Power tailgate actuator
09822574 ยท 2017-11-21
Assignee
Inventors
- John M. Heiberger (Grand Blanc, MI, US)
- Kevin Koneval (Macomb Township, MI, US)
- Fred Eberle (Lake Orion, MI, US)
- Eric Thomas (Clinton Township, MI, US)
- Stephen J. Brinck (Rochester Hills, MI, US)
Cpc classification
E05F15/614
FIXED CONSTRUCTIONS
B62D33/0273
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60P1/267
PERFORMING OPERATIONS; TRANSPORTING
E05F15/614
FIXED CONSTRUCTIONS
Abstract
An actuator for opening and closing a hinged device is provided. In particular, the actuator is a power tailgate actuator. The actuator comprises a motor with a rotor, and an output shaft that rotates on an axis which is substantially parallel to the axis on which lies the rotor of the motor. The actuator has a rotary position sensor such as a rotary potentiometer which positively identifies the position of the tailgate. The tailgate also comprises a clutch which can engage and disengage depending on the mode of operation.
Claims
1. An actuator including a motor for moving a hinge between a closed position and an open position, the motor having a rotor which extends along a first axis, the actuator operating a hinge mechanism coupling a door to a body and comprising: a gear mounted on a gear shaft in rotatable connection with the rotor of the motor; a rotary position encoder coupled to the gear shaft, the rotary position encoder undergoing no more than one revolution when the hinge is moved between the closed position and the open position; and a hinge rod for driving the rotation of the door, the hinge rod extending along a second axis substantially parallel to the first axis.
2. The actuator according to claim 1, wherein the rotary position encoder is a rotary potentiometer.
3. The actuator according to claim 1, wherein a clutch is positioned between the gear shaft and the motor.
4. The actuator according to claim 3, wherein the actuator has an power actuated operation mode and a manual operation mode.
5. The actuator according to claim 4, wherein when the actuator is in automatic operation mode, the clutch is configured to engage and disengage in order to control the speed of the door.
6. The actuator according to claim 4, wherein when the actuator is in manual operation mode, the clutch engages to control the speed of opening of the door.
7. The actuator according to claim 4, wherein when the actuator is in manual operation mode, the clutch is disengaged during closing of the door.
8. The actuator according to claim 1, wherein a planetary gearbox is positioned between the shaft and the motor.
9. The actuator according to claim 1, wherein the door is a vehicle tailgate.
10. The actuator according to claim 9, wherein the vehicle tailgate comprises an outer panel, an interior panel, and an inner space between the outer panel and the interior panel, the actuator being mounted in the inner space.
11. The actuator according to claim 1, wherein the shaft rotates through less than one-half revolution.
12. The actuator according to claim 1, wherein the shaft extends along a third axis parallel to the first axis, the gear shaft being positioned vertically above the hinge rod and below the rotor.
13. The actuator according to claim 12, wherein a pinion shaft is rotatably connected to and coaxial with the rotor, a pinion being mounted on the pinion shaft, the pinion being meshed with the gear.
14. The actuator according to claim 13, wherein the gear is a compound gear.
15. The actuator according to claim 1, wherein the rotary position encoder provides positional information to an electronic control unit.
16. An actuator including a motor for moving a hinge between a closed position and an open position, the motor having a rotor which extends along a first axis, the actuator operating a hinge mechanism coupling a door to a body and comprising: a gear mounted on a gear shaft which is in rotatable connection with the rotor; a rotary position encoder coupled to the gear shaft; and a clutch positioned between the gear shaft and the motor; and wherein the positioning of the rotary position encoder opposite the motor from the clutch allows the absolute position of the tailgate to be known independent of operation of the motor.
17. The actuator of claim 16 further comprising a hinge rod for driving the rotation of the door, the hinge rod extending along a second axis substantially parallel to the first axis.
18. The actuator of claim 16 wherein the rotary position encoder is a rotary potentiometer.
19. The actuator of claim 17 wherein the rotary potentiometer undergoes no more than a single revolution when the tailgate is opened and closed.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(13) It will be appreciated that drawings in this disclosure are not necessarily to scale, with some components enlarged relative to their actual size in order to show detail.
(14) The terms substantially, about, or derivatives thereof will be understood to mean significantly, effectively, or in large part.
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(16) It will be appreciated that while the embodiment
(17) In the illustrated embodiment, on the opposite end of clutch 36 from planetary gearbox 34 is pinion gear 38. Pinion gear 38 is mounted on pinion shaft 57, which rotates in proportion to the rotation of the motor 32 when clutch 36 is engaged. In the embodiment illustrated in
(18) Pinion gear 38 meshes with compound gear having spur gear portions 40 and 42. Spur gear portions 40 and 42 surmount gear shaft 59, which is on a second axis running parallel to the axis running through pinion shaft 57. The compound gear provides another gear reduction, and coupled to gear shaft 59 is rotary position sensor 46. In the embodiment illustrated in
(19) Any device capable of collecting and reporting positional information may be used as a rotational position sensor. In one embodiment, the sensor 46 may be a Hall effect sensor. In a preferred embodiment, the rotary position sensor is in the form of a rotary potentiometer.
(20) A rotary potentiometer is a particularly attractive option for use with rotary position sensor 46 for a number of reasons. First, these components are simple to use and install and are inexpensive. Second, the analog rotary potentiometer can provide a reliable, absolute position signal related to the position of the tailgate. Installing the rotary position sensor 46 at the position illustrated in
(21) Vertically below the axis to which the rotary position sensor 46 is coupled, and meshing with the larger gear portion 40 of spur gear 40 and 42, is sector gear 61. Sector gear 61 is capable of making about a quarter of a rotation and drives the rotational movement of shaft 44. Shaft 44 extends along a third longitudinal axis which runs substantially parallel to the first axis and the second axis. Shaft 44 terminates in output shaft coupling 16, which is mated to output shaft 20, which ultimately provides the motion and energy for raising and lowering of tailgate 30. As mentioned previously, truck tailgates typically move through a 90-degree range of motion from the closed position to the open position. Hence, sector gear 61, by providing substantially a quarter of a revolution of rotational range, controls the extent of the rotation of output shaft 20. Output shaft 20 passes through the side of the tailgate 30 and into output cup 22 and governs the motion of double-D interface 24.
(22) The tailgate of
(23) The power tailgate actuator 10 can be mounted to the interior of tailgate 30 by any conventional method. In the embodiment illustrated in
(24) In the embodiment of
(25) As mentioned previously, the tailgate actuator 10 has an automatic operation mode, in which an electronic control unit sends a signal to the tailgate actuator and instructs it to open or close, and a manual operation mode, in which a human user manually opens and closes the tailgate.
(26) In the power actuated mode, the clutch 36 is active in both the opening and the closing directions. While in power actuated mode, the actuator system monitors the position of the tailgate and processes the signal from the rotary position sensor 46 in order to control the speed of the door and as an anti-pinch precaution.
(27) When the system is in manual mode and the tailgate 30 is being opened manually by the operator, the clutch 36 and the motor 32 are active to facilitate action by the user. When the rotary position encoder 46 detects that the tailgate 30 is opening and the electronic control unit 50 is in manual mode, the clutch 36 engages to slow and control the speed at which the tailgate opens. Incorporating the rotary position encoder 46 at a point in the actuator 10 such that absolute position can be ascertained allows the clutch 36 to be used, if desired, as the sole means of damping, minimizing the number of components that need to be incorporated into the tailgate assembly.
(28) When the system is in manual mode and the tailgate 30 is being closed, the clutch and the motor are both inactive. Because the rotary position sensor 46 is positioned on the opposite side of the clutch 36 from planetary gearbox 34 and motor 32, it is able to continue to reflect the correct, absolute position of the tailgate as the user closes it, while the clutch decouples the rotation of the output shaft 20 from that of the planetary gearbox 34. Thus, the gears of the planetary gearbox, which provide a significantly high gear reduction, are not backdriven by manual closing of the tailgate, avoiding damage to the assembly.
(29) The clutch 36 further has the capacity to slip when situations that could damage the actuator 10 arise. For instance, if a heavy load has been placed on the tailgate and a user instructs the system to lift the tailgate, the clutch will inactivate, preventing the transmission of an excessive load to the gear train. Further, if the system is in power actuated mode and a user attempts to close or open the tailgate more quickly or in uncontrolled fashion, the clutch will slip for the same reason.
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(32) In this embodiment, spur gear portion 42 of compound gear 40 and 42 meshes with sector gear 61, which is positioned on shaft 46. Shaft 46 terminates in output shaft coupling 16, which engages the output shaft and drives lowering and raising of the tailgate.
(33) In the embodiment of
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(35) One difference between the device of
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(38) The output shaft 20, as shown in
(39) To illustrate the operation of a power tailgate actuator 10/110, a light truck 80 is shown in
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(41) Should the tailgate 30 be stopped in its motion from open position 84 to closed position 82, the analog rotary position encoder 46 will have a resistance intermediate between the first resistance and the second resistance. The electronic control unit may be programmed with a protocol which could, in one embodiment, produce a warning that the tailgate is stuck, and could, for example, inactivate the clutch in order to minimize damage to the gear structures.
(42) While the above description constitutes the preferred embodiment of the present invention, it will be appreciated that the invention is susceptible to modification, variation, and change without departing from the proper scope and fair meaning of the accompanying claims.