Reliability-based multidisciplinary design optimization of an aeroelastic unpowered guided aerial vehicle

S. Pourtakdoust, Amir H. Khodabakhsh
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Abstract

Most Aeronautical and Astronautical Systems (AAS) are inherently complex, multidisciplinary, nonlinear, and computationally intensive for design and analysis. Utilizing the Reliability-Based Multidisciplinary Design Optimization framework can address the multidisciplinary nature of these systems while accounting for inherent uncertainties. In this paper, an efficient methodology for Reliability-Based Multidisciplinary Design optimization of an aerial vehicle is developed. The computational burden of reliability assessment could make its integration within a Multidisciplinary Design Optimization cycle a formidable task. In this respect, a multilevel Multidisciplinary Design Optimization architecture is proposed in which the computational cost is reduced by considering the reliability analysis, as needed only for critical subsystems. To this end, a single-level Reliability-Based Multidisciplinary Design Optimization is derived using the Performance Measure Analysis and the Karush-Kuhn-Tucker condition. The work demonstrates the integration of this formulation into the proposed multilevel Reliability-Based Multidisciplinary Design Optimization architecture. The proposed design architecture is implemented for an aeroelastic Unpowered Guided Aerial Vehicle whose outcomes are compared with previous results obtained via a mono-level Uncertainty-Based Multidisciplinary Design Optimization architecture.
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基于可靠性的气动弹性无动力飞行器多学科设计优化
大多数航空航天系统(AAS)本质上是复杂的,多学科的,非线性的,和计算密集的设计和分析。利用基于可靠性的多学科设计优化框架可以解决这些系统的多学科性质,同时考虑到固有的不确定性。本文提出了一种基于可靠性的飞行器多学科设计优化方法。可靠性评估的计算量使其在多学科设计优化周期内的集成成为一项艰巨的任务。在此基础上,提出了一种多级多学科设计优化体系结构,通过对关键子系统进行可靠性分析,减少了计算量。为此,利用性能度量分析和Karush-Kuhn-Tucker条件,导出了基于单级可靠性的多学科设计优化。该工作证明了将该公式集成到提出的基于可靠性的多层次多学科设计优化体系结构中。以气动弹性无动力制导飞行器为例,将所提出的设计体系结构与基于单级不确定性的多学科设计优化体系结构的结果进行了比较。
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来源期刊
CiteScore
2.40
自引率
18.20%
发文量
212
审稿时长
5.7 months
期刊介绍: The Journal of Aerospace Engineering is dedicated to the publication of high quality research in all branches of applied sciences and technology dealing with aircraft and spacecraft, and their support systems. "Our authorship is truly international and all efforts are made to ensure that each paper is presented in the best possible way and reaches a wide audience. "The Editorial Board is composed of recognized experts representing the technical communities of fifteen countries. The Board Members work in close cooperation with the editors, reviewers, and authors to achieve a consistent standard of well written and presented papers."Professor Rodrigo Martinez-Val, Universidad Politécnica de Madrid, Spain This journal is a member of the Committee on Publication Ethics (COPE).
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