Methods of detecting one failure in a burner of a combustor and turbine systems
10907498 ยท 2021-02-02
Assignee
Inventors
Cpc classification
F05D2260/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/245
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/022
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N2231/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01K13/02
PHYSICS
F01D21/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N2241/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D21/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23N5/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01K13/02
PHYSICS
F23N5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The method is used for detecting one failure in a burner of a combustor of a turbine system; the combustor comprises a plurality of burners arranged annularly; the turbine system comprises a turbine downstream of the combustor, the method comprising the steps of: A) providing a plurality of temperature sensors arranged annularly at the outlet of the turbine, B) detecting a plurality of temperatures through the plurality of temperature sensors, C) calculating a temperature spread indicator as a function of the plurality of temperatures, and D) carrying out a comparison the temperature spread indicator and a threshold; a positive result of this comparison indicates a burner failure.
Claims
1. A method of detecting a burner failure, and locating a faulty burner associated with the burner failure, in a combustor of a turbine system, wherein the combustor comprises a plurality of burners arranged annularly, wherein the turbine system comprises a turbine downstream of the combustor, the method comprising the steps of: A) providing a plurality of temperature sensors arranged annularly at an outlet of the turbine; B) detecting a plurality of temperatures through the plurality of temperature sensors; C) calculating a temperature spread indicator as a function of the plurality of temperatures; and D) carrying out a comparison between the temperature spread indicator and a threshold, wherein the temperature spread indicator being greater than the threshold or the temperature spread indicator being greater than the threshold for a set of consecutive cycles of the steps B, C, and D cyclically repeated in time-indicates the burner failure; wherein the method further comprises the steps of: E) identifying an identified temperature sensor of the plurality of temperature sensors that is detecting a minimum temperature; F) determining a sensor angular position of the identified temperature sensor; and G) subtracting an angular shift or an angular shift range from the sensor angular position to obtain a burner position or a burner position range of the faulty burner; wherein a number of sensors of the plurality of sensors is less than a number of burners of the plurality of burners.
2. The method of claim 1, wherein the steps B, C and D are cyclically repeated in time, and wherein the burner failure is indicated by the temperature spread indicator being greater than the threshold for the set of consecutive cycles.
3. The method of claim 1, wherein step C comprises the sub-steps of: C1) determining a minimum temperature in the plurality of temperatures, C2) determining a maximum temperature in the plurality of temperatures, and C3) calculating the temperature spread indicator as a difference between the maximum temperature and the minimum temperature.
4. The method of claim 3, wherein steps B, C and D are cyclically repeated in time; wherein the threshold is a first threshold; wherein an alarm is signaled when consecutively-determined temperature spread indicators in step C are greater than the first threshold over a set of N1 consecutive comparisons in step D; wherein the turbine system is tripped when consecutively-determined temperature spread indicators in step C are greater than a second threshold over a set of N2 consecutive comparisons in step D.
5. The method of claim 1, comprising the step of signaling an alarm in response to detecting the burner failure.
6. The method of claim 1, comprising the step of tripping the turbine system in response to detecting the burner failure.
7. The method of claim 1, wherein the angular shift or the angular shift range depends on an operating status of the turbine system.
8. The method of claim 1, wherein the step C comprises the sub-steps of: C1) determining a mean temperature being an average of the plurality of temperatures, wherein the temperature spread indicator includes a plurality of values; and C2) calculating the plurality of values of the temperature spread indicator, wherein each value of the plurality of values corresponds to a difference between a respective temperature of the plurality of temperatures and the mean temperature; wherein at the step D, each of the values of the plurality of values is compared with the threshold, and any value of the plurality of values being greater than the threshold or any value of the plurality of values being greater than the threshold for the set of consecutive cycles indicates the burner failure.
9. The method of claim 8, comprising the step of signaling an alarm in response to detecting the burner failure.
10. The method of claim 8, comprising the step of tripping the turbine system in response to detecting the burner failure.
11. The method of claim 8, wherein the steps B, C and D are cyclically repeated in time, and any value of the plurality of values being greater than the threshold for the set of consecutive cycles indicates the burner failure; wherein the threshold is a first threshold; wherein an alarm is signaled when any value of the plurality of values of the temperature spread indicator is greater than the first threshold for a first set of consecutive cycles of the steps B, C, and D cyclically repeated in time; wherein the turbine system is tripped when any value of the plurality of values of the temperature spread indicator is greater than a second threshold for a second set of consecutive cycles of the steps B, C, and D cyclically repeated in time.
12. A turbine system comprising a compressor, a combustor downstream of the compressor, a turbine downstream of the combustor, a plurality of temperature sensors arranged annularly at an outlet of the turbine, and a digital signal processing unit, wherein the combustor comprises a plurality of burners arranged annularly, and the digital signal processing unit is configured to: A) detect a plurality of temperatures through the plurality of temperature sensors; B) calculate a temperature spread indicator as a function of the plurality of temperatures; and C) carry out a comparison between the temperature spread indicator and a threshold, wherein the temperature spread indicator being greater than the threshold or the temperature spread indicator being greater than the threshold for a set of consecutive cycles of A, B, and C cyclically repeated in time indicates a burner failure; wherein the digital signal processing unit, to locate a faulty burner associated with the burner failure, is configured to: D) identify an identified temperature sensor of the plurality of temperature sensors that detects a minimum temperature; E) determine a sensor angular position of the identified temperature sensor; and F) subtract an angular shift or an angular shift range from the sensor angular position to obtain a burner position or a burner position range of the faulty burner; wherein a number of sensors of the plurality of sensors is less than a number of burners of the plurality of burners.
13. The turbine system of claim 12, wherein the digital signal processing unit is configured to cyclically repeat A, B, and C in time, and the temperature spread indicator being greater than the threshold for the set of consecutive cycles indicates the burner failure.
14. The turbine system of claim 12, wherein the digital signal processing unit is configured to signal an alarm in response to the burner failure.
15. The turbine system of claim 12, wherein the digital signal processing unit is configured to trip the turbine system in response to the burner failure.
16. The turbine system of claim 12, wherein the angular shift or the angular shift range depends on an operating status of the turbine system.
17. The turbine system of claim 12, wherein the digital signal processing unit is configured to calculate the temperature spread indicator by: B1) determining a mean temperature being an average of the plurality of temperatures, wherein the temperature spread indicator includes a plurality of values; and B2) calculating the plurality of values of the temperature spread indicator, wherein each value of the plurality of values corresponds to a difference between a respective temperature of the plurality of temperatures and the mean temperature; wherein the digital signal processing unit is configured to carry out the comparison by comparing each of the values of the plurality of values to the threshold, and wherein any value of the plurality of values being greater than the threshold or any value of the plurality of values being greater than the threshold for the set of consecutive cycles indicates the burner failure.
18. The turbine system of claim 17, wherein the digital signal processing unit is configured to signal an alarm in response to the burner failure.
19. The turbine system of claim 17, wherein the digital signal processing unit is configured to trip the turbine system in response to the burner failure.
20. The turbine system of claim 17, wherein the digital signal processing unit is configured to cyclically repeated A, B, and C in time, and any value of the plurality of values being greater than the threshold for the set of consecutive cycles indicates the burner failure; wherein the threshold is a first threshold; wherein the digital signal processing unit is configured to signal an alarm in response to any value of the plurality of values of the temperature spread indicator being greater than the first threshold for a first set of consecutive cycles of A, B, and C cyclically repeated in time; wherein the digital signal processing unit is configured to trip the turbine system in response to any value of the plurality of values of the temperature spread indicator being greater than a second threshold for a second set of consecutive cycles of A, B, and C cyclically repeated in time.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) The accompanying drawings, which are incorporated herein and constitute an integral part of the present specification, illustrate exemplary embodiments of the present invention and, together with the detailed description, explain these embodiments. In the drawings:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8) The following description of exemplary embodiments refers to the accompanying drawings.
(9) The following description does not limit the invention. Instead, the scope of the invention is defined by the appended claims.
(10) Reference throughout the specification to one embodiment or an embodiment means that a particular feature, structure, or characteristic described in connection with an embodiment is included in at least one embodiment of the subject matter disclosed. Thus, the appearance of the phrases in one embodiment or in an embodiment in various places throughout the specification is not necessarily referring to the same embodiment. Further, the particular features, structures or characteristics may be combined in any suitable manner in one or more embodiments.
(11)
(12) Combustor 3 comprises a plurality of burners 32 arranged annularly in a single annular combustion chamber (see also
(13) Turbine system 1 comprises a plurality of temperature sensors 52 arranged annularly at the outlet of turbine 5 (see also
(14) According to embodiments alternative to the one of
(15) According to embodiments alternative to the one of
(16) Digital signal processing unit 6 is electrically connected to sensors 52 and receives measure signals from these sensors.
(17) In order to detect one failure in a burner of combustor (for example combustor 3) of a turbine system, the following steps may be carried out: A) providing a plurality of temperature sensors (for example sensors 52) arranged annularly at the outlet of a turbine (for example turbine 5) of the turbine system, B) detecting a plurality of temperatures through the plurality of temperature sensors, C) calculating a temperature spread indicator as a function of the plurality of temperatures, and D) carrying out a comparison between the temperature spread indicator and a threshold,
wherein a positive result of this comparison indicates a burner failure.
(18) During normal operation, the temperature at the outlet of a turbine of the turbine system rather uniform; for example, the temperatures detected by sensors 52-1, 52-2, 52-3, 52-4, 52-5 and 52-6 at different angular positions at a certain time are close to each other (even if never perfectly identical). Considering
(19) If, at a certain time, one burner fails, i.e. it does not contribute to combustion in the combustion chamber, the temperature spread in the temperature detected by the sensors at different angular positions (for example sensors 52) increases considerably.
(20) For example, a nominal temperature spread during normal operation may be e.g. 30 C. or 35 C. (the average temperature being for example 400-600 C.), while the temperature spread in case of one failure is much higher and may be e.g. 55 C. or 80 C. (the average temperature being substantially unchanged). The threshold at step D may be set for example at 45 C. or 50 C. As it will be explained in the following and as it is shown
(21) In the embodiment of
(22) In the flowchart of
(23) The threshold at step D is typically fixed and predetermined (i.e. not variable). If the threshold is variable, it may depend on a current load state of the turbine system 1; in
(24) In the flowchart of
(25) In the flowchart of
(26) After blocks 405 and 407, the flow returns to block 402. This means that the temperature spread indicator is calculated repeatedly, in particular periodically; more precisely, at least steps A, B, C and D are cyclically repeated in time. The average repetition period may be in the range from e.g. 1 mS to e.g. 10 S.
(27) According to the embodiment just described, as soon as a threshold is reached an action is taken.
(28) Alternatively, it may be provided that an action is taken only after a predetermined time or after a predetermined number of consecutive positive results as for example in the flowchart of
(29) In the flowchart of
in the following, it is assumed, as an example, that a temperature spread indicator TSI corresponds simply to the temperature spread and that the repetition period is approximately 1 S.
(30) At block 502, counter CNTR1 is increased by 1, counter CNTR2 is increased by 1, a plurality of temperatures are detected by the plurality of temperature sensors, the temperature spread indicator TSI is calculated.
(31) At block 503 the comparison TSI>STH1? is carried out; N corresponds to a negative comparison and Y corresponds to a positive comparison.
(32) At block 505 the comparison TSI>STH2? is carried out; N corresponds to a negative comparison and Y corresponds to a positive comparison.
(33) At block 504 OK is signaled and counters CNTR1 and CNTR2 are reset, i.e. set to zero, and then the flow returns to block 502.
(34) At block 506 the comparison CNTR1>CTH1? is carried out; N corresponds to a negative comparison and Y corresponds to a positive comparison; in case of negative comparison the flow returns to block 502; in case of positive comparison the flow passes to block 507.
(35) At block 508 the comparison CNTR2>CTH2? is carried out; N corresponds to a negative comparison and Y corresponds to a positive comparison; in case of negative comparison the flow returns to block 502; in case of positive comparison the flow passes to block 509.
(36) At block 507 ALARM is signaled and then the flow returns to block 502.
(37) At block 509 TRIP of turbine system (i.e. switching-off) is carried out.
(38) This means that an alarm is signaled only if a temperature spread greater than 55 C. persists for more than 30 seconds and trip is carried out only if a temperature spread greater than 80 C. persists for more than 10 seconds.
(39) It is to be noted that, according to a flowchart alternative to the one of
(40) The calculation of the temperature spread indicator (step C) may be more complex than the one just described.
(41) The comparison of the temperature spread indicator (step D) may be more complex than the one just described.
(42) In the embodiments just described, the temperature spread indicator is a number. In the embodiment that will be described in the following with the aid of
(43) It is to be noted that the flowchart of
(44) According to this embodiment, step C comprises the sub-steps of: determining a mean temperature being the average of the plurality of temperatures detected at step B (step C4),
and calculating a temperature spread indicator as a plurality of values being functions of a corresponding plurality of differences between a temperature of the plurality of temperatures and the mean temperature (step C5);
in the flowchart of
(45) An advantageous formula for calculating the temperature spread indicator, namely its values, is the following:
Phi(i)=e.sup.(k*(T.sup.
wherein i is an index of a temperature sensor of the plurality of temperature sensors.
(46) If the above formula is applied to the turbine system of
(47) The above formula is advantageous as it increases the signal-to-noise ratio; in other words, the exponential function highlights the temperature spread variation due to one burner failure in a more clear distinct way.
(48) At step D each of the calculated values is compared with at least one threshold; the threshold is the same for all sensors. If the above formula is used, the comparison is value<threshold?, a negative comparison N means that the value lesser than the threshold and a positive comparison Y means that the value greater than the threshold.
(49) In the flowchart of
(50) If a single indicator threshold is used, its value may be e.g. 0.2.
(51) If two indicator thresholds are used, the value of the first threshold may be e.g. 0.25 and the value of the second threshold may be e.g. 0.15.
(52) Any comparison positive result indicates a burner failure.
(53) Considering now the flowchart of
(54) This means that alarm signaling and trip performing are carried out if measures from any (not all) of the sensors justify such actions.
(55) As in the flowchart of
(56) In order to take into account that the indicator corresponds to a plurality of values and that an action requires a plurality of repetitions, a set of counters are used for each of the thresholds used.
(57) For example, if there are six temperature sensors (see
(58) As for the flowchart of
(59) Once one burner failure is detected, it is advantageous to locate the burner of the combustor that has failed or, even better, identify exactly which burner of the combustor has failed.
(60) In order to do that, if there is one burner that has failed the plurality of detected temperatures may be processed based on predetermined data. The result of such processing may be a burner position or a burner position range of the faulty burner.
(61) The above mentioned predetermined data may be data obtained during a calibration phase of the turbine system carried out at the manufacturing site, or at the installation site, or partially at the manufacturing site and partially at the installation site
(62) Such processing may comprise the steps of: E) identifying a temperature sensor detecting a minimum temperature, F) determining a sensor angular position of this temperature sensor, and G) subtracting a predetermined angular shift or a predetermined angular shift range from the determined sensor angular position and so a burner position or a burner position range of the faulty burner is obtained.
(63) Considering
(64) Considering
(65) It is to be considered that the above-mentioned predetermined angular shift or predetermined angular shift range may depend on the operating status of the turbine system (for example, full-load, half-load).
(66) The burner failure detection methods according to the subject matter disclosed herein may be used in a turbine system like the one of
(67) The turbine system should comprise a digital signal processing unit adapted to carry out such methods; such unit typically comprises a software program for this purpose. In the embodiment of
(68) In order to carry out a burner failure detection method, at least one plurality of temperature sensors (with reference to
(69) These sensors may allow not only to detect one burner failure but also to locate the faulty burner; location may correspond even to identification of the faulty burner.