: SIEMENS ENERGY GLOBAL GMBH & CO. KG
Reel/Frame 056408/0395 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 28, 2020
From: SIEMENS AKTIENGESELLSCHAFT
To: SIEMENS GAS AND POWER GMBH & CO. KG
Reel/Frame 053627/0505 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 28, 2009
From: PANOV, VILI
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 023014/0235 →
Priority Claims (1)
EP 07002015 · Jan 30, 2007 · regional
Continuity (1)
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