FREQUENCY-VARIABLE PULSE-WIDTH-MODULATION MOTOR DRIVE CIRCUIT CAPABLE OF OPERATING UNDER DIFFERENT PWM FREQUENCIES
A frequency-variable PWM motor drive circuit includes a drive IC member, a Hall IC member, a PWM converter circuit and a compensation unit. The drive IC member electrically connects with the Hall IC member, the drive IC member further includes a pin electrically connected with the compensation unit and the PWM converter circuit. The PWM converter circuit has a PWM input pin to receive a PWM signal, and converts it into a voltage signal. The compensation unit connects between the pin of the drive IC member and the PWM converter circuit. In operation, the compensation unit can improve a waveform of the voltage signal supplied from the PWM converter circuit, and then output it to the pin of the drive IC member. Consequently, the drive IC member can be steadily operated at predetermined motor speeds under various frequencies of the PWM signals.
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1. Field of the Invention
The present invention relates to a frequency-variable PWM (Pulse Width Modulation) motor drive circuit capable of operating under different PWM frequencies. More particularly, the present invention relates to the frequency-variable PWM modulation motor drive circuit having a compensation unit connected between a drive IC member and a PWM converter circuit such that the PWM converter circuit is capable of operating under different PWM frequencies.
2. Description of the Related Art
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Generally, the motor divides the operational statuses into a high-speed mode (including full speed), a low-speed mode (excluding full or zero speed) and a stopping mode (zero speed). The drive IC member 10 can determine the operational statuses of the motor according to the input PWM signal such that the motor can be adjusted and changed in speeds to fulfill various system needs. For example, when a voltage of the pin VTH of the drive IC member 10 is higher than 3.6 volts, the drive IC member 10 controls the motor to operate at the stopping mode as well as zero rpm. Conversely, when the voltage of the pin VTH of the drive IC member 10 is lower than 2.0 volts, the drive IC member 10 controls the motor to operate at the high-speed mode as well as 6,000 rpm. If the voltage of the pin VTH of the drive IC member 10 is in the range of 2.0 volts to 3.6 volts, the drive IC member 10 controls the motor to operate at the low-speed mode as well as greater than zero rpm but lesser than 6,000 rpm.
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However, ambient heat generated from a heat source is lower than a high temperature when the motor is started. Therefore, it is undesirable to permit the drive IC member 10 to increase the speed of the motor reaching 6,000 rpm in the high-speed mode that is unsuitable for the need of normal usage or an improper usage of the motor due to a waste of power consumption. Hence, there is a need for improving the motor to prevent entering the high-speed mode while starting.
In order to solve the motor to be unexpectedly operated at the high-speed mode while starting, an approach to this problem is disclosed in applicant's own U.S. patent application Ser. No. 11/247,417, the entire disclosure of which is incorporated herein by reference. In this approach, a capacitor is parallel connected between a pin VTH of the PWM drive IC member and PWM converter circuit, and the capacitor has an end further connecting with a power source. Accordingly, the voltage of the pin VTH of the PWM drive IC member 10 cannot drop to zero voltage in such a way as to prevent the motor from unexpectedly entering a high-speed mode while starting the motor.
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As is described in greater detail below, the present invention intends to provide a frequency-variable PWM motor drive circuit capable of operating under different PWM frequencies, wherein a compensation unit connects between a drive IC member and a PWM converter circuit. The compensation unit can compensate distortions of a waveform supplied from the PWM converter circuit due to changes in frequencies of PWM signals. Accordingly, the frequency-variable PWM motor drive circuit can be applied in various frequencies of the PWM signals in such a way as to mitigate and overcome the above problem.
SUMMARY OF THE INVENTIONThe primary objective of this invention is to provide a frequency-variable PWM motor drive circuit capable of operating under different PWM frequencies, wherein a compensation unit connects between a drive IC member and a PWM converter circuit. The compensation unit can improve a waveform supplied from the PWM converter circuit so that a distortion of the ratio of a peak to a wavelength of the waveform is attenuated. Accordingly, the PWM motor drive circuit is so configured to be suitable for applying in various frequencies of PWM signals.
The secondary objective of this invention is to provide the frequency-variable PWM motor drive circuit capable of operating under different PWM frequencies, wherein a compensation unit connects between a drive IC member and a PWM converter circuit. The compensation unit can prevent distortions of the waveform from directly supplying to the drive IC member. Accordingly, the PWM motor drive circuit is so configured to steady motor speeds while applying in various frequencies of PWM signals.
The frequency-variable PWM motor drive circuit in accordance with an aspect of the present invention includes a drive IC member, a Hall IC member, a PWM converter circuit and a compensation unit. The drive IC member electrically connects with the Hall IC member, the drive IC member further includes a pin electrically connected with the compensation unit and the PWM converter circuit. The PWM converter circuit has a PWM input pin to receive a PWM signal, and converts it into a voltage signal. The compensation unit connects between the pin of the drive IC member and the PWM converter circuit. In operation, the compensation unit can improve a waveform of the voltage signal supplied from the PWM converter circuit, and then output it to the pin of the drive IC member. Consequently, the drive IC member can be steadily operated at predetermined motor speeds under various frequencies of the PWM signals.
In a separate aspect of the present invention, the compensation unit includes a transistor having a collector to form a voltage-signal output terminal.
In a further separate aspect of the present invention, the compensation unit further includes a resistor through which a base of the transistor connects with a power source.
In a yet further separate aspect of the present invention, the compensation unit further includes a capacitor which is parallel-connected between the power source and the transistor.
Further scope of the applicability of the present invention will become apparent from the detailed description given hereinafter. However, it should be understood that the detailed description and specific examples, while indicating preferred embodiments of the invention, are given by way of illustration only, since various will become apparent to those skilled in the art from this detailed description.
BRIEF DESCRIPTION OF THE DRAWINGSThe present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present invention, and wherein:
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The PWM converter circuit 12 has a PWM input terminal 121 connected with a PWM source to receive PWM signals, and a transistor (identified as “Q1”) 122 having a base connected with the PWM input terminal 121 by referring particularly to the left side of
The capacitor 3′ connects in parallel between the first pin 101 of the drive IC member 10 and the PWM converter circuit 12 by referring particularly to the middle portion of
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Although the invention has been described in detail with reference to its presently preferred embodiment, it will be understood by one of ordinary skill in the art that various modifications can be made without departing from the spirit and the scope of the invention, as set forth in the appended claims.
Claims
1. A frequency-variable PWM motor drive circuit, comprising:
- a drive IC member electrically connected with a motor coil, the drive IC member being capable of controlling a speed of a motor;
- a PWM converter circuit electrically connected with the drive IC member, the PWM converter circuit including a PWM input pin for inputting a PWM signal;
- a compensation unit connected between the drive IC member and the PWM converter circuit, said compensation unit further connected with a power source; and
- a capacitor connected between a first pin and a second pin of the drive IC member, a voltage of said first pin of the drive IC member being dropped to a predetermined voltage when the motor starts;
- wherein the compensation unit compensates a voltage-signal output from the PWM converter circuit, and sends it to the drive IC member.
2. The frequency-variable PWM motor drive circuit as defined in claim 1, wherein said compensation unit includes a transistor having a collector to form a voltage-signal output terminal.
3. The frequency-variable PWM motor drive circuit as defined in claim 2, wherein said compensation unit further includes a resistor through which a base of the transistor connects with a power source.
4. The frequency-variable PWM motor drive circuit as defined in claim 3, wherein said compensation unit further includes a capacitor which is parallel-connected between the power source and the transistor.
5. The frequency-variable PWM motor drive circuit as defined in claim 1, wherein various frequencies of the PWM signal are input to the PWM input pin of the PWM converter circuit, and are applied to the PWM motor drive circuit.
6. A frequency-variable PWM motor, comprising:
- a motor coil adapted to generate a magnetic field for driving a motor rotor;
- a frequency-variable PWM motor drive circuit including a drive IC member electrically connected to the motor coil, the PWM motor drive circuit being capable of controlling a speed of the PWM motor;
- a PWM converter circuit electrically connected with the drive IC member, the PWM converter circuit including a PWM input pin for inputting a PWM signal; a compensation unit connected in parallel between the drive IC member and the PWM converter circuit, said compensation unit further connected with a power source; and
- a capacitor connected between a first pin and a second pin of the drive IC member, a voltage of said first pin of the drive IC member being dropped to a predetermined volt when the motor starts;
- wherein the compensation unit compensates a voltage-signal output from the PWM converter circuit, and sends it to the drive IC member.
7. The PWM motor as defined in claim 6, wherein said compensation unit includes a transistor having a collector to form a voltage-signal output terminal.
8. The PWM motor as defined in claim 7, wherein said compensation unit further includes a resistor through which a base of the transistor connects with a power source.
9. The PWM motor as defined in claim 8, wherein said compensation unit further includes a capacitor which is parallel-connected between the power source and the transistor.
10. The PWM motor as defined in claim 6, wherein various frequencies of the PWM signal are input to the PWM input pin of the PWM converter circuit, and are applied to the PWM motor drive circuit.
11. The PWM motor as defined in claim 1, wherein said first pin of the drive IC member connects with the PWM converter circuit via the compensation unit.
12. The PWM motor as defined in claim 1, wherein said second pin of the drive IC member connects with the PWM converter circuit via the compensation unit, and supplies a voltage to the PWM converter circuit via the compensation unit.
13. The PWM motor as defined in claim 6, wherein said first pin of the drive IC member connects with the PWM converter circuit via the compensation unit.
14. The PWM motor as defined in claim 6, wherein said second pin of the drive IC member connects with the PWM converter circuit via the compensation unit, and supplies a voltage to the PWM converter circuit via the compensation unit.
Type: Application
Filed: Mar 23, 2006
Publication Date: Sep 27, 2007
Applicant:
Inventors: Alex Horng (Kaohsiung), Chung-Ken Cheng (Kaohsiung), Pei-Wei Lo (Kaohsiung)
Application Number: 11/386,673
International Classification: H02P 7/29 (20060101);