This Non-provisional application claims priority under 35 U.S.C. §119(a) on Patent Application No(s). 99131905, filed in Taiwan, Republic of China on Sep. 21, 2010, the entire contents of which are hereby incorporated by reference.
1. Field of the Invention
The present invention relates to a single phase DC brushless motor, and in particular relates to a single phase DC brushless motor controller and method for controlling the rotation speed and direction of the single phase DC brushless motor.
2. Description of the Related Art
Compared with brush motors, brushless motors can commutate (reverse the rotation direction) without brushes and thus have better structural reliability and rotation efficiency, consume less power and make less noise. DC brushless motors usually have sizes smaller than AC brushless motors and are widely used in various electronic devices such as heat dissipating fans.
In order to prevent the brushless motor from starting at a commutating dead angle, each lamination (121, 122, 123 or 124) of the stator 120 has two wings 121 (as shown in
Uni-directional rotation limits the use of the single phase DC brushless motor. To improve the ability of the single phase DC brushless motor, a motor controller which makes the motor of the prior art rotate bi-directionally is needed.
The present invention provides a single phase DC brushless motor controller, including: a micro control unit including: a Pulse Width Modulation (PWM) pin for receiving a PWM signal from a system; and a commutation logic unit for controlling the speed and rotation of a single phase DC brushless motor according to the PWM signal.
The present invention also provides a method for controlling the speed and rotation of a single phase DC brushless motor control, including: receiving a PWM signal; and controlling the speed and rotation of the single phase DC brushless motor according to the PWM signal.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The present invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
The Hall sensor 210 can be disposed on one of the laminations of the stator 120 of the single phase DC brushless motor 100, as shown in
The magnetic field control unit 220 of the present invention is used to change the magnetic field of the stator 120 of the single phase DC brushless motor 100 for driving the rotator 110 of the single phase DC brushless motor 100. The magnetic field control unit 220 of the present invention can produce a positive rotation magnetic field, a reverse rotation magnetic field, or eliminate all of the magnetic field to respectively make the rotator 110 of the single phase DC brushless motor 100 rotate positively, reversely, or stop. In an embodiment, “producing positive rotation” means that the magnetic field control unit 220 may produce a magnetic field on a lamination of the stator 120 of the magnetic field control unit 220, which repels the magnetic field of the rotator right in front of the lamination (for example, producing a magnetic N pole on the laminations 121 and 123). Meanwhile, “producing reversed rotation” means that the magnetic field control unit 220 may produce a magnetic field on the a lamination of the stator 120 of the magnetic field control unit 220, which attracts the magnetic field of the rotator right in front of the lamination (for example, producing a magnetic S pole on the lamination 121 and 123). Also, “eliminating the magnetic field” means that the magnetic field control unit 220 may make the lamination 121 non-magnetic. Specifically, the magnetic field control unit 220 may excite the magnetic coils of the laminations of the stator 120 with proper currents to produce the positive or reverse rotation magnetic field. In this embodiment, the magnetic coil of the lamination has a magnetic S pole when the current produced by the magnetic field control unit 220 is flowing from the high level X point to the low level Y point, and has a magnetic N pole when the current produced by the magnetic field control unit 220 is flowing from the high level Y point to the low level X point. Due to the nature of the design of the single phase DC brushless motor, the motor can only rotates in one way successfully, where the rotation in this way is a so-called positive rotation. Taking
The micro control unit 230 of the present invention is coupled to the Hall sensor 210 and the magnetic field control unit 220, and is used for receiving the sensing signal from the Hall sensor 210 and controlling the magnetic field control unit 230 to further control the single phase DC brushless motor 100 in order to control the rotation direction of the stator 12 of the single phase DC brushless motor 100. The micro control unit 230 includes at least a commutation logic unit 232 for determining whether to change the rotation direction of the single phase DC brushless motor 100.
To accomplish the commutation of the rotation direction of the single phase DC brushless motor 100, the commutation logic unit 232 of the present invention further performs the following steps when determining that the commutation of the rotation direction of the single phase DC brushless motor 100 is needed: (1) the commutation logic unit first makes the magnetic field control unit 230 eliminate the magnetic field of the stator 120; and then, (2) makes the magnetic field control unit 230 generate a reverse rotation magnetic field at the time the single phase DC brushless motor 100 is still rotating under inertia-driven force circumstance. If the reverse rotation magnetic field is suddenly excited on the rotator 110 at the time the rotator 110 of the single phase DC brushless motor 100 stops or rotates positively, the rotator 110 may fail to rotate reversely due to the commutating dead angle. The present invention excites the reverse rotation magnetic field when the rotator 110 is still rotating under inertia-driven force circumstance, thus avoiding the commutating dead angle and making the rotator 110 rotate reversely. In an embodiment, to rotate the single phase DC brushless motor 100 reversely from a resting position, the commutation logic unit 232 of the present invention will rotate the single phase DC brushless motor 100 positively in advance, and then rotate it reversely by the steps described hereafter.
Further, to rotate the motor 100 reversely, the commutation logic unit 232 may determine a best timing for making the magnetic field control unit 230 produce the reverse rotation magnetic field. In a better embodiment, the commutation logic unit 232 can determine the relative position between the rotator 110 and the stator 120 according to the sensing signal provided by the Hall sensor 210, and make the magnetic field control unit 232 produce the reverse rotation magnetic field at the time the single phase DC brushless motor is rotating to an angle other than the commutating dead angle. In
In addition to the determination of the position of the rotator, the commutation logic unit 232 of the present invention may also determine the rotation speed of the motor 100.
The single phase DC brushless motor controller 200 of the present invention which can make the single phase DC brushless motor rotate in two directions is fully described in the preceding paragraphs. In addition, the present invention further provides a mechanism to start the rotation of the motors. Refer to
In other embodiment, the rotation speed and direction can be controlled based on signals other than the PWM signal. For example, the micro control unit 230 may additionally configure a commutation signal pin 250 for receiving a commutation signal from the system so that the commutation logic unit 232 can control the rotation direction of the single phase DC brushless motor 100 based on the commutation signal.
The present invention further provides a single phase DC brushless motor which is able to rotate in two directions. Since the provided motor has a structure which is equal to the combination of the single phase DC brushless motor 100 in
The single phase DC brushless motor controller of the present invention can be directly used with the single phase DC brushless motor of the prior art to make the motor be able to rotate in two directions. For example, the single phase DC brushless motor controller can be used with a motor of a heat-dissipating fan so that the fan is able to blow or suck air, thus increasing the efficiency of heat dissipation. In another embodiment, this two-way heat dissipating fan can change its rotation direction to avoid dust accumulation on one side.
In addition to the said apparatuses, the present invention further provides a method for controlling the rotation speed and direction of the single phase DC brushless motor.
While the invention has been described by way of example and in terms of the preferred embodiments, it is to be understood that the invention is not limited to the disclosed embodiments. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.
Number | Date | Country | Kind |
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99131905 A | Sep 2010 | TW | national |
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Number | Date | Country |
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101594106 | Dec 2009 | CN |
Entry |
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CN Office Action dated Jun. 18, 2013. |
Number | Date | Country | |
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20120068642 A1 | Mar 2012 | US |