The system design of the civil aircraft based on NASA systems engineering approach

被引:0
作者
Akhmatova M.-S. [1 ,2 ]
Brotsman Y. [1 ,2 ]
机构
[1] Department of Aircraft Design Moscow Aviation Institute (National Research University), Moscow
[2] School of Aeronautics and Astronautics, Shanghai Jiao Tong University, Shanghai
关键词
NASA; Stakeholders; expectations; System design; Systems engineering; Technical requirements;
D O I
10.1007/s42401-018-0005-0
中图分类号
学科分类号
摘要
With the development of science and technology, as well as the increasing demand for aircraft in the civil fields, the design of an aircraft has become more comprehensive with more disciplines involved, that requires not only the high performance, reliability, and cost-effectiveness of the civil aircraft, but is also connected with the implementation of the professional and modern approaches. One of the relevant and effective approaches for the complex system design is systems engineering including the sequence of the activities that are used for NASA projects realization. In our work, we focused on the widely used NASA Systems Engineering techniques for creating successful systems, such as the logical decomposition models that should be applied for the civil aviation objects. The high-quality competent planning and realization of the life cycle stages “step-by-step” using the NASA Systems Engineering approach promote the avoiding of the mistakes and excessive costs. The universality of these methods allows meeting the requirements of the modern civil aircraft that primarily ensure the safety of the flight and meet the customer needs. © 2018, Shanghai Jiao Tong University.
引用
收藏
页码:39 / 48
页数:9
相关论文
共 50 条
[41]   A requirements-based programming approach to developing a NASA autonomous ground control system [J].
Rash, James L. ;
Hinchey, Michael G. ;
Rouff, ChristopherA. ;
Gracanin, Denis ;
Erickson, John .
ARTIFICIAL INTELLIGENCE REVIEW, 2006, 25 (04) :285-297
[42]   Developing Systems Engineering Skills Through NASA Summer Intern Project [J].
Bhasin, Kul ;
Barritt, Brian ;
Golden, Bert ;
Knoblock, Eric ;
Matthews, Seth ;
Warner, Joe .
2010 IEEE INTERNATIONAL SYSTEMS CONFERENCE, 2010, :55-60
[43]   Systems engineering in the design of mechatronic systems [J].
Rothfuss, R ;
Lasa, M ;
Heinkel, HM ;
Tirgari, P .
INTERNATIONAL JOURNAL OF VEHICLE DESIGN, 2002, 28 (1-3) :18-36
[44]   A new risk-based design approach for hydraulic engineering [J].
Schoustra, F ;
Mockett, I ;
van Gelder, P ;
Simm, J .
JOURNAL OF RISK RESEARCH, 2004, 7 (06) :581-597
[45]   AN ENGINEERING APPROACH TO HARD REAL-TIME SYSTEM-DESIGN [J].
KOPETZ, H ;
ZAINLINGER, R ;
FOHLER, G ;
KANTZ, H ;
PUSCHNER, P ;
SCHUTZ, W .
LECTURE NOTES IN COMPUTER SCIENCE, 1991, 550 :166-188
[46]   Agent-Based Modelling: an Approach from the Systems Engineering [J].
Pereda, Maria ;
Zamarreno, Jesus M. .
REVISTA IBEROAMERICANA DE AUTOMATICA E INFORMATICA INDUSTRIAL, 2015, 12 (03) :304-312
[47]   Practical ethical frameworks for civil engineering and environmental systems [J].
Rodriguez-Nikl, Tonatiuh ;
Schaff, Kory P. .
CIVIL ENGINEERING AND ENVIRONMENTAL SYSTEMS, 2023, 40 (03) :176-194
[48]   The Most Preferred Route of the Car Navigation System: A Systems Engineering Approach [J].
Choe, Kyung-il .
ADVANCES IN MANUFACTURING SCIENCE AND ENGINEERING, PTS 1-4, 2013, 712-715 :2680-2685
[49]   A knowledge-based approach for design and modelling of high lift actuation systems [J].
Pfennig, M. ;
Thielecke, F. .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2011, 225 (G3) :302-311
[50]   Approach to Capability-Based System-of-Systems Framework in Support of Naval Ship Design [J].
Olivier, Jacques P. ;
Balestrini-Robinson, Santiago ;
Briceno, Simon .
2014 8TH ANNUAL IEEE SYSTEMS CONFERENCE (SYSCON), 2014, :388-395