DLR project Digital-X: towards virtual aircraft design and flight testing based on high-fidelity methods

被引:1
|
作者
Kroll N. [1 ]
Abu-Zurayk M. [1 ]
Dimitrov D. [4 ]
Franz T. [1 ]
Führer T. [2 ]
Gerhold T. [1 ]
Görtz S. [1 ]
Heinrich R. [1 ]
Ilic C. [1 ]
Jepsen J. [3 ]
Jägersküpper J. [1 ]
Kruse M. [1 ]
Krumbein A. [1 ]
Langer S. [1 ]
Liu D. [1 ]
Liepelt R. [4 ]
Reimer L. [1 ]
Ritter M. [4 ]
Schwöppe A. [1 ]
Scherer J. [5 ]
Spiering F. [1 ]
Thormann R. [4 ]
Togiti V. [1 ]
Vollmer D. [1 ]
Wendisch J.-H. [1 ]
机构
[1] Institute of Aerodynamics and Flow Technology, German Aerospace Center (DLR), Lilienthalplatz 7, Braunschweig
[2] Institute of Composite Structures and Adaptive Systems, German Aerospace Center (DLR), Braunschweig
[3] Institute of Air Transportation Systems, German Aerospace Center (DLR), Hamburg
[4] Institute of Aeroelasticity, German Aerospace Center (DLR), Göttingen
[5] Institute of Structures and Design, German Aerospace Center (DLR), Stuttgart
关键词
High-fidelity methods; Multidisciplinary optimization; Virtual aircraft;
D O I
10.1007/s13272-015-0179-7
中图分类号
学科分类号
摘要
Numerical simulation is already an important cornerstone for aircraft design, although the application of highly accurate methods is mainly limited to the design point. To meet future technical, economic and social challenges in aviation, it is essential to simulate a real aircraft at an early stage, including all multidisciplinary interactions covering the entire flight envelope, and to have the ability to provide data with guaranteed accuracy required for development and certification. However, despite the considerable progress made there are still significant obstacles to be overcome in the development of numerical methods, physical modeling, and the integration of different aircraft disciplines for multidisciplinary analysis and optimization of realistic aircraft configurations. At DLR, these challenges are being addressed in the framework of the multidisciplinary project Digital-X (4/2012–12/2015). This paper provides an overview of the project objectives and presents first results on enhanced disciplinary methods in aerodynamics and structural analysis, the development of efficient reduced order methods for load analysis, the development of a multidisciplinary optimization process based on a multi-level/variable-fidelity approach, as well as the development and application of multidisciplinary methods for the analysis of maneuver loads. © 2015, The Author(s).
引用
收藏
页码:3 / 27
页数:24
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