[1] 谭永华.大推力液体火箭发动机研究[J].宇航学报,2013,34(10):1303-1308.
[2] 谭永华,杜飞平,陈建华,等.液氧煤油高压补燃循环发动机深度变推力系统方案研究[J].推进技术,2018,39(6):1201-1209.
[3] 李东,李平岐.长征五号火箭技术突破与中国运载火箭未来发展[J].航空学报,2022,43(10):527269.
[4] 杜飞平.航天液体动力关键技术研究进展与趋势[J].应用力学学报,2023,40(1):7-15.
[5] 张相盟,陈晖,高玉闪,等.500吨级液氧煤油发动机结构动态特性[J].火箭推进,2020,46(2):44-49.
ZHANG X M,CHEN H,GAO Y S,et al.Research on structural dynamic characteristics of the 500-ton LOx/kerosene rocket engine[J].Journal of Rocket Propulsion,2020,46(2):44-49.
[6] 李斌,闫松,杨宝锋.大推力液体火箭发动机结构中的力学问题[J].力学进展,2021,51(4):831-864.
[7] 卢秉恒.增材制造技术:现状与未来[J].中国机械工程,2020,31(1):19-23.
[8] NOURI A,ROHANI SHIRVAN A,LI Y C,et al.Additive manufacturing of metallic and polymeric load-bearing biomaterials using laser powder bed fusion:A review[J].Journal of Materials Science & Technology,2021,94:196-215.
[9] PHANDEN R K,SHARMA P,DUBEY A.A review on simulation in digital twin for aerospace,manufacturing and robotics[J].Materials Today:Proceedings,2021,38:174-178.
[10] 张武昆,谭永华,高玉闪,等.液体火箭发动机增材制造技术研究进展[J].推进技术,2022,43(5):29-44.
[11] SEHARING A,AZMAN A H,ABDULLAH S.A review on integration of lightweight gradient lattice structures in additive manufacturing parts[J].Advances in Mechanical Engineering,2020,12(6):1-21.
[12] TIAN X Y,WU L L,GU D D,et al.Roadmap for additive manufacturing:Toward intellectualization and industrialization[J].Chinese Journal of Mechanical Engineering:Additive Manufacturing Frontiers,2022,1(1):100014.
[13] MOHD YUSUF S,CUTLER S,GAO N.Review:The impact of metal additive manufacturing on the aerospace industry[J].Metals,2019,9(12):1286.
[14] BLAKEY-MILNER B,GRADL P,SNEDDEN G,et al.Metal additive manufacturing in aerospace:A review[J].Materials & Design,2021,209:110008.
[15] TEPYLO N,HUANG X A,PATNAIK P C.Laser-based additive manufacturing technologies for aerospace applications[J].Advanced Engineering Materials,2019,21(11):1900617.
[16] URIONDO A,ESPERON-MIGUEZ M,PERINPANAYAGAM S.The present and future of additive manufacturing in the aerospace sector:A review of important aspects[J].Proceedings of the Institution of Mechanical Engineers,Part G:Journal of Aerospace Engineering,2015,229(11):2132-2147.
[17] GRADL P R,PROTZ C S.Technology advancements for channel wall nozzle manufacturing in liquid rocket engines[J].Acta Astronautica,2020,174:148-158.
[18] GRADL P,MIRELES O.Additive manufacturing(AM)for propulsion component and system applications[Z].2021.
[19] PAPAGEORGIOU A,TARKIAN M,AMADORI K,et al.Multidisciplinary design optimization of aerial vehicles:A review of recent advancements[J].International Journal of Aerospace Engineering,2018,2018:1-21.
[20] ZHU L,LI N,CHILDS P R N.Light-weighting in aerospace component and system design[J].Propulsion and Power Research,2018,7(2):103-119.
[21] BRAGA D F O,TAVARES S M O,DA SILVA L F M,et al.Advanced design for lightweight structures:Review and prospects[J].Progress in Aerospace Sciences,2014,69:29-39.
[22] DABABNEH O,KIPOUROS T.A review of aircraft wing mass estimation methods[J].Aerospace Science and Technology,2018,72:256-266.
[23] CILIBERTI D,DELLA VECCHIA P,NICOLOSI F,et al.Aircraft directional stability and vertical tail design:A review of semi-empirical methods[J].Progress in Aerospace Sciences,2017,95:140-172.
[24] ZHU J H,ZHANG W H,XIA L.Topology optimization in aircraft and aerospace structures design[J].Archives of Computational Methods in Engineering,2016,23(4):595-622.
[25] LIU L,MA A J,LIU H Y,et al.Research progress of engineering structural optimization in aerospace field[C]//7th International Conference on Mechanical and Aerospace Engineering(ICMAE).London,UK:IEEE,2016.
[26] SEABRA M,AZEVEDO J,ARAU 'JO A,et al.Selective laser melting(SLM)and topology optimization for lighter aerospace componentes[J].Procedia Structural Integrity,2016,1:289-296.
[27] 朱继宏,周涵,王创,等.面向增材制造的拓扑优化技术发展现状与未来[J].航空制造技术,2020,63(10):24-38.
[28] 李佳霖,赵剑,孙直,等.基于移动可变形组件法(MMC)的运载火箭传力机架结构的轻量化设计[J].力学学报,2022,54(1):244-251.
[29] 张允涛,薛杰,宋少伟,等.轨姿控发动机振动试验夹具结构拓扑优化[J].火箭推进,2023,49(1):93-102.
ZHANG Y T,XUE J,SONG S W,et al.Structural topology optimization of vibration test fixture for orbit and attitude control engines[J].Journal of Rocket Propulsion,2023,49(1):93-102.
[30] DONG G Y,TANG Y L,LI D W,et al.Design and optimization of solid lattice hybrid structures fabricated by additive manufacturing[J].Additive Manufacturing,2020,33:101116.
[31] ZHANG C H,WU T,XU S Z,et al.Multiscale topology optimization for solid-lattice-void hybrid structures through an ordered multi-phase interpolation[J].Computer-Aided Design,2023,154:103424.
[32] TEIMOURI M,MAHBOD M,ASGARI M.Topology-optimized hybrid solid-lattice structures for efficient mechanical performance[J].Structures,2021,29:549-560.
[33] WANG C,ZHU J H,WU M Q,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.
[34] LI Y,GAO T,ZHOU Q Y,et al.Layout design of thin-walled structures with lattices and stiffeners using multi-material topology optimization[J].Chinese Journal of Aeronautics,2023,36(4):496-509.
[35] GU D D,SHI X Y,POPRAWE R,et al.Material-structure-performance integrated laser-metal additive manufacturing[J].Science,2021,372(6545):1487.
[36] ZHANG X Q,ZHANG K Q,ZHANG L,et al.Additive manufacturing of cellular ceramic structures:From structure to structure-function integration[J].Materials & Design,2022,215:110470.
[37] YUAN W Z.Development and application of high-end aerospace MEMS[J].Frontiers of Mechanical Engineering,2017,12(4):567-573.
[38] 张武昆,谭永华,高玉闪,等.周期性轻质多孔结构在能量吸收和振动方面的研究进展[J].振动与冲击,2023,42(8):1-19.
[39] 徐亮,谌清云,席雷,等.微类桁架点阵结构填充内冷通道的多目标优化设计[J].西安交通大学学报,2020,54(3):1-11.
[40] 王向明,苏亚东,吴斌,等.微桁架点阵结构在飞机结构/功能一体化中的应用[J].航空制造技术,2018,61(10):16-25.
[41] XIAO Y,WEN J H.Closed-form formulas for bandgap estimation and design of metastructures undergoing longitudinal or torsional vibration[J].Journal of Sound and Vibration,2020,485:115578.
[42] HAN B,ZHANG Z J,ZHANG Q C,et al.Recent advances in hybrid lattice-cored sandwiches for enhanced multifunctional performance[J].Extreme Mechanics Letters,2017,10:58-69.
[43] FAN J X,ZHANG L,WEI S S,et al.A review of additive manufacturing of metamaterials and developing trends[J].Materials Today,2021,50:303-328.
[44] PRAJAPATI M J,KUMAR A,LIN S C,et al.Multi-material additive manufacturing with lightweight closed-cell foam-filled lattice structures for enhanced mechanical and functional properties[J].Additive Manufacturing,2022,54:102766.
[45] SAIRAJAN K K,AGLIETTI G S,MANI K M.A review of multifunctional structure technology for aerospace applications[J].Acta Astronautica,2016,120:30-42.
[46] GRADL P.Advancement of metal additive manufacturing techniques and materials for rocket propulsion applications[Z].2020.
[47] BARROQUEIRO B,ANDRADE-CAMPOS A,VALENTE R A F,et al.Metal additive manufacturing cycle in aerospace industry:A comprehensive review[J].Journal of Manufacturing and Materials Processing,2019,3(3):52.
[48] KERSTENS F,CERVONE A,GRADL P.End to end process evaluation for additively manufactured liquid rocket engine thrust chambers[J].Acta Astronautica,2021,182:454-465.
[49] 谷小军,李城彬,王文龙,等.拓扑优化与增材制造技术的融合及其在民用飞行器设计中的应用[J].航空制造技术,2022,65(14):14-20.
[50] 刘书田,李取浩,陈文炯,等.拓扑优化与增材制造结合:一种设计与制造一体化方法[J].航空制造技术,2017,60(10):26-31.
[51] ZHAO C,SHI B,CHEN S L,et al.Laser melting modes in metal powder bed fusion additive manufacturing[J].Reviews of Modern Physics,2022,94(4):045002.
[52] SANAEI N,FATEMI A.Defects in additive manufactured metals and their effect on fatigue performance:A state-of-the-art review[J].Progress in Materials Science,2021,117:100724.
[53] BECKER T H,KUMAR P,RAMAMURTY U.Fracture and fatigue in additively manufactured metals[J].Acta Materialia,2021,219:117240.
[54] 姜金朋,刘志超,刘筑,等.火箭发动机涡轮叶片疲劳寿命可靠性分析[J].火箭推进,2020,46(2):57-63.
JIANG J P,LIU Z C,LIU Z,et al.Reliability analysis of fatigue life for rocket engine turbine blade[J].Journal of Rocket Propulsion,2020,46(2):57-63.
[55] 杜大华,李斌.液体火箭发动机结构动力学设计关键技术综述[J].航空学报,2023,44(10):37-53.
[56] BLACHOWICZ T,EHRMANN G,EHRMANN A.Metal additive manufacturing for satellites and rockets[J].Applied Sciences,2021,11(24):12036.