MULTI-MODE SENSOR
20180340807 ยท 2018-11-29
Inventors
Cpc classification
G01L19/0092
PHYSICS
G01D21/02
PHYSICS
International classification
G01D21/02
PHYSICS
G01L9/00
PHYSICS
Abstract
A multi-mode sensor includes an inductive sensor module configured to measure a first physical quantity based on magnetic induction. The inductive sensor module includes a coil wound around a coil axis. A non-inductive sensor module is provided to measure a second physical quantity using a non-inductive sensing mode. A portion of the non-inductive sensor module is radially inward of a portion of the coil relative to the coil axis.
Claims
1. A multi-mode sensor, comprising: an inductive sensor module configured to measure a first physical quantity based on magnetic induction, the inductive sensor module comprising a coil wound around a coil axis; and a non-inductive sensor module configured to measure a second physical quantity using a non-inductive sensing mode, wherein: a portion of the non-inductive sensor module is radially inward of a portion of the coil relative to the coil axis.
2. The sensor of claim 1, wherein the portion of the non-inductive sensor that is radially inward of the portion of the coil overlaps when viewed in a radial direction with the portion of the coil.
3. The sensor of claim 1, wherein all of the portion of the non-inductive sensor module that is radially inward of the portion of the coil is non-metallic.
4. The sensor of claim 1, wherein: the portion of the non-inductive sensor that is radially inward of the portion of the coil overlaps when viewed in a radial direction with the portion of the coil; and all of the overlapping region of the portion of the non-inductive sensor is non-metallic.
5. The sensor of claim 1, wherein the non-inductive sensor module is configured to perform an optical measurement.
6. The sensor of claim 5, wherein the non-inductive sensor module comprises a probe unit and an optical interrogation system configured to exchange electromagnetic radiation with the probe unit in order to interrogate a state of the probe unit that is dependent on the second physical quantity.
7. The sensor of claim 6, wherein the portion of the non-inductive sensor module that is radially inward of the portion of the coil comprises the probe unit.
8. The sensor of claim 6, where the second physical quantity comprises pressure and the probe unit is configured to undergo a deformation or displacement in response to pressure adjacent to the sensor.
9. The sensor of claim 1, wherein the second physical quantity comprises pressure.
10. The sensor of claim 1, wherein the first physical quantity comprises an amount of target object material within a sensing range of the sensor.
11. A turbo-machine assembly comprising: a shaft or disc configured to rotate; and the sensor of claim 1 configured to measure the first and second physical quantities in a region adjacent to a surface of the shaft or disc during rotation of the shaft or disc.
12. The assembly of claim 11, wherein the first physical quantity comprises a clearance between a reference surface and the surface of the shaft or disc.
13. A turbo-machine assembly, comprising: a casing; a fan or turbine including a plurality of blades, mounted rotatably within the casing; and the sensor of claim 1 configured to measure the first and second physical quantities in a region between a radially inner surface of the casing and the blades and/or between the radially inner surface of the casing and a radially outer surface of the fan or turbine in between the blades.
14. The assembly of claim 13, wherein the sensor is mounted into the radially inner surface of the casing.
15. The assembly of claim 13, wherein the first physical quantity comprises one or more of the following: a clearance between one or more of the blades and the radially inner surface of the casing, a shape of one or more of the blades, relative positions of tips of two or more of the blades with respect to each other.
16. The assembly of claim 13, wherein the second physical quantity comprises a pressure in the region between the radially inner surface of the casing and the blades and/or between the radially inner surface of the casing and the radially outer surface of the fan or turbine in between the blades.
17. (canceled)
Description
[0013] Embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings in which corresponding reference symbols indicate corresponding parts, and in which:
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020] According to embodiments of the invention, a multi-mode sensor is provided which comprises an inductive sensor module and a non-inductive sensor module. The inductive sensor module is configured to measure a first physical quantity based on magnetic induction. The first physical quantity may be determined for example by measuring a change in the inductance of a coil of the inductive sensor module. The inductive sensor module may be referred to as an inductive sensor or as an eddy-current sensor. The first physical quantity may be any physical quantity which is measurable using magnetic induction. For example, the first physical quantity may be a physical quantity which leads to a change in the inductance of a coil of the inductive sensor module. The first physical quantity may for example comprise the proximity of a metallic target object. In this case, the inductive sensor module may be considered to be a proximity sensor.
[0021] As mentioned above in the introductory part of the description, situations may arise in which it is desirable to measure a physical quantity using magnetic induction and one or more further physical quantities which are not derivable easily (or at all) using magnetic induction. Using multiple sensors to achieve this can disadvantageously increase the amount of space required for the implementation, as well as cost and complexity. Furthermore, there may be a negative impact on the structural integrity of the apparatus being monitored. Embodiments of the present invention address these challenges by providing a multi-mode sensor in which the geometries of the modules comprising the sensor are configured in a particular way which allows a high degree of compactness and structural simplicity to be achieved without loss of functionality. Measurements of multiple physical quantities can be made at the same position (or at very close positions), thereby facilitating relating the multiple measurements to each other. This may be particularly important where measurements are made in dynamic machinery where components are moving relative to the multi-mode sensor.
[0022] In an embodiment, the multi-mode sensor in particular comprises an inductive sensor module having a coil wound around a coil axis and a non-inductive sensor module which has at least a portion positioned radially inward of a portion of the coil. The inventors have recognised that the natural space provided by the hole along the axis of the coil can be exploited to house additional sensing apparatus, optionally operating independently of the coil, without increasing the overall size of the sensing apparatus.
[0023]
[0024] In an embodiment, as is the case in the example of
[0025] In order that the portion 4 of the non-inductive sensor module does not interfere with a measurement of a first physical quantity by the inductive sensor module, the portion 4 of the non-inductive sensor module may be provided in a non-metallic form. The present inventors have recognised that a range of sensing modes can be implemented using non-inductive sensor modules which comprise only non-metallic elements in the region adjacent to where the sensing functionality is to be implemented (e.g. in the region of the coil 2 of the inductive sensing module). The inventors have recognised in particular that the space within the coil 2 itself is usable for mounting such elements.
[0026] In an embodiment, as is the case in the example of
[0027] In an embodiment, the non-inductive sensing module is configured to measure a second physical quantity using a non-inductive sensing mode. The non-inductive sensing mode may comprise an optical measurement. For example, in an embodiment the non-inductive sensing module comprises a probe unit (corresponding to portion 4 in
[0028]
[0029] In an embodiment, as shown in the example of
[0030]
[0031] The sensor 1 may be mounted directly within a recess of the apparatus 18 or may be at least partially encapsulated within a protective structure 22, as shown in the example of
[0032] In an embodiment, the sensor 1 is provided within a turbo-machine assembly 51. Examples are shown schematically in
[0033] In an example such as that shown in
[0034] In an example such as that shown in
[0035] The first physical quantity may comprise one or more of the following: a clearance between one or more of the blades and the radially inner surface 17 of the casing 52, a shape of one or more of the blades, relative positions of tips of two or more of the blades (e.g. circumferential positions, which may change due to distortion of the blades). The second physical quantity may comprise a pressure in a region 10 between a radially inner surface 17 of the casing 52 and the blades 56 and/or between the radially inner surface 17 of the casing 52 and a radially outer surface of the fan or turbine in between the blades.
[0036] It may be desirable to minimise the size of the clearance between the blades 56 and casing 52 in order to favour high operating efficiency while avoiding excessive contact between the blades 56 and the casing 52.
[0037] In an embodiment, a controller 62 is provided for controlling the size and/or shape of the casing 52 based on the clearance detected by the sensor 1. In an embodiment, the controller 62 is connected to control elements 58, which may be heating or cooling systems and/or mechanical actuators, for example. A control signal for controlling these elements is transmitted to them by the controller 62 based on the output from the sensor 1. In other embodiments, the controller 62 and/or control elements 58 may not be provided and the sensor I may be used instead for development or diagnostic purposes only. For example, in an embodiment, the assembly may be configured to initiate a shut-down procedure if the sensor 1 detects that the clearance (e.g. an average clearance) between the blades 56 and the casing 52 falls below a safety level threshold.
[0038] In the embodiments shown, the sensor 1 is configured to measure clearance at a single circumferential position. In other embodiments multiple sensors 1 may measure the clearance at a plurality of difference circumferential positions to enable the measurement of an anisotropic (i.e. as in azimuthally varying rather than axially symmetric) clearance. In the context of turbo-machine assembly for use in aircraft engines, such an anisotropic clearance may occur due to loading on the assemblies during flight for example.
[0039] The features defined in the claims may be used together in any combination.