WO2008015145A1 - Method of analysis of secondary-air circuits in gas-turbine plants - Google Patents
Method of analysis of secondary-air circuits in gas-turbine plants Download PDFInfo
- Publication number
- WO2008015145A1 WO2008015145A1 PCT/EP2007/057691 EP2007057691W WO2008015145A1 WO 2008015145 A1 WO2008015145 A1 WO 2008015145A1 EP 2007057691 W EP2007057691 W EP 2007057691W WO 2008015145 A1 WO2008015145 A1 WO 2008015145A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- dynamic
- equivalent fluid
- turbine
- air circuit
- air
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F02—COMBUSTION ENGINES; HOT-GAS OR COMBUSTION-PRODUCT ENGINE PLANTS
- F02C—GAS-TURBINE PLANTS; AIR INTAKES FOR JET-PROPULSION PLANTS; CONTROLLING FUEL SUPPLY IN AIR-BREATHING JET-PROPULSION PLANTS
- F02C7/00—Features, components parts, details or accessories, not provided for in, or of interest apart form groups F02C1/00 - F02C6/00; Air intakes for jet-propulsion plants
- F02C7/12—Cooling of plants
- F02C7/16—Cooling of plants characterised by cooling medium
- F02C7/18—Cooling of plants characterised by cooling medium the medium being gaseous, e.g. air
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D25/00—Component parts, details, or accessories, not provided for in, or of interest apart from, other groups
- F01D25/08—Cooling; Heating; Heat-insulation
- F01D25/12—Cooling
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01D—NON-POSITIVE DISPLACEMENT MACHINES OR ENGINES, e.g. STEAM TURBINES
- F01D5/00—Blades; Blade-carrying members; Heating, heat-insulating, cooling or antivibration means on the blades or the members
- F01D5/02—Blade-carrying members, e.g. rotors
- F01D5/08—Heating, heat-insulating or cooling means
- F01D5/085—Heating, heat-insulating or cooling means cooling fluid circulating inside the rotor
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F05—INDEXING SCHEMES RELATING TO ENGINES OR PUMPS IN VARIOUS SUBCLASSES OF CLASSES F01-F04
- F05D—INDEXING SCHEME FOR ASPECTS RELATING TO NON-POSITIVE-DISPLACEMENT MACHINES OR ENGINES, GAS-TURBINES OR JET-PROPULSION PLANTS
- F05D2260/00—Function
- F05D2260/80—Diagnostics
Definitions
- the present invention relates to a method of analysis of secondary-air circuits in gas-turbine plants.
- the secondary-air circuit is a fluid network that takes a part of the flow of air from the compression line and uses it for cooling the mechanical components of the turbine exposed to the action of hot gases, in particular the fixed and mobile blades.
- the efficiency of the secondary-air circuit has a marked effect both on the overall efficiency of the gas turbine and also on the pollutant emissions. There is thus evident the importance of methods that enable study and analysis of the behaviour of the secondary-air network and its interactions with the other sections of the plant (compressor and turbine) .
- the aim of the present invention is therefore to provide a method of analysis of secondary-air circuits in gas-turbine plants that will enable the limitations described above to be overcome .
- FIG. 1 is a simplified block diagram of a gas-turbine plant
- Figure 2 shows a longitudinal section of a part of the plant represented schematically in Figure 1 ;
- FIG. 3 is a simplified flowchart for a procedure that uses the method according to the invention.
- FIG. 4 is a simplified three-quarters perspective view from above of a part of the plant illustrated in Figures 1 and 2;
- FIG. 7 is an equivalent fluid-dynamic diagram of a part of the plant of Figure 1;
- FIG. 8 is a more detailed flowchart of a part of the diagram of Figure 3, regarding the execution of the method according to the present invention.
- the plant 1 comprises a compressor 2, a combustion chamber 3, a turbine 5, fitted on the same shaft 6 as the compressor 2, and a secondary-air circuit 7.
- the compressor 2 draws from outside an input flow rate Qi of air, with pre-determined conditions of input pressure and temperature Pi, T 1 .
- a fraction of the input flow rate Q 1 referred to as secondary air flow rate Q SA , is extracted by the secondary-air circuit 7 and used for cooling and sealing the mechanical components of the plant 1 in contact with the hot gases.
- a gas-turbine plant with just one extraction of secondary air at output from the compressor (Figure 1) is considered.
- the remaining fraction of the input flow rate Q 1 hereinafter referred to as work flow rate Q L , is sent to the combustion chamber 3 (where a fuel flow Q COMB is supplied) and to the turbine 5 for the production of work according to the thermodynamic cycle envisaged for the plant 1.
- the turbine 5 emits an output flow F 0 of exhaust gas.
- compressor pressure P 0 and compressor temperature T 0 designate the pressure and the temperature of the work air flow rate Q L (and also of the secondary air flow rate Q SA ) at output from the compressor 2 ;
- the secondary-air circuit 7 comprises a plurality of elements connected together, in particular pipes and chambers.
- a second portion 7b of the secondary-air circuit 7 is made in part within the shaft 6 and comprises rotating passages 11 for conveying air within cooling pipes 12 made in the rotor blades 13. Consequently, elements that define the second portion 7b of the secondary- air circuit 7 turn about an axis of rotation of the shaft 6.
- Figure 3 shows a flowchart for an iterative calculation procedure for analysis of the main fluid-dynamic quantities present in the plant 1. The calculation is made considering the pressure and the temperature of the fluid in the different sections of the plant constant for the duration of each iteration .
- the compressor pressure P 0 , the compressor temperature T 0 , the turbine pressure P ⁇ , and the turbine temperature T ⁇ are initialized, assigning respective values .
- the input flow rate Qi of the compressor 2 is calculated starting from the difference between the compressor pressure P c and the input pressure P 1 .
- the calculation is made in a way in itself known, using a purposely provided solution module (not illustrated) .
- the secondary air flow rate Q SA is calculated on the basis of the pressure differential present on the secondary-air circuit 7, i.e., on the basis of the difference between the turbine pressure P ⁇ and the compressor pressure P 0
- the secondary air flow rate Q SA is then subtracted from the input flow rate Qi to determine the work flow rate Q L supplied to the turbine 5 (block 130) .
- a flow rate of fuel injected into the combustion chamber 3 (not illustrated herein explicitly for reasons of simplicity) is of course taken into consideration.
- the work flow rate Q L thus determined is then used to derive, in a way in itself known, new values of the turbine pressure P ⁇ (block 140), which are available for a new iteration of the calculation.
- the calculation of the turbine pressure P ⁇ takes into account the introduction, in different points of the turbine 5, of respective fractions of the overall secondary air flow rate Q SA , here not considered for reasons of simplicity.
- the compressor pressure P 0 is derived from the turbine pressure P ⁇ on the basis of equations that describe operation of the combustion chamber 3.
- the secondary air flow rate Q SA (block 120) and the work flow rate Q L (block 130) are iteratively recalculated until a first convergence test is passed (block 150) .
- the compressor pressure P 0 is calculated (block 160), which is also made available for a new iteration of the calculation.
- a second convergence test is then conducted (block 170) .
- the stability of the value of compressor pressure P 0 is checked. If the convergence test is passed (output YES from block 170), the calculation procedure terminates (block 180); otherwise (output NO from block 170), a new iteration is run, using the new values of the turbine pressure P ⁇ and of the compressor pressure P 0 just calculated.
- the procedure for the calculation of the secondary air flow rate Q SA which regards the secondary-air circuit 7 and the elements that make it up, will be described in greater detail in what follows.
- the calculation is made, taking into account the fact that the secondary-air circuit 7, in addition to being a site of heat exchange, comprises both fixed parts (with respect to the stator part of the plant 1) and parts in rotary movement about the axis A (with the rotor of the compressor 2 and of the turbine 5) .
- the calculation considers, for each element, not only a principal flow direction (to which the component of the velocity vector that defines the flow rate is associated) , but also one and, preferably, two auxiliary flow directions, which do not define the flow rate and are perpendicular to the principal flow direction.
- FIG 4 illustrates, by way of example, a section of the secondary-air circuit 7 (in particular, a section of the second rotating section 7b) , defined inside a hollow shaft or drum 15.
- the drum 15 is arranged between the compressor 2 and the turbine 5 in the proximity of the combustion chamber 3. Furthermore, the drum 15 is a rotating cavity with principally axial flow, because its walls are set in rotation by the turbine 5 at an angular velocity CO and the principal flow direction in this case is parallel to the axis A.
- a first auxiliary flow direction and a second auxiliary flow direction are instead respectively defined, in the case illustrated in Figure 4, by a radial direction and by a circumferential/tangential direction, with respect to the rotation axis A, which are perpendicular to one another.
- Figure 4 shows a principal flow component V P , a first auxiliary flow component V Ai , and a second auxiliary flow component V A2 .
- principal flow component is meant the component of the angular velocity of the coolant according to the principal flow direction
- first auxiliary flow component and “second auxiliary flow component” are meant the components of the angular velocity of the coolant according, respectively, to the first auxiliary flow direction and the second auxiliary flow direction.
- the first auxiliary flow component V Ai is correlated to the angular velocity CO of the shaft 6 of the turbine 5.
- auxiliary flow components enables definition of a so-called "quasi-3D" (quasi three-dimensional) flow model and evaluation of the effect of the rotation on the secondary air flow rate Q SA and, in practice, on the efficiency of the secondary-air circuit 7 itself.
- Figure 5 shows a different section of the second portion 7b of the secondary-air circuit 7, in particular annular chambers 17, rotating passages 11, and cooling pipes 12, which run within rotor blades 13.
- the annular chambers 17 are rotating cavities, in which the fluid evolves prevalently in a radial direction. Consequently, the principal flow component is radial, and the first and second auxiliary flow components are perpendicular thereto.
- the principal flow direction is parallel to the axis of each section thereof.
- the first auxiliary direction of flow and the second auxiliary flow direction are perpendicular to the principal flow direction and to one another.
- the calculation of the auxiliary flow components enables precise quantification of the head losses caused by the complex field of motion that is set up within the rotating elements of the secondary-air circuit.
- the calculation of the secondary air flow rate Q SA which involves calculating the flow rates and pressures for each element of the secondary-air circuit 7, is carried out on the basis of an equivalent electrical network, preliminarily defined as described with reference to Figure 6.
- an equivalent fluid-dynamic network 25 of the secondary-air circuit 7 is defined; i.e., the elements present and the corresponding connections (nodes 21 and branches 22, Figure 7) are identified.
- the secondary- air circuit 7 mainly comprises pipes and chambers (designated, respectively, by 18 and 20 in Figure 7) .
- the pipes 18, which have lengths much greater than the respective diameters are elements characterized by the accumulation of momentum and are modelled as equivalent fluid-dynamic inductances L.
- the chambers 20, instead, are characterized by the accumulation of mass and are modelled as equivalent fluid-dynamic capacitances C.
- the values of the equivalent fluid-dynamic parameters L, C associated to the pipes 18 and to the chambers 20 depend, however, upon the instantaneous conditions of the secondary- air circuit 7, which is affected by variations of regime and by heat exchange. In particular, especially the values of the equivalent fluid-dynamic capacitances C sensibly depend upon the temperature and hence are updated at each iteration of calculation, as explained hereinafter.
- the cooling pipes 18 made in the stator blades 10 and in the rotor blades 13, which constitute the terminal elements of the equivalent fluid-dynamic network, are represented in a schematic and synthetic way by means of characteristic curves and surfaces (in the case in point parametric curves and surfaces, functions of the main thermo-fluid-dynamic parameters of operation, such as supply pressure and temperature of the coolant to the blades, rotation speed of the shaft, temperature of the hot gases, and the like) .
- the next step (block 220) envisages definition of a dynamic system S that describes the behaviour of the secondary-air circuit 7 as a whole, considering both the main components of flow and the auxiliary components of flow for each element of the secondary-air circuit 7 itself.
- the state variables are the flow rates Q in the branches 21 and the pressures P at the nodes 22 of the equivalent fluid-dynamic network 25, and the mathematical model is derived from equations of energy balance, continuity, and conservation of momentum.
- Non-dynamic constraints are also defined (block 230), represented by algebraic or transcendental equations, which limit the domains of the state variables (for example, constraints imposed by constitutive equations of the cooling and work fluids or by the characteristic curves of loss of particular components of the secondary-air circuit, such as the turbine blades) .
- non-dynamic constraints are modified by the introduction of fictitious singularities (poles) at frequencies that are higher, by several orders of magnitude, than the singularities proper to the dynamic system that describes the secondary-air circuit 7 (block 240) .
- fictitious singularities poles
- an algebraic constraint on an element of the secondary-air circuit 7 can be imposed by the perfect-gas state equation:
- Figure 8 illustrates a second iterative procedure for calculation of the secondary air flow rate Q SA (block 120 of Figure 3) on the basis of the model described above.
- the second iterative procedure is nested in the first iterative procedure described in Figure 3 (block 120) and is executed at each instant of simulation.
- a preliminary step (block 300) respective initialization values are assigned both to the state variables and to the equivalent fluid-dynamic parameters associated to the elements of the secondary-air circuit 7 (equivalent fluid-dynamic inductances L of the pipes 18 and equivalent fluid-dynamic capacitances C of the chambers 20) .
- each branch 22 of the secondary-air circuit 7 a single element is selected (a distributed loss of head, such as, for example, a pipe 18, or a concentrated loss) , of which the flow rate Q (equal to the flow rate in the respective branch 22) is calculated.
- a distributed loss of head such as, for example, a pipe 18, or a concentrated loss
- the flow rates thus determined are used for calculating the pressures at the nodes 21 (block 320) .
- the steps of calculating the flow rates in the branches 22 and the pressures at the nodes 21 are based upon the use of the modified dynamic system described above, considering the temperatures of the coolant constant for the duration of each of the steps of calculating the flow rates in the branches 22 (block 310) and the pressures at the nodes 21 (block 320) of the second iterative procedure.
- the temperature T of the coolant in the various sections of the secondary air circuit 7 (block 330) is then calculated.
- the values of the equivalent fluid-dynamic capacitances of the chambers 20 are then updated (block 340) using the thermodynamic and fluid-dynamic conditions (flow rate Q, pressures P, and temperatures T) calculated previously (blocks 310, 320, and 330) .
- a convergence test (block 350) is then performed, by controlling the stability on a pre-determined number of iterations of the values of the flow rates and of the pressures calculated. If the convergence test is passed
- a new iteration is run, using the updated values of the flow rates, of the pressures, and of the equivalent fluid-dynamic parameters.
- the variations of the equivalent fluid-dynamic inductances L and of the equivalent fluid-dynamic capacitances C each time determined are applied progressively during a preset number of iterations. For example, if at a K- th iteration a variation ⁇ C of an equivalent fluid-dynamic capacitance is recorded, the corresponding value is adjusted progressively during N successive iterations by adding a contribution equal to ⁇ C/N at each iteration K+l, ..., K+N.
- the method described enables the analysis of secondary-air circuits of gas turbines to be carried out automatically and in a rapid and reliable way.
- the design and optimization of said circuits is hence simplified.
- the calculation of auxiliary components of flow in addition to the principal component, enables correct evaluation of the influence of the mobile parts of the secondary-air circuit and, hence, the variation of pressure in the characteristic elements of loss within the shaft 6, such as the rotating passages .
- the method enables observation of the evolution of the state variables and of the equivalent fluid-dynamic parameters also during the transients, as well as in stationary conditions.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Control Of Turbines (AREA)
- Testing Of Devices, Machine Parts, Or Other Structures Thereof (AREA)
- Control Of Positive-Displacement Air Blowers (AREA)
Abstract
Description
Claims
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2009522226A JP2009545694A (en) | 2006-07-31 | 2007-07-25 | Analysis method of secondary air circuit of gas turbine plant |
| US12/376,030 US8056403B2 (en) | 2006-07-31 | 2007-07-25 | Method of analysis of secondary-air circuits in gas-turbine plants |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP06425546.6 | 2006-07-31 | ||
| EP06425546A EP1884879A1 (en) | 2006-07-31 | 2006-07-31 | Method of analysis of secondary air circuits in gas turbine plants |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2008015145A1 true WO2008015145A1 (en) | 2008-02-07 |
Family
ID=37672001
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/EP2007/057691 Ceased WO2008015145A1 (en) | 2006-07-31 | 2007-07-25 | Method of analysis of secondary-air circuits in gas-turbine plants |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US8056403B2 (en) |
| EP (1) | EP1884879A1 (en) |
| JP (1) | JP2009545694A (en) |
| WO (1) | WO2008015145A1 (en) |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| ES2365940T3 (en) | 2007-04-02 | 2011-10-13 | Ansaldo Energia S.P.A. | A PROCEDURE FOR MAINTENANCE OF A PLURALITY OF GAS TURBINE UNITS. |
| US9188504B2 (en) | 2012-10-31 | 2015-11-17 | General Electric Company | Methods for testing turbine blades |
| JP2014206833A (en) * | 2013-04-11 | 2014-10-30 | 富士通株式会社 | Thermal fluid analysis program, information processor and thermal fluid analysis method |
| US9925876B2 (en) | 2015-08-14 | 2018-03-27 | United Technologies Corporation | Flow master for apparatus testing |
| US10941709B2 (en) * | 2018-09-28 | 2021-03-09 | Pratt & Whitney Canada Corp. | Gas turbine engine and cooling air configuration for turbine section thereof |
| US11598265B2 (en) * | 2021-02-03 | 2023-03-07 | Pratt & Whitney Canada Corp. | Tangential on-board injector |
Family Cites Families (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2008121513A (en) * | 2006-11-10 | 2008-05-29 | Mitsubishi Heavy Ind Ltd | Gas turbine power generation system and method of detecting calorie abnormality thereof |
| US7971473B1 (en) * | 2008-06-27 | 2011-07-05 | Florida Turbine Technologies, Inc. | Apparatus and process for testing turbine vane airflow |
-
2006
- 2006-07-31 EP EP06425546A patent/EP1884879A1/en not_active Withdrawn
-
2007
- 2007-07-25 JP JP2009522226A patent/JP2009545694A/en not_active Ceased
- 2007-07-25 US US12/376,030 patent/US8056403B2/en not_active Expired - Fee Related
- 2007-07-25 WO PCT/EP2007/057691 patent/WO2008015145A1/en not_active Ceased
Non-Patent Citations (6)
| Title |
|---|
| BOZZI LUCA ET AL: "SIMPLIFIED SIMULATION BLOCK DIAGRAM OF TWIN-SHAFT GAS TURBINES", INTERNATIONAL GAS TURBINE CONFERENCE, XX, XX, vol. 1, 16 June 2003 (2003-06-16), pages 519 - 526, XP008073398 * |
| BRILLERT D ET AL: "APPLICATION OF CONJUGATE CFD TO THE INTERNAL COOLING AIR FLOW SYSTEM OF GAS TURBINES", PROCEEDINGS OF ASME TURBO EXPO, XX, XX, vol. 5B, 16 June 2003 (2003-06-16), pages 1051 - 1060, XP008074441 * |
| CARCASCI C ET AL: "HEAVY DUTY GAS TURBINE SIMULATION: GLOBAL PERFORMANCES ESTIMATION AND SECONDARY AIR SYSTEM MODIFICATIONS", PROCEEDINGS OF ASME TURBO EXPO, XX, XX, vol. 4, 8 May 2006 (2006-05-08), pages 527 - 536, XP008073630 * |
| CROSA G ET AL: "HEAVY-DUTY GAS TURBINE PLANT AEROTHERMODYNAMIC SIMULATION USING SIMULINK", ASME TURBO ASIA CONFERENCE, XX, XX, 5 November 1996 (1996-11-05), pages 1 - 8, XP008073400 * |
| FRANCESCO CASELLA: "Modelling, simulation and control of a geothermal plant", TESI DI DOTTORATO, 1998, Politecnico di Milano, XP002417859, Retrieved from the Internet <URL:http://web.archive.org/web/20051030082358/http://www.elet.polimi.it/upload/casella/tesi.pdf> [retrieved on 20070131] * |
| REICHERT A W ; BRILLERT D ; SIMON H: "Loss prediction for rotating passages in secondary air systems", AM SOC MECH ENG PAP; AMERICAN SOCIETY OF MECHANICAL ENGINEERS (PAPER) (PROCEEDINGS OF THE 1997 INTERNATIONAL GAS TURBINE & AEROENGINE CONGRESS & EXPOSITION; ORLANDO, FL, USA - JUN 2-5 1997), 1997, USA, XP008074439, ISSN: 0402-1215 * |
Also Published As
| Publication number | Publication date |
|---|---|
| JP2009545694A (en) | 2009-12-24 |
| US8056403B2 (en) | 2011-11-15 |
| EP1884879A1 (en) | 2008-02-06 |
| US20100005869A1 (en) | 2010-01-14 |
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