Digital servo motor controller IC design for preventing the power feedback effect during manual adjusting the servo motor
Granted 17 Oct 2006 · no office action yet
Assignee: Princeton Technology Corporation
Law firm: Law firm · Log in to unlock
Attorney: Attorney · Log in to unlock
Inventors: Wei Cheng Lin · Examiner: Rita Leykin · AU 2837 · TC 2800
Life of the application
6 dated eventsAbstract
The present invention provides an improvement design for a digital servo motor controller IC to prevent the power feedback effect during manual adjusting the servo motor. A circuit is added at each output of the digital servo motor controller IC. The added circuit comprises a divider circuit and three NMOS inverter circuits connected sequentially. The outputs of the second and the third MOS inverter circuits are used as the inputs for the servo motor, so as to avoid the power feedback effect during manual adjusting of the servo motor.
Description
5 parts›FIELD OF THE INVENTION
The present invention relates to an improvement design of an IC, and more particularly to an improvement design of a digital servo motor controller IC for preventing the power feedback effect during manual adjusting the servo motor.
›BACKGROUND OF THE INVENTION
The system block diagram of a conventional remote-controlled game motor or plane is shown in FIG. 1 , in which the remote-controlled signal transmitter 2 accepts manual instructions from the joystick 1 , and transmits signals to the receiver 3 of a game motor or plane. After being processed the signals will be inputted to a digital servo motor controller 4 for controlling the motor 5 of the game motor or plane, so as to rotate the wheels of the motor or control the propplers of the plane.
The circuits between the digital servo motor controller 4 and the motor 5 are shown in FIG. 2 . The digital servo motor controller 4 has two outputs OUT 1 and OUT 2 , after being passed through the INV 1 and INV 2 respectively to generate OUT 1 B and OUT 2 B, four signals OUT 1 , OUT 2 , OUT 1 B, OUT 2 B will be inputted to power MOS transistors PMOS 1 , NMOS 2 , PMOS 3 , NMOS 4 respectively. Four diodes D 1 , D 2 , D 3 , D 4 are parallel connected with the four power MOS transistors PMOS 1 , NMOS 2 , PMOS 3 , NMOS 4 respectively as shown. Since the breakdown voltage of the four diodes is lower than that of the four power MOS transistors, the four power MOS transistors will be prevented from damaging by any static voltage. PMOS 1 and NMOS 2 are serially connected at point A. PMOS 3 and NMOS 4 are serially connected at point B. The motor 5 is connected between point A and B.
When OUT 1 and OUT 2 are both “0”, the motor 5 is stopped. When OUT 1 is “0”, OUT 2 is “1”, the motor 5 will be turned left. When OUT 1 is “1”, OUT 2 is “0”, the motor 5 will be turned right. OUT 1 and OUT 2 are both “1” is prohibited. Table 1 shows the results.
Table 1 shows the operation of the system. When the system is not operated, the digital servo motor controller 4 and the motor 5 are not powered on, and the motor 5 can be rotated manually to adjust the initial position. As the motor 5 is rotated manually, the motor 5 will become a generator to generate some power to be fed back to digital servo motor controller 4 and cause both OUT 1 and OUT 2 to be “1”, so as to short the points A and B of the motor 5 . Due to this short situation, a huge amount of reverse current will be generated and fed to the motor 5 , and generate a great reverse torque to resist the manual rotating of the motor, therefore the initial position of the motor 5 is not very easy to be adjusted.
›OBJECT OF THE INVENTION
It is therefore an object of the present invention to provide an improvement design for digital servo motor controller IC for preventing the power feedback effect during manual adjusting the servo motor. A circuit is added respectively at the original outputs of the digital servo motor controller, which comprises a divider and three NMOS inverters connected sequentially. The outputs of the second and the third NMOS are used as the inputs of the servo motor, so as to achieve preventing the power feedback effect during manual adjusting the servo motor. When the system is not powered on, the motor can be rotated manually to adjust the initial position very easily.
›BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 shows schematically the system block diagram of a conventional remote-controlled game motor or plane.
FIG. 2 shows schematically the conventional circuit diagram between a digital servo motor controller IC and a motor.
FIG. 3 shows schematically the circuit added in a digital servo motor controller IC according to the present invention.
›DETAILED DESCRIPTION OF THE INVENTION
Referring to FIG. 3 , which shows schematically the circuit added in a digital servo motor controller IC according to the present invention. The circuit is added after each of the two outputs OUT 1 and OUT 2 of the original digital servo motor controller 4 in IC.
The output OUT 1 will be used as an example for explanation as shown in FIG. 3 . Resistors R 1 and R 2 form a divider, OUT 1 is sent to the input of R 1 , the connecting point “a” between R 1 and R 2 is connected with the gate of NMOS 5 . The drain of NMOS 5 is connected at point “b” with the gate of NMOS 6 . The drain of NMOS 6 is connected at point “c” with the gate of NMOS 7 . The point “c” is the output OUT 11 . The point “d” is the drain of NMOS 7 , and is the output OUT 11 B. OUT 11 and OUT 11 B are used to substitute the OUT 1 and OUT 1 B in FIG. 2 for driving the motor 5 according to the present invention.
Similarly, as to output OUT 2 , the present invention will use the similar circuit as in FIG. 3 to generate OUT 22 and OUT 22 B to substitute the OUT 2 and OUT 2 B in FIG. 2 for driving the motor 5 .
The resistances of the resistors R 1 and R 2 are properly designed such that when the voltage of OUT 1 is higher than or equal to 3 volts, NMOS 5 will be conducting; when the voltage of OUT 1 is lower than 3 volts, NMOS 5 will be opened.
When the system is not powered on, if we try to rotate the motor 5 manually so as to generate some little power (this is the most possible case) to be fed back to the system, and make OUT 1 lower than 3 volts, than NMOS 5 will be opened, the voltage at point “b” will be high, NMOS 6 is therefore conducting. When NMOS 6 is conducting, the voltage of point “c” will be low (i.e. OUT 11 is “0”), NMOS 7 is therefore opened, the voltage at point “d” will be high. (i.e. OUT 11 B is “1”).
Similarly, when the system is not powered on, if we try to rotate the motor 5 manually so as to generate some little power (this is the most possible case) to be fed back to the system, and make OUT 2 lower than 3 volts, than NMOS 5 will be opened, the voltage at point “b” will be high, NMOS 6 is therefore conducting. When NMOS 6 is conducting, the voltage of point “c” will be low (i.e. OUT 22 is “0”), NMOS 7 is therefore opened, the voltage at point “d” will be high. (i.e. OUT 22 B is “1”).
Therefore, when the system is not powered on, if we try to rotate the motor 5 manually so as to generate some little power (this is the most possible case) to be fed back to the system, OUT 11 will be “0”, OUT 11 B will be “1”, OUT 22 will be “0”, OUT 22 B will be “1”, so the four power MOS transistors PMOS 1 , NMOS 2 , PMOS 3 , NMOS 4 will all be opened. Consequently, there is no power feedback effect as to the motor 5 , and we can rotate the motor 5 very easily to achieve the purpose of the present invention.
The circuit in FIG. 3 can also prevent the motor from trembling (power exhausting) during normal power-on (not feed back power) as OUT 1 , OUT 2 to be “0, 1”, “1, 0” or “1,1.”
When the system is not powered on, if we try to rotate the motor 5 manually so as to generate some big power (this is not the normal possible case) to be fed back to the system, the IC of digital servo motor controller 4 will work as being powered on, and OUT 1 , OUT 2 will be controlled by the signal from the joystick 1 of the remote-controlled signal transmitter 2 . However, since the joystick 1 does not send out any signal, OUT 1 and OUT 2 will be both “0”, so OUT 11 and OUT 22 will be both “0”. Referring to table 1, we know that the motor 5 will not rotate, i.e. no power (voltage) is passed through the motor 5 . Therefore it is very easy to rotate the motor 5 to achieve the purpose of the present invention.
The circuit in FIG. 3 of the present invention is built in the IC of digital servo motor controller 4 . PMOS can be used instead to achieve the purpose of the present invention.
The spirit and scope of the present invention depend only upon the following Claims, and are not limited by the above embodiments.
›Tables in the description — 1
| OUT1 | OUT2 | motor 5 |
|---|---|---|
| 0 | 0 | stop |
| 0 | 1 | turn left |
| 1 | 0 | turn right |
| 1 | 1 | prohibited |
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4 codes- G06F17/50
- G05B1/06
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