Systems Engineering and Electronics ›› 2026, Vol. 48 ›› Issue (5): 1657-1669.doi: 10.12305/j.issn.1001-506X.2026.05.22
• Systems Engineering • Previous Articles Next Articles
Shuhan SANG1, Jiajia XU2, Wenqiang YUAN1,*, Yusheng LIU3, Zan LIANG4
Received:2025-01-15
Online:2026-05-27
Published:2026-05-27
Contact:
Wenqiang YUAN
CLC Number:
Shuhan SANG, Jiajia XU, Wenqiang YUAN, Yusheng LIU, Zan LIANG. A method for customizing aerospace equipment views based on domain modeling language[J]. Systems Engineering and Electronics, 2026, 48(5): 1657-1669.
| 1 |
MEHTA A, ALAIASHY O, KUMAR P, et al. Advancing model-based systems engineering in biomedical and aerospace research: a comprehensive review and future directions[J]. Journal of Knowledge Learning and Science Technology, 2024, 3 (4): 133- 147.
doi: 10.60087/jklst.v3.n4.p133 |
| 2 |
张卫红, 唐长红. 航空航天装备的轻量化: 挑战与未来[J]. 航空学报, 2024, 45 (5): 529965.
doi: 10.7527/S1000-6893.2023.29965 |
|
ZHANG W H, TANG C H. Lightweighting of aerospace and aeronautical equipment: challenges and perspectives[J]. Acta Aeronautica et Astronautica Sinica, 2024, 45 (5): 529965.
doi: 10.7527/S1000-6893.2023.29965 |
|
| 3 | KAITLIN H, ALEJANDRO S. Value and benefits of model-based systems engineering (MBSE): evidence from the literature[J]. Systems Engineering, 2021, 24 (1): 51- 66. |
| 4 |
MA J D, WANG G X, LU J Z, et al. Systematic literature review of MBSE tool-chains[J]. Applied Sciences, 2022, 12 (7): 3431.
doi: 10.3390/app12073431 |
| 5 | KASLOW D, ANDERSON L, ASUNDI S, et al. Developing a CubeSat model-based system engineering (MBSE) reference model-interim status[C]//Proc. of the IEEE Aerospace Conference, 2015. |
| 6 | TANG J, ZHU S, FAUDOU R, et al. Feedback on application of MBSE to an avionics subsystem[R]. Warrendale: SAE International, 2018. |
| 7 |
SAKAIRI T, PALACHI E, COHEN C, et al. Model based control system design using SysML, Simulink, and computer algebra system[J]. Journal of Control Science and Engineering, 2013, 2013 (1): 485380.
doi: 10.1155/2013/485380 |
| 8 |
LYU W H, YANG Y C, MIAO J G, et al. Architecture preliminary design and trade-off optimization of stratospheric airship based on MBSE[J]. Aerospace, 2024, 11 (7): 582.
doi: 10.3390/aerospace11070582 |
| 9 | MACHKOUR N, ZEGRARI M. Operational analysis based on the MBSE grid for the implementation of hydroelectric group health monitoring and management unit[J]. International Journal of Emerging Technology and Advanced Engineering, 2021, 11(12). DOI: 10.46338/ijetae1221_15. |
| 10 |
XING T, ZHOU C C, SHEN X, et al. A web-based collaborative method for SysML modeling[J]. Journal of Computing and Information Science in Engineering, 2022, 22 (6): 064503.
doi: 10.1115/1.4055240 |
| 11 | ZHAO H, WU W K, HU X M, et al. A SysML-centric integration framework for helicopter fuel system development[C]//Proc. of the International Conference on Physics and Engineering, 2023: 012040. |
| 12 |
WOLNY S, MAZAK A, CARPELLA C, et al. Thirteen years of SysML: a systematic mapping study[J]. Software and Systems Modeling, 2020, 19 (1): 111- 169.
doi: 10.1007/s10270-019-00735-y |
| 13 | AKUNDI A, ANKOBIAH W, MONDRAGON O, et al. Perceptions and the extent of model-based systems engineering (MBSE) use–an industry survey[C]//Proc. of the IEEE International Systems Conference, 2022. |
| 14 | DELLIGATTI L. SysML distilled: a brief guide to the systems modeling language[M]. Boston: Addison-Wesley, 2013. |
| 15 |
康文文, 李浩敏. 基于模型的飞机系统架构多视图表达方法[J]. 系统工程与电子技术, 2021, 43 (11): 3266- 3277.
doi: 10.12305/j.issn.1001-506X.2021.11.27 |
|
KANG W W, LI H M. Multi-view representation method of aircraft system architecture based on model[J]. Systems Engineering and Electronics, 2021, 43 (11): 3266- 3277.
doi: 10.12305/j.issn.1001-506X.2021.11.27 |
|
| 16 | ZHANG B, FANG Z X, WANG D L, et al. Formal modeling method of the weaponry using process based on multi-views and SysML[C]//Proc. of the 4th International Academic Exchange Conference on Science and Technology Innovation, 2022: 1125−1128. |
| 17 |
AKUNDI A, LOPEZ V. A review on application of model based systems engineering to manufacturing and production engineering systems[J]. Procedia Computer Science, 2021, 185, 101- 108.
doi: 10.1016/j.procs.2021.05.011 |
| 18 | 邱薇, 刘强, 张航, 等. 基于模型系统工程的模型和元模型概念辨析[C]//第3届体系工程学术会议, 2021: 30−34. |
| QIU W, LIU Q, ZHANG H, et al. The concepts of model and meta-model of model-based systems engineering[C]//Proc. of the 3rd Academic Conference on Systems Engineering, 2021: 30−34. | |
| 19 | DUPREZ J. Approach to structure, formalize and map MBSE meta-models and semantic rules[C]//Proc. of the INCOSE International Symposium, 2019: 22−36. |
| 20 | WANG S H, LI R, ZHANG H Z, et al. Customization design of complex products based on MBSE[C]//Proc. of the 13th International Conference on Mechanical and Intelligent Manufacturing Technologies, 2022: 20−24. |
| 21 |
BARRETT D, HEALE R. What are Delphi studies?[J]. Evidence-Based Nursing, 2020, 23 (2): 68- 69.
doi: 10.1136/ebnurs-2020-103303 |
| 22 | DIMITROV V. An overview of the Department of Defense Architecture Framework (DoDAF)[C]//Proc. of the 6th International Conference on Information Systems & Grid Technologies, 2012. |
| 23 | YANG W J, YUAN C X, ZHAO J, et al. Research on weapon and equipment requirement analysis method based on DoDAF[C]//Proc. of the International Conference on Virtual Reality and Intelligent Systems, 2019: 317−319. |
| 24 | JING W B, GAO Y M, ZHANG X B. A modeling method of equipment systems based on UPDM[C]//Proc. of the International Conference on Applied Mechanics and Materials, 2014: 490−496. |
| 25 |
BONILLA F, HOLZER T, SARKANI S. Complexity measure for engineering systems incorporating system states and behavior[J]. IEEE Systems Journal, 2021, 15 (4): 4792- 4803.
doi: 10.1109/JSYST.2020.3033792 |
| 26 | HOMAY A, WOLLSCHLAEGER M, DE-SOUSA M, et al. Impact of modularization and coupling on the complexity of industrial control and automation systems[C]//Proc. of the 27th International Conference on Emerging Technologies and Factory Automation, 2022. |
| 27 | KAVITHA A, SHANMUGAM A. Dynamic coupling measurement of object oriented software using trace events[C]//Proc. of the 6th International Symposium on Applied Machine Intelligence and Informatics, 2008: 255−259. |
| 28 | GANESH N, BABU S. Analysis of static coupling versus dynamic coupling in a distributed object oriented system based on trace events[J]. World Engineering and Applied Sciences Journal, 2015, 6 (1): 91- 95. |
| 29 | JOHNS B, CARROLL K, MEDINA C, et al. AI systems modeling enhancer (AI-SME): initial investigations into a ChatGPT-enabled MBSE modeling assistant[C]//Proc. of the INCOSE International Symposium, 2024: 1149−1168. |
| 30 |
ZHANG X, WU B, ZHANG X, et al. An effective MBSE approach for constructing industrial robot digital twin system[J]. Robotics and Computer-Integrated Manufacturing, 2023, 80, 102455.
doi: 10.1016/j.rcim.2022.102455 |
| 31 | GHOSHAL S, MEYER J, MALEPATI V, et al. Digital twin-driven process and equipment FMECA generation for smart manufacturing applications[C]//Proc. of the Annual Conference of the PHM Society, 2021. |
| 32 |
GHARSALLAH G, KADDOUM G. MVX-ViT: multimodal collaborative perception for 6G V2X network management decisions using vision transformer[J]. IEEE Open Journal of the Communications Society, 2024, 5, 5619- 5634.
doi: 10.1109/OJCOMS.2024.3452591 |
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