IP Library Granted Patent US 11,532,975
Granted Patent B2
US 11,532,975 · App. 16/665,974 · Granted Dec 20, 2022

Brushless direct current electric motor with reduced cogging torque and production method thereof

Inventor: Sylvain Abraham (Angers, FR)
H02K29/03H02K1/146H02K1/185H02K1/278H02K15/022H02K15/12H02K21/16
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,532,975
App. No.
16/665,974
Granted
Dec 20, 2022
Kind
B2
Abstract

The invention relates to a brushless direct current motor, having a rotor made up of at least one permanent magnet and a stator having at least three partitions ( 160 ) radially extending from a circular based cylindrical main body ( 170 ), the partitions ( 160 ) together defining at least two volumes for receiving at least three coils generating a magnetic field, wherein each volume is closed by a wall ( 170 ) connecting the partitions ( 160 ), and in that the wall comprises, on the face thereof oriented toward the rotor, at least one magnetic restriction zone. A sleeve ( 4 ) surrounds the stator and the rotor and has at least one deformation zone formed by cutouts ( 11 ) adapted to maintain the external geometrical configuration of the sleeve ( 4 ) when mounting the constituent elements of the motor. The invention also relates to a method for manufacturing such a motor.

Claims (17)

1. A brushless direct current motor, comprising:

a rotor made up of at least one permanent magnet disposed on an outer face of the rotor, wherein the permanent magnet extends over an entire length of the rotor;

a stator inside which the rotor is inserted; and

a sleeve surrounding an active part of the stator and defining a wall, wherein the active part of the stator is the part of the stator provided with a winding and generating a magnetic field;

wherein:

said stator has a plurality of partitions extending radially outwardly from a cylindrical main body, said partitions together defining at least two volumes for receiving at least three coils generating a magnetic field, each volume being closed by a second wall formed by a portion of said main body connecting said partitions, wherein each of the at least three partitions includes a flat end face for engaging an inner surface of the sleeve;

said sleeve surrounds said stator and said rotor; and

said sleeve comprises:

a plurality of deformation zones spaced around the circumference of the sleeve, the plurality of deformation zones adapted to maintain an outer circularity of said sleeve when mounting said stator in said sleeve when said end faces of the plurality of partitions of said stator are positioned adjacent associated ones of said plurality of deformation zones, wherein the plurality of deformation zones are formed by a plurality of cutouts provided in the thickness of the wall; and

a plurality of counterbores in the inner surface of the sleeve, each of said plurality of counterbores having a rounded bottom and extending over the length of an inner face of the sleeve, wherein only one of said plurality of counterbores is disposed between adjacent ones of said plurality of deformation zones.

2. The motor according to claim 1 , wherein said second wall formed by said main body of said stator comprises a thinner zone defined by a grooving provided in said second wall.

3. The motor according to claim 1 , wherein said second wall formed by said main body of said stator comprises a magnetic restriction zone formed by at least one wall portion made of at least one slightly magnetic or non-magnetic material.

4. The motor according to claim 1 , wherein said second wall formed by said main body of said stator comprises a magnetic restriction zone formed by at least one zone thinner than said second wall.

5. The motor according to claim 4 , wherein said magnetic restriction zone is formed on an inner face of said second wall oriented toward said rotor.

6. The motor according to claim 4 , wherein said thinner zone is produced by a grooving.

7. The motor according to claim 4 , wherein said thinner zone is produced by a groove on an inner face of said main body of said stator and a grooving positioned on an outer face of said main body of said stator.

8. The motor according to claim 1 , wherein said rotor is positioned within said stator.

Priority Claims (1)
FR 1860005 · Oct 29, 2018 · national
Continuity (1)
Related Publication 20200136486A1 · Apr 30, 2020
Cited By (1)
US 12,658,773