IP Library › Granted Patent US 11,264,930
Granted Patent B2
US 11,264,930 · App. 17/361,923 · Granted Mar 1, 2022

Low to high speed operation of a sensorless brushless DC motor

Inventor: Janislav Sega (Kambah, AU)
H02P25/03H02P23/14H02P27/04
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Quick Facts
Patent No.
US 11,264,930
App. No.
17/361,923
Granted
Mar 1, 2022
Kind
B2
Abstract

A method of operating a Brushless Direct Current Motor (BLDCM), the BLDCM of the type including: a series of concentric independently activated electromagnetic phase coils interacting with a series of permanent magnets to provide relative movement therebetween, the phase coils having temporal periods of activation time and deactivation time, the method including the steps of: (a) activating at least one of the phase coils for a short period of activation; and (b) measuring the voltage response across the phase coil of the deactivated phase coil during the short period of activation to determine the rotor position.

Claims (11)

1. A method of operating a Brushless Direct Current Motor (BLDCM), the BLDCM of the type including: a series of concentric independently activated electromagnetic phase coils interacting with a series of permanent magnets to provide relative movement therebetween, the phase coils having temporal periods of activation time and deactivation time, the method including the steps of:

(a) utilizing a pulse width modulation (PWM) scheme to drive each of the phase coils;

(b) deriving a series of commutation point functions for each phase coil;

(c) utilizing a maximum value of the commutation point function (CPF max) to calculate commutation points for PWM switching of the phase coils;

(d) measuring the on-time open phase voltages and supply voltages to calculate commutation points for PWM switching of the phase coils.

2. A method as claimed in claim 1 further comprising the steps of:

(e) utilizing the measured on-time open phase coil inductive voltage variations due to rotor inherent and magnetic saturation saliency (RIMS) of the BLDCM to calculate commutation points for PWM switching of the phase coils; and

(f) limiting the minimum and maximum on-time PWM duty cycle of the switching phase coils at and near zero speed and low speed of BLDCM operation to measure the inductive voltage variations due to RIMS in the open phase coils.

3. A method as claimed in claim 1 further comprising utilizing a CPF max value scaling factor (N) to control the timing of the commutation points for PWM switching of the phase coils.

4. A method as claimed in claim 1 further comprising utilizing a CPF max value determined during zero to low speed sensorless BLDCM operation to calculate commutation points with automatic motor temperature compensation.

5. A method as claimed in claim 1 further comprising applying the method to any PWM switching topology, including high-side only, low-side only or alternate low-side and high-side PWM switching topologies during low to high speed sensorless BLDCM operation.

Priority Claims (1)
AU 2017903859 · Sep 22, 2017 · national
Continuity (2)
Continuation 16648888
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