Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle

Thesis (Master of Engineering in Electrical Engineering)--Cape Peninsula University of Technology, 2018. === The purpose of this paper was to design and develop an electrical power train for an Urban Concept electric vehicle geared to complete the Shell Eco-Marathon Africa in 2019. Various technol...

Full description

Bibliographic Details
Main Author: Rose, Garrett
Language:en
Published: Cape Peninsula University of Technology 2019
Subjects:
Online Access:http://hdl.handle.net/20.500.11838/2814
id ndltd-netd.ac.za-oai-union.ndltd.org-cput-oai-localhost-20.500.11838-2814
record_format oai_dc
spelling ndltd-netd.ac.za-oai-union.ndltd.org-cput-oai-localhost-20.500.11838-28142019-05-25T03:16:46Z Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle Rose, Garrett Electric vehicles -- Design and construction Electric automobiles Automobiles -- Power trains Electric automobiles -- Batteries Thesis (Master of Engineering in Electrical Engineering)--Cape Peninsula University of Technology, 2018. The purpose of this paper was to design and develop an electrical power train for an Urban Concept electric vehicle geared to complete the Shell Eco-Marathon Africa in 2019. Various technologies which make up the electrical drive train of an electrical vehicle were also reviewed which include the battery pack, the battery management system, the motors, the motor management system and the human interface. Upon completion of this, the various topologies best suited for this project were selected, designed, constructed and developed. Two motors were re-designed and constructed for this vehicle and the motor drive was also constructed to control these motors. A Lithium-Ion battery pack was constructed and developed to drive the motors and an off-the-shelf battery management system was purchased and developed to suit the requirements for the Shell Eco- Marathon competition rules. A human interface was also developed in order for the driver to see various parameters of the electric vehicle defined by the Shell Eco-Marathon competition rules. After each component of the drive train was constructed, they underwent various testing procedures to determine the efficiency of each individual component and the overall efficiency for the complete drive train of this electric vehicle was ascertained. The Product Lifecycle Management Competency Centre group developed the chassis for this vehicle. For this reason, only the electric subsystems were evaluated and a simulation was completed of the complete drive train. After the complete drive train was constructed and all the individual subsystems evaluated and simulated, a vehicle with an overall efficiency of about sixty percent was expected and the completed drive train should be adequate enough to complete the entire Shell Eco-Marathon Africa circuit. 2019-04-01T10:14:29Z 2019-04-01T10:14:29Z 2018 Thesis http://hdl.handle.net/20.500.11838/2814 en https://creativecommons.org/licenses/by-nc-sa/4.0 Cape Peninsula University of Technology
collection NDLTD
language en
sources NDLTD
topic Electric vehicles -- Design and construction
Electric automobiles
Automobiles -- Power trains
Electric automobiles -- Batteries
spellingShingle Electric vehicles -- Design and construction
Electric automobiles
Automobiles -- Power trains
Electric automobiles -- Batteries
Rose, Garrett
Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle
description Thesis (Master of Engineering in Electrical Engineering)--Cape Peninsula University of Technology, 2018. === The purpose of this paper was to design and develop an electrical power train for an Urban Concept electric vehicle geared to complete the Shell Eco-Marathon Africa in 2019. Various technologies which make up the electrical drive train of an electrical vehicle were also reviewed which include the battery pack, the battery management system, the motors, the motor management system and the human interface. Upon completion of this, the various topologies best suited for this project were selected, designed, constructed and developed. Two motors were re-designed and constructed for this vehicle and the motor drive was also constructed to control these motors. A Lithium-Ion battery pack was constructed and developed to drive the motors and an off-the-shelf battery management system was purchased and developed to suit the requirements for the Shell Eco- Marathon competition rules. A human interface was also developed in order for the driver to see various parameters of the electric vehicle defined by the Shell Eco-Marathon competition rules. After each component of the drive train was constructed, they underwent various testing procedures to determine the efficiency of each individual component and the overall efficiency for the complete drive train of this electric vehicle was ascertained. The Product Lifecycle Management Competency Centre group developed the chassis for this vehicle. For this reason, only the electric subsystems were evaluated and a simulation was completed of the complete drive train. After the complete drive train was constructed and all the individual subsystems evaluated and simulated, a vehicle with an overall efficiency of about sixty percent was expected and the completed drive train should be adequate enough to complete the entire Shell Eco-Marathon Africa circuit.
author Rose, Garrett
author_facet Rose, Garrett
author_sort Rose, Garrett
title Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle
title_short Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle
title_full Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle
title_fullStr Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle
title_full_unstemmed Electrical subsystem for Shell eco-marathon urban concept battery powered vehicle
title_sort electrical subsystem for shell eco-marathon urban concept battery powered vehicle
publisher Cape Peninsula University of Technology
publishDate 2019
url http://hdl.handle.net/20.500.11838/2814
work_keys_str_mv AT rosegarrett electricalsubsystemforshellecomarathonurbanconceptbatterypoweredvehicle
_version_ 1719192497813454848