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Reduction of Cogging Torque in Segmented Permanent Magnet BLDC Motor IPM V-Shape by Skewing Stator

EasyChair Preprint no. 8411

9 pagesDate: July 10, 2022

Abstract

The cogging torque on a brushless DC (BLDC) motor, in this case on the Internal Permanent Magnet V-Shape motor, causes torque ripple and speed fluctuations. This can interfere with motor operating performance because the motor will not rotate smoothly due to noise and vibration, especially at low rpm. Therefore, the cogging torque must be reduced or eliminated so that the operating performance of the BLDC motor IPM V-Shape that has been designed and built can be better. Several studies have shown various ways to reduce or eliminate cogging torque. This paper will analyze and apply one of the methods to eliminate cogging torque, which is the Skew Method in the stator of the BLDC motor IPM V-Shape through Finite Element Analysis (FEA) simulation using ANSYS Maxwell. The motor's torque, speed, and efficiency will be analyzed to determine the effectiveness of the Skew Method on the stator of BLDC Motor IPM V-Shape. The result shows that the Skew Method in the BLDC Motor IPM V-Shape can reduce by almost 100% of cogging torque and produce a motor design that has good performance.

Keyphrases: BLDC IPM V-Shape, cogging torque, Segmented Permanent Magnet Motor, Slot Stator Skew Method

BibTeX entry
BibTeX does not have the right entry for preprints. This is a hack for producing the correct reference:
@Booklet{EasyChair:8411,
  author = {Dewi Rianti Mandasari and Lia Amelia and Arga Iman Malakani and Endra Dwi Purnomo and Amiruddin Aziz and Asep Andi Suryandi and Agus Krisnowo and Cuk Supriyadi Ali Nandar},
  title = {Reduction of Cogging Torque in Segmented Permanent Magnet BLDC Motor IPM V-Shape by Skewing Stator},
  howpublished = {EasyChair Preprint no. 8411},

  year = {EasyChair, 2022}}
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