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A Simple Method for High-Lift Propeller Conceptual Design

机译:高升程螺旋桨概念设计的简单方法

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In this paper, we present a simple method for designing propellers that are placed upstream of the leading edge of a wing in order to augment lift. Because the primary purpose of these "high-lift propellers" is to increase lift rather than produce thrust, these props are best viewed as a form of high-lift device; consequently, they should be designed differently than traditional propellers. We present a theory that describes how these props can be designed to provide a relatively uniform axial velocity increase, which is hypothesized to be advantageous for lift augmentation based on a literature survey. Computational modeling indicates that such propellers can generate the same average induced axial velocity while consuming less power and producing less thrust than conventional propeller designs. For an example problem based on specifications for NASA's Scalable Convergent Electric Propulsion Technology and Operations Research (SCEPTOR) flight demonstrator, a propeller designed with the new method requires approximately 15% less power and produces approximately 11% less thrust than one designed for minimum induced loss. Higher-order modeling and/or wind tunnel testing are needed to verify the predicted performance.
机译:在本文中,我们提出了一种简单的方法来设计螺旋桨,该螺旋桨位于机翼前缘的上游,以增强升力。因为这些“高升程螺旋桨”的主要目的是增加升力而不是产生推力,所以最好将这些支柱视为高升力装置的一种形式。因此,它们的设计应与传统螺旋桨不同。我们提出了一种理论,描述了如何设计这些道具以提供相对均匀的轴向速度增加,根据文献调查,这被认为对于提升举升是有利的。计算模型表明,与传统螺旋桨设计相比,此类螺旋桨可产生相同的平均感应轴向速度,同时消耗更少的功率并产生更少的推力。对于一个基于美国国家航空航天局可缩放聚合电力推进技术和运营研究(SCEPTOR)飞行演示器规格的示例问题,采用新方法设计的螺旋桨比为实现最小感应损耗而设计的螺旋桨所需功率降低了约15%,推力降低了约11% 。需要高阶建模和/或风洞测试来验证预测性能。

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