Apparatus and method for measuring turbine temperature
10697316 ยท 2020-06-30
Assignee
Inventors
Cpc classification
G01K2205/00
PHYSICS
F05D2270/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C9/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2270/303
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01K13/02
PHYSICS
F05D2270/112
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G01K13/02
PHYSICS
F02C9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A temperature sensing device for a turbine of an engine and a method for measuring the temperature of the turbine are disclosed. The turbine includes a turbine stage coupled to a rotatable shaft and an outer casing. First and second sensor holders are disposed between the rotatable shaft and the outer casing, and first and second temperature sensors disposed on the first and second sensor holders, respectively. Each of the first and second sensor holders has only one temperature sensor disposed thereon, the first and second temperature sensors are disposed at first and second distances from the rotatable shaft respectively, and the first and second distances are different.
Claims
1. A temperature sensing device for measuring temperature in a turbine of an engine, wherein the turbine is downstream of a combustor and includes first and second turbine stages coupled to a rotatable shaft and an outer casing, comprising: first and second sensor holders disposed between the rotatable shaft and the outer casing; a first temperature sensor disposed on the first sensor holder at a first radial distance from the rotatable shaft; and a second temperature sensor disposed on the second sensor holder at a second radial distance from the rotatable shaft; wherein each of the first and second sensor holders has only one temperature sensor disposed thereon, and the first and second distances are different, and wherein the temperature sensing device is disposed between the first and second turbine stages.
2. The temperature sensing device of claim 1, including a third sensor holder disposed between the rotatable shaft and the outer casing, wherein the third sensor holder is free of a temperature sensor.
3. The temperature sensing device of claim 1, further including a ring that encircles the rotatable shaft, and the first and second sensor holders are secured to the ring.
4. The temperature sensing device of claim 3, wherein first and second sensor holders are secured to the casing.
5. The temperature sensing device of claim 1, further including a first ring secured to the outer casing and encircling the rotatable shaft, and the first and second sensor holders are secured to the first ring.
6. The temperature sensing device of claim 5, further including a second ring that encircles the rotatable shaft and disposed between the first ring and the rotatable shaft, and the first and second sensor holders are secured to second ring.
7. The temperature sensing device of claim 1, wherein the first turbine stage is a turbine stage of the turbine closest to the combustor and the second turbine stage is a turbine stage of the turbine closest to the first turbine stage.
8. The temperature sensing device of claim 1 in combination with a controller, wherein the controller adjusts operation of the engine in accordance with temperature measurements made by the first temperature sensor and the second temperature sensor.
9. A method of measuring temperatures in a turbine of an engine, wherein the turbine includes first and second turbine stages coupled to a rotatable shaft and an outer casing, comprising the steps of: disposing first and second sensor holders between the rotatable shaft and the outer casing; disposing only a first temperature sensor on the first sensor holder at a first distance from the rotatable shaft; and disposing only a second temperature sensor on the second sensor holder at a second distance from the rotatable shaft; wherein the first and second distances are different and the first and second sensor holders are disposed between the first and second turbine stages.
10. The method of claim 9, including disposing a third sensor holder between the rotatable shaft and the outer casing, wherein the third sensor holder is free of a temperature sensor.
11. The method of claim 9, including disposing a ring that encircles the rotatable shaft between the rotatable shaft and the outer casing, wherein disposing the first and the second sensor holders includes securing the first and second sensor holders to the ring.
12. The method of claim 11, wherein disposing the first and the second sensor holders includes securing first and second sensor holders to the outer casing.
13. The method of claim 9, wherein disposing the first and the second sensor holders includes securing the first and the second sensor holders to the outer casing such that the first and second sensor holders are cantilevered therefrom.
14. The method of claim 9, further including securing a first ring to the outer casing such that the first ring encircles the rotatable shaft, and wherein disposing the first and second sensor holders includes securing the first and second sensor holders to the first ring.
15. The method of claim 14, further including disposing a second ring between the first ring and the shaft such that the second ring encircles the rotatable shaft, and wherein disposing the first and second sensor holders includes securing the first and second sensor holders to the second ring.
16. The method of claim 9, wherein the first turbine stage is a turbine stage of the turbine closest to the combustor, and the second turbine stage is a turbine stage of the turbine closest to the first turbine stage.
17. The method of claim 9, further including adjusting operation of the engine in accordance with temperature measurements made by the first temperature sensor and the second temperature sensor.
18. A temperature sensing device for measuring temperature in a turbine of an engine, wherein the turbine includes a turbine stage coupled to a rotatable shaft and an outer casing, comprising: first and second sensor holders disposed between the rotatable shaft and the outer casing; a first temperature sensor disposed on the first sensor holder at a first radial distance from the rotatable shaft; and a second temperature sensor disposed on the second sensor holder at a second radial distance from the rotatable shaft; wherein each of the first and second sensor holders has only one temperature sensor disposed thereon, and the first and second distances are different; and wherein the first and second sensor holders are cantilevered from the outer casing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) Referring to
(8) The turbine 110 is coupled to the shaft 102 so that rotation of the turbine 110 causes rotation of the shaft 102. In some embodiments, the axial compressor 112 and the centrifugal compressor 114 are all also coupled to and driven by the shaft 102 such that, when the shaft 102 rotates, both compressors 112, 114 rotate at the same speed as the shaft 102 and the turbine 110. In other embodiments, the fan 104, the axial compressor 112, and the centrifugal compressor 114 are coupled to one or more other shafts (not shown), which in turn are driven by the shaft 102. In these embodiments, one or more of the fan 104, the axial compressor 112, and the centrifugal compressor 114 may rotate at speeds different from one another and different than the shaft 102.
(9) When the fan 104 rotates, air is drawn into the engine 100. A portion of the drawn air passes through a bypass flow path 116 to an output port 118 of the engine 100, and thereby generates thrust.
(10) Another portion of the drawn air is directed through the axial compressor 112, and compressed air from the axial compressor 112 is passed into the centrifugal compressor 114.
(11) The centrifugal compressor 114 includes an impeller 122, a diffuser 124, and one or more de-swirl vanes 126. Compressed air enters the impeller 122, passes through the diffuser 124 and the de-swirl vanes 126 and into the combustor 108. The compressed air is combined with a fuel in the combustor 108 and burned to produce rapidly expanding combustion gasses. The combustion gasses pass through and rotate the turbine 110. Because the turbine 110 is coupled to the shaft 102, rotation of the turbine 110 causes rotation of the shaft 102, and thereby rotation of the fan 104 to draw in more air. After passing through the turbine 110, the combustion gasses are exhausted through the output port 118 and provide additional thrust.
(12) Referring to
(13) As described above, combustion gasses generated in the combustor 108 serially pass through each turbine stage and cause such stage to rotate, and such rotation causes rotation of the shaft.
(14) Disposed between, for example, the turbine stage 200a nearest the combustor 108 and the next nearest turbine stage 200b is a temperature sensing device 202. The temperature sensing device 202 may be disposed between any two turbine stages 200, or even following the turbine stage 200c farthest from the combustor 108. Further, one or more additional temperature sending devices 202 may be disposed between other pairs of turbine stages 200. Typically, the combustion gases that enter the turbine 100 are too hot when such gasses reach the most upstream turbine stage 200a, and it may not be feasible to dispose a temperature sensor 202 between the combustor 108 and the turbine stage 200a nearest to the combustor 108. However, it should be apparent that if components of temperature sensing device 202 described herein are identified that can operate in the high temperatures between the combustor 108 and the turbine stage 200a nearest thereto, then a temperature sensing device 202 including such components may be disposed in such position.
(15) Surrounding the turbine stages 200 and the temperature sensing device 202 is a casing 204. In some embodiments, the temperature sensing device 202 is secured to the casing 204 so that the temperature sensing device 202 remains static even as the turbine stages 200 and the shaft 102 rotate.
(16) Referring to
(17) In some embodiments, each sensor holder 208 has a temperature sensor 210 secured thereto. In other embodiments, selected sensor holders 208 have a temperature sensor 210 secured thereto and other sensor holders 208 are free of a temperature sensor 210. In an exemplary embodiment, each sensor holder 208 of the temperature sensing device 202 has at most one temperature sensor 210 secured thereto. The temperature sensor 210 may be, for example, a thermocouple, a thermistor, or any other suitable temperature sensor apparent to one who has skill in the art.
(18) Each temperature sensor 210 is electrically connected to a controller (not shown) that monitors the ambient temperature sensed thereby. The temperature sensor 210 generates an electrical signal having a characteristic such as, for example, a current that varies in accordance with an ambient temperature where the sensor 210 is disposed. In the turbine 110, such ambient temperature is substantially the temperature of the gasses from the combustor passing therethrough that reach the temperature sensing device 202. The controller may be, for example, an engine controller that controls the operation of other components of the engine such as the compressor 106 (
(19) Referring once again to
(20) Although
(21) Referring to
(22) Referring to
(23) It should be apparent that the features shown in
(24) Having the temperature sensors 210 disposed at different distances from the central ring 102 (and, therefore, the shaft 102) rather than at identical distances from the shaft 102 enables the controller to develop a more accurate estimate of the temperature of the combustion gasses passing through the turbine 110 under different operating conditions of the engine.
(25) In some embodiments, the various distances at which the temperature sensors 210 are disposed is determined by analyzing a profile developed during testing of the engine using temperature rakes as described above. The profile may indicate how temperature varies in accordance with radial distance for different operating conditions of the engine.
(26) Referring to
INDUSTRIAL APPLICABILITY
(27) As should be apparent from the forgoing, the turbine temperature sensing device 202 in which temperature sensors 210 are at different radial distances provides an engine controller additional information regarding how the engine 100 is operating compared to one in which all of the temperature sensors 210 are at an identical radial distance. Further, such temperature sensing device 202 may be more economical than using a rake or distributing multiple temperature sensors on each sensor holder 208.
(28) All references, including publications, patent applications, and patents, cited herein are hereby incorporated by reference to the same extent as if each reference were individually and specifically indicated to be incorporated by reference and were set forth in its entirety herein.
(29) The use of the terms a and an and the and similar references in the context of describing the invention (especially in the context of the following claims) are to be construed to cover both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context. Recitation of ranges of values herein are merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, unless otherwise indicated herein, and each separate value is incorporated into the specification as if it were individually recited herein. All methods described herein can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context. The use of any and all examples, or exemplary language (e.g., such as) provided herein, is intended merely to better illuminate the disclosure and does not pose a limitation on the scope of the disclosure unless otherwise claimed. No language in the specification should be construed as indicating any non-claimed element as essential to the practice of the disclosure.
(30) Numerous modifications to the present disclosure will be apparent to those skilled in the art in view of the foregoing description. It should be understood that the illustrated embodiments are exemplary only, and should not be taken as limiting the scope of the disclosure.