Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicle

With the development of electric vehicles, more and more high requirements for the lightweight design on EV body are put forward. This paper aims to study a new structure, aluminum alloy mortise-and-tenon structure, which is used for lightweight EVs. Two new types on aluminium alloy MT-T joint speci...

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Main Authors: Xiong Huiyuan, Tan Zhirong, Zhang Ronghui, Zong Zhijian, Luo Zhipeng
Format: Article
Language:English
Published: De Gruyter 2019-12-01
Series:Nanotechnology Reviews
Subjects:
Online Access:https://doi.org/10.1515/ntrev-2019-0033
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spelling doaj-2ae1a66a5f7b4dad9e8de2c13bdf66622021-09-06T19:21:12ZengDe GruyterNanotechnology Reviews2191-90972019-12-018137038210.1515/ntrev-2019-0033Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicleXiong Huiyuan0Tan Zhirong1Zhang Ronghui2Zong Zhijian3Luo Zhipeng4School of intelligent systems engineering, Sun Yat-Sen University, Guangzhou, Guangdong 510006, ChinaSchool of intelligent systems engineering, Sun Yat-Sen University, Guangzhou, Guangdong 510006, ChinaSchool of intelligent systems engineering, Sun Yat-Sen University, Guangzhou, Guangdong 510006, ChinaSchool of intelligent systems engineering, Sun Yat-Sen University, Guangzhou, Guangdong 510006, ChinaSchool of intelligent systems engineering, Sun Yat-Sen University, Guangzhou, Guangdong 510006, ChinaWith the development of electric vehicles, more and more high requirements for the lightweight design on EV body are put forward. This paper aims to study a new structure, aluminum alloy mortise-and-tenon structure, which is used for lightweight EVs. Two new types on aluminium alloy MT-T joint specimens are designed and tested under low-cycle reciprocating loading. And the failure characteristics, hysteretic curve, skeleton curve, restoring force model and energy dissipation curve are obtained by analyzing the experimental data. Moment and rotation angle relationship is conducted by joint geometric deformation and equilibrium relation. Based on theoretical model, a simplified bilinear model has been proposed for engineering calculation. When the beam bending performance is qualitatively analyzed, the theoretical model, simulation model and bilinear model are verified through experiments and finite element method simulations. The results show that mortise-and-tenon T joint main failure modes are plastic deformation caused by the upper contact area squeezed each other and the lower contact area divorced each other. Furthermore, it can be obtained from the theoretical model that MT-T joint deformation process consists of elastic segment and elastoplastic segment. Theoretical model, simulation model and bilinear model agree well with the experimental results. This fruit gives a useful reference to composite material used in EVs.https://doi.org/10.1515/ntrev-2019-0033mt-t jointbilinear modelflexural behaviorfailure modesmetallic materialselectric vehicles
collection DOAJ
language English
format Article
sources DOAJ
author Xiong Huiyuan
Tan Zhirong
Zhang Ronghui
Zong Zhijian
Luo Zhipeng
spellingShingle Xiong Huiyuan
Tan Zhirong
Zhang Ronghui
Zong Zhijian
Luo Zhipeng
Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicle
Nanotechnology Reviews
mt-t joint
bilinear model
flexural behavior
failure modes
metallic materials
electric vehicles
author_facet Xiong Huiyuan
Tan Zhirong
Zhang Ronghui
Zong Zhijian
Luo Zhipeng
author_sort Xiong Huiyuan
title Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicle
title_short Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicle
title_full Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicle
title_fullStr Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicle
title_full_unstemmed Flexural behavior and mechanical model of aluminum alloy mortise-and-tenon T-joints for electric vehicle
title_sort flexural behavior and mechanical model of aluminum alloy mortise-and-tenon t-joints for electric vehicle
publisher De Gruyter
series Nanotechnology Reviews
issn 2191-9097
publishDate 2019-12-01
description With the development of electric vehicles, more and more high requirements for the lightweight design on EV body are put forward. This paper aims to study a new structure, aluminum alloy mortise-and-tenon structure, which is used for lightweight EVs. Two new types on aluminium alloy MT-T joint specimens are designed and tested under low-cycle reciprocating loading. And the failure characteristics, hysteretic curve, skeleton curve, restoring force model and energy dissipation curve are obtained by analyzing the experimental data. Moment and rotation angle relationship is conducted by joint geometric deformation and equilibrium relation. Based on theoretical model, a simplified bilinear model has been proposed for engineering calculation. When the beam bending performance is qualitatively analyzed, the theoretical model, simulation model and bilinear model are verified through experiments and finite element method simulations. The results show that mortise-and-tenon T joint main failure modes are plastic deformation caused by the upper contact area squeezed each other and the lower contact area divorced each other. Furthermore, it can be obtained from the theoretical model that MT-T joint deformation process consists of elastic segment and elastoplastic segment. Theoretical model, simulation model and bilinear model agree well with the experimental results. This fruit gives a useful reference to composite material used in EVs.
topic mt-t joint
bilinear model
flexural behavior
failure modes
metallic materials
electric vehicles
url https://doi.org/10.1515/ntrev-2019-0033
work_keys_str_mv AT xionghuiyuan flexuralbehaviorandmechanicalmodelofaluminumalloymortiseandtenontjointsforelectricvehicle
AT tanzhirong flexuralbehaviorandmechanicalmodelofaluminumalloymortiseandtenontjointsforelectricvehicle
AT zhangronghui flexuralbehaviorandmechanicalmodelofaluminumalloymortiseandtenontjointsforelectricvehicle
AT zongzhijian flexuralbehaviorandmechanicalmodelofaluminumalloymortiseandtenontjointsforelectricvehicle
AT luozhipeng flexuralbehaviorandmechanicalmodelofaluminumalloymortiseandtenontjointsforelectricvehicle
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