1. Field of the Invention
The present invention relates fan motor controllers and more particularly, to a small-sized fan motor controller, which eliminates the use of a Hall sensor and is inexpensive to manufacture.
2. Description of the Related Art
Conventional fan motor controllers commonly have the following drawbacks:
1. A Hall sensor is used to detect the polarity address of the rotor of the fan motor for speed control. The use of the Hall sensor greatly increases the cost of the fan motor controller. Further, the installation of the Hall sensor is complicated.
2. The high potential field effect power transistor for driving the fan motor is not in full conduction during working. Therefore, the high potential field effect power transistor wastes much power supply, and the temperature of the high potential field effect power transistor is high during its working.
The present invention has been accomplished under the circumstances in view. It is therefore one object of the present invention to provide a fan motor controller, which eliminates the use of a Hall sensor. It is another object of the present invention to provide a fan motor controller, which has a small size and is inexpensive to manufacture.
To achieve these and other objects of the present invention, the fan motor controller comprises a power supply unit adapted to provide the necessary working voltage for component parts of the fan motor controller; three driving circuits electrically connected to the microprocessor, the driving circuits each having two transistors; three power output circuits respectively electrically connecting the driving circuits to a brushless motor, the power output circuits each comprised of a transistor and a field effect power transistor, the transistors of the power output circuits being turned on/off by means of on/off action of the transistors of the driving circuits so that the field effect power transistors of the power output circuits are turned on/off to control forward/reverse operation of the brushless motor; a microprocessor adapted to receive control signals and to output control signals to the driving circuits; a voltage raising and compensation circuit, the voltage raising and compensation circuit being comprised of a plurality of transistors, resistors, capacitors and diodes, and adapted to raise the voltage of the power supply unit and to provide raised voltage to the driving circuits for driving the field effect power transistors; a back-EMF sensing circuit, the back-EMF sensing circuit being comprised of three operational amplifiers electrically connected to the brushless motor and the microprocessor to detect the polarity address of the rotor of the brushless motor and to output the detected signal to the microprocessor for digital signal control.
2. Description of the Related Art
Referring to
The power supply unit 10 (see
The three driving circuits 20 are electrically connected to the microprocessor 40, each having two transistors Q1 and Q2 respectively connected to the associating power output circuits 30 (see
The three power output circuits 30 is electrically connected to a brushless motor M, each comprised of a transistor Q3 and a field effect power transistor QT (see
The microprocessor 40 (see
The voltage raising and compensation circuit 50 (see
The Back-EMF sensing circuit 60 (see
The current-limit protection circuit 70 (see
The speed control circuit 80 (see
The operation of the present invention is outlined hereinafter. When ON, the microprocessor 40 outputs a control signal to the driving circuits 20 to set the brushless motor M into position. At the same time, the Back-EMF sensing circuit 60 detects the polarity address of the rotor of the brushless motor M, and outputs the detected signal to the microprocessor 40 for operation control.
During operation, the invention has the following features:
1. The field effect power transistor QT works in full conduction:
As shown in
2. It makes EMF measurement for digital signal control:
As shown in
3. It allows for control of different speeds:
As shown in
4. It provides an overcurrent protection:
As shown in
Although a particular embodiment of the invention has been described in detail for purposes of illustration, various modifications and enhancements may be made without departing from the spirit and scope of the invention. Accordingly, the invention is not to be limited except as by the appended claims.