Analisa Pengaruh Desain Motor Induksi “6 Fasa 2 Lapis Tak Simetris” Terhadap Torsi Dan Kecepatan Motor Induksi 3 Fasa Menggunakan Metode Elemen Hingga

Authors

  • Jourdan Imran Simanjuntak Universitas Putra Indonesia
  • Zuriman Anthony Universitas Putra Indonesia
  • Sepannur bandri Universitas Putra Indonesia
  • Anggun Anugrah Universitas Putra Indonesia

DOI:

https://doi.org/10.51903/elkom.v17i2.2140

Keywords:

6-phase induction motor, torque and speed, finite element, Ansys, magnetic flux

Abstract

Induction motors are components that convert electrical energy into mechanical energy and are very much in demand among industries, with low prices, sturdy construction and easy maintenance making these induction motors used for heavy industrial applications. However, the 3-phase induction motor at this time chooses a low torque and speed so that it affects the efficiency of the induction motor performance, which will decrease.  This study examines the effect of unsymmetrical 2-layer 6-phase induction motor design on the torque and speed of 3-phase induction motors using the finite element method. This research was conducted using Ansys software, which aims to see the magnetic flux density and the effect of 6-phase induction motor design on the torque and speed of a 3-phase induction motor using the finite element method. The induction motor that is the reference for this research has specifications of a 3-phase induction motor: 0.75 KW, 1 HP, 220/380 V, 3.5/2 A, 50 Hz, 1390 rpm. From the results of this study, the simulation results of the shape of the flux density ... which is designed with the parameters of a 3-phase induction motor with an unsymmetrical 6-phase 2-layer induction motor coil design.

Downloads

Published

2024-12-22

How to Cite

[1]
Jourdan Imran Simanjuntak, Zuriman Anthony, Sepannur bandri, and Anggun Anugrah, “Analisa Pengaruh Desain Motor Induksi ‘6 Fasa 2 Lapis Tak Simetris’ Terhadap Torsi Dan Kecepatan Motor Induksi 3 Fasa Menggunakan Metode Elemen Hingga”, ELKOM, vol. 17, no. 2, pp. 614–621, Dec. 2024.