IP Library Granted Patent US 8,471,511
Granted Patent B2
US 8,471,511 · App. 13/316,712 · Granted Jun 25, 2013

Brushless motor control device and brushless motor

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Quick Facts
Patent No.
US 8,471,511
App. No.
13/316,712
Granted
Jun 25, 2013
Kind
B2
Abstract

A voltage application unit causes switching elements to apply voltage to flow an electric current into corresponding windings to generate a revolving magnetic field. A period derivation unit derives an energization period of the windings. A signal generation unit generates a PWM signal for causing the voltage application unit to activate and deactivate the switching elements, such that a duty ratio decreases gradually in a predetermined time period subsequent to the derived energization period. A period specifying unit specifies a detection period of an electric current, which is supplied from the switching elements presently switched and deactivated, by a predetermined time period between an edge, which is caused when the PWM signal changes in level to deactivate the switching elements, and a time point in advance of the edge in the energization period.

Claims (40)

1. A brushless motor control device comprising:

a voltage application unit configured to cause each pair of switching elements connected to corresponding windings of a plurality of phases to apply a voltage to the corresponding windings of the phases in order to flow an electric current into the corresponding windings to generate a revolving magnetic field with a permanent magnet to rotate a magneto rotor of a brushless motor;

an energization period derivation unit configured to detect rotation of the magneto rotor and to derive an energization period of the windings to generate the revolving magnetic field;

a PWM signal generation unit configured to:

generate a PWM signal at a duty ratio, which is controlled according to an inputted control signal, in the energization period derived by the derivation unit;

generate a PWM signal at a duty ratio decreasing gradually in a predetermined time period subsequent to the energization period; and

output the generated PWM signal for causing the voltage application unit to activate and deactivate the switching elements; and

a detection period specifying unit configured to specify a detection period of the electric current flowing into the windings connected to the switching elements, which are presently switched and deactivated, by a time period, which is from a time point in advance of an edge of the PWM signal by a predetermined period to the edge, the edge being caused when the PWM signal changes to a different level to switch to deactivate the switching elements to control an electric current supplied to the windings;

wherein the PWM signal generation unit is further configured to generate the PWM signal for switching activation and deactivation of the switching elements according to a comparison result between a count value, which is increased and decreased by count up and countdown repeatedly implemented in a predetermined range, and a first threshold, which is determined according to the control signal,

the detection period specifying unit is further configured to,

in a case where the PWM signal generation unit generates the PWM signal to activate the switching elements in a period in which the count value is greater than the first threshold,

specify the detection period by a time period, in which the count value, which is implemented with count down in the predetermined range, is between the first threshold and a second threshold, which is greater than the first threshold, and

the detection period specifying unit is further configured to,

in a case where the PWM signal generation unit generates the PWM signal to activate the switching elements in a period in which the count value is less than the first threshold,

specify the detection period by a time period, in which the count value, which is implemented with count up in the predetermined range, is between the first threshold and a third threshold, which is less than the first threshold.

2. The brushless motor control device according to claim 1 , further comprising:

a protection unit configured to:

detect an electric current, which flows through the windings connected to the switching elements being previously activated and presently switched and deactivated, in the detection period specified by the detection period specifying unit; and

terminate the electric current supplied from the voltage application unit to the windings when the detected electric current exceeds a predetermined reference value.

3. The brushless motor control device according to claim 2 , wherein the protection unit is further configured to terminate an electric current supplied from the voltage application unit to the windings when the electric current detected in the detection period exceeds a predetermined reference value continually for predetermined times.

4. The brushless motor control device according to claim 1 , wherein the detection period specifying unit is further configured to specify the detection period by an activation period in which the PWM signal activates the switching elements finally in the energization period.

5. A brushless motor formed integrally with the brushless motor control device according to claim 1 .

6. A brushless motor control device comprising:

a voltage application unit configured to cause each pair of switching elements connected to corresponding windings of a plurality of phases to apply a voltage to the corresponding windings of the phases in order to flow an electric current into the corresponding windings to generate a revolving magnetic field with a permanent magnet to rotate a magneto rotor of a brushless motor;

an energization period derivation unit configured to detect rotation of the magneto rotor and to derive an energization period of the windings to generate the revolving magnetic field;

a PWM signal generation unit configured to:

generate a PWM signal at a duty ratio, which is controlled according to an inputted control signal, in the energization period derived by the derivation unit;

generate a PWM signal at a duty ratio decreasing gradually in a predetermined time period subsequent to the energization period; and

output the generated PWM signal for causing the voltage application unit to activate and deactivate the switching elements; and

a detection period specifying unit configured to specify a detection period of the electric current flowing into the windings connected to the switching elements, which are presently switched and deactivated, by first one of time periods subsequent to an end of the energization period, each of the time periods being from a time point in advance of an edge of the PWM signal by a predetermined period to the edge, the edge being caused when the PWM signal changes to a different level to switch to deactivate the switching elements to control an electric current supplied to the windings;

wherein the PWM signal generation unit is further configured to generate the PWM signal for switching activation and deactivation of the switching elements according to a comparison result between a count value, which is increased and decreased by count up and countdown repeatedly implemented in a predetermined range, and a first threshold, which is determined according to the control signal,

the detection period specifying unit is further configured to,

in a case where the PWM signal generation unit generates the PWM signal to activate the switching elements in a period in which the count value is greater than the first threshold,

specify the detection period by first one of time periods subsequent to the end of the energization period, wherein in each of the time periods, the count value, which is implemented with count down in the predetermined range, is between the first threshold and a second threshold, which is greater than the first threshold, and

the detection period specifying unit is further configured to,

in a case where the PWM signal generation unit generates the PWM signal to activate the switching elements in a period in which the count value is less than the first threshold,

specify the detection period by first one of time periods subsequent to the end of the energization period, wherein in each of the time periods, the count value, which is implemented with count up in the predetermined range, is between the first threshold and a third threshold, which is less than the first threshold.

7. The brushless motor control device according to claim 6 , further comprising: a protection unit configured to: detect an electric current, which flows through the windings connected to the switching elements being previously activated and presently switched and deactivated, in the detection period specified by the detection period specifying unit; and terminate the electric current supplied from the voltage application unit to the windings when the detected electric current exceeds a predetermined reference value.

8. The brushless motor control device according to claim 7 , wherein the protection unit is further configured to terminate an electric current supplied from the voltage application unit to the windings when the electric current detected in the detection period exceeds a predetermined reference value continually for predetermined times.

9. A brushless motor formed integrally with the brushless motor control device according to claim 6 .

Assignments (2)
MERGER Recorded Sep 18, 2018
From: ASMO CO., LTD.
To: DENSO CORPORATION
Reel/Frame 047570/0538 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2011
From: KITAGAWA, TAKAYUKI
To: ASMO CO., LTD.
Reel/Frame 027365/0284 →