Device For Sequentially Opening And Closing Air Flaps
20190283569 · 2019-09-19
Assignee
Inventors
Cpc classification
B60K11/085
PERFORMING OPERATIONS; TRANSPORTING
Y02T10/88
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
International classification
Abstract
Device for manoeuvring a plurality of flaps, having mechanical way including a drive wheel, supporting, in a raised position, a circular locking disc with a diameter smaller than and the same axis of rotation as the drive wheel, and also including a plurality of rockers, and connected by mechanical transmission way to one or more flaps, the rockers including at least two semicircular cutouts having a radius equal to the radius of the locking disc and which are arranged such that, when a rocker is placed in one position, the centre of a semicircular cutout is disposed on the main axis such that the locking disc engages with the semicircular cutout and locks the rocker in the position.
Claims
1. A device for maneuvering a plurality of flaps, each pivoting about an axis, and intended to be placed in front of a cooling device of a motor vehicle wherein the device comprises: a mechanical device including a drive wheel, driven in rotation about a main axis, one face of the disc formed by the drive wheel supporting in a raised position a circular locking disc with a diameter smaller than and the same rotation axis as the drive wheel, the maneuvering device further including a plurality of rockers, each freely articulated about a secondary axis which are parallel to the main axis and connected by mechanical transmission to one or more flaps, said rockers comprising at least two semicircular cutouts having a radius equal to a radius of the circular locking disc and which are arranged so that, when a rocker is placed in one position, a center of at least one of the at least two semicircular cutout is placed on the main axis, so that the circular locking disc engages with the at least one of the at least two semicircular cutout and locks said rocker in said one position.
2. The maneuvering device as claimed in claim 1, in which the semicircular cutouts are placed on a peripheral edge of the rocker.
3. The maneuvering device as claimed in claim 1, in which the drive wheel supports an axial shaft disposed on the same face of the disk formed by the drive wheel supporting the circular locking disk, at a distance from the main axis greater than a radius of the circular locking disk.
4. The maneuvering device as claimed in claim 3, in which each rocker comprises radial slots disposed between two adjacent semicircular cutouts, in which said shaft circulates to cause a rocker to pivot from one position to another position adjacent a preceding position about its secondary axis.
5. The maneuvering device as claimed in claim 3, in which the circular locking disk includes a recess disposed radially in line with the axial shaft, in such a manner as to allow the pivoting of a rocker when the latter changes position.
6. The maneuvering device as claimed in claim 1, in which the mechanical transmission connecting one of the rockers to one or more flats are formed by: a set of links connecting a body of the rocker to a rotation shaft or to a rear face of the flap or flaps, a flexible cable transmission of push/pull type, a system of gears.
7. The maneuvering device as claimed in claim 1, in which each rocker successively occupies a number of fixed positions equal to a number of semicircular recesses that the rocker supports, so that it is possible to dispose the flaps successively in a plurality of particular fixed positions to adjust a quantity of air reaching the cooling device.
8. The maneuvering device as claimed in claim 1, in which, when the drive wheel effects a rotation of one turn, each of the rockers effects, in accordance with a sequence imposed by the direction of rotation of the drive wheel, a movement of rotation from one position to another position adjacent to a preceding position.
9. The maneuvering device as claimed in claim 14, in which each rocker successively occupies each possible particular fixed positions when the drive wheel has effected as many turns on itself as a number of radial slots supported by a rocker.
10. The maneuvering device as claimed in claim 1, in which, when a rocker is placed in a position, a torque applied to the main rotation shaft, resulting from the aerodynamic forces exerted on the flap or flaps connected to said rocker when the vehicle is in motion, is substantially zero.
11. The maneuvering device as claimed in claim 1, in which the drive wheel is rotated by a motor coupled to a gearbox.
12. The device as claimed in claim 1, in which the rotation of the drive wheel may be interrupted between the change of position of two rockers circumferentially placed in adjacent positions, so that some of the flaps are in a position different from the position of others.
13. The device as claimed in claim 1, disposed in front of the cooling device of a motor vehicle.
14. The maneuvering device as claimed in claim 2, in which the drive wheel supports an axial shaft disposed on the same face of the disk formed by the drive wheel supporting the circular locking disk, at a distance from the main axis greater than a radius of the circular locking disk.
15. The maneuvering device as claimed in claim 4, in which the circular locking disk includes a recess disposed radially in line with the axial shaft, in such a manner as to allow the pivoting of a rocker when the latter changes position.
16. The maneuvering device as claimed in claim 4, in which the circular locking disk includes a recess disposed radially in line with the axial shaft, in such a manner as to allow the pivoting of a rocker when the latter changes position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The invention will be better understood on reading the appended figures, which are provided by way of nonlimiting example, and in which:
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DETAILED DESCRIPTION OF THE INVENTION
[0040] The maneuvering device shown in
[0041] The flaps 10, 11 and 12 are articulated about respective axes aa, bb and cc. These axes are not necessarily parallel to one another.
[0042] The mechanical means 2 comprise a drive wheel driven in rotation about a main axis XX by a motor 40 coupled to a gearbox 41.
[0043] Rockers, here two in number, respectively 23 and 24, are each articulated to rotate freely about a secondary rotation axis, respectively SS and TT. The secondary rotation axes SS and TT are parallel to the main rotation axis XX.
[0044] The rotation of the rockers about their respective secondary rotation axes controls the movement of the flaps.
[0045] Accordingly, the rocker 23 is connected to the flap 10 by a link 31 fixed to the rocker 23 in the embodiment on which the present description is based. The link 31 and the rocker 23 could therefore form a single component pivoting about the axis SS.
[0046] The link 31 is connected to the flap 10 by a second link 311.
[0047] The rocker 24 supports a link 32, also fixed to the rocker 24. The link 32 and the rocker 24 could therefore also form a single component pivoting about the secondary rotation axis TT.
[0048] The link 32 is connected to a link 321 articulated on the flap 11. The flap 12 is connected to the flap 11 by a link 322. The movement in rotation of the rocker 24 allows the flaps 11 and 12 to be moved simultaneously.
[0049] It will be noted here that the rotation of the flaps about their axes by the rockers may be produced by any other mechanical transmission means such as, for example, sets of gears, or by flexible cables of push/pull type.
[0050]
[0051] The drive wheel 21 supports on one of its faces 210 a locking disk 22. This locking disk has a radius r.sub.2 less than the radius r.sub.1 of the drive wheel 21.
[0052] Each rocker includes at its periphery a plurality of semicircular cutouts of concave shape, here two semicircular cutouts per rocker. The number of semicircular cutouts is generally exactly the same on each of the rockers. The rocker 23 comprises two semicircular cutouts 231 and 232, and the rocker 24 comprises two semicircular cutouts 241 and 242. These semicircular cutouts have a radius r.sub.2, identical to the radius of the locking disk 22.
[0053] The secondary rotation axes SS and TT are disposed so that when a rocker is in a given angular position the center of a semicircular cutout is disposed on the main axis XX. As a result of this the ring of the locking disk engages the semicircular cutout of the rocker which comes to bear on the locking disk. The rocker is prevented from rotating by the locking disk 22, and remains retained in this position during the rotation of the drive wheel and of the locking disk. Each rocker is therefore able to occupy as many positions as there are semicircular cutouts that it supports, which, in the example shown in
[0054]
[0055] It will be noted that the forces exerted by the flow of air on the flaps 10, 11 and 12 and transmitted by the links to the rockers in the form of a torque then produce a resultant torque equal to zero about the axis XX, and that it is no longer necessary to exert a particular motor torque to retain the rockers in position.
[0056] The drive wheel 21 also supports an axial shaft 211 extending axially from the face 210 supporting the locking disk 22. The axial shaft 211 is disposed at a distance r.sub.3 from the axis XX greater than the radius r.sub.2 of the locking disk 22.
[0057] Each rocker includes one or more radial slots, respectively 233, 243 each disposed between two adjacent semicircular cutouts. The radial slot 233 of the rocker 23 is disposed between the semicircular cutouts 231 and 232, and the radial slot 243 of the rocker 24 is disposed between the semicircular cutouts 241 and 242.
[0058] The rotation of a rocker about its axis is effected by causing the drive wheel to rotate. The axial shaft 211 then engages in the radial slot of the rocker and drives the latter in rotation about its secondary rotation axis.
[0059] A recess 221 is formed in the locking disk in line with the axial shaft to allow the rotation and the change of position of the rocker. As the rotation of the drive wheel continues, the axial shaft 211 leaves the radial slot, and the locking disk engages the next semicircular cutout corresponding to the next position in which the rocker is immobilized during further rotation of the drive wheel.
[0060]
[0061]
[0062]
[0063] The steps shown in
[0064] When the drive wheel is caused to rotate, the shaft 211 penetrates into the radial slot 233 as represented in
[0065] The rocker 23 is driven in rotation by the shaft 211, as represented in
[0066] On further rotation of the drive wheel 21 (
[0067] The movement of the rocker 23 drives the rotation of the link 31 acting on the flap 10, which passes from the closed position to the open position.
[0068] When it is wished to increase the volume of external air penetrating into the engine compartment, supplementary flaps are opened.
[0069] To effect this movement the drive wheel is caused to rotate again. The shaft 211 penetrates into the radial slot 243 and drives the rocker 24 in rotation about its secondary rotation axis. The recess 211 is then situated in line with the radial slot 243 and frees up the space allowing the rocker 24 to change position, as shown in
[0070] As the rotation of the drive wheel continues, the shaft 211 releases the radial slot 243. The locking disk 22 engages the semicircular cutout 242 and immobilizes the rocker 24 in this new position. The rotation of the rocker 24 drives the links 32, 321 and 323 and opening of the flaps 11 and 12.
[0071] It will be noted here that, when the drive wheel 21 has effected an angular travel of 360, the two rockers have changed position and have driven the complete opening of the flaps.
[0072] The closing of the flaps is effected by causing the drive wheel to turn in the opposite direction, and by executing in order the steps shown in
[0073] The change of position of the rockers is effected in accordance with a particular sequence. And the change of position of a rocker is effected when the other rockers are immobilized in their respective positions by the locking disk.
[0074] A result of this is that the motor torque generated by the motor 40 to drive the wheel 21 in rotation is limited to only the torque necessary to cause to turn the rocker controlling the movement of the flap or flaps connected to it from the closed position to the open position and vice versa. Once the movement has been effected, there is no longer any requirement to power the motor 40 to retain the flaps in the required position.
[0075] Obviously, the embodiment of a maneuvering device according to the invention is not limited to what has been described above.
[0076] It is in fact possible, within the limit of the space available around the drive wheel, to increase the number of rockers, and to provide rockers able to occupy more than two positions. This configuration may be of particular interest when the aim is to increase the number of flaps to reduce the power necessary to cause a flap to pass from one position to another, or to reduce the volume necessary for the relative movement of the flaps, but also when the aim is finer modulation of the flow of air entering into the engine compartment.
[0077]
[0078] A radial slot, respectively 254, 255, 264, 265, 274, 275, is interleaved between the adjacent semicircular cutouts of each pair, which results in two radial slots per rocker.
[0079] The rockers 25, 26 and 27 from
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[0091] When the drive wheel has effected these two turns, corresponding to the number of radial slots supported by each of the rockers, each of said rockers has occupied all of the three possible positions corresponding to the three semicircular cutouts formed at their peripheries.
[0092] The closure of the flaps is effected by causing the drive wheel to turn in the other direction, and by carrying out the sequence described above in reverse order.
[0093] It is again noted that the change of position of a rocker is effected when the other rockers are immobilized in their respective positions, which allows reduction of the motor torque to cause the drive wheel to rotate to the torque necessary to effect the change of position of only one rocker.
[0094] The sequence of opening and of closing the flaps is effected in accordance with the order of positioning the rockers around the main axis XX.
[0095] Other variants may equally be envisaged in which, for example, the drive wheel supports two locking disks disposed one on each of the faces of the disk formed by the drive wheel. The rockers are then placed on either side of the drive wheel. This variant allows problems of overall size to be solved or the number of flaps that can be actuated by the mechanical means to be increased.
TERMS INDEX
[0096] 10 Pivoting flap [0097] 11 Pivoting flap [0098] 12 Pivoting flap. [0099] 2 Mechanical means [0100] 21 Drive wheel [0101] 211 Axial shaft [0102] 210 Face of the drive wheel supporting the locking disk [0103] 22 Locking disk [0104] 221 Recess [0105] 23, 24, 25, 26, 27 Rockers [0106] 231, 232, 241, 242, 251,252, 253, 261, 262, 263, 271, 272, 273, Semicircular cutouts [0107] 233, 243, 254, 255, 264, 265, 274, 275 Radial slots [0108] 31, 311, 32, 32a, 321, 322 Mechanical transmission means; links [0109] 40 Motor [0110] 41 Gearbox [0111] aa Pivot axis of flap 10 [0112] bb Pivot axis of flap 11 [0113] cc Pivot axis of flap 12 [0114] r.sub.1 Radius of the drive wheel [0115] r.sub.2 Radius of the locking disk [0116] r.sub.3 Distance of the axial shaft from the main axis XX. [0117] SS Secondary rotation axis of the rocker 23 [0118] TT Secondary rotation axis of the rocker 24 [0119] UU Secondary rotation axis of the rocker 25 [0120] VV Secondary rotation axis of the rocker 26 [0121] WW Secondary rotation axis of the rocker 27 [0122] tt Rotation axis of the link 32a on the rocker 24. [0123] XX Main axis