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Development of a Multi-Disciplinary Optimization Framework for Nonconventional Aircraft Configurations in PACELAB APD

机译:在PACELAB APD中的非学科优化框架开发多学科优化框架

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Most traditional methods and equations for estimating the structural and nonstructural weights and aerodynamics used at the aircraft conceptual design phase are empirical relations developed for conventional tube-and-wing aircraft. In a computation-heavy design process, such as Multidisciplinary Design and Optimization (MDO) simplicity of calculation is paramount, and for conventional configurations the aforementioned approaches work well enough for conceptual design. But, for non-traditional designs such as strut-braced winged aircraft, empirical data is generally not available and the usual methods can no longer apply. One solution to this is a movement toward generalized physics-based methods that can apply equally well to conventional or non-traditional configurations. In this work, physics-based methods for calculating the aerodynamic drag and wing weight of an aircraft were implemented in a commercial aircraft conceptual design and optimization tool, PACELAB Aircraft Preliminary Design (APD), which in its default form utilizes traditional empirical methods for estimating these characteristics. The new methods are based on past MDO work at Virginia Tech and are general enough to appropriately capture the physics of nonconventional models, yet are also simple enough that they can be realistically applied in an MDO environment. Special attention has been paid to capturing the transonic wave drag effects encountered through the cruise regime. Preliminary design optimizations for minimum fuel consumption were performed in the extended version of PACELAB APD for a mid-range regional airliner type mission, and results show significant fuel savings using a strut-braced wing configuration.
机译:用于估计飞机概念设计阶段的结构和非结构权重和空气动力学的最传统方法和方程是为传统管道和翼飞机开发的实证关系。在计算重型设计过程中,例如多学科设计和优化(MDO)的简单性是至关重要的,并且对于传统配置,上述方法足以用于概念设计。但是,对于非传统设计,如支撑翼飞机,经验数据通常不可用,通常不再适用。对此的一种解决方案是朝向广义物理的方法的运动,其可以同样适用于常规或非传统配置。在这项工作中,在商用飞机概念设计和优化设计(PACELAB飞机初步设计(APD)中实施了基于物理的用于计算飞机的空气动力阻力和机翼重量,其默认表格利用传统的实证方法来估算这些特征。新方法基于弗吉尼亚科技的过去的MDO工作,一般足以适当地捕捉非共同模型的物理,但也足够简单,它们可以在MDO环境中逼真地应用。捕获通过巡航制度遇到的跨音波拖动效应的特别关注。最低燃料消耗的初步设计优化是在帕佩拉夫APD的扩展版中进行的,用于中档区域偶然航空公司任务,使用支撑翼配置的结果显着节省了大量燃料。

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