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Comparison of Aero-Propulsive Performance Predictions for Distributed Propulsion Configurations

机译:分布式推进配置的航空推进性能预测的比较

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NASA's X-S7 "Maxwell" flight demonstrator incorporates distributed electric propulsion technologies in a design that will achieve a significant reduction in energy used in cruise flight. A substantial portion of these energy savings come from beneficial aerodynamic-propulsion interaction. Previous research has shown the benefits of particular instantiations of distributed propulsion, such as the use of wingtip-mounted cruise propellers and leading edge high-lift propellers. However, these benefits have not been reduced to a generalized design or analysis approach suitable for large-scale design exploration. This paper discusses the rapid, "design-order" toolchains developed to investigate the large, complex tradespace of candidate geometries for the X-57. Due to the lack of an appropriate, rigorous set of validation data, the results of these tools were compared to three different computational flow solvers for selected wing and propulsion geometries. The comparisons were conducted using a common input geometry, but otherwise different input grids and, when appropriate, different flow assumptions to bound the comparisons. The results of these studies showed that the X-57 distributed propulsion wing should be able to meet the as-designed performance in cruise flight, while also meeting or exceeding targets for high-lift generation in low-speed flight.
机译:美国宇航局的X-S7“Maxwell”航班演示包括在设计中的分布式电动推进技术,这将在巡航飞行中实现显着减少的能量。这些节能的大部分来自有益的空气动力学 - 推进相互作用。以前的研究表明,特定的分布式推进装置的益处,例如使用翼面安装的巡航螺旋桨和前缘高升降螺旋桨。然而,这些益处尚未减少到适合大规模设计勘探的广义设计或分析方法。本文讨论了开发的快速“设计订单”工具链,以调查X-57的候选几何形状的大型复杂商标。由于缺乏适当的,严格的验证数据集,将这些工具的结果与选定的机翼和推进几何形状的三种不同的计算流量求解器进行了比较。使用常见的输入几何形状进行比较,但否则不同的输入网格,并且在适当的情况下,不同的流动假设绑定比较。这些研究的结果表明,X-57分布式推进翼应该能够满足巡航飞行中的设计性能,同时也会满足或超过低速飞行中的高升力产生目标。

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