The present disclosure relates generally to closure systems, and more specifically to power-actuated closure systems.
Many modern devices feature power-actuated closures, including power windows, power sliding doors, power garage doors, power lift gates, power sunroofs, and the like. Like manual closure systems, automatic closure systems may have an unintended closure or partial closure on an object. Some power-actuated closures include mechanisms which reverse or stop the motion of the closure upon contact with an object. However, the contact force between the object and the closure in these mechanisms may potentially be excessive before motion cessation or reversal, thereby mitigating or diminishing an intended benefit of the design.
As such, it would be desirable to provide a power-actuated closure system that is capable of detecting obstructions and substantially avoiding contact therewith.
A power-actuated closure system includes a power-actuated closure panel having a leading edge. One or more non-contact optical sensing system(s) is/are affixed to the power-actuated closure panel. The sensing system is adapted to detect the presence of an obstruction in proximity to and in advance of the leading edge of the closure panel. The system also includes a control system that selectively controls the motion of the closure panel in response to signals received from the sensing system.
Objects, features and advantages of embodiments of the present disclosure may become apparent by reference to the following detailed description and drawings, in which like reference numerals correspond to similar, though not necessarily identical components. For the sake of brevity, reference numerals having a previously described function may not necessarily be described in connection with other drawings in which they appear.
The present inventors have fortuitously and unexpectedly discovered that embodiments of the present disclosure may reduce the potential for the unintended closure or partial closure on an object or body part. Embodiment(s) of the closure system advantageously include a non-contact sensing system that is capable of sensing the obstruction prior to the closure system coming in contact with the object causing the obstruction.
Referring now to
It is to be understood that embodiment(s) of the method will be referred to in more detail in reference to
Referring now to
The power-actuated closure panel 12 may be a window, a sliding door, a sunroof, a decklid, a lift gate, a trunk door, a garage door, and/or the like. In the non-limitative example depicted in
When in an opened position, closure panel 12 is a spaced distance from the mating edge 16, such that an open space 13 is created between the panel 12 and the edge 16. The width of open space 13 may vary, depending, at least in part, on the position of the closure panel 12 in relation to the mating edge 16.
One or more non-contact optical sensing system(s) 18 is/are affixed by any suitable means to the power-actuated closure panel 12. In an embodiment, the sensing system 18 is permanently or removably mounted to panel 12 with screws, bolts, rivets, adhesives, and/or the like. Generally, the sensing system 18 is adapted to detect the presence of an obstruction in proximity to and in advance of the leading edge 14 of the closure panel 12.
In an embodiment, the sensing system 18 includes an optical transmitter 22 adapted to transmit an optical signal S in proximity to and in advance of the leading edge 14 of the closure panel 12. The sensing system 18 also includes an optical transducer 24 that is adapted to detect the optical signal S transmitted from the optical transmitter 22. In the embodiment shown in
The term “in advance of” generally refers to the transmitted optical signal S extending into the open space 13 a fixed or variable distance ahead of, and substantially parallel to the leading edge 14 when the closure panel 12 is moving towards the closed position.
The optical signal S emitted by the transmitter 22 may be infrared radiation, ultraviolet radiation, visible radiation, and/or combinations thereof. Further, the optical signal S may be coded to substantially avoid interference from extraneous optical signals. It is to be understood that the optical signals S may be coded by any suitable means; however, in an embodiment, the signals are coded by at least one of frequency modulation, pulse width modulation, and combinations thereof.
A control system 20 is operatively connected such that it controls the motion of the closure panel 12. It is to be understood that the control system 20 is also configured to selectively control the motion of the closure panel 12 in response to signals received from the sensing system 18. As such, the control system 20 may receive input or signals from the sensing system 18, and send control signals to the closure panel 12. It is to be understood that the control system 20 is operatively connected to the sensing system 18 (e.g. both the transmitter 22 and the transducer 24). Further, the control system 20 may be housed in/on the closure panel 12, and/or in other areas of the vehicle (as shown in phantom in
In an embodiment, an object/obstruction may enter the path of the closure panel 12 as it moves toward a closed position. Non-limitative examples of object(s)/obstruction(s) include human body parts, animal(s), inanimate objects (a non-limitative example of which includes a grocery bag), and the like.
As the object/obstruction comes in contact with the optical signal S emitted by the sensing system 18, the optical signal S is interrupted. It is to be understood that the sensing system 18 is capable of detecting such an interruption. In response to the optical signal S interruption, the sensing system 18 sends a signal to the control system 20 indicating the presence of the object/obstruction.
It is to be understood that if an interruption signal is imparted to the control system 20, the closure panel 12 is controlled such that it stops and/or has its motion reversed substantially prior to contacting the object/obstruction. In an embodiment, upon receiving an interruption signal, the control system 20 applies signals to drive circuitry that in turn may control power to the closure panel 12 to enable stopping the motion of the panel 12 or reversing the motion of the panel 12 for a predetermined distance. In an alternate embodiment, control system 20 applies signals to drive circuitry that in turn controls the mechanical motion of the panel 12. As such, actuators/motors associated with the drive circuitry may be stopped or reversed without interrupting power to them (e.g., by activating a brake or disengaging a clutch built into the actuator system). It is to be understood that any suitable means of stopping or reversing the motion of panel 12 is contemplated as being within the purview of the present disclosure, and the embodiment(s) disclosed herein are not intended to be limited to the examples given above.
Generally, the closure panel 12 is designed to travel between an open position and a closed position. It is to be understood that the sensing system 18 may be configured to deactivate upon reaching a predetermined segment of the travel path, so that the panel 12 may enter the closed position. Without deactivation at a predetermined segment, the control system 20 may, in some instances, receive signals from sensing system 18 regarding, for example, the upcoming end of travel of closure panel 12 (the mating edge 16 when the panel 12 is in its normally closed position), and misinterpret those signals as an object/obstruction, thereby incorrectly commanding a stop or reversal of panel 12. This predetermined segment may be at any point along the travel path prior to, or immediately before the closed position. In a non-limitative example, the predetermined segment is directly adjacent the closed position.
Further, in an embodiment, the system 10 may optionally include an override system. It is to be understood that the override system may be operatively connected to and capable of shutting down the control system 20. The override system may be activated, for example, when a user wants to manually operate the closure panel 12. In an alternate embodiment, if self diagnostics indicate a sensing system 18 malfunction, the override system may be automatically activated. One non-limitative example of an application in which the system 10 may override itself automatically is with a power-actuated sunroof/panel 12 during precipitation. The falling rain/snow may break the optical signal S, preventing the sun-roof/panel 12 from closing. The system 10 may detect and ignore falling precipitation. In an embodiment, the control system 20 is operatively connected to a vehicle's rain sensor (that automatically adjusts the speed of windshield wipers) in order to detect the precipitation and fall rate thereof. The rain sensor uses an advanced optical sensing system, analog signal processing, and a control algorithm.
Referring now to
As depicted, the control system 20 of this embodiment may be operatively connected to the transmitter 22 and the transducer 24 via one connector (as opposed to the two connectors shown in
It is to be understood that the portion of the recess 26 housing the transmitter 22 and transducer 24 is configured to house both elements 22, 24 when the panel 12 is in the closed position. Still further, the recess 26 in this embodiment includes a separate recess 26 for housing the reflector 30 of the sensing system 18. As depicted, the recesses 26 are located on an interior of the mating edge 16.
Referring now to
As depicted in the respective figures, the recess(es) 26 are located in appropriate areas of the mating edges 16 of the vehicles to house the sensing system 18 when the panels 12 are closed.
Referring now to
It is to be understood that in the embodiments and examples described herein, the closure system 10 (when incorporated into a motor vehicle) may operate while the vehicle is in motion and/or while the vehicle is stopped. The operation of the system 10 may be dependent upon, at least in part, the application with which it is being used. In a non-limitative example, if the closure system 10 is used with a sunroof or a window, the system 10 may be operated while the vehicle is both in motion and when stopped. In another non-limitative example, however, if the closure system 10 is used with a sliding door or a lift gate, it may be desirable to have the system 10 operable while the vehicle is stopped.
Still further, in any of the embodiments described herein, it is to be understood that both the transmitter 22 and transducer 24 are affixed to the leading edge 14 of the closure panel 12 such that the optical signal S is emitted proximate to and in advance of the leading edge 14 when the leading edge is moving towards the closed position.
The embodiment(s) disclosed herein include, but are not limited to the following advantages. Embodiment(s) of the closure system 10 advantageously include a non-contact sensing system 18 that is capable of sensing an object/obstruction prior to the closure system 10 coming in contact with the object causing the obstruction. Without being bound to any theory, it is believed that the system 10 may reduce unintended automatic closure or partial closure on an object or body part.
While several embodiments have been described in detail, it will be apparent to those skilled in the art that the disclosed embodiments may be modified. Therefore, the foregoing description is to be considered exemplary rather than limiting.
Number | Name | Date | Kind |
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5140316 | DeLand et al. | Aug 1992 | A |
5963000 | Tsutsumi et al. | Oct 1999 | A |
6548979 | Boisvert et al. | Apr 2003 | B2 |
6744365 | Sicuranza | Jun 2004 | B2 |
6836209 | Ploucha | Dec 2004 | B2 |
Number | Date | Country | |
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20060267374 A1 | Nov 2006 | US |