Fluidic actuator
09689400 ยท 2017-06-27
Assignee
Inventors
Cpc classification
F01D11/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2270/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01D11/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01D11/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluidic actuator comprising: a fluid nozzle for delivering fluid and a tube having an open end and a closed end, the open end spaced from the fluid nozzle. Also a pair of electrodes mounted in the tube and spaced apart to create a spark gap therebetween. A voltage source is arranged to supply a voltage across the pair of electrodes wherein the voltage causes plasma formation in the spark gap thereby shortening the effective length of the tube.
Claims
1. A fluidic actuator comprising: a fluid nozzle for delivering fluid; a tube having an open end and a closed end, the open end spaced from the fluid nozzle, a pair of electrodes mounted in the tube and spaced apart to create a spark gap therebetween; and a voltage source arranged to supply a voltage across the pair of electrodes wherein the voltage causes plasma formation in the spark gap thereby shortening the effective length of the tube.
2. A fluidic actuator as claimed in claim 1 wherein the pair of electrodes are axially aligned and circumferentially spaced.
3. A fluidic actuator as claimed in claim 1 wherein the pair of electrodes are circumferentially aligned and axially spaced.
4. A fluidic actuator as claimed in claim 1 comprising more than one pair of electrodes.
5. A fluidic actuator as claimed in claim 1 comprising more than one voltage source.
6. A fluidic actuator as claimed in claim 1 further comprising a controller connected to the voltage source.
7. A fluidic actuator as claimed in claim 1 wherein the voltage source is arranged to supply a voltage of 1 kV to 20 kV.
8. A fluidic actuator as claimed in claim 7 wherein the voltage source is controlled by a square wave function.
9. A fluidic actuator as claimed in claim 1 wherein the tube has a circular cross-section.
10. A fluidic actuator as claimed in claim 1 wherein the tube has a rectangular cross-section.
11. A fluidic actuator as claimed in claim 1 wherein the tube has a constant diameter for all its axial length.
12. A fluidic actuator as claimed in claim 1 wherein the tube has a different diameter at points along its axial length.
13. A rotor sub-assembly comprising a rotor having an array of blades, a casing segment surrounding the rotor blades and a fluidic actuator as claimed in claim 1, the fluidic actuator arranged to supply fluid to a clearance control arrangement.
14. A seal arrangement comprising the fluidic actuator as claimed in claim 1 comprising a seal segment a rotating component against which the seal acts and a clearance control arrangement arranged to receive fluid from the fluidic actuator.
15. A gas turbine engine comprising a fluidic actuator as claimed in claim 1.
16. A gas turbine engine comprising a rotor sub-assembly as claimed in claim 13.
17. A gas turbine engine comprising a seal arrangement as claimed in claim 14.
Description
(1) The present invention will be more fully described by way of example with reference to the accompanying drawings, in which:
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(13) The angle is chosen for each specific application of the present invention so that the injection air 46 forms vortices in the clearance 40. The vortices act to substantially block the clearance 40 so that the leakage air 42 is unable to pass through the clearance 40. Instead the leakage air 42 is forced to pass over the blade 34 and do useful work, thereby improving the efficiency of the engine 10.
(14) As will be apparent to the skilled reader, the array of blades rotates at a speed from which the passing frequency can be calculated. The passing frequency is the period with which a specified point on consecutive blades 34 passes a specified point on the segment 36. There may be a sensor 48 positioned on the segment 36 to sense the passing of each blade 34. The signal from the sensor 48 can then be processed to determine the passing frequency of the blades 34 which can be passed to a control arrangement.
(15) The injection air 46 may be supplied from a variety of sources. However, it may typically be air bled from an upstream compressor stage. The efficiency gain from supplying injection air 46 to form vortices in the clearance 40 must be weighed against the efficiency drop from extracting working air from the compressor stages to supply as injection air 46. The amount of injection air 46 can be reduced by supplying injection air 46 through the passages 44 only when a blade 34 is circumferentially aligned with the passages 44 and cutting off the supply in the period between blades 34 passing.
(16) For a turbine stage rotating at approximately 10,000 rpm the passing frequency of the blade tips 38 is approximately 10 kHz and therefore the period is approximately 100 s. A blade 34 passes the passages 44 for approximately of this time, 33 s, due to its width. Thus injection air 46 can most efficiently be supplied for 33 s and then stopped for 66 s, coincident with the passing of the blades 34 forming the array.
(17) The segment 36 will preferably comprise a circumferential array of passages 44 so that injection air 46 can be supplied to form vortices in the clearance 40 above more than one blade tip 38 in the array of blades 34. More preferably, there will be more passages 44 than there are blades 34 in the array of blades 34 and the passages 44 will be distributed with denser circumferential spacing than the blades 34 so that injection air 46 can be supplied to the clearance 40 above all the blade tips 38 simultaneously. Alternatively, the circumferential array of passages 44 may be arranged so that vortices are formed above subsets of the array of blades 34 in a defined sequence. Alternatively there may be the same number of passages 44 in the circumferential array as there are blades 34.
(18) There may be an axial array of passages 44 aligned with each passage 44 in the circumferential array. Alternatively, axially adjacent circumferential arrays may be circumferentially offset. The passages 44 may be coupled to a supply manifold (not shown) that supplies the injection air 46, or more than one manifold each of which supplies a subset of the passages 44.
(19) A fluidic actuator 64 according to the present invention is based on a Hartmann oscillator 50 as shown in
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(21) When the controller 70 sends a control signal to the voltage source 68 it applies a large voltage between the electrodes 66. This causes a spark to cross the gap between A and B which, because it is high voltage, causes the air within the tube 56 to be ionised and therefore to create a plasma. The plasma generated across the gap forms a barrier to fluid flow and causes a pressure wave to travel approximately perpendicular to the plasma, thus towards the open end 58 and closed end 60 of the tube 56. This has the effect that fluid is reflected back from the plasma formed between the electrodes 66 instead of the closed end 60 and thus the effective length of the tube 56 is reduced to x.sub.2. Advantageously, this provides a fluidic actuator 64 that can act at two different frequencies, firstly when the effective length is x.sub.1 and secondly when the voltage source 68 is energised to reduce the effective length to x.sub.2.
(22) The ejected fluid 62 may be captured in a passage or channel, not shown, that is coupled to one or more passages 44 of a clearance control arrangement. In some applications the space between the exit 54 of the fluid nozzle 52 and the open end 58 of the tube 56 may be constrained so that ejected fluid 62 may only travel in certain directions instead of in all radial directions. Beneficially, the ejected fluid 62 can therefore be directed towards the passages 44 of a clearance control arrangement or be directed to another arrangement requiring pulsed fluid flow. It will be understood by the skilled reader that it is necessary to carefully arrange any passage or channel around the space between the exit 54 of the fluid nozzle 52 and the open end 58 of the tube 56 to ensure that the walls do not affect the flow paths of the fluidic actuator 64 and thereby impede its satisfactory action.
(23) For the tip clearance control application discussed above, it is beneficial to energise the voltage source 68 periodically so that shortening the effective length to x.sub.2 coincides with a blade 34 passing the passages 44 through the segment 36 in order to supply fluid to the clearance 40 to block the leakage air flow 42. Thus the control signal from the controller 70 may take the form of a square wave with suitable period. Alternatively it may be sinusoidal for some applications.
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(26) As illustrated, the electrodes 66 are paired so that each pair acts as in the embodiment described with respect to
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(28) The controller 70 acts to energise the voltage sources 68 to create a spark between one or more pairs of electrodes 66. Advantageously, there are several different control schemes available. For example, diametrically opposed pairs of electrodes 66 such as AB, CD may receive voltage simultaneously so that the required voltage is less than for a single pair since the pressure wave from each pair of electrodes 66 need only cross the radius, not the diameter, of the tube 56. Diametrically opposed pairs of electrodes 66 may then be energised in sequence so that a substantially continuous plasma is created to reflect fluid. The sequence may be a simple clockwise or anticlockwise progression or may be a more complex sequence to ensure appropriate stability of the flow.
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(30) Advantageously, pairs of electrodes 66 at a given axial distance from the open end 58 of the tube 56 can be energised to form plasma. Thus this embodiment enables six different effective lengths x, one defined to the closed end 60 of the tube 56 and the other five defined to the position of plasma formation dependent on which pair of electrodes 66 has been energised with voltage from a voltage source 68. Thus the fluidic actuator 64 of the embodiment illustrated in
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(32) The fluidic actuator 64 of the present invention has been described for blocking leakage air 52 from flowing through the clearance 40 between blade tips 38 and the casing segment 36 surrounding a rotor stage of a gas turbine engine 10. However, the present invention also finds utility for a seal arrangement 72 as illustrated in
(33) Advantageously the present invention permits air to be modulated deep inside an engine 10. The present invention may be used for bore flow modulation or for modulation of air flow in other parts of the air system. Alternatively the present invention may be used to modulate other fluids in fluid systems.