IP Library Granted Patent US 7,733,040
Granted Patent B2
US 7,733,040 · App. 11/895,487 · Granted Jun 8, 2010

Brushless motor

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Quick Facts
Patent No.
US 7,733,040
App. No.
11/895,487
Granted
Jun 8, 2010
Kind
B2
Abstract

In the m phase brushless motor, n (n<m) phase magnet coil groups are provided with magnetic sensors, while the remaining (m−n) phase magnet coil groups are not provided with magnetic sensors. The drive control circuit utilizes the sensor outputs of the n magnetic sensors to generates n sets of drive signals for the n phase magnet coil groups. The drive control circuit further generates (m−n) sets of drive signals for the (m−n) phase magnet coil groups not associated with the n magnetic sensors, using one or more of the sensor outputs of the n magnetic sensors in generation of each of the (m−n) sets of drive signals.

Claims (57)

1. A brushless motor comprising:

a coil array having m phase magnet coil groups, where m is an integer equal to 3 or greater;

a magnet array having a plurality of permanent magnets;

n magnetic sensors associated with n phase magnet coil groups among the m phase magnet coil groups, where n is an integer equal to 2 or greater but less than m, wherein the n magnetic sensors are used for detecting relative position of the magnet array and the coil array; and

a drive control circuit that utilizes the sensor outputs of the n magnetic sensors to drive the coil array;

wherein the drive control circuit includes:

a simulated sensor output generator that, based on computation using one or more of the sensor outputs of the n magnetic sensors as a variable, generates (m−n) simulated sensor outputs for the (m−n) phase magnet coil groups not associated with the n magnetic sensors; and

a drive signal generator that generates m sets of drive signals for the m phase magnet coil groups, in response to m sensor outputs inclusive of the sensor outputs of the n magnetic sensors and the (m−n) simulated sensor outputs, and

wherein the drive control circuit:

generates n sets of drive signals for the n phase magnet coil groups associated with the n magnetic sensors using the respective sensor outputs of the n magnetic sensors; and

generates (m−n) sets of drive signals for the (m−n) phase magnet coil groups not associated with the n magnetic sensors, using one or more of the sensor outputs of the n magnetic sensors in generation of each of the (m−n) sets of drive signals.

2. The brushless motor according to claim 1 , wherein

the simulated sensor output generator generates the (m−n) simulated sensor outputs for the (m−n) phase magnet coil groups not associated with the n magnetic sensors based on computation using two or more of the sensor outputs of the n magnetic sensors as variables.

3. The brushless motor according to claim 1 , wherein

the simulated sensor output generator generates the simulated sensor outputs through real time computation using the sensor outputs of the n magnetic sensors.

4. The brushless motor according to claim 1 , wherein

the simulated sensor output generator generates the simulated sensor outputs by using a lookup table that has the sensor outputs of the n magnetic sensors as input values and the simulated sensor outputs as output values.

5. The brushless motor according to claim 1 , wherein

the integer m is 3, and the integer n is 2.

6. The brushless motor according to claim 1 , wherein

the magnetic sensors are sensors that generate output signals exhibiting analog change depending on relative position of the magnet array and the coil array.

7. The brushless motor according to claim 1 , wherein

each magnetic sensor includes a bias/gain adjuster that adjusts a gain and a bias of the sensor output so as to produce the sensor output with a desired waveform.

8. An electronic device, comprising:

a brushless motor; and

a driven member driven by the brushless motor,

wherein the brushless motor includes:

a coil array having m phase magnet coil groups, where m is an integer equal to 3 or greater;

a magnet array having a plurality of permanent magnets;

n magnetic sensors associated with n phase magnet coil groups among the m phase magnet coil groups, where n is an integer equal to 2 or greater but less than m, wherein the n magnetic sensors are used for detecting relative position of the magnet array and the coil array; and

a drive control circuit that utilizes the sensor outputs of the n magnetic sensors to drive the coil array;

wherein the drive control circuit includes:

a simulated sensor output generator that, based on computation using one or more of the sensor outputs of the n magnetic sensors as a variable, generates (m−n) simulated sensor outputs for the (m−n) phase magnet coil groups not associated with the n magnetic sensors; and

a drive signal generator that generates m sets of drive signals for the m chase magnet coil groups, in response to m sensor outputs inclusive of the sensor outputs of the n magnetic sensors and the (m−n) simulated sensor outputs, and

wherein the drive control circuit:

generates n sets of drive signals for the n phase magnet coil groups associated with the n magnetic sensors using the respective sensor outputs of the n magnetic sensors; and

generates (m−n) sets of drive signals for the (m−n) phase magnet coil groups not associated with the n magnetic sensors, using one or more of the sensor outputs of the n magnetic sensors in generation of each of the (m−n) sets of drive signals.

9. The electronic device according to claim 8 , wherein the electronic device is a projector.

10. The electronic device according to claim 8 , wherein

each magnetic sensor includes a bias/gain adjuster that adjusts a gain and a bias of the sensor output so as to produce the sensor output with a desired waveform.

11. A fuel cell equipped apparatus, comprising:

a brushless motor;

a driven member driven by the brushless motor; and

a fuel cell for supplying power to the brushless motor,

wherein the brushless motor includes:

a coil array having m phase magnet coil groups, where m is an integer equal to 3 or greater;

a magnet array having a plurality of permanent magnets;

n magnetic sensors associated with n phase magnet coil groups among the m phase magnet coil groups, where n is an integer equal to 2 or greater but less than m, wherein the n magnetic sensors are used for detecting relative position of the magnet array and the coil array; and

a drive control circuit that utilizes the sensor outputs of the n magnetic sensors to drive the coil array;

wherein the drive control circuit includes:

a simulated sensor output generator that, based on computation using one or more of the sensor outputs of the n magnetic sensors as a variable, generates (m−n) simulated sensor outputs for the (m−n) phase magnet coil groups not associated with the n magnetic sensors; and

a drive signal generator that generates m sets of drive signals for the m phase magnet coil groups, in response to m sensor outputs inclusive of the sensor outputs of the n magnetic sensors and the (m−n) simulated sensor outputs, and

wherein the drive control circuit:

generates n sets of drive signals for the n phase magnet coil groups associated with the n magnetic sensors using the respective sensor outputs of the n magnetic sensors; and

generates (m−n) sets of drive signals for the (m−n) phase magnet coil groups not associated with the n magnetic sensors, using one or more of the sensor outputs of the n magnetic sensors in generation of each of the (m−n) sets of drive signals.

12. The fuel cell equipped apparatus according to claim 11 , wherein

each magnetic sensor includes a bias/gain adjuster that adjusts a gain and a bias of the sensor output so as to produce the sensor output with a desired waveform.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 14, 2016
From: SEIKO EPSON CORPORATION
To: GODO KAISHA IP BRIDGE 1
Reel/Frame 040030/0262 →