Control system for an axial flow turbine
09638053 ยท 2017-05-02
Assignee
Inventors
Cpc classification
F05D2260/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/97
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2300/603
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2270/808
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The invention relates to an axial flow turbine and method of operating thereof. The turbine comprises a last stage of rotating blades located towards a downstream end of the turbine having a distal region at an end of the airfoil of the blades. A monitoring control system has at least one sensor in the distal region of at least one last stage blade for measuring at least one physical property of the airfoil and a control element that is capable of influencing at least one physical property of the distal region. The control system further includes a controller that adjusts the control element based on at least measured physical property so by controlling the at least one physical property.
Claims
1. An axial flow turbine comprising: a casing defining a flow path for a working fluid therein; a rotor co axial to the casing; a plurality of stages, each stage comprising: a stationary row of vanes, circumferentially mounted on the casing; and a rotating row of blades, circumferentially mounted on the rotor, each blade having an airfoil extending into the flow path therein, wherein the plurality of stages include a last stage located towards a downstream end of the turbine, wherein the airfoils of the last stage blades include distal regions that are distal from the rotor; and a monitoring control system comprising: at least one sensor configured in the distal region of the airfoil of at least one last stage blade, to measure at least one physical property of the at least one last stage blade; a control element configured to influence the at least one physical property of the at least one last stage blade; and a controller configured to adjust the control element based on the at least one measured physical property so by controlling the at least one physical property, wherein the at least one physical property is moisture and the at least one sensor is configured to measure localised moisture of the at least one last stage blade.
2. The turbine of claim 1, wherein the at least one sensor is embedded in the airfoil of the at least one last stage blade.
3. The turbine of claim 2, wherein the airfoil of the at least one last stage blade has a composite core body and further comprises a covering that covers at least a portion of the airfoil of the at least one last stage blade, wherein the at least one sensor is embedded between the composite core body and the covering.
4. The turbine of claim 2, wherein the airfoil of the at least one last stage blade is made of composite layers, and wherein the at least one sensor is embedded between the composite layers.
5. The turbine of claim 1, wherein the at least one physical property further includes strain, and the at least one sensor is further configured to measure localised strain in the at least one last stage blade.
6. The turbine of claim 1, wherein the at least one physical property further includes temperature, and the at least one sensor is further configured to measure localised temperature of the at least one last stage blade.
7. The turbine of claim 1, wherein the airfoil of the at least one last stage blade further comprises a plurality of sensors distributed along an extensional length of the airfoil of the at least one last stage blade from the rotor, and wherein the at least one physical property is a measurement profile of the plurality of sensors.
8. The turbine of claim 1, wherein the airfoil compromises conductive material, and the conductive material is a ground for the at least one sensor so by enabling the at least one sensor to have one wire.
9. The turbine of claim 1, wherein the at least one sensor and the controller communicate, at least partially, by wireless means.
10. The turbine of claim 1, wherein the control element is a means for adjusting a selection of at least one of: water injection, steam injection, working fluid extraction and mass flow through the turbine.
11. A method for controlling a physical property of at least one last stage blade of an axial flow turbine, the method comprising: providing a control element configured to influence the physical property of the at least one last stage blade; measuring the physical property of the at least one last stage blade, wherein the physical property is moisture; adjusting the control element in response to the measured physical property so by controlling the physical property; and providing the at least one last stage blade that is at least partially made of composite layers, and wherein measuring the physical property includes measuring the physical property at a point between the composite layers.
12. The method of claim 11, wherein the physical property further includes one or more of temperature and strain.
13. The method of claim 11, wherein adjusting the control element involves a selection of at least one of: injecting water, injecting steam, and extracting working fluid.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) By way of example, an embodiment of the present disclosure is described more fully hereinafter with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
(8) Exemplary embodiments of the present disclosure are now described with references to the drawings, wherein like reference numerals are used to refer to like elements throughout. In the following description, for purposes of explanation, numerous specific details are set forth to provide a thorough understanding of the disclosure. However, the present disclosure may be practiced without these specific details, and is not limited to the exemplary embodiments disclosed herein.
(9) Throughout this specification reference to a controller is taken to mean a system for receiving an input, comparing the input with a set value, using an algorithm to calculate manipulate value and finally applying the manipulate value to a control element in order to achieve a control objective.
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(12) As shown in
(13) In another exemplary embodiment shown in
(14) The means of embedding a sensor 22 in an airfoil 13 is not limited to the provided exemplary embodiments but also include known methods that neither interfere with the aerodynamics of the airfoil 13 nor compromise its mechanical integrity to an extent that significantly impacts the service life of the blade.
(15) In separate exemplary embodiments, the sensor 22 is a temperature sensor 22, a strain sensor 22, a temperature and strain sensor 22 or a moisture sensor 22. In an exemplary embodiment, a plurality of either the same or different sensors 22, i.e. temperature, strain or moisture, is embedded in the distal region 19 of the airfoil 13 of at least one last stage 18 blade 12.
(16) As shown in
(17) In an exemplary embodiment, this is achieved by the control element 24 being configured to inject water or steam from a cavity into the casing 15, upstream of the distal region 19 of the last stage 18 blades 12 in a region prone to windage. The injected water or steam provides a cooling means to overcome localised heating of blades 12.
(18) In another exemplary embodiment, this is achieved by the control element 24 being configured to inject water or steam from a cavity in the casing 15 from the casing 15 at a point downstream of the last stage 18 blades 12, for example in a diffusor of the turbine. The injected water or steam provides a cooling means to overcome localised heating of blades 12 while reducing possible erosion effects caused by injecting water or steam upstream of the blades 12.
(19) In another exemplary embodiment, water or steam as cooling medium is injected downstream of the last stage 18 blade 12 where it mixes with the circulating flow and as a result is drawn upstream into the last stage 18.
(20) In another exemplary embodiment, this is achieved by the control element 24 being configured to bleed, extract and/or withdraw working fluid from around the distal region 19 of the last stage 18 blades 12. By this means windage is reduced thus reducing localised overheating.
(21) In another exemplary embodiment, the control element 24 is configured to adjust the mass flow through the turbine and thus control windage based on the principle that significant windage occurs only below above a minimum turbine mass flowrate.
(22) In addition to a sensor 22 and control element 24, exemplary embodiments further include a controller 20 as shown in
(23) In an exemplary embodiment shown in
(24) In an exemplary embodiment, the communication between the sensor 22 and the control occurs, at least partially, by wireless means. This may be realised, for example, by the use of telemetric systems or contact rings and includes the use of RFID (radio frequency identification devices) that are configured to be read during operation by the controller 20.
(25) In an exemplary embodiment shown in
(26) Although the disclosure has been herein shown and described in what is conceived to be the most practical exemplary embodiment, it will be appreciated by those skilled in the art that the present disclosure can be embodied in other specific forms. For example, the invention may also be applied to axial compressors used in gas turbines 10. In addition, the location of the sensors is not restricted to the distal region 19 but could be distributed along the entire length of the airfoil 13. The presently disclosed embodiments are therefore considered in all respects to be illustrative and not restricted. The scope of the disclosure is indicated by the appended claims rather than the foregoing description and all changes that come within the meaning and range and equivalences thereof are intended to be embraced therein.