[2]白瑞祥, 陈浩然. 含分层损伤复合材料加筋层合板的分层扩展研究[J]. 应用数学和力学, 2004,25(4): 368-378. (BAI Ruixiang, CHEN Haoran. Numerical analysis of delamination growth for stiffened composite laminated plates[J]. Applied Mathematics and Mechanics,2004,25(4): 368-378. (in Chinese))
|
飞机设计手册总编委会. 载荷、强度和刚度[M]. 飞机设计手册, 9册. 北京: 航空工业出版社, 2005. (General Editorial Committee of the Aircraft Design Handbook. Load, Strength and Stiffness[M]. Aircraft Design Handbook,Vol9. Beijing: Aviation Industry Press, 2005. (in Chinese))
|
[3]VENKATARAMAN S, HAFTKA R T. Optimization of composite panels: a review[C]//American Society for Composites,1999: 479-488.
|
[4]LANZI L, GIAVOTTO V. Post-buckling optimization of composite stiffened panels: computations and experiments[J]. Composite Structures,2006,73(2): 208-220.
|
[5]张涛, 刘土光, 熊有伦, 等. 流固冲击下加筋板的非线性动态屈曲[J]. 应用数学和力学, 2004,25(7): 755-762. (ZHANG Tao, LIU Tuguang, XIONG Youlun, et al. Dynamic buckling of stiffened plates under fluid-solid impact load[J]. Applied Mathematics and Mechanics,2004,25(7): 755-762. (in Chinese))
|
[6]NI X Y, PRUSTY B G, HELLIER A K. Buckling and post-buckling of isotropic and composite stiffened panels: a review on optimisation (2000—2015)[J]. International Journal of Maritime Engineering,2016,158(A3): A251-A267.
|
[7]KIM D K, LIM H L, YU S Y. A technical review on ultimate strength prediction of stiffened panels in axial compression[J]. Ocean Engineering,2018,170: 392-406.
|
[8]王博, 郝鹏, 田阔. 加筋薄壳结构分析与优化设计研究进展[J]. 计算力学学报, 2019,36(1): 1-12. (WANG Bo, HAO Peng, TIAN Kuo. Recent advances in structural analysis and optimization of stiffened shells[J]. Chinese Journal of Computational Mechanics,2019,36(1): 1-12. (in Chinese))
|
[9]刘宸宇, 骆烜赫, 刘康翔, 等. 基于平铺刚度法的弧形加筋板的轻量化设计[J]. 应用数学和力学, 2023,44(8): 953-964. (LIU Chenyu, LUO Xuanhe, LIU Kangxiang, et al. Lightweight design of arc rib stiffened plates based on the smeared stiffener method[J]. Applied Mathematics and Mechanics,2023,44(8): 953-964. (in Chinese))
|
[10]HAO P, LIU D, LIU H, et al. Intelligent optimum design of large-scale gradual-stiffness stiffened panelsvia multi-level dimension reduction[J]. Computer Methods in Applied Mechanics and Engineering,2024,421: 116759.
|
[11]施利娟, 杨平. 高速船铝合金带筋板的力学性能优化设计[J]. 船海工程, 2011,40(2): 36-39. (SHI Lijuan, YANG Ping. Optimum design of mechanical properties of aluminum sheets-with-ribs of high speed ships[J]. Ship & Ocean Engineering,2011,40(2): 36-39. (in Chinese))
|
[12]郝鹏, 王博, 李刚, 等. 基于代理模型和等效刚度模型的加筋柱壳混合优化设计[J]. 计算力学学报, 2012,29(4): 481-486. (HAO Peng, WANG Bo, LI Gang, et al. Hybrid optimization of grid-stiffened cylinder based on surrogate model and smeared stiffener model[J]. Chinese Journal of Computational Mechanics,2012,29(4): 481-486. (in Chinese))
|
[13]张柱国, 姚卫星, 刘克龙. 基于进化Kriging模型的金属加筋板结构布局优化方法[J]. 南京航空航天大学学报, 2008,40(4): 497-500. (ZHANG Zhuguo, YAO Weixing, LIU Kelong. Configuration optimization method for metallic stiffened panel structure based on updated Kriging model[J]. Journal of Nanjing University of Aeronautics & Astronautics,2008,40(4): 497-500. (in Chinese))
|
[14]时光辉, 贾宜播, 郝文宇, 等. 基于数据驱动的舵面结构优化设计[J]. 力学学报, 2023,55(11): 2577-2587. (SHI Guanghui, JIA Yibo, HAO Wenyu, WU Wenhua, LI Qiang, LIN Ye, DU Zongliang. Optimal design of rudder structures based on data-driven method[J]. Chinese Journal of Mechanical Mechanics,2023,55(11): 2577-2587. (in Chinese))
|
[15]KAPANIA R, MULANI S, TAMIJANI A Y, et al. EBF3PanelOpt: a computational design environment for panels fabricated by additive manufacturing[C]//51st AIAA Aerospace Sciences Meeting Including the New Horizons Forum and Aerospace Exposition. Texas, 2013: AIAA2013-212.
|
[16]赵振, 刘才山, 陈滨, 等. 薄壁加筋肋圆柱壳稳定性分析的参数化研究[J]. 力学与实践, 2004,26(2): 17-21. (ZHAO Zhen, LIU Caishan, CHEN Bin, et al. Parameterization study of orthogrid stiffened cylinder shells[J]. Mechanics and Engineering,2004,26(2): 17-21. (in Chinese))
|
[17]TIAN K, WANG B, ZHANG K, et al. Tailoring the optimal load-carrying efficiency of hierarchical stiffened shells by competitive sampling[J]. Thin-Walled Structures,2018,133: 216-225.
|
[18]中国航空研究院. 复合材料连接手册[M]. 北京: 航空工业出版社, 1994. (Chinese Aeronautical Establishment. Handbook of Joint for Composite Materials[M]. Beijing: Aviation Industry Press, 1994. (in Chinese))
|
[19]MOU H, XIE J, FENG Z. Research status and future development of crashworthiness of civil aircraft fuselage structures: an overview[J]. Progress in Aerospace Sciences,2020,119: 100644.
|
[20]MCCARTHY M A, MCCARTHY C T, LAWLOR V P, et al. Three-dimensional finite element analysis of single-bolt, single-lap composite bolted joints, part Ⅰ: model development and validation[J]. Composite Structures,2005,71(2): 140-158.
|
[21]GRAY P J, MCCARTHY C T. A global bolted joint model for finite element analysis of load distributions in multi-bolt composite joints[J]. Composites (Part B): Engineering,2010,41(4): 317-325.
|
[22]刘建华. 轴向激励下螺栓连接结构的松动机理研究[D]. 成都: 西南交通大学, 2016. (LIU Jianhua. Research on the self-loosening mechanism of bolted joints under axial excitation[D]. Chengdu: Southwest Jiaotong University, 2016. (in Chinese))
|
[23]MATHAN G, PRASAD N S. Study of dynamic response of piping system with gasketed flanged joints using finite element analysis[J]. International Journal of Pressure Vessels and Piping,2012,89: 28-32.
|
[24]AHMADIAN H, NOURMOHAMMADI M. Tool point dynamics prediction by a three-component model utilizing distributed joint interfaces[J]. International Journal of Machine Tools and Manufacture,2010,50(11): 998-1005.
|
[25]万春华, 段世慧, 吴存利. 加筋结构后屈曲有限元建模方法研究[J]. 机械科学与技术, 2015,34(5): 795-798. (WAN Chunhua, DUAN Shihui, WU Cunli. Study on the finite element modeling for post-buckling analysis of the stiffened structure[J]. Mechanical Science and Technology for Aerospace Engineering,2015,34(5): 795-798. (in Chinese))
|
[26]韩旭, 雷磊, 袁伟, 等. 基于等效模型的帽型复合材料加筋壁板优化设计[J]. 材料工程, 2009,37(S2): 173-178. (HAN Xu, LEI Lei, YUAN Wei, et al. Optimization of the composite hat-stiffened panel based on equivalent model[J]. Journal of Materials Engineering,2009,37(S2): 173-178. (in Chinese))
|
[27]L Z Y, LU Z Z, WANG P. A new learning function for Kriging and its applications to solve reliability problems in engineering[J]. Computers & Mathematics With Applications,2015,70(5): 1182-1197.
|