MOTOR UNIT
20220209693 ยท 2022-06-30
Inventors
Cpc classification
International classification
Abstract
A motor unit comprises a switch circuit and a control unit. The switch circuit comprises a first terminal and a second terminal, where the switch circuit is coupled to a motor for driving the motor. The first terminal has a first voltage signal. The control unit generates a plurality of control signals to control the switch circuit. When the first terminal is in a floating state, the motor unit utilizes left-right asymmetry of the first voltage signal to judge whether the motor is in a forward rotation state or not. The motor unit further comprises the motor, where the motor comprises a rotor, a silicon steel plate, and a coil. The silicon steel plate has an asymmetrical structure.
Claims
1. A motor unit comprising: a switch circuit, comprising a first terminal and a second terminal, wherein the switch circuit is coupled to a motor for driving the motor, the first terminal has a first voltage signal, and the second terminal has a second voltage signal; and a control unit, configured to generate a plurality of control signals to control the switch circuit, wherein when the first terminal is in a floating state, the motor unit utilizes left-right asymmetry characteristics of the first voltage signal to judge whether the motor is operated in a forward rotation state or not.
2. The motor unit of claim 1, wherein the motor unit further comprises the motor, the motor comprises a rotor, a silicon steel plate, and a coil, and the silicon steel plate has an asymmetrical structure.
3. The motor unit of claim 2, wherein the rotor is divided into four magnetic poles to switch phases.
4. The motor unit of claim 2, wherein the silicon steel plate comprises a first pole body and a first pole shoe, the first pole shoe is coupled to a terminal of the first pole body, and the first pole shoe forms an asymmetrical shape.
5. The motor unit of claim 4, wherein the first pole shoe forms an ax shape, and the ax shape is an asymmetrical pattern.
6. The motor unit of claim 4, wherein the silicon steel plate further comprises a second pole body, a third pole body, a fourth pole body, a second pole shoe, a third pole shoe, and a fourth pole shoe, the second pole shoe is coupled to a terminal of the second pole body, the third pole shoe is coupled to a terminal of the third pole body, and the fourth pole shoe is coupled to a terminal of the fourth pole body.
7. The motor unit of claim 6, wherein the coil surrounds the first pole body, the second pole body, the third pole body, and the fourth pole body.
8. The motor unit of claim 1, wherein the motor unit further comprises a detecting unit, and the detecting unit is coupled to the first terminal and the second terminal for detecting the first voltage signal and the second voltage signal, so as to generate a detecting signal to the control unit.
9. The motor unit of claim 8, wherein the detecting unit generates the detecting signal to inform the control unit that the motor is in the forward rotation state or a reverse rotation state by detecting the first voltage signal.
10. The motor unit of claim 1, wherein the first voltage signal has a right-side slope and a left-side slope, and when the motor is operated in the forward rotation state, an absolute value of the right-side slope is greater than an absolute value of the left-side slope.
11. The motor unit of claim 1, wherein the first voltage signal has a right-side slope and a left-side slope, and when the motor is operated in a reverse rotation state, an absolute value of the right-side slope is less than an absolute value of the left-side slope.
12. The motor unit of claim 1, wherein the first voltage signal has a right-side area and a left-side area, and when the motor is operated in the forward rotation state, the right-side area is greater than the left-side area.
13. The motor unit of claim 1, wherein the first voltage signal has a right-side area and a left-side area, and when the motor is operated in a reverse rotation state, the right-side area is less than the left-side area.
14. The motor unit of claim 1, wherein the motor unit is applied to a sensorless motor.
15. The motor unit of claim 1, wherein the motor unit is applied to a single-phase motor.
16. The motor unit of claim 1, wherein the motor unit judges whether a rotation direction of the motor is correct or not based on left-right asymmetry characteristics of a back electromotive force signal.
17. The motor unit of claim 1, wherein the switch circuit further comprises: a first transistor, coupled to a voltage source and the first terminal; a second transistor, coupled to the first terminal and a ground; a third transistor, coupled to the voltage source and the second terminal; and a fourth transistor, coupled to the second terminal and the ground.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] The above-mentioned and other objects, features, and advantages of the present invention will become apparent with reference to the following descriptions and accompanying drawings, wherein:
[0010]
[0011]
[0012]
DETAILED DESCRIPTION
[0013] Preferred embodiments according to the present invention will be described in detail with reference to the drawings.
[0014]
[0015] The control unit 110 generates a first control signal C1, a second control signal C2, a third control signal C3, and a fourth control signal C4 so as to respectively control the ON/OFF states of the first transistor 101, the second transistor 102, the third transistor 103, and the fourth transistor 104. The control unit 110 operates alternatively in a first driving mode and a second driving mode, so as to supply the electric energy to the motor M. In the first driving mode, the control unit 110 turns on the first transistor 101 and the fourth transistor 104 by controlling the first control signal C1 and the fourth control signal C4. At this moment the current flows sequentially from the voltage source VCC to the first transistor 101, the motor M, and the fourth transistor 104 for supplying the electric energy to the motor M. In the second driving mode, the control unit 110 turns on the second transistor 102 and the third transistor 103 by controlling the second control signal C2 and the third control signal C3. At this moment the current flows sequentially from the voltage source VCC to the third transistor 103, the motor M, and the second transistor 102 for supplying the electric energy to the motor M. By operating alternatively between the first driving mode and the second driving mode, the motor M can be rotated normally as a result. The detecting unit 120 is coupled to the first terminal O1 and the second terminal O2 for detecting the first voltage signal VO1 and the second voltage signal VO2, so as to generate a detecting signal Vd to the control unit 110.
[0016]
[0017] More specifically, when the motor unit 10 installs the asymmetrical silicon steel plate 210, it results that the back electromotive force signal sensed by the first terminal O1 or the second terminal O2 is left-right asymmetrical, so as to judge whether the motor M is in a forward rotation state or a reverse rotation state.
[0018] According to one embodiment of the present invention, the motor unit 10 may be applied to a sensorless motor. Also, the motor unit 10 may be applied to a single-phase motor. The motor unit 10 utilizes left-right asymmetry characteristics of the first voltage signal VO1 to judge whether the motor M is in a forward rotation state or not.
[0019] While the present invention has been described by the preferred embodiment, it is to be understood that the invention is not limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications. Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications.
[0020] Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.