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Multidisciplinary Analysis and Optimization in the Conceptual Aircraft Design Phase to Support Early Mass Predictions

机译:在概念飞机设计阶段进行多学科分析和优化,以支持早期的质量预测

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A new approach in conceptual aircraft design at Cassidian is presented which supports the initial assessment of mass data for a new configuration. It is based on the fast creation of a multidisciplinary analytical model for the description of the complete vehicle and the application of mathematical optimization methods to determine the mass of its structural components, subject to external loading conditions and requirements for the structural stiffness to meet the essential performance constraints. In the first place, this process serves as a tool that helps to find the optimum overall design for the top level requirements like range and payload by a direct coupling of the structural lay out with the vehicle's conceptual design topology and sizing process. Mass data from this process help to confirm and adjust the classic mass estimation process which is based on statistic and semi-empirical data for the individual components of the vehicle but also for the global mass properties like center of gravity location and mass moments of inertia, which are also important during the initial sizing process. In addition, the method help to find optimum solutions for the integration of heavy equipment by directly including the impacts from the attachment loads of these equipment items to the structure, as well as the related interactions with the vehicle's flutter stability. The basic analysis and optimization tool for this process is the Cassidian in-house program LAGRANGE. Its development started 30 years ago, based on the needs to assess and include all relevant design requirements for the stiffness and strength of an aircraft structure into the design process from the very beginning, and at the same time explore and exploit the new possibilities of "tailoring" the strength and stiffness properties of carbon composites. Whereas initial structural analysis and optimization application started by setting up rather simple structural analysis models from "scratch", recent years showed a trend towards first creating computer aided design models and then derive the analysis models from these already rather complex designs. The approach which is described in this paper is different from similar efforts because it starts with the creation of the analytical models by simple input data only. Its results can then be used to create or update the design model. The time to set up the complete model for a new configuration is less than one day, and it takes only minutes or few hours to modify the model for a different geometry, different requirements, or different options for the optimization process. Especially for new configurations, where no or only very limited statistical data exist from comparable projects, this new approach is very useful to support the generation and tracking of mass data, and it helps to minimize these masses by using analytical sensitivities for the essential design variables as functions from a set of complex design requirements from different disciplines. An example is presented for a generic medium-altitude-long endurance (MALE) UAV.
机译:提出了卡西迪安(Cassidian)概念飞机设计的新方法,该方法支持对新配置的质量数据进行初始评估。它基于快速创建用于描述整个车辆的多学科分析模型,并基于数学优化方法来确定其结构部件的质量(基于外部载荷条件和对结构刚度的要求以满足基本要求)的基础上性能限制。首先,该过程可作为一种工具,通过将结构布局与车辆的概念设计拓扑和尺寸调整过程直接耦合,可帮助找到针对顶级要求(如范围和有效载荷)的最佳总体设计。此过程中的质量数据有助于确认和调整经典的质量估算过程,该过程基于车辆各个部件的统计和半经验数据,还基于整体质量属性,例如重心位置和质量惯性矩,这在初始大小调整过程中也很重要。另外,该方法通过直接包括这些设备项目的附着载荷对结构的影响以及与车辆颤振稳定性的相关交互作用,有助于找到重型设备集成的最佳解决方案。此过程的基本分析和优化工具是Cassidian内部程序LAGRANGE。它的开发始于30年前,它基于评估的需要,并从一开始就将对飞机结构刚度和强度的所有相关设计要求纳入设计过程,同时探索和利用“定制”碳复合材料的强度和刚度特性。最初的结构分析和优化应用程序是从“从头开始”建立相当简单的结构分析模型而开始的,但近年来显示出一种趋势,即首先创建计算机辅助设计模型,然后从这些已经相当复杂的设计中得出分析模型。本文描述的方法与类似的工作有所不同,因为它始于仅通过简单的输入数据创建分析模型。然后可以将其结果用于创建或更新设计模型。为新配置建立完整模型的时间少于一天,并且针对不同的几何形状,不同的要求或优化过程的不同选项,只需几分钟或几小时即可修改模型。尤其是对于没有可比项目的统计数据或只有非常有限的统计数据的新配置,这种新方法对于支持质量数据的生成和跟踪非常有用,并且通过对基本设计变量使用分析敏感性来帮助最小化这些质量。功能来自一组来自不同学科的复杂设计要求。给出了一个通用的中空长期耐力(MALE)UAV的示例。

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