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Collaborative System of Systems Multidisciplinary Design Optimization for Civil Aircraft: AGILE EU project

机译:民用飞机系统多学科设计优化的协作系统:AGILE EU项目

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As part of H2020 EU project "AGILE", A Collaborative System of Systems Multidisciplinary Design Optimization research approach is presented in this paper. This approach relies on physics-based analysis to evaluate the correlations between the airframe design, as well as propulsion, aircraft systems, aerodynamics, structures and emission, from the early design process, and to exploit the synergies within a simultaneous optimization process. Further, the disciplinary analysis modules from multiple organizations, involved in the optimization are integrated within a distributed framework. The disciplinary analysis tools are not shared, but only the data are distributed among partners through a secured network of framework. In order to enable and to accelerate the deployment of collaborative, large scale design and optimization frameworks, the "AGILE Paradigm", a novel methodology, has been formulated during the project. The main elements composing the AGILE Paradigm are the Knowledge Architecture (KA), and the Collaborative Architecture (CA). The first formalizes the overall product development process in a multi-level structure. The latter formalizes the collaborative process within the entire supply chain, and defines how the multiple stakeholders interact with each other .The current paper is focused on the application of using the AGILE Paradigm to solve system of stystems MDO on a regional jet transport aircraft. The focus of the current research paper is: 1) Creation of a system of systems frame work using AGILE Paradigm to support multi-disciplinary distributive analysis capability. The framework involves physics based modules such as : Airframe synthesis, aerodynamics, structures, aircraft systems , propulsion system design, nacelle design, nacelle airframe integration, aircraft mission simulation,costs and emissions. 2) Validate the frame work with case study of a regional jet reference aircraft. 3) Assess the sensitivity and coupling of design parameters, local disciplinary optimizataion and its effect on global optimization objectives or constraints. The effects of varying Bypass Ratio (BPR) of engine, offtake effects due to degree of electrification and nacelle effects are propagated through the AGILE MDO framework and presented.
机译:作为H2020欧盟项目“ AGILE”的一部分,本文提出了一种系统多学科设计优化协作系统研究方法。这种方法依靠基于物理的分析来评估机身设计以及早期设计过程中的推进力,飞机系统,空气动力学,结构和排放之间的相关性,并在同步优化过程中发挥协同作用。此外,涉及优化的来自多个组织的学科分析模块被集成在一个分布式框架中。学科分析工具不是共享的,而是仅通过安全的框架网络在合作伙伴之间分配数据。为了支持并加速协作,大规模设计和优化框架的部署,在项目期间制定了一种新颖的方法“ AGILE范式”。构成AGILE范式的主要元素是知识体系结构(KA)和协作体系结构(CA)。第一种形式以多层结构形式规范了整个产品开发过程。后者规范了整个供应链中的协作过程,并定义了多个利益相关者之间的交互方式。本文的重点是使用AGILE范式解决支线喷气飞机MDO系统的应用。当前研究论文的重点是:1)使用AGILE范式创建支持多学科分布分析能力的系统框架系统。该框架涉及基于物理的模块,例如:飞机综合,空气动力学,结构,飞机系统,推进系统设计,机舱设计,机舱机身集成,飞机任务模拟,成本和排放。 2)通过对支线喷气飞机的案例研究来验证框架。 3)评估设计参数,局部学科优化及其对全局优化目标或约束的影响的敏感性和耦合性。通过AGILE MDO框架传播并介绍了发动机旁路比(BPR)变化,由于电气化程度引起的推力影响以及机舱影响的影响。

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