Sensing control system for electric toy
09636598 ยท 2017-05-02
Assignee
- Guangdong Alpha Animation & Culture Co., Ltd. (CN)
- Guangdong Auldey Animation & Toy Co., Ltd. (CN)
- Gangzhou Alpha Culture Communications Co., Ltd. (CN)
Inventors
Cpc classification
A63H29/24
HUMAN NECESSITIES
A63H30/00
HUMAN NECESSITIES
International classification
A63H30/00
HUMAN NECESSITIES
A63H29/24
HUMAN NECESSITIES
Abstract
The present invention provides a sensing control system for an electric toy, characterized in that it comprises a signal detection module for receiving an external sensing and then generating a sensing signal; a calculation and control module for receiving the sensing signal and counting a number of the sensing signal, and then sending out different control signals corresponding to different numbers of the sensing signals; and an electric driving module for receiving the control signal and then sending a driving signal to the electric toy, so as to control the electric toy to work. Therefore, according to different numbers of sensing signals, the electric toy is able to perform different actions or speed changes of the same action. In this way, the toy equipped with the sensing control system of the present invention can go beyond the limitation of a remote control, and thus becomes suitable as a toy for children of different ages. In addition, it makes a toy gain advantages of becoming more user friendly, more interactive, more interesting, and thus would become many children's favorite.
Claims
1. A sensing control system for an electric toy, comprising: a signal detection module for receiving an external signal and then generating a sensing signal; a calculation and control module for receiving the sensing signal and counting a number of the sensing signal, and then sending out different control signals corresponding to different numbers of the sensing signals; and an electric driving module for receiving the control signal and then sending a driving signal to the electric toy, so as to control the electric toy to work; wherein the electric driving module is a motor driving module comprising a motor, the calculation and control module is provided with a single chip microcomputer, the single chip microcomputer is stored with the control signals as follows: when a range of the number is N.sub.1, the motor runs at a speed of S.sub.1 for T.sub.1 seconds; when a range of the number is N.sub.2, the motor runs at a speed of S.sub.2 for T.sub.2 seconds; and when a range of the number is N.sub.3, the motor runs at a speed of S.sub.3 for T.sub.3 seconds; and so forth, when a range of the number is N.sub.m, the motor runs at a speed of S.sub.m for T.sub.m seconds; wherein N.sub.1<N.sub.2<N.sub.3<N.sub.m, S.sub.1<S.sub.2<S.sub.3<S.sub.m, and T.sub.1<T.sub.2<T.sub.3<T.sub.m, wherein the signal detection module is a photo-sensitive sensing module that comprises a phototransistor, the phototransistor is arranged on an upper surface of the electric toy, when a user waves his or her hand above the electric toy, the phototransistor receives a signal and accordingly sends out a sensing signal to the calculation and control module, in the case that the user waves his or her hand for X times in a continuous time period and with a time interval between two consecutive waving actions being no longer than 1 second, 1 second after a termination of the waving action of the user, the single chip microcomputer is programmed to count the generated sensing signal and reaches a counting number X, and then respectively compares the number X with N.sub.1, N.sub.2, N.sub.3 . . . N.sub.m, if X is smaller than N.sub.1, no signal is sent out, if X is within one of N.sub.2, N.sub.3 . . . N.sub.m, sends out the control signal corresponding to the range of the number within which X is to the electric driving module, which further drives the motor to run according to the specified running speed and the specified running time corresponding to that control signal.
2. The sensing control system for an electric toy as claimed in claim 1, wherein the signal detection module comprises a non-contact sensing circuit, the non-contact sensing circuit is provided with a sensing receiver, the sensing receiver tracks and senses an action of a user in a real time manner, with respect to each action made by the user, the sensing receiver outputs one sensing signal and sends out the sensing signal to the calculation and control module.
3. The sensing control system for an electric toy as claimed in claim 2, wherein the non-contact sensing circuit is selected from the group consisting of photo-sensitive sensing circuit, magnetic sensing circuit, thermal sensing circuit and sound sensing circuit.
4. The sensing control system for an electric toy as claimed in claim 1, wherein the calculation and control module comprises a control chip, the control chip records the number of the sensing signal sent out from the signal detection module in a continuous time period, and according to the recorded number sends out a control signal that is corresponding to the recorded number to the electric driving module.
5. The sensing control system for an electric toy as claimed in claim 4, wherein the control chip is stored with a plurality sets of control signals, wherein each set of control signal is corresponding to a range of the number, in the case that the recorded number is not within any one of the ranges of the number, no signal is sent out, while in the case that the recorded number is within one of the ranges of the number, send out the control signal that is corresponding to the range of the number within which the recorded number is.
6. The sensing control system for an electric toy as claimed in claim 1, wherein the signal detection module comprises at least two non-contact sensing circuits, and each of the non-contact sensing circuits is provided with a sensing receiver, the sensing receiver tracks and senses an action of a user in a real time manner, with respect to each action made by the user, the sensing receiver outputs one sensing signal and sends out the sensing signal to the calculation and control module, and the calculation and control module then sends out a corresponding control signal based on a determination of the received combination of a plurality of sensing signals.
7. The sensing control system for an electric toy as claimed in claim 6, wherein the non-contact sensing circuit is selected from the group consisting of photo-sensitive sensing circuit, magnetic sensing circuit, thermal sensing circuit, sound sensing circuit and a combination of two or more of the foregoing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DETAILED DESCRIPTION OF THE DRAWINGS
(3) As shown in
DETAILED DESCRIPTION
Embodiment 1
(4) As shown in
(5) The specific control signals stored in the single chip microcomputer (SCM) in this embodiment are as follows: {circumflex over (1)} waving hand 4 to 6 times, 1 second after completion of the foregoing waving action the electric car moving forward for 1 second, and the moving speed being 30% of a full running speed of the motor; {circumflex over (2)} waving hand 7 to 9 times, 1 second after completion of the foregoing waving action the electric car moving forward for 2 seconds, and the moving speed being 45% of a full running speed of the motor; {circumflex over (3)} waving hand 10 to 14 times, 1 second after completion of the foregoing waving action the electric car moving forward for 4 seconds, and the moving speed being 60% of a full running speed of the motor; {circumflex over (4)} waving hand 15 to 20 times, second after completion of the foregoing waving action the electric car moving forward for 8 seconds, and the moving speed being 80% of a full running speed of the motor; and {circumflex over (5)} waving hand more than 21 times, second after completion of the foregoing waving action the electric car moving forward for 12 seconds, and the moving speed being 100% of a full running speed of the motor.
(6) In the case that the sensing control system described in this embodiment is used in an electric toy car, the operation procedure accordingly is as follows: press the power button, the system starts to work and the electric toy car is in a standby state at this moment, when a user waves his or her hand above the electric toy car and the waving action meets the requirement that the time interval between two consecutive hand waving actions is no more than 1 second, if the number of hand waving action is no more than 3 times within a time period of 4 seconds, the electric toy car does not respond and thus remains in the standby state to wait for future sensing; if the number of hand waving action is more than 4 times within a continuous time period, according to the respective control signal from the SCM, the user is able to control the electric toy car to move. For example, in the case that the user waves his or her hand 5 times, 1 second after completion of the foregoing waving action, the electric car moves forward for 1 second at the moving speed that is 30% of a full running speed of the motor; in the case that the user waves his or her hand 10 times, 1 second after completion of the foregoing waving action, the electric car moves forward for 4 seconds at the moving speed that is 60% of a full running speed of the motor; and in another case that the user waves his or her hand 25 times, 1 second after completion of the foregoing waving action, the electric car moves forward for seconds at the moving speed that is 100% of a full running speed of the motor. Further, after finishing one moving forward action, the electric toy car returns to the standby state, and in the case that a hand waving action is sensed within the next 5 minutes, the electric toy car runs again according to the respective number of hand waving actions. On the other hand, if no any hand waving action has been sensed within the next 5 minutes, the electric toy car then goes into an off state. In this case, a user needs to press the power button again to turn on the electric car back into a play state. Moreover, if a user needs to shut down the toy car manually, the user may achieve it by pressing the power button for 2 to 3 seconds.
Embodiment 2
(7) As shown in
(8) In this embodiment, the above mentioned two phototransistors are disposed on the top of an electric toy car and in a front to rear arrangement. The magnetic element is disposed on one side of the two phototransistors. When a user makes a hand waving action from rear side toward front side of the electric toy car with an empty hand, the phototransistor located on the rear side of the toy car senses the waving action first and accordingly sends out a sensing signal, and then the phototransistor located on the front side of the toy car senses the waving action next and accordingly sends out a sensing signal as well. As for the magnetic element, it is not able to sense the waving action with an empty hand and accordingly does not send out any magnetic sensing signal in this situation. The SCM first determines the sequence in which the two sensing signals have been generated as well as the number of the waving actions made by the user in a continuous time period, and accordingly, controls the electric toy car to move forward at a speed corresponding to the number of sensed waving actions. In the case when a user makes a hand waving action from front side toward rear side of the electric toy car with an empty hand, the phototransistor located on the front side of the toy car senses the waving action first and accordingly sends out a sensing signal, and then the phototransistor located on the rear side of the toy car senses the waving action next and accordingly sends out a sensing signal as well. As for the magnetic element, it is not able to sense the waving action with an empty hand and accordingly does not send out any magnetic sensing signal. The SCM first determines the sequence in which the two sensing signals have been generated as well as the number of the waving actions made by the user in a continuous time period, and accordingly, controls the electric toy car to move backward at a speed corresponding to the number of sensed waving actions. In another case, when a user makes a hand waving action above the electric toy car with a magnetic article in hand, the two phototransistors sensing the hand waving action sequentially and accordingly send out respective sensing signals, in addition, because of the magnetic article, the magnetic sensing element will send out a magnetic signal in this case. The SCM first determines the sequence in which the two sensing signals have been generated as well as the number of the waving actions made by the user in a continuous time period, and accordingly, controls the electric toy car to move forward or backward at a speed corresponding to the number of hand waving actions. And at the same time, the SCM receives the magnetic sensing signal sent form the magnetic sensing circuit and accordingly sends out a corresponding instruction to control certain other functions of the electric toy car. More specifically, in this embodiment, when the SCM receives the magnetic sensing signal, it will further control to increase running speed of the motor in the electric toy car. That is to say, with the same number of hand waving actions, when a user makes the hand waving actions with a magnetic article in the user' hand, the electric toy car would move faster than that when the user makes hand waving actions with an empty hand.
(9) Although the present invention has been described in reference to the specific embodiments described above, the description of embodiments does not intend to limit the present invention. On the basis of the description of the present invention, a person of ordinary skill in the art is able to anticipate other changes for the disclosed embodiments. Therefore, these changes are within the scope defined by the claims of the present application.