1. Field of the Invention
The present invention relates to an improved central speed control mechanism for remote control car, which may generate an appropriate stopping force to make better speed adjustment, and is particularly applicable to remote control cars, model cars and the like.
2. Description of the Prior Art
Remote control cars are popular to children and adults as well since they are easy controlled and quite challenging for entertainment purposes. A speed controller is very important to remote control cars, no matter they are simple or complex structures. The speed controllers of the prior art (as shown in
In view of the above, the inventor researched to provide an improved structure of the central speed controller for the remote control cars, which is composed of less elements and is easily assembled.
The primary object of the invention is to provide an improved central speed control mechanism for remote control cars, which can generate a stopping force and thereby obtain a preferred damping effect for speed adjustment.
Another object of the invention is to provide an improved central peed control mechanism for remote control cars, which is simply constructed and easily assembled.
To obtain the above purposes, the invention basically comprises a housing and a cover, which are connectable to each other and are respectively provided with a pivot for connecting to the remote control car at one end and mounting helical gears at the other end. Inside of the housing is provided with a gear set, which comprises a positioning block, a plurality of bevel gears and axles. Axle holes are equally provided on the periphery of the positioning block, whereas a central hole with a cone surface is provided in the bevel gears for matching with the cone surface of the axle, which is provided with a positioning pillar at the front end and a cone surface in the middle section. After the axle passes the end of the bevel gear provided with a O-ring through to the axle hole, and a washer is further provided at the rear of the axle to complete the assembly of the whole housing, the plurality of bevel gears of the gear set will engage with the helical gears of the two pivots. When the speed controller rotates in a high speed, the cone surfaces of the bevel gears will match with the cone surface of the axle to form a damping force, so that by the centrifugal force, the bevel gears would be drawn back to form an appropriate stopping force, thereby generating a damping force to preferably control the speed of the remote control car.
The novelty and many other advantages of the invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description, when taken in conjunction with the accompanying drawings.
As shown in
The cover 20 is connectable to the housing 10. A pivot hole 21 is provided on the center of the cover 20, whereas a plurality of locking holes 22 are provided on the periphery thereof. The housing 10 and the cover 20 can be assembled by way of screwing a plurality of screws (not shown) into the locking holes 22.
Inside of the pivot hole 21 is provided with a pivot 33 which is connected to the wheel (not shown) at one end and to a helical gear 30 an the other end, whereas a tooth rim 23 is provided on the rim of the cover 20.
Referring to
Referring to
Referring to
Now concomitantly refer to
After inserting the gear set 4 into the housing 10, the bottom of the gear set 4 is engaged with the helical gears 31 at one end of the pivot 32. Due to the cover's 20 being received by the opening of the housing 10, the helical gears 31 at one end of the pivot 32 can engage with the top of the four gear sets 4, thereby completing the assembly of the speed controller according to the invention.
When the remote control car is actuated, the power of the motor will be transmitted to the wheels through the tooth rim 23 around the speed controller, so that the remote control car can move in a liner direction. When making a turn, the gear set 4 will engage with the helical gears 30, and the helical gears 31 will engage with each other. The match of the cone surface specially designed for the axles 47 and the bevel gears 42, as well as the shaft sections 49 and 51 provided at the front and rear ends of the cone of the axle 47, can prevent the engaging cone surface 50 of the axle 47 and the cone surface of the central hole 43 from getting stuck.
When the gear set 4 of the speed controller rotates, each bevel gear 42 would be drawn back (toward the side away from the positioning block 40) to form a cone-engagement stopping force along the axis direction of the axle, thereby generating a damping force in-between the cone surface 50 and the central hole 43 due to the centrifugal force generated by the weight of the elements of the bevel gear 42. However, said cone-engagement stopping force need controlled to prevent the cone surfaces 50 and 43 from getting stuck and ceasing operation. Therefore, a small space A is formed in-between the axle 47 to be connected to the cone surface of the central hole 43 and the vertical wall of the shaft section 51; and a space B is formed in-between the shaft section 49 and central hole 43. When the bevel gear 42 is drawn back, it will press on the O-ring 45, which subsequently generates a resistant force, as well as a friction damping force. By way of the match of the bearing outside of the speed controller, the two pivots 32, 33 at two ends can obtain an excellent regulation in speed, thereby the remote control car can turn smoothly and easily.
In view of the above, the structure according to the invention has the following advantages:
Concluded above, it is novel to the design of a speed control mechanism for the present remote control cars, and the efficiency is highly improved. Accordingly, the inventor has claimed his invention.
Although specific embodiments have been illustrated and described, it will be obvious to those skilled in the art that various modifications may be made without departing from what is intended to be limited solely by the appended claims
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Number | Date | Country | |
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20050014448 A1 | Jan 2005 | US |