ROTOR BLADE SYSTEM
20170183089 ยท 2017-06-29
Assignee
Inventors
Cpc classification
Y02E10/72
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
B64C27/615
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64C27/615
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rotor blade system having a plurality of rotor blades, wherein at least one of the rotor blades includes an outer surface having generally opposing first and second surfaces, the rotor blade including a fluid flow altering surface positioned relative to one of the first or second surfaces which is moveable between first and second positions, wherein movement of the fluid flow altering surface is effected by an expandable member.
Claims
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41. A rotor blade system having a plurality of rotor blades, wherein at least one of the rotor blades includes an outer surface having generally opposing first and second surfaces, the rotor blade including a fluid flow altering surface positioned relative to one of the first or second surfaces which is moveable between first and second positions, wherein movement of the fluid flow altering surface is effected by an expandable member, wherein the expandable member is positioned at or close to a tip edge of the rotor blade.
42. A rotor blade system according to claim 41 wherein, when the expandable member is in a first condition, the fluid flow altering surface is in its first position, and wherein, when the expandable member is in a second condition, the fluid flow altering surface is in its second position.
43. A rotor blade system according to claim 41 wherein, expansion of the expandable member from its first condition to its second condition effects movement of the fluid flow altering surface from its first position to its second position, and wherein, contraction of the expandable member from its second condition to its first condition effects movement of the fluid flow altering surface from its second position to its first position.
44. A rotor blade system according to claim 41 including a sensor for sensing the angular position of the expandable member about the axis of rotation of the system and a controller for moving the expandable member between its first and second positions based on sensed angular position of the expandable member.
45. A rotor blade system according to claim 44 wherein the controller effects movement of the expandable member to its second position as, or shortly before, the expandable member reaches an angular position corresponding to retreating of the blade.
46. A rotor blade system according to claim 44 wherein the controller effects movement of the expendable member to its first position as, or shortly before, the expandable member reaches an angular position corresponding to advancing of the blade.
47. A rotor blade system according to any one of the preceding claims wherein the expandable member is made from a resiliently flexible material.
48. A rotor blade system according to claim 47 wherein the expandable member is made from a polymeric material capable of withstanding pressures in the range of 10 PSI to 30 PSI, preferably 15 PSI to 20 PSI.
49. A rotor blade system according to any one of the preceding claims wherein, when the fluid flow altering surface is in its first condition, the surface does not affect or greatly affect the flow of fluid over the respective one of the first or second surfaces, and wherein when the fluid flow altering surface is in its second condition, the surface does affect the flow of fluid over the respective one of the first or second surfaces.
50. A rotor blade system according to claim 41 wherein the expandable member is positioned at a suction, e.g. downstream of the airflow, side of the rotor blade.
51. A rotor blade system according to claim 41 wherein the expandable member is positioned in a region of the blade which is between 10% to 20% of the root span length from the tip edge.
52. A rotor blade system according to claim 41 wherein the expandable member extends between 10% and 20% of the root span length of the rotor blade, along a trailing edge of the rotor blade.
53. A rotor blade system according to claim 41 wherein the expandable member is positioned in an region of the blade which is preferably between 0% and 30% of the chord length, more preferably between 2% and 20% of the chord length, and most preferably between 5% and 10% of the chord length.
54. A rotor blade system according to any one of the preceding claims wherein the fluid flow altering surface includes or is connected to a stiffening member, for providing resistance to forces experienced by the member or surface arising from airflow.
55. A rotor blade system according to claim 54 wherein the stiffening member is positioned within the cavity.
56. A helicopter including a rotor blade system according to claim 41.
Description
[0008] Embodiments of the invention will now be described with reference to the accompanying drawings in which:
[0009]
[0010]
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[0015]
[0016]
[0017] Referring firstly to
[0018] The schematic cross-sectional views of
[0019] The rotor blade 10 includes a fluid flow altering surface 20 which is positioned on an underside of the blade 10. The surface 20 forms a continuous surface with the lower surface 14 and is positioned towards to trailing edge 21 of the rotor blade 10. The surface 20 is moveable between first (
[0020] The surface 20 in this embodiment is a surface of an expandable member 22 which is moveable between its first and second positions, (see
[0021] The system includes one or more sensors (not shown) for sensing the angular position of each blade (and thus its respective expandable member 22) about its rotational axis A. The system also includes one or more controllers capable of receiving a signal(s) from the sensor(s) and for effecting movement of the expandable member between its first and second positions depending upon the sensed position of each blade about the axis A. In a first operative state (as shown in
[0022] In a second operative state of the system, the (preferably all) expandable member 22 is held in its second position for the entire cycle, e.g. when the helicopter is travelling at a relatively low speed.
[0023]
[0024] In this particular example the expandable member 22 is made from a flexible material which is resiliently flexible. For example, the material may be a polymeric material of a fibre-reinforced polymer.
[0025] A particularly effective polymeric material for the expandable member 22 should be capable of withstanding internal inflated pressures in the range of 10 PSI to 30 PSI, preferably 15 PSI to 20 PSI.
[0026] It will be appreciated, however, that the expandable member 22 could be made from any desirable material so long as it is capable of expanding between first and second conditions which correspond to the first and second positions of the surface 20.
[0027] It can be seen that the expandable member 22 includes a cavity 24 for receiving a fluid. The flow may be a gas or liquid and the cavity 24 may be connected by way of a conduit 26 to a fluid source in order to provide a passage for fluid (e.g. gas or liquid) into and out from the cavity 24.
[0028] As can be seen in
[0029] Thus, the expandable member 22 expands from its first condition (see
[0030] Other embodiments could include a system which uses an accumulator to provide positive pressure to the system, or a pump system which can inflate and deflate the expandable member 22. These embodiments are merely suggestions of how the invention could be effected and in no way should be taken to be limiting.
[0031] As mentioned previously, when the surface 20 is in its first position (see
[0032] Whilst the rotor blade system 6 described could use any shape of rotor blade 10, it has been found to be particularly effective in combination with a blade having a swept back portion at or near its tip.
[0033]
[0034] In embodiments the expandable member may be inflatable and deflatable between its first and second positions and thus the material from which the expandable member is made may likewise by stretchable to enable it to be expanded under inflation and deflated to its previous condition.
[0035] Whilst in the embodiments described above the pump 28 is shown within the envelope of the aerofoil blade, between the first and second surfaces 12, 14, it should be appreciated that the pump could be provided elsewhere on the aircraft with a suitable extension of the conduit 26 being provided so as to provide a continuous passage between the pump and the cavity 24.
[0036] The features disclosed in the foregoing description, or the following claims, or the accompanying drawings, expressed in their specific forms or in terms of a means for performing the disclosed function, or a method or process for attaining the disclosed result, as appropriate, may, separately, or in any combination of such features, be utilised for realising the invention in diverse forms thereof.