Crash topology optimization for front-end safety parts of battery electric vehicle using an improved equivalent static loads method

被引:2
作者
Ren, Chun [1 ]
Liu, Xusheng [1 ]
Yang, Xuefeng [1 ]
Ma, Tianfei [2 ]
机构
[1] Ordos Inst Technol, Ordos 017010, Inner Mongolia, Peoples R China
[2] Jilin Univ, State Key Lab Automot Simulat & Control, Changchun, Peoples R China
基金
中国国家自然科学基金;
关键词
Structural crash topology optimization; improved ESLs; battery electric vehicle (BEV); frontal-end system; safety parts; ROOF CRUSH TEST; STRUCTURAL OPTIMIZATION; DESIGN OPTIMIZATION; SHAPE OPTIMIZATION; DYNAMIC LOADS; CRASHWORTHINESS; BOX; VALIDATION; SYSTEM; MODEL;
D O I
10.1177/09544070231162137
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Crash topology optimization is a typical nonlinear dynamic response structural topology optimization problem, which is one of the most difficult problem in the structural design field. The equivalent static load method (ESLM) provides a well-defined pattern to solve such difficult problems, which can convert a nonlinear dynamic response optimization into multi-load steps optimization problem with the equivalent static loads (ESLs). However, due to the large deformation in the crash condition and nodal characteristics of the ESLs, it is hard to solve the crash topology optimization directly using the standard ESLM. To expand the application scope of the ESLM, an improved ESLs calculation method is proposed by using the model order reduction method and energy principle, which only acting on some nodes and can be scaled adaptively. Correspondingly, to enrich the connotation of topology optimization, a crash topology optimization method is proposed by using the improved ESLs, which can solve the numerical problems in the design domain by guaranteeing the topology optimization with the improved ESLs perform in the linear rang. First, the principle of the standard ESLM is introduced, and corresponding problems and deficiencies in solving the crash topology optimization are summarized. Then, to solve the above problems, the improved ESLs calculation method is proposed. Meanwhile, the corresponding crash topology strategy is proposed based on the improved ESLs. Finally, to verify the effectiveness and engineering application value of the proposed crash topology optimization method, a test-verified frontal crash simulation model of the BEV front-end is established, and their safety parts are redesigned by using the proposed method. The results show that, the proposed method can effectively solve the crash topology optimization of thin-walled structures under large deformation crash condition. This method also provides a new idea and practical method for the crashworthiness and lightweight design of automobile structures.
引用
收藏
页码:2396 / 2420
页数:25
相关论文
共 71 条
[1]   A review on crashworthiness studies of crash box structure [J].
Abdullah, N. A. Z. ;
Sani, M. S. M. ;
Salwani, M. S. ;
Husain, N. A. .
THIN-WALLED STRUCTURES, 2020, 153
[2]   The effects of driving patterns and PEM fuel cell degradation on the lifecycle assessment of hydrogen fuel cell vehicles [J].
Ahmadi, Pouria ;
Torabi, Seyed Hosein ;
Afsaneh, Hadi ;
Sadegheih, Yousef ;
Ganjehsarabi, Hadi ;
Ashjaee, Mehdi .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (05) :3595-3608
[3]   Urban air quality: The challenge of traffic non-exhaust emissions [J].
Amato, Fulvio ;
Cassee, Flemming R. ;
van der Gon, Hugo A. C. Denier ;
Gehrig, Robert ;
Gustafsson, Mats ;
Hafner, Wolfgang ;
Harrison, Roy M. ;
Jozwicka, Magdalena ;
Kelly, Frank J. ;
Moreno, Teresa ;
Prevot, Andre S. H. ;
Schaap, Martijn ;
Sunyer, Jordi ;
Querol, Xavier .
JOURNAL OF HAZARDOUS MATERIALS, 2014, 275 :31-36
[4]   An improved numerically-stable equivalent static loads (ESLs) algorithm based on energy-scaling ratio for stiffness topology optimization under crash loads [J].
Bai, Y. C. ;
Zhou, H. S. ;
Lei, F. ;
Lei, H. S. .
STRUCTURAL AND MULTIDISCIPLINARY OPTIMIZATION, 2019, 59 (01) :117-130
[5]   Local blast wave interaction with tire structure [J].
Baranowski, Pawel ;
Malachowski, Jerzy ;
Mazurkiewicz, Lukasz .
DEFENCE TECHNOLOGY, 2020, 16 (03) :520-529
[6]   Analysis of mechanics of side impact test defined in UN/ECE Regulation 129 [J].
Baranowski, Pawel ;
Damaziak, Krzysztof ;
Mazurkiewicz, Lukasz ;
Malachowski, Jerzy ;
Muszynski, Artur ;
Vangi, Dario .
TRAFFIC INJURY PREVENTION, 2018, 19 (03) :256-263
[7]   High performance automotive chassis design: a topology optimization based approach [J].
Cavazzuti, Marco ;
Baldini, Andrea ;
Bertocchi, Enrico ;
Costi, Dario ;
Torricelli, Enrico ;
Moruzzi, Patrizio .
STRUCTURAL AND MULTIDISCIPLINARY OPTIMIZATION, 2011, 44 (01) :45-56
[8]  
Chen Tao, 2015, Journal of Mechanical Engineering, V51, P116, DOI 10.3901/JME.2015.08.116
[9]  
Chen Y., 2019, J DATA ANAL INF PROC, V8, P1, DOI DOI 10.4236/JDAIP.2020.81001
[10]   Structural Optimization for Roof Crush Test Using an Enforced Displacement Method [J].
Choi, Wook-Han ;
Lee, Youngmyung ;
Yoon, Jong-Min ;
Han, Yong-Ha ;
Park, Gyung-Jin .
INTERNATIONAL JOURNAL OF AUTOMOTIVE TECHNOLOGY, 2018, 19 (02) :291-299