| 1 |
曾纯. 皇冠上的明珠[J]. 中国工业评论, 2016(11): 2.
|
|
ZENG C. Pearl on the crown[J]. China Industry Review, 2016(11): 2 (in Chinese).
|
| 2 |
范玉青, 梅中义, 陶剑. 大型飞机数字化制造工程[M]. 北京: 航空工业出版社, 2011: 804.
|
|
FAN Y Q, MEI Z Y, TAO J. Digital manufacturing engineering of large aircraft[M]. Beijing: Aviation Industry Press, 2011: 804 (in Chinese).
|
| 3 |
EWINS D J. Control of vibration and resonance in aero engines and rotating machinery - an overview[J]. International Journal of Pressure Vessels & Piping, 2010, 87(9): 504-510.
|
| 4 |
CANELIO J A, YIM H. Identification of dimensional variation patterns on compliant assemblies[J]. Journal of Manufacturing Systems, 2007, 25(2): 65-76.
|
| 5 |
HUANG W, KONG Z. Simulation and integration of geometric and rigid body kinematics errors for assembly variation analysis[J]. Journal of Manufacturing Systems, 2008, 27(1): 36-44.
|
| 6 |
刘永泉, 王德友, 洪杰, 等. 航空发动机整机振动控制技术分析[J]. 航空发动机, 2013, 39(5): 1-8, 13.
|
|
LIU Y Q, WANG D Y, HONG J, et al. Analysis of whole aeroengine vibration control technology[J]. Aeroengine, 2013, 39(5): 1-8, 13 (in Chinese).
|
| 7 |
郑丽, 罗泽明, 付炎晶. 航空发动机整机振动研究综述[J]. 机械制造与自动化, 2016, 45(1): 199-201.
|
|
ZHENG L, LUO Z M, FU Y J. Research on whole-body vibration of aero-engine[J]. Machine Building & Automation, 2016, 45(1): 199-201 (in Chinese).
|
| 8 |
DESROCHERS A, RIVIÈRE A. A matrix approach to the representation of tolerance zones and clearances[J]. The International Journal of Advanced Manufacturing Technology, 1997, 13(9): 630-636.
|
| 9 |
MUIEZINOVIC´ A, DAVIDSON J K, SHAH J J. A new mathematical model for geometric tolerances as applied to polygonal faces[J]. Journal of Mechanical Design, 2004, 126(3): 504-518.
|
| 10 |
SCHLEICH B, WALTER M, WARTZACK S, et al. A comprehensive framework for skin model simulation[C]∥Proceedings of the ASME 2012 11th Biennial Conference on Engineering Systems Design and Analysis. Volume 3: Advanced Composite Materials and Processing; Robotics; Information Management and PLM; Design Engineering. 2012: 567-576.
|
| 11 |
LAPERRIÈRE L, GHIE W, DESROCHERS A. Statistical and deterministic tolerance analysis and synthesis using a unified Jacobian-Torsor model[J]. CIRP Annals-Manufacturing Technology, 2002, 51(1): 417-420.
|
| 12 |
YANG Z, HUSSIAN T, POPOV A A, et al. A comparison of different optimization techniques for variation propagation control in mechanical assembly[C]∥ IOP Conference Series: Materials Science and Engineering, Volume 26. 2011: 012017.
|
| 13 |
YANG Z, HUSSAIN T, POPOV A A, et al. Novel optimization technique for variation propagation control in an aero-engine assembly[J]. Proceedings of the Institution of Mechanical Engineers Part B Journal of Engineering Manufacture, 2010, 225(1): 100-111.
|
| 14 |
YANG Z, POPOV A A, MCWILLIAM S. Variation propagation control in mechanical assembly of cylindrical components[J]. Journal of Manufacturing Systems, 2012, 31(2): 162-176.
|
| 15 |
YANG Z, MCWILLIAM S, POPOV A A, et al. A probabilistic approach to variation propagation control for straight build in mechanical assembly[J]. International Journal of Advanced Manufacturing Technology, 2013, 64(5-8): 1029-1047.
|
| 16 |
单福平, 李志敏, 朱彬. 航空发动机典型转子件装配偏差建模及分析[J]. 制造业自动化, 2015, 37(7): 100-103.
|
|
SHAN F P, LI Z M, ZHU B. Modeling and analysis of assembling deviation of typical aeroengine rotor parts[J]. Manufacturing Automation, 2015, 37(7): 100-103 (in Chinese).
|
| 17 |
孟祥海, 单福平. 航空发动机转子件装配质量预测[J]. 制造业自动化, 2016, 38(5): 61-65.
|
|
MENG X H, SHAN F P. Prediction of assembly quality of aeroengine rotor parts[J]. Manufacturing Automation, 2016, 38(5): 61-65 (in Chinese).
|
| 18 |
SUN C Z, WANG L, TAN J B, et al. Improvement of variation propagation control in mechanical assembly using adjustment assembly technique[J]. Applied Mechanics and Materials, 2017, 870: 459-464.
|
| 19 |
CHEN Y, CUI J, SUN X, et al. Research on multistage rotor assembly optimization methods for aeroengine based on the genetic algorithm[J]. Complexity, 2021, 2021: 1-14.
|
| 20 |
DING S, JIN S, LI Z, et al. Multistage rotational optimization using unified Jacobian-Torsor model in aero-engine assembly[J]. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture, 2019, 233(1): 251-266.
|
| 21 |
DING S, ZHENG X, BAO J, et al. A comprehensive study of three-dimensional deviation analysis methods for aero-engine rotors assembly[C]∥IOP Conference Series Materials Science and Engineering, Volume 688. 2019: 033039.
|
| 22 |
DING S, HE Y, ZHENG X. A probabilistic approach for three-dimensional variation analysis in aero-engine rotors assembly[J]. International Journal of Aeronautical and Space Sciences, 2021, 22(5): 1092-1105.
|
| 23 |
SUN C, HU M, LIU Y, et al. A method to control the amount of unbalance propagation in precise cylindrical components assembly[J]. Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture. 2019, 233(13): 2458-2468.
|
| 24 |
SUN Q, ZHAO B, LIU X, et al. Assembling deviation estimation based on the real mating status of assembly[J]. Computer-Aided Design, 2019, 115: 244-255.
|
| 25 |
WANG S, SUN Y, GUO J, et al. A prediction method for assembly surface contact considering form error[J]. Procedia CIRP, 2021, 97: 526-532.
|
| 26 |
LI T, WEN Z, ZHAO B, et al. A novel collaborative optimization assembly process method for multi-performance of aeroengine rotors[J]. The International Journal of Advanced Manufacturing Technology, 2023, 125(3-4): 1827-1843.
|
| 27 |
王乐, 周军, 崔艳林. 数字孪生在航空发动机领域的应用分析[J]. 航空动力, 2020(5): 63-66.
|
|
WANG L, ZHOU J, CUI Y L. Application of digital twin in aero engine[J]. Aerospace Power, 2020(5): 63-66 (in Chinese).
|
| 28 |
孟松鹤, 叶雨玫, 杨强, 等. 数字孪生及其在航空航天中的应用[J]. 航空学报, 2020, 41(9): 023615.
|
|
MENG S H, YE Y M, YANG Q, et al. Digital twin and its aerospace applications[J]. Acta Aeronautica et Astronautica Sinica, 2020, 41(9): 023615 (in Chinese).
|
| 29 |
赵罡, 李瑾岳, 徐茂程, 等. 航空发动机关键装配技术综述与展望[J]. 航空学报, 2022, 43(10): 527484.
|
|
ZHAO G, LI J Y, XU M C, et al. Research status and prospect of key aero-engine assembly technology[J]. Acta Aeronautica et Astronautica Sinica, 2022, 43(10): 527484 (in Chinese).
|
| 30 |
董雷霆, 周轩, 赵福斌, 等. 飞机结构数字孪生关键建模仿真技术[J]. 航空学报, 2021, 42(3): 023981.
|
|
DONG L T, ZHOU X, ZHAO F B, et al. Key technologies for modeling and simulation of airframe digital twin[J]. Acta Aeronautica et Astronautica Sinica, 2021, 42(3): 023981 (in Chinese).
|
| 31 |
郭丞皓, 于劲松, 宋悦, 等. 基于数字孪生的飞机起落架健康管理技术[J]. 航空学报, 2023, 44(11): 227629.
|
|
GUO C H, YU J S, SONG Y, et al. Application of digital twin⁃based aircraft landing gear health management technology[J]. Acta Aeronautica et Astronautica Sinica, 2023, 44(11): 227629 (in Chinese).
|
| 32 |
陶飞, 张贺, 戚庆林, 等. 数字孪生模型构建理论及应用[J]. 计算机集成制造系统, 2021, 27(1): 1-15.
|
|
TAO F, ZHANG H, QI Q L, et al. Theory of digital twin modeling and its application[J]. Computer Integrated Manufacturing Systems, 2021, 27(1): 1-15 (in Chinese).
|
| 33 |
ZHUANG C, LIU J, XIONG H. Digital twin-based smart production management and control framework for the complex product assembly shop-floor[J]. The International Journal of Advanced Manufacturing Technology, 2018, 96(1-4): 1149-1163.
|
| 34 |
DESROCHERS A, GHIE W, LAPERRIÈRE L. Application of a unified Jacobian-Torsor model for tolerance analysis[J]. Journal of Computing & Information Science in Engineering, 2003, 3(1): 2-14.
|
| 35 |
CHEN H, JIN S, LI Z, et al. A solution of partial parallel connections for the unified Jacobian-Torsor model[J]. Mechanism and Machine Theory, 2015, 91: 39-49.
|
| 36 |
JOHNSON K L. 接触力学[M]. 徐秉业, 等, 译. 北京: 高等教育出版社, 1992: 103.
|
|
JOHNSON K L. Contact mechanics[M]. XU B Y, et al, translated. Beijing: Higher Education Press, 1992: 103 (in Chinese).
|
| 37 |
GREENWOOD J A, WILLIAMSON J B. Contact of nominally flat surfaces[J]. Proceedings of the Royal Society of London. Series A. Mathematical and physical sciences, 1966, 295(1442): 300-319.
|