Open Access
| Issue |
JNWPU
Volume 43, Number 4, August 2025
|
|
|---|---|---|
| Page(s) | 702 - 722 | |
| DOI | https://doi.org/10.1051/jnwpu/20254340702 | |
| Published online | 07 October 2025 | |
- LI T W, KU X P, BAKAR A Z N. Topology optimization of swing arm for FSAE EV racing cars[J]. Journal of Physics: Conference Series, 2024, 2923(1): 012007 [Google Scholar]
- ZHU B L, ZHANG X M, ZHANG H C, et al. Design of compliant mechanisms using continuum topology optimization: a review[J]. Mechanism and Machine Theory, 2020, 143: 103622 [Google Scholar]
- DEATON J D, GRANDHI R V. A survey of structural and multidisciplinary continuum topology optimization: post 2000[J]. Structural and Multidisciplinary Optimization, 2014, 49(1): 1–38 [Google Scholar]
- SIVAPURAM R, DUNNING P D, KIM H A. Simultaneous material and structural optimization by multiscale topology optimization[J]. Structural and Multidisciplinary Optimization, 2016, 54(5): 1267–1281 [Google Scholar]
- JUNG T, LEE J, NOMURA T, et al. Inverse design of three-dimensional fiber reinforced composites with spatially-varying fiber size and orientation using multiscale topology optimization[J]. Composite Structures, 2022, 279: 114768 [Google Scholar]
- CHAI Xianghai, ZHANG Zhinan, YAN Jun, et al. Lightweight design for improving aeroengine fan blade impact resistance capability[J]. Journal of Shanghai Jiaotong University, 2020, 54(2): 186–192 (in Chinese) [Google Scholar]
- XIONG F, WANG D, MA Z, et al. Lightweight optimization of the front end structure of an automobile body using entropy-based grey relational analysis[J]. Journal of Automobile Engineering, 2019, 233(4): 917–934 [Google Scholar]
- HUANG Jie, RUAN Jingkui, ZHANG Yibing, et al. Lightweight design of differential case based on multi-objective genetic algorithm[J]. Spacecraft Environment Engineering, 2023, 40(3): 269–275 (in Chinese) [Google Scholar]
- WANG Puyi, FAN Tianfeng, ZHANG Taiping, et al. A forward design method and application for lightweight structure of wea-ponry[J]. Journal of Ordnance Equipment Engineering, 2024, 45(6): 150–158 (in Chinese) [Google Scholar]
- SIGMUND O, MAUTE K. Topology optimization approaches: a comparative review[J]. Structural and Multidisciplinary Optimization, 2013, 48(6): 1031–1055 [CrossRef] [MathSciNet] [Google Scholar]
- XIE Y M, STEVEN G P. A simple evolutionary procedure for structural optimization[J]. Computers & Structures, 1993, 49(5): 885–896 [Google Scholar]
- QUERIN O M, STEVEN G P, XIE Y M. Evolutionary structural optimization(ESO) using a bidirectional algorithm[J]. Engineering Computations, 1998, 15(8): 1031–1048 [Google Scholar]
- HUANG X, XIE Y M. Convergent and mesh-independent solutions for the bi-directional evolutionary structural optimization method[J]. Finite Elements in Analysis and Design, 2007, 43(14): 1039–1049 [Google Scholar]
- LI Shumin. Research on hybrid optimization method of structural topology and size based on skeleton extraction algorithm[D]. Guangzhou: Guangzhou University, 2022 (in Chinese) [Google Scholar]
- YANG X Y, XIE Y M, STEVEN G P. Evolutionary methods for topology optimization of continuous structures with design dependent loads[J]. Computers & Structures, 2005, 83(12/13): 956–963 [Google Scholar]
- HUANG X, XIE Y M. Evolutionary topology optimization of continuum structures including design-dependent self-weight loads[J]. Finite Elements in Analysis and Design, 2011, 47(8): 942–948 [Google Scholar]
- TENG Xiaoyan, SUN Li. Engineering application of topology optimization in structural design for cargo tank region of oil tanker[J]. Chinese Journal of Applied Mechanics, 2017, 34(5): 944–949 (in Chinese) [Google Scholar]
- WU Xing, FENG Shuo, QI Jun, et al. A novel approach to topology optimization of multi-material structures considering mass constraint[J]. Chinese Journal of Computational Mechanics, 2023, 40(3): 484–490 (in Chinese) [Google Scholar]
- MIRZENDEHDEL A M, RANKOUHI B, SURESH K. Strength-based topology optimization for anisotropic parts[J]. Additive Manufacturing, 2018, 19: 104–113 [Google Scholar]
- WANG H X, LIU J, WEN G L. An adaptive mesh-adjustment strategy for continuum topology optimization to achieve manufacturable structural layout[J]. International Journal for Numerical Methods in Engineering, 2019, 117(13): 1304–1322 [Google Scholar]
- WANG H X, LIU J, WEN G L. An efficient evolutionary structural optimization method with smooth edges based on the game of building blocks[J]. Engineering Optimization, 2019, 51(12): 2089–2108 [Google Scholar]
- SUI Yunkang. Modelling Transformation and optimization new developments of structural synthesis method[M]. Dalian: Dalian University of Technology Press, 1996 (in Chinese) [Google Scholar]
- YE Hongling, SHEN Jingxian, SUI Yunkang. Analysis of effects of different filter functions on topology optimization of continuous structure with stress constraint[J]. Journal of Beijing University of Technology, 2013, 39(3): 321–330 (in Chinese) [Google Scholar]
- SUI Yunkang, PENG Xirong. Selecting mapping function with highly efficient convergence(MFHEC) for ICM method of structural topology optimization[J]. Chinese Journal of Solid Mechanics, 2024, 45(2): 253–265 (in Chinese) [Google Scholar]
- LI Hongyu, SUN Pengwen, ZHANG Lanting, et al. Topology optimization design for multiphase materials of wind turbine blade based on ICM[J]. Acta Energiae Solaris Sinica, 2021, 42(12): 261–266 (in Chinese) [Google Scholar]
- LI X, YANG Q, WANG Y, et al. Development of surrogate models in reliability-based design optimization: a review[J]. Mathematical Biosciences and Engineering, 2021, 18(5): 6386–6409 [Google Scholar]
- LING Jingxiu, LI Haoyu, WANG Ganting, et al. Structural optimization and lightweight of tyre forming machine rolling support[J]. Modern Manufacturing Engineering, 202310): 126–134 (in Chinese) [Google Scholar]
- JIA Lianhui, LI Xiaoke, YUAN Wenzheng, et al. Lightweight design of front and middle shield structures based on topology optimization and Kriging model[J]. China Mechanical Engineering, 2022, 33(23): 2888–2897 (in Chinese) [Google Scholar]
- LI Zuoxuan, JIA Liangyue, HAO Jia, et al. Lightweight optimization design of unmanned vehicle body structure based on multi-working conditions correlation[J]. Acta Armamentarii, 2023, 44(11): 3529–3542 (in Chinese) [Google Scholar]
- JIAO Ayun, MA Xinmou, LI Kuiwu. Multi-objective optimization design of under frame of rocket launcher[J]. Journal of Gun Launch & Control, 2022, 43(3): 50–55 (in Chinese) [Google Scholar]
- XIONG F, ZOU X H, ZHANG Z G, et al. A systematic approach for multi-objective lightweight and stiffness optimization of a car body[J]. Structural and Multidisciplinary Optimization, 2020, 62(6): 3229–3248 [Google Scholar]
- CHEN Chaolei, WANG Zhixiang, LEI Yongjun, et al. Structure optimization design of stiffened conical shells based on sequential approximate optimization method[J]. Manned Spaceflight, 2023, 29(3): 362–371 (in Chinese) [Google Scholar]
- YANG P, SUN L Y, ZHANG M L, et al. A lightweight optimal design method for magnetic adhesion module of wall-climbing robot based on surrogate model and DBO algorithm[J]. Journal of Mechanical Science and Technology, 2024, 38(4): 2041–2053 [Google Scholar]
- SOSNOVIK I, OSELEDETS I. Neural networks for topology optimization[J]. Russian Journal of Numerical Analysis and Mathematical Modelling, 2019, 34(4): 215–223 [Google Scholar]
- ZHENG S, HE Z Z, LIU H L. Generating three dimensional structural topologies via a U-Net convolutional neural network[J]. Thin-Walled Structures, 2021, 159: 1–15 [Google Scholar]
- CHANDRASEKHAR A, SURESH K. TOuNN: topology optimization using neural networks[J]. Structural and Multidisciplinary Optimization, 2021, 63(3): 1135–1149 [Google Scholar]
- FAN Lili, ZHAO Hongwei, ZHAO Haoyu, et al. Survey of target detection based on deep convolutional neural networks[J]. Optics and Precision Engineering, 2020, 28(5): 1152–1164 (in Chinese) [Google Scholar]
- XIA Q, WANG M Y, SHI T L. Topology optimization with pressure load through a level set method[J]. Computer Methods in Applied Mechanics and Engineering, 2015, 283: 177–195 [Google Scholar]
- WANG M Y, WANG X, GUO D. A level set method for structural topology optimization[J]. Computer Methods in Applied Mechanics and Engineering, 2003, 192(1/2): 227–246 [Google Scholar]
- SETHIAN J A, WIEGMANN A. Structural boundary design via level set and immersed interface methods[J]. Journal of Computational Physics, 2000, 163(2): 489–528 [Google Scholar]
- GUO Xu, ZHAO Kang. A new topology description function based approach for structural topology optimization[J]. Chinese Journal of Theoretical and Applied Mechanics, 20045): 520–526 (in Chinese) [Google Scholar]
- ZHUANG Chungang, XIONG Zhenhua, DING Han. Structural topology optimization based on level set method and von Mises stress[J]. China Mechanical Engineering, 200615): 1589–1595 (in Chinese) [Google Scholar]
- OSHER S J, SANTOSA F. Level set methods for optimization problems involving geometry and constraints: Ⅰ. frequencies of a two-density inhomogeneous drum[J]. Journal of Computational Physics, 2001, 171(1): 272–288 [Google Scholar]
- MEI Y, Wang X. A level set method for structural topology optimization and its applications[J]. Advances in Engineering Software, 2004, 35(7): 415–441 [Google Scholar]
- KAMBAMPATI S, GRAY J S, KIM H A. Level set topology optimization of structures under stress and temperature constraints[J]. Computers & Structures, 2020, 235: 106265 [Google Scholar]
- HUANG H, DING W, JIA H, et al. Multiscale fail-safe topology optimization for lattice structures[J]. Thin-Walled Structures, 2025, 206(3): 112693 [Google Scholar]
- ZHANG Weisheng, SUN Guo, GUO Xu, et al. A level set-based approach for simultaneous optimization of the structural topology and the layout of embedding structural components[J]. Engineering Mechanics, 2013, 30(7): 22–27 (in Chinese) [Google Scholar]
- WU Yonghui, ZHANG Dongdong, CHEN Jingyue, et al. Dynamic topology optimization for constrained layer damping structures using parametric level set method[J]. Journal of University of Shanghai for Science and Technology, 2021, 43(4): 349–359 (in Chinese) [Google Scholar]
- LIN Y, ZHU W, LI J, et al. Structural topology optimization using a level set method with finite difference updating scheme[J]. Structural and Multidisciplinary Optimization, 2021, 63: 1839–1852 [Google Scholar]
- ALLAIRE G, GOURNAY F D, JOUVE F, et al. Structural optimization using topological and shape sensitivity via a level set method[J]. Control & Cybernetics, 2005, 34(1): 59–80 [Google Scholar]
- LUO Junzhao, CHEN Liping, LUO Zhen. A level set method for topology optimization using aosscheme[J]. Chinese Journal of Solid State Mechanics, 2008, 29(2): 175–180 (in Chinese) [Google Scholar]
- OSHER S, SETHIAN J A. Fronts propagating with curvature-dependent speed: algorithms based on Hamilton-Jacobi formulations[J]. Journal of Computational Physics, 1988, 79(1): 12–49 [Google Scholar]
- GUO X, ZHANG W S, ZHONG W L. Doing topology optimization explicitly and geometrically-a new moving morphable components based framework[J]. Journal of Applied Mechanics, 2014, 81(8): 081009 [Google Scholar]
- WEISS B M, HAMEL J M, GANTER M A, et al. Data-driven additive manufacturing constraints for topology optimization[J]. Journal of Manufacturing Science and Engineering, 2021, 143(2): 021001 [Google Scholar]
- LIAN Ruichao, JING Shikai, LI Ying, et al. A hybrid topology optimization method of SIMP and MMC considering precise control of minimum size[J]. Chinese Journal of Theoretical and Applied Mechanics, 2022, 54(12): 3524–3537 (in Chinese) [Google Scholar]
- LI Jialin, ZHAO Jian, SUN Zhi, et al. Lightweight design of transmission frame structures for launch vehicles based on moving morphable components(MMC) approach[J]. Chinese Journal of Theoretical and Applied Mechanics, 2019, 54(1): 244–251 (in Chinese) [Google Scholar]
- ZHANG Junfeng, LIAO Jingyu, LIU Enhai. Topology optimization method based on SIMP-MMC for structure size precise control[J]. Mechanical Strength, 2022, 44(1): 102–110 (in Chinese) [Google Scholar]
- ZHANG Weihong, ZHOU Han, LI Shaoying, et al. Material-structure integrated design for high-performance aerospace thin-walled component[J]. Acta Aeronautica et Astronautica Sinica, 2023, 44(9): 30–46 (in Chinese) [Google Scholar]
- CHEN Xiaoqian, ZHAO Yong, HUO Senlin, et al. A review of topology optimization design methods for multi-scale structures[J]. Acta Aeronautica et Astronautica Sinica, 2023, 44(15): 25–60 (in Chinese) [Google Scholar]
- BENDSOE M P, KIKUCHI N. Generating optimal topologies in structural design using a homogenization method[J]. Computer Methods in Applied Mechanics and Engineering, 1988, 71(2): 197–224 [Google Scholar]
- BENDSOE M P, SIGMUND O. Material interpolation schemes in topology optimization[J]. Archive of Applied Mechanics, 1999, 69(9/10): 635–654 [CrossRef] [Google Scholar]
- PLOCHER J, PANESAR A. Review on design and structural optimisation in additive manufacturing: towards next-generation lightweight structures[J]. Materials & Design, 2019, 183: 108164 [Google Scholar]
- GU X C, HE S M, DONG Y H, et al. An improved ordered SIMP approach for multiscale concurrent topology optimization with multiple microstructures[J]. Composite Structures, 2022, 287: 115363 [Google Scholar]
- WU J, AAGE N, WESTERMANN R, et al. Infill optimization for additive manufacturing-approaching bone-like porous structures[J]. IEEE Trans on Visualization and Computer Graphics, 2018, 24(2): 1127–1140 [Google Scholar]
- XIONG J, MINES R, GHOSH R, et al. Advanced micro-lattice materials[J]. Advanced Engineering Materials, 2015, 17(9): 1253–1264 [Google Scholar]
- LI D, LIAO W, DAI N, et al. Anisotropic design and optimization of conformal gradient lattice structures[J]. Computer-Aided Design, 2020, 119: 102787 [Google Scholar]
- WANG C, ZHU J, WU M, et al. Multi-scale design and optimization for solid-lattice hybrid structures and their application to aerospace vehicle components[J]. Chinese Journal of Aeronautics, 2021, 34(5): 386–398 [Google Scholar]
- REN Limin, DAI Ning, CHENG Xiaosheng, et al. Method of boundary strengthening design for lattice structure filling model[J]. China Mechanical Engineering, 2021, 32(5): 594–599 (in Chinese) [Google Scholar]
- XU Ganjun, DAI Ning. Functional lattice structures design method based on strengthening nodes[J]. China Mechanical Engineering, 2022, 33(13): 1537–1544 (in Chinese) [Google Scholar]
- MOON S K, TAN Y E, HWANG J, et al. Application of 3D printing technology for designing light-weight unmanned aerial vehicle wing structures[J]. International Journal of Precision Engineering and Manufacturing-Green Technology, 20141): 223–228 [Google Scholar]
- LIU K. Concurrent topology optimization of structures and materials[D]. West Lafayette: Purdue University, 2013 [Google Scholar]
- YAN X, HUANG X, ZHA Y, et al. Concurrent topology optimization of structures and their composite microstructures[J]. Computers and Structures, 2014, 133: 103–110 [Google Scholar]
- LI H, LUO Z, ZHANG N, et al. Integrated design of cellular composites using a level-set topology optimization method[J]. Computer Methods in Applied Mechanics and Engineering, 2016, 309: 453–475 [Google Scholar]
- WANG Y, WANG M Y, CHEN F. Structure-material integrated design by level sets[J]. Structural and Multidisciplinary Optimization, 2016, 54(5): 1145–1156 [Google Scholar]
- SIVAPURAM R, DUNNING P D, Kim H A. Simultaneous material and structural optimization by multiscale topology optimization[J]. Structural and Multidisciplinary Optimization, 2016, 54(5): 1267–1281 [Google Scholar]
- HAO P, WANG B, TIAN K, et al. Fast procedure for non-uniform optimum design of stiffened shells under buckling constraint[J]. Structural and Multidisciplinary Optimization, 2017, 55: 1503–1516 [Google Scholar]
- LI H, LUO Z, GAO L, et al. Topology optimization for functionally graded cellular composites with metamaterials by level sets[J]. Computer Methods in Applied Mechanics and Engineering, 2018, 328: 340–364 [Google Scholar]
- GUO X, ZHANG W, ZHONG W. Doing topology optimization explicitly and geometrically——a new moving morphable components based framework[J]. Journal of Applied Mechanics, 2014, 81(8): 081009 [Google Scholar]
- PENG Xianchang, CAI Wenqi, LIN Zhibin, et al. Static and dynamic analysis and topological optimization of gearbox housing in electric vehicle[J]. Journal of Mechanical Transmission, 2021, 45(7): 74–81 (in Chinese) [Google Scholar]
- LIN Danyi. Topological optimizagion of one automobile engine mount[J]. Machine Design & Research, 2018, 34(3): 179–181 (in Chinese) [Google Scholar]
- DONG Wei, LI Yang, XIN Kehao, et al. A method of designing plate structure consisting of lattices and stiffeners based on topology optimization[J]. Journal of Northwestern Polytechnical University, 2021, 39(6): 1233–1239 (in Chinese) [Google Scholar]
- WANG H, CHENG W M, DU R, et al. Improved proportional topology optimization algorithm for solving minimum compliance problem[J]. Structural and Multidisciplinary Optimization, 2020, 62(2): 475–493 [Google Scholar]
- ZHANG Guofeng, XU Lei, LI Dashuang, et al. Research on sensitivity filtering of continuum topology optimization[J]. Modular Machine Tool & Automatic Manufacturing Technique, 20216): 29–32 (in Chinese) [Google Scholar]
- SHI S, ZHOU P, LYU Z. A density-based topology optimization method using radial basis function and its design variable reduction[J]. Structural and Multidisciplinary Optimization, 2021, 64: 2149–2163 [Google Scholar]
- BENDSOE M P. Optimal shape design as a material distribution problem[J]. Structural Optimization, 1989, 1(4): 193–202 [Google Scholar]
- LI Shaochun, YI Meijun. Structural-damping integrated composite components[J]. Journal of Northwestern Polytechnical University, 2018, 36(suppl.1): 98–103 (in Chinese) [Google Scholar]
- YANG Y, BASHIR M, MICHAILIDES C, et al. Development and application of an aero-hydro-servo-elastic coupling framework for analysis of floating offshore wind turbines[J]. Renewable Energy, 2020, 161: 606–625 [Google Scholar]
- XU Q, LI S, MENG Y. Optimization and re-design of integrated thermal protection systems considering thermo-mechanical performance[J]. Applied Sciences, 2021, 11(15): 6916 [Google Scholar]
- MA Fangwu, WANG Zhuojun, YANG Meng, et al. Research on lightweight conceptual design method of vehicle rear subframe[J]. Automotive Engineering, 2021, 43(5): 776–783 (in Chinese) [Google Scholar]
- WANG Yongjia, DONG Hongshun, ZHANG Daisheng, et al. Material-structure integrated lightweight design of bumper front anti-collision beam[J]. Journal of Chongqing University of Technology, 2022, 36(7): 86–93 (in Chinese) [Google Scholar]
- GU Xianguang, CHEN Honglin, YU Luxin, et al. Integrated design of precision aluminum castings parts and its application in lightweight vehicle body[J]. Automotive Engineering, 2024, 46(1): 179–186 (in Chinese) [Google Scholar]
- WU Bofu, WU Yaoye, BEI Jing, et al. Multi-objective reliability optimization design for cast aluminum integrated car door[J]. Chinese Journal of Engineering Design, 2024, 31(2): 188–200 (in Chinese) [Google Scholar]
- CHENG Aiguo, WANG Chao, LU Rijin, et al. Holistic topology and parameter lightweight design of composite tailgate structures[J]. China Mechanical Engineering, 2024, 35(10): 1824–1833 (in Chinese) [Google Scholar]
- TAO W, LIU Z, ZHU P, et al. Multi-scale design of three dimensional woven composite automobile fender using modified particle swarm optimization algorithm[J]. Composite Structures, 2017, 181: 73–83 [Google Scholar]
- NING H, PILLAY S, VAIDYA U K. Design and development of thermoplastic composite roof door for mass transit bus[J]. Materials & Design, 2009, 30(4): 983–991 [Google Scholar]
- GU Xiaojun, YANG Kaike, WU Manqiao, et al. Integrated optimization design of smart morphing wing for accurate shape control[J]. Chinese Journal of Aeronautics, 2021, 34(1): 135–147 [Google Scholar]
- YUAN Shuaichao, WANG Jianfeng, DUAN Yuhang, et al. Topological optimization design of SLM additive manufactured unmanned aerial vehicle bearing joint structure based on variable density method[J]. Chinese Journal of Engineering Science, 2025, 47(1): 56–65 (in Chinese) [Google Scholar]
- YAO Zhengkang, GONG Peng, JI Shude. Lightweight design of multi-habitat unmanned aerial vehicle's fuselage based on topology optimization[J]. Journal of Machine Design, 2024, 41(9): 58–65 (in Chinese) [Google Scholar]
- LI Peng, SHI Yongkang, GUO Wenmin, et al. Lightweight design of arm folding mechanism of quad-rotor plant protection UAV[J]. Agricultural Mechanization Research, 2024, 46(6): 116–121 (in Chinese) [Google Scholar]
- WANG Zhipeng, LIU Hui, CAO Jian. Multi-performance constraint topology optimization design of quadrotor UAV frame structure[J]. Machine Design & Research, 2022, 38(6): 173–176 (in Chinese) [Google Scholar]
- NIU Xixi, LI Xinying, LI Peize. Topology optimization design of aircraft flap based on variable density method[J]. Journal of Ordnance Equipment Engineering, 2024, 45(3): 101–106 (in Chinese) [Google Scholar]
- WANG Feng, ZHANG Bo, WANG Chao, et al. Optimization design of aero engine support based on additive manufacturing[J]. Machine Design & Manufacture, 202210): 157–160 (in Chinese) [Google Scholar]
- ZHAO Zhixin, WANG Kun, WANG Jie, et al. Dynamic analysis and topology optimization of aircraft landing gear[J]. Machinery Design & Manufacture, 202110): 81–85 (in Chinese) [Google Scholar]
- FEI Chengwei, LIU Haotian, ZHU Zhengzheng, et al. Whole-process design and experimental validation of landing gear lower drag stay with global/local linked driven optimization strategy[J]. Chinese Journal of Aeronautics, 2021, 34(2): 318–328 [Google Scholar]
- ZHANG Lei, XU Shuaikang, CHEN Jie, et al. Research progress in lightweight design of train body[J]. Journal of Mechanical Engineering, 2023, 59(24): 177–196 (in Chinese) [Google Scholar]
- SHIFERAW M, TEGEGNE A, ASMARE A, et al. An overview of the role of composites in the application of lightweight body parts and their environmental impact[J]. Engineering Solid Mechanics, 2023, 11(4): 419–426 [Google Scholar]
- LEE H, JUNG S, JANG H, et al. Structural-optimization-based design process for the body of a railway vehicle made from extruded aluminum panels[J]. Journal of Rail and Rapid Transit, 2016, 230(4): 1283–1296 [Google Scholar]
- YAO D, ZHANG J, WANG R, et al. Lightweight design and sound insulation characteristic optimisation of railway floating floor structures[J]. Applied Acoustics, 2019, 156: 66–77 [Google Scholar]
- LI Ya'na, YU Hailing, QIU Guangyu. Topology optimization of metro vehicle seat support based on substructure and mode repetition[J]. Computer Aided Engineering, 2018, 27(2): 43–46 (in Chinese) [Google Scholar]
- ZHENG Ruoyu. Study on the lightweight of metro car body using superelement technology[D]. Chengdu: Southwest Jiaotong University, 2016 (in Chinese) [Google Scholar]
- LIAO Ying, LI Feng, LI Zhi. Lightweight design of aluminum rear subframe in conceptual design stage[J]. Automotive Engineering, 2020, 42(12): 1737–1743 (in Chinese) [Google Scholar]
- ZHANG Dongdong, ZHANG Ledi, LI Liangliang, et al. Application of deep learning in topological optimization for structure of commercial vehicle front axle[J]. Mechanical Design and Research, 2024, 40(4): 104–110 (in Chinese) [Google Scholar]
- LIU Yingjie, HU Qiang, ZHAO Xinming, et al. Research on topology optimization and additive manufacturing of engine connection brackets[J]. China Mechanical Engineering, 2023, 34(18): 2238–2247 (in Chinese) [Google Scholar]
- KIANI M, SHIOZAKI H, MOTOYAMA K. Simulation-based design optimisation to develop a lightweight body-in-white structure focusing on dynamic and static stiffness[J]. International Journal of Vehicle Design, 2015, 67(3): 219–236 [Google Scholar]
- ZHANG Feng, CHENG Jianyong, DONG Liqiang, et al. Lightweight design of body structure of a platform's modified vehicle based on SFE CONCEPT[J]. Journal of Machine Design, 2022, 39(11): 106–111 (in Chinese) [Google Scholar]
- LI Y, DI M, ZHANG Z. Research on multi-condition topology optimization design of stainless steel spot welding vehicle considering weight coefficient[J]. Journal of Physics: Conference Series, 20221): 1–6 [Google Scholar]
- HARTMANN M, ROSCHITZ M, KHALIL Z. Enhanced battery pack for electric vehicle: noise reduction and increased stiffness[J]. Materials Science Forum, 2013, 2530(765): 818–822 [Google Scholar]
- SU Yonglei, ZHANG Zhifei. Correction method of static stiffness and multi-level topology optimization for subframe[J]. Automotive Engineering, 2023, 45(11): 2157–2164 (in Chinese) [Google Scholar]
- LI Yanxing, WANG Tie, JI Zhiyong, et al. Multi-objective topology optimization design of hydrogen-fueled truck frame[J]. Journal of Mechanical Strength, 2022, 44(5): 1128–1133 (in Chinese) [Google Scholar]
- GE Shicheng, GUO Zhuoyu, LIANG Xi, et al. Optimizing multi-objective topology of compliant mechanism of field-artillery rocket loading system[J]. Mechanical Science and Technology for Aerospace Engineering, 2022, 41(6): 922–928 (in Chinese) [Google Scholar]
- ZHANG Xinjian, GU Keqiu, LIU Gengxi. Topology optimization of the upper carriage of a gun under multiple working conditions[J]. Journal of Gun Launch and Control, 2019, 40(3): 56–60 (in Chinese) [Google Scholar]
- SUN Lingqing, LI Zhigang, WANG Sijie. Structural optimization design of swing arm of certain artillery flap mechanism[J]. Journal of Ordnance Equipment Engineering, 2021, 42(4): 224–227 (in Chinese) [Google Scholar]
- CHEN Yanwei, WANG Bei, LIU Jialin, et al. Research on lightweight technology of a shipborne missile launcher[J]. Ship Science and Technology, 2022, 44(14): 159–164 (in Chinese) [Google Scholar]
- LIU Hao, XU Hongbin, LI Zhengyu, et al. Lightweight design of unmanned weapon Station[J]. Journal of Missile, Arrow and Guidance, 2021, 41(2): 64–67 (in Chinese) [Google Scholar]
- JIANG Junxia, LIAO Haipeng. Stiffness modeling and structure optimization of heavy duty intelligent stacking equipment[J]. Journal of Zhejiang University, 2021, 55(10): 1948–1959 (in Chinese) [Google Scholar]
- ZHENG Xiaofei, HUANG Zhenhai, MA Xiaolong, et al. Structure optimization and analysis of pole-climbing robot based on SIMP method[J]. Chinese Journal of Engineering Design, 2023, 30(3): 342–352 (in Chinese) [Google Scholar]
- YIN Jiaoqin, GAO Zicheng, LI Lijun, et al. Comprehensive optimization design of beam structure for double spindle horizontal machining center[J]. Machine Tool & Hydraulics, 2024, 52(14): 94–99 (in Chinese) [Google Scholar]
- XU T, WU H, XUE F, et al. Structural design of stamping die of advanced high-strength steel part for automobile based on topology optimization with variable density method[J]. The International Journal of Advanced Manufacturing Technology, 2022, 121: 8115–8125 [Google Scholar]
- SONG Xinke, CHEN Demin, QU Baohua. Topology optimization of robotic arm for gas drainage pipeline installation[J]. Journal of Physics: Conference Series, 2022, 23831): 012014 [Google Scholar]
- SURYO H S, HARTO H, YUNIANTO B. Optimization of CAT 374D L arm excavator structure topology design using finite element methods[J]. ROTASI, 2020, 22(2): 79–86 [Google Scholar]
- MA Chao, LU Pengcheng, QIU Na, et al. Crashworthiness analysis and lightweight design of a rollover protective structure of an excavator[J]. Chinese Journal of Construction Machinery, 2023, 21(4): 363–366 (in Chinese) [Google Scholar]
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