修正:一种包含航空推进相互作用影响的混合动力飞机的初步尺寸确定方法

R. D. Vries, Malcom Brown, R. Vos
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引用次数: 22

摘要

在过去的十年中,混合动力推进(HEP)的潜在优势引起了人们对这一主题的兴趣。HEP的一个很有希望的优势是动力沿机身分布,这可以实现协同配置,提高空气动力学和推进效率。本文的目的是提出一种适用于混合动力飞机设计过程第一阶段的通用尺寸确定方法,同时考虑动力系统结构和相关的推进-机身一体化效应。为此,对性能方程进行了修改,以考虑气动-推进相互作用。动力系统中的每个组件都使用功率负载约束图,以提供设计空间的可视化表示。功率加载图的结果用于hep兼容任务分析和重量估计,以计算机翼面积,动力装置尺寸和起飞重量。该方法适用于多种电动和混合动力飞机构型,可用于估计最优功率控制剖面。为了演示目的,该方法采用了HEP概念的前缘分布式推进(DP)。比较了三种动力系统架构,展示了如何将空气推进效应包括在模型中。结果表明,该方法对顶层HEP和DP设计参数敏感,并表明DP增加了机翼载荷和功率载荷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Correction: A Preliminary Sizing Method for Hybrid-Electric Aircraft Including Aero-Propulsive Interaction Effects
The potential benefits of hybrid-electric propulsion (HEP) have led to an increased interest in this topic over the past decade. One promising advantage of HEP is the distribution of power along the airframe, which enables synergistic configurations with improved aerodynamic and propulsive efficiency. The purpose of this paper is to present a generic sizing method suitable for the first stages of the design process of hybrid-electric aircraft, taking into account the powertrain architecture and associated propulsion–airframe integration effects. To this end, the performance equations are modified to account for aero-propulsive interaction. A power-loading constraint-diagram is used for each component in the powertrain to provide a visual representation of the design space. The results of the power-loading diagrams are used in a HEP-compatible mission analysis and weight estimation to compute the wing area, powerplant size, and take-off weight. The resulting method is applicable to a wide range of electric and hybrid-electric aircraft configurations and can be used to estimate the optimal power-control profiles. For demonstration purposes, the method is applied a HEP concept featuring leading-edge distributed-propulsion (DP). Three powertrain architectures are compared, showing how the aero-propulsive effects are inlcuded in the model. The results confirm the method is sensitive to top-level HEP and DP design parameters, and indicate an increase in wing loading and power loading enabled by DP.
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