IP Library Granted Patent US 9,379,650
Granted Patent B2
US 9,379,650 · App. 14/248,784 · Granted Jun 28, 2016

Enhanced inductive sense using mutual inductance

Inventors: Wei Seng Chew (Singapore, SG); Wei Xiong (Singapore, SG)
Assignee: STMICROELECTRONICS ASIA PACIFIC PTE. LTD.
H02P6/186H02P6/182H02P6/185H02P6/22H02P21/146
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Quick Facts
Patent No.
US 9,379,650
App. No.
14/248,784
Granted
Jun 28, 2016
Kind
B2
Abstract

Methods and apparatus for determining rotor position in a motor including a rotor and stator windings. The method includes measuring inductive sense values for each pair of the stator windings by performing an inductive sense routine on the motor, measuring stator winding voltage values, induced by mutual inductance between windings, for each of the stator windings by performing a mutual inductance sensing routine on the motor, and determining the rotor position based on the inductive sense values and the stator winding voltage values.

Claims (27)

1. A method for determining rotor position in a motor including a rotor and stator windings, comprising:

driving a first pairing of the stator windings in a dummy cycle until a threshold current is exceeded;

for each pairing of the stator windings,

driving the pairing of stator windings,

measuring an inductive sense value for the pairing of stator windings by determining a time for a current through the pairing of stator windings to reach the current threshold, and

measuring a stator winding voltage value, induced by mutual inductance between the pairing of stator windings, for a third stator winding by performing a mutual inductance sensing routine on the motor; and

determining the rotor position by accessing an entry in a table based on the inductive sense values and the stator winding voltage values.

2. A method for determining rotor position as defined in claim 1 , wherein measuring the stator winding voltage value comprises determining if the stator winding voltage value is positive or negative.

3. A method for determining rotor position as defined in claim 1 , wherein the motor includes three stator windings and wherein six inductive sense values are measured.

4. A method for determining rotor position as defined in claim 1 , wherein the motor includes three stator windings and wherein six stator winding voltage values are measured.

5. A method for determining a rotor position as defined in claim 1 , wherein measuring the voltage across the third stator winding comprises determining zero crossings of the voltage across the third winding.

6. A method for determining a rotor position as defined in claim 1 , wherein determining the time for the current through the pairing of stator windings to reach the current threshold comprises sensing a voltage across a single sense resistor associated with the stator windings.

7. A method for determining a rotor position as defined in claim 1 , wherein determining the time for the current through the pairing of stator windings to reach the current threshold comprises sensing a voltage across sense resistors associated with respective stator windings.

8. An apparatus for determining rotor position in a motor including a rotor and stator windings, the apparatus comprising:

circuitry configured to

drive a first pairing of the stator windings in a dummy cycle until a threshold current is exceeded, and

for each pairing of the stator windings,

drive the pairing of stator windings,

measure an inductive sense value for the pairing of stator windings by determining a time for a current through the pairing of stator windings to reach the current threshold, and

measure a stator winding voltage value, induced by mutual inductance between windings, for a third stator winding by performing a mutual inductance sensing routine on the motor; and

processing circuitry configured to determine the rotor position values by accessing an entry in a table based on the inductive sense values and the stator winding voltage values.

9. The apparatus for determining rotor position as defined in claim 8 , wherein the circuitry is configured to measure the stator winding voltage value by determining if the stator winding voltage value is positive or negative.

10. The apparatus for determining rotor position as defined in claim 8 , wherein the motor includes three stator windings and wherein the circuitry is configured to measure six inductive sense values.

11. The apparatus for determining rotor position as defined in claim 8 , wherein the motor includes three stator windings and wherein the circuitry is configured to measure six stator winding voltage values.

12. The apparatus for determining rotor position as defined in claim 8 , wherein the circuitry is configured to measure the voltage across the third stator winding by determining zero crossings of the voltage across the third winding.

13. The apparatus for determining rotor position as defined in claim 8 , wherein the circuitry is configured to determine the time for the current through the pairing of stator windings to reach the current threshold by sensing a voltage across a single sense resistor associated with the stator windings.

14. The apparatus for determining rotor position as defined in claim 8 , wherein the circuitry is configured to determine the time for the current through the pairing of stator windings to reach the current threshold by sensing a voltage across sense resistors associated with respective stator windings.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 1, 2022
From: STMICROELECTRONICS ASIA PACIFIC PTE LTD
To: STMICROELECTRONICS INTERNATIONAL N.V.
Reel/Frame 061608/0657 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 29, 2014
From: CHEW, WEI SENG; XIONG, WEI
To: STMICROELECTRONICS ASIA PACIFIC PTE. LTD.
Reel/Frame 033838/0997 →
Continuity (1)
Related Publication 20150295526A1 · Oct 15, 2015