DEVICE FOR CLOSING AND RELEASING A POWER CHARGING PORT OF A MOTOR VEHICLE
20240025245 · 2024-01-25
Inventors
Cpc classification
B60K2015/0523
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Device for closing and releasing a power charging port of a motor vehicle having a cover part moveable by a guiding mechanism, fixed to the vehicle in an installed and ready to operate condition, between a closed position closing the power charging port and an open position releasing the power charging port. An emergency actuation device moves the cover part into the open position, and a drive mechanism controls movement of the cover part. A coupling mechanism activates the emergency actuation device and deactivates the drive mechanism, and is connected to the emergency actuation device. The coupling mechanism is associated with a mechanical securing mechanism, which cooperates with the emergency actuation device. When the emergency actuation device is deactivated, the securing mechanism produces an additional form fit to secure a power transmission of the drive mechanism. The additional form fit is lifted upon activating of the emergency actuation device.
Claims
1. A device for closing and releasing a power charging port of a motor vehicle, having a cover part, which cover part can be moved by a guiding mechanism fixed to the vehicle in an installed and ready to operate condition between a closed position closing the power charging port and an open position releasing the power charging port, having a manually operable emergency actuation device for moving the cover part into the open position, and having a drive mechanism for the powered control of the movement of the cover part between the closed position and the open position, and having a coupling mechanism for activating the emergency actuation device and for deactivating the drive mechanism, wherein the coupling mechanism is mechanically and operatively connected to the emergency actuation device, the coupling mechanism is associated with a mechanical securing mechanism, which mechanical securing mechanism cooperates with the emergency actuation device such that, when the emergency actuation device is deactivated, the securing mechanism produces an additional form fit to secure a power transmission of the drive mechanism, wherein the additional form fit is lifted upon activating of the emergency actuation device.
2. The device according to claim 1, wherein the emergency actuation device and the securing mechanism are arranged movably relative to each other in order to produce or release the additional securing by the securing mechanism.
3. The device according to claim 2, wherein the securing mechanism is fixed in place and the emergency actuation device is mounted movably between the activation position and the deactivation position.
4. The device according to claim 1, where the emergency actuation device comprises a clamping housing enclosing the coupling mechanism in a force-limited manner, being mounted able to swivel about a coupling axis of rotation, and the clamping housing is coupled to a manually graspable activating element, in order to exert a swivel movement on the clamping housing.
5. The device according to claim 4, wherein the activating element is coupled by a sliding joint to the clamping housing.
6. The device according to claim 5, wherein the sliding joint comprises a connecting link guide oriented, at least for a portion, at a slant to a lengthwise extension of the clamping housing of the emergency actuation device.
7. The device according to claim 4, wherein the clamping housing comprises at least one elastically resilient clamping tab radially enclosing the coupling mechanism on the outside for a portion, and the securing mechanism comprises a securing cam, the securing cam making contact with the clamping tab radially on the outside such that, in the deactivation position of the emergency actuation device, the clamping tab is blocked by form fit against a radial expansion to the outside, and, in the activation position of the emergency actuation device, the clamping tab is released for a radial-elastic expansion to the outside.
8. The device according to claim 5, wherein the clamping housing comprises at least one elastically resilient clamping tab radially enclosing the coupling mechanism on the outside for a portion, and the securing mechanism comprises a securing cam, the securing cam making contact with the clamping tab radially on the outside such that, in the deactivation position of the emergency actuation device, the clamping tab is blocked by form fit against a radial expansion to the outside, and, in the activation position of the emergency actuation device, the clamping tab is released for a radial-elastic expansion to the outside.
9. The device according to claim 6, wherein the clamping housing comprises at least one elastically resilient clamping tab radially enclosing the coupling mechanism on the outside for a portion, and the securing mechanism comprises a securing cam, the securing cam making contact with the clamping tab radially on the outside such that, in the deactivation position of the emergency actuation device, the clamping tab is blocked by form fit against a radial expansion to the outside, and, in the activation position of the emergency actuation device, the clamping tab is released for a radial-elastic expansion to the outside.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] A motor vehicle in the form of a passenger car F includes a vehicle chassis K, which is provided on one chassis side, in the present instance on a left chassis side in the vehicle direction, with a body recess T, comprising a power charging port L. The body recess T and the power charging port L are associated with a device 1 for closing and releasing the power charging port L. The device 1 comprises a cover part 2, which is guided in linear displacement between a closed position, represented in
[0023] The cover part 2, as in DE 10 2020 209 609 A1, is oriented in its closed position flush with the sections of the vehicle chassis K surrounding the body recess T. In the open position, the cover part 2 is displaced outward in the vehicle transverse direction Y and downward in the vehicle vertical direction Z. Alternatively, the cover part can be moved upward, inward, as well as forward and/or backward in the vehicle longitudinal direction X, depending on the physical placement of the body recess T and/or the configuration of the corresponding vehicle-fixed guiding mechanism in the open position.
[0024] The drive mechanism A comprises an electrical drive motor, which is operatively connected to the cover part 2, transmitting force and motion. The operative connection serves for a transmission of driving forces and/or motions from the drive motor 3 to the cover part 2. For the supplying of electrical operating energy, the electrical drive motor 3 is connected to an onboard electrical network of the motor vehicle F, not otherwise shown.
[0025] In event of a disrupted power supply of the drive motor 3 or some other malfunction of the drive mechanism A, a manual movement of the cover part 2 occurs between the closed and the open position by an emergency actuation device, as can be seen in
[0026] The transmission 6 comprises a not otherwise designated output sprocket, which meshes also in a manner not otherwise shown with a toothed rack segment, arranged on a guide carriage, which in turn carries the cover part 2. The guide carriage is mounted to travel along a housing-fixed guiding mechanism of a device housing 4. The device housing 4 in the state fixed to the vehicle per
[0027] A drive shaft of the drive mechanism A is mounted rotatably about an axis of rotation D in the device housing 4. The coupling mechanism 7 is configured as a form fit coupling and produces a form-fit connection about the axis of rotation D between the output sprocket and a drive pinion of the drive shaft of the transmission 6, the output sprocket and the drive pinion being positioned and driven coaxially to the axis of rotation D. In other words, the form fit coupling is arranged between the drive shaft and the coaxially positioned power takeoff shaft. The form fit coupling, i.e., the coupling mechanism 7, comprises two coupling jaws, which are mounted movably in limited manner in the radial direction of the axis of rotation D relative to the drive shaft and thus relative to the axis of rotation D and connected to the drive shaft in permanently torque-free manner. The coupling jaws are outwardly pretensioned in the radial direction by means of a spring assembly. Corresponding spring elements of the spring assembly are configured as leaf springs, which produce a permanent radially outward loading on the coupling jaws. Upon corresponding outward displacement of the coupling jaws, the power takeoff shaft and thus the output sprocket are lifted, so that the form fit between the coupling jaws and the drive shaft is broken. The coupling mechanism 7 is thus converted to the separation state.
[0028] In order to maintain the form fit coupling in the coupling state, the emergency actuation device comprises a clamping housing 8, which is provided with an elastically resilient clamping tab 11 of circular arc shape and detent-like action, which together with corresponding clamping sections of the clamping housing 8 holds the coupling jaws of the coupling mechanism 7 in the coupling state, in which the drive mechanism A exerts a driving force transmission on the guide carriage of the cover part 2. This coupling state is shown by means of
[0029] In order to prevent the clamping tab 11 in the coupling state of the coupling mechanism 7 from being forced unintentionally outward on account of external loads occurring, so that the clamping housing 8 can be displaced in the vertical direction relative to the axis of rotation D and the operative connection between the drive mechanism A and the cover part 2 is unintentionally broken, an additional securing mechanism is associated with the clamping housing 8 as part of the emergency actuation device, having a securing cam 12 arranged in housing-fixed manner on the device housing 4. In the securing state (see in particular
[0030] Now, starting from the deactivation position of the emergency actuation device per
[0031] In order to convert the emergency actuation device from the activated position back to its deactivation position, the activating element 5 is once again pressed downward in the vehicle vertical direction, whereby at first a linear movement occurs again through the sliding joint 9, 10 on the clamping housing 8 downward along the oblong hole of the clamping housing 8 until the coupling mechanism 7 has again dipped into the clamping sections and the clamping tab 11 of the clamping housing 8 and the coupling mechanism 7 is once again coupled in form fit with the drive mechanism A. Upon further exerting of linear pressure on the activating element 5 downward in the vehicle vertical direction, the clamping housing 8 is necessarily swiveled once more about the axis of rotation D in the counterclockwise direction (from