This invention relates to an automatic park lock for an off-road or recreational utility vehicle.
Automatic park locks are known for automotive vehicles for locking operator shift levers in the park position. However, an automatic park lock is needed for an off-road or recreational utility vehicle that is inexpensive, easy to operate, and has few parts.
An automatic park lock for an off-road or recreational utility vehicle includes an operator shift lever that pivots on an axis and is connected to a vehicle transmission having a plurality of positions including reverse, neutral, forward high, forward low, and park. A cam surface on the operator shift lever slopes between a first end and a second end, and has a groove corresponding to the park position. A shift interlock solenoid has a plunger that is spring biased to an extended position into the groove to lock the operator shift lever in the park position. An electronic controller energizes the shift interlock solenoid to retract the plunger from the groove if the controller receives a plurality of signals indicating the ignition key is on, the brake pedal is depressed, and the engine is at or below idle speed. The retracted plunger contacts the sloped cam surface between the first end and the second end.
In one embodiment, automatic park lock 100 may be on an off-road or recreational utility vehicle having an operator shift lever 106 to shift between reverse, neutral, high range, low range and park positions, and a continuously variable transmission (CVT) or other automatic transmission. The operator shift lever may be a casting that pivots on axis 118 mounted to the dashboard at the front of the cab and in front of or to the side of the operator seat. Shift handle 102 may be a wire form attached to the operator shift lever with spring 112 allowing limited side-to-side movement of the shift handle relative to pivot axis 118. The lower end of the operator shift lever may be connected to rod 108 which extends to the vehicle transmission or gearbox 120 schematically shown in
In one embodiment, automatic park lock 100 may include shift interlock solenoid 104 with plunger or pin 114 that may be spring biased outwardly. When the shift interlock solenoid is not energized or powered, coil spring 122 may bias the plunger or pin into engagement with groove 124 near the second or upper end of the operator shift lever 106. If the plunger or pin is extended into the groove, it locks the operator shift lever in the park position. When the shift interlock solenoid is energized or powered, the plunger or pin is retracted and may contact cam surface 116 on the operator shift lever. The retracted plunger or pin allows the operator shift lever to pivot between the reverse, neutral, high range, and low range, and park positions.
In one embodiment, as shown in
In one embodiment, automatic park lock 100 may include shift interlock solenoid 104 which must be energized or powered to move plunger or pin 114 from an extended (off) position to a retracted (on) position. The automatic park lock may include electronic controller 110 which determines when to energize or power shift interlock solenoid 104 to retract plunger or pin 114.
For example, the automatic park lock may include electronic controller 110 that uses logic steps shown in
In one embodiment, automatic park lock 100 may turn off power to shift interlock solenoid 104 if service brake pedal 140 is depressed for at least a specified time such as 2 minutes, locking operator shift lever 106 in the park position. This is shown block 210 of
In one embodiment shown in
Having described the preferred embodiment, it will become apparent that various modifications can be made without departing from the scope of the invention as defined in the accompanying claims.
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Entry |
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Great Britain Search Report issued in application No. 2210854.2 dated Jan. 26, 2023 (04 pages). |
Number | Date | Country | |
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20230066305 A1 | Mar 2023 | US |