The present invention relates to electric ride-on toys, and more specifically, to safety systems for electric ride-on toys.
Electric ride-on toys are designed to be ridden by children, who control the movement of the same. These toys include an electric motor, and for some, a steering device (e.g., a steering wheel, for example), which cooperatively move the vehicle from a starting position.
It is, therefore, an object of the present invention to provide a safety system for electric ride-on toys.
In an exemplary embodiment, the present invention can be embodied in a safety system for an electric ride-on toy having an electric motor electrically connected to a battery providing electrical current to the electric motor, and an accelerator device electrically connected between the electric motor and the battery, the accelerator device being adapted to deliver the electrical current from the battery to the electric motor. The safety system can include a current regulator adapted to electrically connect between the battery and the electric motor; and a control module, connected to said current regulator, and having an input device adapted to receive a safety command, said control module being adapted to activate said current regulator if the safety command is received by the input device. The control module activates said current regulator when the input device receives the safety command, and when activated, the current regulator reduces the electrical current provided from the accelerator device to the electric motor.
In another exemplary aspect of the invention, the control module can include a variable resistor, and when activated, the current regulator reduces the electrical current in part.
In a further exemplary aspect of the invention, when activated, the current regulator reduces the electrical current in total.
According to another exemplary aspect of the present invention, a safety system can further include a reset mechanism; where upon activation, the current regulator remains activated until the reset mechanism is triggered.
In still yet another exemplary aspect of the invention, the input device can include a wireless receiver, and the safety system can further include a wireless transmitter adapted to send the safety command to the control module via the wireless receiver.
In still yet a further exemplary aspect of the invention, the wireless transmitter can include an antennae positioned to form a boundary, and can transmit the safety signal along the boundary at a particular strength such that the wireless receiver receives the safety signal when the wireless receiver is within a particular distance from the boundary.
In another exemplary aspect of the present invention, the antennae can be positioned to form an enclosed area.
In another exemplary embodiment, the present invention can be embodied in a safety system for an electric ride-on toy having an electric motor electrically connected to a battery providing electrical current to the electric motor, and an accelerator device electrically connected between the electric motor and the battery, the accelerator device being adapted to deliver the electrical current from the battery to the electric motor. The safety system can include a current regulator adapted to electrically connect the accelerator device to the electric motor, where the current regulator reduces the electrical current provided from the accelerator device to the electric motor.
The present invention is illustrated by way of example, and not in limitation, in the figures of the accompanying drawings, in which:
a illustrates an exemplary safety system according to the present invention, in which a current regulator is electrically connected between an accelerator device and a battery.
b illustrates an exemplary safety system according to the present invention, in which a current regulator is electrically connected between an electric motor and an accelerator device.
The invention will now be described in more detail by way of example with reference to the embodiments shown in the accompanying figures. It should be kept in mind that the following described embodiments are only presented by way of example and should not be construed as limiting the inventive concept to any particular physical configuration, shape, size, or order.
a and 2b illustrate exemplary safety systems according to the present invention, in which a current regulator 240a/240b is electrically connected between electric motor 210 and battery 220, with accelerator device 230 electrically connected between electric motor 210 and battery 220. As further illustrated, current regulator 240a/240b is also electrically connected between electric motor 210 and battery 220. As illustrated, current regulator 240a can be connected between battery 220 and accelerator device 230, or regulator 240b can be connected between accelerator device 230 and electric motor 210, for example and not in limitation.
As also illustrated, current regulator 240a/240b include control module 250, which includes input device 260 that is adapted to receive a safety command. According to an exemplary aspect of the present invention, a safety command can include an electrical (e.g., wireless, wired, for example, and not in limitation) or mechanical signal (e.g., the operation of a switch, dial, button, or other mechanical mechanism, for example and not in limitation). Accordingly, a safety signal can be provided manually (e.g., by hand, for example and in not in limitation) or electronically (e.g., transmitter boundary, remote control, etc., for example and not in limitation). Upon receipt of a safety command by input device 260, control module 250 is adapted to activate current regulator 240. According to an exemplary aspect of the invention, when activated, current regulator 240 functionally acts, and therefore is, an electrical resistor that reduces the amount of current that travels across it, and therefore, reduces the amount of current passing from battery 220 to electric motor 210. According to the present invention, current regulator 240 can reduce the amount of current flowing across it in total or in part. For example, when reducing the current in total, current regulator 240 functions as a “kill switch,” rendering the ride-on toy inoperable in terms of motion; while when reducing the current in part, current regulator 240, which can be a variable or static resistor, can reduce the maximum current flowing across it, which reduces the maximum speed of the ride-on toy. Thus, as can be seen, the present invention effectively reduces the voltage provided by battery 220, through accelerator device 230, which reaches electric motor 210. As further illustrated, any safety system according to the present invention (whether wired, wireless, or otherwise) can optionally include a reset mechanism 255, which resets the safety system after activation, either automatically (after a period of time has expired) or manually (upon manual triggering of reset mechanism 255).
Reference is now made to
It should be noted that the optional reset mechanism illustrated herein can be incorporated in any embodiment described herein, and can be disposed on the ride-on toy, on a wireless transmitter, or anywhere else to the extent desired insofar as the same does not precludes its intended function.
It will be apparent to one of ordinary skill in the art that the manner of making and using the claimed invention has been adequately disclosed in the above-written description of the exemplary embodiments and aspects taken together with the drawings.
It should be noted that the present invention expressly contemplates application to any electric ride-on toy. Therefore, it should be understood that any description herein directed to any particular type of ride-on toy is merely for illustrative purposes, and is not to be construed as limiting the present invention to any particular type, size, shape, or material. Further, it should be noted that the present invention contemplates its various elements being in various configurations, with no limitation as to which elements are in combination with others, unless necessary to the function of the present invention or unless expressly stated herein as “necessary.”
Accordingly, the specification and drawings are to be regarded in an illustrative and enabling, rather than a restrictive, sense. Therefore, it will be understood that the above description of the embodiments of the present invention are susceptible to various modifications, changes, and adaptations, and the same are intended to be comprehended within the meaning and range of equivalents of the appended claims.