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Multidisciplinary Optimization of a Turboelectric Tiltwing Urban Air Mobility Aircraft

机译:涡轮电动倾斜翼城市空中机动飞机的多学科优化

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Urban air taxis, also known as urban air mobility (UAM) vehicles, are anticipated to be an area of significant market growth in the near future. These vehicles are typically vertical take-off and landing (VTOL) designs which are capable of carrying 1 to 30 passengers in an intra-urban environment with flights of less than 50 nautical miles. Development of UAM vehicles and their integration into the airspace will be enabled by advancements in a number of areas including electrified propulsion systems, structures, acoustics, automation, and controls. However, the strong multidisciplinary interactions for these unique vehicles presents a significant new design challenge. This work describes the development of a multidisciplinary analysis and optimization environment which can be used to support the conceptual design of these UAM vehicles, using efficient gradient based optimization with analytic derivatives. The tools included in this multidisciplinary analysis model the aircraft trajectory, vehicle aerodynamics, structures, and electrified propulsion system. The multidisciplinary environment created in this research is unique in that all the physics tools are tightly integrated together, with the trajectory model directly calling the aerodynamics, structures, and propulsion models. This multidisciplinary analysis environment is then demonstrated in the design optimization of a turboelectric tiltwing UAM vehicle concept.
机译:预计在不久的将来,城市空中出租车,也称为城市空中交通(UAM)车辆将成为重要的市场增长领域。这些车辆通常是垂直起降(VTOL)设计,能够在城市内部环境中飞行1到30名乘客,飞行距离不到50海里。 UAM车辆的开发及其与空域的整合将通过电动推进系统,结构,声学,自动化和控制等多个领域的进步来实现。但是,这些独特车辆的强大的多学科交互作用提出了重大的新设计挑战。这项工作描述了多学科分析和优化环境的开发,可以使用基于有效梯度的优化和解析导数来支持这些UAM车辆的概念设计。该多学科分析中包含的工具可对飞机的轨迹,车辆空气动力学,结构和电气化推进系统进行建模。本研究创建的多学科环境的独特之处在于,所有物理工具都紧密集成在一起,其轨迹模型直接称为空气动力学,结构和推进模型。然后,在涡轮电动倾斜翼UAM车辆概念的设计优化中证明了这种多学科的分析环境。

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