Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple Software

Motor end cover mounting fracture is a problem recently encountered by novel pure electric vehicles. Regarding the study of the traditional vehicle engine mount bracket and on the basis of the methods of design and optimisation available, we have analysed and optimised the pure electric vehicle end...

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Main Authors: Shaocui Guo, Xiangrong Tong, Xu Yang
Format: Article
Language:English
Published: MDPI AG 2018-12-01
Series:World Electric Vehicle Journal
Subjects:
Online Access:https://www.mdpi.com/2032-6653/9/4/49
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spelling doaj-79c4a63bec23430cb1d74bfaddc2de7b2020-11-25T00:14:40ZengMDPI AGWorld Electric Vehicle Journal2032-66532018-12-01944910.3390/wevj9040049wevj9040049Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple SoftwareShaocui Guo0Xiangrong Tong1Xu Yang2Yantai Vocational College, Shandong Yantai, 264005, ChinaSchool of computer and control engineering, Yantai University, Shandong Yantai 264005, ChinaDepartment of Computer Science and Technology, Tongji University, Shanghai 201804, ChinaMotor end cover mounting fracture is a problem recently encountered by novel pure electric vehicles. Regarding the study of the traditional vehicle engine mount bracket and on the basis of the methods of design and optimisation available, we have analysed and optimised the pure electric vehicle end cover mount system. Multi-body dynamic software and finite element software have been combined. First, we highlight the motor end cover mount bracket fracture engineering problems, analyse the factors that may produce fracture, and propose solutions. By using CATIA software to establish a 3D model of the power train mount system, we imported it into ADAMS multi-body dynamic software, conducted 26 condition analysis, obtained five ultimate load conditions, and laid the foundations for subsequent analysis. Next, a mount and shell system was established by the ANSYS finite element method, and modal, strength, and fatigue analyses were performed on the end cover mount. We found that the reason for fracture lies in the intensity of the end cover mount joint, which leads to the safety factor too small and the fatigue life not being up to standard. The main goal was to increase the strength of the cover mount junction, stiffness, safety coefficient, and fatigue life. With this aim, a topology optimisation was conducted to improve the motor end cover. A 3D prototype was designed accordingly. Finally, stiffness, strength, modal, and fatigue were simulated. Our simulation results were as follows. The motor end cover suspension stiffness increases by 20%, the modal frequency increases by 2.3%, the quality increases by 3%, the biggest deformation decreases by 52%, the maximum stress decreases by 28%, the minimum safety factor increases by 40%, and life expectancy increases 50-fold. The results from sample and vehicle tests highlight that the component fracture problem has been successfully solved and the fatigue life dramatically improved.https://www.mdpi.com/2032-6653/9/4/49electric vehiclepower trainmotor end covermount fracturetopology optimisationfatigue test
collection DOAJ
language English
format Article
sources DOAJ
author Shaocui Guo
Xiangrong Tong
Xu Yang
spellingShingle Shaocui Guo
Xiangrong Tong
Xu Yang
Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple Software
World Electric Vehicle Journal
electric vehicle
power train
motor end cover
mount fracture
topology optimisation
fatigue test
author_facet Shaocui Guo
Xiangrong Tong
Xu Yang
author_sort Shaocui Guo
title Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple Software
title_short Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple Software
title_full Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple Software
title_fullStr Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple Software
title_full_unstemmed Shell Analysis and Optimisation of a Pure Electric Vehicle Power Train Based on Multiple Software
title_sort shell analysis and optimisation of a pure electric vehicle power train based on multiple software
publisher MDPI AG
series World Electric Vehicle Journal
issn 2032-6653
publishDate 2018-12-01
description Motor end cover mounting fracture is a problem recently encountered by novel pure electric vehicles. Regarding the study of the traditional vehicle engine mount bracket and on the basis of the methods of design and optimisation available, we have analysed and optimised the pure electric vehicle end cover mount system. Multi-body dynamic software and finite element software have been combined. First, we highlight the motor end cover mount bracket fracture engineering problems, analyse the factors that may produce fracture, and propose solutions. By using CATIA software to establish a 3D model of the power train mount system, we imported it into ADAMS multi-body dynamic software, conducted 26 condition analysis, obtained five ultimate load conditions, and laid the foundations for subsequent analysis. Next, a mount and shell system was established by the ANSYS finite element method, and modal, strength, and fatigue analyses were performed on the end cover mount. We found that the reason for fracture lies in the intensity of the end cover mount joint, which leads to the safety factor too small and the fatigue life not being up to standard. The main goal was to increase the strength of the cover mount junction, stiffness, safety coefficient, and fatigue life. With this aim, a topology optimisation was conducted to improve the motor end cover. A 3D prototype was designed accordingly. Finally, stiffness, strength, modal, and fatigue were simulated. Our simulation results were as follows. The motor end cover suspension stiffness increases by 20%, the modal frequency increases by 2.3%, the quality increases by 3%, the biggest deformation decreases by 52%, the maximum stress decreases by 28%, the minimum safety factor increases by 40%, and life expectancy increases 50-fold. The results from sample and vehicle tests highlight that the component fracture problem has been successfully solved and the fatigue life dramatically improved.
topic electric vehicle
power train
motor end cover
mount fracture
topology optimisation
fatigue test
url https://www.mdpi.com/2032-6653/9/4/49
work_keys_str_mv AT shaocuiguo shellanalysisandoptimisationofapureelectricvehiclepowertrainbasedonmultiplesoftware
AT xiangrongtong shellanalysisandoptimisationofapureelectricvehiclepowertrainbasedonmultiplesoftware
AT xuyang shellanalysisandoptimisationofapureelectricvehiclepowertrainbasedonmultiplesoftware
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