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Design of an Electric Propulsion System for SCEPTOR's Outboard Nacelle

机译:SCEPTOR舷外机舱电动推进系统的设计

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The rise of electric propulsion systems has pushed aircraft designers towards new and potentially transformative concepts. As part of this effort, NASA is leading the SCEPTOR program which aims at designing a fully electric distributed propulsion general aviation aircraft. This article highlights critical aspects of the design of SCEPTOR's propulsion system conceived at Joby Aviation in partnership with NASA, including motor electromagnetic design and optimization as well as cooling system integration. The motor is designed with a finite element based multi-objective optimization approach. This provides insight into important design tradeoffs such as mass versus efficiency, and enables a detailed quantitative comparison between different motor topologies. Secondly, a complete design and Computational Fluid Dynamics analysis of the air breathing cooling system is presented. The cooling system is fully integrated into the nacelle, contains little to no moving parts and only incurs a small drag penalty. Several concepts are considered and compared over a range of operating conditions. The study presents trade-offs between various parameters such as cooling efficiency, drag, mechanical simplicity and robustness.
机译:电动推进系统的兴起已将飞机设计师推向新的并可能带来变革的概念。作为这项工作的一部分,美国国家航空航天局(NASA)正在领导SCEPTOR计划,该计划旨在设计一种全电动分布式推进通用航空飞机。本文重点介绍了Joby Aviation与NASA合作设计的SCEPTOR推进系统设计的关键方面,包括电机电磁设计和优化以及冷却系统集成。电机采用基于有限元的多目标优化方法进行设计。这提供了重要的设计折衷的见解,例如质量与效率之间的关系,并实现了不同电机拓扑结构之间详细的定量比较。其次,给出了空气呼吸冷却系统的完整设计和计算流体动力学分析。冷却系统完全集成到机舱中,几乎没有运动部件,甚至没有阻力。在一系列操作条件下,考虑并比较了几个概念。这项研究提出了各种参数之间的权衡,例如冷却效率,阻力,机械简单性和坚固性。

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