Aircraft seat
11753169 · 2023-09-12
Assignee
Inventors
- Julien Aubrun (Cergy, FR)
- Miguel Piris (La Houssaye en Brie, FR)
- Olivier Gueroult (Argenteuil, FR)
- Emmanuel Berdah (Aubervillers, FR)
- Joffrey Delong (Paris, FR)
Cpc classification
B60N2/433
PERFORMING OPERATIONS; TRANSPORTING
F16D3/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60N2/853
PERFORMING OPERATIONS; TRANSPORTING
B60N2/23
PERFORMING OPERATIONS; TRANSPORTING
B64D11/0639
PERFORMING OPERATIONS; TRANSPORTING
B64D11/064
PERFORMING OPERATIONS; TRANSPORTING
F16D63/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60N2/995
PERFORMING OPERATIONS; TRANSPORTING
B64D11/0643
PERFORMING OPERATIONS; TRANSPORTING
B60N2/067
PERFORMING OPERATIONS; TRANSPORTING
B60N2/938
PERFORMING OPERATIONS; TRANSPORTING
F16D65/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T50/40
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
B64D11/06
PERFORMING OPERATIONS; TRANSPORTING
B64D11/06395
PERFORMING OPERATIONS; TRANSPORTING
International classification
B64D11/06
PERFORMING OPERATIONS; TRANSPORTING
B60N2/23
PERFORMING OPERATIONS; TRANSPORTING
B60N2/90
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An aircraft seat includes an actuator and a movement transmission device. The transmission device includes a frame provided with an immobilizing portion and a drive shaft. The transmission device further includes a gear wheel provided with coupling teeth having inclined side walls and a sleeve with an immobilizing portion complementary to the immobilizing portion of the frame, and coupling teeth having inclined side walls. The transmission device also has an elastic member configured to push the sleeve. The stiffness of the elastic member and the inclination of the side walls of the coupling teeth of the gear wheel and sleeve are chosen such that, when a torque greater than a threshold torque is applied to the gear wheel, the sleeve slides on the drive shaft from a position of coupling the sleeve to the gear wheel to a position of immobilizing the sleeve relative to the frame.
Claims
1. An aircraft seat comprising at least one actuator configured to generate movement and at least one movement transmission device, the transmission device comprising: a support; a frame that is fixed relative to the support, said frame being provided with an immobilizing portion, a drive shaft driven by the actuator to rotate about an axis of rotation, a gear wheel provided with coupling teeth having inclined side walls, said gear wheel being freely rotatable relative to the drive shaft; a sleeve slidably mounted on the drive shaft and integral in rotation with the drive shaft, the sleeve comprising a complementary immobilizing portion configured to couple with the immobilizing portion of the frame as well as coupling teeth having inclined side walls configured to couple with the coupling teeth of the gear wheel; and an elastic member configured to push the sleeve along an axial direction towards the gear wheel to couple the sleeve to the gear wheel; the elastic member having a stiffness; the stiffness of the elastic member and the inclination of the side walls of the coupling teeth of the gear wheel and of the coupling teeth of the sleeve being chosen such that, when a torque greater than a threshold torque is applied to the gear wheel, the sleeve slides on the drive shaft from a driving position in which the sleeve is coupled to the gear wheel, to an immobilizing position in which the immobilizing portion of the frame is coupled to the complementary immobilizing portion of the sleeve.
2. The aircraft seat according to claim 1, wherein the side walls of the coupling teeth of the sleeve form an angle of between 8° and 30° relative to the axis of rotation, and wherein the elastic member has a stiffness of between 2 daN/mm and 15 daN/mm.
3. The aircraft seat according to claim 1, wherein the immobilizing portion comprises grooves extending over a first circular arc, and wherein the complementary immobilizing portion comprises projections extending over a second circular arc, the second circular arc being smaller than the first circular arc.
4. The aircraft seat according to claim 3, wherein a height of the coupling teeth of the gear wheel and/or a height of the coupling teeth of the sleeve is greater than a height of the projections of the immobilizing portion and/or a height of the projections of the complementary immobilizing portion.
5. The aircraft seat according to claim 1, wherein a first end of the frame comprises a counterbore, and wherein the sleeve comprises a housing arranged facing the counterbore of the frame; and wherein the elastic member is arranged around the drive shaft and housed partly in the counterbore of the sleeve and partly in the housing of the sleeve.
6. The aircraft seat according to claim 1, wherein an internal face of the sleeve and an external face of the drive shaft comprise a slide connection extending along the direction of the axis of rotation.
7. The aircraft seat according to claim 6, wherein one of the internal face of the sleeve and the external face of the drive shaft comprises a groove extending along the direction of the axis of rotation, and the other comprises a recess and a pin that is housed in the recess and configured to slide in the groove.
8. The aircraft seat according to claim 1, wherein the transmission device comprises a first stop arranged on the drive shaft, and a second stop arranged on the drive shaft at a predefined distance from the first stop, wherein the gear wheel, the sleeve, the elastic member, and the frame are fitted onto the drive shaft between the first stop and the second stop.
9. The aircraft seat according to claim 8, wherein the first stop comprises a peripheral groove formed on the outer face of the drive shaft, and a stop ring embedded in the peripheral groove.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) Other features, details, and advantages will become apparent upon reading the detailed description below, and upon analyzing the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
DESCRIPTION OF EMBODIMENTS
(9) For the most part, the drawings and the description below contain elements that are definite in nature. Therefore not only can they serve to provide a better understanding of this disclosure, but they also contribute to its definition, where appropriate.
(10) Referring to
(11) The seat 2 comprises one or more electric drive systems 18 dedicated to pivoting each of these hinges and to moving the seat 2 and the passenger footrest 16. Each drive system 18 comprises a rotary or linear actuator 20 and a transmission system 22 for transmitting the movement generated by the actuator to the seat element to be moved.
(12) The transmission system 22 comprises mechanical parts suitable for transmitting the movement generated by the actuator 20 to a movable element of the seat. These mechanical parts comprise, for example, gears, connecting rods, a rack, etc.
(13) The transmission system 22 also comprises a transmission device 24 shown in particular in
(14) The support 26 is, for example, composed of a plate 38 and a jaw 40 integral with the plate 38.
(15) The frame 28 is fixed to the plate 38 by means of the jaw 40. In the example shown, the frame 28 has the shape of a cylinder of revolution. Referring to
(16) The first end face 44 is also provided with an immobilizing portion 52 of an immobilization device for locking the rotation of the sleeve 32 relative to the frame 28. In the embodiment shown, the immobilization device is a temporarily inactive clutch-type coupling. The immobilizing portion 52 is composed of alternating projections 54 and grooves 56 extending around the tubular edge of the first end face 44 of the frame. The projections 54 have a crenellated shape. The grooves 56 arranged between two projections 54 extend over a circular arc C1, illustrated in
(17) The drive shaft 30 is mounted to rotate freely within the bore 42 of the frame. The drive shaft 30 is suitable for being driven to rotate about the axis of rotation A-A by a mechanical part of the transmission system or by the actuator.
(18) The sleeve 32 is slidably mounted around the drive shaft 30. It forms a sliding shuttle capable of moving between a position of driving the output gear wheel 34, shown in
(19) The sleeve 32 is integral in rotation with the drive shaft 30. For this purpose, a slide connection 58 is formed between the sleeve 32 and the drive shaft 30. This slide connection 58 extends along the direction of the axis of rotation A-A, as shown in
(20) Referring to
(21) The first end face 66 comprises a circular and central housing 70 suitable for receiving a part of the elastic member 36. The annular bottom of this housing forms a support face 72 for the elastic member. The support face 50 of the frame and the support face 72 of the sleeve are perpendicular to the axis of rotation A-A.
(22) The elastic member 36 is fitted around the drive shaft 30. It is suitable for acting between the frame 28 and the sleeve 32. In particular, in the embodiment shown, the elastic member 36 bears against the support face 50 of the frame and against the support face 72 of the sleeve. It is arranged partly in the counterbore 48 of the frame and partly in the housing 70 of the sleeve. The elastic member 36 is suitable for pushing the sleeve 32 along an axial direction towards the output gear wheel 34. The elastic member 36 has a stiffness of between 2 daN/mm and 15 daN/mm.
(23) In the embodiment shown, the elastic member 36 is a compression spring. Alternatively, the elastic member 36 may be composed of one or more spring washers of the Belleville type or of the wave spring type also known as Smalley washers.
(24) Referring to
(25) The second end face 68 of the sleeve is provided with coupling teeth 80 extending axially. These coupling teeth 80 are suitable for coupling with coupling teeth 82 extending axially from the output gear wheel 34. The coupling teeth 80 of the sleeve and the coupling teeth 82 of the output gear wheel form a dog clutch type of coupling.
(26) The coupling teeth 80 of the sleeve and the coupling teeth 82 of the output gear wheel have side walls 84 inclined relative to the axis of rotation A-A so that the coupling teeth 80 of the sleeve are able to rub and slide against the coupling teeth 82 of the output gear wheel, when a predefined torque is applied to the output gear wheel. Thus, as can be seen in the figures, the coupling teeth 80 of the sleeve and the coupling teeth 82 of the output gear wheel have a generally triangular shape. Advantageously, the side walls 84 form an angle α of between 8° and 30° relative to the axis of rotation A-A.
(27) Advantageously, the inclination of the side walls 84 of the coupling teeth 80, 82, the stiffness of the elastic member 36, and the friction of the slide connection 68 can be adapted so that the transmission device 24 blocks the transmission of movement from the moment a selected threshold torque is reached in order to protect the actuator 20 and the mechanical parts of the transmission system 22 in the event of a sudden impact. The transmission device is a mechanical immobilization system which allows immobilizing the rotary system at a desired torque by mechanical control of the immobilization.
(28) Preferably, the height H of the coupling teeth 80 of the sleeve and the height H of the coupling teeth 82 of the output gear wheel is greater than the height h of the projections 54 of the frame and the height h of the projections 76 of the sleeve so that the coupling teeth 80 of the sleeve always remain in engagement with the coupling teeth 82 of the output gear wheel. Thus, the immobilization device can once again drive the output gear wheel 34 after an immobilization of the transmission device, without the intervention of a technician.
(29) The output gear wheel 34 is mounted to rotate freely about the drive shaft 30. Conventionally, it comprises the coupling teeth 82 extending axially, and gear teeth 86 extending radially and suitable for coupling with a rack, gear wheel, or other part of the transmission system 22.
(30) The transmission device 24 has a first stop 90 and a second stop 92 which are arranged on the drive shaft. The second stop 92 is positioned at a predefined distance from the first stop 90. This predefined distance is substantially greater than the sum of the width of the gear wheel, the width of the sleeve 32, and the width of the frame 28.
(31) In the embodiment shown, the first 90 and the second 92 stops each have a circular peripheral groove 88 and a stop ring 100 suitable for being embedded in a peripheral groove 88 in order to lock the axial movement of the frame 28, sleeve 32, and output gear wheel 34. Alternatively, the first 90 and second 92 stops are for example composed of a circlip or a shoulder on the drive shaft 30.
(32) Alternatively, the projections 54 and grooves 56 of the immobilizing portion 52 and the projections 76 and grooves 78 of the complementary immobilizing portion 74 are replaced by an annular friction surface. In this variant, rotation of the sleeve 32 is blocked by friction of a tubular portion of the sleeve against a tubular portion of the frame.
(33) During operation, in the passive state, the transmission device 24 is in a driving position. In this position, the elastic member 36 presses the sleeve 32 towards the output gear wheel 34 as shown in
(34) When large torque is applied to the output gear wheel 34, for example during a sudden stop, the transmission device 24 automatically places itself in an immobilized position. Indeed, the torque transmitted by the output gear wheel 34 via the effect from the inclination of the side faces 84 of the coupling teeth 80, 82 of the sleeve and of the gear wheel overcomes the force provided by the elastic member 36 to press the sleeve 32 against the output gear wheel 34. The sleeve 32 then moves axially towards the frame 28. The immobilizing portion 74 of the sleeve couples with the immobilizing portion 52 of the frame. As the frame 28 is fixed, the sleeve 32 is rotationally immobilized relative to the frame.
(35) This disclosure is not limited to the exemplary embodiment described above solely as an example, but encompasses all variants conceivable to a person skilled in the art within the context of the protection being sought.