Encapsulated soft-lead capacitance probe for a gas turbine engine
10436612 ยท 2019-10-08
Assignee
Inventors
- Kevin Ford (Middletown, CT, US)
- Eli Warren (Wethersfield, CT, US)
- Corey A. Benoit (Uncasville, CT, US)
- Edward F Dreger (Burlington, CT, US)
- Erik D. Rice (Lebanon, CT, US)
- Mark W. Costa (Storrs, CT, US)
Cpc classification
F01D11/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01B7/14
PHYSICS
F01D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/60
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F04D29/325
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2260/83
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D25/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A capacitance probe monitors the distance between a blade tip and a fan, compressor or turbine case. The capacitance probe may be attached to a liner, and may travel with the liner as it radially expands due to thermal changes. The capacitance probe may include a circuit board sensor with a metallic plate, and one or more capacitors. The metallic plate may be encapsulated within an insulating material. A plurality of soft leads may be in electrical communication with the circuit board sensor, allowing a lower lead weight, reduced size and increased flexibility. The soft leads may also be embedded in the liner. In this way, the capacitance probe can record more accurate distance measurements and promote a gas turbine engine's continued and efficient operation.
Claims
1. A fan case assembly for a gas turbine engine, comprising: a fan with a fan blade rotatable within a fan case with a liner therein, wherein the liner lines the fan case and is thermally conforming, the liner and the fan blade thermally expand or contract radially and define a gap between the liner and a tip of the fan blade; and a gap measuring assembly comprising a capacitance probe mounted to the liner that travels with the liner as the liner expands and or contracts, the capacitance probe being able to sense the gap between the liner and the fan blade tip of the fan blade as the fan blade tip passes relative to the liner; the capacitance probe including: a circuit board sensor mounted to the liner; a housing including an insulating material, and the circuit board sensor including a capacitor and a metallic plate, the metallic plate disposed within the insulating material and in electronic communication with the circuit board sensor; a soft lead extending from the housing and being embedded in the liner and being flexible and movable with the liner as the liner thermally expands, the soft lead carries electronic information from the circuit board sensor; and the housing having a base and a cap, the base having a notch through which the soft lead passes, the housing connected to the liner so that the circuit board sensor is modifiable without damaging the capacitance probe, including adding, removing or adjusting capacitors on the circuit board sensor.
2. The fan case assembly of claim 1, wherein the capacitance probe includes an annular ring pad in electronic communication with the capacitor and operatively associated with the metallic plate.
3. The fan case assembly of claim 1, wherein the capacitance probe includes plural capacitors and the annular ring pad is in electronic communication with the plural capacitors.
4. The fan case-assembly of claim 1, wherein the liner is able to expand in response to thermal or mechanical changes.
5. The fan case assembly of claim 1, wherein the insulating material for capacitance probe is a polymer.
6. The fan case assembly of claim 1, wherein the insulating material for the capacitance probe is a ceramic.
7. The fan case assembly of claim 1, wherein the housing for the capacitance probe is made from an electrically conductive material.
8. The fan case assembly of claim 4, wherein the gap measuring assembly is able to sense a distance at which the fan blade tip passes relative to the liner.
9. A gas turbine engine, comprising; a fan located at an axially forward end of the gas turbine engine and axially forward of a compressor, the fan with a fan blade rotatable within a fan case with a liner therein, wherein the liner lines the fan case and is thermally conforming, the liner and fan thermally expand or contract radially and define a gap between the liner and a tip of the fan blade; the compressor located axially forward of a turbine; the turbine mechanically connected to the fan and the compressor; a gap measuring assembly comprising: a capacitance probe mounted to the liner that travels with the liner as the liner expands and or contracts, the capacitance probe being able to sense the gap between the liner and the fan blade tip of the fan blade as the fan blade tip passes relative to the liner; the capacitance probe including: a circuit board sensor mounted to the liner; a housing including an insulating material, and the circuit board sensor including a capacitor and a metallic plate, the metallic plate disposed within the insulating material and in electronic communication with the circuit board sensor; a soft lead extending from the housing and being embedded in the liner and being flexible and movable with the liner as the liner thermally expands, the soft lead carries electronic information from the circuit board sensor; and the housing having a base and a cap, the base having a notch through which the soft lead passes, the housing connected to the liner so that the circuit board sensor is modifiable without damaging the capacitance probe, including adding, removing or adjusting capacitors on the circuit board sensor.
10. The gas turbine engine of claim 9, wherein the capacitance probe includes an annular ring pad in electronic communication with the capacitor and operatively associated with the metallic plate.
11. The gas turbine engine of claim 9, wherein the capacitance probe includes plural capacitors and the annular ring pad is in electronic communication with the plural capacitors.
12. The gas turbine engine of claim 9, wherein the insulating material is a polymer.
13. The gas turbine engine of claim 9, wherein the insulating material is a ceramic.
14. The gas turbine engine of claim 9, wherein the housing is made from an electrically conductive material.
15. A method for measuring clearance of a fan blade tip, of a fan blade connected to a fan, relative to a liner that lines a fan case of a gas turbine engine, comprising: attaching a capacitance probe to the liner, the capacitance probe including: a circuit board sensor mounted to the liner; a housing including an insulating material, and the circuit board sensor including a capacitor and a metallic plate, the metallic plate disposed within the insulating material and in electronic communication with the circuit board sensor; a soft lead extending from the housing and being embedded in the liner and movable with the liner as the liner thermally expands, the soft lead carries electronic information from the circuit board sensor; and the housing having a base and a cap, the base having a notch through which the soft lead passes, the housing connected to the liner so that the circuit board sensor is modifiable without damaging the capacitance probe, including adding, removing or adjusting capacitors on the circuit board sensor; rotating the fan about a central longitudinal axis; and sensing a distance between the fan blade tip and the capacitance probe when the fan blade tip travels past the sensor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) For further understanding of the disclosed concepts and embodiments, reference may be made to the following detailed description, read in connection with the drawings, wherein like elements are numbered alike, and in which:
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(10) It is to be noted that the appended drawings illustrate only typical embodiments and are therefore not to be considered limiting with respect to the scope of the disclosure or claims. Rather, the concepts of the present disclosure may apply within other equally effective embodiments. Moreover, the drawings are not necessarily to scale, emphasis generally being placed upon illustrating the principles of certain embodiments.
DETAILED DESCRIPTION
(11) Turning now to the drawings, and with specific reference to
(12) As is well known in the art, ambient air enters the compressor 11 at an inlet 19, is pressurized, and is then directed to the combustor 12, mixed with fuel and combusted. This generates combustion gases that flow downstream to the turbine 13, which extracts kinetic energy from the exhausted combustion gases. The turbine 13, via central rotating shaft 17, rotatingly drives the compressor 11 and the fan 18, which draws in ambient air.
(13) A nacelle 20 is a substantially cylindrical housing around the gas turbine engine 10. As best understood through
(14) The fan 18 may include a plurality of blades 32 radially extending from the central longitudinal axis 15, as best shown in
(15) In accordance with the present disclosure, a capacitance probe 36 may be used to monitor the distance between the tip 33 and the fan case 34 or a liner 37 as the fan 18 rotates, as shown in
(16) While using the expandable liner 37 of the present disclosure greatly aids in maintaining the desired tolerance between components, the present disclosure goes further by associating the capacitance probe 36 with the liner 37 in a manner which minimizes space requirements. This inventive contribution is significant as the capacitance probe 36 must do so within the confines of a dynamically changing material while not affecting the overall size envelope of the liner 37 itself. Toward this end, the capacitance probe 36 may be attached directly to the liner 37. The attachment mechanism may include rivets, bolts, screws, adhesives, clips or other methods as explained in more detail below. As the liner 37 expands in response to thermal changes, the attached capacitance probe 36 may travel with the liner 37. In this way, the capacitance probe 36 can record a more accurate distance measurement. The capacitance probe 36 may also detect a distance between other rotating members, including compressor 11 blades or turbine 13 blades, and other static structures, including compressor 11 cases or turbine 13 cases.
(17) More specifically, the capacitance probe 36 may include a circuit board sensor 38, as best shown in
(18) The capacitance probe 36 may further include an annular ring pad 39, a via 41 and a circuit track 43, as best shown in
(19) In addition to accommodating expansion and contraction of the liner 37, the circuit board sensor 38 construction, as described below, allows an easier replacement or modification of the circuit board sensor 38 without damaging the capacitance probe 36. Additionally, it may be possible to adjust the capacitance of the circuit board sensor 38 according to the task at hand by adding, removing or adjusting capacitors 42 on the circuit board sensor 38.
(20) The capacitance probe 36 may be disposed within a housing 46, as shown in
(21) In doing so, when the tip 33 passes by the capacitance probe 36 at one distance during one rotation, and then a second distance during a subsequent rotation, the capacitance between the circuit board sensor 38 and tip 33 will change based on the change in distance. This difference in capacitance may then be converted to a voltage and recorded for use in clearance control systems or redesign efforts.
(22) As indicated above, not only does the present disclosure set forth a manner by which blade clearances and other tolerances can be accurately measured, but it does so with minimal increase to the overall footprint of the liner 37. One way in which it does so is using soft leads 48. More specifically, one or more soft leads 48 may be in electrical communication with the circuit board sensor 38 in the capacitance probe 36. The soft leads 48 may be soldered to the capacitors 42, or to another part of the circuit board sensor 38. The soft leads 48 may exist free from any external tubing or routing structure, allowing the soft leads 48 to have a lower weight, reduced size and increased flexibility. The lack of an external structure may also allow for more efficient and compact soft lead 48 routing and egress. The soft leads 48 may also be embedded in the liner 37, and may move with the liner 37 as it thermally expands. The soft leads 48 may carry electronic information from the circuit board sensor 38 to another electronic device. Additionally, the soft leads 48 may further include a capacitance-based temperature compensation system for more accurate distance readings between the tip 33 and the fan case 34.
(23) The capacitance probe 36 may be disposed within the housing 46, as shown in
(24) A method for measuring tip clearance relative to a fan case can be understood by referencing the flowchart in
(25) While the present disclosure has shown and described details of exemplary embodiments, it will be understood by one skilled in the art that various changes in detail may be effected therein without departing from the spirit and scope of the disclosure as defined by claims supported by the written description and drawings. Further, where these exemplary embodiments (and other related derivations) are described with reference to a certain number of elements it will be understood that other exemplary embodiments may be practiced utilizing either less than or more than the certain number of elements.
INDUSTRIAL APPLICABILITY
(26) In operation, the present disclosure sets forth a capacitance probe 36 system which can find industrial applicability in a variety of settings. For example, the disclosure may be advantageously employed in sensing parameters and characteristics within a gas turbine engine 10. More specifically, the capacitance probe 36 can be used to measure a distance between the tip 33 and the fan case 34 during the operation of the gas turbine engine 10. If a desired tolerance level is not achieved, conditions adverse to gas turbine engine 10 efficiency may result, including increased turbulence, internal drag or flow around the fan 18 rather than through the fan 18. Accordingly, it is important to accurately monitor the distance between the tip 33 and the fan case 34.
(27) The capacitance probe 36 system of the present disclosure may employ soft leads 48 in electronic communication with a circuit board sensor 38 in the capacitance probe 36. The soft leads 48 allow the entire lead apparatus to be smaller, lighter and more flexible.
(28) The capacitance probe 36 may also attach to the liner 37. As the liner 37 expands radially in response to thermal energy generated during operation, the capacitance probe 36 may travel with the liner 37 to increase measurement accuracy.
(29) The capacitance probe 36 system of the present disclosure contributes to a gas turbine engine's 10 continued and efficient operation. The disclosed capacitance probe 36 system may be original equipment on new gas turbine engines 10, or added as a retrofit to existing gas turbine engines 10. While the foregoing has been described as a system for monitoring the distance between the tip 33 and the fan case 34, it can be described with equal accuracy as a gap measuring assembly.