Force Characteristics Analysis for Linear Machine with DC Field Excitations
In urban regions and particularly in developing countries such as Malaysia with its ever-growing transport sector, there is the need for energy efficient systems. In urban railway systems there is a requirement of frequent braking and start/stop motion, and energy is lost during these processes. To...
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doaj-2c7ccf551bc24bf7ac5d63a20dddde312021-02-02T01:51:12ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-011520300510.1051/matecconf/201815203005matecconf_eureca2018_03005Force Characteristics Analysis for Linear Machine with DC Field ExcitationsA/L Krishna Preshant0CV Aravind1Saadha Aminath2Azhar F.3School of Engineering, Taylor’s UniversitySchool of Engineering, Taylor’s UniversitySchool of Engineering, Taylor’s UniversityFaculty of Engineering, Universiti Teknikal Malaysia MelakaIn urban regions and particularly in developing countries such as Malaysia with its ever-growing transport sector, there is the need for energy efficient systems. In urban railway systems there is a requirement of frequent braking and start/stop motion, and energy is lost during these processes. To improve the issues of the conventional braking systems, particularly in Japan, they have introduced linear induction motor techniques. The drawbacks of this method, however, is the use of permanent magnets, which not only increase the weight of the entire system but also increases magnetic cogging. Hence an alternative is required which uses the same principles as Magnetic-Levitation but using a magnet-less system. Therefore, the objective of this research is to propose an electromagnetic rail brake system and to analyze the effect of replacing permanent magnets with a magnet-less braking systems to produce a significant amount of brake thrust as compared with the permanent magnet system. The modeling and performance analysis of the model is done using Finite Element Analysis (FEA). The mechanical aspects of the model are designed on Solidworks and then imported to JMAG Software to proceed with the electro-magnetic analysis of the model. There are 3 models developed: Base Model (steel), Permanent Magnet (PM) Model and DC Coil Model. The performance of the proposed 2D models developed is evaluated in terms of average force produced and motor constant square density. By comparing the values for the 3 models for the same case of 9A current supplied for a 0.1mm/s moving velocity, the base model, permanent magnet model and DC coil model produced an average force of 7.78 N, 7.55 N, and 8.34 N respectively, however, with increase in DC current supplied to the DC coil model, the average force produced is increased to 13.32 N. Thus, the advantage of the DC coil (magnet-less) model, is, that the force produced can be controlled by varying the number of turns in the coil (N) or the current supply to the coil (I) given by the which is the simple principles of a solenoid: Force(mmf)=NI.https://doi.org/10.1051/matecconf/201815203005 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
A/L Krishna Preshant CV Aravind Saadha Aminath Azhar F. |
spellingShingle |
A/L Krishna Preshant CV Aravind Saadha Aminath Azhar F. Force Characteristics Analysis for Linear Machine with DC Field Excitations MATEC Web of Conferences |
author_facet |
A/L Krishna Preshant CV Aravind Saadha Aminath Azhar F. |
author_sort |
A/L Krishna Preshant |
title |
Force Characteristics Analysis for Linear Machine with DC Field Excitations |
title_short |
Force Characteristics Analysis for Linear Machine with DC Field Excitations |
title_full |
Force Characteristics Analysis for Linear Machine with DC Field Excitations |
title_fullStr |
Force Characteristics Analysis for Linear Machine with DC Field Excitations |
title_full_unstemmed |
Force Characteristics Analysis for Linear Machine with DC Field Excitations |
title_sort |
force characteristics analysis for linear machine with dc field excitations |
publisher |
EDP Sciences |
series |
MATEC Web of Conferences |
issn |
2261-236X |
publishDate |
2018-01-01 |
description |
In urban regions and particularly in developing countries such as Malaysia with its ever-growing transport sector, there is the need for energy efficient systems. In urban railway systems there is a requirement of frequent braking and start/stop motion, and energy is lost during these processes. To improve the issues of the conventional braking systems, particularly in Japan, they have introduced linear induction motor techniques. The drawbacks of this method, however, is the use of permanent magnets, which not only increase the weight of the entire system but also increases magnetic cogging. Hence an alternative is required which uses the same principles as Magnetic-Levitation but using a magnet-less system. Therefore, the objective of this research is to propose an electromagnetic rail brake system and to analyze the effect of replacing permanent magnets with a magnet-less braking systems to produce a significant amount of brake thrust as compared with the permanent magnet system. The modeling and performance analysis of the model is done using Finite Element Analysis (FEA). The mechanical aspects of the model are designed on Solidworks and then imported to JMAG Software to proceed with the electro-magnetic analysis of the model. There are 3 models developed: Base Model (steel), Permanent Magnet (PM) Model and DC Coil Model. The performance of the proposed 2D models developed is evaluated in terms of average force produced and motor constant square density. By comparing the values for the 3 models for the same case of 9A current supplied for a 0.1mm/s moving velocity, the base model, permanent magnet model and DC coil model produced an average force of 7.78 N, 7.55 N, and 8.34 N respectively, however, with increase in DC current supplied to the DC coil model, the average force produced is increased to 13.32 N. Thus, the advantage of the DC coil (magnet-less) model, is, that the force produced can be controlled by varying the number of turns in the coil (N) or the current supply to the coil (I) given by the which is the simple principles of a solenoid: Force(mmf)=NI. |
url |
https://doi.org/10.1051/matecconf/201815203005 |
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