Electric generator for an aircraft, comprising a ventilation device with controlled opening
10088055 ยท 2018-10-02
Assignee
Inventors
Cpc classification
Y10T137/108
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
F16K15/161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/7891
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
H02K2205/09
ELECTRICITY
B64D41/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16K1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64D41/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An electric generator for an aircraft includes a sealed casing, a rotating shaft, and a ventilation device, which has at least one orifice configured to place a chamber positioned inside the rotating shaft in communication with the exterior of the sealed casing. For at least one orifice, an inertia sealing system is configured to occupy an open state when the speed of rotation of the rotating shaft is below a given threshold, in which state the sealing system is spaced from the orifice, and a closed state when the speed of rotation of the rotating shaft is above the given threshold, in which state the sealing system seals the orifice.
Claims
1. An electric generator for an aircraft, comprising: a sealed casing; a rotating shaft; and a ventilation device, the ventilation device comprising: at least one orifice configured to place a chamber positioned inside the rotating shaft in communication with an exterior of the sealed casing; for at least one orifice, an inertia sealing system configured to occupy an open state when a speed of rotation of the rotating shaft is below a given threshold, in which state the sealing system is spaced from the orifice, and a closed state when the speed of rotation of the rotating shaft is above the given threshold, in which state the sealing system seals the orifice, wherein each sealing system comprises a blade of which a first end is connected to the rotating shaft and of which a second end is positioned to cooperate with the orifice, and wherein the first end of the blade is offset relative to the second end of the blade in a direction of rotation of the rotating shaft.
2. The electric generator according to claim 1, wherein the blade has a geometry and/or an elasticity such that the second end of the blade is spaced from an inner surface of the rotating shaft in the open state and the second end of the blade is abutted against the inner surface of the rotating shaft in the closed state.
3. The electric generator according to claim 1, wherein the blade comprises a first face oriented towards inner surface of the rotating shaft, a second face opposite the first face, and a balance weight fixed to the second face of the blade, proximate to the second end of the blade.
4. The electric generator according to claim 1, wherein the blade comprises a first face oriented towards inner surface of the rotating shaft and an elastomer coating on the first face, at least in a zone cooperating with the orifice.
5. The electric generator according to claim 2, wherein the blade comprises a first face oriented towards the inner surface of the rotating shaft, a second face opposite the first face, and a balance weight fixed to the second face of the blade, proximate to the second end of the blade.
6. The electric generator according to claim 5, wherein the blade comprises a first face oriented towards the inner surface of the rotating shaft and an elastomer coating on the first face, at least in a zone cooperating with the orifice.
7. The electric generator according to claim 2, wherein the blade comprises a first face oriented towards the inner surface of the rotating shaft and an elastomer coating on the first face, at least in a zone cooperating with the orifice.
8. An electric generator for an aircraft, comprising: a sealed casing; a rotating shaft; and a ventilation device, wherein the ventilation device comprises: at least one orifice configured to place a chamber positioned inside the rotating shaft in communication with an exterior of the sealed casing; for at least one orifice, an inertia sealing system configured to occupy an open state when a speed of rotation of the rotating shaft is below a given threshold, in which state the sealing system is spaced from the orifice, and a closed state when the speed of rotation of the rotating shaft is above the given threshold, in which state the sealing system seals the orifice, wherein each sealing system comprises a blade of which a first end is connected to the rotating shaft and of which a second end is positioned to cooperate with the orifice, the blade having a geometry and/or an elasticity such that the second end of the blade is spaced from an inner surface of the rotating shaft in the open state and the second end of the blade is abutted against the inner surface of the rotating shaft in the closed state, and wherein the blade comprises a first face oriented towards the inner surface of the rotating shaft, a second face opposite the first face, and a balance weight fixed to the second face of the blade, proximate to the second end of the blade.
9. The electric generator according to claim 8, wherein the blade comprises a first face oriented towards the inner surface of the rotating shaft and an elastomer coating on the first face, at least in a zone cooperating with the orifice.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further features and advantages will become clear from the following description of the disclosure herein, this description being given solely by way of example, with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION
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(8) For the description hereinafter, the axis A14 of the rotating shaft 14 corresponds to the longitudinal direction. A longitudinal plane contains the axis A14 and a transverse plane is a plane perpendicular to the axis A14. A radial direction is perpendicular to the axis A14.
(9) The rotating shaft 14 comprises an outer surface 18 positioned outside the sealed casing 12.
(10) The electric generator 10 comprises a gasket 20 positioned between the rotating shaft 14 and the sealed casing 12.
(11) In accordance with a feature of the subject matter herein, the electric generator 10 comprises a ventilation device 22, which has: at least one orifice 24 configured to place the interior of the rotating shaft 14 in communication with the exterior of the sealed casing 12 of the electric generator 10, for at least one orifice 24, an inertia sealing system 26 configured to occupy an open state, visible in
(12) Because the rotating shaft 14 has a speed of rotation greater than the given threshold during the phases of operation of the engine of the aircraft, the casing 12 is kept at a pressure greater than or equal to the exterior pressure during the flight phases. When the engine of the aircraft is stopped, the rotating shaft 14 is stopped and therefore has a speed of rotation below the given threshold, and so the interior of the rotating shaft 14 communicates with the exterior of the sealed casing 12 so as to balance the pressures between the interior and the exterior of the sealed casing 12. Thus, the pressure inside the sealed casing 12 no longer rises flight after flight.
(13) In accordance with one embodiment, the rotating shaft 14 comprises a chamber 28 positioned inside the rotating shaft 14, which chamber communicates with the interior of the sealed casing 12. At least one orifice 24 connects the chamber 28 and the outer surface 18 of the rotating shaft 14.
(14) Each orifice 24 is positioned so as to lead outside the sealed casing 12.
(15) The ventilation device 22 preferably comprises as many sealing systems 26 as orifices 24.
(16) In accordance with an embodiment illustrated in
(17) The chamber 28 comprises or is delimited by a cylindrical inner surface 30 with an axis coaxial to the axis A14 of the rotating shaft 14 extending between at least two transverse planes P1 and P2 (visible in
(18) The chamber 28 has a diameter greater than the diameters of the orifices 24, 24. In order to give an order of magnitude, the diameter of the chamber 28 is at least five times greater than that of the orifices 24, 24.
(19) Each orifice 24 comprises an edge in the form of a cylinder portion. This edge will be referred to as a seat 32 throughout the rest of the description.
(20) In accordance with one embodiment, each sealing system 26 comprises, in the chamber 28, an elastically deformable blade 34 of which a first end 36 is connected to the rotating shaft 14, more particularly to the inner surface 30 of the rotating shaft 14, and of which a second end 38 is positioned so as to cooperate with the seat 32 of the orifice 24 in the closed state in order to seal said orifice.
(21) The blade 34 has a geometry and/or an elasticity such that the second end 38 is spaced from the inner surface 30 of the rotating shaft 14 in the open state and is abutted against the inner surface 30 of the rotating shaft 14 in the closed state.
(22) In accordance with one embodiment, the blade 34 is made of spring steel.
(23) In accordance with a further feature, the first end 36 of the blade 34 is offset relative to the second end 38 of the blade 34 in accordance with the direction of rotation of the rotating shaft 14.
(24) The blade 34 comprises a first face 40 oriented towards the inner surface 30 of the rotating shaft 14 and a second face 42, which is opposite the first face 40, oriented towards the center of the chamber 28.
(25) The thickness of the blade 34 corresponds to the dimension of the blade 34 in the radial direction, which also corresponds to the distance separating the first and second faces 40 and 42. The width of the blade 34 corresponds to the dimension of the blade 34 in the longitudinal direction, and the length of the blade 34 corresponds to the dimension of the blade 34 considered over the circumference of the rotating shaft 14.
(26) The blade 34 has a width to thickness ratio greater than 5. The blade 34 has a length substantially greater than its width.
(27) The blade 34 preferably comprises a balance weight 44 fixed on the second face 42 of the blades 34, in the proximity of (or proximate to) the second end 38 of the blade 34, in order to increase the force of the pressure of the blade 34 on the seat 32 and thus improve the tightness.
(28) The blade 34 advantageously comprises an elastomer coating 46 on the first face 40, at least in a zone cooperating with the seat 32 of the orifice 24, in order to improve the tightness.
(29) While at least one exemplary embodiment of the present invention(s) has been shown and described, it should be understood that modifications, substitutions and alternatives may be apparent to one of ordinary skill in the art and can be made without departing from the scope of the disclosure described herein. This application is intended to cover any adaptations or variations of the specific embodiments discussed herein. In addition, in this disclosure, the terms comprise or comprising do not exclude other elements or steps, and the terms a, an or one do not exclude a plural number. Furthermore, characteristics or steps which have been described with reference to one of the above exemplary embodiments may also be used in combination with other characteristics or steps of other exemplary embodiments described above.