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NeoCASS: An integrated tool for structural sizing, aeroelastic analysis andMDO at conceptual design level

机译:NeoCASS:用于在概念设计级别进行结构尺寸,气动弹性分析和MDO的集成工具

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This paper presents a design framework called NeoCASS (Next generation Conceptual Aero-Structural Sizing Suite), developed at the Department of Aerospace Engineering of Politecnico di Milano in the frame of SimSAC (Simulating Aircraft Stability And Control Characteristics for Use in Conceptual Design) project, funded by EU in the context of 6th Framework Program. It enables the creation of efficient low-order, medium fidelity models particularly suitable for structural sizing, aeroelastic analysis and optimization at the conceptual design level. The whole methodology is based on the integration of geometry construction, aerodynamic and structural analysis codes that combine depictive, computational, analytical, and semi-empirical methods, validated in an aircraft design environment. The work here presented aims at including the airframe and its effect from the very beginning of the conceptual design. This aspect is usually not considered in this early phase. In most cases, very simplified formulas and datasheets are adopted, which implies a low level of detail and a poor accuracy. Through NeoCASS, a preliminar distribution of stiffness and inertias can be determined, given the initial layout. The adoption of empirical formulas is reduced to the minimum in favor of simple numerical methods. This allows to consider the aeroelastic behavior and performances, as well, improving the accuracy of the design tools during the iterative steps and lowering the development costs and reducing the time to market. The result achieved is a design tool based on computational methods for the aero-structural analysis and Multi-Disciplinary Optimization (MDO) of aircraft layouts at the conceptual design stage. A complete case study regarding the TransoniCRuiser aircraft, including validation of the results obtained using industrial standard tools like MSC/NASTRAN and a CFD (Computational Fluid Dynamics) code, is reported. As it will be shown, it is possible to improve the degree of fidelity of the conceptual design process by including tailored numerical tools, overcoming the lacks of statistical methods. The result is a method minimally dependent on datasheets, featuring a good compromise between accuracy and costs.
机译:本文提出了一个名为NeoCASS(下一代概念性航空结构尺寸调整套件)的设计框架,该框架是在米兰理工大学航空工程学系的SimSAC(模拟用于概念设计的飞机稳定性和控制特性)项目的框架下开发的,由欧盟在第六框架计划的框架内资助。它可以创建有效的低阶,中保真度模型,特别适合在概念设计级别进行结构尺寸确定,气动弹性分析和优化。整个方法基于几何构造,空气动力学和结构分析代码的集成,这些代码结合了描述性,计算,分析和半经验方法,并在飞机设计环境中得到了验证。这里介绍的工作旨在从概念设计的一开始就包括机身及其影响。在此早期阶段通常不考虑这方面。在大多数情况下,采用了非常简化的公式和数据表,这意味着较低的详细程度和较差的准确性。通过NeoCASS,可以在给定初始布局的情况下确定刚度和惯性的初步分布。通过简单的数值方法,经验公式的采用减少到最小。这样还可以考虑气动弹性特性和性能,从而在迭代步骤中提高设计工具的准确性,并降低开发成本并缩短上市时间。达到的结果是,在概念设计阶段,基于计算方法的飞机布局的航空结构分析和多学科优化(MDO)设计工具。据报道,有关TransoniCRuiser飞机的完整案例研究包括使用MSC / NASTRAN等工业标准工具和CFD(计算流体动力学)代码对结果进行验证。如将显示的那样,可以通过包括量身定制的数值工具来克服概念方法的不足,从而提高概念设计过程的保真度。结果是一种最小限度地依赖数据手册的方法,在准确性和成本之间取得了很好的折衷。

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