MECHANISM FOR OPENING/CLOSING A LATCH FOR A MOTOR VEHICLE DOOR LEAF
20230366244 · 2023-11-16
Assignee
Inventors
Cpc classification
E05B81/20
FIXED CONSTRUCTIONS
International classification
E05B81/14
FIXED CONSTRUCTIONS
Abstract
The present disclosure relates to an opening/closing assistance mechanism for assisting the opening/closing of a latch for an opening. The opening/closing assistance mechanism includes an electric actuator configured to control a closing and an opening of the latch. The electric actuator includes a reducer which includes a drive device configured to perform a displacement stroke which further includes a first stroke portion for the opening of the latch and a second stroke portion for closing the latch. The reducer has a first reduction ratio on the first stroke portion and a second reduction ratio on the second stroke portion. The first reduction ratio is different from, and can be lower than, the second reduction ratio.
Claims
1. An opening/closing assistance mechanism for assisting opening and closing of a latch of a door leaf, the opening/closing assistance mechanism comprising: an electric actuator configured to control a closing and an opening of the latch, the electric actuator including a reducer comprising a drive device configured to perform a displacement stroke, wherein the displacement stroke comprises a first stroke portion for opening the latch and a second stroke portion for closing the latch, wherein the reducer includes a first reduction ratio on the first stroke portion and a second reduction ratio on the second stroke portion, the first reduction ratio being different from the second reduction ratio.
2. The opening/closing assistance mechanism according to claim 1, wherein the first reduction ratio is lower than the second reduction ratio.
3. The opening/closing assistance mechanism according to claim 1, wherein when the drive device performs the first stroke portion, the reducer is configured to generate a first torque and when the drive device performs the second stroke portion, the reducer is configured to generate a second torque, the second torque being greater than the first torque.
4. The opening/closing assistance mechanism according to claim 1, wherein when the drive device performs the first stroke portion, the reducer is configured to generate a first speed and when the drive device performs the second stroke portion, the reducer is configured to generate a second speed, the first speed being greater than the second speed.
5. The opening/closing assistance mechanism according to claim 1, wherein the reducer comprises a first lever arm controlled in displacement by the drive device when the drive device performs the first stroke portion, and a second lever arm controlled in displacement by the drive device when the drive device performs the second stroke portion.
6. The opening/closing assistance mechanism according to claim 5, wherein the second lever arm is shorter than the first lever arm.
7. The opening/closing assistance mechanism according to claim 5, wherein the reducer comprises a transmission device configured to be driven by the drive device, and to drive the first and second lever arms.
8. The opening/closing assistance mechanism according to claim 7, wherein at least one of the transmission device and the drive device is a wheel, the displacement stroke of which is a rotation.
9. The opening/closing assistance mechanism according to claim 8, wherein the second lever arm is disposed on the transmission device so that the transmission device has an axis of rotation coinciding with a second axis of rotation of the second lever arm.
10. The opening/closing assistance mechanism according to claim 7, wherein the transmission device comprises a pin disposed axially on the transmission device, and the first lever arm comprises a gate configured to be driven by the pin when the drive device performs the first stroke portion.
11. The opening/closing assistance mechanism according to claim 10, wherein the pin is configured to pass from a first side of the gate to a second side of the gate when the drive device performs the first stroke portion, and the pin is configured to pass from the second side of the gate to the first side of the gate when the drive device performs a third stroke portion.
12. The opening/closing assistance mechanism according to claim 1, wherein the reducer comprises a planetary gear train.
13. The opening/closing assistance mechanism according to claim 12, wherein the reducer comprises an output shaft controlled in displacement by the drive device when the drive device performs the first stroke portion and when the drive device performs the second stroke portion, the first stroke portion corresponding to displacement of the output shaft in a first direction of displacement and the second stroke portion corresponding to displacement of the output shaft in a second direction of displacement opposite to the first direction of displacement.
14. The opening/closing assistance mechanism according to claim 13, wherein when the drive device performs the first stroke portion, the reducer is configured to generate a first torque and when the drive device performs the second stroke portion, the reducer is configured to generate a second torque, the second torque being greater than the first torque, wherein the planetary gear train comprises a first stage and a second stage, wherein the output shaft is controlled in displacement by the drive device via the second stage, in order to generate the second torque permitting the latch to be closed, when the drive device performs the second stroke portion.
15. The opening/closing assistance mechanism according to claim 14, wherein the first stage is a planet carrier and the second stage is at least one planet gear.
16. The opening/closing assistance mechanism according to claim 13, wherein when the drive device performs the first stroke portion, the reducer is configured to generate a first speed and when the drive device performs the second stroke portion, the reducer is configured to generate a second speed, the first speed being greater than the second speed, wherein the planetary gear train comprises a first stage and a second stage, wherein the first stage is configured to be blocked when the drive means performs the second stroke portion, and the second stage is configured to be blocked when the drive means performs the first stroke portion, in order to generate the first speed allowing the opening of the latch.
17. The opening/closing assistance mechanism according to claim 12, wherein when the drive device performs the first stroke portion, the reducer is configured to generate a first speed and when the drive device performs the second stroke portion, the reducer is configured to generate a second speed, the first speed being greater than the second speed, wherein the planetary gear train comprises a first stage and a second stage, wherein the first stage is configured to be blocked when the drive means performs the second stroke portion, and the second stage is configured to be blocked when the drive means performs the first stroke portion, in order to generate the first speed allowing the opening of the latch.
18. The opening/closing assistance mechanism according to claim 17, wherein the first stage is a planet carrier and the second stage is at least one planet gear.
19. The opening/closing assistance mechanism according to claim 12, wherein the planetary gear train comprises the first stage and the second stage, wherein the first stage has an axis of rotation around which the rotation of the first stage is allowed in a first direction of rotation and blocked in a second direction of rotation opposite to the first direction of rotation, and the second stage has an axis of rotation around which the rotation of the second stage is allowed in a first direction of rotation and blocked in a second direction of rotation.
20. A latch comprising: an opening/closing assistance mechanism according to claim 1; a bolt and a pawl movable between an open position of the latch and a closed position of the latch, wherein the drive device is configured to drive the bolt into the closed position of the latch when the drive device performs the second stroke portion, and the drive device being configured to drive the pawl into the open position of the latch when the drive device performs the first stroke portion.
Description
DRAWINGS
[0057] In order that the disclosure may be well understood, there will now be described various forms thereof, given by way of example, reference being made to the accompanying drawings, in which:
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[0072] The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
DETAILED DESCRIPTION
[0073] The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
[0074]
[0075] The latch 12 may include a bolt 121 and a pawl 122 movable between the closed position of the latch (
[0076] In addition, the opening/closing assistance mechanism 10 includes an electric actuator 16 configured to control the closing and opening of the latch 12.
[0077] The actuator 16 is associated with a reducer 161 including a drive device 18 configured to perform a displacement stroke including a first stroke portion for opening the latch, and a second stroke portion for closing the latch.
[0078] The opening/closing assistance mechanism 10 includes the electric actuator 16 and the reducer 161.
[0079] The reducer 161 has a first reduction ratio for opening the latch 12, that is to say, on the first stroke portion, and a second reduction ratio for closing the latch 12, that is to say, on the second stroke portion. The second reduction ratio is different from the first reduction ratio.
[0080] The reducer 161 then has a first reduction ratio when the electric actuator 16 controls the opening of the latch 12, and a second reduction ratio when the electric actuator 16 controls the closing of the latch 12.
[0081] The actuator 16 is configured to control the drive device 18.
[0082] In the represented forms, the actuator 16 is a rotary actuator, rotatably movable in order to control the closing and the opening of the latch via the drive device 18.
[0083] In a variant not represented, the actuator 16 could be movable in translation, for example. This is referred to as a linear actuator.
[0084] The opening/closing assistance mechanism 10 makes it possible to perform a function for assisting the opening and the closing of the latch 12, allowing a user to remotely control the opening and the closing of the latch 12.
[0085] The drive device 18 can be a wheel the displacement stroke of which is a rotation.
[0086] The first stroke portion and the second stroke portion of the drive device 18 can be performed in the same direction of movement (
[0087] In a variant not represented, the first stroke portion of the drive device 18 can be performed in a first direction of displacement, and the second stroke portion can be performed in a second direction of displacement opposite to the first direction of displacement.
[0088] The first reduction ratio is advantageously lower than the second reduction ratio. In this manner, a torque provided for closing the latch is higher than that provided for opening the latch, while a speed provided for opening the latch is higher than that for closing the latch.
[0089] The reducer 161 may include at least one lever arm (e.g., lever arm 162 and/or lever arm 164), controlled in displacement by the drive means 18 when the drive means 18 performs the first stroke portion and/or the second stroke portion. The at least one lever arm (e.g., lever arm 162 and/or lever arm 164) can be configured to control the opening and/or closing of the latch.
[0090] In the example provided, the reducer 161 can include the first lever arm 162 controlled in displacement by the drive device 18 when the drive device 18 performs the first stroke portion. Thus, the first lever arm 162 is controlled in displacement when the actuator 16 controls the opening of the latch.
[0091] The reducer 161 may include a second lever arm 164 controlled in displacement by the drive device 18 when the drive device 18 performs the second stroke portion. Thus, the second lever arm 164 is controlled in displacement when the actuator 16 controls the closing of the latch.
[0092] These are the lever arms 162, 164 which vary the reduction ratio making it possible to vary the speed and the torque at the output of the reducer 161.
[0093] The first lever arm 162 and the second lever arm 164 are movable. They are driven by the actuator 16 via the drive device 18.
[0094] The reducer 161 may include a transmission device 19 configured to be driven by the drive device 18. The transmission device 19 may be configured to drive the first 162 and second 164 lever arms. More particularly, in the variant in which the drive device 18 is a wheel, the first lever arm 162 can be movable in rotation around a first axis of rotation A and the second lever arm 164 can be movable in rotation around a second axis of rotation B.
[0095] The transmission device 19 can be a wheel the displacement stroke of which is a rotation.
[0096] In the variant, not represented, in which the actuator 16 is movable in translation, the first lever arm 162 and the second lever arm 164 are movable in translation.
[0097] The first lever arm 162 is configured to drive the pawl 122 into the open position of the latch, and the second lever arm 164 is configured to drive the bolt 121 into the closed position of the latch.
[0098] As shown in
[0099] As shown in particular in
[0100] The drive device 18 may have an axis of rotation coinciding with the axis of rotation A of the first lever arm 162. The drive device 18 may be configured to be driven in rotation around the axis of rotation A in a first direction of rotation F1 (
[0101] As will be seen later, the first direction of rotation F1 may correspond to the direction of displacement of the drive device 18 to perform the first and second stroke portions. The second direction of rotation F2 can correspond to a third stroke portion of the drive device 18, which corresponds, for example, to a reset of the opening/closing assistance mechanism 10.
[0102] The drive device 18 can be configured to drive in rotation the first lever arm 162 in order to control the opening of the latch 12. The drive device 18 can be configured to drive in rotation the second lever arm 164 in order to control the closing of the latch 12.
[0103] More specifically, the drive device 18 can be configured to drive the transmission device 19 in order to drive the first 162 and second 164 lever arms. The transmission device 19 may have an axial pin 20 configured to cooperate with a gate 22 of the first lever arm 162. The first lever arm 162 may be driven in rotation by the axial pin 20. The drive device 18 may be configured to drive the first lever arm 162 via the axial pin 20 of the transmission device 19. The drive device 18 is therefore a means for driving the first lever arm 162.
[0104] Thus, the first lever arm 162 can have a gate 22 configured to be driven by the transmission device 19, for example via the axial pin 20.
[0105] The gate 22 can be configured to be driven by the axial pin 20 of the transmission device 19 when the drive device 18 performs the first stroke portion.
[0106] Thus, the gate 22 can be configured to be driven by the axial pin 20 of the transmission device 19 when the electric actuator 16 controls the opening of the latch 12.
[0107] The second lever arm 164 is, for example, disposed on the transmission device 19 so that the transmission device 19 has an axis of rotation coinciding with the second axis of rotation B of the second lever arm 164. The second lever arm 164 is driven in rotation by the drive device 18 via the transmission device 19. The drive device 18 is therefore a means for driving the second lever arm 164.
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[0109] More specifically, the actuator 16 is controlled in displacement so as to drive in rotation the drive device 18 around the axis of rotation A in the first direction of rotation F1. The drive device 18 then performs a first stroke portion in order to drive the first lever arm 162 from an initial position (
[0110] The actuator 16, controlled in displacement to allow the opening of the latch 12, can drive the first wheel 17 which drives the second wheel 18 which drives the third wheel 19. The third wheel 19 can drive in rotation the first lever arm 162 via the axial pin 20.
[0111] More specifically, the axial pin 20 drives the gate 22 of first lever arm 162 in order to drive the first lever arm 162.
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[0114] More specifically, the actuator 16 is controlled in displacement so as to drive in rotation the drive device 18 around the axis of rotation A in the first direction of rotation F1. The drive device 18 then performs a second stroke portion in order to bring the second lever arm 164 into contact with the bolt 121. The second lever arm 164 allows controlling the latch 12 in the closed position. Even more specifically, the second lever arm 164 drives the bolt 121 in displacement around a striker 40 in order to allow the latch 12 to be closed. The drive device 18 then causes the bolt 121 to be displaced, via a rotational movement of the second lever arm 164. When the drive device 18 rotates in the first direction of rotation F1 to perform the second stroke portion, the transmission means 19 is driven in the second direction of rotation F2 and brings the second lever arm 164 into contact with the bolt 121.
[0115] The bolt 121 is driven by the second lever arm 164, which then makes it possible to control the latch 12 in the closed position. More specifically, the second lever arm 164 causes the bolt 121 to be displaced into the closed position.
[0116] The actuator 16, controlled in displacement to allow the closing of the latch 12, can drive the first wheel 17 which drives the second wheel 18 which drives the third wheel 19. The third wheel 19 can drive in rotation the second lever arm 164.
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[0118] This mechanical resetting operation is automatic. It makes it possible to refrain from an additional action, for example, via a switch, aimed at positioning the opening/closing assistance mechanism in an intermediate position, between the opening and the closing positions.
[0119] Thus, the drive device 18 is configured to drive the first lever arm 162 and the second lever arm 164.
[0120] In order to make the first lever arm 162 able to drive the pawl 122 in the open position of the latch 12, the axial pin 20 of the transmission device 19 must be disposed on the first side of the gate 22 (
[0121] The first stroke portion and the second stroke portion are performed in the first direction of rotation F1. The second stroke portion is larger than the first stroke portion. In order to make the second lever arm 164 able to drive the bolt 121 into the closed position, the drive device 18 must perform a displacement in the first direction of rotation F1 greater than the displacement in the first direction of rotation F1 allowing to drive the pawl 122 into the open position of the latch 12, via the first lever arm 162.
[0122] In a variant not represented, the drive device 18 can be configured to be driven in rotation around the axis of rotation A in the first direction of rotation F1, called opening direction, in order to drive the first lever arm 162 so as to cause the opening of the latch 12, and in the second direction of rotation F2, called closing direction, in order to drive the second lever arm 164 so as to cause the closing of the latch 12.
[0123]
[0124] In this second form, the latch 12 (
[0125] In addition, the latch 12 (
[0126] In this second form, the opening/closing assistance mechanism 10-2 includes an electric actuator 16 configured to control the closing and the opening of the latch 12 (
[0127] Referring back to
[0128] Returning to
[0129] The planetary gear train 30 may include the drive device 38, also called ring gear, at least a first stage 32, and a second stage 34.
[0130] The drive device 38 can be a first pinion of the planetary gear train 30, the displacement stroke of which is a rotation. Accordingly, the drive device 38 is also referred to herein as the first pinion 38.
[0131] The drive device 38 can be configured to be driven in rotation in the first direction of rotation F1 and in the second direction of rotation F2 opposite to the first direction of rotation F1.
[0132] The first stroke portion of the drive device 38 can be performed in a first direction of rotation F1, and the second stroke portion can be performed in a second direction of rotation F2 opposite to the first direction of displacement F1.
[0133] The planetary gear train 30 may include an output shaft 31, for example forming a lever arm. The output shaft 31 can be controlled in displacement by the drive device 38 when the drive device 38 performs the first stroke portion and/or the second stroke portion. The output shaft 31 can be controlled in displacement in a first direction when the drive device 38 performs the first stroke portion, and in a second direction when the drive device 38 performs the second stroke portion. Thus, the output shaft 31 is controlled in displacement by the drive device 38 when the drive device 38 performs the first stroke portion, and when the drive device 38 performs the second stroke portion. The drive device 38 is therefore configured to drive in rotation the output shaft 31 in order to control the opening and the closing of the latch 12 (
[0134] The first stage 32 may have an axis of rotation C. The rotation of the first stage 32 around the axis of rotation C is allowed in a first direction of rotation S1 and blocked in a second direction of rotation S2, opposite to the first direction of rotation S1. The second stage 34 may have an axis of rotation D. The rotation of the second stage 34 around the axis of rotation D is allowed in a first direction of rotation S1′ and blocked in a second direction of rotation S2′.
[0135] When the drive device 38 performs the second stroke portion in the second direction of rotation F2, corresponding to a latch closing control (
[0136] When the drive device 38 performs the first stroke portion in the first direction of rotation F1, corresponding to a latch opening control (
[0137] The first directions of rotation S1 and S1′ correspond herein to the same direction of rotation, for example, a counterclockwise direction, and the second directions of rotation S2 and S2′ correspond to the opposite direction, for example, a clockwise direction.
[0138] More specifically, the planetary gear train 30 may include a planet carrier 29 and at least one planet gear carried by the planet carrier 29. The first stage 32 corresponds to the planet carrier 29, and the second stage 34 corresponds to the planet gear(s). Thus, the planet carrier 29 of the first stage 32 can be blocked in rotation around its axis of rotation C in the second direction of rotation S2, for example, thanks to a blade brake or a first ratchet wheel 36; and the planet gear(s) of the second stage 34 can be blocked in rotation around its axis of rotation D in the second direction of rotation S2′, for example, thanks to a blade brake or a second ratchet wheel 36′. Thus, the planet carrier 29 of the first stage 32 can be blocked in rotation around its axis of rotation C in the second direction of rotation S2, by a first locking device such as a blade brake or the first ratchet wheel 36; and the planet gear(s) of the second stage 34 can be blocked in rotation around its axis of rotation D in the second direction of rotation S2′, by a second blocking device such as a blade brake or the second ratchet wheel 36′. In addition, the planet gear(s) of the second stage 34 is movable in rotation around the axis of rotation C of the planet carrier 29 of the first stage 32.
[0139]
[0140] Returning to
[0141] The planetary gear train 30 may include the first pinion 38 driven in rotation by the actuator 16, for example, via a worm screw of the actuator 16, first and second planet gears 33 and 35 driven in rotation by the first pinion 38, the planet carrier 29 of the first stage 32 driven in rotation by the first and second planet gears 33 and 35, and a second pinion 37 driven in rotation by the second planet gear 35.
[0142] As described hereinabove, in this form, the first pinion 38 is the drive device 38 as previously described, the planet carrier 29 corresponds to the first stage 32 as previously described, and the second planet gears 33 and 35 correspond to the second stage 34 as previously described.
[0143] When the actuator 16 controls the closing of the latch 12 (
[0144] When the actuator 16 controls the opening of the latch 12 (
[0145] When the actuator 16 controls the closing of the latch 12 (
[0146] When the actuator 16 controls the closing of the latch 12 (
[0147] When the actuator 16 controls the opening of the latch 12 (
[0148] When the actuator 16 controls the opening of the latch 12 (
[0149] When the actuator 16 controls the closing of the latch 12 (
[0150] When the actuator 16 controls the opening of the latch 12 (
[0151] More specifically,
[0152] The second planet gear 35, carried by the planet carrier 29 of the first stage 32, is configured to be blocked in rotation in the second direction of rotation S2′ around its axis of rotation D. The second planet gear 35 has a toothing Z2 connected to the toothing Z1 of the second pinion 37. The first planet gear 33 is carried by the planet carrier 29 of the first stage 32 and has a toothing Z2′.
[0153] The first pinion 38 has a first toothing Z3 connected to the toothing Z2′ of the second planet gear 35 and a second toothing Z4.
[0154] The blade brakes 36 are configured to respectively block the planet carrier 29 of the first stage 32 in rotation in the second direction of rotation S2 around its axis of rotation C, and the second planet gear 35 in rotation in the second direction of rotation S2′ around its axis of rotation D.
[0155] The second toothing Z4 of the first pinion 38 is connected to a worm screw of the actuator 16 having a toothing Z0.
[0156]
[0157]
[0158] When closing the latch 12, the reduction ratio is calculated according to the following Willis formula:
r=Z4/Z0.Math.(Z3.Math.Z2)/(Z2′.Math.Z1).Math.(−1).sup.y [Math.1]
[0159] With: [0160] r corresponding to the reduction ratio, and [0161] y corresponding to the number of external contacts in the pinions, making it possible to define the direction of rotation at the output of the planetary gear train 30.
[0162] When opening the latch 12 (
[0163] Although the present invention has been described with reference to specific embodiments, it is obvious that modifications and changes can be made to these examples without departing from the general scope of the invention as defined by the claims. In particular, individual features of the different illustrated/mentioned embodiments can be combined in additional embodiments. Accordingly, the description and the drawings should be considered in an illustrative rather than restrictive sense.
[0164] Unless otherwise expressly indicated herein, all numerical values indicating mechanical/thermal properties, compositional percentages, dimensions and/or tolerances, or other characteristics are to be understood as modified by the word “about” or “approximately” in describing the scope of the present disclosure. This modification is desired for various reasons including industrial practice, material, manufacturing, and assembly tolerances, and testing capability.
[0165] As used herein, the phrase at least one of A, B, and C should be construed to mean a logical (A OR B OR C), using a non-exclusive logical OR, and should not be construed to mean “at least one of A, at least one of B, and at least one of C.”
[0166] The apparatuses and methods described in this application may be partially or fully implemented by a special purpose computer created by configuring a general-purpose computer to execute one or more particular functions embodied in computer programs. The functional blocks, flowchart components, and other elements described above serve as software specifications, which can be translated into the computer programs by the routine work of a skilled technician or programmer.
[0167] The description of the disclosure is merely exemplary in nature and, thus, variations that do not depart from the substance of the disclosure are intended to be within the scope of the disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the disclosure.